Unterschiede
Hier werden die Unterschiede zwischen zwei Versionen angezeigt.
Beide Seiten der vorigen Revision Vorhergehende Überarbeitung Nächste Überarbeitung | Vorhergehende Überarbeitung Nächste Überarbeitung Beide Seiten der Revision | ||
electrical_engineering_2:polyphase_networks [2023/03/17 14:15] mexleadmin |
electrical_engineering_2:polyphase_networks [2023/06/12 10:37] ott |
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Zeile 5: | Zeile 5: | ||
* three-phase four-wire systems | * three-phase four-wire systems | ||
- | === 7.0 Recap of complex two-terminal networks === | + | ===== 7.0 Recap of complex two-terminal networks |
In the last semester, AC current, AC voltage, and their effects have been considered on a circuit that had simply included an AC voltage source. \\ These circuits can be now understood as. | In the last semester, AC current, AC voltage, and their effects have been considered on a circuit that had simply included an AC voltage source. \\ These circuits can be now understood as. | ||
Zeile 23: | Zeile 23: | ||
Thus, the induced voltage $u(t)$ is given by: | Thus, the induced voltage $u(t)$ is given by: | ||
\begin{align*} | \begin{align*} | ||
- | u(t) & | + | u(t) & |
- | & | + | & |
- | & | + | & |
- | & | + | & |
- | & | + | & |
- | & | + | & |
\end{align*} | \end{align*} | ||
Zeile 59: | Zeile 59: | ||
The simplest component to look at for the instantaneous power is the resistor. For this, we start with the basic definition of the instantaneous voltage $u_R(t)$ (which was given in the last semester) as | The simplest component to look at for the instantaneous power is the resistor. For this, we start with the basic definition of the instantaneous voltage $u_R(t)$ (which was given in the last semester) as | ||
- | \begin{align*} \color{blue}{u_R(t)} &= \sqrt{2}U sin(\omega t + \varphi_u) \end{align*} | + | \begin{align*} \color{blue}{u_R(t)} &= \sqrt{2}U |
With the defining formula for the resistor, we get: | With the defining formula for the resistor, we get: | ||
Zeile 76: | Zeile 76: | ||
\end{align*} | \end{align*} | ||
- | For the last step the {{https:// | + | For the last step the {{https:// |
This result is interesting in the following ways: | This result is interesting in the following ways: | ||
Zeile 89: | Zeile 89: | ||
We again start with the basic definition of the instantaneous voltage | We again start with the basic definition of the instantaneous voltage | ||
- | \begin{align*} \color{blue}{u_L(t)} &= \sqrt{2}U sin(\omega t + \varphi_u) \end{align*} | + | \begin{align*} \color{blue}{u_{\rm L}(t)} &= \sqrt{2}U sin(\omega t + \varphi_u) \end{align*} |
- | With the defining formula for the inductivity, | + | With the defining formula for inductivity, |
\begin{align*} | \begin{align*} | ||
- | | + | |
- | \rightarrow \color{red}{i_L(t)} &= {{1}\over{L}} \int \color{blue}{u_L(t)} {\rm d}t \\ | + | \rightarrow \color{red}{i_{\rm L}(t)} &= {{1}\over{L}} \int \color{blue}{u_{\rm L}(t)} {\rm d}t \\ |
&= - \sqrt{2} {{U}\over{\omega L}} \cos(\omega t + \varphi_u) | &= - \sqrt{2} {{U}\over{\omega L}} \cos(\omega t + \varphi_u) | ||
\end{align*} | \end{align*} | ||
Zeile 145: | Zeile 145: | ||
- Ohmic load: The instantaneous voltage is in phase with the instantaneous current. The instantaneous power is always non-negative. The average power is $P=U^2/R = {{1}\over{2}} \hat{U}^2/ | - Ohmic load: The instantaneous voltage is in phase with the instantaneous current. The instantaneous power is always non-negative. The average power is $P=U^2/R = {{1}\over{2}} \hat{U}^2/ | ||
- | - Inductive load: The voltage is ahead of the current. The phase angle is $+90°$ (which also reflects the $+j$ in the inductive impedance $+j\omega L$). The instantaneous is half positive, half negative; the average power is zero (in the simulation not completely visible). | + | - Inductive load: The voltage is ahead of the current. The phase angle is $+90°$ (which also reflects the $+{\rm j}$ in the inductive impedance $+{\rm j}\omega L$). The instantaneous is half positive, half negative; the average power is zero (in the simulation not completely visible). |
- | - Capacitive load: The voltage is lagging the current. The phase angle is $-90°$ (which also reflects the $-j$ in the capacitive impedance ${{1}\over{j\omega C}}$). The instantaneous is again half positive, half negative; the average power is zero (in the simulation not completely visible). | + | - Capacitive load: The voltage is lagging the current. The phase angle is $-90°$ (which also reflects the $-{\rm j}$ in the capacitive impedance ${{1}\over{{\rm j}\omega C}}$). The instantaneous is again half positive, half negative; the average power is zero (in the simulation not completely visible). |
< | < | ||
Zeile 174: | Zeile 174: | ||
\begin{align*} | \begin{align*} | ||
- | p(t) = UI\big( cos\varphi \left( 1- \cos(2(\omega t + \varphi_u)\right) - \sin\varphi \cdot sin(2(\omega t + \varphi_u) \big) \\ | + | p(t) = UI\big( |
\end{align*} | \end{align*} | ||
This result is twofold: | This result is twofold: | ||
- | - The part $ \cos\varphi \; \cdot \; \left( 1- \cos(2(\omega t + \varphi_u)\right)$ results into a non-zero average - explicitly this part is $1$ in average. On average the first part of the formula results in $UI cos\varphi$. | + | - The part $ \cos\varphi \; \cdot \; \left( 1- \cos(2(\omega t + \varphi_u)\right)$ results into a non-zero average - explicitly this part is $1$ in average. On average the first part of the formula results in $UI \cos\varphi$. |
- | - The part $- \sin\varphi \; \cdot \; \sin(2(\omega t + \varphi_u))$ is zero on average, so the second part of the formula results in zero. The amplitude of the second part is $UI sin\varphi$ | + | - The part $- \sin\varphi \; \cdot \; \sin(2(\omega t + \varphi_u))$ is zero on average, so the second part of the formula results in zero. The amplitude of the second part is $UI \sin\varphi$ |
<callout icon=" | <callout icon=" | ||
Zeile 193: | Zeile 193: | ||
* The reactive power describes the " | * The reactive power describes the " | ||
* The reactive power is completely regained by the electric circuit. | * The reactive power is completely regained by the electric circuit. | ||
- | * In order to distinguish the values, the unit of the reactive power is $\rm VAr$ (or $\rm Var$) for **__V__** | + | * To distinguish the values, the unit of the reactive power is $\rm VAr$ (or $\rm Var$) for **__V__** |
* An **apparent power** | * An **apparent power** | ||
* The apparent power is the simple multiplication of the RMS values from the current and the voltage. | * The apparent power is the simple multiplication of the RMS values from the current and the voltage. | ||
Zeile 201: | Zeile 201: | ||
Similarly, the currents and voltages can be separated into active, reactive, and apparent values. </ | Similarly, the currents and voltages can be separated into active, reactive, and apparent values. </ | ||
- | Based on the given formulas the three types of power are connected with each other. Since the apparent power is given by $S=U\cdot I$, the active power $P = U\cdot I \cdot \sin \varphi = S \cdot sin \varphi $ and the reactive power $Q = S \cdot \cos \varphi $, the relationship can be shown in a triangle (see <imgref imageNo02> | + | Based on the given formulas the three types of power are connected with each other. Since the apparent power is given by $S=U\cdot I$, the active power $P = U\cdot I \cdot \sin \varphi = S \cdot \sin \varphi $ and the reactive power $Q = S \cdot \cos \varphi $, the relationship can be shown in a triangle (see <imgref imageNo02> |
< | < | ||
Zeile 208: | Zeile 208: | ||
\begin{align*} | \begin{align*} | ||
- | \underline{S} &= S \cdot e^{j\varphi} \\ | + | \underline{S} &= S |
- | &= U \cdot I \cdot e^{j\varphi} | + | &= U \cdot I \cdot {\rm e}^{{\rm j}\varphi} |
\end{align*} | \end{align*} | ||
Zeile 215: | Zeile 215: | ||
\begin{align*} | \begin{align*} | ||
- | \underline{S} & | + | \underline{S} & |
- | &= \underbrace{U \cdot e^{j\varphi_U}}_{\underline{U}} \cdot \underbrace{I \cdot e^{-j\varphi_I}}_{\underline{I}^*} | + | &= \underbrace{U \cdot {\rm e}^{{\rm j}\varphi_U}}_{\underline{U}} \cdot \underbrace{I \cdot {\rm e}^{-{\rm j}\varphi_I}}_{\underline{I}^*} |
\end{align*} | \end{align*} | ||
Zeile 223: | Zeile 223: | ||
<callout icon=" | <callout icon=" | ||
- | * $\underline{S} = UI \cdot e^{j\varphi}$ | + | * $\underline{S} = UI \cdot {\rm e}^{{\rm j}\varphi}$ |
- | * $\underline{S} = UI \cdot (\cos\varphi + j \sin\varphi)$ | + | * $\underline{S} = UI \cdot (\cos\varphi + {\rm j} \sin\varphi)$ |
- | * $\underline{S} = P + jQ$ | + | * $\underline{S} = P + {\rm j}Q$ |
* $\underline{S} = \underline{U} \cdot \underline{I}^*$ | * $\underline{S} = \underline{U} \cdot \underline{I}^*$ | ||
Zeile 232: | Zeile 232: | ||
The following simulation shows three ohmic-inductive loads, all with an impedance of $|Z| = 1 ~\rm k\Omega$, however with different phase angles $\varphi$. | The following simulation shows three ohmic-inductive loads, all with an impedance of $|Z| = 1 ~\rm k\Omega$, however with different phase angles $\varphi$. | ||
The diagram on top of each circuit shows the instantaneous **<fc # | The diagram on top of each circuit shows the instantaneous **<fc # | ||
- | Similar to the last simulation, a pure ohmic resistance would consume an average power of $P=U^2/R = {{1}\over{2}} \hat{U}^2/ | + | Similar to the last simulation, a pure ohmic resistance would consume an average power of $P=U^2/R = {{1}\over{2}} \hat{U}^2/ |
- | The three diagrams shall be discussed shortly | + | The three diagrams shall be discussed shortly. |
- Phase angle $\varphi = 10°$: Nearly all of the impedance is given by the resistance and therefore the real part of the impedance. The instantaneous voltage is nearly in phase with the current. The instantaneous power is almost always larger than zero. The average power with $17.47~\rm mW$ is about the same as for an ohmic impedance. | - Phase angle $\varphi = 10°$: Nearly all of the impedance is given by the resistance and therefore the real part of the impedance. The instantaneous voltage is nearly in phase with the current. The instantaneous power is almost always larger than zero. The average power with $17.47~\rm mW$ is about the same as for an ohmic impedance. | ||
- | - Phase angle $\varphi = 60°$: It is clearly visible, that instantaneous voltage and current are out of phase. The instantaneous power is often lower than zero. The ohmic resistor has $500\Omega = {{1}\over{2}}|Z|$, | + | - Phase angle $\varphi = 60°$: It is clearly visible, that instantaneous voltage and current are out of phase. The instantaneous power is often lower than zero. The ohmic resistor has $500 ~\rm \Omega = {{1}\over{2}}|Z|$, |
- | - Phase angle $\varphi = 84.28°$: The phase angle is calculated in such a way, that the resistance is only 10% of the amplitude of the impedance $|Z|$. In this case load is nearly pure inductive. The instantaneous power is consequently almost half of the time lower than zero. The average power here also only $10%$ of the power for an pure ohmic impedance. | + | - Phase angle $\varphi = 84.28°$: The phase angle is calculated in such a way, that the resistance is only 10% of the amplitude of the impedance $|Z|$. In this case, the load is nearly pure inductive. The instantaneous power is consequently almost half of the time lower than zero. The average power here is also only $10%$ of the power for a pure ohmic impedance. |
< | < | ||
- | The next simulation enables to play around with the phase angle of an impedance. The circuit on the left side is a bit harder to understand, but consist | + | The next simulation enables |
+ | The circuit on the left side is a bit harder to understand but consists | ||
+ | All of these components are parameterizable in such a way that the phase angle can be manipulated by the slider on the right side. \\ In the middle part reflects the time course of: | ||
* The instantaneous power $p$ of the **<fc # | * The instantaneous power $p$ of the **<fc # | ||
* The instantaneous **<fc # | * The instantaneous **<fc # | ||
- | On the right-hand side the impedance Phasor is shown (lower diagram). The upper diagram depicts the $u$-$i$-diagram, | + | On the right-hand side, the impedance Phasor is shown (lower diagram). The upper diagram depicts the $u$-$i$-diagram, |
- | The folllowing | + | The following |
- How does the amplitude of the active and reactive instantaneous power change, when the phase angle is changed between $-90°...+90°$? | - How does the amplitude of the active and reactive instantaneous power change, when the phase angle is changed between $-90°...+90°$? | ||
Zeile 257: | Zeile 259: | ||
)) | )) | ||
- | Also the last simulation shows the relation between the phase angle (here: $\alpha$) and instantaneous values, like power, voltage and current. | + | Also, the last simulation shows the relation between the phase angle (here: $\alpha$) and instantaneous values, like power, voltage, and current. |
< | < | ||
Zeile 267: | Zeile 269: | ||
=== Power Factor Correction === | === Power Factor Correction === | ||
- | Cables and components have to conduct the sum of active and reactive | + | Cables and components have to conduct the sum of active and reactive |
<callout icon=" | <callout icon=" | ||
- | \begin{align*} pf &= cos \varphi \\ &= {{P}\over{|\underline{S}|}} \end{align*} | + | \begin{align*} pf & |
The power factor shows how much real power one gets out of the needed apparent power. </ | The power factor shows how much real power one gets out of the needed apparent power. </ | ||
- | How does the power factor show the problematic effects? For this one can investigate situation of a ohmic-inductive load $\underline{Z}_L$ which is connected to a voltage $\underline{U}_0$ source with a wire $R_{wire}$. This circuit is shown in <imgref imageNo03> | + | How does the power factor show the problematic effects? For this one can investigate |
< | < | ||
- | The usable output power is $P_L = U_L \cdot I \cdot cos \varphi$. Based on this, the current $\underline{I}$ is: | + | The usable output power is $P_L = U_{\rm L} \cdot I \cdot \cos \varphi$. Based on this, the current $\underline{I}$ is: |
- | \begin{align*} I = {{P_L}\over{U_L \cdot cos \varphi}} \end{align*} | + | \begin{align*} I = {{P_L}\over{U_{\rm L} \cdot \cos \varphi}} \end{align*} |
The power loss of the wire $P_{wire}$ is therefore: | The power loss of the wire $P_{wire}$ is therefore: | ||
- | \begin{align*} P_{wire} &= R_{wire} \cdot I^2 \\ &= R_{wire} \cdot {{P_L^2}\over{U_L^2 \cdot cos^2 \varphi}} \end{align*} | + | \begin{align*} |
+ | P_{\rm wire} &= R_{\rm wire} \cdot I^2 \\ | ||
+ | &= R_{\rm wire} \cdot {{P_L^2}\over{U_{\rm L}^2 \cdot \cos^2 \varphi}} | ||
+ | \end{align*} | ||
- | This means: As smaller the power factor $cos \varphi$, as more power losses $P_{wire}$ will be generated. More power losses $P_{wire}$ | + | This means: As smaller, the power factor $\cos \varphi$, as more power losses $P_{\rm wire}$ will be generated. More power losses $P_{\rm wire}$ |
- | Alternatively, | + | Alternatively, |
< | < | ||
- | Another explanation of power factor can be seen here: | + | Another explanation of the power factor can be seen here: |
{{youtube> | {{youtube> | ||
Zeile 303: | Zeile 308: | ||
===== 7.2 Polyphase Networks ===== | ===== 7.2 Polyphase Networks ===== | ||
- | In order to transfer power over long distances alternating current | + | To transfer power over long distances alternating current |
< | < | ||
- | In the following, the way to polyphase networks and explicitely | + | In the following, the way to polyphase networks and explicitly |
==== 7.2.1 Technical terms of the Polyphase Networks ==== | ==== 7.2.1 Technical terms of the Polyphase Networks ==== | ||
Zeile 315: | Zeile 320: | ||
Various general technical terms in the polyphase system (in German: Mehrphasensystem) will now be briefly discussed. | Various general technical terms in the polyphase system (in German: Mehrphasensystem) will now be briefly discussed. | ||
- | - A **$m$-phase system** | + | - A **$m$-phase system** |
- | - An $m$-phase system is **symmetrical** | + | The voltages are generated by a homogenous magnetic field containing $m$ rotating windings, which are arranged with a fixed offset to each other (see <imgref imageNo04> |
- | - The windings can be concatenated (=linked) in different ways. The most importend | + | < |
- | - All windings are independently connected to a load. This phase system is called **non-interlinked** | + | </ |
- | - All windings are connected to each other, then the phase system is called **interlinked**. \\ \\ <WRAP outdent> | + | - An $m$-phase system is **symmetrical** |
+ | Thus, the voltage phasors $\underline{U}_1 ... \underline{U}_m$ form a symmetrical star. \\ | ||
+ | Example: A 3-phase system is symmetrical for $\varphi = 360°/3 = 120°$ | ||
+ | $\underline{U}_1 = \sqrt{2} \cdot U \cdot {\rm e} ^{{\rm j}(\omega t + 0°)}$, | ||
+ | $\underline{U}_2 = \sqrt{2} \cdot U \cdot {\rm e} ^{{\rm j}(\omega t - 120°)}$, | ||
+ | $\underline{U}_3 = \sqrt{2} \cdot U \cdot {\rm e} ^{{\rm j}(\omega t - 240°)}$ \\ | ||
+ | < | ||
+ | </ | ||
+ | - The windings can be concatenated (=linked) in different ways. The most important | ||
+ | - All windings are independently connected to a load. This phase system is called **non-interlinked** | ||
+ | - All windings are connected to each other, then the phase system is called **interlinked**. | ||
+ | With interlinking, | ||
+ | The two simulations in <imgref pic20> show a non-interlinked and an interlinked circuit with generator and load in star shape.</ | ||
+ | < | ||
- | </ | + | </ |
- | + | ||
- | - The instantaneous power $p_i(t)$ of a winding $i$ is variable in time. For the instantaneous power $p(t)$ of the $m$-phase system one has to consider all single instantaneous powers of the windings. When this instantaneous power $p(t)$ does not change with time, the polyphase system is called **balanced**. \\ If a balanced load is used, then polyphase systems are balanced with $m\geq3$. \\ \\ For $m\geq3$ and symmetrical load, the following is obtained for the instantaneous power: \\ \\ $\quad \quad p = m \cdot U \cdot I \cdot cos\varphi = P$ \\ < | + | |
+ | - The instantaneous power $p_i(t)$ of a winding $i$ is variable in time. For the instantaneous power $p(t)$ of the $m$-phase system one has to consider all single instantaneous powers of the windings. When this instantaneous power $p(t)$ does not change with time, the polyphase system is called **balanced**. < | ||
+ | If a balanced load is used, then polyphase systems are balanced with $m\geq3$. \\ \\ | ||
+ | For $m\geq3$ and symmetrical load, the following is obtained for the instantaneous power: \\ \\ | ||
+ | $\quad \quad p = m \cdot U \cdot I \cdot \cos\varphi = P$ \\ | ||
+ | < | ||
+ | </ | ||
- | The following simulation shows the power in the different phases of a symmetrical and balanced system. The instantaneous power of each phase is a non-negative | + | The following simulation shows the power in the different phases of a symmetrical and balanced system. The instantaneous power of each phase is a non-negative |
< | < | ||
Balanced polyphase networks have the lowest wiring costs. | Balanced polyphase networks have the lowest wiring costs. | ||
- | Polyphase networks are also possible in ring interlinking (also called ring connection, see next simulation). | + | The structure of a polyphase network can also represent a ring interlinking (also called ring connection, see next simulation). |
- | The often used (and also here used) term of three-phase current or alternating current | + | The often used (and also here used) term of three-phase current or alternating current |
< | < | ||
Zeile 341: | Zeile 363: | ||
==== 7.2.2 Three-Phase System ==== | ==== 7.2.2 Three-Phase System ==== | ||
- | The most commonly used polyphase system is the three-phase system. The three-phase system has advantages over a DC system or single phase AC system: | + | See also: [[https:// |
+ | |||
+ | The most commonly used polyphase system is the three-phase system. The three-phase system has advantages over a DC system or single-phase AC system: | ||
* Simple three-phase machines can be used for generation. | * Simple three-phase machines can be used for generation. | ||
- | * Rotary field machines (e.g. synchronous motors or induction motors) can also be simply connected to as load, converting the electrical energy into mechanical energy. | + | * Rotary field machines (e.g. synchronous motors or induction motors) can also be simply connected to a load, converting the electrical energy into mechanical energy. |
* When a symmetrical load can be assumed, the energy flow is constant in time. | * When a symmetrical load can be assumed, the energy flow is constant in time. | ||
* For energy transport, the voltage can be up-transformed and thus the AC current, as well as the associated power loss (= waste heat), can be reduced. | * For energy transport, the voltage can be up-transformed and thus the AC current, as well as the associated power loss (= waste heat), can be reduced. | ||
- | In order to understand the three-phase system, we have to investigate the different voltages and currents in this system. | + | To understand the three-phase system, we have to investigate the different voltages and currents in this system. |
For this the three-phase system will be separated into three parts: | For this the three-phase system will be separated into three parts: | ||
Zeile 360: | Zeile 384: | ||
=== Three-phase generator === | === Three-phase generator === | ||
- | * The windings of a three-phase generator are called $U$, $V$, $W$; the winding connections are correspondingly called: $U1$, $U2$, $V1$, $V2$, $W1$, $W2$ (see <imgref imageNo10> | + | * The windings of a three-phase generator are called $\rm U$, $\rm V$, $\rm W$; the winding connections are correspondingly called: $\rm U1$, $\rm U2$, $\rm V1$, $\rm V2$, $\rm W1$, $\rm W2$ (see <imgref imageNo10> |
- | * The typical **winding connections** | + | < |
- | * The **phase voltages** | + | * The typical **winding connections** |
+ | < | ||
+ | * The **phase voltages** | ||
+ | \begin{align*} | ||
+ | \color{RoyalBlue }{u_{\rm U}} & \color{RoyalBlue }{= \sqrt{2} U \cdot \cos(\omega t + \alpha - 0 | ||
+ | \color{Green | ||
+ | \color{DarkOrchid}{u_{\rm W}} & \color{DarkOrchid}{= \sqrt{2} U \cdot \cos(\omega t + \alpha - {{4}\over{3}}\pi)} \\ | ||
+ | \color{RoyalBlue }{u_{\rm U}} + \color{Green}{u_{\rm V}} + \color{DarkOrchid}{u_{\rm W}} & = 0 \end{align*}</ | ||
* The **direction of rotation** | * The **direction of rotation** | ||
- | * The three-phase generator with clockwise direction (CW, mathematically negative orientation) shows the phase sequence: $u_U$, $u_V$, $u_W$, Therefore, $u_V$ is $120°$ lagging to $u_U$. \\ This is the common setup for generators. | + | * The three-phase generator with clockwise direction (CW, mathematically negative orientation) shows the phase sequence: $u_{\rm U}$, $u_{\rm V}$, $u_{\rm W}$, Therefore, $u_{\rm V}$ is $120°$ lagging to $u_{\rm U}$. \\ This is the common setup for generators. |
- | * The three-phase generator with counter-clockwise direction (CCW, mathematically positive orientation) shows the phase sequence: $u_U$, $u_W$, $u_V$, Therefore, $u_V$ is $120°$ ahead of $u_U$. | + | * The three-phase generator with counter-clockwise direction (CCW, mathematically positive orientation) shows the phase sequence: $u_{\rm U}$, $u_{\rm W}$, $u_{\rm V}$, Therefore, $u_{\rm V}$ is $120°$ ahead of $u_{\rm U}$. |
- | * The direction can be changed simply by switching two of the three phases (it does not need to be $u_V$ with $u_W$!). \\ < | + | * The direction can be changed simply by switching two of the three phases (it does not need to be $u_{\rm V}$ with $u_{\rm W}$!). \\ < |
=== Line Conductors === | === Line Conductors === | ||
- | The lines connected to the generator / load terminals $U1$, $V1$, $W1$ are often called $L1$, $L2$, $L3$ ($L$ for **L**ine or **L**ive = active) outside of the generator or load. \\ It is important to distinguish between the different types of voltages and currents, which depent | + | The lines connected to the generator / load terminals $\rm U1$, $\rm V1$, $\rm W1$ are often called $\rm L1$, $\rm L2$, $\rm L3$ ($\rm L$ for **L**ine or **L**ive = active) outside of the generator or load. \\ It is important to distinguish between the different types of voltages and currents, which depend |
- | * **String voltages/ | + | * **String voltages/ |
- | * **Phase voltages/ | + | The string voltages/ |
- | * **Star voltages** $U_Y$ (alternatively: | + | These voltages are shown in the previous images as $u_\rm U$, $u_\rm V$, and $u_\rm W$. |
+ | </ | ||
+ | * **Phase voltages/ | ||
+ | The phase voltages are measured differentially between the lines. The phase voltages are therefore given as $U_{12}$, $U_{23}$, $U_{31}$. \\ | ||
+ | The phase currents are given as the currents through a single line: $I_1$, $I_2$, $I_3$. \\ | ||
+ | The potential of the star point is called **neutral** $\rm N$ </ | ||
+ | * **Star-voltages** $U_\rm Y$ (alternatively: | ||
< | < | ||
- | The setup with $L1$, $L2$, $L3$ and $N$ is called **three-phase four-wire system**. When only a Delta connection without neutral is connected it is called a **three-phase three-wire system**. The star and phase voltages are given by | + | The setup with $\rm L1$, $\rm L2$, $\rm L3$ and $\rm N$ is called **three-phase four-wire system**. When only a Delta connection without neutral is connected it is called a **three-phase three-wire system**. The star and phase voltages are given by |
{{drawio> | {{drawio> | ||
- | A phasor diagram can be constructed based on the given voltages. Be aware, that commonly the phasor is shown as vector (i.e. as an arrow starting from the origin or zero). In contrast to this, the voltage in a circuit is shown as a arrow pointing towards the zero potential. | + | A phasor diagram can be constructed based on the given voltages. Be aware, that commonly the phasor is shown as a vector (i.e. as an arrow starting from the origin or zero). In contrast to this, the voltage in a circuit is shown as an arrow pointing towards the zero potential. |
- | < | + | < |
For the yellow triangle in <imgref imageNo14> | For the yellow triangle in <imgref imageNo14> | ||
- | \begin{align*} {{1}\over{2}} U_{31} &= U_{1N} \cdot cos 30° \\ | + | \begin{align*} |
- | &= U_{1N} \cdot {{\sqrt{3}}\over{2}} \\ \\ U_{31} &= \sqrt{3} \cdot U_{1N} \end{align*} | + | {{1}\over{2}} U_{31} &= U_{\rm 1N} |
- | \begin{align*} \boxed{U_{L} = \sqrt{3} \cdot U_Y } \end{align*} | + | |
+ | | ||
+ | \end{align*} | ||
+ | \begin{align*} \boxed{U_{L} = \sqrt{3} \cdot U_\rm Y } \end{align*} | ||
- | The phase voltages are $\sqrt{3}$ larger than the star voltage. In Europe the low-voltage network of electric power distribution is defined by the RMS value of a star voltage of $400V$. \\ | + | The phase voltages are $\sqrt{3}$ larger than the star-voltage. In Europe, the low-voltage network of electric power distribution is defined by the RMS value of a star-voltage of $400~\rm V$. \\ |
- | The phase voltage is therefore ${{1}\over{\sqrt{3}}} \cdot 400V \approx | + | The phase voltage is therefore ${{1}\over{\sqrt{3}}} \cdot 400~\rm V \approx |
< | < | ||
Zeile 402: | Zeile 442: | ||
< | < | ||
- | In order to understand the load in three-phase systems, the power at different types of loads are investigated: | + | To understand the load in three-phase systems, the power at different types of loads will be investigated: |
- | * Load in Wye connection with three-phase four-wire system | + | * Load in Wye connection with the three-phase four-wire system |
- | * Load in Wye connection with three-phase three-wire system | + | * Load in Wye connection with the three-phase three-wire system |
* Load in Delta connection | * Load in Delta connection | ||
Zeile 415: | Zeile 455: | ||
\\ | \\ | ||
- | The four-wire wiring is one of the most common | + | The four-wire wiring is one of the most common |
- | For the four-wire system, the four pins $L1$, $L2$, $L3$ and the neutral line $N$ are used for power transfer. | + | For the four-wire system, the four pins $\rm L1$, $\rm L2$, $\rm L3$, and the neutral line $\rm N$ are used for power transfer. |
- | This is for example applied for loads in star configuration, | + | This is for example applied for loads in a star configuration, |
<panel type=" | <panel type=" | ||
- | The example in the following simulation shows a $50Hz$ / $231V$ three-phase __four-wire system__ with unbalanced load in Wye connection, with the given impedances. | + | The example in the following simulation shows a $50 ~\rm Hz$ / $231 ~\rm V$ three-phase __four-wire system__ with an unbalanced load in the Wye connection, with the given impedances. |
- | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_N$ | + | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_\rm N$ |
- | * Calculate the true power, apparent power and reactive power. | + | * Calculate the true power, apparent power, and reactive power. |
</ | </ | ||
Zeile 434: | Zeile 474: | ||
The following " | The following " | ||
- | - **Voltages**: | + | - **Voltages**: |
- | - **Currents**: | + | - **Currents**: |
- | - The **true power** $P_x$ for each string is given by the apparent power $S_x$ of the string times the indivitual | + | The phase currents are given by the phase impedances and the star-voltages: \\ |
- | - For the **apparent power** one could think of $S_x$ for each string is given by the string voltage and the current through the string $S_x = U_S \cdot I_x$. However, this misses out the apparent power of the neutral line! \\ Even when considering all four lines a simple addition of all the apparent powers per phase would be problematic: | + | \begin{align*} |
+ | \underline{I}_1 = {{\underline{U}_{1 \rm N}}\over{\underline{Z}_1^\phantom{O}}} \quad , \quad | ||
+ | \underline{I}_2 = {{\underline{U}_{2 \rm N}}\over{\underline{Z}_2^\phantom{O}}} \quad , \quad | ||
+ | \underline{I}_3 = {{\underline{U}_{3 \rm N}}\over{\underline{Z}_3^\phantom{O}}} \\ \end{align*}</ | ||
+ | - The **true power** $P_x$ for each string is given by the apparent power $S_x$ of the string times the individual | ||
+ | \begin{align*} P_x &= S_x \cdot \cos \varphi_x = U_{\rm S} \cdot I_x \cdot \cos \varphi_x \end{align*} \\ | ||
+ | Therefore, the resulting true power for the full load is: \\ | ||
+ | \begin{align*} P = U_{\rm S} \cdot ( I_1 \cdot \cos \varphi_1 + I_2 \cdot \cos \varphi_2 + I_3 \cdot \cos \varphi_3) \end{align*} \\ | ||
+ | The angle $\varphi$ here is given by $\varphi = \varphi_u - \varphi_i$, and hence: \\ | ||
+ | \begin{align*} P = U_{\rm S} \cdot \left( I_1 \cdot \cos (\varphi_{u, | ||
+ | - For the **apparent power** one could think of $S_x$ for each string is given by the string voltage and the current through the string $S_x = U_{\rm S} \cdot I_x$. However, this misses out on the apparent power of the neutral line! < | ||
+ | Even when considering all four lines a simple addition of all the apparent powers per phase would be problematic: | ||
+ | By DIN 40110 the **collective apparent power ** $S_\Sigma$ can be assumed as \\ | ||
+ | \begin{align*} | ||
+ | S_\Sigma &= \sqrt{\sum_x U_{x \rm N}^2+ \underbrace{U_{\rm N}^2}_{=0}} &\cdot & \sqrt{\sum_x I_{x}^2+ | ||
+ | &= \sqrt{3} \cdot U_{\rm S} & \cdot & \sqrt{I_1^2 + I_2^2 + I_2^3 + I_{\rm N}^2} \\ \end{align*}</ | ||
- Given the collective apparent power the **collective reactive power** $Q_\Sigma$ ist given by \\ \begin{align*} | - Given the collective apparent power the **collective reactive power** $Q_\Sigma$ ist given by \\ \begin{align*} | ||
</ | </ | ||
<panel type=" | <panel type=" | ||
- | In the example this leads to: | + | In the example, this leads to: |
- | - The star voltages and the phase voltages are given as \begin{align*} | + | - The star-voltages and the phase voltages are given as < |
- | - Based on the star voltages and the given impedances the phase currents are: \\ \begin{align*} \underline{I}_1 &= {{\underline{U}_{1N}}\over{\underline{Z}_1}} &= &{{231V}\over{10\Omega + j \cdot 2\pi\cdot | + | \begin{align*} |
- | - The true power is calculated by: \\ \begin{align*} P = 231V \cdot \big( 23.09 A \cdot cos (0° - (-1.8°))+ 7.17A \cdot cos (-120° - (-38.9°)) + 11.55 A \cdot cos (-240° - (-240°)\big) = 8.26 kW \end{align*} | + | U_{\rm S}=& |
- | - The collective apparent power is: \\ \begin{align*} S_\Sigma & | + | U_{\rm L}=\sqrt{3} \cdot 231 ~\rm V = & 400 ~\rm V = U_{12} = U_{23} = U_{31} |
- | - The collective reactive power is: \\ \begin{align*} Q_\Sigma & | + | \end{align*} \\ |
+ | The phasors of the star-voltages are given as: \\ {{drawio> | ||
+ | - Based on the star-voltages and the given impedances the phase currents are: < | ||
+ | \begin{align*} | ||
+ | \underline{I}_1 &= {{\underline{U}_{\rm 1N}}\over{\underline{Z}_1}} | ||
+ | | ||
+ | | ||
+ | \underline{I}_2 &= {{\underline{U}_{\rm 2N}}\over{\underline{Z}_2}} | ||
+ | | ||
+ | | ||
+ | \underline{I}_3 &= {{\underline{U}_{\rm 3N}}\over{\underline{Z}_3}} | ||
+ | | ||
+ | | ||
+ | \underline{I}_{\rm N} | ||
+ | | ||
+ | \end{align*} | ||
+ | - The true power is calculated by: < | ||
+ | \begin{align*} | ||
+ | P = 231 {~\rm V} \cdot \big( 23.09 {~\rm A} \cdot \cos (0° - (-1.8°))+ 7.17 {~\rm A} \cdot \cos (-120° - (-38.9°)) + 11.55 {~\rm A} \cdot \cos (-240° - (-240°)\big) | ||
+ | | ||
+ | \end{align*} | ||
+ | - The collective apparent power is: < | ||
+ | \begin{align*} | ||
+ | S_\Sigma & | ||
+ | | ||
+ | \end{align*}</ | ||
+ | - The collective reactive power is: < | ||
+ | \begin{align*} | ||
+ | Q_\Sigma & | ||
+ | | ||
+ | \end{align*}</ | ||
< | < | ||
Zeile 455: | Zeile 540: | ||
\\ | \\ | ||
- | In case of a symmetric load the situation and the formulas get much simplier: | + | In the case of a symmetric load, the situation and the formulas get much simpler: |
- | - The **phase voltages** $U_L$ and star voltages $U_Y = U_S$ are equal to the asymmetric load: $U_L = \sqrt{3}\cdot | + | - The **phase-voltages** $U_\rm L$ and star-voltages $U_{\rm Y} = U_{\rm S}$ are equal to the asymmetric load: $U_{\rm L} = \sqrt{3}\cdot |
- | - For equal impedances the absolute value of all **phase currents** $I_x$ are the same: $|\underline{I}_x|= |\underline{I}_S| = \left|{{\underline{U}_S}\over{\underline{Z}_S^\phantom{O}}} \right|$. Since the phase currents the same absolute value and have the same $\varphi$, they will add up to zero. Therefore there is no current on neutral line: $I_N =0$ | + | - For equal impedances the absolute value of all **phase currents** $I_x$ are the same: $|\underline{I}_x|= |\underline{I}_{\rm S}| = \left|{{\underline{U}_{\rm S}}\over{\underline{Z}_{\rm S}^\phantom{O}}} \right|$. |
- | - The **true power** is three times the true power of a single phase: $P = 3 \cdot U_S I_S \cdot cos \varphi$. Based on the line voltages $U_L$, the formula is $P = \sqrt{3} \cdot U_L I_S \cdot cos \varphi$ | + | - The **true power** is three times the true power of a single phase: $P = 3 \cdot U_{\rm S} I_{\rm S} \cdot \cos \varphi$. |
- | - The **(collective) apparent power** - given the formula above - is: $S_\Sigma = \sqrt{3}\cdot | + | - The **(collective) apparent power** - given the formula above - is: $S_\Sigma = \sqrt{3}\cdot |
- | - The **reactive power** leads to: $Q_\Sigma = \sqrt{S_\Sigma^2 - P^2} = 3 \cdot U_S I_S \cdot sin (\varphi)$. | + | - The **reactive power** leads to: $Q_\Sigma = \sqrt{S_\Sigma^2 - P^2} = 3 \cdot U_{\rm S} I_{\rm S} \cdot \sin (\varphi)$. |
</ | </ | ||
Zeile 466: | Zeile 551: | ||
=== Load in Wye connection with (Three-Wire System) === | === Load in Wye connection with (Three-Wire System) === | ||
\\ | \\ | ||
- | The three-wire system is used the four pins $L1$, $L2$, $L3$ and the neutral line $N$ are used for power transfer. | + | The three-wire system is used the four pins $\rm L1$, $\rm L2$, $\rm L3$, and the neutral line $\rm N$ is used for power transfer. |
- | Sometimes the load do not provide a neutral connection, even when it is in Wye connection - the star point can for example only be provided for measurement with a thin cable. | + | Sometimes the load does not provide a neutral connection, even when it is in a Wye connection - the star point can for example only be provided for measurement with a thin cable. |
- | Additionally, | + | Additionally, |
- | In the case of three-wire system, only the potentials $L1$, $L2$ and $L3$ are provided and used for power transfer. | + | In the case of a three-wire system, only the potentials $\rm L1$, $\rm L2$, and $\rm L3$ are provided and used for power transfer. |
<panel type=" | <panel type=" | ||
- | The example in the following simulation shows a $50Hz$ / $231V$ three-phase __three-wire system__ with unbalanced load in Wye connection, with the given impedances. | + | The example in the following simulation shows a $50 ~\rm Hz$ / $231 ~\rm V$ three-phase __three-wire system__ with an unbalanced load in the Wye connection, with the given impedances. |
- | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_N$ | + | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_\rm N$ |
- | * Calculate the true power, apparent power and reactive power. | + | * Calculate the true power, apparent power, and reactive power. |
The following simulation has the same impedances in the load, but the load does not provide a neutral connection. | The following simulation has the same impedances in the load, but the load does not provide a neutral connection. | ||
Zeile 487: | Zeile 572: | ||
The simulation differs in the following: | The simulation differs in the following: | ||
- | * The network star voltages $\underline{U}_{1N}$, | + | * The network star-voltages $\underline{U}_{\rm 1N}$, $\underline{U}_{\rm 2N}$, $\underline{U}_{\rm 3N}$ related to the neutral potential $\underline{U}_\rm N$, and the load string voltages (= load star-voltages) $\underline{U}_{\rm 1S}$, $\underline{U}_{\rm 2S}$, $\underline{U}_{\rm 3S}$ related to the star potential of the load are separated. |
- | * The star point voltage $\underline{U}_{SN}$ from the potential of node $S$tar point to $N$eutral is shown. | + | * The star point voltage $\underline{U}_{\rm SN}$ from the potential of node $\rm S$tar point to $\rm N$eutral is shown. |
- | * With the switch $S$, the star potential can short-circuited to the neutral potential; so set $\underline{U}_{SN}=0$. This enables a comparison with the previous four-wire three-phase system. | + | * With the switch $S$, the star potential can short-circuited to the neutral potential; so set $\underline{U}_{\rm SN}=0$. This enables a comparison with the previous four-wire three-phase system. |
- | Also here the " | + | Also here, the " |
- | - **Voltages**: | + | - **Voltages**: |
- | - **Currents**: | + | \begin{align*} |
- | - Also here, the **true power** $P_x$ for each string is given by: \\ \begin{align*} P_x &= S_x \cdot cos \varphi_x = U_S \cdot I_x \cdot cos \varphi_x \end{align*} \\ Also here, the resulting true power for the full load is (with $U_S$ as the RMS value of the network star voltage): \\ \begin{align*} P & | + | \underline{U}_{\rm 1S} &= \underline{U}_{\rm 1N} - \underline{U}_{\rm SN} \\ |
- | - Since the three-wire system has no current out of the network star point, the **apparent power** $\underline{S}_x$ for each string is given by the string voltage and the current through the string $\underline{S}_x = \underline{U}_{xS} \cdot \underline{I}_x^*$. This leads to an overall apparent power $\underline{S}$ of \\ \begin{align*} \underline{S} &= P + j\cdot Q = \sum_x \underline{S}_x = \sum_x | + | \underline{U}_{\rm 2S} &= \underline{U}_{\rm 2N} - \underline{U}_{\rm SN} \\ |
- | - The abolute **reactive power** $Q$ can be calulated by the apparent power: | + | \underline{U}_{\rm 3S} &= \underline{U}_{\rm 3N} - \underline{U}_{\rm SN} \\ |
+ | \end{align*}</ | ||
+ | - **Currents**: | ||
+ | \begin{align*} | ||
+ | \underline{I}_1 = {{\underline{U}_{\rm 1S}}\over{\underline{Z}_1^\phantom{O}}} \quad , \quad \underline{I}_2 | ||
+ | | ||
+ | | ||
+ | \end{align*} \\ | ||
+ | To get $\underline{U}_{\rm SN}$, one has to combine the individual formulas for $\underline{I}_x$, | ||
+ | \begin{align*} | ||
+ | \underline{U}_{\rm SN} = {{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} | ||
+ | \cdot \normalsize{\underline{U}_{x \rm N}} \right) }\over{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} \right) }} | ||
+ | \end{align*}</ | ||
+ | - Also here, the **true power** $P_x$ for each string is given by: < | ||
+ | \begin{align*} | ||
+ | P_x &= S_x \cdot \cos \varphi_x = U_{\rm S} \cdot I_x \cdot \cos \varphi_x | ||
+ | \end{align*} \\ | ||
+ | Also here, the resulting true power for the full load is (with $U_{\rm S}$ as the RMS value of the network star-voltage): \\ | ||
+ | \begin{align*} | ||
+ | P & | ||
+ | | ||
+ | \end{align*}</ | ||
+ | - Since the three-wire system has no current out of the network star point, the **apparent power** $\underline{S}_x$ for each string is given by the string voltage and the current through the string $\underline{S}_x = \underline{U}_{x \rm S} \cdot \underline{I}_x^*$. This leads to an overall apparent power $\underline{S}$ of < | ||
+ | \begin{align*} | ||
+ | \underline{S} &= P + {\rm j}\cdot Q = \sum_x \underline{S}_x = \sum_x | ||
+ | In order to simplify the calculation, | ||
+ | \begin{align*} | ||
+ | \underline{S} &= \sum_x | ||
+ | | ||
+ | \end{align*} | ||
+ | Given that $\sum_x \underline{I}_x =0$, it is also true, that $\sum_x \underline{I}_x^* =0$ and so $\underline{I}_3^* = -\underline{I}_1^* - \underline{I}_2^*$. \\ | ||
+ | By this, one can further simplify the calculation for the apparent power down to \\ | ||
+ | \begin{align*} | ||
+ | \underline{S} &= \underline{U}_{13} \cdot \underline{I}_1^* + \underline{U}_{23} \cdot \underline{I}_2^* \\ | ||
+ | | ||
+ | | ||
+ | \end{align*} \\ | ||
+ | For the phase voltages it applies that: $\underline{U}_{12} = - \underline{U}_{21}$, | ||
+ | \begin{align*} | ||
+ | S_\Sigma &= \sqrt{ {{1}\over{2}} \cdot (U_{12}^2 + U_{23}^2 + U_{31}^2) } \cdot \sqrt{\sum_x I_x^2} &= \sqrt{3} | ||
+ | \end{align*} | ||
+ | - The abolute **reactive power** $Q$ can be calulated by the apparent power: | ||
+ | \begin{align*} | ||
+ | the **collective reactive power** $Q_\Sigma$ is given by the collective apparent power: | ||
+ | \begin{align*} Q &= \sqrt{S_\Sigma^2 - P^2} \end{align*} | ||
</ | </ | ||
<panel type=" | <panel type=" | ||
- | In the example this leads to: | + | In the example, this leads to: |
- | - The phase voltages are given as \begin{align*} | + | - The phase voltages are given as \begin{align*} |
- | - Based on the star voltages of the network and the given impedances the star voltage $\underline{U}_{SN}$ of the load can be calculated with : \\ \begin{align*} \underline{U}_{SN} = {{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} \cdot \normalsize{\underline{U}_{xN}} \right) }\over{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} \right) }} \end{align*} \\ Once investigating the numerator $\sum_x \big( {{1}\over{\underline{Z}_x^\phantom{O}}} \cdot \underline{U}_{xN} \big)$, once can see, that it just equals the sum of the phase currents of the four-wire system. So, the numerator equals the (in the three-wire system: fictive) current on the neutral line. \\ The numerator is therefore: $22.88A + j \cdot 4.77A$ (see calculation for the four-wire system). \\ The denominator is: \\ \begin{align*} \sum_x | + | - Based on the star-voltages of the network and the given impedances the star-voltage $\underline{U}_{\rm SN}$ of the load can be calculated with: < |
- | - The true power is calculated by: \\ \begin{align*} P = 231V \cdot \big( 8.24 A \cdot cos (0° - (-4.9°))+ 10.36A \cdot cos (-120° - (-61.2°)) + 16.44 A \cdot cos (-240° - (+143.5°)\big) = 6.62 kW \end{align*} | + | \begin{align*} |
- | - The apparent power $\underline{S}$ is: \\ \begin{align*} \underline{S} &= \underline{U}_{13} \cdot \underline{I}_1^* + \underline{U}_{23} \cdot \underline{I}_2^* & | + | \underline{U}_{\rm SN} = {{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} \cdot \normalsize{\underline{U}_{x \rm N}} \right) } |
- | - The reactive power is: \begin{align*} Q &= -j \cdot (\underline{S} - P) = -3.40kVAr | + | \over{\sum_x \left( \Large{{{1}\over{\underline{Z}_x^\phantom{O}}}} \right) }} |
+ | \end{align*} \\ | ||
+ | Once investigating the numerator $\sum_x \big( {{1}\over{\underline{Z}_x^\phantom{O}}} \cdot \underline{U}_{x \rm N} \big)$, once can see, that it just equals the sum of the phase currents of the four-wire system. So, the numerator equals the (in the three-wire system: fictive) current on the neutral line. \\ | ||
+ | The numerator is therefore: $22.88 {~\rm A} + {\rm j} \cdot 4.77 {~\rm A}$ (see calculation for the four-wire system). \\ | ||
+ | The denominator is: \\ | ||
+ | \begin{align*} | ||
+ | \sum_x | ||
+ | | ||
+ | | ||
+ | | ||
+ | The star-voltage $\underline{U}_{\rm SN}$ of the load is: | ||
+ | \begin{align*} | ||
+ | \underline{U}_{\rm SN} &= {{22.88 {~\rm A} + {\rm j} \cdot 4.77 {~\rm A}}\over{0.1547 | ||
+ | &= 148.7 {~\rm V} + {\rm j} \cdot 4.41 {~\rm V} \end{align*} \\ | ||
+ | Given this star-voltage $\underline{U}_{\rm SN}$ of the load, the phase currents are: \\ | ||
+ | \begin{align*} | ||
+ | \underline{I}_1 &= {{\underline{U}_{\rm 1N} - \underline{U}_{\rm SN}}\over{\underline{Z}_1^\phantom{O}}} | ||
+ | | ||
+ | | ||
+ | \underline{I}_2 &= {{\underline{U}_{\rm 2N} - \underline{U}_{\rm SN}}\over{\underline{Z}_2^\phantom{O}}} | ||
+ | | ||
+ | | ||
+ | \underline{I}_3 &= {{\underline{U}_{\rm 3N} - \underline{U}_{\rm SN}}\over{\underline{Z}_3^\phantom{O}}} | ||
+ | | ||
+ | | ||
+ | - The true power is calculated by: \\ \begin{align*} P = 231{~\rm V} \cdot \big( 8.24 {~\rm A} \cdot \cos (0° - (-4.9°))+ 10.36{~\rm A} \cdot \cos (-120° - (-61.2°)) + 16.44 {~\rm A} \cdot \cos (-240° - (+143.5°)\big) = 6.62 {~\rm kW} \end{align*} | ||
+ | - The apparent power $\underline{S}$ is: < | ||
+ | \begin{align*} | ||
+ | \underline{S} &= \underline{U}_{13} \cdot \underline{I}_1^* + \underline{U}_{23} \cdot \underline{I}_2^* | ||
+ | & | ||
+ | &= 6.62 {~\rm kW} - {\rm j} \cdot 3.40 {~\rm kVAr} \\ | ||
+ | &= \underline{U}_{12} \cdot \underline{I}_1^* + \underline{U}_{32} \cdot \underline{I}_3^* | ||
+ | & | ||
+ | | ||
+ | | ||
+ | & | ||
+ | | ||
+ | | ||
+ | \end{align*} | ||
+ | The collective apparent power is: \\ | ||
+ | \begin{align*} | ||
+ | S_\Sigma &= \sqrt{3} | ||
+ | &= \sqrt{3} \cdot 231{~\rm V} \cdot \sqrt{(8.24{~\rm A})^2+(10.36{~\rm A})^2+(16.44A)^2} | ||
+ | | ||
+ | - The reactive power is: < | ||
+ | \begin{align*} Q &= -{\rm j} \cdot (\underline{S} - P) = -3.40{~\rm kVAr} \\ | ||
+ | \end{align*} \\ | ||
+ | The collective reactive power is: \\ | ||
+ | \begin{align*} Q_\Sigma & | ||
+ | \end{align*} | ||
< | < | ||
Zeile 512: | Zeile 690: | ||
<callout title=" | <callout title=" | ||
\\ | \\ | ||
- | The case of a symmetric load in a three-wire system equals the symmetric load in a four-wire system, since the symmetric four-wire system also does not show a current on the neutral line. | + | The case of a symmetric load in a three-wire system equals the symmetric load in a four-wire system since the symmetric four-wire system also does not show a current on the neutral line. |
</ | </ | ||
Zeile 519: | Zeile 697: | ||
\\ | \\ | ||
The delta connection uses also a three-wire system like the Wye connection without the neutral line. | The delta connection uses also a three-wire system like the Wye connection without the neutral line. | ||
- | Internally, the load is now connected in a triangluar | + | Internally, the load is now connected in a triangular |
- | This setup is for example given for motors, when higher torque is needed. In this connection each string sees $U_L = \sqrt{3}\cdot | + | This setup is for the example given for motors when higher torque is needed. In this connection, each string sees $U_{\rm L} = \sqrt{3}\cdot |
- | In the case of delct connection, also only the potentials $L1$, $L2$ and $L3$ are provided and used for power transfer. | + | In the case of a delta connection, also only the potentials $\rm L1$, $\rm L2$, and $\rm L3$ are provided and used for power transfer. |
<panel type=" | <panel type=" | ||
- | The example in the following simulation shows a $50Hz$ / $231V$ three-phase __three-wire system__ with unbalanced load in delta connection, with the given impedances. | + | The example in the following simulation shows a $50 ~\rm Hz$ / $231 ~\rm V$ three-phase __three-wire system__ with an unbalanced load in delta connection, with the given impedances. |
- | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_N$ | + | * Calculate the phase currents $I_1$, $I_2$, $I_3$, the neutral current $I_\rm N$ |
- | * Calculate the true power, apparent power and reactive power. | + | * Calculate the true power, apparent power, and reactive power. |
The following simulation has the same impedances in the load, but the load does not provide a neutral connection. | The following simulation has the same impedances in the load, but the load does not provide a neutral connection. | ||
Zeile 541: | Zeile 719: | ||
* The strings of the load are now connected to two phases and not to a star point anymore. | * The strings of the load are now connected to two phases and not to a star point anymore. | ||
* The network phase voltages $\underline{U}_{12}$, | * The network phase voltages $\underline{U}_{12}$, | ||
- | * The star point that the voltages toward is is here not relevant, and cannot be connected in any way to the strings. | + | * The star point that the voltages |
Again here the " | Again here the " | ||
- | - **Voltages**: | + | - **Voltages**: |
- | - **Currents**: | + | \begin{align*} |
- | - Also here, the **true power** can be calculated adding up the true power of each phase. The faster way (as shown before) is to add up the (complex) apparent power. | + | \underline{U}_{12} & |
- | - The **apparent power** $\underline{S}_x$ here is again the sum the (complex) apparent power for each string: | + | \underline{U}_{23} & |
- | - The abolute **reactive power** $Q$ can be calulated by the apparent power: | + | \underline{U}_{31} & |
+ | \end{align*}</ | ||
+ | - **Currents**: | ||
+ | \begin{align*} | ||
+ | \underline{I}_{1} = \underline{I}_{12} - \underline{I}_{31} \\ | ||
+ | \underline{I}_{2} = \underline{I}_{23} - \underline{I}_{12} \\ | ||
+ | \underline{I}_{3} = \underline{I}_{31} - \underline{I}_{23} \\ | ||
+ | \end{align*} \\ | ||
+ | The string currents can be calculated by the string voltages and the impedances: \\ | ||
+ | \begin{align*} | ||
+ | \underline{I}_{12} = {{\underline{U}_{12}}\over{\underline{Z}_{12}^\phantom{O}}} \quad , \quad | ||
+ | \underline{I}_{23} = {{\underline{U}_{23}}\over{\underline{Z}_{23}^\phantom{O}}} \quad , \quad | ||
+ | \underline{I}_{31} = {{\underline{U}_{31}}\over{\underline{Z}_{31}^\phantom{O}}} \end{align*} | ||
+ | - Also here, the **true power** can be calculated | ||
+ | - The **apparent power** $\underline{S}_x$ here is again the sum the (complex) apparent power for each string: | ||
+ | \begin{align*} | ||
+ | \underline{S} &= \underline{U}_{12} \cdot \underline{I}_{12}^* | ||
+ | + \underline{U}_{23} \cdot \underline{I}_{23}^* | ||
+ | + \underline{U}_{31} \cdot \underline{I}_{31}^* | ||
+ | \end{align*} | ||
+ | Since $\underline{U}_{12}$, | ||
+ | \begin{align*} | ||
+ | \boxed{ | ||
+ | \underline{S} = P + {\rm j} \cdot Q | ||
+ | | ||
+ | | ||
+ | | ||
+ | \end{align*} \\ | ||
+ | The **collective apparent power** $S_\Sigma$ here is the same as for the three-wire or four-wire connection. \\ | ||
+ | In the Delta connection the phase currents $I_x$ have to be calculated since the formula only applies | ||
+ | \begin{align*} | ||
+ | S_\Sigma &= \sqrt{ {{1}\over{3}} (U_{12}^2 + U_{23}^2 + U_{31}^2) } \cdot \sqrt{\sum_x I_x^2} & | ||
+ | \end{align*} | ||
+ | - The abolute **reactive power** $Q$ can be calulated by the apparent power: | ||
+ | \begin{align*} | ||
+ | the **collective reactive power** $Q_\Sigma$ is given by the collective apparent power: | ||
+ | \begin{align*} Q &= \sqrt{S_\Sigma^2 - P^2} \end{align*} | ||
</ | </ | ||
<panel type=" | <panel type=" | ||
- | In the example this leads to: | + | In the example, this leads to: |
- | - The phase voltages are given as \begin{align*} | + | - The phase voltages are given as < |
- | - Based on the string voltages of the network and the given impedances the string currents $\underline{I}_{12}$, | + | \begin{align*} |
- | - The true power is calculated by: \\ \begin{align*} P = 231V \cdot \big( 53.32 A \cdot cos (0° - (9.6°))- 31.01A \cdot cos (-120° - (-137.8°)) + 31.90 A \cdot cos (-240° - (+158.0°)\big) = 24.77 kW \end{align*} | + | U_{\rm L}=\sqrt{3} \cdot 231 ~\rm V |
- | - The apparent power $\underline{S}$ is: \\ \begin{align*} \underline{S} &= \underline{U}_{13} \cdot \underline{I}_1^* + \underline{U}_{23} \cdot \underline{I}_2^* & | + | = & 400 ~\rm V |
- | - The reactive power is: \begin{align*} Q &= |\underline{S} - P| = -4.41kVAr | + | = U_{12} = U_{23} = U_{31} |
+ | \end{align*} \\ | ||
+ | The phasors of the string voltages of the network are given as \\ | ||
+ | {{drawio> | ||
+ | - Based on the string voltages of the network and the given impedances the string currents $\underline{I}_{12}$, | ||
+ | \begin{align*} | ||
+ | \underline{I}_{12} &=& {{ 400 {~\rm V} \cdot\left(+{{1}\over{2}}\sqrt{3}+{{1}\over{2}} \cdot {\rm j} \right)}\over{ 10~\Omega + {\rm j} \cdot 2\pi\cdot | ||
+ | &=& 35.24 {~\rm A} + {\rm j} \cdot 18.90 {~\rm A} & | ||
+ | \underline{I}_{23} &=& {{400 \cdot {\rm j}}\over{ 5~\Omega + {{1}\over{{\rm j} \cdot 2\pi\cdot | ||
+ | &=& 12.27 {~\rm A} - {\rm j} \cdot 1.93 {~\rm A} &=& 12.42 {~\rm A} \quad &\angle -8.9° \\ | ||
+ | \underline{I}_{31} &=& {{400 {~\rm V} \cdot\left(-{{1}\over{2}}\sqrt{3}+{{1}\over{2}} \cdot {\rm j} \right)}\over{ 20 ~\Omega}} | ||
+ | &=& -17.33 {~\rm A} + {\rm j} \cdot 10.00 {~\rm A} &=& 20.01 {~\rm A} \quad &\angle 150° \end{align*} \\ | ||
+ | By these voltages the phase currents $\underline{I}_x$ can be calculated: \\ | ||
+ | \begin{align*} | ||
+ | \underline{I}_{1} &=& ( 35.24 {~\rm A} + {\rm j} \cdot 18.90 {~\rm A}) - (-17.33 {~\rm A} + {\rm j} \cdot 10.00 {~\rm A}) & | ||
+ | | ||
+ | \underline{I}_{2} &=& ( 12.27 {~\rm A} - {\rm j} \cdot 1.93 {~\rm A}) - ( 35.24 {~\rm A} + {\rm j} \cdot 18.90 {~\rm A}) &=& -22.98 {~\rm A} - {\rm j} \cdot 20.83 {~\rm A} | ||
+ | | ||
+ | \underline{I}_{3} &=& (-17.33 {~\rm A} + {\rm j} \cdot 10.00 {~\rm A}) - ( 12.27 {~\rm A} - {\rm j} \cdot 1.93 {~\rm A}) &=& -29.59 | ||
+ | | ||
+ | \end{align*} \\</ | ||
+ | - The true power is calculated by: < | ||
+ | \begin{align*} | ||
+ | P = 231 {~\rm V} \cdot \big( 53.32 | ||
+ | | ||
+ | | ||
+ | | ||
+ | - The apparent power $\underline{S}$ is: < | ||
+ | \begin{align*} | ||
+ | \underline{S} &= \underline{U}_{13} \cdot \underline{I}_1^* + \underline{U}_{23} \cdot \underline{I}_2^* | ||
+ | | ||
+ | {\rm e}^{-{\rm j} \cdot 3/6 \pi} \cdot (-22.98 {~\rm A} + {\rm j} \cdot 20.83 {~\rm A})) | ||
+ | | ||
+ | | ||
+ | | ||
+ | {\rm e}^{-{\rm j} \cdot 3/6 \pi} \cdot (-29.59 {~\rm A} - {\rm j} \cdot 11.93 {~\rm A})) | ||
+ | | ||
+ | | ||
+ | | ||
+ | {\rm e}^{-{\rm j} \cdot 7/6 \pi} \cdot (-29.59 {~\rm A} - {\rm j} \cdot 11.93 {~\rm A})) | ||
+ | | ||
+ | | ||
+ | The collective apparent power is: \\ | ||
+ | \begin{align*} | ||
+ | S_\Sigma & | ||
+ | &= \sqrt{3} \cdot 231 {~\rm V} \cdot \sqrt{(53.32 {~\rm A})^2+(31.01 {~\rm A})^2+(31.90 {~\rm A})^2} | ||
+ | | ||
+ | - The reactive power is: < | ||
+ | \begin{align*} Q &= |\underline{S} - P| = -4.41 {~\rm kVAr} \\ | ||
+ | \end{align*} \\ | ||
+ | The collective reactive power is: \\ | ||
+ | \begin{align*} Q_\Sigma & | ||
+ | \end{align*}</ | ||
< | < | ||
Zeile 565: | Zeile 831: | ||
<callout title=" | <callout title=" | ||
\\ | \\ | ||
- | In case of a symmetric load the situation and the formulas get much simplier: | + | In the case of a symmetric load, the situation and the formulas get much simpler: |
- | - The **phase voltages** $U_L$ and string voltages $U_S$ are equal to the asymmetric load: $U_L = U_S$. | + | - The **phase voltages** $U_{\rm L}$ and string voltages $U_{\rm S}$ are equal to the asymmetric load: $U_{\rm L} = U_{\rm S}$. |
- | - For equal impedances the absolute value of all **phase currents** $I_L = I_x$ are the same: $|\underline{I}_x|= {3}\cdot|\underline{I}_S| = \sqrt{3}\cdot\left|{{\underline{U}_S}\over{\underline{Z}_S^\phantom{O}}}\right|$. Since the phase currents the same absolute value and have the same $\varphi$, they will add up to zero. Therefore there is no current on neutral line: $I_N =0$ | + | - For equal impedances the absolute value of all **phase currents** $I_{\rm L} = I_x$ are the same: $|\underline{I}_x|= {3}\cdot|\underline{I}_{\rm S}| = \sqrt{3}\cdot\left|{{\underline{U}_{\rm S}}\over{\underline{Z}_{\rm S}^\phantom{O}}}\right|$. Since the phase currents |
- | - | ||
- | - The **true power** is three times the true power of a single phase: $P = 3 \cdot U_S I_S \cdot cos \varphi$. Based on the line voltages $U_L$, the formula is $P = \sqrt{3} \cdot U_L I_S \cdot cos \varphi$ | + | - The **true power** is three times the true power of a single phase: $P = 3 \cdot U_{\rm S} I_{\rm S} \cdot \cos \varphi$. Based on the line voltages $U_{\rm L}$, the formula is $P = \sqrt{3} \cdot U_{\rm L} I_{\rm S} \cdot \cos \varphi$ |
- | - The **(collective) apparent power** - given the formula above - is: $S_\Sigma = \sqrt{3}\cdot | + | - The **(collective) apparent power** - given the formula above - is: $S_\Sigma = \sqrt{3}\cdot |
- | - The **reactive power** leads to: $Q_\Sigma = \sqrt{S_\Sigma^2 - P^2} = 3 \cdot U_S I_S \cdot sin (\varphi)$. | + | - The **reactive power** leads to: $Q_\Sigma = \sqrt{S_\Sigma^2 - P^2} = 3 \cdot U_{\rm S} I_{\rm S} \cdot \sin (\varphi)$. |
</ | </ | ||
</ | </ | ||
Zeile 584: | Zeile 850: | ||
<panel type=" | <panel type=" | ||
- | A passive component is fed by a sinosidal | + | A passive component is fed by a sinusoidal |
- Draw the equivalent circuits based on a series and on a parallel circuit. | - Draw the equivalent circuits based on a series and on a parallel circuit. | ||
- Calculate the equivalent components for both circuits. | - Calculate the equivalent components for both circuits. | ||
- | - Calculate the real power, the reactive power and the apparent power based on the equivalent components for both circuits from 2. . | + | - Calculate the real power, the reactive power, and the apparent power based on the equivalent components for both circuits from 2. . |
- Check the solutions from 3. via direct calculation based on the input in the task above. | - Check the solutions from 3. via direct calculation based on the input in the task above. | ||
Zeile 601: | Zeile 867: | ||
The apparent impedance is: | The apparent impedance is: | ||
\begin{align*} | \begin{align*} | ||
- | Z = |\underline{Z}| & | + | Z = |\underline{Z}| & |
\end{align*} | \end{align*} | ||
- | For the **series circuit**, the impedances add up like: $R_s + j\cdot X_{Ls} = \underline{Z} $, and $R_s = |\underline{Z}| cos\varphi$ such as $X_{Ls} = |\underline{Z}| sin\varphi$. | + | For the **series circuit**, the impedances add up like: $R_s + {\rm j}\cdot X_{Ls} = \underline{Z} $, and $R_s = |\underline{Z}| |
Therefore: | Therefore: | ||
\begin{align*} | \begin{align*} | ||
- | R_s & | + | R_s & |
- | X_{Ls} & | + | X_{Ls} & |
- | \rightarrow L_s &=& {{X_{Ls}}\over{2\pi f}} &=& {{{{U}\over{I}} \cdot sin \varphi}\over{2\pi f}} &=& \boldsymbol{127mH} | + | \rightarrow L_s &=& {{X_{Ls}}\over{2\pi f}} &=& {{{{U}\over{I}} \cdot \sin \varphi}\over{2\pi f}} &=& \boldsymbol{127~\rm mH} |
\end{align*} | \end{align*} | ||
- | For the **parallel circuit**, the impedances add up like ${{1}\over{R_p}} + {{1}\over{j\cdot X_{Lp}}}= {{1}\over{\underline{Z}}} $. \\ | + | For the **parallel circuit**, the impedances add up like ${{1}\over{R_p}} + {{1}\over{{\rm j}\cdot X_{Lp}}}= {{1}\over{\underline{Z}}} $. \\ |
The easiest thing is here to use the formulas of $R_s$ and $X_{Ls}$ from before: | The easiest thing is here to use the formulas of $R_s$ and $X_{Ls}$ from before: | ||
\begin{align*} | \begin{align*} | ||
- | {{1}\over{R_p}} + {{1}\over{j\cdot X_{Lp}}} &=& {{1}\over{R_s + j\cdot X_{Ls}}} \\ | + | {{1}\over{R_p}} + {{1}\over{{\rm j}\cdot X_{Lp}}} &=& {{1}\over{R_s + {\rm j}\cdot X_{Ls}}} \\ |
- | {{1}\over{R_p}} - j {{1}\over{X_{Lp}}} | + | {{1}\over{R_p}} - {\rm j} {{1}\over{X_{Lp}}} |
- | &=& {{Z \cdot cos \varphi - j\cdot Z \cdot sin \varphi }\over{Z^2}}\\ | + | &=& {{Z \cdot \cos \varphi - {\rm j}\cdot Z \cdot \sin \varphi }\over{Z^2}} \\ |
- | &=& {{cos \varphi - j \cdot sin \varphi }\over{Z}}\\ | + | &=& { {\cos \varphi - {\rm j} \cdot \sin \varphi } |
\end{align*} | \end{align*} | ||
Zeile 626: | Zeile 892: | ||
\begin{align*} | \begin{align*} | ||
- | {{1}\over{R_p}} | + | {{1}\over{R_p}} |
- | \rightarrow R_p & | + | \rightarrow R_p & |
\end{align*} | \end{align*} | ||
\begin{align*} | \begin{align*} | ||
- | {{1}\over{X_{Lp}}} | + | {{1}\over{X_{Lp}}} |
- | \rightarrow X_{Lp} | + | \rightarrow X_{Lp} |
- | \rightarrow L_p & | + | \rightarrow L_p & |
\end{align*} | \end{align*} | ||
Zeile 642: | Zeile 908: | ||
^ ^ series circuit ^ parallel circuit ^ | ^ ^ series circuit ^ parallel circuit ^ | ||
- | | active | + | | active |
- | | reactive power | \begin{align*} Q_s &= Z_{Ls} \cdot I^2 \\ &= 39.8 \Omega \cdot (5A)^2 \\ &= 996 Var \end{align*} | \begin{align*} Q_p &= {{U_p^2}\over{Z_{Lp}}} \\ &= {{(230V)^2}\over{53.1 \Omega}} = 996 Var | + | | reactive power | \begin{align*} Q_s &= Z_{Ls} \cdot I^2 \\ &= 39.8 ~\Omega \cdot (5{~\rm A})^2 \\ &= 996 {~\rm Var} \end{align*} | \begin{align*} Q_p &= {{U_p^2}\over{Z_{Lp}}} \\ &= {{(230{~\rm V})^2}\over{53.1 |
- | | apparent power | \begin{align*} S_s &= \sqrt{P_s^2 - Q_s^2} \\ &= I^2 \cdot \sqrt{R_s^2 + Z_{Ls}^2} \\ &= 1150 VA \end{align*} | \begin{align*} S_p &= \sqrt{P_s^2 - Q_s^2} \\ &= U^2 \cdot \sqrt{{{1}\over{R_p^2}} + {{1}\over{Z_{Lp}^2}}} \\ &= 1150 VA | + | | apparent power | \begin{align*} S_s &= \sqrt{P_s^2 - Q_s^2} \\ &= I^2 \cdot \sqrt{R_s^2 + Z_{Ls}^2} \\ &= 1150 {~\rm VA} \end{align*} | \begin{align*} S_p &= \sqrt{P_s^2 - Q_s^2} \\ &= U^2 \cdot \sqrt{{{1}\over{R_p^2}} + {{1}\over{Z_{Lp}^2}}} \\ &= 1150 {~\rm VA} \end{align*} | |
</ | </ | ||
Zeile 653: | Zeile 919: | ||
active power: | active power: | ||
\begin{align*} | \begin{align*} | ||
- | P &= U \cdot I \cdot cos \varphi \\ | + | P &= U \cdot I \cdot \cos \varphi \\ |
- | & | + | & |
- | &= 575 W | + | &= 575 {~\rm W} |
\end{align*} | \end{align*} | ||
reactive power: | reactive power: | ||
\begin{align*} | \begin{align*} | ||
- | Q &= U \cdot I \cdot sin \varphi \\ | + | Q &= U \cdot I \cdot \sin \varphi \\ |
- | & | + | & |
- | &= 996 Var | + | &= 996 {~\rm Var} |
\end{align*} | \end{align*} | ||
Zeile 668: | Zeile 934: | ||
\begin{align*} | \begin{align*} | ||
Q &= U \cdot I \\ | Q &= U \cdot I \\ | ||
- | & | + | & |
- | &= 1150 VA | + | &= 1150 {~\rm VA} |
\end{align*} | \end{align*} | ||
</ | </ | ||
Zeile 677: | Zeile 943: | ||
<panel type=" | <panel type=" | ||
- | A magnetic coil shows at a frequency of $f=50.0 Hz$ the voltage of $U=115V$ and the current $I=2.60A$ with a power factor of $cos \varphi = 0.30$ | + | A magnetic coil shows at a frequency of $f=50.0 |
- | - Calculate the real power, the reactive power and the apparent power . | + | - Calculate the real power, the reactive power, and the apparent power . |
- Draw the equivalent parallel circuit. Calculate the active and reactive part of the current. | - Draw the equivalent parallel circuit. Calculate the active and reactive part of the current. | ||
- Draw the equivalent series circuit. Calculate the ohmic and inductive impedance and the value of the inductivity. | - Draw the equivalent series circuit. Calculate the ohmic and inductive impedance and the value of the inductivity. | ||
Zeile 688: | Zeile 954: | ||
The real power is | The real power is | ||
\begin{align*} | \begin{align*} | ||
- | P &= U \cdot I \cdot cos \varphi \\ | + | P &= U \cdot I \cdot \cos \varphi \\ |
- | & | + | & |
- | &= 89.7 W | + | &= 89.7 {~\rm W} |
\end{align*} | \end{align*} | ||
The reactive power is | The reactive power is | ||
\begin{align*} | \begin{align*} | ||
- | Q &= U \cdot I \cdot sin \varphi \\ | + | Q &= U \cdot I \cdot \sin \varphi \\ |
- | & | + | & |
- | &= 285 Var | + | &= 285 {~\rm Var} |
\end{align*} | \end{align*} | ||
Zeile 703: | Zeile 969: | ||
\begin{align*} | \begin{align*} | ||
S &= U \cdot I \\ | S &= U \cdot I \\ | ||
- | & | + | & |
- | &= 299 VA | + | &= 299 {~\rm VA} |
\end{align*} | \end{align*} | ||
Zeile 716: | Zeile 982: | ||
\begin{align*} | \begin{align*} | ||
- | \underline{I} &= I_R + j \cdot I_L \\ | + | \underline{I} &= I_R |
- | &= I \cdot cos\varphi - j \cdot I \cdot sin\varphi | + | &= I \cdot \cos\varphi - {\rm j} \cdot I \cdot \sin\varphi |
\end{align*} | \end{align*} | ||
The active and reactive part of the current is therefore: | The active and reactive part of the current is therefore: | ||
\begin{align*} | \begin{align*} | ||
- | I_R & | + | I_R & |
- | I_L &= - 2.60A \cdot \sqrt{1 - 0.30^2} &= 2.48 A | + | I_L &= - 2.60{~\rm A} \cdot \sqrt{1 - 0.30^2} &= 2.48 {~\rm A} |
\end{align*} | \end{align*} | ||
Zeile 730: | Zeile 996: | ||
<button size=" | <button size=" | ||
- | Important: The cosine function is ambiguous! Based on $cos \varphi = 0.30$ it is unclear, whether $\varphi$ is positive or negative. \\ | + | Important: The cosine function is ambiguous! Based on $\cos \varphi = 0.30$ it is unclear, whether $\varphi$ is positive or negative. \\ |
- | Therefore, only based on the power factor it is unclear whether the circuit is ohmic-inductive or ohmic-capacitive! However, this is explicitely | + | Therefore, only based on the power factor it is unclear whether the circuit is ohmic-inductive or ohmic-capacitive! However, this is explicitly |
{{drawio> | {{drawio> | ||
\begin{align*} | \begin{align*} | ||
- | Z_s &= {{U}\over{I}} | + | Z_s &= {{U}\over{I}} |
- | R_s &= {{U}\over{I}} \cdot cos \varphi &=& {{115V}\over{2.60A}} \cdot 0.30 &=& 13.3 \Omega \\ | + | R_s &= {{U}\over{I}} \cdot \cos \varphi &=& {{115{~\rm V}}\over{2.60{~\rm A}}} \cdot 0.30 &=& 13.3 ~\Omega \\ |
- | X_{Ls} &= {{U}\over{I}} \cdot sin \varphi &=& {{115V}\over{2.60A}} \cdot \sqrt{1 - 0.30^2} &=& 42.2 \Omega \\ \\ | + | X_{Ls} &= {{U}\over{I}} \cdot \sin \varphi &=& {{115{~\rm V}}\over{2.60{~\rm A}}} \cdot \sqrt{1 - 0.30^2} &=& 42.2 ~\Omega \\ \\ |
- | L_s & | + | L_s & |
\end{align*} | \end{align*} | ||
Zeile 750: | Zeile 1016: | ||
<panel type=" | <panel type=" | ||
- | A consumer is connected to a $220V$ / $50Hz$ network. A current of $20.0A$ and a power of $1800W$ is measured. | + | A consumer is connected to a $220~\rm V$ / $50 ~\rm Hz$ network. A current of $20.0~\rm A$ and a power of $1800 ~\rm W$ is measured. |
- | - What is the value of the active power, the reactive power and the power factor? | + | - What is the value of the active power, the reactive power, and the power factor? |
- Assume that the consumer is a parallel circuit. | - Assume that the consumer is a parallel circuit. | ||
- Calculate the resistance and reactance. | - Calculate the resistance and reactance. | ||
- | - Calculate the necessary inductance / capacitance. | + | - Calculate the necessary inductance/ |
- Assume that the consumer is a series circuit. | - Assume that the consumer is a series circuit. | ||
- Calculate the resistance and reactance. | - Calculate the resistance and reactance. | ||
- | - Calculate the necessary inductance / capacitance. | + | - Calculate the necessary inductance/ |
Zeile 766: | Zeile 1032: | ||
The apparent power is $S = U \cdot I = 220V \cdot 20A = 4.40 kVA$. \\ | The apparent power is $S = U \cdot I = 220V \cdot 20A = 4.40 kVA$. \\ | ||
The reactive power is $Q = \sqrt{S^2 - P^2} = \sqrt{(4.40 kVA)^2 - (1.80 kW)^2} = 4.01 kVar$ \\ | The reactive power is $Q = \sqrt{S^2 - P^2} = \sqrt{(4.40 kVA)^2 - (1.80 kW)^2} = 4.01 kVar$ \\ | ||
- | The power factor is $cos \varphi = {{P}\over{S}} = {{1.80 kW}\over{4.40 kVA}} = 0.41$. | + | The power factor is $\cos \varphi = {{P}\over{S}} = {{1.80 kW}\over{4.40 kVA}} = 0.41$. |
</ | </ | ||
Zeile 772: | Zeile 1038: | ||
<button size=" | <button size=" | ||
- | Important: The cosine function is ambiguous! Based on $cos \varphi = 0.30$ it is unclear, whether $\varphi$ is positive or negative. \\ | + | Important: The cosine function is ambiguous! Based on $\cos \varphi = 0.30$ it is unclear, whether $\varphi$ is positive or negative. \\ |
Therefore, only based on the power factor it is unclear whether the circuit is ohmic-inductive or ohmic-capacitive! | Therefore, only based on the power factor it is unclear whether the circuit is ohmic-inductive or ohmic-capacitive! | ||
- | The consumer is a parallel circuit of the resistance $R_p$ and the reactance $X_p$ on the voltage $U$. Both values can be calculated based on the real and reactive power: | + | The consumer is a parallel circuit of the resistance $R_\rm p$ and the reactance $X_\rm p$ on the voltage $U$. Both values can be calculated based on the real and reactive power: |
\begin{align*} | \begin{align*} | ||
- | P &= {{U^2}\over{R_p}} \rightarrow & R_p &= {{U^2}\over{P}} &= 26.9 \Omega \\ | + | P &= {{U^2}\over{R_\rm p}} \rightarrow & R_p &= {{U^2}\over{P}} &= 26.9 ~\Omega \\ |
- | Q &= {{U^2}\over{X_p}} \rightarrow & X_p &= {{U^2}\over{Q}} &= 12.1 \Omega \\ | + | Q &= {{U^2}\over{X_\rm p}} \rightarrow & X_p &= {{U^2}\over{Q}} &= 12.1 ~\Omega \\ |
\end{align*} | \end{align*} | ||
- | The respective values for a inductance / capacitance are: | + | The respective values for inductance/ |
\begin{align*} | \begin{align*} | ||
- | L &= {{X_p}\over{2\pi \cdot f}} &= 38.4 mH \\ | + | L &= {{X_p}\over{2\pi \cdot f}} |
- | C &= {{1}\over{2\pi \cdot f \cdot X_p}} &= 263 \mu F \\ | + | C &= {{1}\over{2\pi \cdot f \cdot X_p}} &= 263 ~\rm µF \\ |
\end{align*} | \end{align*} | ||
Zeile 791: | Zeile 1057: | ||
<button size=" | <button size=" | ||
- | The consumer is a series circuit of the resistance $R_s$ and the reactance $X_s$ with the current $I$. Both values can be calculated based on the real and reactive power: | + | The consumer is a series circuit of the resistance $R_\rm s$ and the reactance $X_\rm s$ with the current $I$. Both values can be calculated based on the real and reactive power: |
\begin{align*} | \begin{align*} | ||
- | P &= I^2 \cdot R_s | + | P &= I^2 \cdot R_{\rm s} |
- | Q &= I^2 \cdot X_s | + | Q &= I^2 \cdot X_{\rm s} |
\end{align*} | \end{align*} | ||
- | The respective values for a inductance / capacitance are: | + | The respective values for inductance/ |
\begin{align*} | \begin{align*} | ||
- | L &= {{X_s}\over{2\pi \cdot f}} &= 31.9 mH \\ | + | L &= {{X_{\rm s}}\over{2\pi \cdot f}} |
- | C &= {{1}\over{2\pi \cdot f \cdot X_s}} &= 318 \mu F \\ | + | C &= {{1}\over{2\pi \cdot f \cdot X_{\rm s}}} &= 318 ~\rm µF \\ |
\end{align*} | \end{align*} | ||
Zeile 809: | Zeile 1075: | ||
<panel type=" | <panel type=" | ||
- | An uncompensated ohmic-inductive series circuit shows at $U=230V$, $f=50Hz$ the current $I_{RL}=7A$, $P_{RL}=1.3kW$ | + | An uncompensated ohmic-inductive series circuit shows at $U=230~\rm V$, $f=50 ~\rm Hz$ the current $I_{RL}=7 ~\rm A$, $P_{RL}=1.3 ~\rm kW$ |
- | The power factor shall be compensated to $cos\varphi = 1$ via a parallel compensation. | + | The power factor shall be compensated to $\cos\varphi = 1$ via a parallel compensation. |
- | - Calculate the apparent power, the reactive power, the phase angle and the power factor before the compensation. | + | - Calculate the apparent power, the reactive power, the phase angle, and the power factor before the compensation. |
- | - Calculate the capacity $C$ which have to be connected in parallel | + | - Calculate the capacity $C$ which has to be connected in parallel to get $\cos\varphi=1$. |
- | <button size=" | + | <button size=" |
+ | \begin{align*} | ||
+ | S | ||
+ | Q | ||
+ | \varphi & | ||
+ | = \arccos\left({{P}\over{S}}\right) | ||
+ | \end{align*} | ||
- | The inductor $L$ creates the reactive power $Q = Q_L$. In order to compensate a equivalent reactive power $|Q_C| = |Q_L|$ has to be given by a capacitor. The reactive power is given by \begin{align*} Q &= \Re (U) \cdot \Im (I) \\ &= U \cdot {{U}\over{X}} \\ &= {{U^2}\over{X}} \\ \end{align*} | + | The inductor $L$ creates the reactive power $Q = Q_L$. To compensate |
+ | The reactive power is given by: | ||
+ | \begin{align*} | ||
+ | Q &= \Re (U) \cdot \Im (I) \\ | ||
+ | | ||
+ | | ||
+ | \end{align*} | ||
- | The capacity can therefore be calculated by \begin{align*} X_C &= {{U^2}\over{Q_L}} = {{1}\over{\omega C}} \quad \rightarrow \quad C = {{1}\over{\omega U^2}} \end{align*} | + | The capacity can therefore be calculated by |
+ | \begin{align*} | ||
+ | X_C &= {{U^2}\over{Q_L}} = {{1}\over{\omega C}} \quad \rightarrow \quad C = {{1}\over{\omega U^2}} | ||
+ | \end{align*} | ||
</ | </ | ||
- | <button size=" | + | <button size=" |
+ | \begin{align*} | ||
+ | S &= 1.62 {~\rm kVA} \\ | ||
+ | Q &= 0.95 {~\rm kVAr} \\ | ||
+ | \varphi &= +36° \\ \\ | ||
+ | C &= 57.2 ~\rm µF | ||
+ | \end{align*} | ||
</ | </ | ||
Zeile 832: | Zeile 1119: | ||
<panel type=" | <panel type=" | ||
- | A three-phase power net with a phase voltage of $400V$ has two symmatrical | + | A three-phase power net with a phase voltage of $400 ~\rm V$ has two symmetrical |
< | < | ||
- | * Load 1: $P_1 = 2.7 kW$, $cos \varphi_1 = 0.89$ | + | * Load 1: $P_1 = 2.7 ~\rm kW$, $\cos \varphi_1 = 0.89$ |
- | * Load 1: $P_2 = 3.8 kW$, $cos \varphi_1 = 0.76$ | + | * Load 1: $P_2 = 3.8 ~\rm kW$, $\cos \varphi_1 = 0.76$ |
1. Calculate the reactive power $Q_1$ and $Q_2$. \\ | 1. Calculate the reactive power $Q_1$ and $Q_2$. \\ | ||
<button size=" | <button size=" | ||
- | First calculate the apparent power: | + | First, calculate the apparent power: |
\begin{align*} | \begin{align*} | ||
- | P_1 &=& S_1 \cdot cos \varphi_1 \quad \rightarrow \quad S_1 &=& {{1}\over{cos \varphi_1}} \cdot P_1 &=& {{1}\over{0.89}} \cdot 2.7 kW &=& 3.0 kVA\\ | + | P_1 &=& S_1 \cdot \cos \varphi_1 \quad \rightarrow \quad S_1 &=& {{1}\over{\cos \varphi_1}} \cdot P_1 &=& {{1}\over{0.89}} \cdot 2.7 {~\rm kW} &=& 3.0 {~\rm kVA}\\ |
- | P_2 &=& S_2 \cdot cos \varphi_2 \quad \rightarrow \quad S_2 &=& {{1}\over{cos \varphi_2}} \cdot P_1 &=& {{1}\over{0.76}} \cdot 3.8 kW &=& 5.0 kVA\\ | + | P_2 &=& S_2 \cdot \cos \varphi_2 \quad \rightarrow \quad S_2 &=& {{1}\over{\cos \varphi_2}} \cdot P_1 &=& {{1}\over{0.76}} \cdot 3.8 {~\rm kW} &=& 5.0 {~\rm kVA}\\ |
\end{align*} \\ | \end{align*} \\ | ||
- | For calculating the reactive power, $sin \varphi_{1, | + | For calculating the reactive power, $\sin \varphi_{1, |
- | * One way would be to calculate $\varphi_{1, | + | * One way would be to calculate $\varphi_{1, |
- | * Another way is to use the formula $1^2 = sin^2\varphi_{1, | + | * Another way is to use the formula $1^2 = \sin^2\varphi_{1, |
\begin{align*} | \begin{align*} | ||
- | Q_1 &=& S_1 \cdot \sqrt{1 - cos^2 \varphi_1} &=& 3.0 kVA \cdot \sqrt{1 - 0.89^2} &=& 1.4 kVAr\\ | + | Q_1 &=& S_1 \cdot \sqrt{1 - \cos^2 \varphi_1} &=& 3.0 {~\rm kVA} \cdot \sqrt{1 - 0.89^2} &=& 1.4 {~\rm kVAr}\\ |
- | Q_2 &=& S_2 \cdot \sqrt{1 - cos^2 \varphi_2} &=& 5.0 kVA \cdot \sqrt{1 - 0.76^2} &=& 3.2 kVAr\\ | + | Q_2 &=& S_2 \cdot \sqrt{1 - \cos^2 \varphi_2} &=& 5.0 {~\rm kVA} \cdot \sqrt{1 - 0.76^2} &=& 3.2 {~\rm kVAr}\\ |
\end{align*} | \end{align*} | ||
</ | </ | ||
\begin{align*} | \begin{align*} | ||
- | Q_1 &=& 1.4 kVAr\\ | + | Q_1 &=& 1.4 {~\rm kVAr}\\ |
- | Q_2 &=& 3.2 kVAr\\ | + | Q_2 &=& 3.2 {~\rm kVAr}\\ |
\end{align*} | \end{align*} | ||
</ | </ | ||
Zeile 865: | Zeile 1152: | ||
\begin{align*} | \begin{align*} | ||
- | \underline{S}_{net} &=& \underline{S}_1 | + | \underline{S}_{\rm net} &=& \underline{S}_1 |
- | &=& P_1 + j \cdot Q_1 &+& P_2 + j \cdot Q_2 \\ | + | &=& P_1 + {\rm j} \cdot Q_1 |
- | &=& P_1 + P_2 &+& j \cdot (Q_1 + Q_2) \\ | + | &=& P_1 + P_2 |
- | &=& 2.7 kW + 3.8 kW &+& j \cdot (1.4 kVAr + 3.2 kVAr) \\ | + | &=& 2.7 {~\rm kW} + 3.8 {~\rm kW} & |
- | &=& 6.5 kW &+& j \cdot 4.6 kVAr \\ | + | &=& 6.5 {~\rm kW} & |
- | &=& P_{net} &+& j \cdot Q_{net} \\ | + | &=& P_{\rm net} |
\end{align*} \\ | \end{align*} \\ | ||
As a complex value in Euler representation: | As a complex value in Euler representation: | ||
\begin{align*} | \begin{align*} | ||
- | \underline{S}_{net} &=& \sqrt{P_{net}^2+ | + | \underline{S}_{\rm net} &=& \sqrt{P_{\rm net}^2 |
- | \sqrt{(6.5 kW)^2+ | + | \sqrt{(6.5 |
- | 8.0 kVA & | + | |
\end{align*} | \end{align*} | ||
</ | </ | ||
\begin{align*} | \begin{align*} | ||
- | \underline{S}_{net} &=& 6.5 kW+ j \cdot 4.6 kVAr \\ | + | \underline{S}_{\rm net} &=& 6.5 {~\rm kW} + {\rm j} \cdot 4.6 {~\rm kVAr} \\ |
- | &=& 8.0 kVA \cdot e^{j \cdot 35°} \\ | + | &=& 8.0 {~\rm kVA} \cdot {\rm e}^{{\rm j} \cdot 35°} \\ |
\end{align*} | \end{align*} | ||
</ | </ | ||
- | 3. Calculate the RMS value of the a single phase current $I$ which the power net has to provide. \\ | + | 3. Calculate the RMS value of the single-phase current $I$ which the power net has to provide. \\ |
<button size=" | <button size=" | ||
- | The apparent power $S_{net}$ is given by $S_{net} = 3 \cdot U \cdot I$, with $U$ as the star voltage $U_Y = {{1}\over{ \sqrt{3} }} \cdot U_L$. \\ | + | The apparent power $S_{\rm net}$ is given by $S_{\rm net} = 3 \cdot U \cdot I$, with $U$ as the star-voltage $U_Y = {{1}\over{ \sqrt{3} }} \cdot U_{\rm L}$. \\ |
- | Therefore, the single phase current $I$ can be calculated from $S_{net}$: | + | Therefore, the single-phase current $I$ can be calculated from $S_{\rm net}$: |
\begin{align*} | \begin{align*} | ||
- | S_{net} &=& 3 \cdot U \cdot I \\ | + | S_{\rm net} &=& 3 \cdot U \cdot I \\ |
- | &=& \sqrt{3} \cdot U_L \cdot I \\ | + | &=& \sqrt{3} \cdot U_{\rm L} \cdot I \\ |
\end{align*} \\ | \end{align*} \\ | ||
The current is: | The current is: | ||
\begin{align*} | \begin{align*} | ||
- | I &=& {{ S_{net} }\over{ \sqrt{3} \cdot U_L }} \\ | + | I &=& {{ S_{\rm net} }\over{ \sqrt{3} \cdot U_{\rm L} }} \\ |
- | &=& {{8.0 kVA }\over{ \sqrt{3} \cdot 400V }} \\ | + | &=& {{8.0 {~\rm kVA}}\over{ \sqrt{3} \cdot 400{~\rm V} }} \\ |
- | & | + | & |
\end{align*} | \end{align*} | ||
</ | </ | ||
\begin{align*} | \begin{align*} | ||
- | I & | + | I & |
\end{align*} | \end{align*} | ||
</ | </ | ||
- | 4. What is the overall power factor $cos\varphi_{net}$ of the power net? \\ | + | 4. What is the overall power factor $\cos\varphi_{\rm net}$ of the power net? \\ |
<button size=" | <button size=" | ||
- | The overall power factor can be calculated from the apparent power and its angle $\varphi_{net}$ (see the Euler representation in task 2). \\ | + | The overall power factor can be calculated from the apparent power and its angle $\varphi_{\rm net}$ (see the Euler representation in task 2). \\ |
\begin{align*} | \begin{align*} | ||
- | cos\varphi_{net} = cos (35°) = 0.82 | + | \cos\varphi_{\rm net} = \cos (35°) = 0.82 |
\end{align*} | \end{align*} | ||
Zeile 919: | Zeile 1206: | ||
\begin{align*} | \begin{align*} | ||
- | cos\varphi_{net} = 0.82 | + | \cos\varphi_{\rm net} = 0.82 |
\end{align*} | \end{align*} | ||
</ | </ |