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electrical_engineering_and_electronics_2:block08 [2026/04/21 22:21] mexleadminelectrical_engineering_and_electronics_2:block08 [2026/05/19 02:12] (current) mexleadmin
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   * the phase response single logarithmic coordinate system.    * the phase response single logarithmic coordinate system. 
  
-By this, the course from low to high frequencies is easier to see. [[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+5+50+5+50%0A%25+4+1630997.1347384118%0Ar+64+80+224+80+0+35%0AO+224+80+336+80+0%0Ag+224+208+224+240+0%0A170+64+80+32+80+3+20+1000+5+0.1%0Al+224+80+224+208+0+0.001+0%0Ao+3+16+0+34+5+0.00009765625+0+-1+in%0Ao+1+16+0+34+2.5+0.00009765625+1+-1+out%0A|This simulation]] shows the amplitude response and frequency response in the lower left corner.+By this, the course from low to high frequencies is easier to see. The following simulation in <imgref imageNo5> shows the amplitude response and frequency response in the lower left corner.
  
 +
 +<imgcaption imageNo5|>[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+2+1183.069613694428%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Ar+240+160+400+160+0+187%0Al+400+160+400+288+0+0.06545+0%0A170+240+160+208+160+3+20+1000+5+0.1%0A|{{:electrical_engineering_and_electronics_2:imageno5.jpg|click to start simulation}}]]  
 +</imgcaption>
  
 For further consideration, the equation of the transfer function $\underline{A} = \dfrac {\underline{U}_{\rm O}^\phantom{O}}{\underline{U}_{\rm I}^\phantom{O}}$ is to be rewritten so that it becomes independent of component values $R$ and $L$.\\  For further consideration, the equation of the transfer function $\underline{A} = \dfrac {\underline{U}_{\rm O}^\phantom{O}}{\underline{U}_{\rm I}^\phantom{O}}$ is to be rewritten so that it becomes independent of component values $R$ and $L$.\\ 
 This allows for a generalized representation. This representation is called **normalization**: This allows for a generalized representation. This representation is called **normalization**:
  
-<WRAP centeralign>+<WRAP left>
 \begin{align*}  \begin{align*} 
 \large{\underline{A}  = \frac {\underline{U}_{\rm O}^\phantom{O}}{\underline{U}_{\rm I}^\phantom{O}}  \large{\underline{A}  = \frac {\underline{U}_{\rm O}^\phantom{O}}{\underline{U}_{\rm I}^\phantom{O}} 
                       = \frac {\omega L}    {\sqrt{R^2 +    (\omega L)^2}}\cdot {\rm e}^{{\rm j}\left(\frac{\pi}{2} - \arctan \frac{\omega L}{R} \right)}}                       = \frac {\omega L}    {\sqrt{R^2 +    (\omega L)^2}}\cdot {\rm e}^{{\rm j}\left(\frac{\pi}{2} - \arctan \frac{\omega L}{R} \right)}}
- \quad  \quad \vphantom{\HUGE{I \\ I}} \large{\xrightarrow{\text{normalization}}} \vphantom{\HUGE{I \\ I}} \quad \quad \quad + \quad  \quad \vphantom{\HUGE{I \\ I}} \large{\xrightarrow{\text{normalization}}} 
 +\end{align*}  
 +</WRAP> 
 +<WRAP right> 
 +\begin{align*
 \large{\underline{A}_{norm}  \large{\underline{A}_{norm} 
                       = \frac {\omega L / R}{\sqrt{1  + (\omega L / R)^2}}\cdot {\rm e}^{{\rm j}\left(\frac{\pi}{2} - \arctan \frac{\omega L}{R} \right)} }                        = \frac {\omega L / R}{\sqrt{1  + (\omega L / R)^2}}\cdot {\rm e}^{{\rm j}\left(\frac{\pi}{2} - \arctan \frac{\omega L}{R} \right)} } 
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 \end{align*}  \end{align*} 
 </WRAP> </WRAP>
- 
  
 This equation behaves quite the same as the one considered so far. This equation behaves quite the same as the one considered so far.
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 The cut-off frequency is again given by $f_{\rm c} = \frac{R}{2 \pi \cdot L}$. The cut-off frequency is again given by $f_{\rm c} = \frac{R}{2 \pi \cdot L}$.
  
-Here is [[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+5+50+5+50%0A%25+4+1630997.1347384118%0Ar+224+208+224+80+0+35%0AO+224+80+336+80+0%0Ag+224+208+224+240+0%0A170+64+80+32+80+3+20+1000+5+0.1%0Al+64+80+224+80+0+0.001+0%0Ao+3+16+0+34+5+0.00009765625+0+-1+in%0Ao+1+16+0+34+2.5+0.00009765625+1+-1+out%0A|the simulation]] for that.+<imgcaption imageNo6|>[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+0.75+50+5+50%0A%25+2+24389.095776063856%0Ar+400+160+400+288+0+35%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Al+240+160+400+160+0+0.06545+0%0A170+240+160+208+160+3+20+1000+5+0.1%0A|{{:electrical_engineering_and_electronics_2:imageno6.jpg|click to start simulation}}]]   
 +</imgcaption>
  
 ~~PAGEBREAK~~ ~~CLEARFIX~~ ~~PAGEBREAK~~ ~~CLEARFIX~~
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 \end{align*} \end{align*}
  
-Here is [[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+5+50+5+50%0A%25+4+1630997.1347384118%0Ac+64+80+224+80+0+0.000001+0%0Ar+224+80+224+208+0+35%0AO+224+80+336+80+0%0Ag+224+208+224+240+0%0A170+64+80+32+80+3+20+1000+5+0.1%0Ao+4+16+0+34+5+0.00009765625+0+-1+in%0Ao+2+16+0+34+2.5+0.00009765625+1+-1+out%0A|the simulation]] for that.+<imgcaption imageNo7|>[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+0.75+50+5+50%0A%25+0+28853.998118144256%0Ac+240+160+400+160+0+0.00001+0%0Ar+400+160+400+288+0+35%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0A170+240+160+208+160+3+20+1000+5+0.1%0A|{{:electrical_engineering_and_electronics_2:imageno7.jpg|click to start simulation}}]]   
 +</imgcaption> 
  
 ~~PAGEBREAK~~ ~~CLEARFIX~~ ~~PAGEBREAK~~ ~~CLEARFIX~~
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 ~~PAGEBREAK~~ ~~CLEARFIX~~ ~~PAGEBREAK~~ ~~CLEARFIX~~
  
-Here is the [[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+5+50+5+50%0A%25+4+1630997.1347384118%0Ac+224+208+224+80+0+0.000001+0%0Ar+64+80+224+80+0+35%0AO+224+80+336+80+0%0Ag+224+208+224+240+0%0A170+64+80+32+80+3+20+1000+5+0.1%0Ao+4+16+0+34+5+0.00009765625+0+-1+in%0Ao+2+16+0+34+2.5+0.00009765625+1+-1+out%0A|simulation]] for that. +<imgcaption imageNo8|>[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+0.75+50+5+50%0A%25+0+28853.998118144256%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Ar+240+160+400+160+0+187%0Ac+400+160+400+288+0+0.00001+0%0A170+240+160+208+160+3+20+1000+5+0.1%0A|{{:electrical_engineering_and_electronics_2:imageno8.jpg|click to start simulation}}]]   
-</WRAP>+</imgcaption>
  
 ==== RLC - Series Resonant Circuit ==== ==== RLC - Series Resonant Circuit ====
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 <WRAP> <imgcaption imageNo02 | Amplitude and Phase Response of a Series Resonant Circuit> </imgcaption> {{drawio>AmplitudeandPhaseResponse.svg}} </WRAP> <WRAP> <imgcaption imageNo02 | Amplitude and Phase Response of a Series Resonant Circuit> </imgcaption> {{drawio>AmplitudeandPhaseResponse.svg}} </WRAP>
 +
 +==== RLC - Parallel Resonant Circuit ====
 +
 +For parallel circuits the current has to be investigated:
 +
 +\begin{align*} 
 +\underline{I}_I        &       \underline{I}_R                   &&+ \underline{I}_C                                   &&       \underline{I}_L \\ 
 +                       &       \underline{U} \cdot {{1}\over{R}} &&+ \underline{U} \cdot {\rm j} \omega C              &&       \underline{U} \cdot {{1}\over{j\omega L }}        \\ 
 +                       &       \underline{U} \cdot {{1}\over{R}} &&+ {\rm j} \cdot \underline{U} \cdot \left( \omega C -        {{1}\over{\omega L }}  \right)      \\ 
 +\end{align*}
 +
 +\begin{align*} 
 +\boxed{ {{1}\over{\underline{Z}_{\rm eq}}}  =  {{1}\over{R}} + {\rm j} \cdot \left( \omega C -        {{1}\over{\omega L }}  \right)     \\ 
 +\end{align*}
 +
 +Here, the **input current** $\underline{I}_I$ gets minimal when $ f_0 = \frac{1}{2\pi \sqrt{LC}}$. \\
 +However, the currents $ |\underline{I}_C| = |\underline{I}_L|$ can get much larger then $\underline{I}_I$.
 +
 +
 +==== Simulations to Resonant Circuits ====
  
 <accordion>  <accordion> 
 <panel title="Series Resonant Circuit in Time Domain (Voltage on Inductor)">  <panel title="Series Resonant Circuit in Time Domain (Voltage on Inductor)"> 
-<WRAP>{{url>https://www.falstad.com/circuit/circuitjs.html?running=false&ctz=CQAgjCAMB0l5AWAnC1b0DYrQEw8gOyFgAcYArBpBkQlgpCOSAgMxMCmAtGGAFAAlcDhIgk9UeKjgWcJtMYxyfAE7DJWfBums+AYxBaxmktsWx4CAtgSUwGZCWrkkpGlhhx+AG0OnjfqJgBB7YXiBcMATIGDjRkE4EcZDkCFB8AOaB4CHZRop8+NYi2qzkOAFpAPYArgAufFXSEIwMSEHmLYbykHysoowAYhDsDIxg8BEQgyocAI41HAB2egCefEA 500,400 noborder}}  +<imgcaption imageNo51|> 
-</WRAP> </panel> +[[https://www.falstad.com/circuit/circuitjs.html?running=false&ctz=CQAgjCAMB0l5AWAnC1b0DYrQEw8gOyFgAcYArBpBkQlgpCOSAgMxMCmAtGGAFAAlcDhIgk9UeKjgWcJtMYxyfAE7DJWfBums+AYxBaxmktsWx4CAtgSUwGZCWrkkpGlhhx+AG0OnjfqJgBB7YXiBcMATIGDjRkE4EcZDkCFB8AOaB4CHZRop8+NYi2qzkOAFpAPYArgAufFXSEIwMSEHmLYbykHysoowAYhDsDIxg8BEQgyocAI41HAB2egCefEA|{{electrical_engineering_and_electronics_2:imageno51.jpg|click to start simulation}}]]   
 +</imgcaption> 
 +</panel> 
  
 <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Inductor)">  <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Inductor)"> 
-<WRAP>{{url>https://falstad.com/afilter/circuitjs.html?running=false&cct=$+1+0.000005+5+50+5+50%0A%25+4+1959.030510288011%0Ac+256+80+304+80+0+0.000047+0%0Ar+192+80+256+80+0+3%0Ag+304+160+304+192+0%0A170+192+80+160+80+3+20+1000+5+0.1%0Al+304+160+304+80+0+0.01+0.46265716582988115%0AO+304+80+352+80+0%0Ao+3+16+0+34+5+0.00009765625+0+-1+in%0A 500,400 noborder}}  +<imgcaption imageNo52|> 
-</WRAP> </panel> +[[www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+0+303633.8585081898%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Ar+176+160+288+160+0+3%0Ac+400+160+288+160+0+0.000047+0%0A170+176+160+144+160+3+20+1000+5+0.1%0Al+400+288+400+160+0+0.001+0%0A|{{electrical_engineering_and_electronics_2:imageno52.jpg|click to start simulation}}]] 
 +</imgcaption> 
 +</panel> 
  
 <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Capacitor)">  <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Capacitor)"> 
-<WRAP>{{url>https://falstad.com/afilter/circuitjs.html?running=false&cct=$+1+0.000005+5+50+5+50%0A%25+4+1959.030510288011%0Ac+304+160+304+80+0+0.000047+0%0Ar+192+80+256+80+0+3%0Ag+304+160+304+192+0%0A170+192+80+160+80+3+20+1000+5+0.1%0Al+256+80+304+80+0+0.01+0.46265716582988115%0AO+304+80+352+80+0%0Ao+3+16+0+34+5+0.00009765625+0+-1+in%0A 500,400 noborder}}  +<imgcaption imageNo53|> 
-</WRAP~~PAGEBREAK~~ ~~CLEARFIX~~ </panel> +[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+0+303633.8585081898%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Ar+176+160+288+160+0+3%0Ac+400+160+400+288+0+0.000047+0%0A170+176+160+144+160+3+20+1000+5+0.1%0Al+288+160+400+160+0+0.001+0%0A|{{electrical_engineering_and_electronics_2:imageno53.jpg|click to start simulation}}]] 
 +</imgcaption> 
 +</panel> 
  
 <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Resistor)">  <panel title="Series Resonant Circuit in Frequency Domain (Voltage on Resistor)"> 
-<WRAP>{{url>https://falstad.com/afilter/circuitjs.html?running=false&cct=$+1+0.000005+5+50+5+50%0A%25+4+1959.030510288011%0Ac+192+80+256+80+0+0.000047+0%0Ar+304+80+304+160+0+3%0Ag+304+160+304+192+0%0A170+192+80+160+80+3+20+1000+5+0.1%0Al+256+80+304+80+0+0.01+0.46265716582988115%0AO+304+80+352+80+0%0Ao+3+16+0+34+5+0.00009765625+0+-1+in%0A 500,400 noborder}}  +<imgcaption imageNo54|> 
-</WRAP> </panel> +[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+0+303633.8585081898%0AO+400+160+512+160+0%0Ag+400+288+400+320+0%0Ar+400+160+400+288+0+3%0Ac+176+160+288+160+0+0.000047+0%0A170+176+160+144+160+3+20+1000+5+0.1%0Al+288+160+400+160+0+0.001+0%0A|{{electrical_engineering_and_electronics_2:imageno54.jpg|click to start simulation}}]] 
 +</imgcaption> 
 +</panel> 
  
 <panel title="Parallel Resonant Circuit in Frequency Domain (Voltage on Resistor)">  <panel title="Parallel Resonant Circuit in Frequency Domain (Voltage on Resistor)"> 
-<WRAP>{{url>https://falstad.com/afilter/circuitjs.html?running=false&cct=$+1+0.000005+5+50+5+50%0A%25+4+17425.09278334521%0Ac+176+96+176+16+0+0.00038999999999999994+0%0Ag+240+144+240+176+0%0A170+128+16+96+16+3+20+1000+5+0.1%0Al+240+96+240+16+0+0.00009999999999999999+7.7025416617456886%0AO+240+96+288+96+0%0Aw+128+16+176+16+0%0Ar+240+96+240+144+0+0.1%0Aw+176+96+240+96+0%0Aw+240+16+176+16+0%0Ao+2+16+0+34+5+0.00009765625+0+-1+in%0A 500,400 noborder}}  +<imgcaption imageNo55|> 
-</WRAP> </panel> </accordion>+[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+0+303633.8585081898%0AO+368+288+416+288+0%0Ag+336+368+336+400+0%0Ar+336+288+336+368+0+1%0Ac+304+288+304+160+0+0.000047+0%0A170+304+160+256+160+3+20+1000+5+0.1%0Al+368+288+368+160+0+0.001+0%0Aw+304+160+368+160+0%0Aw+304+288+336+288+0%0Aw+368+288+336+288+0%0A|{{electrical_engineering_and_electronics_2:imageno55.jpg|click to start simulation}}]] 
 +</imgcaption> 
 +</panel>  
 +</accordion>
  
 ~~PAGEBREAK~~ ~~CLEARFIX~~ ~~PAGEBREAK~~ ~~CLEARFIX~~
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 [[https://www.electronics-tutorials.ws/oscillator/crystal.html|more background]] [[https://www.electronics-tutorials.ws/oscillator/crystal.html|more background]]
  
-Simulation in Time Domain <WRAP>{{url>https://www.falstad.com/circuit/circuitjs.html?running=false&ctz=CQAgjCBMCmC0CcIAMA6SA2JB2AzAFi0izByXgyyyhyhQFYQ8a64wwAoAcxCwA49GYdD36MckZMnYBjEQPFI5IHOl6ScrCIqTsA7krCQ1veMMNqdssEl5qF4G3dXrNknfpNmjIeOXDf3Hzx5SEVfCXtAz2VQoJDtGR8-cySI2MU8VwSAGxBo0ONTfwtkFCRytl8q6prEVCQtMo5ZfLphfJtJPBQ8cr7+-rBWCQSAJzyi+1bhbRQObmtbQTNHMRGpcb4BPCElFRKh2EN2AA8HJAkChzBESDZGKAEAYVOfMAY74XhxKBuHyGer2+lwBQUUkCID0MIAAyq9rH9Pg5IB8-gJoToAEZ5PBqNjopAqZREwKLOyxcIxBJnaI4OgE8rKOhUdHGACyAAkAF4AHQAztJRgBPPkAFwAhtkge8oFgBMDZSzHiAAEpAulQXgSeBMTUMdESOHvCDwaGwH7WTrm9brOjsAAybwksFxeXQAhdBxAADNJXzoCAGIFTc7dlsQEcZnolJG9iNo2SIxbymprRsHEsdislvtJIdjuNE2nEz9FJbygnVu6M+SEvpw9XwykdJtRMmc+ty311WX0NqcHj0Pr-LDpTR3vKMOBmf8BPb4e9wWZ3pdEAaQABLBekcB4sAEX6z1ULu7EiBsfDE7Yj+2QBdIELjwwQcTCASgl5nLDwck0Xgy18j0-PIAJwCAtTsS913tDh6zbWImwCdhsTlCBYD4cAhDXCxpTULAywfCBcChNQNwAOz5DcABNoH5UUAAtaL5NkngAVXYUIqAbAR-2EasBAAeRhJ5+QASQAOQ47AaxAas2FifiQCEkS+QE1iABVo24uMpH0RM5NWUspKoIsLUMRQ0wEAARDdOA3CVsn5NTNK-dAqBdBh+A9PAJHRQThP5ABRMjxUxbJoHYAB7MRwC6awJCDMo+ngLAhz7IMoBimhlLEyTouCWKMnihxSn6FK0pRSRfPkJSAtUjSosYEy4ouQNSuS1K2kq8EmuUEAbLshynIaoA 800,800 noborder}} </WRAP>+[[https://www.falstad.com/circuit/circuitjs.html?running=false&ctz=CQAgjCBMCmC0CcIAMA6SA2JB2AzAFi0izByXgyyyhyhQFYQ8a64wwAoAcxCwA49GYdD36MckZMnYBjEQPFI5IHOl6ScrCIqTsA7krCQ1veMMNqdssEl5qF4G3dXrNknfpNmjIeOXDf3Hzx5SEVfCXtAz2VQoJDtGR8-cySI2MU8VwSAGxBo0ONTfwtkFCRytl8q6prEVCQtMo5ZfLphfJtJPBQ8cr7+-rBWCQSAJzyi+1bhbRQObmtbQTNHMRGpcb4BPCElFRKh2EN2AA8HJAkChzBESDZGKAEAYVOfMAY74XhxKBuHyGer2+lwBQUUkCID0MIAAyq9rH9Pg5IB8-gJoToAEZ5PBqNjopAqZREwKLOyxcIxBJnaI4OgE8rKOhUdHGACyAAkAF4AHQAztJRgBPPkAFwAhtkge8oFgBMDZSzHiAAEpAulQXgSeBMTUMdESOHvCDwaGwH7WTrm9brOjsAAybwksFxeXQAhdBxAADNJXzoCAGIFTc7dlsQEcZnolJG9iNo2SIxbymprRsHEsdislvtJIdjuNE2nEz9FJbygnVu6M+SEvpw9XwykdJtRMmc+ty311WX0NqcHj0Pr-LDpTR3vKMOBmf8BPb4e9wWZ3pdEAaQABLBekcB4sAEX6z1ULu7EiBsfDE7Yj+2QBdIELjwwQcTCASgl5nLDwck0Xgy18j0-PIAJwCAtTsS913tDh6zbWImwCdhsTlCBYD4cAhDXCxpTULAywfCBcChNQNwAOz5DcABNoH5UUAAtaL5NkngAVXYUIqAbAR-2EasBAAeRhJ5+QASQAOQ47AaxAas2FifiQCEkS+QE1iABVo24uMpH0RM5NWUspKoIsLUMRQ0wEAARDdOA3CVsn5NTNK-dAqBdBh+A9PAJHRQThP5ABRMjxUxbJoHYAB7MRwC6awJCDMo+ngLAhz7IMoBimhlLEyTouCWKMnihxSn6FK0pRSRfPkJSAtUjSosYEy4ouQNSuS1K2kq8EmuUEAbLshynIaoA|Simulation in Time Domain]]
  
-Simulation in Frequency Domain <WRAP>{{url>https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+5+50+5+50%0A%25+4+252791342.77679944%0A170+448+48+416+48+3+20+1000+5+0.1%0Ax+695+186+703+189+4+12+S%0Ax+675+178+692+181+4+24+R%0Ax+820+37+924+40+4+18+8MHz+crystal%0Ax+378+102+544+105+4+18+linear+voltage+source%0Aw+512+48+576+48+0%0Ax+803+130+809+133+4+12+0%0Ax+695+131+703+134+4+12+S%0Ax+678+123+695+126+4+24+C%0Ax+786+122+803+125+4+24+C%0AO+848+144+912+144+0%0Ar+448+48+512+48+0+1%0Ar+656+208+656+160+0+0.1%0Ac+656+160+656+112+0+4.400000000000001e-12+-5.033145800262313%0Al+656+112+656+48+0+0.00009499999999999999+0%0Ac+752+48+752+208+0+5e-11+-0.6291750159603016%0Aw+656+208+752+208+0%0Aw+656+48+752+48+0%0Aw+576+48+656+48+0%0Ac+576+112+576+48+0+3e-11+0.0012090544090004919%0Ag+576+112+576+144+0%0Aw+752+208+800+208+2%0AB+384+16+528+80+2+Box%0Ag+848+208+848+224+0%0Ac+848+208+848+144+0+3e-11+0.0012090544090004919%0AB+624+16+816+240+2+Box%0Aw+800+208+800+144+0%0Aw+800+144+848+144+0%0Ao+0+16+0+34+5+0.00009765625+0+-1+in%0A noborder}} </WRAP>+[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+0.000005+0.75+50+5+50%0A%25+4+252791342.77679944%0A170+448+48+416+48+3+20+1000+5+0.1%0Ax+695+186+703+189+4+12+S%0Ax+675+178+692+181+4+24+R%0Ax+820+37+924+40+4+18+8MHz+crystal%0Ax+378+102+544+105+4+18+linear+voltage+source%0Aw+512+48+576+48+0%0Ax+803+130+809+133+4+12+0%0Ax+695+131+703+134+4+12+S%0Ax+678+123+695+126+4+24+C%0Ax+786+122+803+125+4+24+C%0AO+848+144+912+144+0%0Ar+448+48+512+48+0+1%0Ar+656+208+656+160+0+0.1%0Ac+656+160+656+112+0+4.400000000000001e-12+-5.033145800262313%0Al+656+112+656+48+0+0.00009499999999999999+0%0Ac+752+48+752+208+0+5e-11+-0.6291750159603016%0Aw+656+208+752+208+0%0Aw+656+48+752+48+0%0Aw+576+48+656+48+0%0Ac+576+112+576+48+0+3e-11+0.0012090544090004919%0Ag+576+112+576+144+0%0Aw+752+208+800+208+2%0AB+384+16+528+80+2+Box%0Ag+848+208+848+224+0%0Ac+848+208+848+144+0+3e-11+0.0012090544090004919%0AB+624+16+816+240+2+Box%0Aw+800+208+800+144+0%0Aw+800+144+848+144+0%0A|Simulation in Frequency Domain]]
  
 [[https://www.falstad.com/circuit/crystal.html|setup for the design]] [[https://www.falstad.com/circuit/crystal.html|setup for the design]]
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 +#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee1_taskctr#~~  Parallel Resonance in a Voltage-Fed Test Circuit                    #@TaskText_HTML@#
  
 +A test circuit for an electrical actuator contains a resistor, an inductor and a capacitor connected in parallel.
 +The circuit is supplied by an AC voltage source. At one specific frequency, the inductor and capacitor exchange energy with each other, so that the source current becomes minimal.
  
 +Data:
 +\begin{align*}
 +U &= 12~{\rm V} \\
 +R &= 10~{\rm k\Omega} \\
 +L &= 2.5~{\rm mH} \\
 +C &= 1~{\rm \mu F}
 +\end{align*}
  
 +1. Draw the circuit and add all current and voltage phasors.
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~601~@#
 +<WRAP leftalign>
 +The circuit consists of three parallel branches:
 +\begin{align*}
 +R \parallel L \parallel C
 +\end{align*}
  
 +The same voltage is present across all three components:
 +\begin{align*}
 +\underline{U}_R
 += \underline{U}_L
 += \underline{U}_C
 += \underline{U}
 +\end{align*}
  
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~601~@#
 +{{drawio>electrical_engineering_and_electronics_2:diagram601.svg}}
 +\begin{align*}
 +\underline{U}_R
 += \underline{U}_L
 += \underline{U}_C
 += \underline{U}
 +\end{align*}
 +
 +\begin{align*}
 +\underline{I}_R &: \text{ in phase with } \underline{U} \\
 +\underline{I}_L &: \text{ lags } \underline{U} \text{ by } 90^\circ \\
 +\underline{I}_C &: \text{ leads } \underline{U} \text{ by } 90^\circ
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +2. At which frequency $f_0$ does the input current become minimal?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~602~@#
 +<WRAP leftalign>
 +The source current becomes minimal when the inductor current and capacitor current have the same magnitude but opposite phase:
 +\begin{align*}
 +I_L = I_C
 +\end{align*}
 +
 +Since
 +\begin{align*}
 +I_L &= \frac{U}{X_L} \\
 +I_C &= \frac{U}{X_C}
 +\end{align*}
 +
 +this condition becomes
 +\begin{align*}
 +X_L = X_C
 +\end{align*}
 +
 +With
 +\begin{align*}
 +X_L &= \omega_0 L \\
 +X_C &= \frac{1}{\omega_0 C}
 +\end{align*}
 +
 +we get
 +\begin{align*}
 +\omega_0 L &= \frac{1}{\omega_0 C} \\
 +\omega_0 &= \frac{1}{\sqrt{LC}}
 +\end{align*}
 +
 +Therefore:
 +\begin{align*}
 +f_0 &= \frac{1}{2\pi\sqrt{LC}} \\
 +    &= \frac{1}{2\pi\sqrt{2.5\cdot 10^{-3}~{\rm H}\cdot 1\cdot 10^{-6}~{\rm F}}} \\
 +    &\approx 3183~{\rm Hz}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~602~@#
 +
 +[[https://www.falstad.com/afilter/circuitjs.html?cct=$+1+Infinity+0.75+50+5+50%0A%25+2+24389.095776063856%0Ac+400+160+400+224+0+0.000001+0%0Ar+400+272+400+320+0+0.001%0AO+400+272+432+272+0%0Ag+400+320+400+336+0%0A170+240+160+208+160+3+20+1000+5+0.1%0Al+336+160+336+224+0+0.0025+0%0Ar+272+160+272+224+0+10000%0Aw+240+160+272+160+0%0Aw+272+160+336+160+0%0Aw+336+160+400+160+0%0Aw+400+224+336+224+0%0Aw+336+224+272+224+0%0Aw+400+272+400+224+0%0AB+368+240+448+368+2+Box%0Ax+452+259+540+281+0+16+current%5Cnmeasurment%0A|{{:electrical_engineering_and_electronics_2:imageno602.jpg|click to start simulation}}]]  
 +
 +
 +\begin{align*}
 +f_0 \approx 3.18~{\rm kHz}
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +3. How large is the ratio $I_C/I$ at $f=f_0$?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~603~@#
 +<WRAP leftalign>
 +At resonance:
 +\begin{align*}
 +X_L = X_C
 +\end{align*}
 +
 +The common reactance is
 +\begin{align*}
 +X_0 &= \omega_0 L
 +     = \frac{1}{\omega_0 C}
 +     = \sqrt{\frac{L}{C}} \\
 +    &= \sqrt{\frac{2.5\cdot 10^{-3}~{\rm H}}{1\cdot 10^{-6}~{\rm F}}} \\
 +    &= 50~{\rm \Omega}
 +\end{align*}
 +
 +The capacitor current is therefore
 +\begin{align*}
 +I_C &= \frac{U}{X_0}
 +    = \frac{12~{\rm V}}{50~{\rm \Omega}}
 +    = 0.24~{\rm A}
 +\end{align*}
 +
 +At resonance, $I_L$ and $I_C$ cancel each other in the source current.
 +Therefore, the source current is only the resistor current:
 +\begin{align*}
 +I &= I_R
 +  = \frac{U}{R}
 +  = \frac{12~{\rm V}}{10~{\rm k\Omega}}
 +  = 1.2~{\rm mA}
 +\end{align*}
 +
 +Thus:
 +\begin{align*}
 +\frac{I_C}{I}
 += \frac{0.24~{\rm A}}{1.2~{\rm mA}}
 += 200
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~603~@#
 +\begin{align*}
 +I_C &= 0.24~{\rm A} \\
 +I &= 1.2~{\rm mA} \\
 +\frac{I_C}{I} &= 200
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +4. Draw the phasor diagram for $f=f_0$.
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~604~@#
 +<WRAP leftalign>
 +Choose the voltage as reference:
 +\begin{align*}
 +\underline{U}=U\angle 0^\circ
 +\end{align*}
 +
 +The branch currents are:
 +\begin{align*}
 +\underline{I}_R &= \frac{U}{R}\angle 0^\circ \\
 +\underline{I}_L &= \frac{U}{X_L}\angle -90^\circ \\
 +\underline{I}_C &= \frac{U}{X_C}\angle +90^\circ
 +\end{align*}
 +
 +with the reactances
 +\begin{align*}
 +X_L &= \omega L \\
 +X_C &= \frac{1}{\omega C}
 +\end{align*}
 +
 +At $f=f_0$:
 +\begin{align*}
 +X_L = X_C = 50~{\rm \Omega}
 +\end{align*}
 +
 +we get:
 +\begin{align*}
 +\underline{I}_R
 +&= 1.2~{\rm mA}\angle 0^\circ \\
 +\underline{I}_L
 +&= 0.24~{\rm A}\angle -90^\circ \\
 +\underline{I}_C
 +&= 0.24~{\rm A}\angle +90^\circ
 +\end{align*}
 +
 +
 +The source current is the phasor sum:
 +\begin{align*}
 +\underline{I}
 += \underline{I}_R+\underline{I}_L+\underline{I}_C
 +\end{align*}
 +
 +Since
 +\begin{align*}
 +\underline{I}_L + \underline{I}_C = 0
 +\end{align*}
 +
 +the total current is:
 +\begin{align*}
 +\underline{I} = \underline{I}_R
 += 1.2~{\rm mA}\angle 0^\circ
 +\end{align*}
 +
 +So the voltage and total current are in phase.
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~604~@#
 +\begin{align*}
 +\underline{U} &= 12~{\rm V}\angle 0^\circ \\
 +\underline{I}_R &= 1.2~{\rm mA}\angle 0^\circ \\
 +\underline{I}_L &= 240~{\rm mA}\angle -90^\circ \\
 +\underline{I}_C &= 240~{\rm mA}\angle +90^\circ \\
 +\underline{I} &= 1.2~{\rm mA}\angle 0^\circ
 +\end{align*}
 +
 +{{drawio>electrical_engineering_and_electronics_2:diagram604.svg}}
 +
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +5. How large are the active, reactive and apparent power at the input of the circuit?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~605~@#
 +<WRAP leftalign>
 +At resonance, the inductive and capacitive reactive currents cancel at the input.
 +Therefore the input behaves like a purely resistive load.
 +
 +The active power is:
 +\begin{align*}
 +P &= \frac{U^2}{R} \\
 +  &= \frac{(12~{\rm V})^2}{10~{\rm k\Omega}} \\
 +  &= 14.4~{\rm mW}
 +\end{align*}
 +
 +The input reactive power is:
 +\begin{align*}
 +Q = 0 ~\rm var
 +\end{align*}
 +
 +The source current is:
 +\begin{align*}
 +I = 1.2~{\rm mA}
 +\end{align*}
 +
 +Thus the apparent power is:
 +\begin{align*}
 +S &= UI \\
 +  &= 12~{\rm V}\cdot 1.2~{\rm mA} \\
 +  &= 14.4~{\rm mVA}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~605~@#
 +\begin{align*}
 +P &= 14.4~{\rm mW} \\
 +Q &= 0 ~{\rm var}\\
 +S &= 14.4~{\rm mVA}
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +6. Draw the phasor diagram for $f=f_0/2$.
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~606~@#
 +<WRAP leftalign>
 +At half the resonance frequency:
 +\begin{align*}
 +f &= \frac{f_0}{2}
 +\end{align*}
 +
 +The inductive reactance is halved:
 +\begin{align*}
 +X_L &= 25~{\rm \Omega}
 +\end{align*}
 +
 +The capacitive reactance is doubled:
 +\begin{align*}
 +X_C &= 100~{\rm \Omega}
 +\end{align*}
 +
 +The branch currents are:
 +\begin{align*}
 +\underline{I}_R
 +&= \frac{12~{\rm V}}{10~{\rm k\Omega}}\angle 0^\circ
 += 1.2~{\rm mA}\angle 0^\circ \\
 +\underline{I}_L
 +&= \frac{12~{\rm V}}{25~{\rm \Omega}}\angle -90^\circ
 += 0.48~{\rm A}\angle -90^\circ \\
 +\underline{I}_C
 +&= \frac{12~{\rm V}}{100~{\rm \Omega}}\angle +90^\circ
 += 0.12~{\rm A}\angle +90^\circ
 +\end{align*}
 +
 +The total current is:
 +\begin{align*}
 +\underline{I}
 +&= 1.2~{\rm mA} - j(0.48~{\rm A}-0.12~{\rm A}) \\
 +&= 0.0012 - j \cdot 0.36~{\rm A}
 +\end{align*}
 +
 +Therefore:
 +\begin{align*}
 +I &\approx 0.360~{\rm A} \\
 +\varphi_I &= -89.8 ... ^\circ
 +\end{align*}
 +
 +The circuit behaves almost like an inductive load at $f=f_0/2$.
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~606~@#
 +
 +
 +\begin{align*}
 +\underline{U} &= 12~{\rm V}\angle 0^\circ \\
 +\underline{I}_R &= 1.2~{\rm mA}\angle 0^\circ \\
 +\underline{I}_L &= 480~{\rm mA}\angle -90^\circ \\
 +\underline{I}_C &= 120~{\rm mA}\angle +90^\circ \\
 +\underline{I} &\approx 360~{\rm mA}\angle -90^\circ
 +\end{align*}
 +
 +{{drawio>electrical_engineering_and_electronics_2:diagram606.svg}}
 +
 +
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +#@TaskEnd_HTML@#
 +
 +
 +
 +
 +#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee1_taskctr#~~  Harmonic Trap for the 5th Grid Harmonic                    #@TaskText_HTML@#
 +
 +<WRAP right>{{drawio>electrical_engineering_and_electronics_2:diagram630.svg}}</WRAP>
 +
 +
 +Many power electronic converters generate harmonics of the grid frequency.
 +Typical harmonic frequencies are
 +\begin{align*}
 +f_\nu = \nu \cdot f_{\rm grid}
 +\end{align*}
 +with
 +\begin{align*}
 +\nu = 5, 7, 11, 13, \ldots
 +\end{align*}
 +
 +To suppress a selected harmonic, a series resonant circuit is connected as a harmonic trap.
 +At its resonance frequency, the trap has a very small impedance and therefore offers the selected harmonic current a low-impedance path.
 +
 +Data:
 +\begin{align*}
 +C_{\rm trap} &= 1.5~{\rm \mu F} \\
 +U &= 230~{\rm V} \\
 +f_{\rm grid} &= 50~{\rm Hz}
 +\end{align*}
 +
 +1. Give the formula of the complex input impedance of the harmonic trap.
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~631~@#
 +<WRAP leftalign>
 +The harmonic trap is a series connection of an inductor and a capacitor:
 +\begin{align*}
 +\underline{Z}_{\rm trap}
 += \underline{Z}_{L_{\rm trap}}+\underline{Z}_{C_{\rm trap}}
 +\end{align*}
 +
 +With
 +\begin{align*}
 +\underline{Z}_{L_{\rm trap}} &= j\omega L_{\rm trap} \\
 +\underline{Z}_{C_{\rm trap}} &= \frac{1}{j\omega C_{\rm trap}}
 += -j\frac{1}{\omega C_{\rm trap}}
 +\end{align*}
 +
 +the input impedance becomes:
 +\begin{align*}
 +\underline{Z}_{\rm trap}
 +&= j\omega L_{\rm trap} - j\frac{1}{\omega C_{\rm trap}} \\
 +&= j\left(\omega L_{\rm trap}-\frac{1}{\omega C_{\rm trap}}\right)
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~631~@#
 +\begin{align*}
 +\underline{Z}_{\rm trap}
 += j\left(\omega L_{\rm trap}-\frac{1}{\omega C_{\rm trap}}\right)
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +2. How large must $L_{\rm trap}$ be so that the 5th harmonic is suppressed ($\nu=5$)?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~632~@#
 +<WRAP leftalign>
 +The 5th harmonic has the frequency:
 +\begin{align*}
 +f_5 &= 5 f_{\rm grid}
 +    = 5\cdot 50~{\rm Hz}
 +    = 250~{\rm Hz}
 +\end{align*}
 +
 +The angular frequency is:
 +\begin{align*}
 +\omega_5 &= 2\pi f_5
 +          = 2\pi\cdot 250~{\rm s^{-1}}
 +          = 1570.8~{\rm s^{-1}}
 +\end{align*}
 +
 +For a series resonant circuit, the impedance becomes zero when the two reactances have equal magnitude:
 +\begin{align*}
 +X_L = X_C
 +\end{align*}
 +
 +So:
 +\begin{align*}
 +\omega_5 L_{\rm trap}
 += \frac{1}{\omega_5 C_{\rm trap}}
 +\end{align*}
 +
 +Therefore:
 +\begin{align*}
 +L_{\rm trap}
 +&= \frac{1}{\omega_5^2 C_{\rm trap}} \\
 +&= \frac{1}{(1570.8~{\rm s^{-1}})^2\cdot 1.5\cdot 10^{-6}~{\rm F}} \\
 +&= 0.270~{\rm H}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~632~@#
 +\begin{align*}
 +L_{\rm trap} \approx 0.270~{\rm H}
 += 270~{\rm mH}
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +3. How large is the complex input impedance for the fundamental frequency ($\nu=1$)?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~633~@#
 +<WRAP leftalign>
 +For the fundamental frequency:
 +\begin{align*}
 +f_1 &= f_{\rm grid} = 50~{\rm Hz} \\
 +\omega_1 &= 2\pi f_1 = 314.16~{\rm s^{-1}}
 +\end{align*}
 +
 +The inductive reactance is:
 +\begin{align*}
 +X_L &= \omega_1 L_{\rm trap} \\
 +    &= 314.16~{\rm s^{-1}}\cdot 0.270~{\rm H} \\
 +    &= 84.9~{\rm \Omega}
 +\end{align*}
 +
 +The capacitive reactance is:
 +\begin{align*}
 +X_C &= \frac{1}{\omega_1 C_{\rm trap}} \\
 +    &= \frac{1}{314.16~{\rm s^{-1}}\cdot 1.5\cdot 10^{-6}~{\rm F}} \\
 +    &= 2122~{\rm \Omega}
 +\end{align*}
 +
 +Thus:
 +\begin{align*}
 +\underline{Z}_{\rm trap,1}
 +&= j(X_L-X_C) \\
 +&= j(84.9~{\rm \Omega}-2122~{\rm \Omega}) \\
 +&= -j \cdot 2037~{\rm \Omega}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~633~@#
 +\begin{align*}
 +\underline{Z}_{\rm trap,1}
 += -j \cdot 2037~{\rm \Omega}
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +4. What reactive power is absorbed by the harmonic trap at $f=f_{\rm grid}$?
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~634~@#
 +<WRAP leftalign>
 +At the fundamental frequency, the harmonic trap has the impedance:
 +\begin{align*}
 +\underline{Z}_{\rm trap,1} = -j \cdot 2037~{\rm \Omega}
 +\end{align*}
 +
 +The current magnitude is:
 +\begin{align*}
 +I &= \frac{U}{|Z_{\rm trap,1}|} \\
 +  &= \frac{230~{\rm V}}{2037~{\rm \Omega}} \\
 +  &= 0.113~{\rm A}
 +\end{align*}
 +
 +Since the impedance is capacitive, the reactive power is negative:
 +\begin{align*}
 +Q &= -UI \\
 +  &= -230~{\rm V}\cdot 0.113~{\rm A} \\
 +  &= -26.0~{\rm var}
 +\end{align*}
 +
 +Equivalently:
 +\begin{align*}
 +Q &= \frac{U^2}{X_L-X_C} \\
 +  &= \frac{(230~{\rm V})^2}{84.9~{\rm \Omega}-2122~{\rm \Omega}} \\
 +  &= -26.0~{\rm var}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~634~@#
 +\begin{align*}
 +I &= 0.113~{\rm A} \\
 +Q &= -26.0~{\rm var}
 +\end{align*}
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
 +
 +5. Draw the magnitude of the input impedance $Z$ as a function of the frequency $\omega$. (not an exam-style question) 
 +<WRAP group>
 +<WRAP half column rightalign>
 +#@PathBegin_HTML~635~@#
 +<WRAP leftalign>
 +The input impedance is:
 +\begin{align*}
 +\underline{Z}_{\rm trap}
 += j\left(\omega L_{\rm trap}-\frac{1}{\omega C_{\rm trap}}\right)
 +\end{align*}
 +
 +Therefore, the magnitude is:
 +\begin{align*}
 +|Z_{\rm trap}|
 +=
 +\left|
 +\omega L_{\rm trap}-\frac{1}{\omega C_{\rm trap}}
 +\right|
 +\end{align*}
 +
 +For the sketch:
 +\begin{align*}
 +|Z_{\rm trap}| &\rightarrow \infty
 +\qquad \text{for very small } \omega \\
 +|Z_{\rm trap}| &= 0
 +\qquad \text{at } \omega=\omega_5 \\
 +|Z_{\rm trap}| &\rightarrow \infty
 +\qquad \text{for very large } \omega
 +\end{align*}
 +
 +The minimum occurs at:
 +\begin{align*}
 +\omega_5 = 1570.8~{\rm s^{-1}}
 +\end{align*}
 +
 +or:
 +\begin{align*}
 +f_5 = 250~{\rm Hz}
 +\end{align*}
 +</WRAP>
 +#@PathEnd_HTML@#
 +</WRAP>
 +<WRAP half column>
 +#@ResultBegin_HTML~635~@#
 +\begin{align*}
 +|Z_{\rm trap}|
 +=
 +\left|
 +\omega L_{\rm trap}-\frac{1}{\omega C_{\rm trap}}
 +\right|
 +\end{align*}
 +
 +\begin{align*}
 +|Z_{\rm trap}|_{\rm min}=0
 +\quad \text{at} \quad
 +f_5=250~{\rm Hz}
 +\end{align*}
 +
 +{{drawio>electrical_engineering_and_electronics_2:diagram635.svg}}
 +
 +#@ResultEnd_HTML@#
 +</WRAP>
 +</WRAP>
  
 +#@TaskEnd_HTML@#