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[[Category:2015 Spring ECE 201 Peleato]][[Category:2015 Spring ECE 201 Peleato]][[Category:2015 Spring ECE 201 Peleato]][[Category:2015 Spring ECE 201 Peleato]][[Category:2015 Spring ECE 201 Peleato]]
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[[Category:ECE201]]  
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[[Category:ECE]]  
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[[Category:ECE201Spring2015Peleato]]
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[[Category:circuits]]
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[[Category:linear circuits]]
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[[Category:problem solving]]
  
=Problem 12 Exam 1=
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=Problem 12 exam 1=
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<center><font size= 4>
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'''Practice question for [[ECE201]]: "Linear circuit analysis I" '''
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</font size>
  
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By: Anonymous
  
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Topic: Nodal analysis
  
Put your content here . . .
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</center>
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----
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==Question==
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The value of voltage <math>v_1</math> in the following circuit is:
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[[File:Circuit12.png|framed|center]]
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----
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----
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===Answer ===
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Assuming that ground is at the bottom of the circuit, as we usually do, we want to find the voltage of the other two nodes A and B. Our unknowns will be <math>V_A</math> and <math>V_B</math> and the desired voltage <math>v_1</math> can be expressed as <math>v_1=V_B-V_A</math>.
  
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The voltage <math>V_A</math> is easy to find, since node A is connected to a grounded voltage source. However, you have to be careful with the polarity of this source, since it has the plus side connected to ground and the minus side connected to the node. Then <math>V_A=-2V</math>.
  
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Now we need to write a nodal analysis equation to node B:
  
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<math>\begin{align}
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\frac{V_B-V_A}{2}+0.5v_1+\frac{V_B}{4}-2= & 0\\
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\frac{V_B-(-2)}{2}+0.5(V_B-(-2))+\frac{V_B}{4}-2= & 0\\
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V_B= & 0
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\end{align}
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</math>
  
[[ 2015 Spring ECE 201 Peleato|Back to 2015 Spring ECE 201 Peleato]]
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Finally, <math>v_1=0-(-2)=2</math>.
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----
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==Questions and comments==
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If you have any questions, comments, etc. please post them below
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*Comment 1
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**Answer to Comment 1
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*Comment 2
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**Answer to Comment 2
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----
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[[2015 Spring ECE 201 Peleato|Back to 2015 Spring ECE 201 Peleato]]
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[[ECE201|Back to ECE201]]

Latest revision as of 12:26, 18 February 2015


Problem 12 exam 1

Practice question for ECE201: "Linear circuit analysis I"

By: Anonymous

Topic: Nodal analysis


Question

The value of voltage $ v_1 $ in the following circuit is:

Circuit12.png


Answer

Assuming that ground is at the bottom of the circuit, as we usually do, we want to find the voltage of the other two nodes A and B. Our unknowns will be $ V_A $ and $ V_B $ and the desired voltage $ v_1 $ can be expressed as $ v_1=V_B-V_A $.

The voltage $ V_A $ is easy to find, since node A is connected to a grounded voltage source. However, you have to be careful with the polarity of this source, since it has the plus side connected to ground and the minus side connected to the node. Then $ V_A=-2V $.

Now we need to write a nodal analysis equation to node B:

$ \begin{align} \frac{V_B-V_A}{2}+0.5v_1+\frac{V_B}{4}-2= & 0\\ \frac{V_B-(-2)}{2}+0.5(V_B-(-2))+\frac{V_B}{4}-2= & 0\\ V_B= & 0 \end{align} $

Finally, $ v_1=0-(-2)=2 $.



Questions and comments

If you have any questions, comments, etc. please post them below

  • Comment 1
    • Answer to Comment 1
  • Comment 2
    • Answer to Comment 2

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Back to ECE201

Alumni Liaison

Questions/answers with a recent ECE grad

Ryne Rayburn