Question #9f759

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Question #9f759

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Answer 1 · 2015-08-07T04:38:15

Circuit Simplification.

Explanation:

enter image source here

Start from the right side of the circuit. 20, 10, 20-ohm resistors are series connected, so their eq. resistance is

$R_"eq 1" =20+10+20=50Omega$ .

Then this eq.resistance is connected in parallel with another 50-ohm resistor, so their eq.resistance is

$R_"eq 2" = 50/2 = 25 Omega$

This 25-ohm eq. resistor is again connected in series with a 25 ohm, so the eq. resistor once again becomes

$R_"eq 3" = 25+25= 50Omega$

But then another 50-ohm is connected with this eq. resistor in parallel, so eq. resistance becomes

$R_"eq 4" = 50/2=25Omega$

At last, this 25-ohm eq. resistor is connected with the rest

$R_"eq 5" = 10+5 + 25 = 40Omega$

The 2nd answer is a bit lengthy. Hopefully you don't get frustrated. I'm typing the solution. Until I post the 2nd answer, digest this 1st question.

Answer 2 · 2015-08-09T15:28:23

Oops! Misread it...
Here is the second one.
Good work on part one
https://drive.google.com/a/methuen.k12.ma.us/file/d/0B3FEehgBkvyhTVJxbXJxdHZkTkk/view?usp=docslist_api

Answer 3 · 2015-08-30T11:39:04

For part (b) $V= "160 V"$

Explanation:

So, your circuit looks like this

enter image source here

You know that the power dissipated by the $10Omega$ resistor located in the lower right of the circuit is $"10 W"$ .

What you have to do is use that power to calculate the intensity of the current that passes through that resistor

$color(blue)(P = I^2 * R implies I = sqrt(P/R))$

In your case, you would get

$I = sqrt( (10color(red)(cancel(color(black)("W"))))/(10color(red)(cancel(color(black)("W")))/"A"^2)) = "1 A"$

Next, you need to work backward from this current to determine the current that works its way from the voltage source.

enter image source here

So, current $I_1$ is coming out of the source and going into point $color(blue)(A)$ , where it splits into currents $I_2$ and $I_3$ . Current $I_3$ goes into point $color(blue)(B)$ and plits into currents $I_4$ and $I_5$ .

You know that $I_4 = "1 A"$ , since that's the current that goes through the $"10-W"$ resistor. Now, because the equivalent resistance of those three resistors in series is equal to $50Omega$ , $I_5$ will be equal to $I_4$ .

That happens because both currents pass through $50Omega$ resistors.

This means that

$I_3 = I_4 + I_5 = 2 * I_4 = 2 * "1 A" = "2 A"$

The equivalent resistance between points $color(blue)(B)$ and $color(blue)(C)$ is equal to $25Omega$ , since you have two $50Omega$ resistors in parralel.

This means that the equivalent resistance between points $color(blue)(A)$ and $color(blue)(C)$ will be $50Omega$ , since you have two $25Omega$ resistors in series.

This means that $I_3$ is equal to $I_2$ , since they both pass through $50Omega$ resistors. The current that's coming from the source, $I_1$ , will thus be

$I_1 = I_2 + I_3 = 2 * I_3 = 2 * "2 A" = "4 A"$

The equivalent resistance of the circuit is $40Omega$ , which means that the voltage rise across the source will be

$V = I * R$

$V = 4color(red)(cancel(color(black)("A"))) * 40"V"/color(red)(cancel(color(black)("A"))) = color(green)("160 V")$

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Question #9f759

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