Apparent Power, Real Power and Reactive Power

AI Thread Summary
The discussion focuses on calculating current, apparent power, real power, and reactive power in an AC circuit with given voltage, resistance, inductance, and capacitance. The voltage is converted from peak to RMS using the formula v = 169.7/sqrt(2), which is essential for accurate power calculations in AC circuits. Participants explain how to determine the total impedance by combining the resistive and reactive components using complex numbers. The current is then calculated by dividing the RMS voltage by the total impedance, leading to the determination of apparent power. Finally, the power factor is found by dividing real power by apparent power, emphasizing that time is not needed for these calculations.
fatmoe
Messages
6
Reaction score
0
A voltage source of v(t) = 169.7sin200t V is connected across a series combination of a resistance of 10 ohm, an inductance of 10mH, and a capacitance of 500 uF. Determine the current in the circuit, the apparent power, the real power, and the reactive power supplied by the source. What is the power factor of the circuit.


I am having problems with this questions, as I don't know how to get the voltage since no time is given, and without the voltage, none of the equations are going to be any good.. Can someone point me in the right direction on how to get start with this question?
 
Physics news on Phys.org
Well, I figured out how to calculate the voltage = v = 169.7/sqr(2).. But I don't understand where the sqrt(2) comes from in this formula?
 
fatmoe said:
Well, I figured out how to calculate the voltage = v = 169.7/sqr(2).. But I don't understand where the sqrt(2) comes from in this formula?

That's the conversion from peak to RMS for the magnitude of the voltage source. If you're dealing with power in an AC circuit you almost always want to be working with RMS values.
 
If you are proficient in vectors it should be doable for you.

impedance of cap: 1/jwC
impedance of inductor: jwL

w=200 in this case. (omega=200)

J simply equals 1<90

Add up your three impedances.
10 + 1/jwC + jwL
10+ (1/wC)<-90 + (wL)<90

This will give you one vector at 0 degrees, one at -90 degrees and one at 90 degrees.


Add them together and you will have one vector with an angle. Now divide your RMS voltage by this Vector with the angle. You now have the current...also a vector with an angle.

Now multiply your RMS voltage by your current. This will give you your apparent power...also with an angle.

Current and power should be complex conjugates.

Now find the x and y-axis of your apparent power from the angle. The x-axis is your real power and the y-axis is your reactive power.

To find power factor, divide real power by apparent power.

Notice how the "time" you mention above was not needed to find any of the answers.

It takes new electrical guys quite a while to grasp all these concepts together. So if you don't get it the first time, or even 10th time, understandable.
 
Last edited:

Similar threads

Engineering How am I susposed to find the active power here?
Replies
9
Views
2K
Transformers and Active/Reactive power question from HW
Replies
7
Views
2K
Engineering AC Circuit Power/impedance question
Replies
16
Views
3K
AC Cirucits - Impedance Values
Replies
5
Views
2K
Apparent power, true power, reactive power and power factor
Replies
7
Views
3K
Engineering Source impedance using given voltage swing and power
Replies
2
Views
1K
Why does amplifier sink power for Vout>0 and sources power for Vout<0?
Replies
1
Views
2K
Calculating Three Phase Power Load: Help & Homework Statement
Replies
2
Views
4K
Electricity True, Apparent and Reactive power
Replies
1
Views
2K
Calculating Complex Apparent Power in a Sinusoidal Circuit
Replies
12
Views
2K

Hot Threads

Recent Insights

Back
Top