yes

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The exact reason why i came back to this video. by all means please correct me if i'm wrong, but since we are only looking at the load in this stage. if you would draw a Y or delta load with the outgoing wires, not connected to any source. And deem the voltage between te lines the linevoltage, you will be able to see that in a delta circuit, the line voltage equals the phase voltaqge ( the voltage over the impedance), and the the linecurrent will be a facter sqrt(3) more than the current through the phase ( through the impedance). You will find the reverse being true for a y connected load. For me the confusing thing was looking at the possible source connections, for definitions of phase and line voltage. But once you look at the load it becomes alot clearer, hope this helps

Just like with any RCL circuit, the power generated on each element (resitance, inductanve, capacitance) it will be out of phase. When you add the voltage drops across each element, it will always be higher than the total input voltage, but when you account for the phase difference they will add up correctly. Here with a 3-phase circuit you cannot add them up algebraically because of the phase difference.

@@MichelvanBiezen thank you for your explanation, sir!

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yeah you are right

​@@MichelvanBiezen in the rule S=Z times the magnitude of current ^2 you didnt mention of its the line current or the phase current which one is it?

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You are welcome.

You are welcome.

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The general equation for the average power per phase is as shown in the video. The impendance of the circuit needs to be calculated as shown in the previous videos depending on the type of circuit you are dealing with.

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