Simple, clear and amazing.! Keep making them good videos. They truly help a lot of ppl

Thank you Sir. You lectures have rescued me and my career. You're much more than just being Awesome :)

at 30:33, you calculate pu of real power (12 Mw) and at 31.19 you are considering it as apparent power.....i think you need to correct your question ...12 Mw should be 12 MVA ..if i m not wrong.

Your operation in division was wrong you cant divide polar form to rectanguLarform. Convert tha polar form to rectangular form then divide bythedinominTor by. j 0.25 simply 1(cos0+j sin0) multiply both numerator and dinominator by -j0.25

at 30:00, isnt P= 12 MW? why have we taken it to be S?

Thanks for this good lecture first ! I have a quetion at 33:15 when you caclulate the line current I, for this 3-phase system it is supposed that V is the line-to-line voltage, therefore S=sqrt(3)*V*I_conj. So when we calculate the complex current, I should = S_conj/(sqrt(3)*V_conj).....not S_conj/V_conj

A 250 MVA, 13.8 kV star connected with the neutral connected to the earth through a reactance, is connected to a 250 MVA, 13.8 kV/220 kV transformer. Primary and secondary windings of the transformer are star connected with neutral point is solidly grounded. Generator reactances are : X” =0.2 pu, X’=0.3 pu, X2=0.2 Xo=0.1 p.u., Xn=0.05 p.u. Positive, negative and zero sequence reactance of the transformer is 11%.A single line to ground fault is developed at the high voltage side of the transformer . Calculate: a) Fault current during sub-transient period b) Voltage at the generator terminals during sub transient period c) Fault current during transient period d) Voltage at the generator terminals during transiwnt period How solve this question

Could you explain why symmetrical fault L-L-L-G and L-L-L is same?

Thank you Sir, greetings from Ankara,Turkey

At 47:02 why you neglect the left side ?

I have a long-pending query. 1. For a balanced 3 Phase, positive phase sequence components current in Fig. (or diagram) show the direction of rotation in ANTI-CLOCKWISE direction and mention RYB. But, in moving ANTI-CLOCKWISE direction, sequence to face first IR1 further IB1 and at last IY1 2. Similarly for balanced negative sequence components current in Fig. (or diagram) show the direction of arrow ANTI-CLOCKWISE direction and mention RBY. But, in moving ANTI-CLOCKWISE, sequence to face IR2 further IY2 and at last IB2 It is not understandable. Till now, in every power system book, this is mentioned. For your ready reference, Page 424 from Power System VK Mehta.

sir in problem 1 the impedance of the generator need to be neglected right , why cannot we calculate the line reactance taking into account

Very nice explanation. Highly appreciated

Sir, why you kept the bus voltage on the generator side 1

at 36 min of lecture .can u please explain the flow of current and reactive power

sir ,why we neglect the effect of saliency during fault analysis??

is it an sign error when you add the 0.3+i0.52-i10.23 = 0.3+j9.71 or I am missing some concept ?

Sir can you make a video for unbalanced fault I mean for Unsymmetrical fault analysis??

I didn't understand the way you transformed load power into PU! I think you assumed it as MVA not MW! Please, I'll appreciate your clarifying Sir! Thanks for your magnificent examples and explanations!

In Q1 we are getting fault current with negative sign.Does that mean current is flowing from ground to the generator.And if yes how this is possible?? if time permits please reply sir

hye sir. i want to clarify.For the second example If = net current = 0.3 + j3.48 pu after considering the load current, Io?. without conaidering the load, If -j4 pu?

hye sir.at 33:47, you use the formula I= Sconj/ Vconj.Just wondering since we are doing 3 phase calculation should there be a square root of 3 somewhere? Same for LF I saw S= VIconj. No square root of 3.

sir,in the last question,we have used Xd" for both prefault and post fault condition (but you said earlier that Xd" is used post fault only).Can you clarify?

When calculating voltage drop why did you do this... I*j0.15 ...i got lost there

Hi Pradeep, I like your lecture

sir at 43.41 u said that we have taken bus volatge at node B u have said to consider the potential at 1.0 pu and the overall potential differece will come out to be zero volts..i do agree with that sir...but why havent we considered the potential at bus b when we were calculating for yV2 ..please explain sir..?

at 48.26 at net current angle 2.79 is not considered why sir?

Thanks for your help

Sir just want to clarify,the load power is in MW and if we divide with Sbase we will obtain the real power right???

Hye Sir. To clarify; if load is considered we use superposition method and if load is not considered we use normal thevenin theorem?

thank you sir i understand my report next week is about fault analysis

sir at 22.30 why j0.1 is included after bus 1 , but actually it has to be before bus1 am i right sir ??

@47:43 error

thank you so much may allah protect you please make exemples for unbalanced fault analysis please i need it in my project please respect from your algeria student

Thank and it is so usefull for me

thannks

thanks

new vids...nice

Thank u sir

i saw some of ur tutorial but u doing wrong calculation again and again... first see some tutorial how to do calculation

this video us nothing but helpfull