Very good explanation, thank you

What a lovely way of teaching. Please keep it up for benefit of students having confronted with teachers of a average teaching skill.

The best video encountered so far. States the basics and sums it all up with questions. Thank you so much!

Even after almost four years of the publication, this video helped me a lot today, so I could explain this concept to a dear friend of mine, thank you so much because knowledge is a gift

I did the homework of the minute 27:50 of this great video in a step by step basis. Problem. Data Load S = 400KVA = 400 x10^3 VA Power factor(old)= 0.4 inductive Frequency=60 Hz Calculate Q delivered and C necessary to connect in parallel to the load in order to improve the power factor to 0.85 capacitive. P=ISI cos𝜃 = P=ISI pf(old)=400000(0.4)=1600W 𝜃old= +arcCos pf(old)=+arcCos(0.4)=+66.4218° The angle is positive because the old power factor is inductive. Using trigonometry I got Tan 𝜃old=Qold/P I solved for Qold Qold=P Tan 𝜃old=(160000) Tan 66.4218° Qold=366605.68VAR This is the reactive power without the capacitor. I calculated the new angle of the complex power S 𝜃new= -arcCos pf(new)=-arcCos(0.85)=-31.788° The angle is negative because the new power factor is capacitive. Using trigonometry I got Tan 𝜃new=Qnew/P I solved for Qnew Qnew=P Tan 𝜃new=(160000) Tan (-31.788)° Qnew=-99157.816 VAR This is the new reactive power after connecting the capacitors (load+capacitor) The reactive power that should be delivered to the load is: ΔQ=Qnew-Qold ΔQ=-99157.816-366605.68 ΔQ=-465763.49 VAR The negative quantity indicated that the power delivered should come from a capacitor. Calculation of the capacitance. I used the following formula: C=IΔQI/(2πf (Vs^2)) C=465763.49/(2π(60)(5000^2)) C=4.9419x10^-5 F C=49.419 μF My name is Carlos Vicente Dominguez. I recently graduated as a specialist in electric power systems from Central University of Venezuela in Caracas. Best regards from Venezuela.

Thanks for this. As an EE who mostly does work in DC-to-DC power, refreshing the AC side of things is very helpful.

Thank you very much Dr Linares. I really understood much from this lecture and enjoyed the way you explained, it is amazing and I am sure there is a lot to learn from this tutorial time. by the way I found the answer of the last questions capacitor 49.46mF

Truly awesome 'quick summary' which helped me tremendously with my understanding of PFC as indeed all your lectures are just great. I love the way you deliver the concepts in your own style for ease of understanding, so much so I believe I have watched them all and sometimes more than once! Thank you very much for sharing your knowledge and please do keep them coming! PS I calculated an additional 21.06uF for a total of 49.46uF for the capacitive requirement - I hope that's right!

Perfectly explained. Thanks for refreshing so well the concept.

I can finally understand how to get that Qcap! that will be a one point I'll be getting on the PE for sure. Thank You much!

WOW which I had you as instructor when I was taken my electronic class in school Well Done.

what i didn't understand in 1 month i have undrstood it well in 30min thank you so much!

Excellent video, easy to understand and very useful

Excellent Tutorial, thank you very much for your presentations!

Thanks very much Dr. Linares, your fantastic ping pong analogy is wonderful, so many mathematical/power concepts explained in one efficient analogy. Thankyou

Great & wonderful explain. Your way of expressing & explaining in 2 good

this is very helpful lecture and very illustrative as well as clear conception.!!!!!!

14:36 Through some months of thinking about this stuff just casually after taking intro to circuits (which I am happy I don't need to go further, because I am a Civil Engineering Undergrad Student) 14:38 makes perfect sense. No wonder i kept seeing 1/2 and in your older videos it's just 1. I remember I would go to the gym this past Summer and keeping trying to processes all the phasor relationships involving power while doing cardio... and always could not rationalize that difference in coefficient.

KEEP MAKING SUCH VIDEOS IT HELPS A LOT.

wow!!! great job sir... your summary helped a lot thank you...

This is simply excellent Sir ! Thank you very much !

Great video, and great information. Very easy to understand, THANK YOU!

si!!, acerte, I did the year before watching the entire video and gave 267.7 kvar , calculating current values ​​before and after compensation , etc.

Wow, nice teacher, nice video lecture ❤ Thanks a lot !

What effect does a leading power factor or having negative reactive power have on electrical systems? Other than more capacitive than reactive.

I really enjoyed watching this video and found it to be very helpful !! Thank you !

at 27:00 wasn't omega supposed to be negative from the previous formula?.. but that would give you negative capacitance??

Finally, a complete engineering explanation upon this subject. I got sick of amateurs who use the beer analogy to explain apparent power...

Hey sir is the answer 49.4 micro farads ?

Thank you so so much, it is very useful for non professionals like me. Thank you again

thank you , you have cleared my information about concept of COMPLEX POWER thank you again

SIR!! You cleared all my concepts!...thank you sir....please keep uploading more videos!

You can make any topic so cool and easy!! thanks

Very helpful video for electrical engineering

hi for the last part of the question while finding for C where did u get your omega from?

So nice and educative

Owsome way of delievering Lecture thank u sir

Thank you very much for those videos. Absolutely great. Is it in any case possible to do a separate video on reactive power and it‘s good use in transmission network in order to control and regulate voltage? It is such difficult to grasp the concept...would be very grateful. Thanks in advance!

Thanks for this sir. God bless you!

Great video indeed sir, but how did you calculate the omega value when you were determining the value of the capacitor?

Ahhh... Thanks for using the 'scope! I kinda got it before...now i really get it. Hmm... Is a switching type power supply considered resistive, inductive, capacitive, a combination or...? Just wondered, as i imagine linear transformers are inductive with heavy losses.. But switching ones are inductors switched by resistive semiconductors and also have tank capacitors...

thank you for the video great one but from where you obtained omega of 377?

great video sir! Thank you!

I learned a lot from this video,thanks a lot

how did u get the 377 as ur omega on the 1st example?

Thank you, useful info..now i know how to use proper units.

where did you get the value of omega?

Great video sir... But how did u get Qold????

Very informative indeed..thanks much..Cheers,

Really appreciate your good work

Thank You!

THANK YOU VERY MUCH SIR .. WELDON .

Is it 49.46mF? thanks for the summary, good job, great teaching!

thanx a lot ... very useful and makes things easier

sir just wanna ask... why did you assume that angular velocity=377 denoted as omega

Wonderful

Sir, you used a frequency of 60 hertz, we normally use 50 hertz in class, but anyway i understand powerfactor correction now....thank you so much Sir

Pls can I see ur solution for when it’s capacitive

Beautiful, much thx

Thank you so much for this! It really help a lot. :)

Great video! Thanks a lot!

thank you very much sir, this is really very helpful

Good conceptual video.

GREAT VEDIO ,SIR I AM FROM INDIA ,ITS CLEAR MY DOUBT, SIR I HAVE A DOUBT IF S=P+IQ CAN WE USE MAGNITUDE OF S=SQUARE ROOT OF SUM OF SQUARE OF P AND Q. WE I USE THIS FORMULA I FIND MY ANSWER DIFFERENT AS BY USING Vrms*Irms plz help me

Thanks for your time n effort

Thanks a lot

Great work

Thanks I learn to much Excellent

LOVE THIS

great summery! Thank you

VA= potato?? haha!! so funny! thank you for your explaination!

at 12:21 when you said "How about complex power?"....I was thinking, It's been complex! lol

thank you so much sir its really helpfull....

great video, the intro song nice

very useful

A+++++++++++++ Thanks You so much

Thanks A Lot 😊

Q=Q1+Q2 where Q1=366.5kVAr and Q2=99.2kVAr. So Q=465.7kVAr. From this, we can get the reactance (Xc)=53.7ohms, then the C=49.4microFarad Did I pass? :D

perfect sir

This guy is like the Bob Ross of Electrical Engineering.

i lk your explanations

thank you

THANKZ

thank you very very very much teacher fyi

Sehr gut

Super explanetion

Check it out! haha love it

Epic

what is a top hat question? =D sounds fun! im from africa

So nice and educative

Very good explanation, thank you