Comments on: What percentage of the original power is lost help please? http://www.renewable-energy-at-home.com/uncategorized/what-percentage-of-the-original-power-is-lost-help-please How you can save with renewable energy at home Thu, 10 Jun 2010 07:41:20 +0000 hourly 1 http://wordpress.org/?v=3.0 By: Physics Master http://www.renewable-energy-at-home.com/uncategorized/what-percentage-of-the-original-power-is-lost-help-please/comment-page-1#comment-713 Physics Master Thu, 07 May 2009 12:58:59 +0000 http://www.renewable-energy-at-home.com/power/what-percentage-of-the-original-power-is-lost-help-please#comment-713 That is some kinda tricky but we are gonna work it out Thermal power consumed by the transmission line due to its resistance: P(c)=RI^2 Where P(c) is power consumed I= produced power divided by produced voltage: I=P/V (1) In the case before voltage was raised I=P/V=7000/100=70 A Thermal power consumed in this case: P(c)=RI^2=0.6*(70)^2=2940 Watt Lost power percentage=2940/7000= 42.0% (2) In the case after voltage has been raised: P=IV(produced power) When P is constant then we have IV=constant ⇒ I1V1=I2V2 ⇒ I2/I1=V1/V2 I2/I1=100/100K=1/1000 And since the lost power percentage is directly proportional to (I^2) then the ratio between the lost power after and before the voltage raising is equal to (I2/I1)^2 =(1/1000)^2=1/10^6 In math language: P(c)2/P(c)1=(I2/I1)^2=1/10^6 This implies that: P(c)2=P(c)1/10^6 then lost power percentage after voltage raising = 42/10^6 = 42*10^-6% The second part can be obtained the same way the first part was done as follows: I=P/V=7000/100000=0.07A P(c)=RI^2=0.6*(0.07)^2= 0.00294 watt Lost power percentage in this case=0.00294/7000=42*10^-6% Comments: 1- This problem would be a little bit more complicated but even more realistic if the efficiency of the transformer was considered. 2- One should differentiate between Power produced and Power consumed (big difference).<br><b>References : </b><br> That is some kinda tricky but we are gonna work it out
Thermal power consumed by the transmission line due to its resistance:
P(c)=RI^2
Where P(c) is power consumed
I= produced power divided by produced voltage: I=P/V
(1) In the case before voltage was raised
I=P/V=7000/100=70 A
Thermal power consumed in this case:
P(c)=RI^2=0.6*(70)^2=2940 Watt
Lost power percentage=2940/7000= 42.0%

(2) In the case after voltage has been raised:
P=IV(produced power)
When P is constant then we have
IV=constant ⇒ I1V1=I2V2 ⇒ I2/I1=V1/V2
I2/I1=100/100K=1/1000

And since the lost power percentage is directly proportional to (I^2)
then the ratio between the lost power after and before the voltage raising is equal to (I2/I1)^2 =(1/1000)^2=1/10^6

In math language: P(c)2/P(c)1=(I2/I1)^2=1/10^6
This implies that: P(c)2=P(c)1/10^6
then lost power percentage after voltage raising = 42/10^6 = 42*10^-6%

The second part can be obtained the same way the first part was done as follows:

I=P/V=7000/100000=0.07A
P(c)=RI^2=0.6*(0.07)^2= 0.00294 watt

Lost power percentage in this case=0.00294/7000=42*10^-6%

Comments:
1- This problem would be a little bit more complicated but even more realistic if the efficiency of the transformer was considered.
2- One should differentiate between Power produced and Power consumed (big difference).
References :

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