bbvolt
Member
- Location
- Pennsylvania
would there be a drop on a 480 volt line at 220
feet at a max of 40 amps using # 8 wire
3 phase of course 4 wire
feet at a max of 40 amps using # 8 wire
3 phase of course 4 wire
voltage drop
- Thread starter bbvolt
- Start date
- Status
- Location
- Massachusetts
Re: voltage drop
Almost 2.5% or 12 volts of drop using the info you provided.
jtester
Senior Member
- Location
- Las Cruces N.M.
Re: voltage drop
I used the impedance of #8 from Table 9 of the NEC, .69 ohms/1000'. For a balanced three phase load the calculation would be
220'x(.69/1000)x 40 amps = 6.07 volts drop line to neutral or 6.07/277 = 2.19% drop.
Because the load is assumed to be balanced there is no voltage drop in the neutral return current, and no need for multiplying by 2 as in a single phase calculation.
I used the impedance of #8 from Table 9 of the NEC, .69 ohms/1000'. For a balanced three phase load the calculation would be
220'x(.69/1000)x 40 amps = 6.07 volts drop line to neutral or 6.07/277 = 2.19% drop.
Because the load is assumed to be balanced there is no voltage drop in the neutral return current, and no need for multiplying by 2 as in a single phase calculation.
physis
Senior Member
Re: voltage drop
For three phase voltage drop Vd = (R/ft.)(L)(I)(1.732)
(.00069)(220)(40)(1.732) = 10.5v
For three phase instead of length times 2 it's length times the square root of 3.
10.5/480 = .0219 or 2.19%
Jtester, I have no idea how you still came out with 2.19%. Maybe your method works too.
For three phase voltage drop Vd = (R/ft.)(L)(I)(1.732)
(.00069)(220)(40)(1.732) = 10.5v
For three phase instead of length times 2 it's length times the square root of 3.
10.5/480 = .0219 or 2.19%
Jtester, I have no idea how you still came out with 2.19%. Maybe your method works too.
jtester
Senior Member
- Location
- Las Cruces N.M.
Re: voltage drop
Sam
Your equations and mine are exactly the same. You approached it from a line to line perspective and I used line to neutral. Notice your equation has 1.732 in the first part of the calculation, and then you have 1.732 in the denominator when you divided by 480 volts. The two 1.732's cancelled each other out. I didn't include the square root of 3 in the first part, and then I divided by 277 volts in the percentage part.
Same equation, just looking at it from L-n vs L-L.
Thanks
Jim
Sam
Your equations and mine are exactly the same. You approached it from a line to line perspective and I used line to neutral. Notice your equation has 1.732 in the first part of the calculation, and then you have 1.732 in the denominator when you divided by 480 volts. The two 1.732's cancelled each other out. I didn't include the square root of 3 in the first part, and then I divided by 277 volts in the percentage part.
Same equation, just looking at it from L-n vs L-L.
Thanks
Jim
dcsva@aol.com
Senior Member
- Location
- Virginia
Re: voltage drop
Try this website:
http://www.electrician.com/vd_calculator.html
Always verify these calculators though.
Try this website:
http://www.electrician.com/vd_calculator.html
Always verify these calculators though.
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