BBL Solar Design
Member
- Location
- Petaluma, CA
Hello,
I recently joined, so forgive me if this has been previously covered.. I read a similar topic last night, which did not 100% clarify it for me, so I will ask this again, using different words, at least in terms of how I am thinking about the subject:
My question is two parts:
The example I will use illustrates how the difference can be significant in terms of wire size. My main concern relative to the question is safety, and secondary interest is potential cost savings in wire size/quantity.
On a rooftop solar electric system, where the inverters (generators) are located on the rooftop in the desert. My question is specifically about the AC output side of inverters, which makes this a standard trade-related question (and not unique to the DC aspects of solar).
Ambient conditions are 44 deg C + I'm using a rooftop adder of 17 deg C (for 3.5" above roof) = 61 deg C @ conduit location.
In all cases, I'm assuming I will be running at max of 3 current carrying conductors in each conduit.
System specs:
(18) 27.7 kW inverters (480V, true 3 phase)
FLA of inverter = 36A
I'm using THWN-2, 90 deg C rated wire.
In 2011 NEC table 310.15(B)(2)(A) (formerly at the bottom of Table 310.16), the derate factor for 90 deg C column at this 61 deg C is 0.58.
18 x 36A = 648A actual current
648A x 1.25 = 810A continuous duty rated current
Method A:
Assuming that my derated wire value (for conditions of use) has to be greater than my breaker/fuse size, and assuming I have to round UP to get to my next breaker/fuse size (ignoring question #1 for now), I'm going with a 1000A breaker/fused switch. Then I would use the following equation:
1000 A fuse / 0.58 = 1724 A
Then I select parallel wire runs that exceed this number.
(4) sets of 500 kCMIL type THWN-2 (90 deg C rated), each set of 3 wires running in it's own conduit would result at 1720 A, which is just under this value, meaning that (4) sets of 500 kCMIL 90 deg rated conductors would be able to handle 997.6A (430A x 4 sets x 0.58) at 61 deg C in conduit in the hot desert sun. I wonder if this is sufficient. To get ABOVE this value one might call for (4) sets of 600 kCMIL. Is this sufficient/correct or overkill?
Method B:
I seem to recall from my notes and trainings over the years that we can size conductor supply feeds and over current devices based on NEC table 310.16 (now 310.15(B)(2)(A)) and use the greater of maximum inverter output current rated for continuous duty (1.25 factor) or maximum inverter output current corrected for maximum ambient temperature and multiple conductors - using whichever is greater.
If this is true, I would be size my wire according to the following equation:
648A actual / 0.58 = 1117 A
So (3) sets of 400 kCMIL THWN-2 (each set running in separate conduit) would provide 1140 A @ 30 deg C, and at a temperature of 61 deg C, a temperature corrected value of 661A (1140 x 0.58), which is > than the 648A of current running through it.
But my worry is that if we had a condition such as a ground fault where, say, 800A of current flows, the 1000A fuse does not blow, and the wire becomes exposed to a condition which exceeds its rating of 661A under heated conditions, and begins to melt.
Method C:
Hopefully not making this overly-complicated, a 3rd method which could be used is selecting wire so that the derated value of the wire (considering conditions of use) is greater than the FLA rated for continuous duty (x 1.25 factor) of the circuit. Here, the equation would be:
648A actual x 1.25 = 810A rated
810A rated / 0.58 = 1396 A
So (4) sets of 350 kCMIL THWN-2 (each set in separate conduit) would provide 1400 A @ 30 deg C, and at 61 deg C, it would provide 812 A (1400A x 0.56) which is > than the 810A continuous duty rating of the circuit. Again the potential is there, where if fuses are sized at 1000A (rounded up from 810A), that the wire could see, say, 900A of current (perhaps under fault condition) where the 1000A fuse is not clearing and yet the wire is subject to current and temperature beyond its conditional rating.
My main question is which method above (A, B or C) is the correct way to select my wire.
Question #1 is a little simpler -
Can I (ever) round my OCPD down to 800 from 810A?
Thanks for sticking with this, if you've read this far, and for your reply. I know I'm not alone here in figuring this out, and I definitely owe someone a beer for this one.
Thank you kindly,
Brian
I recently joined, so forgive me if this has been previously covered.. I read a similar topic last night, which did not 100% clarify it for me, so I will ask this again, using different words, at least in terms of how I am thinking about the subject:
My question is two parts:
- at what point (amperage level), in the Code are we allowed to round down for nearest breaker/fuse size to protect wire? (if ever)
- when we select and derate our wire for conditions of use, does the derated value (based on type of wire, temperature and number of conductors in conduit) need to be larger than the over current protection device protecting it? Or are we just trying to get the derated ampacity (corrected for conditions of use) to be simply greater than the continuous duty value (Full Load Amps x 1.25)?
The example I will use illustrates how the difference can be significant in terms of wire size. My main concern relative to the question is safety, and secondary interest is potential cost savings in wire size/quantity.
On a rooftop solar electric system, where the inverters (generators) are located on the rooftop in the desert. My question is specifically about the AC output side of inverters, which makes this a standard trade-related question (and not unique to the DC aspects of solar).
Ambient conditions are 44 deg C + I'm using a rooftop adder of 17 deg C (for 3.5" above roof) = 61 deg C @ conduit location.
In all cases, I'm assuming I will be running at max of 3 current carrying conductors in each conduit.
System specs:
(18) 27.7 kW inverters (480V, true 3 phase)
FLA of inverter = 36A
I'm using THWN-2, 90 deg C rated wire.
In 2011 NEC table 310.15(B)(2)(A) (formerly at the bottom of Table 310.16), the derate factor for 90 deg C column at this 61 deg C is 0.58.
18 x 36A = 648A actual current
648A x 1.25 = 810A continuous duty rated current
Method A:
Assuming that my derated wire value (for conditions of use) has to be greater than my breaker/fuse size, and assuming I have to round UP to get to my next breaker/fuse size (ignoring question #1 for now), I'm going with a 1000A breaker/fused switch. Then I would use the following equation:
1000 A fuse / 0.58 = 1724 A
Then I select parallel wire runs that exceed this number.
(4) sets of 500 kCMIL type THWN-2 (90 deg C rated), each set of 3 wires running in it's own conduit would result at 1720 A, which is just under this value, meaning that (4) sets of 500 kCMIL 90 deg rated conductors would be able to handle 997.6A (430A x 4 sets x 0.58) at 61 deg C in conduit in the hot desert sun. I wonder if this is sufficient. To get ABOVE this value one might call for (4) sets of 600 kCMIL. Is this sufficient/correct or overkill?
Method B:
I seem to recall from my notes and trainings over the years that we can size conductor supply feeds and over current devices based on NEC table 310.16 (now 310.15(B)(2)(A)) and use the greater of maximum inverter output current rated for continuous duty (1.25 factor) or maximum inverter output current corrected for maximum ambient temperature and multiple conductors - using whichever is greater.
If this is true, I would be size my wire according to the following equation:
648A actual / 0.58 = 1117 A
So (3) sets of 400 kCMIL THWN-2 (each set running in separate conduit) would provide 1140 A @ 30 deg C, and at a temperature of 61 deg C, a temperature corrected value of 661A (1140 x 0.58), which is > than the 648A of current running through it.
But my worry is that if we had a condition such as a ground fault where, say, 800A of current flows, the 1000A fuse does not blow, and the wire becomes exposed to a condition which exceeds its rating of 661A under heated conditions, and begins to melt.
Method C:
Hopefully not making this overly-complicated, a 3rd method which could be used is selecting wire so that the derated value of the wire (considering conditions of use) is greater than the FLA rated for continuous duty (x 1.25 factor) of the circuit. Here, the equation would be:
648A actual x 1.25 = 810A rated
810A rated / 0.58 = 1396 A
So (4) sets of 350 kCMIL THWN-2 (each set in separate conduit) would provide 1400 A @ 30 deg C, and at 61 deg C, it would provide 812 A (1400A x 0.56) which is > than the 810A continuous duty rating of the circuit. Again the potential is there, where if fuses are sized at 1000A (rounded up from 810A), that the wire could see, say, 900A of current (perhaps under fault condition) where the 1000A fuse is not clearing and yet the wire is subject to current and temperature beyond its conditional rating.
My main question is which method above (A, B or C) is the correct way to select my wire.
Question #1 is a little simpler -
Can I (ever) round my OCPD down to 800 from 810A?
Thanks for sticking with this, if you've read this far, and for your reply. I know I'm not alone here in figuring this out, and I definitely owe someone a beer for this one.
Thank you kindly,
Brian
