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DC resistance

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sabastian151

Industrial
Jan 3, 2011
12
hello,

i'm having a hard time figuring out the actual voltage drop of a DC circuit and i think it's due to a bad calculation with the resistance.
amps=70kA
VDC=100
L=450 ft

Conductor is 7.50" o.d x 5.5" i.d. water cooled bus.
sufficient water flow through out circuit on multiple inlet connections.

cross section is 20.42 sq. in.

can someone help me with this?
I can figure out the voltage drop once i get the right resistance of copper for this size bus.

thanks.
 
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I think is much better to offer all details from begining. With this 3.5V drop we close to a real system form loses point of view. At 7MW installed power,with 3.5V drop there are about 245kW lose, which mean 3.5% lose or 96.5% efficiency of power line, much acceptable than 2.2MW...
Even now, with your clarification, something is not ok. If there are 2 such conductors in parallel, total resistance is half and drop also, about 15.7V from my calculations, or 1.1MW lose which is still too much. May you give a detailed schematic an parameters of this strange instalation?
 
12.8 V one way here. Hand calculation with slide ruler :) and assuming that current flows in one conductor to and the other conductor fro.

If current flows in both conductors (OP says something about parallel - but does he really mean that?) then the voltage drop drops (yes, pun) to half, or 6.4 V.

Since this is DC, it may very well be some kind of electrolysis plant where 70 kA isn't at all uncommon. On the low side, actually, if it is an Aluminum plant and standard if it is some halogen or sodium plant.

I fail to see what the problem is.

Gunnar Englund
--------------------------------------
Half full - Half empty? I don't mind. It's what in it that counts.
 
You should've posted that before. You have 6.4 V drop in one of those conductors.

Gunnar Englund
--------------------------------------
Half full - Half empty? I don't mind. It's what in it that counts.
 
...maybe i should clarify just in case it's not clear. 2 water cooled conductors running in parallel for a total of 450' (450'/conductor)...

If there are two (not four) conductors, and assuming it's not a unipolar current source (<- joke), then I would assume the two conductors are one for source and one for return. If my assumption is correct, then the conductors may be parallel, but are not "in parallel[/]".

One isn't going to use a ground return for 70kA...

 
sorry about not making this clear from the start.
i just re-read my first post and i failed to mention anything about parallel. i also cannot give too much info on this, but yes, this is an electrolysis type plant.

can you show me how you came up with that figure?
 
the rectifiers are run in parallel to output the 70kA @ 100vdc.

is my terminology not correct by stating the bus is run in parallel?

did you look at the sketch?
 
Cunfusion, confusion. How can you get 100 V out of two 50 V rectifiers in parallel? Are you sure they are not in series? And that sketch of yours doesn't exactly make things any clearer.

As I said before, I fail to see the problem. Are you trying to tell a supplier that the equipment is faulty? Or are you trying to find a non-existing fault? Or what is it you are trying to do?

Gunnar Englund
--------------------------------------
Half full - Half empty? I don't mind. It's what in it that counts.
 
What exactly is "Rect" putting out? Is it actually DC or rectified AC? kVA is normally used with AC systems, since DC systems ostensibly have no phasing differences between voltage and current.

And where is the load? And what is the load? Your "sketch" essentially has a dead short across the outputs of each "Rect"

If your outputs are halfwave rectified a true-RMS meter might measure about 7V, and if it was measured with a crappy meter, 3.5V might not be unexpected. Obviously, if your kVA/V calculation isn't what its supposed, say, only 35kA, then the RMS value of a halfwave rectified ouput would be 3.5V, almost exactly.

TTFN

FAQ731-376
Chinese prisoner wins Nobel Peace Prize
 
2heiwr7.jpg

You cannot have, in the same time, 100 V and 70 kA but, you could have 100V and 35 kA or 50 V and 70 kA. I think you have 50 V and 2*35 KA.
The resistance of the loop [from "+"of the rectifier to "-" of the same rectifier could be 3.5V/35000A=0.0001 ohm.]
Let's say from "+" to "-" are laid 2 conductors parallel [copper] of 20.42 sqr.inch each one.
The total loop resistance will be:
R=ro*length/scopper/2 [for 2 parallel conductors].
Where ro =ohm.inch length =inches scopper =sqr.inch
For copper ro= 0.0000006793 ohm.inch at 20oC. I think the actual temperature could be 50oC.So ro=ro20*(50+234)/(20+234)=7.6/10^7 ohm.inch .Then the total loop has:
R=7.6E-07*450*12/20.42/2=0.0001 ohm.
 
Ok...This is the diagram with more detail. I apologize for the confusion thus far. the red dashed conductors are water cooled copper tubes. We calculate that water cooled bus can pass 3800amps per sq. in. in DC.
attached is a detailed diagram of the system.
 
 http://files.engineering.com/getfile.aspx?folder=711e4813-38b9-433a-b543-33388c159c4e&file=voltage_drop.TIF
Sorry. I cannot understand how you can get 70 kA out of two series connected 35 kA rectifiers. Or are you counting the sum of the two circuits to get 70 kA? And, please, where is your load? You do not apply 100 V to a dead short? Do you? And, is the complete length of the two circuits in series equal to 450 feet? Or are they 450 feet each?

And, finally, what is the problem?

We have been struggling with this ill-defined 'problem' for quite a while now. Either just drop it - or present the facts and the problem in a way that doesn't cause confusion. Please.

Gunnar Englund
--------------------------------------
Half full - Half empty? I don't mind. It's what in it that counts.
 
If "TRANS.RECT." means "Transformer for Rectifier Supply" and "RECT.35 KA" is a rectifying bridge then through these conductors connecting transformers to rectifiers
is only Alternative Current [A.C.] and there it is not Direct Current. The Direct Current will flow to the receivers [electrolysis devices or whatever is] from the rectifiers and no direct connection to the transformers, I guess.
 
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