A 1,000 KVA, 12.47KV- 480Y/277-V transformer with 4% impedance feeds a 480-V bus. The fault duty of the 12.47-KV system is 40MVA. Assuming the transformer and the 12.47KV system have the same X/R ratio, the 3-phase short circuit current(Amperes) avaliable at the 480-V bus is mostlynearly:
I am having difficulties visualizing this problem. Can you anyone tackle this problem on a step by step process?.
-What so they mean by same "X/R ratio"?
Thanks!!
This is a Per Unit problem for me.
1. Choose a system 3-phase power base to be 1000 KVA (I chose the transformer base just for simplicty)
2. Your I_fault in per unit will be V/Z_total
V in per unit is 1 at an angle of zero degrees for our voltage source
Z_total = Z_transformer per unit + Z_transmission line per unit
Z_transformer per unit is given on a 1 MVA base which matches our chosen MVA base so we don't have to convert it, Z_transformer = j0.04
Z_transmission per unit is equal to MVA_Base_3_Phase/Fault_Duty_3_Phase = 1 MVA/40MVA = j0.025 (I remember this formula from grad school)
Z_total = j0.025 + j0.04 = j0.065 per unit (transformer in series with transmission line)
I_Fault = ( per unit voltage)/(0.065) = 15.38 per unit
Now we need to find our I_Base at the 480V bus to obtain I_actual:
I_Base_480V = (S_Base_Single_Phase)/(V_Base_Phase) = (333,333 VA/277 V) = 1203.37 A
I_Actual = I_Fault_Per_Unit * I_Base_480V = 15.38 * 1203.37 A = 18,507.82 A
Not sure if this matches how they solved it exactly, but that's how I would solve it.
Hope this helps.
