An 18.65 KW,4-pole,50HZ, 3 phase induction motor has friction and windage losses of 2.5 percent of the output. The full load slip is 4% compute for full load (a) the rotor Cu loss (b) the rotor input (c) the shaft torque (d) the gross electromagnetic torque.
If you are noticing some error in problems kindly comment below.Thanks
If you are noticing some error in problems kindly comment below.Thanks
Given
P = 18650 W
F = 50 Hz
Poles P = 4
Friction and
windage loss = 2.5 % = 18650 X 0.025 = 466 KW
Slip s = 4 %
= 0.04
To find
a)
Rotor copper loss
b)
Rotor input
c)
Shaft torque
d)
Gross electromagnetic torque
Solution
Losses = 466
KW
So total
output PT = 18650 + 466 = 19116 KW
a)
Rotor copper loss / Rotor total output = s / (1-s)
Rotor copper loss / 19116 = 0.04 / (1 – 0.04)
Rotor copper loss = 796.6 W
b)
Rotor input = Rotor total output + Rotor copper
loss
= 19116 + 796.6
Rotor input = 19912.6 W
c)
Ns =
120 f / P
= (120 x 50) / 4
= 1500 rpm
Speed N = ( 1 – slip ) x Ns
= (1 – 0.04) X 1500
= 1440 rpm
Shaft torque TSH = (9.55 x P) /
N
= (9.55 x 18650) / 1440
= 123.7 Nm
d)
Gross torque TTOTAL = (9.55 x PT) / N
= (9.55 x 19116) / 1440
= 126.8 Nm
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