A 10 A source having 100 ohm shunt internal resistance will deliver maximum power at which condition

Statement: A 10 A source has 100-ohm shunt internal resistance. The maximum power than can be delivered to the load is:

1. 100 W
2. 1000 W
3. 2500 W
4. 10000 W

Correct answer: 3. 2500 Watt

Solution:

Maximum power will be delivered when R_L = R_s = 100 ohms

According to current divider rule I_s = (100 ohm)/(100 ohm+100 ohm) * 10 A= 5 A

Now P_s = (I_s)².R_s = (5)² A * 100 ohms = 2500 W