A series combination of two resistors `1 Omega` each is connected to a 12 V battery of internal resistance `0.4 Omega`. The current flowing through it will beA. 3.5AB. 5AC. 6AD. 10A

A series combination of two resistors `1 Omega` each is connected to a

1.	A series combination of two resistors `1 Omega` each is connected to a 12 V battery of internal resistance `0.4 Omega`. The current flowing through it will beA. 3.5AB. 5AC. 6AD. 10A
Answer» Correct Answer - B Here, both the external resistance are connected in series combination of battery. Hence, total external resistance `= 1+1=2 Omega` Hence, the toal resistance = external resistance + internal resistance `= 2+0.4=2.4 Omega` So, current flowing is `l=(V)/(R )=(12)/(2.4)=5 A`

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A series combination of two resistors `1 Omega` each is connected to a 12 V battery of internal resistance `0.4 Omega`. The current flowing through it will beA. 3.5AB. 5AC. 6AD. 10A

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