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Question
Two resistors of 4·0 Ω and 6·0 Ω are connected
- in series,
- in parallel, with a battery of 6·0 V and negligible internal resistance.
For each case draw a circuit diagram and calculate the current through the battery.
Numerical
Solution
(a) Resistors connected in series
Total resistance R = 4 + 6 = 10 Ω, V = 6.0 V
∴ Current I = `"V"/"R"`
= `6.0/10.0`
= 0.6 A
(b) Resistors in parallel `1/"R" = 1/4 + 1/6`
R = `(3 + 2)/12`
R = `12/5`
R = 2.4 Ω
V = 6.0 V
Current I = `"V"/"R"`
= `6/2.4`
= 2.5 A
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