A battery of 9 V is connected in series with resistors of 0-2 - 0-3 - 0-4 - 0-5 - and 12 - respectively- How much current will flow through the 12 - resistor-

For resistors in series, #160; R_eq = R_1+R_2+R_3+R_4+R_5 #160; #160; #160; #160; =0.2+0.3+0.4+0.5+12 #160; #160; #160; #160; ...

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Byju's Answer

Standard X

Physics

Equivalent Resistance of a System of Resistor

A battery of ...

Question

A battery of 9 V is connected in series with resistors of $0.2 Ω, 0.3 Ω, 0.4 Ω, 0.5 Ω$ and $12 Ω$ respectively. How much current will flow through the $12 Ω$ resistor?

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Solution

For resistors in series,
$R_{e q} = R_{1} + R_{2} + R_{3} + R_{4} + R_{5}$
$= 0.2 + 0.3 + 0.4 + 0.5 + 12$
$= 13.4 Ω$

By ohm's Law:
$V = I R_{e q}$
$9 = 13.4 I$
$I = 0.67 A$

When resistors are connected in series, current is same in all the resistors. Hence, current in $12 Ω$ resistor $= 0.67 A$ .

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A battery of 9 V is connected in series with resistors of 0.2 Ω,0.3 Ω,0.4 Ω,0.5Ω and 12 Ω respectively. How much current will flow through the 12 Ω resistor?

For resistors in series, Req=R1+R2+R3+R4+R5 =0.2+0.3+0.4+0.5+12 =13.4 Ω By ohm's Law:V=IReq9=13.4II=0.67 AWhen resistors are connected in series, current is same in all the resistors. Hence, current in 12 Ω resistor =0.67 A.

A battery of 9 V is connected in series with resistors of $0.2 Ω, 0.3 Ω, 0.4 Ω, 0.5 Ω$ and $12 Ω$ respectively. How much current will flow through the $12 Ω$ resistor?