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KCL and KVL

In the figure...

Question

In the figure, the value of resistor R is $(25 + \frac{1}{2}) Ω$ , where I is the current in amperes. The current I is___.

10

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Solution

The correct option is A 10
Given,
$R = (25 + \frac{1}{2}) Ω$
or,
$I = (2 R - 50)$

Applying KVL is given loop,
we have:
$300 = I R o r 300 = (2 R - 50) \times R$

we get,
$R = 30 Ω o r - 5 Ω$

Since resistance can't be negative. Therefore,

$R = 30 Ω$

$H e n c e, I = (2 R - 50)$
$= (2 \times 30 - 50) A$
$= 10 A$

$∴ C u r r e n t, I = 10 A$

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