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Question
Determine the current in the 3 Ω branch of a Wheatstone Bridge in the circuit shown in the figure.
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Solution
From the figure:
Left upper arm = 20 Ω
Left lower arm = 12 Ω
Right upper arm = 2 Ω
Right lower arm = 1 Ω
Central branch = 3 Ω
Checking bridge balance:
`20/12` = 1.67
`2/1` = 2
∴ `20/12 ne 2/1`
∴ The bridge is not perfectly balanced.
However, the 6 V battery is connected across the left and right nodes.
The bridge can be analyzed by simplifying two parallel series branches:
Upper path resistance:
20 + 2 = 22 Ω
Lower path resistance:
12 + 1 = 13 Ω
Let total voltage = 6 V
Voltage division in upper branch: Current in upper branch:
Iu = `6/22`
Voltage drop across 20:
VA = Iu × 20
= `(6 xx 20)/22`
= 5.45 V
Lower branch current:
Il = `6/13`
Voltage at lower junction:
VB = Il × 12
= `(6 xx 12)/13`
= 5.54 V
Comparing junction potentials:
VA ≈ 5.45 V, VB ≈ 5.54 V
It is almost equal. The potential difference across 3 is negligible.
Potential difference across the central branch is nearly zero, so no current flows through the 3 Ω resistor.
∴ The current in the 3 Ω branch of a Wheatstone Bridge in the circuit shown in the figure is 0 A.
