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Question

In an aluminum (Al) bar of square cross section, a square hole is drilled and is filled with iron (Fe) as shown in the figure. The electrical resistivities of Al and Fe are 2.7×108Ωm and 1.0×107 Ωm, respectively. The electrical resistance between the two faces P and Q of the composite bar is


A

247564μΩ
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B

187564μΩ
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C

187549μΩ
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D

2475132μΩ
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Solution

The correct option is B
187564μΩ
RAl and RFe are parallel to each other.
where resistance of system is given by, R=ρlA

Resistance for Al:
Area=7222=45mm2
ρ=2.7×108Ωm (given)
l=50mm
So, R=2.7×108×50×10345×104=30 μΩ

Resistance for Fe:
Area=22=4mm2
ρ=1.0×107Ωm (given)
l=50mm
So, R=1.0×107×50×1034×104=1250 μΩ

we already found,
RAl=30μΩ
RFe=1250μΩ
due to both rods are joined parallelly then,
Rtotal=RAlRFeRAl+RFe30×125030+1250187564μΩ

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