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प्रश्न
A coil contains N turns of insulated copper wire of diameter d and resistivity ρ wound on a cylinder of diameter D. What is the total resistance between the two ends of the coil of copper wire?
(Given D >> d)
पर्याय
`(4 rho ND)/d^2`
`(8 rho ND)/d^2`
`(2 rho ND)/d^2`
`(12 rho ND)/d^2`
MCQ
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उत्तर
`bb((4 rho ND)/d^2)`
Explanation:
Diameter of copper wire = d
Diameter of cylindrical core = D
Number of turns = N (given D >> d)
The length of the copper wire wound on the cylinder is
L = NπD
The cross-sectional area of the wire is
A = `(pid^2)/4`
Using the resistance formula:
R = `L(rho)/A`
= `rho(N pi D)/((pid^2)/4)`
= `rho(ND)/(d^2/4)`
= `(4 rho ND)/d^2`
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