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Question

A loop ABCDEFA of straight edges has six corner pointsA(0,0,0),B(5,0,0),C(5,5,0),D(0,5,0),E(0,5,5),F(0,0,5). The magnetic field in this region isB=(3i^+4k^)T. The quantity of flux through the loopABCDEFA(in Wb) is


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Solution

Step 1. Given data

Value of magnetic field, B=(3i^+4k^)T

Step 2. Find the area vector, A

AABCD=AB×BC

AABCD=5i^×5j^ [i^×j^=k^]

AABCD=25k^

AADEF=AD×DE

AADEF=5j^×5k^ [j^×k^=i^]

AADEF=25i^

Anet=(25k^+25i^)m2

Step 3: Calculating flux

Now, flux, ϕ

ϕ=B.A

=(3i^+4k^)T.25k^+25i^m2=25×3+25×4=175Wb

Hence, the quantity of flux through the loopABCDEFA is 175Wb.


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