The area of the parallelogram whose diagonals are ^i−3^j+2^k,−^i+2^j is
A
4√29sq.units
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B
12√21sq.units
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C
10√3sq.units
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D
12√270sq.units
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Solution
The correct option is B12√21sq.units Vector area =12(a×b)=12∣∣
∣
∣∣^i^j^k1−32120∣∣
∣
∣∣=12[(0−4)−^j(0+2)+^k(2−3)]=12(−4^i−2^j−^k)
Area =12√16+4+1=12√21sq. units