Three particles each of mass 'm', are placed at the corners of an equilateral triangle of side 'a', as shown in Figure. The position vector of the centre of mass is
A
a2(i+1√3)
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B
a2(3i+j)
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C
a2(3i+5j)
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D
a2(3i+j/√3)
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Solution
The correct option is Aa2(i+1√3)
The (x,y) co-ordinates of the masses at O, A and B respectively are (x1=0,y1=0),(x2=a,y2=0),(x3=a2,y3=a√32
Therefore, the (x, y) co-ordinates of the mass are xCM=m×0+m×a+m×a/2m+m+m=a2 yCM=m×0+m×0+m×√3/2m+m+m=a2√3 ∴ Position vector of centre ofmass is a2(i+j√3) Hence the correct choice is (a)