Three particles of mass m1=1kg, m2=2kg, m3=3kg are placed at the corners A,B,C of an equilateral triangle, respectively. The edge length of the triangle is 1m. Find the distance of COM of the system of particles from corner A.
A
√119m
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B
√196m
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C
√157m
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D
√146m
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Solution
The correct option is B√196m
Since masses m1,m2,m3 are placed at corners A,B,C respectively, the coordinates of the masses as per the axes chosen and taking origin at A(0,0), are given by: m1⇒(0m,0m) m2⇒(12m,√32m) m3⇒(1m,0m)
Applying the formula for COM of system: xCM=m1x1+m2x2+m3x3m1+m2+m3 xCM=1×0+2×(0.5)+3×11+2+3=23m
Similarly, yCM=m1y1+m2y2+m3y3m1+m2+m3 yCM=1×0+2×(√32)+3×01+2+3=√36m
Distance of COM of system from corner A will be: d=√(xCM)2+(yCM)2 d=
⎷(23)2+(√36))2 ∴d=√196m