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Question

Find the position vector of the centre of mass →rcom of an asymmetric uniform bar of negligible area of cross-section, shown in the figure given below.


A
rcom=138L ^i+58L ^j
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B
rcom=118L ^i+38L ^j
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C
rcom=38L ^i+118L ^j
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D
rcom=58L ^i+138L ^j
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Solution

The correct option is A rcom=138L ^i+58L ^j
The given bar can be considered as a combination of 3 individual rods, whose coordinates of centres of mass have been shown in the figure.


The position vector of the centre of mass of the combination of bodies is given by,
rcom=m1r1+m2r2+m3r3m1+m2+m3
rcom=2m×(L^i+L^j)+m(2L^i+L2^j)+m(52L^i+0^j)2m+m+m
rcom=132mL^i+52mL^j4m
rcom=138L ^i+58L ^j

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