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Question

From a square plate of side 10 m, a right angled triangle is removed as shown in the figure. The square plate has mass density 2 kg/m2. Find the centre of mass of the remaining portion. Assume the origin to be at the intersection of x and y axes.


A
(4.2,6.5) m
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B
(5,5) m
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C
(5.23,5.25) m
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D
(6.25,6.32) m
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Solution

The correct option is C (5.23,5.25) m
Given side of the triangle a=4 m,b=3 m
Mass of the original square plate,
m1= mass density × (area of square plate)
=2×(10×10)
=200 kg

Mass of the right angled triangle,
m2= mass density × (area of right angled triangle)
=2×(12×4×3)
=12 kg

COM of square plate,
(x1y1)=(5,5) m
COM of right angled triangle is situated at the distance a3 and b3 from the side b and a respectively.


i.e COM of right angled triangle is at
(x2,y2)=(43,33)=(43,1) m

Hence, x-coordinate of COM of remaining portion.
xCOM=m1x1m2x2m1m2=200×512×4320012
=5.23 m

y-coordinate of COM of remaining portion.
yCOM=m1y1m2y2m1m2=200×512×120012
=5.25 m

So, position of COM of remaining portion is at
(xCOM,yCOM)=(5.23,5.25) m

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