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Question

A thin square plate ABCD of uniform thickness is shown in the figure. I1,I2,I3 and I4 are respectively the moments of inertia about axis 1,2,3 and 4 which are in the plane of the square plate. Then, the moment of inertia I0 of the plate about an axis passing through its centre O and perpendicular to the plane of the plate will be equal to : (Choose the correct option(s))


A
I1+I2
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B
I3+I4
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C
I1+I3
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D
I1+I2+I3+I4
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Solution

The correct option is C I1+I3
Let I0 be the moment of inertia about an axis perpendicular to the square plate and passing through the centre O.
The axis 1 and 2 are perpendicular and their point of intersection is O, hence by perpendicular axis theorem,
I0=I1+I2 ...(i)
The axis 3 and 4 are perpendicular and their point of intersection is O, hence by perpendicular axis theorem,
I0=I3+I4 ...(ii)

Adding Eq (i) and (ii) gives
I0+I0=(I1+I2)+(I3+I4)
square plate is symmetrical with respect to axis 1, 2 and 3,4 hence I1=I2, & I3=I4

2I0=2(I1)+2(I3)
I0=I1+I3

Options (a), (b), (c) are correct.

For option (d), from eq (i) & (ii)
(I1+I2)+(I3+I4)=I0+I0=2I0
Option (d) is wrong.

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