Question

Four holes of radius R are cut from a thin square plate of the side 4R and mass M in XY plane as shown. Then moment of inertia of the remaining portion about z-axis is=? Plz explain clearly!!

Answer 1

`(64 - 15 pi)/24 MR^2`

Explanation:

For the `4R times 4R` square plate, I get `I_(p: zz) = 8/3 MR^2` using a standard formula for a rectangular plate:

• `I_(zz)=1/12 m (h^2+w^2)`

That's for rotation around an axis perpendicular to it's centre.

The plate has density `sigma = M/(16R^2)` per unit area.

A single disc, therefore, has mass:

`m_d = sigma pi R^2 = pi/16 M`

A disc's inertia about it's centre is therefore:

`I_(d: cm) = 1/2 m_d R^2 = pi/32 M R^2`

Using the parallel axis theorem (see drawing):

`I_(d:zz)=I_(d:cm)+m_d d^2`

`=pi/32 M R^2+ pi/16 M (sqrt 2 R)^2 = (5 pi)/32 MR^2`

So the inertia of the hollowed out plate is:

`I_(n et : zz) = I_(p: zz) - 4I_(d:zz) = (64 - 15 pi)/24 MR^2`