(^626) A Textbook of Engineering Mechanics
3
0
2
r
mxdxπ∫
44
0
2
42
r
xmr
m
⎡⎤ π
π=⎢⎥
⎣⎦
2
0.5^2
2
Mr
= Mr ...(Q M = πr^2 m)
Now as per theorem of perpendicular axis, the mass moment of inertia about X-X or Y-Y axis
IXX=
2
0.5 0.25 2
22
ZZ
YY
I Mr
IMr== =
Note: The above formula holds good for the mass, moment of inertia of a solid cylinder
also. In this case, M is taken as the mass of the solid cylinder.
31.11.MASS MOMENT OF INERTIA OF A SOLID SPHERE
Consider a solid sphere of radius r with O as centre.
Let m= Mass per unit volume of the sphere
∴ Total mass of the sphere
M=
4 3
3
mrπ
Now consider an elementary plate PQ of thickness dx and at a distance x from O as shown
in Fig. 31.6.
We know that the radius of this plate
y = rx^22 –
∴ Mass of this plate = mπy^2 dx = mπ (r^2 – x^2 ) dx
and moment of inertia of this plate about X-X axis
(Radius)^2
Mass ×
2
22
(–)^22 (–)
2
rx
mr xdxπ×
= (–)^222
2
m
rxdx
π
= (–2)44 22
2
m
rx rxdx
π
- The mass moment of inertia of the whole sphere may now be found out by integrating the
above equation from – r to + r. Therefore
I =
44 22
(–2)
2rrm
rx rxdx+
π
∫ +=44 22(–2)
2rrm
rx rxdx+
π
∫ +Fig. 31.6. Sphere.