Understanding Engineering Mathematics

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mass of a lamina with surface densityρ(x,y)enclosed within the curvey=f(x),the
x-axis and the linesx=a,x=b, are given by

x ̄=

∫b

a

ρxydx
∫b

a

ρydx

y ̄=

1
2

∫b

a

ρy^2 dx
∫b

a

ρydx

If the density is uniform, and such a lamina is rotated about thex-axis, then the centre
of mass of the solid of revolution so formed will lie on thex-axis and thex-coordinate
of the centroid will be given by

x ̄=

∫b

a

xy^2 dx
∫b

a

y^2 dx

(i) Find the positions of the centroids of the following areas (taking
ρ=1):

(a)y=sinx 0 ≤x≤π, y= 0
(b) A semi-circle with radiusa.

(ii) Calculate the positions of the centroids of the solids obtained by
rotating the following curves about the given axes:

(a)x^2 +y^2 =a^2 aboutOx, forx≥ 0 ,y≥ 0.
(b)y^2 = 2 xx= 0 ,x=2 aboutOx.

7.In a rigid body of massMrotating with angular velocityωabout a fixed axis, a particle
Pof massδmat perpendicular distancerfrom the axis would have velocityωrand
kinetic energy^12 δm(ωr)^2. By regarding a continuous body as the limit of a sum of such
particles, its kinetic energy will be


lim

∑ 1
2

ω^2 r^2 δm→

1
2


ω^2 r^2 dm=

1
2

ω^2


r^2 dm

sinceωis the same for all particles of the body. The expression

I=


r^2 dm

is called themoment of inertia(MI) of the body about the axis of rotation. It is usually
given in the formMk^2 wherekis called theradius of gyrationabout the axis. The
MI is also called thesecond momentof the body.

(i) Find the moment of inertia and the radius of gyration of: (a) a uniform
rod lengthaabout perpendicular axis through centre; (b) a disc radius
rabout an axis perpendicular to the disc, through its centre.
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