The surface density (mass/area) of a circular disc of radius 𝑎 depends on the distance from the centre as $ρ (r) = A + B r$ . Find its moment of inertia about the line perpendicular to the plane of the disc through its centre.

2 π a^{3} [\frac{A}{4} + \frac{B a}{5}]

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2 π a^{4} [\frac{A}{8} + \frac{B a}{7}]

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2 π a^{4} [\frac{A}{4} + \frac{B a}{5}]

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2 π a^{4} [\frac{A^{2}}{4} + \frac{B a}{5}]

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Solution

The correct option is C $2 π a^{4} [\frac{A}{4} + \frac{B a}{5}]$
From given,

let the radius is $r$
so, $d I = \int ρ \times 2 \times π r d r \times r^{2}$
$\int_{0}^{a} d I = \int_{0}^{a} (A + B r) 2 \times π r d r \times r^{2} = 2 π \int_{0}^{a} [A r^{3} + B r^{4}] d r = 2 π a^{4} [\frac{A}{4} + \frac{B a}{5}]$

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The surface density (mass/area) of a circular disc of radius 𝑎 depends on the distance from the centre as ρ(r)=A+Br. Find its moment of inertia about the line perpendicular to the plane of the disc through its centre.

The correct option is C 2πa4[A4+Ba5] From given, let the radius is r so, dI=∫ρ×2×πr dr×r2 ∫a0dI=∫a0(A+Br) 2×πr dr×r2=2π∫a0[Ar3+Br4]dr=2πa4[A4+Ba5]

The surface density (mass/area) of a circular disc of radius 𝑎 depends on the distance from the centre as $ρ (r) = A + B r$ . Find its moment of inertia about the line perpendicular to the plane of the disc through its centre.