Question 4

SCQHARD

A particle of mass mm, and angular momentum ℓ\ell is moving in a circular orbit of radius r0r_0 under the influence of an attractive force F⃗(r)=−kr2r^\vec{F}(r) = -\frac{k}{r^2} \hat{r}. Keeping its angular momentum unchanged, the particle is displaced radially by a small distance Îīr≩r0\delta r \ll r_0, due to which its radial distance varies periodically. The corresponding time period is:

(A)

2πℓ3mk2\frac{2\pi \ell^3}{mk^2}

(B)

2πmk2\pi \sqrt{\frac{m}{k}}

(C)

2πℓ33mk2\frac{2\pi \ell^3}{3mk^2}

(D)

2πℓ35mk2\frac{2\pi \ell^3}{5mk^2}

Detailed Solution

In a central force field, the radial equation of motion for a particle is given by:

md2rdt2=−kr2+ℓ2mr3m \frac{d^2r}{dt^2} = -\frac{k}{r^2} + \frac{\ell^2}{mr^3}

For a stable circular orbit at r=r0r = r_0, the net radial acceleration is zero, which gives the equilibrium condition:

−kr02+ℓ2mr03=0  âŸđ  ℓ2m=kr0— (i)-\frac{k}{r_0^2} + \frac{\ell^2}{mr_0^3} = 0 \implies \frac{\ell^2}{m} = k r_0 \quad \text{--- (i)}

Let the particle be displaced radially by a small distance Îīr\delta r, such that r=r0+Îīrr = r_0 + \delta r. Substituting this directly into the equation of motion, we get:

md2(r0+Îīr)dt2=−k(r0+Îīr)2+ℓ2m(r0+Îīr)3m \frac{d^2(r_0 + \delta r)}{dt^2} = -\frac{k}{(r_0 + \delta r)^2} + \frac{\ell^2}{m(r_0 + \delta r)^3}

Since r0r_0 is a constant, its second derivative is zero (d2r0dt2=0)\left(\frac{d^2 r_0}{dt^2} = 0\right). Factoring out r0r_0 from the denominators on the right-hand side:

md2(Îīr)dt2=−kr02(1+Îīrr0)−2+ℓ2mr03(1+Îīrr0)−3m \frac{d^2(\delta r)}{dt^2} = -\frac{k}{r_0^2} \left(1 + \frac{\delta r}{r_0}\right)^{-2} + \frac{\ell^2}{m r_0^3} \left(1 + \frac{\delta r}{r_0}\right)^{-3}

Since the displacement is extremely small (Îīr≩r0\delta r \ll r_0), we can apply the binomial approximation, (1+x)n≈1+nx(1 + x)^n \approx 1 + nx:

md2(Îīr)dt2≈−kr02(1−2Îīrr0)+ℓ2mr03(1−3Îīrr0)m \frac{d^2(\delta r)}{dt^2} \approx -\frac{k}{r_0^2} \left(1 - 2\frac{\delta r}{r_0}\right) + \frac{\ell^2}{m r_0^3} \left(1 - 3\frac{\delta r}{r_0}\right)

Expanding the terms and regrouping the constant parts and Îīr\delta r parts together:

md2(Îīr)dt2=(−kr02+ℓ2mr03)+(2kr03−3ℓ2mr04)Îīrm \frac{d^2(\delta r)}{dt^2} = \left(-\frac{k}{r_0^2} + \frac{\ell^2}{m r_0^3}\right) + \left(\frac{2k}{r_0^3} - \frac{3\ell^2}{m r_0^4}\right)\delta r

From the equilibrium condition (i), the first term in the brackets is exactly zero. Now, substituting ℓ2m=kr0\frac{\ell^2}{m} = k r_0 into the second term:

md2(Îīr)dt2=0+(2kr03−3(kr0)r04)Îīrm \frac{d^2(\delta r)}{dt^2} = 0 + \left(\frac{2k}{r_0^3} - \frac{3(k r_0)}{r_0^4}\right)\delta r

md2(Îīr)dt2=(2kr03−3kr03)Îīrm \frac{d^2(\delta r)}{dt^2} = \left(\frac{2k}{r_0^3} - \frac{3k}{r_0^3}\right)\delta r

md2(Îīr)dt2=−kr03Îīrm \frac{d^2(\delta r)}{dt^2} = -\frac{k}{r_0^3}\delta r

Rearranging this into the standard differential equation format for Simple Harmonic Motion (SHM):

d2(Îīr)dt2+(kmr03)Îīr=0\frac{d^2(\delta r)}{dt^2} + \left(\frac{k}{m r_0^3}\right)\delta r = 0

Comparing this with the standard SHM equation d2(Îīr)dt2+ω2Îīr=0\frac{d^2(\delta r)}{dt^2} + \omega^2 \delta r = 0, the angular frequency ω\omega is:

ω=kmr03\omega = \sqrt{\frac{k}{m r_0^3}}

Substituting the value of the stable radius r0=ℓ2mkr_0 = \frac{\ell^2}{mk}:

ω=km(ℓ2mk)3=k⋅m3k3mℓ6=mk2ℓ3\omega = \sqrt{\frac{k}{m\left(\frac{\ell^2}{mk}\right)^3}} = \sqrt{\frac{k \cdot m^3 k^3}{m \ell^6}} = \frac{m k^2}{\ell^3}

The time period TT of these small periodic oscillations is:

T=2πω=2πℓ3mk2T = \frac{2\pi}{\omega} = \frac{2\pi \ell^3}{m k^2}

Hence, the correct option is (A).

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