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Question: A point particle moves on the x-y plane according to the law \(x=a\sin (\omega t)\) and \(y=a(1-\cos...

A point particle moves on the x-y plane according to the law x=asin(ωt)x=a\sin (\omega t) and y=a(1cos(ωt))y=a(1-\cos (\omega t)) where aa and ω\omega are positive constants and tt is in seconds. Find the distance covered in time t0{{t}_{0}}.
A. aωt0a\omega {{t}_{0}}
B. 2a2+2a2cos(ωt0)\sqrt{2{{a}^{2}}+2{{a}^{2}}\cos (\omega {{t}_{0}})}
C. 2asin(ωt02)2a\sin \left( \dfrac{\omega {{t}_{0}}}{2} \right)
D. 2acos(ωt02)2a\cos \left( \dfrac{\omega {{t}_{0}}}{2} \right)

Explanation

Solution

Calculate rate of change of xx and yy with respect to time. This gives us velocity of point particles in xx and yy direction respectively. The magnitude of the velocity vector is the speed of the particle. Distance can be calculated by multiplying the speed of a particle with time period.

Formula used: Distance travelled d=vt0d=\left| \mathbf{v} \right|{{t}_{0}}, magnitude of velocity v=vx2+vy2\left| \mathbf{v} \right|=\sqrt{v_{x}^{2}+v_{y}^{2}}

Complete step by step answer:
We are given functions of xx and yy coordinate in terms of time tt. The change in xx and yy coordinates is the displacement of point particles in xx and yy direction respectively.
Velocity of a particle is defined as rate of change of displacement. So the rate of change of xx and yy coordinates is the velocity of point particles along xx and yy direction respectively.
We can calculate the velocity of a particle by differentiating its functions of position. Therefore,
vx=dxdt=d(asin(ωt))dt=aωcos(ωt){{v}_{x}}=\dfrac{dx}{dt}=\dfrac{d(a\sin (\omega t))}{dt}=a\omega \cos (\omega t)
vy=dydt=d(a(1cos(ωt))dt=aωsin(ωt){{v}_{y}}=\dfrac{dy}{dt}=\dfrac{d(a(1-\cos (\omega t))}{dt}=a\omega \sin (\omega t)
Where vx{{v}_{x}} and vy{{v}_{y}} denote velocities along the xx and yy axis respectively.
We can calculate the magnitude of velocity by taking the square root of the sum of squares of velocities along the xx and yy axis. Mathematically, we can write
v=vx2+vy2=(aωcosωt)2+(aωsinωt)2\left| \mathbf{v} \right|=\sqrt{v_{x}^{2}+v_{y}^{2}}=\sqrt{{{(a\omega \cos \omega t)}^{2}}+{{(a\omega \sin \omega t)}^{2}}}
v=a2ω2cos2ωt+a2ω2sin2ωt=a2ω2(cos2ωt+sin2ωt)\left| \mathbf{v} \right|=\sqrt{{{a}^{2}}{{\omega }^{2}}co{{s}^{2}}\omega t+{{a}^{2}}{{\omega }^{2}}{{\sin }^{2}}\omega t}=\sqrt{{{a}^{2}}{{\omega }^{2}}(co{{s}^{2}}\omega t+{{\sin }^{2}}\omega t)}
We know from trigonometric identity that sin2θ+cos2θ=1{{\sin }^{2}}\theta +{{\cos }^{2}}\theta =1. Therefore,
v=aω\left| \mathbf{v} \right|=a\omega
Product of speed and time period gives the distance travelled during time period. Hence, distance travelled in time t0{{t}_{0}} is given by
d=vt0=aωt0d=\left| \mathbf{v} \right|{{t}_{0}}=a\omega {{t}_{0}}
The point particle travels distance aωt0a\omega {{t}_{0}} in time t0{{t}_{0}}.

So, the correct answer is “Option A”.

Note: Distance is a scalar quantity. It is defined as the total path travelled by the particle.
Displacement of a particle is the change in its position. It is the minimum distance; a particle will have to travel from one point to another. If a particle travels and comes back to the same place then its displacement is zero. Displacement is a vector quantity.