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Question

Two satellites S1 and S2 revolve round a planet in coplanar circular orbits in the same sense. Their periods of revolution are 1 hour and 8 hours respectively. The radius of the orbit of S1=104km When S2 is closest to S1 find speed of S2 relative to S2 and the angular speed of S1 actually observed by an astronaut at S1.


A

-4.91 ×104 rad s1

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B

-2.91 ×104 rad s1

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C

2.3 ×104 rad s1

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D

-6.00 ×108 rad s1

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Solution

The correct option is B

-2.91 ×104 rad s1


T2r3

Given r1=104km = 107m,T1 = 1 hour and T2 = 8 hours.

Therefore, r32=(107)3×(81)2=64×1021

or r2=4×107m=4×104km

(a) The orbital speeds of satellites S1 and S2 respectively are

v1=2πr1T1=2π×1041=2π×104km/h our

And v2=2πr2T2=2π×4×1048=π×104km/h our

The magnitude the speed of S2 relative to

S1 is |v2v1|=π×104=3.14×104 km/h our

The angular speed of S2 relative to S1 is

ω=v2v1(r2r1)=3.14×104(4×104104)=3.143

= 3.143=3.143=160×160

= -2.91 ×104 rad s1

The negative sign indicates that the sense of rotation of opposite to the sense of revolution of the satellites.


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