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Question

A particle executing SHM has velocities u and v and accelerations a and b at two of its positions. Find the shortest distance between these two positions.

A
u2v2a+b
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B
v2+u2ab
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C
v2+u2a+b
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D
v2u2ab
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Solution

The correct option is A u2v2a+b
Let x1 and x2 be the distances of the two positions from mean position.
Then with usual notations,
u2=ω2(A2x21) ... (i)
v2=ω2(A2x22) ... (ii)
a=ω2x1 ... (iii)
b=ω2x2 ... (iv)

Subtracting Eq. (ii) from Eq. (i),
u2v2=ω2(x22x21) ... (v)
Adding Eqs. (iii) and (iv),
a+b=ω2(x1+x2) ... (vi)

Since we want the shortest distance, we are looking for x2x1.
Dividing Eq. (v) by Eq. (vi)
u2v2a+b=x2x1

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