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Byju's Answer
Standard XII
Physics
Spring Force
The work done...
Question
The work done by an external agent in stretching a spring of force constant
K
from length
l
to
3
l
is
A
8
K
l
2
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B
4
K
l
2
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C
2
K
l
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D
K
4
l
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Solution
The correct option is
B
4
K
l
2
Potential energy in a stretched spring
U
=
1
2
k
x
2
, where
x
is the elongation or compression in the spring.
Work done by external agent,
W
=
Δ
U
=
U
2
−
U
1
U
1
=
1
2
K
l
2
=
K
l
2
2
&
U
2
=
1
2
K
(
3
l
)
2
=
9
K
l
2
2
⇒
W
=
U
2
−
U
1
=
4
K
l
2
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1
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