A spring of spring constant 5×103N/m is stretched initially by 5cm from the unstretched position. The work required to further stretch the spring by another 5cm is
A
6.25J
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B
12.50J
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C
18.75J
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D
25.00J
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Solution
The correct option is C18.75J Given spring constant (k)=5×103N/m
Spring force (F)=kx (where x is deformation in spring)
Work done by deforming force to stretch the spring from x1=5cm to x2=10cm w=∫−→F.→ds=∫x2x1Fxdx=∫x2x1kxdx=k(x2)2|x2x1=k(x222−x212)=12k(x22−x21)=12×5×103((10×10−2)2−(5×10−2)2)=12×5×103×10−4(100−25)=754=18.75J