Two springs A and B`(k_A=2k_B)` are stretched by applying forces of equal magnitudes at the force ends. If the energy stored in A is E, that in B is

Two springs A and B (K_A = 2 K_B) are stretched by same suspended weights then ratio of workdone in stretching is -

Two springs have force constants k_(A) such that k_(B)=2k_(A) . The four ends of the springs are stretched by the same force. If energy stored in spring A is E , then energy stored in spring B is

Two springs have their force constants in the ratio of 3:4 . Both the springs are stretched by applying equal force F. If elongation in first spring is x then elogation is second spring is

In the following figure, if magnitude of forces between B and C is F, then magnitude of force between A and B is

A spring of force constant k extends by a length X on loading . If T is the tension in the spring then the energy stored in the spring is

Force constants K_(1) and K_(2) of two springs are in the ratio 5:4 . They are stretched by same length. If potential energy stored in one spring is 25 J then potential energy stored in second spring is

Two springs with spring constants K _(1) = 1500 N// m and m K_(2) = 3000 N//m are stretched by the same force. The ratio of potential energy stored in spring will be

Two springs A and B are identical except that A is stiffer than B i.e., k_A gt k_B . If the two springs are stretched by the same force, then

A long spring is stretched by 2 cm, its potential energy is U. IF the spring is stretched by 10 cm, the potential energy stored in it will be

The potential energy of a long spring when stretched by 2 cm is U. If the spring is stretched by 8 cm the potential energy stored in it is:-