HARD
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Find acceleration for A and B just after the spring is cut as shown in the figure.

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Important Questions on Laws of Motion

MEDIUM
One end of a massless spring of spring constant k and natural length l0 is fixed while the other end is connected to a small object of mass m lying on a frictionless table. The spring remains horizontal on the table. If the object is made to rotate at an angular velocity ω about an axis passing trough fixed end, then the elongation of the spring will be
EASY

A mass m is attached to two springs as shown in figure. The spring constants of two springs are K1 and K2. For the frictionless surface, the time period of oscillation of mass m is

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EASY

As shown in the figure, an iron block A of volume 0.25 m3 is attached to a spring S of unstretched length 1.0 m and hanging to the ceiling of a roof. The spring gets stretched by 0.2 m. This block is removed and another block B of iron of volume 0.75 m3 is now attached to the same spring and kept on a frictionless incline plane of 30° inclination. The distance of the block from the top along the incline at equilibrium is

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MEDIUM

Two identical springs are connected to mass m as shown  (k=spring constant) . If the period of the configuration in (i) is 2 s, the period of the configuration (ii) is:

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HARD
System shown in the figure is in equilibrium and at rest. The spring and string are massless, now the string is cut. The acceleration of mass 2m and m just after the string is cut will be
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EASY
A spring of force constant k is cut into lengths of ratio 1 : 2 : 3. They are connected in series and the new force constant is k. If now they are connected in parallel and force constant is k, then k' : k'' is
MEDIUM

A block of mass 20 kg is suspended through two spring balances with negligible mass as shown in figure. What will be the readings in the upper and lower balance respectively ?

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MEDIUM
1 kg block attached to a spring vibrates with a frequency of 1 Hz on a frictionless horizontal table. Two springs identical to the original spring are attached in parallel to a 8 kg block placed on the same table. So, the frequency of vibration of the 8 kg block is 
MEDIUM
Assertion: A block is hanged from spring. Spring force on block and gravitational force on block are not action and reaction pair.

Reason: Action and reaction force acts in opposite direction.
EASY
A particle of mass 0.3 kg is subjected to a force F=-kx with k=15 N m-1. What will be its initial acceleration, if it is released from a point 20 cm away from the origin?
MEDIUM
A spring of force constant k is cut into two pieces such that one piece is double the length of the other. Then the long piece will have a force constant of
MEDIUM
Two springs are connected to a block of mass M placed on a frictionless surface as shown below. If both the springs have a spring constant k, then the frequency of oscillation of the block is

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MEDIUM
A spring of constant k is cut into parts of length in the ratio 1 : 2. The spring constant of larger on is
EASY

Area of piston is 1 m2. When heat is supplied to the gas it expands and displaces piston by L 2 where L = 1m. Natural length of springs is L = 1m. Spring constant K = 100 N/m. The pressure of gas in final situation is –

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MEDIUM
You are riding in an automobile of mass 3000 kg. Assuming that you are examining the oscillation characteristics of its supension system. The suspension sags 15 cm when the entire automobile is placed on it. Also, the amplitude of oscillation decreases by 50 % during one complete oscillation. Estimate the value of the spring constant k.
HARD
A particle of mass m is attached to three identical springs AB and C each of force constant k as shown in figure. If the particle of mass m is pushed slightly against the spring A and released then the time period of oscillations is

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MEDIUM
A spring of spring constant k is cut into two equal parts. A block of mass m is attached with one part of spring. What is the frequency of the system if α is frequency of block with original spring?
MEDIUM
A particle of mass m is attached to a spring ( of spring constant k ) and has a natural angular frequency ω 0 . An external force F ( t ) proportional to cos  ω   ω ω 0   is applied to the oscillator. The time displacement of the oscillator will be proportional to
MEDIUM

Two springs, of force constants k 1 anad k 2 are connected to a mass m as shown. The frequency of oscillation of the mass is f . If both k 1 and k 2 are made four times their original values, the frequency of oscillation becomes

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MEDIUM
Two springs are joined and attached to a mass of 16 kg. This system is then suspended vertically from a rigid support. The spring constant of the two springs are k1 and k2 respectively. The period of vertical oscillations of the system will be