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According to figure, the reading of the spring balance will be g=10 m s-2,

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Important Questions on Laws of Motion

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A bob is hanging over a pulley inside a car through a string. The second end of the string is in the hand of a person standing in the car. The car is moving with constant acceleration a directed horizontally as shown in figure. The other end of the string is pulled with constant acceleration a (relative to car) vertically. The tension in the string is equal to,

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The ratio of acceleration of A and B is,

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A perfect smooth sphere A of mass 2 kg is in contact with a rectangular block B of mass 4 kg and vertical wall as shown in the figure. All surfaces are smooth. Find normal reaction by vertical wall on sphere A.

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A flexible chain of weight W hangs between two fixed points A and B at the same level. The inclination of the chain with the horizontal at the two points of support is θ. What is the tension of the chain at the two segments

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A cylinder rests in a supporting carriage as shown. The side AB of carriage makes an angle 30° with the horizontal and side BC is vertical. The carriage lies on a fixed horizontal surface and is being pulled towards left with a horizontal acceleration a. The magnitude of normal reactions exerted by sides AB and BC of carriage on the cylinder are NAB and NBC, respectively. Neglect friction everywhere. Then, as the magnitude of acceleration a of the carriage is increased, pick up the correct statement.

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Two blocks A and B of masses 10 kg and 40 kg are connected by an ideal string as shown in the figure. Neglect the masses of the pulleys and effect of friction g=10 m s-2.

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Two blocks A and B of masses m & 2m, respectively are held at rest such that the spring is in natural length. Find out the accelerations of blocks A and B, respectively just after release (pulley, string and spring are massless).

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System shown in figure is in equilibrium. The magnitude of change in tension in the string just before and just after, when one of the spring is cut. Mass of both the blocks is same and equal to m and spring constant of both springs is k. (Neglect any effect of rotation)

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