EASY
JEE Advanced
IMPORTANT
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Two particles of masses m and 2m move with accelerations 2ai^ and -ai^ respectively:

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Important Questions on System of Particles and Centre of Mass

HARD
JEE Advanced
IMPORTANT

Two blocks of masses m and M are interconnected by an ideal spring of stiffness constant k. If m is pushed with a velocity v0, then:

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MEDIUM
JEE Advanced
IMPORTANT

A block of mass m is placed gently onto a long plank of mass m moving with a velcoity v0 on a smooth horizontal floor. If friction is present between M and m :

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MEDIUM
JEE Advanced
IMPORTANT

Consider a hollow sphere of mass M and radius R resting on a smooth surface. A smaller sphere of mass m and radius r is initially held at position P within the bigger sphere. If the small sphere is now released, it rolls down the inner surface of hollow sphere and finally stops at its bottom point Q. Then:

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MEDIUM
JEE Advanced
IMPORTANT

A long plank'A' is at rest on a smooth horizontal surface. A small block ' B ', whose mass is half of ' A ', is placed on the plank at one end and projected along A with some velocity u. The coefficient of friction between the plank and block is μ :

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EASY
JEE Advanced
IMPORTANT

A uniform wire frame ABC is in the shape of an equilateral triangle in xy -plane with centroid at the origin.

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MEDIUM
JEE Advanced
IMPORTANT

A molecule capable of vibrations is modeled as two point atoms of mass M connected by a spring. Initially molecule is not vibrating when it collides elastically with a single atom of mass M as shown in figure. Mark the CORRECT option(s).

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EASY
JEE Advanced
IMPORTANT

Two blocks of mass m1 and m2 are connected by a spring in its natural length having spring constant k and are placed on a smooth surface. Block m1 and m2 are given velocities v and v2 as shown in figure. Choose CORRECT statements.

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MEDIUM
JEE Advanced
IMPORTANT
A man of mass m walks from end A to the other end B of a plank of mass M and length I, placed on a smooth horizontal surface. The coefficient of friction between man and plank is μ as no external force in horizontal direction.