Home
Class 12
PHYSICS
Two blocks A and B, each of mass m, are ...

Two blocks A and B, each of mass m, are connected by a masslesss spring of natural length L and spring constant K. The blocks are initially resting on a smooth horizontal floor with the spring at its natural length, as shown in fig. A third identical block C, also of mass m, moves on the floor with a speed v along the line joining A and B, and collides elastically with A. Then

A

The kinetic energy of the A-B system, at maximum compression of the spring, is zero.

B

The kintic energy of A-B system, at maximum compressioonof the sprin is `(mv^(2))/(4)`

C

The maximum compression of the spring is `vsqrt((m)/(k))`

D

The maximum compression of the spring is `vsqrt((m)/(2k))`

Text Solution

Verified by Experts

The correct Answer is:
B, D

At maximum compression `vecv_(A) = vecv_(B)` & kinetic energy of A-B system will be minimum
so `v_(A) = v_(B) = v/2 rArr K_(AB) = 1/4 mv^(2)`
From energy conservation
`1/2 mv^(2) = 1/2 m (v/2)^(2) + 1/2m(v/2)^(2) + 1/2kx_(m)^(2) rArr x_(m) = vsqrt((m)/(2k))`
Promotional Banner

Topper's Solved these Questions

  • SIMPLE HARMONIC MOTION

    ALLEN |Exercise Exercise- 3 Match The Column|1 Videos
  • SIMPLE HARMONIC MOTION

    ALLEN |Exercise Asseration & Reason|7 Videos
  • SIMPLE HARMONIC MOTION

    ALLEN |Exercise Exercise-01|117 Videos
  • RACE

    ALLEN |Exercise Basic Maths (Wave Motion & Dopplers Effect) (Stationary waves & doppler effect, beats)|25 Videos
  • TEST PAPER

    ALLEN |Exercise PHYSICS|4 Videos

Similar Questions

Explore conceptually related problems

Two blocks of equal mass m are connected by an unstretched spring and the system is kept at rest on a frictionless horizontal surface. A constant force F is applied on the first block pulling away from the other as shown in Fig. Then the displacement of the centre of mass in at time t is

Two block A and B of masses m and 2m respectively are connected by a spring of spring cosntant k. The masses are moving to the right with a uniform velocity v_(0) each, the heavier mass leading the lighter one. The spring is of natural length during this motion. Block B collides head on with a thrid block C of mass 2m . at rest, the collision being completely inelastic. The velocity of centre of mass of system of block A, B, & C is -

Two block A and B of masses m and 2m respectively are connected by a spring of spring cosntant k. The masses are moving to the right with a uniform velocity v_(0) each, the heavier mass leading the lighter one. The spring is of natural length during this motion. Block B collides head on with a thrid block C of mass 2m . at rest, the collision being completely inelastic. The velocity of block B just after collision is -

Two block A and B of masses m and 2m respectively are connected by a spring of spring cosntant k. The masses are moving to the right with a uniform velocity v_(0) each, the heavier mass leading the lighter one. The spring is of natural length during this motion. Block B collides head on with a thrid block C of mass 2m . at rest, the collision being completely inelastic. The maximum compression of the spring after collision is -

Two blocks A and B of mass m and 2m respectively are connected by a massless spring of spring constant K . This system lies over a smooth horizontal surface. At t=0 the bolck A has velocity u towards right as shown while the speed of block B is zero, and the length of spring is equal to its natural length at that at that instant. {:(,"Column I",,"Column II"),((A),"The velocity of block A",(P),"can never be zero"),((B),"The velocity of block B",(Q),"may be zero at certain instants of time"),((C),"The kinetic energy of system of two block",(R),"is minimum at maximum compression of spring"),((D),"The potential energy of spring",(S),"is maximum at maximum extension of spring"):}

The figure shown blocks A and B are mass 2 kg and 8 kg and they are connected through strings to a spring connected to ground. The blocks are in equilbrium. (g=10m//s^(2)) The elongation of the spring is

Two blocks each of mass M are resting on a frictionless inclined plane as shown in fig then:

A block of mass 2 kg is connected with a spring of natural length 40 cm of force constant K=200 N//m . The cofficient of friction is mu=0.5 . When released from the given position, acceleration of block will be

In the figure, block A is released from rest when the spring is its natural length for the block B of mass m to leave contact with the ground at some stage what should be the minimum mass of block A? .

Two blocks of equal mass m are connected by an unstretched spring and the system is kept at rest on a frictionless horizontal surface. A constant force F is applied on the first block pulling away from the other as shown in Fig. If the extension of the spring is x_(0) at time t , then the displacement of the first block at this instant is

ALLEN -SIMPLE HARMONIC MOTION-Exercise-02
  1. A mass M is performing linear simple harmonic motion. Then correct gra...

    Text Solution

    |

  2. A uniform cylinder of length (L) and mass (M) having cross sectional a...

    Text Solution

    |

  3. Two identical springs are fixed at one end and masses 1kg and 4kg are ...

    Text Solution

    |

  4. A cylindrical block of the density rho is partically immersed in a liw...

    Text Solution

    |

  5. A mass of 0.2 Kg is attached to the lower end of a massles spring of f...

    Text Solution

    |

  6. A horizontal plank has a rectangular block placed on it. The plank sta...

    Text Solution

    |

  7. A particle is subjected to two simple harmonic motions along x and y d...

    Text Solution

    |

  8. A particle moves in the x-y the accoding to the equation, r = (hati + ...

    Text Solution

    |

  9. Two blocks A and B, each of mass m, are connected by a masslesss sprin...

    Text Solution

    |

  10. A solid uniform cylinder of mass M attached to a massless spring of fo...

    Text Solution

    |

  11. A ball is suspended by a thread of length l at the point O on an incl...

    Text Solution

    |

  12. A cage of mass M hangs from a light spring of force constant k. A body...

    Text Solution

    |

  13. In the above problem, the frequnecy of oscillations of the cage will b...

    Text Solution

    |

  14. The amplitude of a particle executing SHM about O is 10 cm. Then

    Text Solution

    |

  15. The angular frequency of a spring block system is omega(0). This syste...

    Text Solution

    |

  16. The x-coordinate of a particle moving on x-axis is given by x = 3 sin...

    Text Solution

    |

  17. Two blocks of masses 3 kg and 6kg rest on horizontal smooth surface. T...

    Text Solution

    |

  18. A disc of mass 3 m and a disc of mass m are connected by a massless sp...

    Text Solution

    |

  19. The displacement-time graph of a particle executing SHM is shown in fi...

    Text Solution

    |