Home
Class 12
PHYSICS
A block of mass m is placed at rest on a...

A block of mass `m` is placed at rest on a smooth wedge of mass M placed at rest on a smooth horizontal surface. As the system is released

A

path of centre of mass of system (block `+` wedge) is parabolic

B

path of centre of mass of system (block `+` wedge) is straight line.

C

normal force acting on the wedge from the ground is `(4mg)/(3)`

D

normal force acting on the wedge from the ground is `2mg`

Text Solution

Verified by Experts

The correct Answer is:
B, C

`:'` Net force is vertically downwards on system
`a_(cm) = (m xx (2g)/(3))/(m+m) = (g)/(3)`
Promotional Banner

Topper's Solved these Questions

  • TEST PAPERS

    RESONANCE|Exercise Physics|775 Videos
  • TEST PAPERS

    RESONANCE|Exercise PT-01|30 Videos
  • TEST PAPERS

    RESONANCE|Exercise PART - II PHYSICS SEC - 2|20 Videos
  • SIMPLE HARMONIC MOTION

    RESONANCE|Exercise Advanced Level Problems|13 Videos
  • TEST SERIES

    RESONANCE|Exercise PHYSICS|127 Videos

Similar Questions

Explore conceptually related problems

A small block of mass m is placed at rest on the top of a smooth wedge of mass M, which in turn is placed at rest on a smooth horizontal surface as shown in figure. It h be the height of wedge and theta is the inclination, then the distacne moved by the wedge as the block reaches the foot of the wedge is

A particle of mass m is placed at rest on the top of a smooth wedge of mass M, which in turn is placed at rest on a smooth horizontal surface as shown in figure. Then the distance moved by the wedge as the particle reaches the foot of the wedge is :

A smooth block of mass m is held stationary on a smooth wedge of mass M and inclination theta as shown in figure .If the system is released from rest , then the normal reaction between the block and the wedge is

A block of mass m slides over a smooth wedge of mass M which is placed over a rough horizontal surface . The centre of mass of the system will move towards left Here mu = coefficient of friction between the wedge and the ground .

A block of mass m rests on a stationary wedge of mass M. The wedge can slide freely on a smooth horizontal surface as shown in figure. If the block starts from rest

Figure shows a block A of mass 6 m having a smooth semicircular groove of radius a placed on a smooth horizontal surface. A block B of mass m is released from a position in groove where its radius is horizontal. Find the speed of the bigger block when the smaller block reaches its bottom most position.

A block of mass 2 kg is kept on a smooth wedge of mass 3 kg and wedge is kept on a rough horizontal surface. A vertical force of 60 N is applied on the minimum coefficient of friction between the wedge and horizontal surface, so that wedge remains at rest during the motion of block on the wedge ?

A block of mass m is placed at the bottom of a massless smooth wedge which if placed on a horizontal surface. When we push the wedge with a constant force, the block moves up the wedge. Find the work done by the external agent when the block has a speed v and is reaches the top of the wedge.

In the arrangement shown in figure, a block A of mass m has been placed on a smooth wedge B of mass M. The wedge lies on a horizontal smooth surface. Another block C of mass (M)/(4) has been placed in contact with the wedge B as shown. The coefficient of friction between the block C and the vertical wedge wall is mu= (3)/(4) . Find the ratio (m)/(M) for which the block C will not slide with respect to the wedge after the system is released?

RESONANCE-TEST PAPERS-PART - II PHYSICS
  1. A body of mass m is moved up (slowly) the plane of verying slope by a ...

    Text Solution

    |

  2. A wedge of mass m is placed on a smooth fixed horizontal surface and b...

    Text Solution

    |

  3. A block of mass m is placed at rest on a smooth wedge of mass M placed...

    Text Solution

    |

  4. Block A shown in figure can slide over fixed rigid wire of quarter cic...

    Text Solution

    |

  5. A light rod length L, is hanging from the vertical smooth wall of a ve...

    Text Solution

    |

  6. If pulley is ideal and string is massless then reading of weighing mac...

    Text Solution

    |

  7. Potential energy of a particle of mass m, depends on distance y from l...

    Text Solution

    |

  8. All the pulleys are ideal, string is massless then rate of work done b...

    Text Solution

    |

  9. A particle is projected with a speed of 10 m//s at an angle 37^(@) fro...

    Text Solution

    |

  10. A particle starts from point A, moves along a straight line path with ...

    Text Solution

    |

  11. A bullet of mass m strikes a pendulum bob of mass 2m with velocity u e...

    Text Solution

    |

  12. A block of mass m = 2 kg is connected to a a spring of force constant ...

    Text Solution

    |

  13. In the figure, the pulley P moves to the right with a constant speed o...

    Text Solution

    |

  14. The position of a paricle moving along x-axis depends on time as x = 2...

    Text Solution

    |

  15. Displacment-time graph of a particle moving in a straight line is as s...

    Text Solution

    |

  16. Suppose a body that is acted on by only two forces, is accelerated. Fo...

    Text Solution

    |

  17. The spring is compressed by a distance a and released. The block again...

    Text Solution

    |

  18. A particle is revolving in a circle of radius r and centre at 'O' with...

    Text Solution

    |

  19. Assuming potential energy 'U' at ground level to be zero. All obj...

    Text Solution

    |

  20. The potential energt of a particle of mass 0.1 kg, moving along the x-...

    Text Solution

    |