Home
Class 12
PHYSICS
The system containing the rails and the ...

The system containing the rails and the wire of the previous problem is kept vertically in a uniform horizontal magnetic field B that is perpendicular to the plane of the rails. It is found that the wire stays in equilibrium. If the wire ab is replaced by another of double its mass, how long will it take in falling through a distance equal ot its length?

Text Solution

Verified by Experts

Given : Blv=mg
When wire is replace ,we have
`2mg-Blv=2 ma …(i)`
` implies a= (2mg-Blv)/(2m)`
`Now, s=ut+(1/2)at^2`
` implies l=(1/2)xx(2 mg-Blv)/(2m)xxt^2`
`[:. S=l]`
`t=sqrt((4 ml)/(2 mg-Blv))`
`=sqrt((4 ml)/(2mg-mg)) [from (1)] `
` =sqrt((21)/(g))`.
Promotional Banner

Topper's Solved these Questions

  • ELECTROMAGNETIC INDUCTION

    HC VERMA|Exercise EXERCISE|9 Videos
  • ELECTROMAGNETIC INDUCTION

    HC VERMA|Exercise Objective 2|10 Videos
  • ELECTRIC FIELD AND POTENTIAL

    HC VERMA|Exercise Exercises|75 Videos
  • ELECTROMAGNETIC WAVES

    HC VERMA|Exercise Exercises|9 Videos

Similar Questions

Explore conceptually related problems

A small ball of mass m and charge q is attached to the bottom end of a piece of negligible mass thread of length l, whose top end is fixed. The system formed by the thread and ball is in vertical plane and is in uniform horizontal magnetic field B, which is perpendicular to the plane of figure and points into the paper The ball is started with a velocity v_(0) from lower most point of circle in a direction perpendicular both to the magnetic induction and to direction of thread. The ball moves along a circular path such that thread remains tight during the whole motion. Neglect any loss of enery. Choose CORRECT statement

A small ball of mass m and charge q is attached to the bottom end of a piece of negligible mass thread of length l, whose top end is fixed. The system formed by the thread and ball is in vertical plane and is in uniform horizontal magnetic field B, which is perpendicular to the plane of figure and points into the paper The ball is started with a velocity v_(0) from lower most point of circle in a direction perpendicular both to the magnetic induction and to direction of thread. The ball moves along a circular path such that thread remains tight during the whole motion. Neglect any loss of enery. What is the magnitude of magnetic induction B, if the minimum initial speed at which the described motion of ball (complete vertical circular motion) occurs is V_(0)=(1)/(2)sqrt(17gL)

A small ball of mass m and charge q is attached to the bottom end of a piece of negligible mass thread of length l, whose top end is fixed. The system formed by the thread and ball is in vertical plane and is in uniform horizontal magnetic field B, which is perpendicular to the plane of figure and points into the paper The ball is started with a velocity v_(0) from lower most point of circle in a direction perpendicular both to the magnetic induction and to direction of thread. The ball moves along a circular path such that thread remains tight during the whole motion. Neglect any loss of enery. By what factor is the force acting on the thread (tension in thread) at point A is greater than at point C, when speed of the ball is the above stated one?

(a) A current-carrying circular loop lies on a smooth horizontal plane. Can a uniform magnetic field be set up in such a manner that the loop turns around itself (i.e., turns about the vertical axis). (b) A current-carrying circular loop is located in a uniform external magnetic field. If the loop is free to turn, what is its orientation of stable equilibrium? Show that in this orientation, the flux of the total field (external field + field produced by the loop) is maximum. (c) A loop of irregular shape carrying current is located in an external magnetic field. If the wire is flexible, why does it change to a circular shape?

Figure shows a metal rod PQ resting on the smooth rails AB and positioned between the poles of a permanent magnet. The rails, the rod, and the magnetic field are in three mutual perpendicular directions. A galvanometer G connects the rails through a switch K. Length of the rod =15 cm, B =0.50 T, resistance of the closed loop containing the rod 9.0 m Omega . Assume the field to be uniform. (a) Suppose K is open and the rod is moved with a speed of 12 "cm s"^(-1) in the direction shown. Give the polarity and magnitude of the induced emf. (b) Is there an excess charge built up at the ends of the rods when K is open ? What if K is closed ? (c) With K open and the rod moving uniformly, there is no net force on the electrons in the rod PQ even though they do experience magnetic force due to the motion of the rod. Explain. (d) What is the retarding force on the rod when K is closed ? How much power is required (by an external agent) to keep the rod moving at the same speed (= 12 cm s^(-1) ) when K is closed ? How much power is required when K is open? (f)How much power is dissipated as heat in the closed circuit ? What is the source of this power ? (g) What is the induced emf in the moving rod if the magnetic field is parallel to the rails instead of being perpendicular ?

A cylindrical capacitor with external radius R, internal radius R-d(dltltR ) , length l and mass M hangs on an insulating cord in a region where there is a homogenous, vertical magnetic field of strength B. It can rotate freely as a whole around its vertical axis, but is constrained, so that it can not move horizontally. The capacitor is charged and there is a voltage difference If without being mechaically disturbed, the capacitor is discharged through an internal radial wire then find maximum angular velocity of capacitor

One U shaped conducting frame is placed in a plane perpendicular to uniform magnetic field B. One conducting rod of mass m and length l is kept perpendicular to parallel sides of this frame. At time t = 0, this rod is pushed perpendicular to its length with initial velocity v_g . Prove that its velocity at the end of time t is v_t=v_0 "exp" ((-B^2l^2)/(mR)t) where R=resistance of external circuit and l=perpendicular distance between two parallel slides .

A long straight wire of negligible resistance is bent into V shape, its two arms making an angle alpha with each other and placed horizotally in a vertical, homogeneous field B. A rod of total mass m, and resistance r per unit length, is placed on V shaped conductor, at a distance x_(0) from its vertex A, and perpendicular to the bisector of angle alpha (see fegure) The rod is started off with an initial veloctiy v_(0) in the direction of bisector and away from vertex A. The rod is long enough not to fall off the wire during the subsquent motion, and the electrical contact between the two is good although friction between them is negligible. Choose CORRECT statements(s)

As shown in figure, a long wire kept vertically on the plane of paper carries electric current-I. A conducting ring moves towards the wire with velocity v with its plane conducting with the plane of paper. Find the induced emf produced in the ring when it is at a perpendicular distance r from the wire. Radius of the ring is a and a lt lt r.

A straight horizontal conducting rod of length 0.45 m and mass 60 g is suspended by two vertical wires at its ends. A current of 5.0 A is set up in the rod through the wires. (a) What magnetic field should be set up normal to the conductor in order that the tension in the wires is zero? (b) What will be the total tension in the wires if the direction of current is reversed keeping the magnetic field same as before? (Ignore the mass of the wires.) g = 9.8 m s^(-2) .

HC VERMA-ELECTROMAGNETIC INDUCTION-Exercises
  1. The current generator I g, shown in . Sends a constant current I throu...

    Text Solution

    |

  2. The current generator ig, shown in , sends a constant current I throu...

    Text Solution

    |

  3. The system containing the rails and the wire of the previous problem i...

    Text Solution

    |

  4. The rectangualr wire- frame, shown in has a width d, mass m, resist...

    Text Solution

    |

  5. Shows a smooth pair of thick metallic rails connected across a battery...

    Text Solution

    |

  6. A conducting wire ab of length l, resistance r and mass m starts slidi...

    Text Solution

    |

  7. A bicycle is resting on its stand in the east - west direction and the...

    Text Solution

    |

  8. A conducting disc of radius r rotaes with a small but constant angul...

    Text Solution

    |

  9. shows a conducting disc rotating about its axis in a perpendicular ma...

    Text Solution

    |

  10. The magnetic field inn a region is given by vec B = (B0)/(L) y overse...

    Text Solution

    |

  11. shows a straight, long wire carrying a current I and a rod of length l...

    Text Solution

    |

  12. Consider a situation similar ot that of the previous problem except th...

    Text Solution

    |

  13. Shows a square frame of wire having a total resistance r placed coplan...

    Text Solution

    |

  14. A rectangular metallic loop of length l and width b is placed coplan...

    Text Solution

    |

  15. Shows a conducting circular loop of radius a placed in a uniform, perp...

    Text Solution

    |

  16. Consider the situation shown in the figure o fthe previous problem. Su...

    Text Solution

    |

  17. Consider a variation of the previous problem. Suppose the circular loo...

    Text Solution

    |

  18. Shows a situation similar to the previous problem. All parameters are...

    Text Solution

    |

  19. A wire of mass m and length l can slide freely on a pair of smooth, ve...

    Text Solution

    |

  20. A uniform magnetic field B exists in a cylindrical region, shown dotte...

    Text Solution

    |