A bar magnetic is dropped between a current carrying coil. What would be its acceleration?
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The self inductance of a solenoid of length L, area of cross section A and having N turns is :
A copper ring is tied to a string and suspended vertically. On bringing a magnetic towards the coil, as shown in the figure
A metallic rod completes its circuit as shown in the figure. The circuit is normal to a magnetic field B = 0.15 tesla. If the resistances of the rod is 3Ω the force required to move the rod with a constant velocity of 2m/sec is :
The plate circular coils P and Q have radii r1 and r2. (r1 << r2) and are coaxial as shown in figure. the number of turns in P and Q are respectively N1 and N2. If current in coil Q is varied steadily at a rate x A/s then the induced emf in the coil P will be approximately :
A metal rod of length L is placed normal to a magnetic field and rotated through one end of rod in a circular path with frequency f. The potential difference between it ends will be :
A circular conducting loop is placed in uniform magnetic field B = 0.025 Tesla perpendicular to plane of loop. The loop is allowed to shrink in radius at rate 1 mm/second. When radius is 2 cm. What is the value of instantaneous induced EMF.
The graph between the current and the time for an inductance coil is shown below which of the following graph show the voltage time variation
In a step down transformer input voltage is 200 volt and output voltage 5 volt. The ratio of number of turns in it will be