InterviewSolution
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InterviewSolution
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Explain the mutual induction between two long solenoids. Obtain an expression for the mutual inductance. |
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Answer» Solution :i. `S_(1)andS_(2)` are TWO LONG solenoids each length l. The solenoid `S_(2)` is wound closely over the solenoid `S_(1).` ii. `N_(1)andN_(2)` are the number of turns in the solenoids `S_(1)andS_(2)` respectively. Both the solenoids are considered to have the same area of cross section A as they are closely wound together.  iii. `I_(1)` is the current flowing through the solenoid `S_(1).` The magnetic field `B_(1)` PRODUCED at any point inside the solenoid `S_(1)` due to the current `I_(1)` is `B_(1)=mu_(0)(N_(l))/(l)I_(1)""......(1)` iv. The magnetic flux linked with each turn of `S_(2)` is EQUAL to `B_(1)A.` Total magnetic flux linked with solenoid `S_(2)` having `N_(2)` turns is `phi=B_(1)AN_(2)` Substituting for `B_(1)` from equation (1) `phi_(2)=(mu_(0)N_(1)N_(2)AI_(1))/(l)""....(2)` But, `phi_(2)=MI_(1)"".......(3)` where M is the coefficient of mutual induction between `S_(1)andS_(2).` From equtions (2) and (3), `ML_(1)=(mu_(0)N_(1)N_(2)AI_(1))/(l),M=(muN_(1)N_(2)A)/(l)` v. If the core is filled with a magnetice material of permeabilty `mu,` `M=(muN_(1)N_(2)A)/(l)` |
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