Home
Class 12
PHYSICS
A uniform wound solenoidal coil of self ...

A uniform wound solenoidal coil of self inductance `1.8xx10^(-4)` henry and resistance 6 ohm is broken up into two identical coils. These identical coils are then connected in parallel across a 15-volt battery of negligible resistance. The time constant for the current in the circuit is.......seconds and the steady state current through the battery is ..............amperes.

Text Solution

Verified by Experts

The correct Answer is:
A, C, D
The coil is broken into two idential coils.
`L_(eq)=(L//2xxL//2)/(L//2+L//2)=L/4=0.45xx10^(-4)H`,
`R_(eq)=(R//2xxR//2)/(R//2+R//2)=R/4=1.5(Omega)`
Time constant `(L_(eq))/(R_(eq))=(0.45xx10^(-4))/(1.5)=3.0xx10^(-4) s`
Steady current `I=(E)/(r_(eq))=15.1.5=10A`
Doubtnut Promotions Banner Mobile Dark
|

Topper's Solved these Questions

  • CURRENT ELECTRICITY

    SUNIL BATRA (41 YEARS IITJEE PHYSICS)|Exercise JEE Main And Advanced|129 Videos

  • ELECTROSTATICS

    SUNIL BATRA (41 YEARS IITJEE PHYSICS)|Exercise Comprehension Based Questions|2 Videos

Similar Questions

Explore conceptually related problems

A uniform wound solenoid coil of self inductance 1.8 xx 10^(-4) H and resistance ohm is broken into two identical coils. These indentical coils are connected in parallel across a 12 V battery of negligible resistance. Calculate the steady state current through the battery and time constant of the circuit.

Self - inductance 0.8xx10^(-4) H of a uniformly wound solenoid, having resistance 3 Omega is broken up into two indentical coils. Those coils are connected in series across a 6 V battery of negligible resistance. Find time constant and steady state current.

Knowledge Check

  • A uniformly wound solenoid coil of self inductance 1.8xx10^(-4)H and resistance 6Omega is broken up into two identical coils. These identical coils are then connected in parallel across a 12V battery of negligible resistance. The time constant and steady state current will be

    A
    `10musec,6A`
    B
    `10musec,8A`
    C
    `30musec,6A`
    D
    `30musec,8A`

  • A uniformly wound solenoid coil of slf inductnace 4 mH and resistance 12 Omega is broken int two parts. These two coil are connected in parallel across is 12V battery. The steady current through battery is

    A
    1A
    B
    2A
    C
    4A
    D
    8A

  • A coil of inductance 8.4 mH and resistance 6 omega is connected to 12 V battery. The current in the coil is 1 A at approximately the time

    A
    500 s
    B
    20 s
    C
    35 ms
    D
    1 ms

    • Similar Questions

    Explore conceptually related problems

    Two resistors 4 Omega and 6 Omega connected in parallel. The combination is connected across a 6 V battery of negligible resistance. Calculate (a) the current through the battery (b) current through each resistor.

    An inductor coil carries a steady state current of 2.0 A when connected across an ideal battery of emf 4.0 V. if its inductance is 1.0 H, find the time constant of the circuit.

    A coil of inductance 8.4 mH and resistance 6 omega is connected to 12 V battery. The current in the coil is 1 A at approximately the time

    A coil of inductance 8.4 mH and resistance 6 (Omega) is connected to a 12 V battery. The current in the coil is 1.0 A at approximately the time

    A coil of inductance 8.4 mH and resistance 6 Omega is connected to a 12 V battery. The current in the coil is 1.0 A at approximately the time.

    Home
    Profile