Home
Class 12
PHYSICS
In the network shown in the above fig...


In the network shown in the above figure find the current through ` 3 Omega` and `10 Omega` resistances.

Text Solution

Verified by Experts

The network is a simple and parallel combination of resistors.
Total resistance ` = [((10 xx 15)/(10+ 15)) + 3 + 1] omega = (6+4) Omega`

Current I from A to C , `I = (10 V)/(10 Omega ) = 1A` (Current through `3 Omega`)
Potential difference across `V_(AB) = (1 A)(6 Omega) = 6V`
`10 Omega ` and `15 Omega` are in parllel across AB. So, potential difference across both of then ` = V_(AB) = 6 V` .
Current through `10 Omega , l = (V_(AB))/(10 Omega) = (6 V)/(10 Omega) = 0.6 A`
Promotional Banner

Topper's Solved these Questions

  • CURRENT ELECTRICITY

    AAKASH INSTITUTE|Exercise Try Yourself|32 Videos

  • CURRENT ELECTRICITY

    AAKASH INSTITUTE|Exercise ASSIGNMENT(SECTION-A(OBJECTIVE TYPE QUESTIONS))|59 Videos

  • COMMUNICATION SYSTEMS

    AAKASH INSTITUTE|Exercise ASSIGNMENT SECTION D (Assertion-Reason)|10 Videos

  • DUAL NATURE OF RADIATION AND MATTER

    AAKASH INSTITUTE|Exercise ASSIGNMENT (SECTION-D)|10 Videos

Similar Questions

Explore conceptually related problems

Find the current through 2 Omega and 4 Omega resistance.

In the given circuit,find the current through 6 Omega resistance

Find the current through the 10 Omega resistance connected across AB

In the circuit shown in figure. 3.82 find the current through battery and current in 8Omega resistances.

In the circuit, the current flowing through 10 Omega resistance

In the circuit shown the currents in 4 Omega and 8 Omega resistances are

Find the current through the 10(Omega) resistor shown in figure.

In the figure shown the current through 2 Omega resistor is

In the shown figure, bridge is balanced, the current flowing through 2Omega resistance is