Embibe Experts Solutions for Chapter: Current Electricity, Exercise 1: assam board-2018

Author:Embibe Experts

Embibe Experts Physics Solutions for Exercise - Embibe Experts Solutions for Chapter: Current Electricity, Exercise 1: assam board-2018

Attempt the free practice questions on Chapter 3: Current Electricity, Exercise 1: assam board-2018 with hints and solutions to strengthen your understanding. EMBIBE CHAPTER WISE PREVIOUS YEAR PAPERS FOR PHYSICS solutions are prepared by Experienced Embibe Experts.

Questions from Embibe Experts Solutions for Chapter: Current Electricity, Exercise 1: assam board-2018 with Hints & Solutions

MEDIUM
12th Assam Board
IMPORTANT

Determine the equivalent resistance of the network given below and the total current going out of the battery. Given each resister has a resistance of 1Ω.

Question Image

 

 

 

 

 

HARD
12th Assam Board
IMPORTANT

Question ImageIn the following network, I1=52A, I2=58A and I3=158A.Calculate total voltage drop over the closed loop BADEB.

 

HARD
12th Assam Board
IMPORTANT

find the equivalent resistance across the terminal A and B.

Shown in the figure below

Question Image

 

MEDIUM
12th Assam Board
IMPORTANT

How would you connect resistance 1Ω, 2Ω and 3Ω so as to get an equivalent resistance of 3·66Ω. Draw a required circuit diagram.

HARD
12th Assam Board
IMPORTANT

Draw a circuit diagram required to compare the e.m.fs. of two cells using potentiometer. Write also mathematical formula required for it.

HARD
12th Assam Board
IMPORTANT

When a coil of area 5m2 and number of turns 100 is placed  perpendicular to a magnetic field of 10T, the flux passing through it is 5×103Wb. If the coil is removed from field in 0·1s, calculate the induced e.m.f.

MEDIUM
12th Assam Board
IMPORTANT

In the following diagram, the potential difference between the points A and B  is V Find an expression for the total current. Show that.

V=E1 r1+E2 r2r1+r2-Ir1 rr1+r3

Question Image

EASY
12th Assam Board
IMPORTANT

R1 and R2 are two resisters Req(s)and Req(p) are their equivalent resistances when they are connected in (1) series and (2 ) in parallel. Draw two circuit diagrams for (1) and (2) and show that R3q(s)×Req(p)=R1 ×R2.