A battery of emf `E_0=12V` is connected across a `4 m` long uniform wire having resistance `4Omega//m`. The cell of small emfs `epsilon_1=2V` and `epsilon_2=4V` having internal resistance `2Omega` and `6Omega` respectivley are connected as shown in the figure. If galvanometer shows no diflection at the point `N` the distance of points `N` from the point `A` is equal to

A battery of emf E_(0) = 12 V is connected across a 4 m long uniform wire having resistance (4 Omega)/(m) . The cells of small emfs epsilon_(1) = 2 V and epsilon_(2) - 4 V having internal resistance 2 Omega and 6 Omega respectively, are connected as shown in the figure. If galvanometer shows no deflection at the point N , the distance of point N from teh point A is equal to

A battery of emf E_(0)=12V is connected across a 4m long uniform wire having resistance 4Omega//m . The cells of small emfs e_(1)=2V and e_(2)=4V having internal resistance 2Omega and 6Omega respectively, are connected as shown in the figure. If galvanometer shows no deflection at the point N, the distance of point N from the point A is equal to

A battery of emf epsilon_0 = 5V and internal resistance 5 Omega is connected across a long uniform wire AB of length 1m and resistance per unit length 5 Omegam^(-1) . Two cells of epsilon_1 = 1 V and epsilon_2 = 2V are connected as shown in the figure.

A circuit consists of three bateries of emf E_(1) = 1V, E_(2)=2V and E_(3)=3V and internal resistance 1Omega, 2Omega and 1Omega respectively which are connected in parallel as shown in figure. The potential difference between points P and Q is

In the figure, the potentiometer wire of length l = 100 cm and resistance 9 Omega is joined to a cell of emf cell of emf E_(2) = 5 V and internal resistance r_(2) = 2 V is connected as shown. The galvanometer is show no deflection when the length AC is

E_(1) and E_(2) are two batteries having emfs of 3V and 4V and internal resistances of 2Omega and 1Omega respectively. They are connected as shown in Figure 2 below. Using Kirchhoff.s Laws of electrical circuits, calculate the currents I_(1) and I_(2) .

E_(1) and E_(2) are two batteries having emfs of 3V and 4V and internal resistances of 2Omega" and "1Omega respectively. They are connected as shown in Figure 2. Using Kirchhoff.s Laws of electrical circuits, calculate the current I_(1) and I_(2) .

In the ciruit the cells E_1 and E_2 have emfs of 4V and 8V and internal resistance 0.5 Omega and 1.0 Omega, respectively. Calculate the current through 6 Omega resistance.

epsi_(1) and epsi_(2) are two batteries having e.m.f of 34V and 10V respectively and internal resistance of 1Omega and 2Omega respectively. They are connected as shown in figure below. Using Kirchhoff.s Laws of electrical networks, calculate the current I_(1) and I_(2)

Two batteries, one of emf 18V and internal resistance 2Omega and the other of emf 12 and internal resistance 1Omega , are connected as shown. The voltmeter V will record a reading of