
Ten identical cells each of potential and internal resistance , are connected in series to form a closed circuit. An ideal voltmeter, connected across three cells, will read

Important Questions on Current Electricity
Two cells of emf and with internal resistance and respectively are connected in series to an external resistor (see figure). The value of at which the potential difference across the terminals of the first cell becomes zero is

The current '' in the circuit shown in the figure is

In the circuit diagram shown in figure given below, the current flowing through resistance is . The value of is ________.

Calculate the net emf across and shown in Figure below


In case two cells are identical, each of emf and internal resistance , calculate the voltage across the external resistance

Two cells are connected between points and as shown. Cell 1 has emf of and internal resistance of . Cell 2 has emf of and internal resistance of . An external resistor of is connected across and . The current flowing through will be ______ .


What is the time taken by the capacitor in the given circuit to charge to of its full capacity?

A student is asked to connect four cells of emf each and internal resistance in a series helping conditions. By mistake, he connects one cell in the opposite way. What will be the effective emf and effective internal resistance :

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

Six cells, each of emf and internal resistance are connected as shown in Figure. The reading of the ideal voltmeter is







For the circuit shown in the figure, the current will be

In the given circuit, an ideal voltmeter connected across the resistance reads . The internal resistance , of each cell is:

