3 resistors 5 8 12 ohm each connected in series circuit battery has 3 cells 2 volts each find the current
Answers
We have:-
Three resistors 5 Ω, 8 Ω and 12 Ω
Three cells of 2 V each.
To FinD:-
Current flowing through the conductor??
Explanation:-
The resistors are connected in series, which means the equivalent resistance will be the sum total of all resistances.
• Req. = R1 + R2 + R3
➝ Req. = 5 Ω + 8 Ω + 12 Ω
➝ Req. = 25 Ω
Now finding the total voltage / potential difference provided by the source i.e. battery:
• Veq. = n × V
It is because all the potential differences provided by the cells are equal. n is the no. of cells in the battery.
➝ Veq. = 3 × 2 V
➝ Veq. = 6 V
Now finding the current by Ohm's law:
➝ Veq. = IReq.
➝ 6 V = I × 25 Ω
➝ I = 6 / 25 A
➝ I = 0.24 A
Hence:-
- The current flowing through the wire or the circuit is 0.24 A.
hope it helps uh:)
We have:-
Three resistors 5 Ω, 8 Ω and 12 Ω
Three cells of 2 V each.
To Find:-
Current flowing through the conductor??
Explanation:-
The resistors are connected in series, which means the equivalent resistance will be the sum total of all resistances.
• Req. = R1 + R2 + R3
➝ Req. = 5 Ω + 8 Ω + 12 Ω
➝ Req. = 25 Ω
Now finding the total voltage / potential difference provided by the source i.e. battery:
• Veq. = n × V
It is because all the potential differences provided by the cells are equal. n is the no. of cells in the battery.
➝ Veq. = 3 × 2 V
➝ Veq. = 6 V
Now finding the current by Ohm's law:
➝ Veq. = IReq.
➝ 6 V = I × 25 Ω
➝ I = 6 / 25 A
➝ I = 0.24 A
Hence:-
The current flowing through the wire or the circuit is 0.24 A.