In a circuit, a 10 Ω resistor is connected in series to a parallel group containing a 60 Ω resistor and a 5 Ω resistor. What is the total resistance in this circuit?

Question

A formula and explanation would be great!

DrBob222 · Answer

The parallel group has an equivalent resistance of 1/R = 1/R1 + 1/R2 1/R = 1/60 + 1/5 R = ? which I will call Rp Then the total for the circuit is Rtotal = 10 + Rp = ?

Henry · Answer

Another Method R1 = 10 Ohms R2 = 60 Ohms R3 = 5 Ohms Rt = R1 + (R2*R3)/(R2+R3)

Vicki · Answer

I think I am just dumb. Lol, I came up with 204.7 which is too big and not an option. What am I doing wrong. I know I'm doing something wrong... :(

Vicki · Answer

Never mind! Answer is 830Ω Thank you!

Henry · Answer

Rt = 10 * (60*5)/(60+5) = 10 + 4.62 = 14.62 Ohms = Total resistance. Note: Based on the values given, the total resistance will be less than 15 ohms.

Henry · Answer

Correction: Rt = 10 + (60*5)/(60+5) = 10 + 4.62 = 14.62 Ohms.

Vicki · Answer

The answer was 14.615Ω lol, the 830 was for another problem I was having difficulty with! I got both right though, so thank you! I just got mixed up here.