What is the total power dissipated by all four 100 Ω resistors in series across a 40 V supply?

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Study for the BCTC Industrial Maintenance Technology AMTEC – NOCTI Mechatronic Assessment. Prepare with flashcards and multiple choice questions, with hints and explanations. Get ready for your exam!

Multiple Choice

What is the total power dissipated by all four 100 Ω resistors in series across a 40 V supply?

Explanation:
In a series circuit, the same current flows through every resistor and the resistors’ resistances add up. Four 100 Ω resistors in series give a total of 400 Ω. The current from a 40 V supply is I = V / R_total = 40 / 400 = 0.1 A. The power dissipated by a resistor is P = I^2 R, so each resistor uses P = (0.1)^2 × 100 = 1 W. With four resistors, the total power is 4 W. You can also get the same result with P_total = V^2 / R_total = 40^2 / 400 = 4 W. Therefore, the total power dissipated is 4 W.

In a series circuit, the same current flows through every resistor and the resistors’ resistances add up. Four 100 Ω resistors in series give a total of 400 Ω. The current from a 40 V supply is I = V / R_total = 40 / 400 = 0.1 A. The power dissipated by a resistor is P = I^2 R, so each resistor uses P = (0.1)^2 × 100 = 1 W. With four resistors, the total power is 4 W. You can also get the same result with P_total = V^2 / R_total = 40^2 / 400 = 4 W. Therefore, the total power dissipated is 4 W.

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