A student investigates resistors connected in series in an electrical circuit. The student has - a 3.0V battery - a 22Ω resistor - a resistor marked X. The student does not know the value of the resistor marked X. The student decides to measure the potential difference (voltage) across resistor X. Figure 15 shows the circuit that the student connected. a) The circuit is connected incorrectly. Describe how the student should correct the mistake. b) The student corrects the mistake. The voltage across resistor X is 2.1V. The circuit is connected to a 3V battery. i) State the value of the voltage across the 22Ω resistor. ii) The current in resistor X is 0.041A. The voltage across resistor X is 2.1V. Show that the resistance of resistor X must be about 50 ohms. Use the equation V = I × R iii) Calculate the power in resistor X when the voltage across X is 2.1V and the current in resistor X is 0.041A. iv) Calculate the overall resistance of the 22 ohm resistor and resistor X. v) The current in the circuit is 0.041A. The voltage across the battery is 3.0V. Calculate the energy transferred in 2 minutes. Use the equation E = I × V × t

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A student investigates resistors connected in series in an electrical circuit - Edexcel - GCSE Physics - Question 6 - 2020 - Paper 1

Question 6

A student investigates resistors connected in series in an electrical circuit. The student has - a 3.0V battery - a 22Ω resistor - a resistor marked X. The student... show full transcript

Worked Solution & Example Answer:A student investigates resistors connected in series in an electrical circuit - Edexcel - GCSE Physics - Question 6 - 2020 - Paper 1

Step 1

a) Describe how the student should correct the mistake.

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Answer

The student should move the voltmeter so that it is connected in parallel with the resistor marked X. This will allow for the correct measurement of the voltage across the resistor.

Step 2

b) i) State the value of the voltage across the 22Ω resistor.

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Answer

The voltage across the 22Ω resistor is 0.9V.

Step 3

b) ii) Show that the resistance of resistor X must be about 50 ohms.

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Answer

We are given the voltage across resistor X, V = 2.1V, and the current through resistor X, I = 0.041A.

Using the formula:

V = I imes R

We can rearrange to find R:

R = \frac{V}{I} = \frac{2.1}{0.041} \approx 51.22 \Omega

This value rounds to approximately 50Ω.

Step 4

b) iii) Calculate the power in resistor X.

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Answer

The power in resistor X can be calculated using the formula:

P = V imes I

Substituting the values:

P = 2.1V imes 0.041A = 0.0861W

Thus, the power is approximately 0.086W.

Step 5

b) iv) Calculate the overall resistance of the 22 ohm resistor and resistor X.

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Answer

The overall resistance in a series circuit is the sum of the individual resistances. Thus:

R_{total} = R_{22} + R_X = 22 + 51.22 \\approx 73.22 \Omega

Step 6

b) v) Calculate the energy transferred in 2 minutes.

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Answer

Using the equation for energy:

E = I \times V \times t

Where I = 0.041A, V = 3.0V, and t = 2 imes 60s = 120s,

We substitute:

E = 0.041 \times 3.0 \times 120 = 14.76J

Thus, the energy transferred is approximately 15J.

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A student investigates resistors connected in series in an electrical circuit - Edexcel - GCSE Physics - Question 6 - 2020 - Paper 1

Worked Solution & Example Answer:A student investigates resistors connected in series in an electrical circuit - Edexcel - GCSE Physics - Question 6 - 2020 - Paper 1

a) Describe how the student should correct the mistake.

b) i) State the value of the voltage across the 22Ω resistor.

b) ii) Show that the resistance of resistor X must be about 50 ohms.

b) iii) Calculate the power in resistor X.

b) iv) Calculate the overall resistance of the 22 ohm resistor and resistor X.

b) v) Calculate the energy transferred in 2 minutes.

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