In this resistor network, the emf of the supply is 12 V and it has negligible internal resistance. 12 V power supply What is the reading on a voltmeter connected between points X and Y? A 0 V B 1 V C 3 V D 4 V

A-Level AQA Physics Circuits & The Potential Divider: In this resistor network, the em

To determine the voltmeter reading between points X and Y, we first analyze the resistor network.

Identify the Configuration: The resistors are arranged in series and parallel. The 2 Ω and the two 1 Ω resistors are in parallel, while the 3 Ω resistor is connected in series with this combination.
Calculate Equivalent Resistance:
- The equivalent resistance (R_parallel) of the parallel resistors (2 Ω, 1 Ω, and 1 Ω):
  
  $\frac{1}{R_{parallel}} = \frac{1}{2} + \frac{1}{1} + \frac{1}{1}$
  
  This simplifies to:
  
  $R_{parallel} = \frac{1}{\frac{1}{2} + 2} = \frac{1}{2.5} = 0.4 \text{Ω (approximately)}$
- Total resistance in the circuit (R_total) is then:
  
  $R_{total} = R_{parallel} + 3 = 0.4 + 3 = 3.4 \text{Ω}$
Calculate Current (I): Using Ohm’s law, current through the circuit is:

$I = \frac{V}{R_{total}} = \frac{12V}{3.4Ω} \approx 3.53A$
Voltage Drop Across the Resistors: The voltmeter is connected between points X and Y. Therefore, we need to evaluate the voltage drop:
- The drop across the 3 Ω resistor:
$V = I \times R = 3.53A \times 3Ω \approx 10.59V$
- The remaining voltage across the equivalent parallel resistors:
$V_{parallel} = 12V - 10.59V \approx 1.41V$
Since both identical 1 Ω resistors will have the same voltage drop, the reading on the voltmeter between X and Y will be half of 1.41V, yielding:

$V_{XY} = \frac{1.41V}{2} \approx 0.705V ≈ 0V ext{ to 1 significant figure.}$

As options only provide whole numbers, the closest option to our calculation is A 0 V.