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Capacitor Question Practice. A2 Physics. Q1. What is the energy held by a 50 000 m F capacitor charged to 12.0 V? (2 marks). A1. E = ½ CV 2 E = ½ × 50 000 × 10 -6 F × (12.0 V) 2 ( P ) = 3.6 J ( P ). Q2. What is the charge held by a 470 m F capacitor charged to a p.d. of 8.5 V?
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Capacitor Question Practice A2 Physics
Q1 What is the energy held by a 50 000 mF capacitor charged to 12.0 V? (2 marks)
A1 E = ½ CV2 E = ½ × 50 000 × 10-6 F × (12.0 V)2 (P) = 3.6 J (P)
Q2 What is the charge held by a 470 mF capacitor charged to a p.d. of 8.5 V? (2 marks)
A2 Q = CV (P) = 470 x 10-6 F × 8.5 V = 4.0 × 10-3 C (P)
Q3 A capacitor is connected to a 12V power supply by a reed switch operating at 400 Hz. The ammeter reads 45 mA. What is the capacitance of the capacitor? (2 marks)
A3 Q = It but f = 1/t so Q = I/f C = Q/V = I ¸ (Vf) C = 0.045 A ¸ (400 Hz × 12.0 V) (P) C = 9.38 × 10-6 F = 9.38 mF (P)
Q4 A 5000 mF capacitor is charged to 12.0 V and discharged through a 2000 W resistor. (a) What is the time constant? (1 mark) (b) What is the voltage after 13 s? (2 marks) (c) What is the half-life of the decay? (2 marks) (d) How long would it take the capacitor to discharge to 2.0 V (3 marks) (8 marks total)
4a Time constant = RC = 2000 W × 5000 × 10-6 F = 10 s (P)
4b V = V0 e –t/RC V = 12.0 × e –13 /10(P) V = 12.0 × e – 1.3 = 12.0 × 0.273 = 3.3 volts (P)
4c V = V0 e –t/RC V ¸ V0 = 0.5 = e –t(half)/RC ln(0.5) = - t1/2 /RC ln2 = t1/2 /RC (P) (The log of a reciprocal is the negative of that for the original number) t1/2 = 0.693 × RC = 0.693 × 10 = 6.93 s (P)
4d V = V0 e –t/RC V ¸ V0 = e –t/RC ln V - ln Vo = -t/RC (P) (When you divide two numbers, you subtract their logs) 0.693 – 2.485 = - t/10 ln2 - ln12 = - t/10 (P) -t/10 = -1.792 t/10 = 1.792 t = 1.792 × 10 = 17.9 s (P)