A hazard warning flasher consists of a light bulb and a 500 µF capacitor. When the bulb lights up, 40 J of energy are converted to light and heat. A) What voltage must be applied across the capacitor? B) What is the capacitor’s initial charge?
The correct answer and explanation is:
To solve this problem, we’ll use the formulas related to the energy stored in a capacitor:
Key Formula:
E=12CV2E = \frac{1}{2} C V^2
Where:
- EE is the energy stored in the capacitor (in joules),
- CC is the capacitance (in farads),
- VV is the voltage across the capacitor (in volts).
We’re given:
- Energy, E=40 JE = 40 \, \text{J},
- Capacitance, C=500 μF=500×10−6 F=0.0005 FC = 500 \, \mu\text{F} = 500 \times 10^{-6} \, \text{F} = 0.0005 \, \text{F}
Part A: What voltage must be applied across the capacitor?
Rearrange the energy formula to solve for voltage VV: V=2ECV = \sqrt{\frac{2E}{C}} V=2×400.0005=160000=400 VV = \sqrt{\frac{2 \times 40}{0.0005}} = \sqrt{160000} = 400 \, \text{V}
✅ Answer A: The voltage must be 400 volts.
Part B: What is the capacitor’s initial charge?
Use the formula for charge: Q=C×VQ = C \times V Q=0.0005 F×400 V=0.2 CQ = 0.0005 \, \text{F} \times 400 \, \text{V} = 0.2 \, \text{C}
✅ Answer B: The capacitor’s initial charge is 0.2 coulombs.
Explanation (300 words):
A hazard warning flasher operates by storing energy in a capacitor and then rapidly releasing that energy to power a light bulb. The energy stored in a capacitor is determined by both the capacitance and the voltage applied. In this problem, the capacitor stores 40 joules of energy, which is released to light the bulb.
The formula E=12CV2E = \frac{1}{2} C V^2 tells us how much energy is stored in the electric field between the capacitor’s plates. By rearranging this equation, we can solve for the voltage required to store a specific amount of energy. Plugging in the given values — 40 J for energy and 500 µF (converted to farads as 0.0005 F) for capacitance — we find that 400 volts must be applied.
Next, we calculate the charge on the capacitor using Q=C×VQ = C \times V. This tells us how much electric charge is stored when the capacitor is fully charged at 400 V. The resulting charge is 0.2 coulombs.
Understanding how capacitors work in circuits like hazard flashers is important in both electronics and automotive applications. They provide a reliable way to time and release bursts of energy efficiently, making them ideal for intermittent lighting. This calculation also illustrates how physical properties (capacitance and voltage) directly affect energy storage and electrical performance.