CUET · PHYSICS · PYQ PAPER 2025
A semicircular arc of radius R is charged uniformly and its linear charge density is \( \lambda \). What will the electric field be at its centre?
- A \( \frac{\lambda}{2\pi \epsilon_0 R} \)
- B \( \frac{\lambda}{4\pi \epsilon_0 R} \)
- C \( \frac{\lambda}{2\pi \epsilon_0 R} \)
- D \( \frac{\lambda 2\pi R}{\epsilon_0} \)
Answer & Solution
Correct Answer
(C) \( \frac{\lambda}{2\pi \epsilon_0 R} \)
Step-by-step Solution
Detailed explanation
\( E = \frac{2k\lambda}{R} \sin\left(\frac{\alpha}{2}\right) \) \( E = \frac{2}{4\pi\epsilon_0} \frac{\lambda}{R} \sin\left(\frac{\pi}{2}\right) \) \( E = \frac{\lambda}{2\pi\epsilon_0 R} (1) \) \( E = \frac{\lambda}{2\pi\epsilon_0 R} \)
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