CUET · PHYSICS · PYQ PAPER 2023
The electric field at the centre of a semi-circular arc of radius ' \(r\) ', which is charged uniformly and has linear charge density \(\lambda\) is :
- A \(\frac{\lambda}{4 \pi \varepsilon_0 r}\)
- B \(\frac{\lambda}{2 \pi \varepsilon_0 r^2}\)
- C \(\frac{\lambda^2}{2 \pi \varepsilon_0 r}\)
- D \(\frac{\lambda}{2 \pi \varepsilon_0 r}\)
Answer & Solution
Correct Answer
(D) \(\frac{\lambda}{2 \pi \varepsilon_0 r}\)
Step-by-step Solution
Detailed explanation
\(dE = \frac{1}{4\pi\varepsilon_0} \frac{\lambda r d\theta}{r^2} = \frac{\lambda d\theta}{4\pi\varepsilon_0 r}\) \(E_x = \int_0^\pi dE \cos\theta = \frac{\lambda}{4\pi\varepsilon_0 r} [\sin\theta]_0^\pi = 0\)…
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