A charged particle moving in a uniform magnetic field and losses 4 % of its kinetic energy. The radius of curvature of its path changes by

Question

A charged particle moving in a uniform magnetic field and losses 4 % of its kinetic energy. The radius of curvature of its path changes by (A) 2 % (B) 4 % (C) 10 % (D) 12 %

Tardigrade Admin · Accepted Answer

As we know F = qvB =(m v2/r) ∴ r=(m v/B q) And KE = k =(1/2) m v2 ∴ m v=√2 k m ∴ r=(m v/q B)==√(2 k m/q B) ⇒ r propto √k or r=c1 backslash 2 (cis a constant) (d r/d r)=c (d k12/d r) or (c Δ k/Δ r)=2 √k or (Δ r/r)=(c Δ k/2 √k c √k)=(Δ k/2 k) There fore percentage changes in radius of path, (Δ r/r) × 100=(Δ k/2 k) × 100=2 %

Q. A charged particle moving in a uniform magnetic field and losses 4% of its kinetic energy. The radius of curvature of its path changes by

2 %

4 %

10 %

12 %

As we know F=qvB=rmv2​ ∴r=Bqmv​ And KE=k=21​mv2 ∴mv=2km​ ∴r=qBmv​==qB2km​​ ⇒r∝k​ or r=c1\2 (cis a constant) drdr​=cdrdk12​ or ΔrcΔk​=2k​ or rΔr​=2kc​k​cΔk​=2kΔk​ There fore percentage changes in radius of path, rΔr​ ×100=2kΔk​×100=2%

Q. A charged particle moving in a uniform magnetic field and losses $4%$ of its kinetic energy. The radius of curvature of its path changes by