Two particles A and B execute simple harmonic motion of period T and 5 T / 4 . They start from mean position. The phase difference between them when the particle A completes one oscillation will be

Question

Two particles A and B execute simple harmonic motion of period T and 5 T / 4 . They start from mean position. The phase difference between them when the particle A completes one oscillation will be (A) π / 2 (B) Zero (C) 2 π / 5 (D) π / 4

Tardigrade Admin · Accepted Answer

Equation of motion of the particles are

X_{1} = A_{1} s in \frac{2 π}{T _{1}} t

and

X_{2} = A_{2} s in \frac{2 π}{T _{2}} t

∴

Phase difference

Δ ϕ = (\frac{2 π}{T _{1}} - \frac{2 π}{T _{2}}) t

= (\frac{2 π}{T} - \frac{2 π}{5 T /4}) t

at

t = T

Δ ϕ = (2 π - \frac{4 \times 2 π}{5}) \frac{T}{T} = \frac{2 π}{5}

Q. Two particles $A$ and $B$ execute simple harmonic motion of period $T$ and $5 T /4$ . They start from mean position. The phase difference between them when the particle $A$ completes one oscillation will be

$π /2$

Zero

$2 π /5$

$π /4$

Q. Two particles A and B execute simple harmonic motion of period T and 5T/4 . They start from mean position. The phase difference between them when the particle A completes one oscillation will be

π/2

Zero

2π/5

π/4

Equation of motion of the particles are X1​=A1​sinT1​2π​t and X2​=A2​sinT2​2π​t ∴ Phase difference Δϕ=(T1​2π​−T2​2π​)t =(T2π​−5T/42π​)t at t=T Δϕ=(2π−54×2π​)TT​=52π​

Q. Two particles $A$ and $B$ execute simple harmonic motion of period $T$ and $5 T /4$ . They start from mean position. The phase difference between them when the particle $A$ completes one oscillation will be

$π /2$

$2 π /5$

$π /4$