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A transverse wave is represented by y=Asin(ωtkx)y=A\sin(\omega t-kx). For what value of the wavelength is the wave velocity equal to the maximum particle velocity?

A

πA2\frac{\pi A}{2}

B

πA\pi A

C

2πA2\pi A

D

AA

Step-by-Step Solution

  1. Determine Wave Velocity (vv): For a wave represented by y=Asin(ωtkx)y = A\sin(\omega t - kx), the wave velocity is given by v=ωkv = \frac{\omega}{k} .
  2. Determine Maximum Particle Velocity (vmaxv_{\max}): The particle velocity vpv_p is the time derivative of the displacement yy: vp=yt=Aωcos(ωtkx)v_p = \frac{\partial y}{\partial t} = A\omega\cos(\omega t - kx) The maximum value of the particle velocity is the amplitude of this derivative, which is vmax=Aωv_{\max} = A\omega.
  3. Equate the Two Velocities: The problem states that the wave velocity is equal to the maximum particle velocity: v=vmaxv = v_{\max} ωk=Aω\frac{\omega}{k} = A\omega
  4. Solve for Wavelength (λ\lambda): Cancel ω\omega from both sides to get 1k=A\frac{1}{k} = A. We know that the wave number k=2πλk = \frac{2\pi}{\lambda} . Substitute this into the equation: 12πλ=A\frac{1}{\frac{2\pi}{\lambda}} = A λ2π=A\frac{\lambda}{2\pi} = A λ=2πA\lambda = 2\pi A
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