The equation of a transverse wave traveling along a very long string is given by

Question

The equation of a transverse wave traveling along a very long string is given by y = 6.4 sin(0.028x + 4.5t), where x and y are expressed in centimeters and t is in seconds. Determine the following values.

(a) the amplitude Correct: 6.4 cm

(b) the wavelength Correct: 71.43 cm

(c) the frequency: Hz

(d) the speed: 160.71 cm/s

(e) the direction of propagation of the wave +x -x +y or -y: -x

(f) the maximum transverse speed of a particle in the string: cm/s

(g) the transverse displacement at x = 3.5 cm when t = 0.26 s: cm

Bold parts need answers with explanations please!

Explanation / Answer

Compare the given equation with standrad equation

y = A*sin(kx + w*t)

so, A = 6.4 cm

k = 0.028*pi

w = 4.5*pi

C) f = w/(2*pi)

= 4.5*pi/(2*pi)

= 2.25 Hz

f) maximum transevrse speed, vmax = A*w

= 6.4*4.5*pi

= 90.5 cm /s or 0.905 m/s

g) at x = 3.5 cm, t = 0.26

y = 6.4*sin(0.028*pi*3.5 + 4.5*pi*0.26)

= 6.4*sin(3.983) (here use calculator in radians mode)

= -4.77 cm

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