Respuesta :
Answer:
Part(a): The mass per unit length = [tex]22.05 Kg m^{-1}[/tex].
Part(b): The velocity of the traveling transverse wave = [tex]2.04 m s^{-1}[/tex]
Part(c): The expression for a transverse wave on the string travelling along positive x-direction is [tex]y(x,t) = A \sin(kx - \omega t)[/tex]
Part(d): The expression for a transverse wave on the string travelling along negative x-direction is [tex]y_{-}(x,t) = A \sin(kx - \omega t)[/tex]
Part(e): The equation of the standing wave is [tex]y(x,t) = 2A \sin(kx) \cos(\omega t)[/tex].
Explanation:
Part(a):
The mass per unit length ([tex]\mu[/tex]) is given by,
[tex]\mu = \pi~ r^{2} \rho = \pi \times 9 \times 10^{-4}~m~\times 7800~kg~m^{-3} = 22.05~Kg~m^{-1}[/tex]
Part(b):
According to the figure, the net force on the element ([tex]\Delta x[/tex]) of the string, is the sum of the tension in the string ([tex]F_{T}[/tex]) and the restoring force. The x-components of the force of tension will cancel each other, so the net force is equal to the sum of the y-components of the force. To obtain the y-components of the force, at [tex]x = x_{1}[/tex]
[tex](\dfrac{\partial y}{\partial x})_{x = x_{1} }= \dfrac{- F_{V^{-}}}{F_{T}}[/tex]
and at [tex]x = x_{2}[/tex]
[tex](\dfrac{\partial y}{\partial x})_{x = x_{2} }= \dfrac{F_{V^{+}}}{F_{T}}[/tex]
The net force ([tex]F_{net}[/tex]) on the string element is given by
[tex]F_{net} = F_{V}^{+} + F_{V}^{-}\\~~~~~~~= F_{T}[ (\dfrac{\partial y}{\partial x})_{x = x_{2}} - (\dfrac{\partial y}{\partial x})_{x = x_{1}}][/tex]
According to Newton's second law of motion, [tex]F_{net} = \Delta x \times \mu[/tex], where [tex]\mu[/tex] is mass per unit length. So,
[tex]&& \Delta x \times \mu \dfrac{\partial^{2}y}{\partial t^{2}} = [(\dfrac{\partial y}{\partial x})_{x = x_{2}} - (\dfrac{\partial y}{\partial x})_{x = x_{1}}] \times F_{T}\\&or,& \dfrac{\mu}{F_{T}} \dfrac{\partial^{2}y}{\partial t^{2}} = \dfrac{[(\dfrac{\partial y}{\partial x})_{x = x_{2}} - (\dfrac{\partial y}{\partial x})_{x = x_{1}}]}{\Delta x} = \dfrac{\partial^{2}y}{\partial x^{2}}[/tex]
Comparing the above equation with standard wave equation
[tex]\dfrac{\partial^{2}y}{\partial x^{2}} = \dfrac{1}{v^{2}} \dfrac{\partial^{2}y}{\partial x^{2}}[/tex]
the the velocity ([tex]v[/tex]) of the transverse wave is
[tex]v = \sqrt{\dfrac{F_{T}}{\mu}} = \sqrt{\dfrac{92~N}{22.05~Kg~m_{-1}}} = 2.04~m~s^{-1}[/tex]
Part(c):
If the wave having wavelength '[tex]\lambda[/tex]' propagates along positive x-direction with the constant velocity '[tex]v[/tex]', then at any instant of time '[tex]t[/tex]' , then its angular displacement '[tex]\theta[/tex]' is related to the linear displacement 'x' is written as
[tex]&& \dfrac{\theta}{x} = \dfrac{2 \pi}{\lambda}\\&or,& \theta = \dfrac{2 \pi}{\lambda} x[/tex]
Also the distance travelled by the wave at time 't' with constant velocity 'v' is [tex]vt[/tex].
So the wave equation can be written as
[tex]y(x,t) = A \sin(\theta)\\~~~~~~~~~= A \sin(\dfrac{2\pi}{\lambda}(x - vt)) \\~~~~~~~~~= A\sin(\dfrac{2\pi}{\lambda}~x - \dfrac{2\pi}{\lambda} vt)\\~~~~~~~~~= A\sin(kx - \omega t)[/tex]
where '[tex]k[/tex]' is the wave number [tex]k = \dfrac{2\pi}{\lambda}[/tex] and [tex]\omega = \dfrac{2\pi v}{\lambda} = \dfrac{2 \pi \dfrac{\lambda}{T}}{\lambda} = \dfrac{2 \pi}{T}[/tex] is the natural angular frequency.
The wave equation propagating along positive x-direction is given by
.[tex]y_{+} = A \sin(kx - \omega t)[/tex]
Part(d):
By the same argument given above The wave equation propagating along negative x-direction is given by
[tex]y_{-} = A \sin(kx - \omega t)[/tex]
Part(e):
The wave equation propagating along positive x-direction is given by
[tex]y_{1}(x,t) = A \sin(kx - \omega t)[/tex]
Similarly, the wave equation propagating along negative x-direction is given by
[tex]y_{2} = A \sin(kx + \omega t)[/tex]
So the equation of the standing wave on the string created by [tex]y_{1}(x,t)[/tex] and [tex]y_{2}(x,t)[/tex] is the superposition of the waves and is given by
[tex]y(x,t) = y_{1}(x,t) + y_{2}(x,t)\\~~~~~~~~~= A \sin(kx - \omega t) + A \sin(kx + \omega t)\\~~~~~~~~~= 2A \sin(kx) \cos(\omega t)[/tex]
