A Sinusodial wave is propagating

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A sinusoidal wave is propagating along a stretched string that lies along the x-axis. The displacement of the string as a function of time is graphed in the figure (attachment) for particles at x=0m and x=0.0900m.

A) What is the amplitude of the wave? (solved)
B) What is the period of the wave? (solved)
C) You are told that the two points x=0 an x=0.09m are within one wavelength of each other. If the wave is moving in the +x-direction, determine the wavelength and wave speed. (solved)

If the wave is moving in the -x-direction, determine the wavelength and wave speed. What should i do here ?


http://s716.photobucket.com/albums/...rent=5508afb2-b0b2-404b-aa14-09f9c8e37e4a.jpg
 
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Yes, but how can it be 6.0 m/s?
Thats is what's stands in the answer sheet
 
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Answer for C) v=0.04s*0.090m=3.6*10^-3 mm/s
 
v=0.04s*0.090m=3.6*10^-3 mm/s
this cannot possibly be correct
- when you changed units from m to mm you forgot to multiply by 1000
- you cannot get length/time from multiplying a length and a time.
... try again.

show me how you worked out A, B, and C - what is your reasoning?
 
A) A=4mm
B) T=0.040s (red wave)
C) it should be 3.6 m/s
What should i do to find v?
 
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Wot he said - easier to find a place where y=0, but you also need the same slope.
You just need the position of the wave at two different times.
speed is distance over time :)

To be clear - and because this is not always taught:

An if arbitrary distortion of the string is: y=f(x)
If it propagates to the right (+x) direction at speed v, then the equation becomes y(x,t)=f(x-vt)

In this case f(x)=Asin(kx): k=2π/λ ...(k has the effect of turning the distance x into an angle)

Therefore: y(x,t)=Asin[k(x-vt)]=Asin(kx-ωt). You can rewrite this in terms of λ and v - it will be more useful to this problem that way.

In your case this translates into the time-waves at two different x's: y(0,t) and y(0.0900,t) ... which are the red and blue lines respectively.

generally: y(x,t)= 4.sin(kx-2πt/0.04)

so: y(0,t)=-4sin(2πt/0.04) and y(0.09,t)=4.sin(0.09k - 2πt/0.04)

it is a good idea to keep the pi's separate for as long as you can.
you can use the graph to solve for k in the second one and so get the wavelength.
and get the speed from v=fλ ... but it is easier to do distance over time from the graph.

changing the direction of travel is a matter of changing the sign of v in the derivation.
 
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0.09k=2pi*t/0.04
What is the value of t?
 
Yes. How can i find the spped from the graph ?
 
The two graphs show you the height-vs-time of different positions on the string.
These graphs are due to a wave f(x) moving in the x direction.
So we needs some way to find out how long it takes f(x) to move a fixed distance.
The distance we have is 0.09m - all the points in f(x) move at the same speed, so we just need to know the time one point in f(x) crosses x=0, and the time the same point in f(x) crosses x=0.09. An easy to identify point is when f(x) is a maximum.

So look at the time when the x=x0=0 graph first reaches maximum - record that at t0
Then look for the time the x=x1=0.09m graph first reaches it's maximum - record it as t1
t1-t0 is how long it took for f(x) to move from x0 to x1.
Now you have a distance, and the time it took to travel that distance - you can find the speed.

(Note: you don't have to use peaks - I used the points when the graph crosses from -y to +y - easier to pinpoint but also easier to stuff up.)

The method in post #8 involves two simultaneous equations and two unknowns.