Calculating distance using the speed of sound through two different mediums

AI Thread Summary
David hears a beaver's tail slap first through water and then through air, with a time difference of 0.95 seconds. The speed of sound in water is 1400 m/s and in air is 340 m/s. To find the distance to the beaver, the relationship between the travel times in both mediums must be established, leading to the equation d/340 = d/1400 + 0.95. Rearranging this equation allows for solving the unknown distance, d. The discussion focuses on correctly applying the speed-distance-time relationship to find the solution.
Joe Schmoe
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Homework Statement



David is swimming when he hears a beaver sap the water with its tail, first through the water (v= 1400 meters/second) and then 0.95 seconds later (after the sound reaches him through the water) through the air (v= 340 meters/second).


Homework Equations


Find the distance from David to the beaver.


The Attempt at a Solution


This one stumped me. I thought maybe I 'd have to compare the two velocities and do some cross multiplication but I really don't know.
 
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Joe Schmoe said:

Homework Statement



David is swimming when he hears a beaver sap the water with its tail, first through the water (v= 1400 meters/second) and then 0.95 seconds later (after the sound reaches him through the water) through the air (v= 340 meters/second).


Homework Equations


Find the distance from David to the beaver.


The Attempt at a Solution


This one stumped me. I thought maybe I 'd have to compare the two velocities and do some cross multiplication but I really don't know.

What equations do you think apply here? If you happened to know the distance and velocity, how would you find the time? Write the expressions for the time of travel for both modes of transport (air, water) using a variable to represent the unknown distance.
 
Well, I obviously know that d=t×v. This would mean that in the air the sound travels 323 m (d= 0.95×340). The problem is that isn't the total distance, there remains an additional distance that I can't figure out. If I sub in the time value into an equation with the sound velocity in water (d=0.95×1400) then the sound will have traveled 1330 m. But I am sure that neither of these two values are the actual distance. There remains another step but I am unsure what to do.
 
The distance traveled in both mediums is a constant. 0.95 seconds is a relation between the time taken by the sound wave in both mediums to cover this distance.
 
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Joe Schmoe said:
Well, I obviously know that d=t×v. This would mean that in the air the sound travels 323 m (d= 0.95×340).

The problem is that isn't the total distance, there remains an additional distance that I can't figure out. If I sub in the time value into an equation with the sound velocity in water (d=0.95×1400) then the sound will have traveled 1330 m. But I am sure that neither of these two values are the actual distance. There remains another step but I am unsure what to do.
No, the 0.95 seconds is the difference in time between the arrival of the sound by the two paths.

There is only one unknown distance, the distance between the beaver and the person. Call that distance d. Write the expressions for the two arrival times of the sound assuming distance is d; so t1 = ?, t2 = ?.
 
OK, so t1 (water)= d/1400
t2 (air)= d/340
 
Joe Schmoe said:
OK, so t1 (water)= d/1400
t2 (air)= d/340

Okay. Now, what is the relationship between t1 and t2? (This is where the .95 seconds comes into play).
 
Then, t2=t1+0.95
so: d/1400=d/340+0.95
 
[STRIKE]Yes. Now write another equation using speed=distance/time.[/STRIKE]
 
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  • #10
no, sorry, I mean: d/340=d/1400+0.95
 
  • #11
Joe Schmoe said:
no, sorry, I mean: d/340=d/1400+0.95

You can edit your posts. :smile:
 
  • #12
You mean like this: 340=d/(d/1400)+0.95
 
  • #13
Joe Schmoe said:
You mean like this: 340=d/(d/1400)+0.95

Using your equation d/340=d/1400+0.95, can you not solve for d?
 
  • #14
So would the answer be 690m?
 
  • #16
OK, my bad. I am just unsure at how to rearrange d/340=d/1400+0.95 to isolate d. Any ideas?
 
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