Calculate Distance of Sound Impact: Concrete vs. Air Speeds

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Homework Help Overview

The problem involves calculating the distance from a person to a point of impact where a stone strikes concrete, with two sounds traveling through different mediums (air and concrete) and arriving at different times. The speeds of sound in concrete and air are provided, along with the time difference between the two sounds.

Discussion Character

  • Exploratory, Assumption checking, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the relationship between the distances traveled by sound in air and concrete, questioning the original poster's calculations and assumptions about time intervals and distances.

Discussion Status

Some participants are attempting to clarify the setup of the problem and the relationships between the variables. There is a mix of brainstorming and questioning of the original poster's approach, with suggestions for re-evaluating the time intervals and distances involved.

Contextual Notes

Participants note potential confusion regarding the interpretation of the time difference between the sounds and the correctness of the given values for the speed of sound in concrete. There is an emphasis on ensuring the problem is correctly understood before proceeding with calculations.

Ryan231
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Ive been trying this one for a little while now and keep getting myself stumped here... So the question is...

A person sees a heavy stone strike the concrete pavement. A moment later two sounds are heard from the impact: one travels in air and the other in the concrete, and they are 1.4 s apart. How far away did the impact occur? (the speed of sound in concrete is about 4000 m/s)

So far I've got...
VConcrete = 4000m/s
VAir = 349 m/s

I've come up with a model that basically has 3 variables...
D1 = total distance
D2 = distance from rock hitting ground to 1.4s mark
D3 = 1.4s mark to person

Ive found that
Dconcrete = 4000*1.4 = 5600m
Dair = 349*1.4 = 488.6m

So I need to find D2 and D3 Lengths using the above somehow , D3 takes 1.4s for the slower sound, which would be the sound moving through the air.

d3 = 1.4s D2 =?
Person l______________l_________Rock
l_______________________l
D1 = total disance

My diagram got screwed by autoformatting.. everything is shifted to the right
 
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help anyone? :frown:
 
I don't understand what you did. "distance from rock hitting ground to 1.4s mark".

And Dconcrete = 4000 * 1.4s seems wrong as well. 1.4s is the interval between the two sound waves and not the time it takes for the Wave to travel through the concrete.

Actually, I think there's something wrong with the problem itself. Did you write everything correctly?... not miliseconds instead of seconds? Recheck 4000 m/s for the concrete wave too.
 
OK, the problem is correct.. 4000m/s for concrete is what was given so that's what I'm using... Forget what I put.. I was just brainstorming.. Can you maybe get me started in the right direction?

Maybe switch D2 with T2.. As in when the person hears the first sound the other one is at the 1.4s mark... So I need to find how long it took that sound to travel from the rock to the 1.4s mark and then solve by adding the 2 times together and plugging in one of the equations..
 
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Not sure if you can do that or not.

You should just be able to use D= V(c)*T(1) and D= V(s) * T(2) where you know T(2) is just 1.4s longer than T(1).
 
so... D2 = V(s) * T2 = 488.6m
D1 = 4000 * T1 = ?


I'm not following?
 
Both the D are the same, since both waves travel the same distance (from where the rock hit to where you are). T(2) = T(1) + 1.4s. You can't directly solve for anything, but you can use the fact that D(1)=D(2) to combine the equations and then solve for T(1).
 

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