Finding Distance with given 2 speeds and a time

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The discussion revolves around calculating the distance between a bomb and a ship based on the differing speeds of sound underwater and in air. The underwater sound travels at 1400 m/s, while in air it travels at 330 m/s, with the underwater sound reaching the ship 5 seconds faster. Participants struggle with setting up the equations correctly to express the relationship between distance, speed, and time. The key point is to formulate an equation that accounts for the 5-second difference in travel time for the sound waves in the two mediums.
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1. Example (bomb): There is a ship and you need to calculate the distance between the bomb and the ship. A bomb explodes underwater, the underwater sound wave travels at a speed of 1400 m/s and in the air at a speed of 330 m/s (0°C). The sound wave underwater is 5 seconds faster than in the air. Calculate the distance between the bomb and the ship.

Answer: 2.2 km

My attempt: ( to be honest I've tried my best, I've even talked to myself explaining things that doesn't make sense. I'm going mentally ill here since I can't solve the question. I stress out too much when I can't figure out and that basically makes it worse for me.)
 
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Kushal Gurung said:
1. Example (bomb): There is a ship and you need to calculate the distance between the bomb and the ship. A bomb explodes underwater, the underwater sound wave travels at a speed of 1400 m/s and in the air at a speed of 330 m/s (0°C). The sound wave underwater is 5 seconds faster than in the air. Calculate the distance between the bomb and the ship.

Answer: 2.2 km

My attempt: ( to be honest I've tried my best, I've even talked to myself explaining things that doesn't make sense. I'm going mentally ill here since I can't solve the question. I stress out too much when I can't figure out and that basically makes it worse for me.)
Well, why don't you write out and post your best calculation about the distance. That's what PF expects from people seeking help with HW.

If you don't do this, how can we know what you understand about this problem and what you don't understand?
 
SteamKing said:
Well, why don't you write out and post your best calculation about the distance. That's what PF expects from people seeking help with HW.

If you don't do this, how can we know what you understand about this problem and what you don't understand?
That's why I explained about my attempt. I don't know how to start it. I've used the formulas that we were given but I don't know where to start and where to end. Example of my attempt.

Since we have speed and time we are looking for the distance.

Distance = Speed x Time

Distance (underwater): 1400 m/s x time

Since we know that 5 seconds faster means it isn't the actual time so we go ahead and look for the real time.

Distance (in the air): 330 m/s x time

Well that's it. I don't know if I started correctly or I'm just outer space.
 
Kushal Gurung said:
That's why I explained about my attempt. I don't know how to start it. I've used the formulas that we were given but I don't know where to start and where to end. Example of my attempt.

Since we have speed and time we are looking for the distance.

Distance = Speed x Time

Distance (underwater): 1400 m/s x time

Since we know that 5 seconds faster means it isn't the actual time so we go ahead and look for the real time.

Distance (in the air): 330 m/s x time

Well that's it. I don't know if I started correctly or I'm just outer space.
You're overlooking one important fact: it takes the sound 5 seconds longer to travel thru the air than to travel the same distance thru the water to the ship.

Do you think you could write an equation which expresses this fact?
 
SteamKing said:
You're overlooking one important fact: it takes the sound 5 seconds longer to travel thru the air than to travel the same distance thru the water to the ship.

Do you think you could write an equation which expresses this fact?
Distance (underwater): 1400 m/s x 5s = 7000 m
Distance (in the air): 330 m/s x 10s = 3300 m

Distance (total) = 10.300 m

Distance = 10.300 m / 5s = 2030 m

Ok I'm lost again.
 
Kushal Gurung said:
Distance (underwater): 1400 m/s x 5s = 7000 m
Distance (in the air): 330 m/s x 10s = 3300 m

Distance (total) = 10.300 m

Distance = 10.300 m / 5s = 2030 m

Ok I'm lost again.
You're just making stuff up now. There is no evidence that the sound travels for 10 sec. in air. What if it takes sound 15 sec. to reach the observer from the ship thru the air?

Remember, the distance from the observer to the ship is the same. The sound takes two different times to travel this distance, but you only know that these times are 5 seconds apart.

Call the distance to the ship D. How would you calculate the time it takes the sound to travel the distance D in water, and then in air?

How would you express the difference in the two times such that the difference is 5 seconds?
 
Thread 'Variable mass system : water sprayed into a moving container'

Thread 'Variable mass system : water sprayed into a moving container'

Starting with the mass considerations #m(t)# is mass of water #M_{c}# mass of container and #M(t)# mass of total system $$M(t) = M_{C} + m(t)$$ $$\Rightarrow \frac{dM(t)}{dt} = \frac{dm(t)}{dt}$$ $$P_i = Mv + u \, dm$$ $$P_f = (M + dm)(v + dv)$$ $$\Delta P = M \, dv + (v - u) \, dm$$ $$F = \frac{dP}{dt} = M \frac{dv}{dt} + (v - u) \frac{dm}{dt}$$ $$F = u \frac{dm}{dt} = \rho A u^2$$ from conservation of momentum , the cannon recoils with the same force which it applies. $$\quad \frac{dm}{dt}...
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