COLLEGE PHYSICS
2nd Edition
ISBN: 9781464196393
Author: Freedman
Publisher: MAC HIGHER
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Question
Chapter 13, Problem 18QAP
To determine
(a)
To Explain: The nature of sonic boom.
To determine
(b)
Explain the sonic boom phenomenon with the help of Doppler shift formula.
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COLLEGE PHYSICS
Ch. 13 - Prob. 1QAPCh. 13 - Prob. 2QAPCh. 13 - Prob. 3QAPCh. 13 - Prob. 4QAPCh. 13 - Prob. 5QAPCh. 13 - Prob. 6QAPCh. 13 - Prob. 7QAPCh. 13 - Prob. 8QAPCh. 13 - Prob. 9QAPCh. 13 - Prob. 10QAP
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- Check Your Understanding Describe a situation in your life when you might rely on the Doppler shift to help you either while driving a car or walking near traffic.arrow_forwardDoes a sound wave move faster in seawater or fresh water, if both the sea water and fresh water are at the same temperature and the sound wave moves near the surface? (w1000kgm3,s1030kgm3,Bw=2.15109Pa,Bs=2.34109Pa)arrow_forwardA jet flying at an altitude of 8.50 km has a speed of Mach 2.00, where the speed of sound is v=340.00 m/s. How long after the jet is directly overhead, will a stationary observer hear a sonic boom?arrow_forward
- Why does the music coming from a band marching in a spread-out formation on a football field sometimes sound discordant?arrow_forwardA cable with a linear density of =0.2 kg/m is hung from telephone poles. The tension in the cable is 500.00 N. The distance between poles is 20 meters. The wind blows across the line, causing the cable resonate. A standing waves pattern is produced that has 4.5 wavelengths between the two poles. The air temperature is T=20C . What are the frequency and wavelength of the hum?arrow_forwardHow can an object move with respect to an observer so that the sound from it is not shifted in frequency?arrow_forward
- An airplane is flying at Mach 1.50 at an altitude of 7500.00 meters, where the speed of sound is v=343.00 m/s. How far away from a stationary observer will the plane be when the observer hears the sonic boom?arrow_forwardConsider two wave functions that differ only by a phase shift, y1(x,t)=Acos(kxt) and y2(x,t)=Acos(kxt+) . Use the trigonometric cosu+cosv=2cos(uv2)cos(u+v2) and cos()=cos() to find a wave equation for the wave resulting from the superposition of the two waves. Does the resulting wave function come as a surprise to you?arrow_forwardShown below are three waves that were sent down a string at different times. The tension in the string remains constant. (a) Rank the waves from the smallest wavelength to the largest wavelength. (b) Rank the waves from the lowest frequency to the highest frequency.arrow_forward
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