University Physics With Modern Physics Technology Update 13th Edition Young Solutions Manual

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MOTION ALONG A STRAIGHT LINE

2.1.

2.2.

2

IDENTIFY: x  vav-x t SET UP: We know the average velocity is 6.25 m/s. EXECUTE: x  vav-x t  250 m EVALUATE: In round numbers, 6 m/s  4 s = 24 m ≈ 25 m, so the answer is reasonable. x IDENTIFY: vav-x  t SET UP: 135 days  1166  106 s. At the release point, x  5150  106 m. x2  x1 5150  106 m   442 m/s t 1166  106 s (b) For the round trip, x2  x1 and x  0. The average velocity is zero. EVALUATE: The average velocity for the trip from the nest to the release point is positive. IDENTIFY: Target variable is the time  t it takes to make the trip in heavy traffic. Use Eq. (2.2) that relates the average velocity to the displacement and average time. x x SET UP: vav-x  so x  vav-x t and t   t vav-x EXECUTE: Use the information given for normal driving conditions to calculate the distance between the two cities:

EXECUTE: (a) vav-x 

2.3.

x  vav-x t  (105 km/h)(1 h/60 min)(140 min)  245 km

Now use vav-x for heavy traffic to calculate t ;  x is the same as before: x 245 km   350 h  3 h and 30 min. vav-x 70 km/h The trip takes an additional 1 hour and 10 minutes. EVALUATE: The time is inversely proportional to the average speed, so the time in traffic is (105/70)(140 min)  210 min t 

2.4.

x . Use the average speed for each segment to find the time t traveled in that segment. The average speed is the distance traveled by the time. SET UP: The post is 80 m west of the pillar. The total distance traveled is 200 m  280 m  480 m. 280 m 200 m  700 s.  400 s and the westward run takes EXECUTE: (a) The eastward run takes time 40 m/s 50 m/s 480 m  44 m/s. The average speed for the entire trip is 1100 s x 80 m   073 m/s. The average velocity is directed westward. (b) vav-x  t 1100 s

IDENTIFY: The average velocity is vav-x 

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