GOAL Apply the work-energy theorem with a known force. PROBLEM The driver of a 1.00x10*3 kg car traveling on the interstate at 35.0 m/s (nearly 80.0 mph) slams on his brakes to avoid hitting a second vehicle in front of him, which had come to rest because of congestion ahead (Fig. 2.7). After the brakes are applied, a constant kinetic friction force of magnitude 8.00x10*3 N acts on the car. Ignore air resistance. (a) At what minimum distance should the brakes be applied to avoid a collision with the other vehicle? (b) If the distance between the vehicles is initially only 30.0 m, at what speed would the collision occur? A式
GOAL Apply the work-energy theorem with a known force. PROBLEM The driver of a 1.00x10*3 kg car traveling on the interstate at 35.0 m/s (nearly 80.0 mph) slams on his brakes to avoid hitting a second vehicle in front of him, which had come to rest because of congestion ahead (Fig. 2.7). After the brakes are applied, a constant kinetic friction force of magnitude 8.00x10*3 N acts on the car. Ignore air resistance. (a) At what minimum distance should the brakes be applied to avoid a collision with the other vehicle? (b) If the distance between the vehicles is initially only 30.0 m, at what speed would the collision occur? A式
College Physics
11th Edition
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Raymond A. Serway, Chris Vuille
Chapter1: Units, Trigonometry. And Vectors
Section: Chapter Questions
Problem 1CQ: Estimate the order of magnitude of the length, in meters, of each of the following; (a) a mouse, (b)...
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![1 EXAMPLE 2.2 Collision Analysis
GOAL Apply the work-energy theorem with a known force.
PROBLEM The driver of a 1.00x10*3 kg car traveling on the interstate at 35.0 m/s
(nearly 80.0 mph) slams on his brakes to avoid hitting a second vehicle in front of
him, which had come to rest because of congestion ahead (Fig. 2.7). After the
brakes are applied, a constant kinetic friction force of magnitude 8.00x10*3 N acts
on the car. Ignore air resistance. (a) At what minimum distance should the brakes
be applied to avoid a collision with the other vehicle? (b) If the distance between
the vehicles is initially only 30.0 m, at what speed would the collision occur?
AR](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fe60749df-eebf-4359-9b4b-4fe70abc674e%2F172988bf-c7d6-4bb4-b3c1-b4899152604b%2Fxja67p_processed.jpeg&w=3840&q=75)
Transcribed Image Text:1 EXAMPLE 2.2 Collision Analysis
GOAL Apply the work-energy theorem with a known force.
PROBLEM The driver of a 1.00x10*3 kg car traveling on the interstate at 35.0 m/s
(nearly 80.0 mph) slams on his brakes to avoid hitting a second vehicle in front of
him, which had come to rest because of congestion ahead (Fig. 2.7). After the
brakes are applied, a constant kinetic friction force of magnitude 8.00x10*3 N acts
on the car. Ignore air resistance. (a) At what minimum distance should the brakes
be applied to avoid a collision with the other vehicle? (b) If the distance between
the vehicles is initially only 30.0 m, at what speed would the collision occur?
AR
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