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Introductory Physics Homework Help
Average speed question: forwards then backwards
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[QUOTE="nobahar, post: 4908123, member: 138899"] [h2]Homework Statement [/h2] An object starts at the origin, position A; then travels 20 m to position B; then returns to position A. From A to B the average speed is 10 m/s; on its way back the average speed is 6 m/s. What is the average speed for the entire trip? [h2]Homework Equations[/h2] average speed = distance/time distance is the "length" covered. This is not - according to my understanding - the same as velocity, which is displacement/time. In this example, the velocity would by 0 m/s, because the numerator, the displacement, is zero, as the object has returned to the origin. [h2]The Attempt at a Solution[/h2] From A to B the distance is 20 m and the average speed is 10 m/s. Therefore: 20 m/time = 10 m/s and time = 20 m/ 10 m/s = 2 s. From B to A the distance is 20 m and the average speed is 6 m/s. Therefore: 20 m/time = 6 m/s and time = 20 m/ 6 m/s = 3.33 s. Overall, the journey from A to B and back again takes (2 + 3.33) s = 5.33 s. The total distance covered (not displacement) is 40 m (20 m from A to B and 20 m from B to A). Therefore, the average speed = distance/time = 40 m/ 5.33 s = 7.50 m/s (approx.). I have changed the numbers from the textbook to see if I was making some type of numerical error, but I have applied the same reasoning. The textbook has a different value from what I obtain (it is lower). Where am I going wrong? Any help appreciated, many thanks. [/QUOTE]
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Introductory Physics Homework Help
Average speed question: forwards then backwards
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