A volleyball is thrown with an initial velocity at 30 m/s at an angle 40° above the horizontal. Find the following: 1. Sketch the problem and label the important parts 2. Total time flight 3. Maximum height reached 4. Horizontal distance from the starting point will the volleyball attains its original level.

College Physics
10th Edition
ISBN:9781285737027
Author:Raymond A. Serway, Chris Vuille
Publisher:Raymond A. Serway, Chris Vuille
Chapter3: Vectors And Two-Dimensional Motion
Section: Chapter Questions
Problem 7WUE: A skier leaves the end of a horizontal ski jump at 22.0 m/s and falls through a vertical distance of...
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Problem 3
A volleyball is thrown with an initial velocity at 30 m/s at an angle
40° above the horizontal. Find the following:
1. Sketch the problem and label the important parts
2. Total time flight
3. Maximum height reached
4. Horizontal distance from the starting point will the volleyball
attains its original level.
(1)
Given and Unknown
Idgi to omis letor o bail coe
Transcribed Image Text:Problem 3 A volleyball is thrown with an initial velocity at 30 m/s at an angle 40° above the horizontal. Find the following: 1. Sketch the problem and label the important parts 2. Total time flight 3. Maximum height reached 4. Horizontal distance from the starting point will the volleyball attains its original level. (1) Given and Unknown Idgi to omis letor o bail coe
Step 1. Determine the initial vertical velocity (viy)
viy
Step 2. Solve the time going up.
tupp
worln bR
Step 3. Find the total time of flight.
Step 4. Find horizontal distance (dy).
dy
Step 5. Determine the initial horizontal velocity component (vix).
iog nte on lo idisti
vix
bnoo sdi do om
Step 6. Solve for the horizontal distance. (R)
R
Transcribed Image Text:Step 1. Determine the initial vertical velocity (viy) viy Step 2. Solve the time going up. tupp worln bR Step 3. Find the total time of flight. Step 4. Find horizontal distance (dy). dy Step 5. Determine the initial horizontal velocity component (vix). iog nte on lo idisti vix bnoo sdi do om Step 6. Solve for the horizontal distance. (R) R
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