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A simple pendulum is made by tying a 2.44 kg stone to a string 4.57 m long. The stone is projected perpendicularly to the string, away from the ground, with the string at an angle of 69.4 degrees with the vertical. It is observed to have a speed of 8.00 m/s when it passes its lowest point. What was the speed of the stone (in meters/second) at the moment of release?

User Chrisandra
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1 Answer

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Answer:


v_(max)=8.2226m/s

Step-by-step explanation:

The problem is solved using the law of conservation of energy,

So


mgL(1-cos\theta)+(1)/(2)mv^2_0=(1)/(2)mv^2_(max)


v_(max)=√(2gL(1-cos\theta)+v^2_0)


v_(max)=√(2(9.8)(4.57)(1-cos(69.4))+8^2)


v_(max)=8.2226m/s

User Lews Therin
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