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A 0.0026kg0.0026⁢k⁢g block is in a bowl whose lip is 1.0m1.0⁢m above the ground. At the top, the block has a downward velocity and slides, without friction, down the sloped slid…

A 0.0026kg0.0026⁢k⁢g block is in a bowl whose lip is 1.0m1.0⁢m above the ground. At the top, the block has a downward velocity and slides, without friction, down the sloped slid…
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A 0.0026kg0.0026⁢k⁢g block is in a bowl whose lip is 1.0m1.0⁢m above the ground. At the top, the block has a downward velocity and slides, without friction, down the sloped slide. At the bottom, it has a velocity of 6.0m/s6.0⁢m/s. What is the block’s velocity at the top of the bowl?

User Jammie
by
7.9k points

1 Answer

7 votes

Answer:

Vo = 4m/s

Step-by-step explanation:

By conservation of energy:


1/2*m*Vf^2-1/2*m*Vo^2-m*g*h=0

Solving for the initial speed:


Vo = √(2*(Vf^2/2-g*h))


Vo = √(2*(6^2/2-10*1))

Vo=4m/s

User RoadBump
by
8.4k points
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