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A block of mass 1.5 kg slides down an inclined plane has no friction and the black starts at height of 3 m, how much kinetic energy does the black have when it reaches the bottom

2 Answers

3 votes
energy conservation
mgh = 1/2mv^2
1.5*9.8*3 = 1/2*1.5*v^2
44.1*2 = 1.5*v^2
88.2/1.5 = v^2
58.8 = v^2
v = 7.668 m/s
User Dun
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2 votes

Answer: The kinetic energy of the block is 44.1 J

Step-by-step explanation:

As, the block is at some height, it will posses some potential energy.

When the block is released from the inclined plane, the block will start gaining kinetic energy as energy cannot be created nor be destroyed, explained by law of conservation of energy.

So,

Potential energy of the block = Kinetic energy of the block

Potential energy of the block is calculated by using the formula:


E_p=mgh

where,


E_p = potential energy of the rock = ?

m = mass of the object = 1.5 kg

g = acceleration due to gravity =
9.8m/s^2

h = height of the plane from where the block is thrown = 3 m

Putting values in above equation, we get:


E_p=1.5kg* 9.8m/s^2* 3m\\\\E_p=44.1J=E_k

Hence, the kinetic energy of the block is 44.1 J

User Ken Aspeslagh
by
7.9k points

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