OR remains the same
Answer:
Remains same
Explanation:
Mass of an object is measure of the matter it contains. It is independent of height. Commonly when we weigh something we measure its weight and not mass. Weight is a product of mass (m) and acceleration due to gravity (g).
As altitude changes, the amount of matter doesn't change thus the mass will remain constant. But due to the change in height the gravitational force will change and thus weight will vary.
Answer:
1.Cp₁ = 1.2 J/g.⁰C
Explanation:
For new material:
m₁ = 25 g
T₁ = 80⁰C
specific heat of water = Cp₁
For water :
m₂ = 100 g
T₂ = 20⁰C
The final temperature T=24⁰C
We know that specific heat of water Cp₂ = 4.187 kJ/kg.K
The heat lost new material = Heat gain by Water
m₁ Cp₁ ( T₁ - T ) = m₂ Cp₂ (T- T₂)
25 x Cp₁ (80- 24 ) = 100 x 4.817 (24 - 20 )
Cp₁ x 56 = 4 x 4.187 x 4
Cp₁ = 1.19 kJ/kg.K
Cp₁ = 1.2 J/g.⁰C
Answer:
Explanation:
The work done by stretching the spring is:
The kinetic energy of a moving body can be determined from its mass and velocity of the body. The kinetic energy of 1.0-kg billiard ball that moves at 5.0 m/s is 12.5 J. Hence, option D is correct.
Kinetic energy is a form of energy generated in body by virtue of its motion. It is directly proportional to the mass and square of velocity of the body. The equation of kinetic energy is written as follows:
KE = 1/2 mv²
When a body starts moving its kinetic starts to increase while the potential energy drops out. However the total mechanical energy in the system will be conserved.
The mass of the billiard ball is given 1 kg and the velocity is 5 m/s. Then the kinetic energy of the ball is calculated as follows:
KE = 1/2 1 kg × ( 5 m/s )².
= 1/2 × 25
= 12.5 J.
Therefore, the kinetic energy of 1.0-kg billiard ball that moves at 5.0 m/s is 12.5 J. Hence, option D is correct.
To find more about kinetic energy, refer the link below:
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