Answer:
13.759 % of the initial mechanical energy is lost as thermal energy.
Step-by-step explanation:
By the First Law of Thermodynamics we know that increase in internal energy of the object (
), in joules, is equal to the lost amount of the change in gravitational potential energy (
), in joules:
(1)
Where
is the percentage of the energy loss, no unit.
By definition of the gravitational potential energy and internal energy, we expand this equation:
(1b)
Where:
- Mass of the object, in kilograms.
- Gravitational acceleration, in meters per square second.
- Initial height of the object above the lunar ground, in meters.
- Specific heat of aluminium, in joules per degree Celsius-kilogram.
- Temperature increase due to collision, in degree Celsius.
If we know that
,
,
,
and
, then the percentage of energy loss due to collision is:
![x = (100\cdot c\cdot \Delta T)/(g\cdot h)](https://img.qammunity.org/2022/formulas/physics/high-school/strry4uv62lj1txrt8gcv8q1o02aqijvlt.png)
![x = (100\cdot \left(920\,(J)/(kg\cdot ^(\circ)C) \right)\cdot (0.11\,^(\circ)C))/(\left(9.807\,(m)/(s^(2)) \right)\cdot (75\,m))](https://img.qammunity.org/2022/formulas/physics/high-school/frw8dcgm6se2532pvw8qwozeocwu0al73e.png)
![x = 13.759\,\%](https://img.qammunity.org/2022/formulas/physics/high-school/y3oac92cqlvnjygdo0ccu972hez6fdh3li.png)
13.759 % of the initial mechanical energy is lost as thermal energy.