10: thermal physics 10.3 second law of thermodynamics and entropy

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10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

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Page 1: 10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

10: Thermal Physics

10.3 Second Law of Thermodynamics and Entropy

Page 2: 10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

The Second Law of Thermodynamics

A simple statement of the Second Law is that...

... you cannot have a process whose only effect is to turn heat energy into work.

Thus a true isothermal process cannot really happen. In reality the heat flowing into a gas will cause the average KE of the molecules to increase which in turn increases the pressure, enabling the gas to do work on an external system.

Page 3: 10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

Energy Degradation

High grade forms of energy:

- Useful forms of energy that can be used to do work.

- Ordered

- E.g. Chemical and electrical energy.

Low grade forms of energy:

- Less useful forms of energy that cannot easily be transferred.

- Less ordered

- E.g. Internal energy is a low grade form of energy.

Page 4: 10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

Entropy

A different way of stating the Second Law of Thermodynamics is to say that...

...energy will always spread out.

Entropy is a way of measuring the degree of disorder in a system.

i.e. the less order, the more entropy.

(See PhET simulation)

Page 5: 10: Thermal Physics 10.3 Second Law of Thermodynamics and Entropy

The Second Law of Thermodynamics (again).

E.g. Falling rain.

The rain initially has gravitational potential energy: the energy is ordered.

After it has hit the ground the energy becomes internal energy of the surroundings (e.g. due to heat transfer as a result of friction). Thus the energy is less ordered and entropy has increased.

During any thermodynamic process the total entropy of the system must increase.

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