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| | According to this law, it is impossible to build a [[perpetual motion machine]], and entropy in a completely closed system must either increase or remain constant. | | According to this law, it is impossible to build a [[perpetual motion machine]], and entropy in a completely closed system must either increase or remain constant. |
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| | + | ==The three forms of the Second Law of Thermodynamics== |
| | There are three different types of systems that the Second Law of Thermodynamics can apply to: | | There are three different types of systems that the Second Law of Thermodynamics can apply to: |
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| | * Closed system - Exchanges energy, but not matter, with its surroundings | | * Closed system - Exchanges energy, but not matter, with its surroundings |
| | * Open system - Exchanges both matter and energy with its surroundings | | * Open system - Exchanges both matter and energy with its surroundings |
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| | + | ==Interpretation== |
| | + | A simplification caused by misinterpretation says: disorder will increase within a closed system. |
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| | + | Actually entropy is a little more abstract and the second law of thermodynamics means something like this: the universe will always become increasingly uniform, that is: heat will spread until the entire universe has the temperature and energy level (in a closed system heat will always spread from a place where there is a lot of heat to a place where there is less until balance is achieved), forces will continue to work until a universal balance has been achieved. |
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| | + | In this final state the universe is one uniform space where nothing happens and no work (moving something) can be done since there are above average concentrations of energy left. |
| | + | This state is called maximum entropy and is said to be in perfect disorder (although intuitively its uniformity would seem to be a state of perfect order) because it has become impossible to determine what happened in the past: there are an infinite number of ways (histories of the universe) maximum entropy could have been reached. |
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| | + | ==Entropy and disorder for dummies== |
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| | + | In this context "increasing disorder" means "that what happens if you let nature take it's course". |
| | + | Imagine your old room at your parent's house: remember how easy it was to let the room turn into a uniform mess (disorder) and remember how hard it was to clean it up until it fitted a specific, non-uniform design (order): not cleaning up would always result in an increase of entropy in your room! |
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| | + | Now, in nature there is no one to clean up the universe, only chances: and the chance of something becoming orderly is a lot smaller than the chance of something becoming orderly (since there are far more possible disorderly states to choose from.) |
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| | + | Alternatively one could think of how difficult it is to construct a house of cards, while almost everything that happens in nature will result in its collapse. |
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| | + | On a universal scale a tidy room would be a universe which has pockets of above average concentrations of energy (remember that E=mc^2 so this includes matter as well.) |
| | + | A messy room would be a universe in which all energy is equally spread out. |
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| | + | The flow of energy (by heat exchange) to places with lower concentrations is called the "heat flow". |
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| | + | The often heard argument that this law disproves an eternal universe is true, since in that case maximum entropy would have been reached already. |
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| | ==References== | | ==References== |