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Assignment 2. Match specific Law of Thermodynamics with its definition and corresponding mathematical representation: First Law: Definition # __ ./ Equation __ Second Law: Definition # __ / Equation __ 1. All spontaneous processes in nature tend to occur with an increase in entropy and the direction of change always lead to the increase in entropy 2. Energy can neither be created nor be destroyed: it can only be converted from one form to another. A. Delta U=Q+W B Sgeqslant Q/T

Вопрос

Assignment 2. Match specific Law of Thermodynamics with its definition and corresponding
mathematical representation:
First Law: Definition # __ ./ Equation __
Second Law: Definition # __ / Equation __
1. All spontaneous processes in nature tend to occur with an increase in entropy and the
direction of change always lead to the increase in entropy
2. Energy can neither be created nor be destroyed: it can only be converted from one form to
another.
A. Delta U=Q+W B Sgeqslant Q/T

Assignment 2. Match specific Law of Thermodynamics with its definition and corresponding mathematical representation: First Law: Definition # __ ./ Equation __ Second Law: Definition # __ / Equation __ 1. All spontaneous processes in nature tend to occur with an increase in entropy and the direction of change always lead to the increase in entropy 2. Energy can neither be created nor be destroyed: it can only be converted from one form to another. A. Delta U=Q+W B Sgeqslant Q/T

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First Law: Definition #2 / Equation A<br />Second Law: Definition #1 / Equation B<br /><br />Explanation:<br />The First Law of Thermodynamics states that energy can neither be created nor destroyed, only converted from one form to another. This is represented by the equation $\Delta U=Q+W$, where $\Delta U$ is the change in internal energy, $Q$ is the heat added to the system, and $W$ is the work done by the system.<br /><br />The Second Law of Thermodynamics states that all spontaneous processes in nature tend to occur with an increase in entropy, and the direction of change always leads to an increase in entropy. This is represented by the inequality $S\geqslant Q/T$, where $S$ is the entropy of the system, $Q$ is the heat added to the system, and $T$ is the absolute temperature.
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