Gas constant

Physical constant; the molar equivalent to the Boltzmann constant

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Gas constant

Physical constant; the molar equivalent to the Boltzmann constant

The molar gas constant (also known as the gas constant, universal gas constant, or ideal gas constant) is denoted by the symbol R or R. It is the molar equivalent to the Boltzmann constant, expressed in units of energy per temperature increment per amount of substance, rather than energy per temperature increment per particle. The constant is also a combination of the constants from Boyle's law, Charles's law, Avogadro's law, and Gay-Lussac's law.

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From Wikipedia

The molar gas constant (also known as the gas constant, universal gas constant, or ideal gas constant) is denoted by the symbol R or R. It is the molar equivalent to the Boltzmann constant, expressed in units of energy per temperature increment per amount of substance, rather than energy per temperature increment per particle. The constant is also a combination of the constants from Boyle's law, Charles's law, Avogadro's law, and Gay-Lussac's law. It is a physical constant that is featured in many fundamental equations in the physical sciences, such as the ideal gas law, the Arrhenius equation, and the Nernst equation. The gas constant is the constant of proportionality that relates the energy scale in physics to the temperature scale and the scale used for amount of substance. Thus, the value of the gas constant ultimately derives from historical decisions and accidents in the setting of units of energy, temperature and amount of substance. The Boltzmann constant and the Avogadro constant were similarly determined, which separately relate energy to temperature and particle count to amount of substance. The gas constant R is defined as the Avogadro constant NA multiplied by the Boltzmann constant k (or kB): R = N A k = 6.02214076 ⋅ 10 23 mol − 1 ⋅ 1.380649 ⋅ 10 − 23 J ⋅ K − 1 = 8.31446261815324 J ⋅ K − 1 ⋅ mol − 1 {\displaystyle {\begin{aligned}R&=N_{\text{A}}k\\&=6.02214076\cdot 10^{23}{\text{mol}}^{-1}\cdot 1.380649\cdot 10^{-23}{\text{J}}\cdot {\text{K}}^{-1}\\&=8.31446261815324\ {\text{J}}\cdot {\text{K}}^{-1}\cdot {\text{mol}}^{-1}\end{aligned}}} Since the 2019 revision of the SI, both NA and k are defined with exact numerical values when expressed in SI units. As a consequence, the SI value of the molar gas constant is exact. Some have suggested that it might be appropriate to name the symbol R the Regnault constant in honour of the French chemist Henri Victor...

Text: Wikipédia, CC BY-SA 4.0. · Image: MikeRun (CC BY-SA 4.0) ·

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