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9/5*(-273.15)+32=-459.67
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Chemists and physicists working with [[gas]]es came to the realization that the conventional temperature scales were not adequate for characterizing the effect of temperature on the decrease in [[volume]] and [[pressure]] of gases with the corresponding decrease in the actual temperature of the gases.
 
Chemists and physicists working with [[gas]]es came to the realization that the conventional temperature scales were not adequate for characterizing the effect of temperature on the decrease in [[volume]] and [[pressure]] of gases with the corresponding decrease in the actual temperature of the gases.
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Ultimately, they realized that if they could decrease the temperature of an [[Ideal Gas|ideal gas]] to a point where all [[molecular motion]] ceased, that would be a good "[[absolute zero]]" point. They found that this temperature would be -273.15 °C (-459.5 °F).
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Ultimately, they realized that if they could decrease the temperature of an [[Ideal Gas|ideal gas]] to a point where all [[molecular motion]] ceased, that would be a good "[[absolute zero]]" point. They found that this temperature would be -273.15 °C (-459.67 °F).
    
==Kelvin scale==
 
==Kelvin scale==
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Like the Kelvin scale, the absolute zero temperature on the Rankine scale is at its zero point - 0°R. However, one degree on the Rankine scale is one degree on the Fahrenheit scale.
 
Like the Kelvin scale, the absolute zero temperature on the Rankine scale is at its zero point - 0°R. However, one degree on the Rankine scale is one degree on the Fahrenheit scale.
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Thus, the freezing point of water would be 491.6 °R (32 °F + 459.6), and the boiling point of water would be 671.6 °R (212 °F + 459.6).  
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Thus, the freezing point of water would be 491.67 °R (32 °F + 459.67), and the boiling point of water would be 671.67 °R (212 °F + 459.67).  
    
== References ==
 
== References ==
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