Difference between revisions of "Heat capacity"

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'''Heat capacity''', also called '''specific heat capacity''' is the amount of [[heat]] it takes to make a certain [[mass]] of a substance increase by a certain amount of [[temperature]]. The unit of [[calorie]] is defined by the heat capacity of [[water]]: 1 calorie is defined as the amount of heat it takes to heat 1 [[gram]] of water 1 degree [[Celsius]]. It is approximately <math>4.2 \times 10^{-3} \, \mbox{J} \ \mbox{kg}^{-1} \ \mbox{K}^{-1}</math>
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A table of heat capacities of select substances is as follows:
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{| class="wikitable" style="text-align:left"
 
{| class="wikitable" style="text-align:left"
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|+ Heat Capacities of Common Substances
 
 
|-
 
|-
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! Substance !! Heat Capacity <math>\left ( \frac{cal}{g.^0C} \right )</math>
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! Substance !! Heat Capacity <math>\left ( \frac{cal}{g^oC} \right )</math>
 
|-
 
|-
 
| Copper || 0.092
 
| Copper || 0.092
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|-
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| Glass || 0.200
 
|-
 
|-
 
| Iron || 0.108
 
| Iron || 0.108
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| Styrofoam || 11.95
 
| Styrofoam || 11.95
 
|-
 
|-
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| Glass || 0.200
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| Water || 1.00
 
|}<ref>Wile, Dr. Jay L. ''Exploring Creation With Chemistry''. Apologia Educational Ministries, Inc. 1998</ref>
 
|}<ref>Wile, Dr. Jay L. ''Exploring Creation With Chemistry''. Apologia Educational Ministries, Inc. 1998</ref>
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The heat required, <math>Q</math> to heat up an object of mass <math>m</math> and heat capacity <math>c</math> by a temperature <math>\Delta T</math> is <math>Q= mc \, \Delta T</math>
  
 
==References==
 
==References==
 
<references/>
 
<references/>
  
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[[Category:Chemical Properties]]
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[[Category:Physics]]
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[[Category:Thermodynamics]]
 
[[Category:Chemistry]]
 
[[Category:Chemistry]]

Latest revision as of 12:26, April 9, 2017

Heat capacity, also called specific heat capacity is the amount of heat it takes to make a certain mass of a substance increase by a certain amount of temperature. The unit of calorie is defined by the heat capacity of water: 1 calorie is defined as the amount of heat it takes to heat 1 gram of water 1 degree Celsius. It is approximately <math>4.2 \times 10^{-3} \, \mbox{J} \ \mbox{kg}^{-1} \ \mbox{K}^{-1}</math>

A table of heat capacities of select substances is as follows:

Substance Heat Capacity <math>\left ( \frac{cal}{g^oC} \right )</math>
Copper 0.092
Glass 0.200
Iron 0.108
Styrofoam 11.95
Water 1.00

[1]

The heat required, <math>Q</math> to heat up an object of mass <math>m</math> and heat capacity <math>c</math> by a temperature <math>\Delta T</math> is <math>Q= mc \, \Delta T</math>

References

  1. ↑ Wile, Dr. Jay L. Exploring Creation With Chemistry. Apologia Educational Ministries, Inc. 1998