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प्रश्न
The average translational kinetic energy of a molecule in a gas becomes equal to 0.49 eV at a temperature about (Boltzmann constant = 1.38 x 10-23 JK-1) ____________.
विकल्प
4370° C
3514° C
5333° C
5060° C
MCQ
रिक्त स्थान भरें
उत्तर
The average translational kinetic energy of a molecule in a gas becomes equal to 0.49 eV at a temperature about 3514° C.
Explanation:
`"K.E" _"avg" = 3/2 "k"_"B""T"`
`therefore "T" = 2/3 xx (0.49 xx 1.6 xx 10^-19)/(1.38 xx 10^-23)`
` = 3787.44 "K"`
`= 3514° "C"`
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Interpretation of Temperature in Kinetic Theory
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