If the mean kinetic energy of the molecules of a gas is `(1/3)^(rd)` of its value at `27^(@)C`, then the temperature of the gas will beA. `100^(@)C`B. `-173^(@)C`C. `900^(@)C`D. `627^(@)C`

If the mean kinetic energy of the molecules of a gas is `(1/3)^(rd)` o

1.	If the mean kinetic energy of the molecules of a gas is `(1/3)^(rd)` of its value at `27^(@)C`, then the temperature of the gas will beA. `100^(@)C`B. `-173^(@)C`C. `900^(@)C`D. `627^(@)C`
Answer» Correct Answer - B `KE_(2)=(1)/(3)KE_(1)` `(KE_(2))/(KE_(1))=(T_(2))/(T_(1))" "therefore(1)/(3)=(T_(2))/(T_(1))` `therefore T_(2)=(T_(1))/(3)=(300)/(3)=100K` `T_(2)=100-273=-173^(@)C`

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If the mean kinetic energy of the molecules of a gas is `(1/3)^(rd)` of its value at `27^(@)C`, then the temperature of the gas will beA. `100^(@)C`B. `-173^(@)C`C. `900^(@)C`D. `627^(@)C`

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