If the average kinetic energy of gas molecule at `27^(@)C` is `6.21xx10^(-21)J`, then the average kinetic energy at `227^(@)C` will be

Question

If the average kinetic energy of gas molecule at `27^(@)C` is `6.21xx10^(-21)J`, then the average kinetic energy at `227^(@)C` will be

If the average kinetic energy of gas molecule at `27^(@)C` is `6.21xx10^(-21)J`, then the average kinetic energy at `227^(@)C` will be
A. `52.2xx10^(-21)J`
B. `5.22xx10^(-21)J`
C. `10.35xx10^(-21)J`
D. `11.35xx10^(-21)J`

Monjur Alahi

4 views

2025-01-04 04:42

1 Answers

Related Questions

When temperature of an ideal gas is increased from `27^(@)C" to "227^(@)C` , its rms speed is changed from `400ms^(-1) " to "V_(s)` . Then , the `V_(s

2 Answers 4 Views

An ideal gas heat engine operates in a carnot cycle between `227^(@)C` and `127^(@)C` .It absorbs 6 kcal at the higher temperature. The amount of heat

2 Answers 4 Views

Light of frequency `7.21xx10^(14)` Hz is incident on metal surface. Electrons with a maximum speed of `6.0xx10^(5)m//s` are ejected from the surface.

2 Answers 4 Views

Kinetic energy of a wheel rotating about its central axis is E. Then kinetic energy of another axis is E. Then kinetic energy of another wheel having

2 Answers 5 Views

The potential energy of a particle performing S.H.M. in its rest position is 15 J. If the average kinetic energy is 5 J, then the total energy of the

2 Answers 4 Views

The volume of a gas at pressure `21xx10^(4)N//m^(2) and` temperature `27^(@)C` is 83L. If R=8.3 J/mol/K, then the quantity of gas in g-mol will be

2 Answers 4 Views

The temperature at which mean kinetic energy of an ideal gas molecule will be doubled that at `27^(@)C` is

2 Answers 4 Views

If the temperature of a gas is increased from `0^(@)C` to `273^(@)C`, then the ratio of average kinetic energy of the gas molecules is

2 Answers 4 Views

If the temperature of a gas is increased from `0^(@)` to `273^(@)C`, then the ratio of change in the average kinetic energy of the gas molecule to the

2 Answers 4 Views

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 be

2 Answers 4 Views

Salim Ahmed Kawsar · Accepted Answer · 2023-02-05T15:29:48+06:00

Salim Ahmed Kawsar

Correct Answer - C
`(KE_(1))/(KE_(1))=(T_(2))/(T_(1))=(500)/(300)=(5)/(3)`
`K.E_(2)=(5)/(3)xx6.21xx10^(-21)`
`=10.35xx10^(-21)J`

4 views Answered 2023-02-05 15:29