The temperature, at which the root mean ...

The temperature, at which the root mean square velocity of hydrogen molecules equals their escape velocity from the earth, is closest to:
[Boltzmann constant ` k _ B = 1.38 xx 10 ^( -23) J//K ` Avogadro Number ` N _ A = 6.02 xx 10 ^( 26) // Kg ` Radius of Earth :
` 6.4 xx 10 ^( 6 ) ` m Gravitational acceleration on Earth ` = 10 ms ^( -2) ` ]

Similar Questions

Explore conceptually related problems

The temperature ,a t which the root mean square velcity of hydrogen molecules equals their escape velocity from the earth, is closed to: [Boltzmann Constant k_(B)=1.38xx10^(-23)j//K Avogadro Number N_(A)=6.02xx10^(26)//Kg Radius of Earth : 6.4xx10^(6)m Gravitational acceleration On earth = 10ms^(-2)]

The temperature at which root mean square velocity of molecules of helium is equal to root mean square velocity of hydrogen at NTP

Calculate the value of Boltzmann constant k_(B) , Given R = 8.3 xx 10^(3) J//kg-mol-K and Avogadro number, N = 6.03 xx 10^(26)//kg-mol .

What is the K.E. of one mole of a gas at 237^(@)C ? Given Boltzamann's constant k = 1.38 xx 10^(-23) J //k , Avogadro number = 6.033 xx 10^(23) .

Fill in the blanks: The value of Boltzmann's constant is 1.38 xx 10^-23 …………

At what temperature the root mean square velocity is equal to escape velocity from the surface of earth for hydrogen and for oxygen ? Given radius of earth = 6.4 xx 10^(6) m , g = 9.8 ms^(-2) . Boltzmann constant = 1.38 xx 10^(-23) J "molecule"^(-1) .

At what temperature will the average velocity of oxygen molecules be sufficient to escape from the earth. Given mass of oxygen molecule = 5.34 xx 10^(-26) kg . Boltzmann constant, k = 1.38 xx 10^(-23) J "molecule"^(-1) K^(-1) . Escape velocity of earth = 11.0 km s^(-1) .

Similar Questions

Recommended Questions