Home
Class 12
CHEMISTRY
Calculate the temperature at which the r...

Calculate the temperature at which the root mean square velocity, the average velocity, and the most proable velocity of oxygen gas are all equal to `1500 m s^(-1)`.

Text Solution

Verified by Experts

The correct Answer is:
`T_("RMS") = 2886K, T_(av) = 3399K, T_(mp) = 4330 K`
Promotional Banner

Topper's Solved these Questions

  • GASEOUS STATE

    MOTION|Exercise EXERCISE-4( LEVEL-I)|15 Videos
  • GASEOUS STATE

    MOTION|Exercise EXERCISE-4( LEVEL-II)|19 Videos
  • GASEOUS STATE

    MOTION|Exercise EXERCISE-2(LEVEL-II)|35 Videos
  • ELECTROCHEMISTRY

    MOTION|Exercise EXERCISE-4,II|44 Videos
  • GOC

    MOTION|Exercise Exercise - 4 Level - II|14 Videos

Similar Questions

Explore conceptually related problems

Calculate the temperature at which the root mean square speed, average speed and most probable speed of oxygen gas are all equal to 1500 m s^(-1)

The root mean square velocity, V_(ms ,the average velocity v_(av) and the most probable velocityv_mp of the molecules of the gas are in the order

The root mean square velocity, V_(rms) ,the average velocity v_(av) and the most probable velocity, v_(mp) of the molecules of the gas are in the order

Most probable velocity, average velocity and root mean square velocity are related as

The temperature at which the root mean square velocity of the gas molecules would become twice of its value at 0^(@)C is

Determine the gas temperature at which (a) the root mean square velocity of hydrogen molecules exceeds their most probable velocity by Delta v = 400 m//s , (b) the velocity distribution function F (v) for the oxygen molecules will have the maximum value at the velocity v = 420 m//s .

Calculate the temperature at which the average velocity of oxygen equals that of hydrogen at 20 K .

What is the relationship between the average velocity (v) , root mean square velocity (u) and most probable velocity

MOTION-GASEOUS STATE -EXERCISE-3
  1. A 50 litre vessel is equally divided into three parts with the help of...

    Text Solution

    |

  2. Calculate the temperature values at which the molecules of the first t...

    Text Solution

    |

  3. Calculate the temperature at which the root mean square velocity, the ...

    Text Solution

    |

  4. Calculate the fraction of N(2) molecules at 101.325 kPa and 300K whose...

    Text Solution

    |

  5. The density of mercury is 13.6g//mc^(3).Estimate the b value.

    Text Solution

    |

  6. Calculate from the vander wall's equation, the temperature at which 19...

    Text Solution

    |

  7. The molar volume of He at 10 .1325MP and 273K is 0.011075 of its molar...

    Text Solution

    |

  8. N(2) molecule is spherical of radius 100 pm. What is the volume of m...

    Text Solution

    |

  9. N(2) molecule is spherical of radius 100 pm. What is the value of va...

    Text Solution

    |

  10. The density of water vapour at 327.6 atm and 776.4 K is 133.2 gm//dm^(...

    Text Solution

    |

  11. At 273.15K and under a pressure of 10.1325 Mpa, the compressibility fa...

    Text Solution

    |

  12. 1 mol of C Cl(4) vapours at 77^(@)C occupies a volume of 35.0 L. If va...

    Text Solution

    |

  13. 1 mol of C Cl(4) vapours at 77^(@)C occupies a volume of 35.0 L. If va...

    Text Solution

    |

  14. The vander waals constant for O(2) are a = 1.36 atm L^(2) mol^(-2) a...

    Text Solution

    |

  15. The vander Waals constants for gases A,B and C are as follows Gas ...

    Text Solution

    |

  16. The vander Waals constants for gases A,B and C are as follows Gas ...

    Text Solution

    |

  17. The vander Waals constants for gases A,B and C are as follows Gas ...

    Text Solution

    |

  18. For a real gas (mol. Mass= 30 ) if density at critical point is0.40 g/...

    Text Solution

    |

  19. The compressibility factor for N(2) at - 50^(@)C and 800 atmp pressure...

    Text Solution

    |

  20. Find the critical constant ( P(c ) , V(c ) and T(c )) in terms of A a...

    Text Solution

    |