Home
Class 11
PHYSICS
Two bodies A and B have thermal emissivi...

Two bodies A and B have thermal emissivities of 0.01 and 0.81 respectively. The outer surface areas of the two bodies are same. The two bodies emit total radiant power at the same rate. The wavelength `lambda_B` corresponding to maximum spectral radiancy from B is shifted from the wavelength corresponding to maximum spectral radiancy in the radiation from A by 1.0 `mum`. If the temperature of A is 5802 K, calculate (a) the temperature of B, (b) wavelength `lambda_B`.

A

the temperature of `B` is `1934K`

B

`lambda_(B) = 1.5 mum`

C

the temperature of `B` is `11604K`

D

the temperature of `B` is 2901 K

Text Solution

Verified by Experts

The correct Answer is:
A, B

`e_(A) sigma T_(A)^(4) = e_(B) sigma T_(B)^(4), (T_(A))/(T_(B)) = ((e_(B))/(e_(A)))^(1/(4))=3`
`T_(B) = (T_(A))/(3) =1934k lambda_(A)T_(A)=lambda_(B)T_(B)`
`lambda_(A)=(lambda_(B))/(3),lambda_(B)-lambda_(A)=1mum,lambda_(B)=1.5m` .
Promotional Banner

Topper's Solved these Questions

  • TRANSMISSION OF HEAT

    NARAYNA|Exercise LEVEL-I(H.W)|19 Videos
  • TRANSMISSION OF HEAT

    NARAYNA|Exercise LEVEL-II(C.W)|27 Videos
  • TRANSMISSION OF HEAT

    NARAYNA|Exercise SINGLE ANSWER QUESTIONS Passage -1|1 Videos
  • THERMODYNAMICS

    NARAYNA|Exercise Exercise|187 Videos
  • UNITS AND MEASUREMENTS

    NARAYNA|Exercise STATEMENT TYPE QUESTION|23 Videos

Similar Questions

Explore conceptually related problems

Two bodies A and B ahave thermal emissivities of 0.01 and 0.81 respectively. The outer surface areas of the two bodies are the same. The two bodies emit total radiant power of the same rate. The wavelength lambda_B corresponding to maximum spectral radiancy in the radiation from B shifted from the wavelength corresponding to maximum spectral radiancy in the radiation from A, by 1.00mum. If the temperature of A is 5820K:

Two black bodies A and B at temperatures 5802 K and 1934 K emits total radiations at the same rate. The wavelength lamda_(B) corresponding to maximum spectral radiancy from B is shifted from the wavelength corresponding to maximum spectral radiancy in the radiation from A by 1.00mum . Then

Two stars A and B of same size, have thermal emissivities of 0.2 and 0.64 respectively. Both stars emit total radiant power at same rate. If the temperature of A is 5000 K and the wavelength lamda_(B) corresponding to maximum spectral radiancy in the radiation from B is shifted from the wavelength corresponding to maximum spectral radiancy in radiations from A by 2.0 mu m, then find the temperature of star B and wavelength lamda_(B) .

Two bodies A and B have thermal emissivities of 0.01 and 0.81 respectively the outer surface area of the two bodies are the same. The twobodies emit total radiant spectral radiancy in the radiation from A and B respectively differ by 1.00 mum . If the temperature A is 5802 K, find a. the temperature of B lamda_(B)

The thermal emissivitites of two bodies A and B are in the ratio of 1//e . The outer surface area of the bodies are same and they radiate the energy at the same rate. Find the ratio of the wavelength corresponding to the maximum spherical radiance in the radiation from A to maximum spectral radiance in the radiation from B .

Two bodies A and B having equal outer surface areas have thermal emissivity 0.04 and 0.64 respectively. They emit total radiant power at the same rate. The difference between wavelength corresponding to maximum spectral radiance in the radiation from B and that from A is 2 mum . If the temperature of A is 6000 K, then

Two bodies P and Q have thermal emissivities of varepsilon_(P) and varepsilon_Q respectively. Surface areas of these bodies are same and the total radiant power is also emitted at the same rate. If temperature of P is theta_P kelvin then temperature of Q i.e. theta_Q is

If the temperature of a black body is increased then the wavelength corresponding to the maximum emission will

NARAYNA-TRANSMISSION OF HEAT-SINGLE ANSWER QUESTIONS
  1. Two identical objects A and B are at temperatures TA and TB. Respectiv...

    Text Solution

    |

  2. Two solid spheres are heated to the same temperature allowed to cool u...

    Text Solution

    |

  3. Two bodies A and B have thermal emissivities of 0.01 and 0.81 respecti...

    Text Solution

    |

  4. A 100 cm long cylindrical flask with inner and outer diameter 2 cm and...

    Text Solution

    |

  5. A metal cylinder of mass 0.5kg is heated electrically by a 12 W heater...

    Text Solution

    |

  6. When we consider convection with radiation in Newton's law of cooling ...

    Text Solution

    |

  7. An incandesent bulb has a thin filament of tungsten that is heated to ...

    Text Solution

    |

  8. A spherical black body of radius r radiated power P at temperature T w...

    Text Solution

    |

  9. The total energy of a blackbody radiation source is collected for one ...

    Text Solution

    |

  10. A body is kept inside a container the temperature of the body is T(1) ...

    Text Solution

    |

  11. A body is kept inside a container the temperature of the body is T(1) ...

    Text Solution

    |

  12. A body is kept inside a container the temperature of the body is T(1) ...

    Text Solution

    |

  13. Two rods A and B of same cross sectional are A and length l connected ...

    Text Solution

    |

  14. Two rods A and B of same cross sectional are A and length l connected ...

    Text Solution

    |

  15. The shows a radiant energy spectrum graph for a black body at at tempe...

    Text Solution

    |

  16. The shows a radiant energy spectrum graph for a black body at at tempe...

    Text Solution

    |

  17. A rod of length l with thermally insulated lateral surface is made of ...

    Text Solution

    |

  18. A solid copper shere of density rho specific heat c and radius r is at...

    Text Solution

    |

  19. Two identical rods are connected between two containers. One of them i...

    Text Solution

    |

  20. Two spherical bodies A (radius 6cm) and B (radius 18cm) are at tempera...

    Text Solution

    |