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An opaque, horizontal plate has a thickness of
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- A room of length 5m height 5m and width 5m is heated through the floor by maintaining it at a uniform temperature of 350 K. while side walls are well insulated. The heat loss takes place through the ceiling at 300 K. Assuming that all surfaces have an emissivity of 0.8. determine the rate of heat loss by radiation through the ceiling. BIU 非 Σ Given-arrow_forwardA plate that is exposed to the outside environment at 30 ° C, gets airradiation of 2000 W / m2. The plate, which absorbs 80% of the irradiationand it has an emissivity of 0.5, it is always at a uniform temperature.An external air flow at 20 ° C and 15 W / m2-K go through the plate. Calculatethe temperature of the plate if it is in thermal equilibrium and insteady state conditions.arrow_forwardAn oil radiator has an outside surface area of 0.18 m2 and operates at a surface temperature of 85 degree Celsius. If the oil radiator behaves as a black body and the Stefan-Boltzmann constant value is equal to 5.67 X 10-8 W/(m²-K4), calculate the radiation heat flux at the surface of the radiator. O 0.53 W/m² O 2.96 W/m² O 167.64 W/m² O 931.35 W/m²arrow_forward
- The heat is dissipated from the plate by convection and radiation into surrounds at 20 C . Take ε =0.8 , σ =5.67×10**-8 and h∞ = 6 W/m**2. K. If the surface temperature of the plate is 50 C ,the value of the heat flux from the plate is :arrow_forwardi need the answer quicklyarrow_forwardConsider a large plane wall of thickness L = 0.8 ft and thermal conductivity k = 1.2 Btu/h-ft-°F. The wall is covered with a material that has an emissivity of ε = 0.80 and a solar absorptivity of a = 0.60. The Inner surface of the wall is maintained at T₁ = 524 R at all times, while the outer surface is exposed to solar radiation that is incident at a rate of q solar = 300 Btu/h-ft2. The outer surface is also losing heat by radiation to deep space at O K. 0 Plate a solar o = 0.1714 x 10-8 Btu/h ft2 R4 Sun If the temperature of the outer surface of the wall is 556.39 R, determine the rate of heat transfer through the wall when steady operating conditions are reached. (Round your answer up to 2 decimal places.) 51 Btu/h-ft2 (per The rate of heat transfer through the wall when steady operating conditions are reached unit area)arrow_forward
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