Question
Download Solution PDFThe radiative heat transfer rate per unit area (W/m2) between two plane parallel grey surfaces (emissivity = 0.9) maintained at 400 K and 300 K is (Stefan Boltzman constant σ = 5.67 × 10-8 W/m2K4)
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFϵ = 0.9, T1 = 400 K, T2 = 300 K
σ = 5.67 × 10-8 W/m2K4
Heat transfer per unit area between parallel grey surfaces is given by
\(Q = \frac{{\sigma \left( {T_1^4 - T_2^4} \right)}}{{\frac{1}{\epsilon} + \frac{1}{\epsilon} - 1}}\)
\(Q = \frac{{5.67 \times {{10}^{ - 8}}\left( {{{400}^4} - {{300}^4}} \right)}}{{\frac{1}{{0.9}} + \frac{1}{{0.9}} - 1}}\)
Q = 811.84 W/m2Last updated on Jul 2, 2025
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