Answer:
a) wavelength,
b) Surface temperature, T = 9017.89 K
Given:
Total Intensity, P = 375 MWm = 375
![* 10^(6) Wm](https://img.qammunity.org/2020/formulas/physics/college/kf8c4ph1jmdy25s9bgohd7c058675wlyij.png)
Here, total intensity is the power per unit area
Solution:
a) Using Wien's displacement law which gives the inverse relation between temperature and wavelength for black body radiation and is given by:
(1)
where
k = proportionality constant = 2898
![\micro m.K](https://img.qammunity.org/2020/formulas/physics/college/lmichte44rm8jor1cx2cd4qoichcflp1kt.png)
= maximum wavelength
T = Temperature in kelvin
From eqn (1):
{2}
b) Temperature, T at the surface is given by Stefan-Boltzman law:
P =
(3)
where
Using eqn (3):
![T^(4) = (P)/(\sigma )](https://img.qammunity.org/2020/formulas/physics/college/trpmu1y6u9il9k4ss21xpcd3xrkoj3cpjv.png)
![T^(4) = (375* 10^(6))/(5.670373* 10^(-8)) = 6.61332* 10^(15)](https://img.qammunity.org/2020/formulas/physics/college/v725qj93g6o7cfq7kxiom3b0vak1qbmxk3.png)
T = 9017.89 K
Now, substituting the value of T = 9017.89 K in eqn (2):