Distance between sun and earth is 2 × 108 km, temperature of sun 6000 K, radius of sun 7 × 105 km, if emmisivity of earth is 0.6, then find out temperature of earth in thermal equilibrium.

Question

Distance between sun and earth is 2 × 108 km, temperature of sun 6000 K, radius of sun 7 × 105 km, if emmisivity of earth is 0.6, then find out temperature of earth in thermal equilibrium. (A) 400 K (B) 300 K (C) 500 K (D) 600 K

Tardigrade Admin · Accepted Answer

For thermal equilibrium energy received by earth = Energy emmited by earth (T 4s.4π R 2s/4π d2)×π Re2=σ.ρ.T e4.4π Re2 (T 4s× R 2s/4× d2× e)=T 4e ⇒ ((6000)4×(7×108)2/4×(2×1011)2×0.6)=T 4e ⇒ (36×36×7×7/4×4×0.6)×106=T 4e ⇒ 66.15×108=T 4e Te ≈300 K

Q. Distance between sun and earth is 2 × 108 km, temperature of sun 6000 K, radius of sun 7 × 105 km, if emmisivity of earth is 0.6, then find out temperature of earth in thermal equilibrium.

400 K

300 K

500 K

600 K

For thermal equilibrium energy received by earth = Energy emmited by earth 4πd2Ts4​.4πRs2​​×πRe2=σ.ρ.Te4.4πRe2 4×d2×eTs4​×Rs2​​=Te4​ ⇒4×(2×1011)2×0.6(6000)4×(7×108)2​=Te4​ ⇒4×4×0.636×36×7×7​×106=Te4​ ⇒66.15×108=Te4​ Te≈300K

Q. Distance between sun and earth is 2 × 10⁸ km, temperature of sun 6000 K, radius of sun 7 × 10⁵ km, if emmisivity of earth is 0.6, then find out temperature of earth in thermal equilibrium.