The rate of heat radiation from two patches of skin of equal area on a patient's chest differs by 2%. If one of the patches is at 300K and both the patches is assumed to be blackbody, the temperature of other patch will be
A
306K
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
312K
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
308.5K
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
301.5K
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
Open in App
Solution
The correct option is D301.5K According to Stefan-Boltzmann law,
Rate of heat radiation, P=σAϵT4 ⇒P=σAT4 [ for blackbody, emissivity, ϵ=1]
So, ΔP=σA4T3ΔT ⇒ΔPP=σA4T3ΔTP ⇒ΔPP=σA4T3ΔTσAT4 ⇒ΔPP=4ΔTT ⇒2100=4ΔT300 [ given, rate of heat radiation differ by 2%,T=300K] ⇒ΔT=2×300100×4=1.5K ∴ Temperature of other patch will be T+ΔT=300+1.5=301.5K