The spectral emissive power $E_{λ}$ for a black body at temperature $T_{1}$ is plotted against the wavelength and area under the curve is found to be $A$ . At a different temperature $T_{2}$ , the area is found to be $9 A$ . Than $λ_{1} / λ_{2}$

3

No worries! We‘ve got your back. Try BYJU‘S free classes today!

1 / 3

No worries! We‘ve got your back. Try BYJU‘S free classes today!

1 / \sqrt{3}

No worries! We‘ve got your back. Try BYJU‘S free classes today!

\sqrt{3}

Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses

Open in App

Solution

The correct option is D $\sqrt{3}$
Area $= \int y d x = \int \frac{d E}{d λ} \times d λ = \int d E$
Area $(A) = E = σ T^{4} = σ {(\frac{b}{λ})}^{4}$ {Since black body is mentioned in the question}
$\frac{{Area}_{1}}{{Area}_{2}} = {(\frac{λ_{2}}{λ_{1}})}^{4} \Rightarrow \frac{1}{9} = {(\frac{λ_{2}}{λ_{1}})}^{4}$
$\Rightarrow \frac{λ_{1}}{λ_{2}} = \sqrt{3}$

Suggest Corrections

Similar questions

Q. The spectral emissive power

E_{λ}

for a body at temperature

T_{1}

is plotted against the wavelength and area under the curve is found to be

A

. At a different temperature

T_{2}

the area is found to be

9 A

. Then

\frac{λ_{1}}{λ_{2}} =

Q. The spectral emissive power

E_{λ}

for a black body at temperature

T_{1}

is plotted against the wavelength and area under the curve is found to be

A

. At a different temperature

T_{2}

, the area is found to be

9 A

. Than

λ_{1} / λ_{2}

The spectral emissive power $E_{λ}$ for a body at temperature $T_{1}$ is plotted against the wavelength and area under the curve is found to be $A$ . At a different temperature $T_{2}$ the area`is found to be $9 A$ . Then $\frac{λ_{1}}{λ_{2}}$ is :