Two materials having coefficients of thermal conductivity 3K and K and thickness d and 3d, respectively, are joined to form a slab as shown in

Q: Two materials having coefficients of thermal conductivity $3K$ and $K$ and thickness $d$ and $3d$, respectively, are joined to form a slab as shown in the figure. The temperatures of the outer surfaces are $\theta_2$ and $\theta_1$ respectively $\left( {\theta _2} > {\theta _1} \right)$ . The temperature at the interface is

b At steady state: ${\left( {\frac{{\Delta q}}{{\Delta t}}} \right)_1} = {\left( {\frac{{\Delta q}}{{\Delta t}}} \right)_2}$ $\frac{{3mkA\left( {{\theta _2} - \theta } \right)}}{d} = \frac{{kA\left( {\theta - {\theta _1}} \right)}}{{3d}}$ $ \Rightarrow \,\,\theta = \frac{{{\theta _1} + 9{\theta _2}}}{{10}}$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

Two materials having coefficients of thermal conductivity $3K$ and $K$ and thickness $d$ and $3d$, respectively, are joined to form a slab as shown in the figure. The temperatures of the outer surfaces are $\theta_2$ and $\theta_1$ respectively $\left( {\theta _2} > {\theta _1} \right)$ . The temperature at the interface is

A$\frac{\theta_2 + \theta_1}{2}$
B$\frac{\theta _1}{10} + \frac{9\theta _2}{10}$
C$\frac{\theta_1}{3} + \frac{2\theta_2}{3}$
D$\frac{\theta _1}{6} + \frac{5\theta _2}{6}$

JEE MAIN 2019, Medium

STD 11 Science
NEET
STD 11 - 10.2. transmission of heat
Physics

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