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Question

two bars of same length and same cross-sectional area but of different thermal conductivities K1 and K2 are joined end to end as shown in the figure. One end of the compound bar is at temperature T1 and the opposite end at temperature t2 (where T1>T2). the temperature of the junction is
942008_730ce5d21a3d4773accbb44536838b3a.png

A
K1T1+K2T2K1+K2
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B
K1T2+K2T1K1+K2
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C
K1(T1+T2)K2
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D
K2(T1+T2)K1
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Solution

The correct option is A K1T1+K2T2K1+K2
Let L and A be length and area of cross-section of each bar respectively.
Heat current through the bar 1 is
H1=K2A(T1T0)L

Here T0 is junction temperature.
Heat current through the bar 2 is
H1=K2A(T0T2)L
at steady state, H1=H2

K1A(T1T0)L=K2A(T0T2)L

K1(T1T0)=K2(T0T2)
K1T1K1T0=K2T0K2T2
K1T0K2T0=K1T1K2T2
T0(K1+K2)=K1T1+K2T2

T0=K1T1+K2T2(K1+K2)

1028042_942008_ans_838c5638d2004884aa0b7241763cf71d.png

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