Three rods made of the same material and having same cross-sectional area but different lengths 10,,cm, ,,20 cm and 30,,cm are joined as shown. The

Q: Three rods made of the same material and having same cross-sectional area but different lengths $10\,\,cm$, $\,\,20 cm$ and $30\,\,cm$ are joined as shown. The temperature of the joint is ....... $^oC$

c Let $\theta$ be the temperature of junction and $H_{1}, H_{2}$ and $H_{3}$ the heat currents. Then $H_{1}=H_2+H_{3}$ $\frac{30-\theta}{\left(\frac{30}{K A}\right)}=\frac{\theta-20}{\left(\frac{20}{K A}\right)}+\frac{\theta-10}{\left(\frac{30}{K A}\right)}$ or $2(30-\theta)=3(\theta-20)+3(2 \theta-20)$ or $\theta=16.36^{\circ} \mathrm{C} \approx 16.4^{\circ} \mathrm{C}$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

Three rods made of the same material and having same cross-sectional area but different lengths $10\,\,cm$, $\,\,20 cm$ and $30\,\,cm$ are joined as shown. The temperature of the joint is ....... $^oC$

A$20$
B$23.7$
C$16.4$
D$18.2$

Advanced

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

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