Chapter 19: Problem 19
For some ceramic materials, why does the thermal conductivity first decrease and then increase with rising temperature?
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Chapter 19: Problem 19
For some ceramic materials, why does the thermal conductivity first decrease and then increase with rising temperature?
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What measures may be taken to reduce the likelihood of thermal shock of a ceramic piece?
(a) Briefly explain why \(C_{v}\) rises with increasing temperature at temperatures near \(0 \mathrm{~K}\). (b) Briefly explain why \(C_{v}\) becomes virtually independent of temperature at temperatures far removed from \(0 \mathrm{~K}\).
(a) Calculate the heat flux through a sheet of steel \(10 \mathrm{~mm}(0.39\) in.) thick if the temperatures at the two faces are 300 and \(100^{\circ} \mathrm{C}\) (572 and \(212^{\circ} \mathrm{F}\) ); assume steady-state heat flow. (b) What is the heat loss per hour if the area of the sheet is \(0.25 \mathrm{~m}^{2}\left(2.7 \mathrm{ft}^{2}\right) ?\) (c) What will be the heat loss per hour if soda-lime glass instead of steel is used? (d) Calculate the heat loss per hour if steel is used and the thickness is increased to \(20 \mathrm{~mm}(0.79\) in.).
For aluminum, the heat capacity at constant volume \(C_{v}\) at \(30 \mathrm{~K}\) is \(0.81 \mathrm{~J} / \mathrm{mol} \cdot \mathrm{K}\), and the Debye temperature is \(375 \mathrm{~K}\). Estimate the specific heat (a) at \(50 \mathrm{~K}\) and (b) at \(425 \mathrm{~K}\).
Briefly explain thermal expansion using the potential-energy-versus- interatomic-spacing curve.
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