Q.Define co-efficient of thermal conductivity and explain the formula used. OR State and explain Newton's Law of cooling.
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Start your 14-day free trial to unlock the full solution →Thermal conductivity K measures how well a material conducts heat; it is defined through the law dQ/dt = KA(ΔT/x), which says the rate of heat flow through a slab is proportional to its area and temperature difference, and inversely proportional to its thickness.
Step 1: Set up the physical situation.
Consider a slab (or rod) of a material with cross-sectional area A and thickness x, whose two faces are maintained at different steady temperatures T1 (hotter) and T2 (colder), so there is a temperature difference ΔT = T1 − T2 across the thickness.
Step 2: State the governing law of heat conduction (Fourier's law).
Experiments show that the rate of heat flow (dQ/dt) through the slab, once a steady state is reached, is:
- directly proportional to the cross-sectional area A (more area = more heat conducted per second)
- directly proportional to the temperature difference ΔT across the slab (bigger temperature difference drives faster heat flow)
- inversely proportional to the thickness x (a thicker slab conducts heat more slowly, for the same ΔT) Step 3: Combine these into a single equation. dQ/dt = K × A × (ΔT/x) or, in differential form for a general temperature gradient: dQ/dt = −KA(dT/dx) (the minus sign indicates heat flows from hot to cold, i.e. in the direction of decreasing temperature) Step 4: Define the coefficient of thermal conductivity, K. K is the constant of proportionality in this relation. It is a property of the material itself (not of the geometry of the sample), and represents the rate of heat flow per unit area, per unit temperature gradient. Rearranging the formula: K = (dQ/dt) × x / (A × ΔT) Step 5: State the units. From the formula, K has SI units of W/(m·K) — watts per metre per kelvin. Step 6: Explain the formula's meaning. …
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