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In order to achieve maximum heat conduction, T 0 (0) - T 0(L 0) should be minimized.
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At the end of the study, under the condition of no moisture on surface of structural components and in areas where the indoor and outdoor temperatures are 25.3 °C and 20.2 °C, respectively, maximum total heat conduction coefficients are calculated to be between 1.38 and 1.73 °Cal/m2 °C h.
It is shown that when the characteristic length scales of the channels are reduced at a constant pressure drop, the effectiveness exhibits a maximum due to axial heat conduction in the plate material.
It is shown that when the characteristic length scales of the channels are reduced at a constant pressure drop, the effectiveness exhibits a maximum due to axial heat conduction.
The increase rates of E(Th−Tl) show the maximum efficiency of particle particle heat conduction and the most effective operation condition or optimal approach for heat conduction enhancement.
At the time of the end-gas maximum chemical power, the maximum temperature gradient and peak rate of heat conduction within the front diminish to the point where combustion becomes chemically controlled.
The hydrothermal model reduces the maximum peak temperature in the repository by about 10 °C compared to the heat conduction model with constant thermal conductivities.
By using the present approach, optimal thermal conduction paths leading to maximum heat transfer rate per unit mass, per unit volume, or per unit cost can be readily yielded.
In all cases the critical magnitude of the maximum Rayleigh number for each mode of heat conduction is unique and is independent of the critical time and the depth of the fluid.
The "volume-point" heat conduction constructal optimization based on maximum thermal resistance minimization with triangular element can effectively reduce the maximum temperature limitation of the triangular assembly, and enhance its system safety.
The Td of the experimental samples in steady state is lower, which represents the samples with higher heat conduction performance or thermal conductivity based on heat conduction theory.
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