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The development and investigation of a strongly non-equilibrium model of heat transfer in fluid with allowance for the spatial and temporal non-locality and energy dissipation

机译:流体余量施加空间和时间非局部非局部余量和能量耗散的强均衡模型的开发与调查

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The differential equation of heat transfer with allowance for energy dissipation and spatial and temporal nonlocality has been derived by the relaxation of heat flux and temperature gradient in the Fourier law formula for the heat flux at the use of the heat balance equation. An investigation of the numerical solution of the heat-transfer problem at a laminar fluid flow in a plane duct has shown the impossibility of an instantaneous acceptance of the boundary condition of the first kind ? the process of its settling at small values of relaxation coefficients takes a finite time interval the duration of which is determined by the thermophysical and relaxation properties of the fluid. At large values of relaxation coefficients, the use of the boundary condition of the first kind is possible only at Fo → ∞. The friction heat consideration leads to the alteration of temperature profiles, which is due to the rise of the intervals of elevated temperatures in the zone of the maximal velocity gradients. With increasing relaxation coefficients, the smoothing of temperature profiles occurs, and at their certain high values, the fluid cooling occurs at a gradientless temperature variation along the transverse spatial variable and, consequently, the temperature proves to be dependent only on time and on longitudinal coordinate.
机译:通过在傅里叶律公式中放松热量平衡方程时,通过松弛傅里叶律公式的热通量和温度梯度来导出具有能量耗散和空间和时间非界面的差分方程。在平面管道中的层流体流动下的传热问题的数值解的研究表明,不可能瞬时接受第一种的边界条件?其在弛豫系数小值下沉降的过程采用有限的时间间隔,其持续时间由流体的热物理和弛豫特性决定。在放松系数的大值下,仅在FO→∞处使用第一种的边界条件。摩擦热考虑因素导致温度型材的改变,这是由于最大速度梯度区域中升高的温度的间隔的增加。随着弛豫系数的增加,温度型材的平滑发生,并且在它们的某个高值处,流体冷却发生在沿横向空间变量的渐变温度变化下,并且因此,该温度仅依赖于时间和纵向坐标。 。

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