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HEAT TRANSFER IN NATURAL CONVECTION WITH FINITE-SIZED PARTICLES CONSIDERING THERMAL CONDUCTANCE DUE TO INTER-PARTICLE CONTACTS

机译:由于颗粒间接触,带有有限导热系数的有限对流粒子自然对流传热

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摘要

The heat transfer problem in solid-dispersed two-phase flow is numerically studied. Temperature gradient within the finite-sized particles and inter-particle heat flux due to collisions are considered, and those effects on the flow structure and heat transfer are discussed. The interaction between fluid and particles is treated by our original immersed solid approach. For the conjugate heat transfer problems, to satisfy the thermal condition at the fluid-solid interface, our interfacial heat flux model is employed. Also, the interfacial flux model is extended to incorporate the heat conduction due to inter-particle contacts, based on 2D and axisymmetric contact heat resistance solutions. The method is applied to 2D and 3D natural convection problems including multiple particles in a confined domain under relatively low Rayleigh numbers (10~4-10~6). Heat transfer and particle behaviors are studied for different solid volume fractions (up to about 50%) and heat conductivity ratios (solid to fluid) ranging between 10~(-3) and 10~3. Under high solid volume fraction conditions, the particles are observed to form densely concentrated regions, where heat flow tends to channel through the contacting points. In three-dimensional solid-dispersed flows, by decomposing the heat flux into the contributions of the convection and conduction, the change of the major heat transfer mode is studied for different solid volume fractions and conductivity ratios.
机译:对固相分散两相流中的传热问题进行了数值研究。考虑了有限尺寸颗粒内的温度梯度和碰撞引起的颗粒间热通量,并讨论了它们对流动结构和传热的影响。流体和颗粒之间的相互作用通过我们最初的沉浸式固体方法处理。对于共轭传热问题,为了满足流固界面处的热条件,我们采用了界面热通量模型。此外,基于2D和轴对称接触热阻解决方案,界面通量模型已扩展为包含由于粒子间接触而产生的热传导。该方法适用于2D和3D自然对流问题,包括在相对较低的瑞利数(10〜4-10〜6)下的有限域中的多个粒子。研究了不同固体体积分数(最高约50%)和热导比(固液比)在10〜(-3)和10〜3之间的传热和颗粒行为。在高固相体积分数条件下,观察到颗粒形成了密集的区域,在该区域中,热流倾向于通过接触点引导。在三维固相分散流中,通过将热通量分解为对流和传导的贡献,研究了不同固相体积分数和电导率的主要传热模式的变化。

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