首页> 外文期刊>Journal of Applied Mechanics and Technical Physics >ENTROPY ANALYSIS OF A CONVECTIVE FILM FLOW OF A POWER-LAW FLUID WITH NANOPARTICLES ALONG AN INCLINED PLATE
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ENTROPY ANALYSIS OF A CONVECTIVE FILM FLOW OF A POWER-LAW FLUID WITH NANOPARTICLES ALONG AN INCLINED PLATE

机译:沿倾斜板纳米颗粒的电力法流体对流膜流动的熵分析

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摘要

Entropy generation in a two-dimensional steady laminar thin film convection flow of a non-Newtonian nanofluid (Ostwald-de-Waele-type power-law fluid with embedded nanoparticles) along an inclined plate is examined theoretically. A revised Buongiorno model is adopted for nanoscale effects, which includes the effects of the Brownian motion and thermophoresis. The nanofluid particle fraction on the boundary is passively rather than actively controlled. A convective boundary condition is employed. The local nonsimilarity method is used to solve the dimensionless nonlinear system of governing equations. Validation with earlier published results is included. A decrease in entropy generation is induced due to fluid friction associated with an increasing value of the rheological power-law index. The Brownian motion of nanoparticles enhances thermal convection via the enhanced transport of heat in microconvection surrounding individual nanoparticles. A higher convective parameter implies more intense convective heating of the plate, which increases the temperature gradient. An increase in the thermophoresis parameter decreases the nanoparticle volume fraction near the wall and increases it further from the wall. Entropy generation is also reduced with enhancement of the thermophoresis effect throughout the boundary layer.
机译:从理论上检查非牛顿纳米流体(具有嵌入式纳米颗粒的Ostwald-De-Wael-型功率 - 法流体)的二维稳态层薄膜对流流程的熵产生。采用修订后的Buongiorno模型用于纳米级效应,包括褐色运动和热孔的影响。边界上的纳米流体颗粒部分被动地而不是主动控制。采用对流边界条件。本地非纤维化法用于解决控制方程的无量纲非线性系统。包括先前已发布结果的验证。由于与流变动力法指数的增加相关的流体摩擦,引起熵产生的降低。纳米颗粒的布朗运动通过在各个纳米颗粒周围的微控制中增强的热量传输来增强热对流。更高的对流参数意味着板的更强烈的对流加热,这增加了温度梯度。热助剂参数的增加降低了壁附近的纳米颗粒体积分数,并从壁上进一步增加。还通过在整个边界层中的热孔效应的增强来降低熵生成。

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