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首页> 外文期刊>International Journal of Heat and Mass Transfer >Buoyancy effect on the mixed convection flow and heat transfer of supercritical R134a in heated horizontal tubes
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Buoyancy effect on the mixed convection flow and heat transfer of supercritical R134a in heated horizontal tubes

机译:浮力对加热的水平管中超临界R134a的混合对流和传热的影响

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摘要

Thermal non-uniformity in the horizontal mixed convection heat transfer of fluids at the supercritical pressure is a major issue that must be addressed in a trans-critical organic Rankine cycle. However, the heat transfer mechanism is not fully understood. To further investigate the mechanisms of the buoyancy effect and property variations in a horizontal supercritical flow, mixed convection with supercritical pressure R134a is studied numerically herein using the AKN turbulence model. When the buoyancy effect is weak, the difference in the turbulent kinetic energy with k(top) < k(bottom) is the dominating factor resulting in a non-uniform heat transfer. In a strongly buoyancy-affected mixed convection, the flow process is divided into three regions. In region I (T-w increasing section) and region III (gas-like section), k(top) < k(bottom) because of the greater velocity gradient at the bottom; in region 11, where T-w,T-top op reaches a peak and subsequently decreases, k(top) < k(bottom) is observed because the newly developed vortexes near the tube top intensifies the turbulence near the top. Heat transfer cases with various tube diameters and pressures are discussed. A stronger buoyancy effect is developed in larger tubes. No new vortex is formed in a 2-mm tube while multiple vortexes are developed in the upper region of 16-mm and 26-mm tubes, providing stronger turbulence for the heat transfer recovery. As the specific heat is sensitive to the pressure variation while the density variation with pressure is moderate, the pressure has less effect on heat transfer in a strong-buoyancy case than in a weak-buoyancy case. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在超临界压力下流体的水平混合对流传热中的热不均匀性是跨临界有机朗肯循环中必须解决的主要问题。但是,传热机理尚未完全理解。为了进一步研究水平超临界流中浮力效应和性质变化的机理,本文使用AKN湍流模型对具有超临界压力R134a的混合对流进行了数值研究。当浮力作用较弱时,k(top)

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