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Experimental and numerical study of heat and hydraulic characteristics of low head natural circulation loops with single-phase flow of working liquid

机译:单相流动的低头自然循环环的热和水力特性的实验和数值研究

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A 2D numerical simulation of velocity and temperature fields for laminar low flow regimes have been carried out for laboratory experimental natural circulation loop with vertical electrically heated circular tube as flow up section. Calculations have been done for the case of full-length heating of flow up section at constant heat flux density on the heated wall. The variant of loop design with negligibly small hydraulic losses due to local drag reduction and friction on down corner compared with hydraulic losses due to friction in flow up tube has been considered. Laminar flow regime as the regime of most complex friction factor behaviour in buoyancy driven flows was the subject of the analysis. On the basis of calculated velocity and temperature fields in heated zone the longitudinal change of friction factor and heat transfer coefficients have been determined. In general, according to 2D numerical simulation the wall shear stresses are mainly affected by the change of wall velocity gradient due to practically continuous velocity profiles deformation along the whole heated zone. The form of velocity profiles and the extent of their deformation in its turn depend upon the wall heat flux density and the hydraulic diameter. It is shown that in single-phase natural circulation loop where fluid flow is governed exclusively by buoyancy forces wall shear stresses change along the heated zone in a complex way and friction factor for use in 1D calculations can not be described by simple correlations in the form of ξ = a/Re~b. In all calculated regimes including the lowest considered wall heat flux density the Nusselt numbers exceeds that for stabilized forced flow with constant thermophysical properties. After decreasing with the distance from the inlet to the heated section Nusselt numbers achieve minimum values and then start to increase.
机译:对于具有垂直电加热圆管的实验室实验自然循环回路,对流动低流量制度进行了速度和温度场的2D数值模拟,其具有垂直电加热圆形管作为流量部分。在加热壁上的恒定热通量密度下流动截面全长加热的情况下进行了计算。考虑了由于局部阻力减少和摩擦而导致的循环设计的变种,而局部阻力下降,则被认为是由于流量管中的摩擦而导致的液压损失。作为浮力驱动流动中大多数复杂摩擦因子行为的制度作为分析的主题。基于加热区中的计算速度和温度场,已经确定了摩擦因子和传热系数的纵向变化。通常,根据2D数值模拟,壁剪切应力主要受壁速度梯度的变化影响,由于实际上是沿整个加热区的变形变形。速度分布的形式和转弯变形的程度取决于壁热通量密度和液压直径。结果表明,在单相自然循环回路中,流体流动专门由浮力势力控制,壁剪切应力以复杂的方式沿着加热区变化,并且不能通过形式的简单相关性来描述用于1D计算的摩擦因子ξ= a / re〜b。在包括最低考虑的壁热通量密度的所有计算的方案中,NUSERET数超过了具有恒定热物理性质的稳定强制流动的纽带。在从入口的距离下降到加热的部分露面数达到最小值,然后开始增加。

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