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Resistance reduction via guide vane in dividing manifold systems with parallel pipe arrays (DMS-PPA) based on analysis of energy dissipation

机译:基于能量耗散分析的带有平行管阵列(DMS-PPA)的分隔歧管系统中的导叶降低阻力

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The energy consumption of pump power in pipe systems is increasing each year. A resistance reduction method by inserting a guide vane (GV) has been applied to the dividing manifold system with parallel pipe arrays (DMSPPA). The mechanism of resistance reduction and the geometric parameters of GV in dividing manifold systems are investigated based on the energy dissipation analysis. Four design variables (radius (r), extension length (h), as well as vertical location dimension a and horizontal location dimension b) are used to describe the arrangement of the GV. The optimal dimensionless design parameters of GV in the DMS-PPA are proposed through a series of optimization processes. It is obtained that both the scope and strength controlled by the fluctuating vorticity are reduced remarkably. The guiding effect of the GV is completely achieved with a 41.45% resistance reduction rate (RRR). In addition, the effectiveness of the resistance reduction method has been verified with different inlet Reynolds numbers (Re-in), numbers of outlet pipes (n) and manifold specifications. Generally, the RRR will increase with n rising, and the maximum RRR value reaches 49.35% with n = 8 when Re-in = 3.5 x 10(5). The Re, exerts a positive influence on the energy saving rate (ESR), while the maximum can be achieved as 29.75% with Re-in = 3.5 x 105. This paper can provide a reference for the geometric optimization of dividing manifold systems in terms of resistance reduction.
机译:管道系统中泵动力的能耗逐年增加。通过插入导向叶片(GV)来降低阻力的方法已应用于具有平行管阵列(DMSPPA)的分隔歧管系统。在能量耗散分析的基础上,研究了分流歧管系统中电阻降低的机理和GV的几何参数。四个设计变量(半径(r),延伸长度(h)以及垂直位置尺寸a和水平位置尺寸b)用于描述GV的布置。通过一系列优化过程,提出了DMS-PPA中GV的最优无量纲设计参数。结果表明,由波动涡度控制的范围和强度均显着减小。 GV的导向效果完全可以通过41.45%的电阻降低率(RRR)实现。此外,已经通过不同的入口雷诺数(Re-in),出口管数(n)和歧管规格验证了降低阻力方法的有效性。通常,RRR将随着n的增加而增加,并且当Re-in = 3.5 x 10(5)时,n = 8时,最大RRR值达到49.35%。 Re对节能率(ESR)产生积极影响,而Re-in = 3.5 x 105时,最大值可达到29.75%。本文可以为分流板系统的几何优化提供参考。降低电阻。

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