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OPTIMIZATION OF A U-BEND FOR MINIMAL PRESSURE LOSS IN INTERNAL COOLING CHANNELS - PART I: NUMERICAL METHOD

机译:优化U形弯对内部冷却通道中的最小压力损失的优化 - 第一部分:数值方法

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This two-parts paper addresses the design of a U-bendfor serpentine internal cooling channels optimized for minimal pressure loss. The total pressure loss for the flow in a U-bend is a critical design parameter as it augments the pressure required at the inlet of the cooling system, resulting in a lower global efficiency. In this first part of the paper the design methodology of the cooling channel is presented. The minimization of the total pressure loss is achieved by means of a numerical optimization method that uses a metamodel assisted differential evolution algorithm in combination with an incompressible Navier-Stokes solver. The profiles of the internal and external side of the bend are parameterized using piece-wise Bezier curves. This allows for a wide variety of shapes, respecting the manufacturability constraints of the design. The pressure loss is computed by the Navier-Stokes solver, which is based on a two-equation turbulence model and is available from the open source software OpenFOAM. The numerical method predicts an improvement of 36% in total pressure drop with respect to a circular U-bend, mainly due to the reduction of the separated flow region along the internal side of the bend. The resulting design is subjected to experimental validation, presented in Part 11 of the paper.
机译:此两部分纸地址最小的压力损失而优化的U形bendfor蛇形内部冷却通道的设计。 U形弯曲中流量的总压力损失是临界设计参数,因为它增强了冷却系统入口处的压力,导致全球效率较低。在本文的该第一部分中的冷却通道的设计方法被呈现。总压力损失的最小化是通过使用辅助组合差分进化算法有不可压缩的Navier-Stokes求解一个元模型数值优化方法来实现。弯曲部的内部和外部侧的配置文件是使用逐段贝塞尔曲线进行参数化。这允许各种各样的形状,尊重设计的可制造性约束。的压力损失由纳维 - 斯托克斯解算器,它是基于一个两方程湍流模型和可从开放源码软件OpenFOAM计算。数值方法预测的36%总压降相对于圆形U形弯曲,这主要是由于分离的流动区域的沿着弯曲部的内部侧的减小的改进。将得到的设计进行实验验证,在纸的11部分呈现。

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