首页> 外文会议>ASME Heat Transfer Conference >A NUMERICAL INVESTIGATION INTO THE HEAT TRANSFER PERFORMANCE AND PARTICLE DYNAMICS OF A COMPRESSIBLE, HIGHLY MASS LOADED, HIGH REYNOLDS NUMBER, PARTICLE LADEN FLOW
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A NUMERICAL INVESTIGATION INTO THE HEAT TRANSFER PERFORMANCE AND PARTICLE DYNAMICS OF A COMPRESSIBLE, HIGHLY MASS LOADED, HIGH REYNOLDS NUMBER, PARTICLE LADEN FLOW

机译:压缩性能和粒子动力学的数值调查,高度批量负载,高雷诺数,粒子载流

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In this work, we study the heat transfer performance and particle dynamics of a highly mass loaded, compressible, particle-laden flow in a horizontally-oriented pipe using an Eulerian-Eulerian (two-fluid) computational model An attendant experimental configuration [1] provides the basis for the study. Specifically, a 17 bar co-flow of nitrogen gas and copper powder are modeled with inlet Reynolds numbers of 3x10~4, 4.5x10~4, and 6x10~4 and mass loadings of 0, 0.5, and 1.0. Eight binned particle sizes were modeled to represent the known powder properties. Significant settling of all particle groups are observed leading to asymmetric temperature distributions. Wall and core flow temperature distributions are observed to agree well with measurements. In high Reynolds number cases, the predictions of the multiphase computational model were satisfactorily aligned with the experimental results. Low Reynolds number model predictions were not as consistent with the experimental measurements.
机译:在这项工作中,我们使用欧拉 - 欧洲(两种流体)计算模型进行了欧拉 - 欧洲(两种流体)计算模型,研究了高度批量负载,可压缩的,可压缩的粒子流量的传热性能和粒子动力学,伴随的实验配置[1] 提供研究的基础。 具体地,氮气和铜粉的17巴副流流量与3×10〜4,4.5×10〜4和6×10〜4的入口雷诺数进行建模,并为0,0.5和1.0的质量载荷。 建模八个箱粒子尺寸以表示已知的粉末性能。 观察到所有颗粒基团的显着沉降,导致不对称温度分布。 观察到墙壁和核心流动温度分布,符合测量良好。 在高雷诺数案例中,多相计算模型的预测与实验结果令人满意地对准。 低雷诺数模型预测不像实验测量一样一致。

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