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Optimization technique for design of automotive air filter housing with improved fluid dynamic performance.

机译:用于汽车空气滤清器壳体设计的优化技术,具有改进的流体动力学性能。

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摘要

Scope and method of study. Automotive air filter housings often are designed with major consideration given to fitting the available space rather than to providing the filter with a well-behaved, uniform flow. The development of a filter housing design technique that determines the housing geometry required to provide a user-specified velocity distribution through the filter was accomplished. Computations were performed for the case of a uniform velocity distribution through the filter. The uniform velocity distribution corresponds to a uniform, constant pressure drop across the filter from the upstream to the downstream side. Computational Fluid Dynamic (CFD) calculations of the viscous laminar flow upstream and downstream of the filter were performed using 2-D Navier-Stokes equations. A computational optimization method was applied to minimize the variation in the pressure drop along the filter by changing the geometry of the upper wall. As the upper wall is moved, the CFD solution for the computations is repeated and the pressure drop variation is re-evaluated. An experimental verification was performed using a model filter housing constructed with the geometry specified by the results of the computational design technique. A Laser Doppler Anemometer (LDA) was used to measure the velocity distribution above the filter.; Findings and conclusions. The optimization results have produced a pressure distribution that is very close to the specified uniform distribution. The measured velocity distributions in this housing were compared with measured velocity distributions for different housing models. The model designed with the computational technique shows a much more uniform flow distribution above the filter than the other housings. The pressure distribution across the filter was measured using a pressure transducer. A filtration model was used with the measured velocity distributions, predicting local efficiency distributions and overall filter efficiencies. The results show that filter resistance and housing geometry can have large effects on the flow field. The filter efficiency is strongly dependent on the flow field. Hence the housing geometry and filter resistance may have significant effects upon filter efficiency for both smaller and larger particles.
机译:研究范围和方法。汽车空气滤清器外壳的设计通常要考虑到适合可用空间,而不是为过滤器提供行为良好的均匀流动。完成了过滤器外壳设计技术的开发,该技术确定了提供用户指定的通过过滤器的速度分布所需的外壳几何形状。对于通过过滤器的均匀速度分布的情况,进行了计算。均匀的速度分布对应于从上游到下游的整个过滤器的均匀,恒定的压降。使用2-D Navier-Stokes方程对过滤器上游和下游的粘性层流进行计算流体力学(CFD)计算。应用了一种计算优化方法,以通过更改上壁的几何形状来最小化沿过滤器的压降变化。当上壁移动时,将重复进行计算的CFD解决方案,并重新评估压降变化。使用模型过滤器壳体进行了实验验证,该模型过滤器壳体的结构由计算设计技术的结果指定。激光多普勒风速仪(LDA)用于测量滤光片上方的速度分布。 发现和结论。优化结果产生的压力分布非常接近指定的均匀分布。将在该壳体中测得的速度分布与不同壳体模型的测得速度分布进行比较。使用计算技术设计的模型显示,与其他壳体相比,过滤器上方的流量分布更加均匀。使用压力传感器测量过滤器上的压力分布。过滤模型用于测得的速度分布,预测局部效率分布和总体过滤效率。结果表明,过滤器阻力和壳体几何形状对流场影响很大。过滤效率在很大程度上取决于流场。因此,无论是大颗粒还是小颗粒,外壳的几何形状和过滤阻力都会对过滤效率产生重大影响。

著录项

  • 作者

    Al-Sarkhi, Abdel Salam M.;

  • 作者单位

    Oklahoma State University.;

  • 授予单位 Oklahoma State University.;
  • 学科 Engineering Mechanical.; Engineering Automotive.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;自动化技术及设备;
  • 关键词

  • 入库时间 2022-08-17 11:48:16

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