首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels; 20070618-20; Puebla(MX) >ESTIMATING ROUGHNESS PARAMETERS RESULTING FROM VARIOUS MACHINING TECHNIQUES FOR FLUID FLOW APPLICATIONS
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ESTIMATING ROUGHNESS PARAMETERS RESULTING FROM VARIOUS MACHINING TECHNIQUES FOR FLUID FLOW APPLICATIONS

机译:估算流体加工中各种加工技术产生的粗糙度参数

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Recently, a set of new roughness parameters was proposed by Kandlikar et al. and Taylor et al.for reporting surface roughness as related to fluid flow. The average roughness Ra parameter is often used in microfluidic applications, but this parameter alone is insufficient for describing surface roughness; a specimen with deep grooves and sharp obstructions can share the same average roughness value as a relatively smooth surface with low uniform surface roughness. Since the average roughness parameter is broad, it is difficult to access the surface topography features that result from different machining processes or etches. A profilometer and a digital microscope are used to examine the surface roughness profiles of various materials submitted to different machining techniques. The materials studied will be similar to those used for microchannels including aluminum, stainless steel, copper, and silicon. Depending on the material, these samples are submitted to several machining processes including milling, grinding, fly cutting, and microfabrication techniques. These machining processes and microfabrication techniques are of practical interest in microfluidics applications. After studying the surface roughness patterns exhibited in these samples, the roughness parameters employed in some of the recent roughness models are evaluated. This study is expected to provide more understanding of assorted surface roughness.
机译:最近,Kandlikar等人提出了一组新的粗糙度参数。 Taylor等人报道了与流体流动有关的表面粗糙度。平均粗糙度Ra参数通常用于微流体应用中,但仅此参数不足以描述表面粗糙度。具有深沟槽和尖锐障碍物的样品可以与具有较低均匀表面粗糙度的相对光滑表面共享相同的平均粗糙度值。由于平均粗糙度参数很宽,因此很难访问由不同的加工过程或蚀刻产生的表面形貌特征。轮廓仪和数字显微镜用于检查提交给不同加工技术的各种材料的表面粗糙度轮廓。研究的材料将类似于用于微通道的材料,包括铝,不锈钢,铜和硅。根据材料的不同,这些样品将经过多种加工过程,包括铣削,磨削,飞刀切割和微细加工技术。这些加工过程和微加工技术在微流体应用中具有实际意义。在研究了这些样品中显示的表面粗糙度图案后,对一些最近的粗糙度模型中使用的粗糙度参数进行了评估。预期该研究将提供对各种表面粗糙度的更多理解。

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