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Micro-molecular tagging velocimetry of internal gaseous flow

机译:内部气流微分子标记测速

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摘要

Dual-laser micro-molecular tagging velocimetry (mu MTV) for internal gaseous flows on the microscale has been successfully demonstrated. MTV is a non-intrusive optical technique suitable for gaseous flow measurement by using molecules as tracers. In our dual-laser mu MTV technique, seeded NO2 molecules in a flow were tagged by photodissociation, producing NO molecules that can be distinguished from surrounding molecules. The tagged NO molecules were traced and visualized by laser-induced fluorescence. However, the fluorescence was in the deep ultraviolet region, and a reflective objective with a finite conjugate optical system was employed for imaging on the microscale. The seeded and tagged molecules of NO2 and NO are stable in the gas phase at around room temperature and atmospheric pressure. Thus, this technique is free from condensation at the walls and is feasible for measurements of internal gaseous flow on the microscale. To demonstrate the validity of our dual-laser mu MTV technique, the cross-sectional flow velocity profile in a rectangular microchannel and flow velocities in a micronozzle were measured and compared with numerical results.
机译:已经成功地证明了用于内部气体流的双激光微分子标记测速技术(mu MTV)。 MTV是一种非介入式光学技术,适用于通过使用分子作为示踪剂进行气体流量测量。在我们的双激光mu MTV技术中,流中的种子NO2分子通过光解离进行标记,从而产生可以与周围分子区分开的NO分子。通过激光诱导的荧光追踪并可视化标记的NO分子。然而,荧光在深紫外区域,并且使用具有有限共轭光学系统的反射物镜在微尺度上成像。种子和标记的NO2和NO分子在大约室温和大气压下在气相中稳定。因此,该技术在壁上没有凝结,并且对于在微尺度上测量内部气体流量是可行的。为了证明我们的双激光μMTV技术的有效性,测量了矩形微通道中的横截面流速分布和微喷嘴中的流速,并将其与数值结果进行了比较。

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