评估应用于高速有机蒸汽流的粒子图像测速仪

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL Experiments in Fluids Pub Date : 2024-05-30 DOI:10.1007/s00348-024-03822-z
T. Michelis, A. J. Head, M. Majer, P. Colonna, C. De Servi
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引用次数: 0

摘要

热物理特性与复杂方程相关的流体的可压缩流动与理想气体的高速流动在量上和质上都有不同。非理想可压缩流体动力学(NICFD)关注的就是这些流体流动,它们与许多过程以及动力和推进系统都息息相关。通常情况下,如果流体是有机化合物,并且其蒸汽状态接近汽液临界点,处于高还原温度和压力(甚至超临界)时,就会产生非理想可压缩流体动力学效应。目前在非理想可压缩状态下运行的设备的设计和分析需要经过验证的模拟软件,其特点是不确定性。此外,还需要通过实验来进一步验证相关理论。由于这些气流的压力或温度较高,或两者兼有,因此生成和测量这些气流具有挑战性,因此实验数据十分有限。此外,有机化合物流可能是易燃的,会发生热分解,密封可能需要特殊材料。最近,越来越多的研究致力于使用侵入性和侵入性较小的技术来测量这些流动,这些技术依赖于光学接入和激光。这些高密度蒸汽的透明度和折射特性带来了更多的问题。代尔夫特理工大学航空航天推进与动力实验室的 ORCHID(有机郎肯循环混合集成装置)是一个闭环设备,用于产生硅氧烷 MM 的连续非理想超音速流,测试部分入口处的蒸汽温度为 4\({{text\rm{bar}}} 和 220 °C。在这项工作中,我们首次采用了粒子图像测速仪来获取这种流动中德拉瓦尔喷嘴的速度场。测量到的速度场(最大速度 1.1% 范围内的扩展不确定性)与 CFD 模拟得出的速度场进行了比较。实验数据和模拟数据的对比结果令人满意,从喉部到出口的偏差范围分别为 0.1% 到 10%。这种差异归因于硬件的限制,将在今后的实验中加以克服。利用不受控制但固定的播种密度进行 PIV 测量高速有机蒸汽的可行性已经得到证实,未来的实验活动将针对非理想效应更加明显的流动、其他范例配置以及测量技术的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Assessment of particle image velocimetry applied to high-speed organic vapor flows

Compressible flows of fluids whose thermophysical properties are related by complex equations are quantitatively and can be qualitatively different from high-speed flows of ideal gases. Nonideal compressible fluid dynamics (NICFD) is concerned with these fluid flows, which are relevant in many processes and power and propulsion systems. Typically, NICFD effects occur if the fluid is an organic compound and its vapor state is close to the vapor–liquid critical point, at high-reduced temperature and pressure (even supercritical). Current design and analysis of devices operating in the nonideal compressible regime demand for validated simulation software, characterized in terms of uncertainty. Moreover, experiments are needed to further validate related theory. Experimental data are limited as generating and measuring these flows is challenging given their high pressure or temperature or both. In addition, flows of organic compounds can be flammable, can thermally decompose, and sealing may demand for special materials. Recently, more research has been devoted to the measurement of these flows using both intrusive and less intrusive techniques relying on optical access and lasers. The transparency and refractive properties of these dense vapors pose additional problems. The ORCHID (organic Rankine cycle hybrid integrated device) at the Aerospace Propulsion and Power Laboratory of Delft University of Technology is a closed-loop facility, used to generate a continuous nonideal supersonic flow of siloxane MM with the vapor at 4\({{\textrm{bar}}}\) and 220 °C at the inlet of the test section. Within this work, we have employed particle image velocimetry for the first time to obtain the velocity field in a de Laval nozzle in such flows. Measured velocity fields (expanded uncertainty within 1.1% of the maximum velocity) have been compared with those resulting from a CFD simulation. The comparison between experimental and simulated data is satisfactory, with deviation ranging from 0.1 to 10 % from the throat to the outlet, respectively. This discrepancy is attributed to hardware limitations, which will be overcome in the future experiments. The feasibility of PIV with uncontrolled but fixed seeding density to measure high-speed vapors of organic vapors has been demonstrated, and future experimental campaigns will target flows for which nonideal effects are more pronounced, other paradigmatic configurations, and improvements to the measurement techniques.

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来源期刊
Experiments in Fluids
Experiments in Fluids 工程技术-工程:机械
CiteScore
5.10
自引率
12.50%
发文量
157
审稿时长
3.8 months
期刊介绍: Experiments in Fluids examines the advancement, extension, and improvement of new techniques of flow measurement. The journal also publishes contributions that employ existing experimental techniques to gain an understanding of the underlying flow physics in the areas of turbulence, aerodynamics, hydrodynamics, convective heat transfer, combustion, turbomachinery, multi-phase flows, and chemical, biological and geological flows. In addition, readers will find papers that report on investigations combining experimental and analytical/numerical approaches.
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