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Experimental and computational analysis of evaporative spray cooling for gas turbine exhaust ejectors.

机译:燃气轮机排气喷射器蒸发喷雾冷却的实验和计算分析。

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摘要

This research studied the effects of evaporative spray cooling on air-air ejector performance. Experimental data was collected for the purpose of validating computational simulations. This was done by modifying an existing air-air ejector to accommodate four spray flow nozzles which were used to atomize cooling water. The only parameter that was varied throughout the study was the mass flow rate of cooling water. One single phase (air) case and four spray flow cases where performed and analyzed. The purpose of the single phase experiment was to have a baseline for the air-air ejector performance and isolate the sources of experimental error contributed by spray flow. Three specialized multiphase flow instruments were designed and fabricated by the author to measure, gas phase temperatures, spray mass flow rates, and mixture total pressures.;Comparison of experimental and computational cases produced mixed results. It was found that the experimental gas temperature instrument performed poorly for the local droplet fluxes encountered during testing. The spray sampling probe showed more promising results with two integrated mass flows agreeing within 6% of computational simulations. The total pressure probe solved the issue of pressure port clogging, but measurements were representative of mixture density which made an inferred velocity calculation difficult. It was found that evaporation of spray flow before the nozzle exit plane caused a reduction in dynamic pressure and a reduction in back pressure.;A full scale simulation was performed to determine the effects of scaling on evaporative spray cooling performance. It was found that for the geometrically similar full scale model, the total droplet surface area and particle residence times scaled up with the model which increased cooling performance.;A computational study was performed using the collected experimental data for inlet continuous phase and spray mass flow as boundary conditions for equivalent simulations. A temperature gradient modified turbulence model was written by the author to better predict the mixing rates found experimentally which was used for the duration of this research. Secondary droplet breakup was modeled by the author using empirical correlations following preliminary simulations recognizing the deficiencies of commercially available breakup models.
机译:这项研究研究了蒸发喷雾冷却对空气-空气喷射器性能的影响。收集实验数据是为了验证计算仿真。这是通过修改现有的空气-空气喷射器来实现的,以容纳四个用于雾化冷却水的喷嘴。在整个研究中唯一变化的参数是冷却水的质量流量。执行并分析了一个单相(空气)情况和四个喷雾流量情况。单相实验的目的是为空气-空气喷射器性能提供一个基准,并隔离由喷雾流造成的实验误差的来源。作者设计和制造了三种专用的多相流仪表,以测量气相温度,喷雾质量流量和混合物总压力。实验和计算实例的比较产生了混合结果。已经发现,对于在测试期间遇到的局部液滴通量,实验气体温度仪器的性能较差。喷雾采样探针显示出了更令人满意的结果,两个积分质量流量在计算模拟的6%之内相符。总压力探头解决了压力端口堵塞的问题,但是测量结果代表了混合物密度,这使得推论速度计算变得困难。发现在喷嘴出口平面之前喷雾流的蒸发引起动压的降低和背压的降低。进行了全面的模拟以确定垢对蒸发喷雾冷却性能的影响。发现对于几何相似的满量程模型,总液滴表面积和颗粒停留时间与该模型成比例,从而提高了冷却性能。;使用收集的入口连续相和喷雾质量流量的实验数据进行了计算研究。作为等效模拟的边界条件。作者编写了温度梯度修正的湍流模型,以更好地预测实验发现的混合速率,该混合速率在本研究期间一直使用。作者在初步模拟之后使用经验相关性对次级液滴的破裂进行了建模,这些初步模拟认识到了商用破裂模型的不足。

著录项

  • 作者

    Begg, Nathon.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 M.A.Sc.
  • 年度 2011
  • 页码 193 p.
  • 总页数 193
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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