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Experimental study of dynamic loss mechanisms in transonic turbines

Experimental study of dynamic loss mechanisms in transonic turbines
跨音速涡轮机动态损失机制的实验研究
批准号:
494817-2016
负责人:
Steinberg, Adam
金额:
$4.56万
依托单位:
依托单位国家:
加拿大
项目类别:
Collaborative Research and Development Grants
财政年份:
2017
资助国家:
加拿大
项目状态:
已结题
起止时间:
2017-01-01 至 2018-12-31

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中文摘要
翻译
该项目将使燃气轮机发动机提高效率和减轻重量。这些发动机在航空领域无处不在,也在能源领域占据了越来越大的份额。这两个项目的目标最终都将减少飞行或生产能源所需的燃料,从而减少排放,提高可持续性,降低运营成本。具体而言,该项目侧重于跨音速涡轮效率损失的机制。跨声速涡轮级可以获得比亚音速级更大的提取功,因此可以减少所需的级数并减轻重量,但由于各种流体力学现象,通常效率较低。特别重要的是上游叶片排的周期性尾迹对后续叶片排内部流动的动力学。因此,该项目将明确测量由于尾迹通过而在跨音速涡轮叶片内部发生的损失机制。为此,粒子图像测速(PIV)将应用于大型跨音速线性级联设施,该设施配备了高速移动杆装置。该设施位于通用电气全球研究中心,可以复制真实喷气发动机的条件,但以一种易于处理的方式进行高级测量。多伦多大学的工作人员和学生将在这个设施中进行几项实验活动。该项目涉及几个创新方面。为了能够测量实验中发现的整个动态速度范围,并获得涡轮叶片附近边界层的测量值,将对piv诊断进行大量的开发工作。此外,新的数据挖掘技术将用于明确计算湍流动能的输运,从而确定导致效率损失的区域。
英文摘要
This project will enable gas turbines engines with improved efficiency and reduced weight. These engines areubiquitous in aviation, and also form a large and growing portion of the energy landscape. Both of the projectobjectives will ultimately result in less fuel required to fly or produce energy, and hence reduced emissions,greater sustainability, and lower operating costs.Specifically, this project focuses on mechanisms causing efficiency losses in transonic turbines. Transonicturbine stages can achieve greater work extraction than subsonic stages, and hence can potentially result infewer required stages and reduced weight, but also typically are less efficient due to various fluid mechanicphenomena. Of particular importance is the dynamics of periodic wakes shed from upstream rows of blades onthe flow inside a subsequent blade row. This project therefore will explicitly measure the loss mechanismsoccurring inside transonic turbine blades due to the passage of wakes.To do so, particle image velocimetry (PIV) will be applied in a large transonic linear cascade facility thathas been equipped with a high-speed moving bar apparatus. The facility, located at the GE Global ResearchCenter, can replicate the conditions found in real jet engines, but in a manner that is tractable for advancedmeasurements. Several experimental campaigns will be performed by University of Toronto staff and studentsat this facility.The project involves several innovative aspects. Considerable developmental work will be done on the PIVdiagnostics to enable measurement of the full dynamic velocity range found in the experiments, and to obtainmeasurements in the boundary layers near the turbine blades. Furthermore, new data mining techniques will beemployed to explicitly calculate transport of turbulence kinetic energy, and hence identify regions contributingto efficiency losses.
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Novel Combustion for Aerospace and Power Generation: Multi-Scale Combustion Dynamics
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