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FLOW FIELD CHARACTERIZATION AT THE OUTLET OF A LEAN BURN SINGLE SECTOR COMBUSTOR BY LASER-OPTICAL METHODS

机译:激光光学方法稀薄燃烧单扇区燃烧器出口处的流场表征

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High OPR engine cycles for reduced NO_x emissions will generate new aggravated requirements and boundary conditions by implementing low emission combustion technologies into advanced engine architectures. Lean burn combustion systems will have a significant impact on the temperature and velocity traverse at the combustor exit. Lean burn fuel injectors dominate the combustor exit conditions. This is due to the fact that they pass a majority of the total combustor flow, and to the lack of mixing jets like in a conventional combustor. With the transition to high pressure engines it is essential to fully understand and determine the high energetic interface between combustor and turbine to avoid excessive cooling, which has a detrimental impact on turbine and overall engine efficiency. Velocity distributions and their fluctuations at the combustor exit for lean burn are of special interest as they can influence the efficiency and capacity of the turbine. Within the EU project LEMCOTEC, a lean burn single sector combustor was designed and built at DLR, providing optical access to its rectangular exit section. The sector was operated with a fuel staged lean burn injector from Rolls-Royce Deutschland. Measurements were performed under various operating conditions, covering idle and cruise operation. Two techniques were used to perform velocity measurements at the combustor exit in the demanding environment of highly luminous flames under elevated pressures: Particle Image Velocimetry (PIV) and Filtered Rayleigh Scattering (FRS). The latter was used for the first time in an aero-engine combustor environment. In addition to a conventional signal detection arrangement, FRS was also applied with an endoscope for signal collection, to assess its practicality for a potential future application in a full annular combustor with restricted optical access. Both measurement techniques are complementary in several respects, which justified their respective application and comparative assessment. PIV is able to record instantaneous velocity distributions and is therefore capable to deliver higher velocity moments, in addition to temporal averages. Applied in two orthogonal traversable light sheet arrangements, it could be used to map all three velocity components across the entire combustor cross section, and obtain data on velocity variances, cross-correlations and turbulence intensities. FRS is limited to measurements of average velocities, as long sampling times are required due to the weak physical process of Rayleigh scattering. However, FRS has two advantages: It requires no particle seeding, because it is based on the measurement of a molecular Doppler shift, and it can provide temperature information simultaneously. This contribution complements a second paper (GT2016-56370) focusing on the measurement of temperature distributions at the same combustor exit section by laser-based optical methods.
机译:对于降低的NO_X排放的高opr发动机循环将通过在高级发动机架构中实施低排放燃烧技术来产生新的加重需求和边界条件。稀燃燃烧系统对燃烧器出口的温度和速度产生显着影响。瘦燃烧燃料喷射器主导燃烧器出口条件。这是由于它们通过了大部分总燃烧器流动,并且在传统的燃烧器中缺乏混合喷气机。随着到高压发动机的过渡,必须完全理解和确定燃烧器和涡轮机之间的高能界面,以避免过度冷却,这对涡轮机和整体发动机效率产生了不利影响。速度分布及其在燃烧器出口的波动因其可能影响涡轮机的效率和容量而具有特殊兴趣。在欧盟项目LEMCOTEC中,设计并在DLR中设计并构建了一个瘦燃烧单个扇形燃烧器,提供了对其矩形出口部分的光学访问。该部门用来自劳斯莱斯德特克兰的燃料分阶段瘦燃烧器进行运营。在各种操作条件下进行测量,覆盖怠速和巡航操作。使用两种技术在升高的压力下在高发光火焰的苛刻环境中对燃烧器出口进行速度测量:粒子图像速度(PIV)并过滤瑞利散射(FRS)。后者在航空发动机燃烧器环境中首次使用。除了传统的信号检测装置之外,还使用用于信号收集的内窥镜进行FRS,以评估其在具有限制光学接入的全环燃烧器中的未来应用的实用性。两个测量技术在几个方面都是互补的,其对其各自的应用和比较评估有理由。除了时间平均值之外,PIV能够记录瞬时速度分布,因此能够提供更高的速度时刻。应用在两个正交的可遍历的灯纸布置中,它可用于在整个燃烧器横截面上映射所有三个速度分量,并在速度方差,交叉相关和湍流强度上获得数据。 FRS仅限于平均速度的测量值,因为由于瑞利散射的弱物理过程,因此需要长时间采样时间。然而,FRS有两个优点:它不需要颗粒播种,因为它基于分子多普勒偏移的测量,并且它可以同时提供温度信息。该贡献补充了通过基于激光的光学方法在相同的燃烧器出口部分处的温度分布测量的第二纸(GT2016-56370)。

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