一种新型涡扇发动机的设计参数与性能评估

Oliver Sjögren, C. Xisto, T. Grönstedt
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引用次数: 0

摘要

本研究的目的是探索将循环性能模型与最先进的商用飞机发动机(GEnx-1B)的公共数据相匹配的可能性。研究的重点是获得低压系统的技术水平和相关不确定因素的有价值的优劣系数信息。因此,它更具体地针对风扇和低压涡轮效率,风扇面马赫数,核心和旁通流之间的功率分配以及风扇压力比。现有循环性能数据提取自国际民用航空组织(ICAO)提供的发动机排放数据库、欧盟航空安全局(EASA)和美国联邦航空管理局(FAA)的型号证书数据表,以及发动机制造商提供的公开数据。对可用源数据中的不确定性进行估计并随机抽样,以生成模型匹配过程的输入。结果表明,燃油性能可以有一定的置信度。然而,该研究还表明,当仅依靠公开数据时,在预测关键的低压系统性能指标时,预计会存在高度的不确定性。这一结果突出了基于统计的方法作为逆向设计程序的支持工具的重要性。它还提供了对传统热力学匹配程序的局限性的更好理解,以及需要与考虑概念设计,成本和燃料燃烧的方法相补充。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of Design Parameters and Performance for a State-of-the-Art Turbofan
The aim of this study is to explore the possibility of matching a cycle performance model to public data on a state-of-the-art commercial aircraft engine (GEnx-1B). The study is focused on obtaining valuable information on figure of merits for the technology level of the low-pressure system and associated uncertainties. It is therefore directed more specifically towards the fan and low-pressure turbine efficiencies, the Mach number at the fan-face, the distribution of power between the core and the bypass stream as well as the fan pressure ratio. Available cycle performance data have been extracted from the engine emission databank provided by the International Civil Aviation Organization (ICAO), type certificate datasheets from the European Union Aviation Safety Agency (EASA) and the Federal Aviation Administration (FAA), as well as publicly available data from engine manufacturer. Uncertainties in the available source data are estimated and randomly sampled to generate inputs for a model matching procedure. The results show that fuel performance can be estimated with some degree of confidence. However, the study also indicates that a high degree of uncertainty is expected in the prediction of key low-pressure system performance metrics, when relying solely on publicly available data. This outcome highlights the importance of statistic-based methods as a support tool for the inverse design procedures. It also provides a better understanding on the limitations of conventional thermodynamic matching procedures, and the need to complement with methods that take into account conceptual design, cost and fuel burn.
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