首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >Multi-objective Optimization of a Regenerative Rotorcraft Powerplant: Quantification of Fuel Economy and Environmental Impact
【24h】

Multi-objective Optimization of a Regenerative Rotorcraft Powerplant: Quantification of Fuel Economy and Environmental Impact

机译:旋翼飞机回馈动力装置的多目标优化:燃油经济性和环境影响的量化

获取原文

摘要

A computationally efficient and cost effective simulation framework has been proposed to perform a multidisciplinary design and optimization of a conceptual regenerative rotorcraft powerplant configuration at mission level. A generic rotorcraft model, representative of a modern twin-engine light civil rotorcraft has been investigated, operating under a representative passenger air taxi mission. The design space corresponding to the conceptual regenerative engine thermodynamic cycle parameters as well as engine and mission design outputs in terms of low pressure compressor pressure ratio, high pressure compressor pressure ratio, turbine entry temperature, mass flow, heat exchanger effectiveness, engine design point specific fuel consumption, engine weight, mission fuel burn and mission CO_2 and NO_x emissions has been thoroughly investigated through the application of a latin hypercube sampling, design of experiment approach. The interdependencies between the various engine design inputs/outputs are quantified by establishing the corresponding linear correlations between the aforementioned engine inputs/outputs as well as for the corresponding mission output parameters. A multi-objective Particle Swarm Optimizer is employed to derive Pareto front models quantifying the optimum interrelationship between the mission fuel burn and NO_x emissions inventory. The acquired engine cycle design parameters corresponding to the span of the Pareto front suggest that the heat exchanger design effectiveness is the key design parameter representing the interdependency between engine fuel economy and environmental impact. The acquired optimum engine models, obtained from the Pareto front, are subsequently deployed for the design of conceptual rotorcraft engine configurations, targeting improved mission fuel economy, enhanced payload- range capability and overall environmental impact.
机译:已经提出了一种计算有效且具有成本效益的仿真框架,以在任务级别上对概念性可再生旋翼飞机动力装置的配置进行多学科设计和优化。已经研究了代表现代双引擎轻型民用旋翼飞机的通用旋翼飞机模型,该模型在具有代表性的客运空中出租车任务下运行。在低压压缩机压力比,高压压缩机压力比,涡轮机入口温度,质量流量,热交换器效率,特定于发动机设计点的方面,与概念性再生发动机热力循环参数以及发动机和任务设计输出相对应的设计空间燃料消耗,发动机重量,任务燃料燃烧以及任务CO_2和NO_x排放已通过使用拉丁美洲超立方体采样的应用以及实验方法的设计进行了彻底研究。通过建立上述发动机输入/输出之间以及对应的任务输出参数之间的相应线性相关性,可以量化各种发动机设计输入/输出之间的相互依赖性。多目标粒子群优化器用于推导帕累托前沿模型,以量化任务燃油消耗与NO_x排放量清单之间的最佳相互关系。所获得的与帕累托前沿的跨度相对应的发动机循环设计参数表明,热交换器的设计效率是代表发动机燃油经济性与环境影响之间的相互依赖性的关键设计参数。从帕累托(Pareto)前沿获得的最佳发动机模型,随后被用于概念旋翼飞机发动机配置的设计,目标是提高任务燃油经济性,增强有效载荷范围能力和整体环境影响。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号