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Decomposition with thermoeconomic isolation applied to the optimal synthesis/design and operation of an advanced tactical aircraft system

机译:具有热经济隔离的分解功能可用于高级战术飞机系统的最佳合成/设计和操作

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A decomposition methodology based on the concept of "thermoeconomic isolation" and applied to the synthesis/design and operational optimization of an advanced tactical fighter aircraft is the focus of this paper. The total system is composed of six sub-systems of which five participate with degrees of freedom (493) in the optimization. They are the propulsion sub-system (PS), the environmental control sub-system (ECS), the fuel loop subsystem (FLS), the vapor compression and Polyalphaolefin (PAO) loops sub-system (VC/PAOS), and the airframe sub-system (AFS). The sixth subsystem comprises the expendable and permanent payloads as well as the equipment group. For each of the first five, detailed thermodynamic, geometric, physical, and aerodynamic models at both design and off-design were formulated and implemented. The most promising set of aircraft sub-system and system configurations were then determined based on both an energy integration and aerodynamic performance analysis at each stage of the mission (including the transient ones). Conceptual, time, and physical decomposition were subsequently applied to the synthesis/design and operational optimization of these aircraft configurations as well as to the highly dynamic process of heat generation and dissipation internal to the subsystems. The physical decomposition strategy used (i.e. Iterative Local-Global Optimization—ILGO) is the first to successfully closely approach the theoretical condition of "thermoeconomic isolation" when applied to highly complex, highly dynamic non-linear systems. Developed at our Center for Energy Systems research, it has been effectively applied to a number of complex stationary and transportation applications.
机译:本文的重点是基于“热经济隔离”概念的分解方法,并将其应用于先进战术战斗机的综合/设计和运行优化。整个系统由六个子系统组成,其中五个子系统以自由度(493)参与优化。它们是推进子系统(PS),环境控制子系统(ECS),燃料回路子系统(FLS),蒸气压缩和聚α-烯烃(PAO)回路子系统(VC / PAOS)和机身子系统(AFS)。第六个子系统包括消耗性和永久性有效载荷以及设备组。对于前五个中的每个,在设计和非设计阶段都制定并实施了详细的热力学,几何,物理和空气动力学模型。然后,在任务的每个阶段(包括过渡阶段),基于能量集成和空气动力性能分析,确定最有希望的飞机子系统和系统配置。随后,将概念,时间和物理分解应用于这些飞机配置的综合/设计和运营优化,以及子系统内部热量产生和散发的高度动态过程。当应用于高度复杂,高度动态的非线性系统时,所使用的物理分解策略(即迭代局部全局优化,ILGO)是第一个成功接近“热经济隔离”理论条件的方法。它是在我们的能源系统研究中心开发的,已经有效地应用于许多复杂的固定和运输应用。

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