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Hybrid Environmental Control System Integrated Modeling Trade Study Analysis for Commercial Aviation

机译:混合环境控制系统商业航空综合建模贸易研究分析

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Current industry trends demonstrate aircraft electrification will be part of future platforms in order to achieve higher levels of efficiency in various vehicle level sub-systems. However, electrification requires a substantial change in aircraft design that is not suitable for re-winged or re-engined applications as some aircraft manufacturers are opting for today. Thermal limits arise as engine cores progressively get smaller and hotter to improve overall engine efficiency, while legacy systems still demand a substantial amount of pneumatic, hydraulic and electric power extraction. The environmental control system (ECS) provides pressurization, ventilation and air conditioning in commercial aircraft, making it the main heat sink for all aircraft loads with exception of the engine fuel thermal management system. To mitigate the architecture thermal limits in an efficient manner, the form in which the ECS integrates with the engine will have to be enhanced as to reduce the overall energy consumed and achieve an energy optimized solution. This study examines a tradeoff analysis of an electric ECS by use of a fully integrated Numerical Propulsion Simulation System (NPSS) model that is capable of studying the interaction between the ECS and the engine cycle deck. It was found that an improved solution lays in a hybrid ECS where it utilizes the correct balance between a traditional pneumatic and a fully electric system. This intermediate architecture offers a substantial improvement in aircraft fuel consumptions due to a reduced amount of waste heat and customer bleed in exchange for partial electrification of the air-conditions pack which is a viable option for re-winged applications.
机译:目前的行业趋势展示了飞机电气化将成为未来平台的一部分,以便在各种车辆水平子系统中实现更高水平的效率。然而,电气化需要在飞机设计中的大量变化,这不适用于重新翼或再发动应用,因为某些飞机制造商今天正在选择。随着发动机核心逐渐变小和更热,以提高整体发动机效率,而传统系统仍需要大量的气动,液压和电力提取。环境控制系统(ECS)提供了商用飞机的加压,通风和空调,使其成为所有飞机负载的主散热器,其中发动机燃料热管理系统除外。为了以有效的方式减轻架构热限制,必须提高ECS与发动机集成的形式,以降低消耗的整体能量和实现能量优化的解决方案。本研究通过使用完全集成的数值推进仿真系统(NPS)模型来研究电气ECS的权衡分析,该模型能够研究ECS与发动机循环甲板之间的相互作用。发现改进的解决方案位于混合EC中,在那里它利用传统气动和全电动系统之间的正确平衡。这种中间架构由于废热量减少和顾客流出而提供了飞机燃料消耗的显着改善,以换取空气条件包的部分电气化,这是用于重翼应用的可行选择。

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