Co-Optimization Design for Aircraft Hybrid Power System Considering Pulsed Load Characteristics

IF 8.3 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Transportation Electrification Pub Date : 2024-09-17 DOI:10.1109/TTE.2024.3462474
Zihan Yin;Li Wang;Shanshui Yang;Qian Xun;Bangting Wang
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Abstract

Pulsed power loads (PPLs) present significant challenges for the design of aircraft power systems. A hybrid power system (HPS) comprising batteries (BATs) and supercapacitors (SCs), integrated with the existing generators (GENs), shows promise as a solution. However, optimizing the proportions of different energy storages is critical for minimizing system weight and maximizing efficiency. To address this challenge, this study proposes a serial-nested co-optimization design method. This approach optimizes energy types, component capacities, and voltage levels, as well as power allocations considering PPL characteristics. To achieve this end, relationships between PPL parameters and energy configuration are established by analyzing the spectrum characteristics of PPL. These nonlinear relationships provide a universal configuration criterion, represented by a response surface calculated via design of experiment (DoE) data. To strike a balance between system weight and efficiency, multidisciplinary design models for each component are developed. A multilevel optimization design method is proposed, enabling simultaneous system-level and component-level co-design. Extensive simulations validate the effectiveness of the proposed co-optimization approach. Optimization results of four power distribution strategies across two architectures are compared to obtain optimal HPS solutions that meet requirements of an aircraft load profile.
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考虑脉冲负载特性的飞机混合动力系统协同优化设计
脉冲功率负载对飞机动力系统的设计提出了重大挑战。一种由电池(bat)和超级电容器(SCs)组成的混合动力系统(HPS)与现有的发电机(gen)相结合,有望成为一种解决方案。然而,优化不同储能的比例对于最小化系统重量和最大化效率至关重要。为了解决这一挑战,本研究提出了一种串行嵌套协同优化设计方法。这种方法优化了能量类型、组件容量和电压水平,以及考虑PPL特性的功率分配。为此,通过分析PPL的频谱特性,建立了PPL参数与能量配置之间的关系。这些非线性关系提供了一个通用的配置准则,用实验数据设计计算的响应面来表示。为了在系统重量和效率之间取得平衡,为每个组件开发了多学科设计模型。提出了一种多级优化设计方法,实现了系统级和部件级协同设计。大量的仿真验证了所提出的协同优化方法的有效性。通过对两种架构下的四种功率分配策略的优化结果进行比较,得出满足飞机负载剖面要求的最佳HPS解决方案。
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来源期刊
IEEE Transactions on Transportation Electrification
IEEE Transactions on Transportation Electrification Engineering-Electrical and Electronic Engineering
CiteScore
12.20
自引率
15.70%
发文量
449
期刊介绍: IEEE Transactions on Transportation Electrification is focused on components, sub-systems, systems, standards, and grid interface technologies related to power and energy conversion, propulsion, and actuation for all types of electrified vehicles including on-road, off-road, off-highway, and rail vehicles, airplanes, and ships.
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