Structural optimization of the wing box for a hybrid-electric commuter aircraft

IF 1.1 Q4 ENGINEERING, MECHANICAL
C. Nasoulis, P. Tsirikoglou, A. Kalfas
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引用次数: 1

Abstract

Hybrid-electric commuter aircraft segment is playing a significant role in the electrification of air transportation. Towards the achievement of efficient and robust transportation, design and optimization processes are necessary to evaluate the different aircraft components. Within this context, the current work investigates the impact of the positioning of the propulsion system and spars on the structural integrity of a hybrid-electric commuter aircraft. The proposed approach is based on an in-house aircraft sizing tool, along with geometry generation and high-fidelity structural evaluation models. These tools are tailored in an automated computational pipeline, that includes pre-processing, model evaluation and post-processing tasks, able to perform design space exploration and optimization over different loading conditions of a selected mission envelope. This work focuses on the assessment of the impact of the additional non-structural weight e.g., batteries, fuel, and propulsion components, inside the wing box, on the stress, deformation and spanwise thickness distribution of the structure. The effect of spars and propulsion system positioning on the available storage space, maximum stress and displacement is discussed, with the aft spar having the greatest impact. Finally, the structural model is optimized to minimize the mass, resulting in a 29% weight reduction, compared to the initial design.
混合动力电动通勤飞机翼盒结构优化
混合动力电动通勤飞机在航空运输电气化方面发挥着重要作用。为了实现高效和稳健的运输,有必要对不同的飞机部件进行设计和优化。在此背景下,目前的工作调查了推进系统和翼梁的定位对混合动力电动通勤飞机结构完整性的影响。所提出的方法基于内部飞机尺寸确定工具,以及几何图形生成和高保真度结构评估模型。这些工具是在自动化计算管道中定制的,包括预处理、模型评估和后处理任务,能够在选定任务包线的不同载荷条件下执行设计空间探索和优化。这项工作的重点是评估翼盒内额外的非结构重量(如电池、燃料和推进部件)对结构的应力、变形和展向厚度分布的影响。讨论了翼梁和推进系统定位对可用存储空间、最大应力和位移的影响,其中后翼梁的影响最大。最后,对结构模型进行了优化,使质量最小化,与初始设计相比,重量减轻了29%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of the Global Power and Propulsion Society
Journal of the Global Power and Propulsion Society Engineering-Industrial and Manufacturing Engineering
CiteScore
2.10
自引率
0.00%
发文量
21
审稿时长
8 weeks
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