Structural lightweight design and experimental validation for aerospace sealed cabin

IF 2 Q2 ENGINEERING, MECHANICAL Frontiers in Mechanical Engineering Pub Date : 2023-09-08 DOI:10.3389/fmech.2023.1265734
Zhizhong Cheng, Hongqing Li, Zengcong Li, Chen Yan, Chang Jie, Xiaoqi Li
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Abstract

Due to the high specific stiffness, high specific strength, good fatigue resistance and high structural reliability, the integrally stiffened shells are widely applied in the sealed cabins. In order to enhance the detection distance of the deep space and improve the payload detection capability, it is of great significance to carry out lightweight design for the integrally stiffened shells. However, it is challenging to perform optimization for the structures due to the strict loading conditions, complicated structures and short development cycles. In this work, a novel layout design framework for the integrally stiffened shells under complex loading conditions is proposed. The topology optimization method is employed to obtain an innovative layout design of the integrally stiffened shells firstly, and then the mesh-mapping technique is utilized to assist the reconstruction and modeling process of the optimization result. Compared with the traditional design of orthogonal stiffeners, the weight of the optimized configuration of the integrally stiffened shell reduces by 17.1%, demonstrating excellent lightweight design effects. Moreover, a sealed cabin is constructed based on the optimization and numerical analysis result by taking the manufacturing requirement into consideration. With the purpose of assessing the bearing ability of the welded seam and evaluating the airtight performance of the sealed cabin, experimental validations of the hydrostatic test and airtight test are carried out, and the experimental results validate the applicability and effectiveness of the proposed framework.
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航空密封舱结构轻量化设计及试验验证
整体加筋壳体由于具有高比刚度、高比强度、良好的抗疲劳性能和较高的结构可靠性,在密封舱室中得到了广泛的应用。为了提高深空探测距离,提高载荷探测能力,对整体加筋弹壳进行轻量化设计具有重要意义。然而,由于载荷条件严格、结构复杂、开发周期短,对结构进行优化具有一定的挑战性。本文提出了一种适用于复杂荷载条件下整体加筋壳的新型布置设计框架。首先采用拓扑优化方法获得整体加筋壳的创新布局设计,然后利用网格映射技术辅助优化结果的重建和建模过程。与传统的正交加筋设计相比,优化后整体加筋壳体的重量减轻了17.1%,具有良好的轻量化设计效果。根据优化结果和数值分析结果,结合制造要求,构建了密封舱室。为了评估焊缝的承载能力和评价密封舱的气密性能,进行了静压试验和气密试验的实验验证,实验结果验证了所提出框架的适用性和有效性。
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来源期刊
Frontiers in Mechanical Engineering
Frontiers in Mechanical Engineering Engineering-Industrial and Manufacturing Engineering
CiteScore
4.40
自引率
0.00%
发文量
115
审稿时长
14 weeks
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