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Design optimization of aircraft landing gear assembly under dynamic loading

机译:动态载荷下飞机着陆齿轮组件的设计优化

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Aircraft landing gear assemblies comprise of various subsystems working in unison to enable functionalities such as taxiing, take-off and landing. As development cycles and prototyping iterations begin to shorten, it is important to develop and improve practical methodologies to meet certain design metrics. This paper presents an efficient methodology that applies high-fidelity multi-disciplinary design optimization techniques to commercial landing gear assemblies, for weight, cost, and structural performance by considering both structural and dynamic behaviours. First, a simplified landing gear assembly model was created to complement with an accurate slave link subassembly, generated based of drawings supplied from the industrial partner, Safran Landing Systems. Second, a Multi-Body Dynamic (MBD) analysis was performed using realistic input motion signals to replicate the dynamic behaviour of the physical system. The third stage involved performing topology optimization with results from the MBD analysis; this can be achieved through the utilization of the Equivalent Static Load Method (ESLM). Lastly, topology results were generated and design interpretation was performed to generate two designs of different approaches. The first design involved trying to closely match the topology results and resulted in a design with an overall weight savings of 67%, peak stress increase of 74%, and no apparent cost savings due to complex features. The second design focused on manufacturability and achieved overall weight saving of 36%, peak stress increase of 6%, and an estimated 60% in cost savings.
机译:飞机着陆齿轮组件包括各种子系统,该子系统一致地工作,以实现乘以乘以的功能,起飞和着陆。随着开发周期和原型设计迭代开始缩短,重要的是开发和改进符合某些设计指标的实用方法。本文提出了一种高效的方法,将高保真多学科设计优化技术应用于商业着陆齿轮组件,以重量,成本和结构性能,通过考虑结构和动态行为。首先,创建简化的着陆齿轮组装模型以补充精确的从属链接子组件,基于工业伙伴,Safran着陆系统提供的附图。其次,使用现实输入运动信号进行多体动态(MBD)分析以复制物理系统的动态行为。第三阶段涉及使用MBD分析的结果进行拓扑优化;这可以通过利用等效静态载荷方法(ESLM)来实现。最后,生成了拓扑结果,并进行了设计解释,以产生两种不同方法的设计。第一个设计涉及试图与拓扑结果密切匹配并导致整体重量节省67%,峰值压力增加74%,并且由于复杂的特征而没有明显的成本节约。第二种设计侧重于可制造性,实现总重量节省36%,峰值应力增加6%,估计节省60%。

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