采用拓扑优化和增材制造综合方法进行四旋翼无人飞行器结构设计

Q2 Engineering Designs Pub Date : 2024-06-14 DOI:10.3390/designs8030058
L. Al-Haddad, A. A. Jaber, Wojciech Giernacki, Z. Khan, Khalid Mohsin Ali, Mauwafak Ali Tawafik, A. Humaidi
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引用次数: 0

摘要

四旋翼飞行器机架的性能,尤其是重量和抗撞击性能,受其结构设计和制造工艺的影响很大。本研究提出了一种方法,将拓扑优化(TO)的先进原理与增材制造(AM)技术相结合,优化机架结构以提高性能。首先,对现有的四旋翼飞行器框架结构进行分析评估,确定需要改进的地方。对发动机的推力和力矩进行实验评估,以评估增强型四旋翼飞行器机架的性能,重点是通过计算机辅助模拟静态结构分析和冲击测试来推进设计。然后,在减重和机械强度等约束条件下,采用 TO 技术确定框架内材料的最佳分布。结果表明,所提出的方法显著提高了四旋翼飞行器机架的整体性能,展示了在稳定性、减重和耐撞性方面的进步。优化后的机架设计随后使用 AM 方法进行制造,该方法具有设计灵活、可制造复杂几何形状等优势。这项研究的结果突出了 TO 和 AM 技术之间的协同作用,为四旋翼飞行器的设计和优化领域做出了贡献。随着四旋翼飞行器系统能力和性能的提高,为开发轻质、坚固的四旋翼飞行器框架提供了途径。从这项研究中获得的见解为进一步推进无人飞行器的设计和制造开辟了机会。
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Quadcopter Unmanned Aerial Vehicle Structural Design Using an Integrated Approach of Topology Optimization and Additive Manufacturing
The performance of quadcopter frames, particularly in terms of weight and crash resistance, is significantly influenced by their structural design and manufacturing process. In this work, a methodology is proposed that integrates advanced principles of topology optimization (TO) and additive manufacturing (AM) techniques to optimize the frame structure for improved performance. First, an analysis is conducted to evaluate existing quadcopter frame configurations, identifying areas for improvement. Experimental evaluations of thrust and moment of motors are performed to assess the performance of the enhanced quadcopter frame, with a focus on advancing the design through computer-aided simulations of static structural analysis and impact tests. The TO technique is then employed to determine the optimal distribution of material within the frame, governed by constraints such as weight reduction and mechanical strength. The results demonstrate that the overall performance of a quadcopter frame is significantly improved by the proposed methodology, showcasing advancements in stability, weight reduction, and crashworthiness. The resulting optimized frame design is subsequently manufactured using AM methods, which offer advantages such as design flexibility and the ability to produce complex geometries. The findings of this study contribute to the field of quadcopter design and optimization by highlighting the synergies between TO and AM techniques. An avenue is offered for the development of lightweight and robust quadcopter frames, as the capabilities and performance of quadcopter systems are advanced. The insights gained from this research open up opportunities for further advancements in the design and manufacturing of UAVs.
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来源期刊
Designs
Designs Engineering-Engineering (miscellaneous)
CiteScore
3.90
自引率
0.00%
发文量
0
审稿时长
11 weeks
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