执行机构
工作(物理)
计算机科学
能源消耗
刚度
机制(生物学)
能量(信号处理)
控制理论(社会学)
变形
高效能源利用
控制工程
机械工程
工程类
控制(管理)
电气工程
统计
数学
计算机视觉
认识论
哲学
人工智能
结构工程
作者
Alexander D. Shaw,Jiaying Zhang,Chen Wang,Benjamin Woods,Michael I. Friswell
摘要
View Video Presentation: https://doi.org/10.2514/6.2022-0172.vid A common issue with morphing structures is that the actuators must work against significant structural and aerodynamic stiffness. The concept of Passive Energy Balancing (PEB) aims to ameliorate this, and thereby reduce system mass, by connecting negative stiffness elements to the actuated degrees of freedom. However, these devices can be complex to design and will also add their own mass to the system. It is therefore difficult to determine the potential for system level mass saving without significant detailed design effort. This work treats a PEB device as essentially a local energy storage mechanism. This framework leads to an approach to optimisation that will deliver a lightweight PEB mechanism in addition to reducing actuator requirements. It also allows a high level method to obtain an approximate evaluation of system level benefits with only basic information about the application being considered, by comparing general properties of the actuators used to the energy storage properties of the underlying materials used in the PEB device. The work concludes with a case study that shows how the PEB can potentially reduce system mass both through reduced energy consumption requirements and actuator mass savings, and can work particularly well for actuators with non ideal stroke/force profiles.
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