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Evaluation of control methods for thermal roll forming of aerospace composite materials

机译:航空复合材料热轧成形控制方法的评价

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摘要

With increased demand for composite materials in the aerospace sector there is a requirement for the development of manufacturing processes that enable larger and more complex geometries, whilst ensuring that the functionality and specific properties of the component are maintained. To achieve this, methods such as thermal roll forming are being considered. This method is relatively new to composite forming in the aerospace field, and as such there are currently issues with the formation of part defects during manufacture. Previous work has shown that precise control of the force applied to the composite surface during forming has the potential to prevent the formation of wrinkle defects. In this paper the development of various control strategies that can robustly adapt to different complex geometries are presented and compared within simulated and small scale experimental environments, on varying surface profiles. Results have found that traditional PID control can be utilized, although its robustness under varying conditions reduces performance in situations that are far from the tuned scenario. This causes the PID controller to struggle with geometries containing surfaces with high frequency surface variations. To enable more robust control an H∞ based controller was therefore developed for the thermal roll forming process. Simulated results show that while the individual implementation of both controllers were successful in achieving the desired response, the H∞ based controller was able to perform better across a wider range of desired surface profiles.
机译:随着航空航天领域对复合材料的需求增加,需要开发制造工艺以实现更大,更复杂的几何形状,同时确保保持组件的功能性和特殊性能。为了实现这一点,正在考虑诸如热辊成型的方法。该方法对于航空航天领域中的复合成形是相对较新的,因此,目前在制造过程中存在零件缺陷的形成问题。先前的工作表明,在成型过程中精确控制施加到复合材料表面的力有可能防止皱纹缺陷的形成。在本文中,提出了可以牢固地适应不同复杂几何形状的各种控制策略的开发,并在模拟和小规模实验环境中的不同表面轮廓上进行了比较。结果发现,可以使用传统的PID控制,尽管它在变化的条件下的鲁棒性会降低在远离已调整场景的情况下的性能。这使PID控制器难以处理包含具有高频表面变化的表面的几何形状。为了实现更强大的控制,因此针对热轧成型工艺开发了基于H∞的控制器。仿真结果表明,虽然两个控制器的单独实现均成功实现了所需的响应,但基于H∞的控制器却能够在更宽范围的所需表面轮廓上表现更好。

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