Design, modeling, and manufacturing of high strain composites for space deployable structures

Xiaofei Ma, Ning An, Qiang Cong, Jiang-Bo Bai, Minger Wu, Yan Xu, Jinxiong Zhou, Dayu Zhang, Taotao Zhang, Ruiwen Guo, Huanxiao Li, Yizhe Wang, Xiaotao Zhou, Jialong Zhu, Xin Jin, Yuqing Feng, Di Wu, Tian-Wei Liu, Zhongxi Yan, Tong Wu, Haotian Xi, Qilong Jia
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Abstract

The demand for larger and lighter mechanisms for next-generation space missions necessitates using deployable structures. High-strain fiber polymer composites show considerable promise for such applications due to their exceptional strength-to-weight ratio, manufacturing versatility, packaging efficiency, and capacity for self-deployment using stored strain energy. However, a significant challenge in using composite deployable structures for space applications arises from the unavoidable extended stowage periods before they are deployed into their operational configuration in orbit. During the stowage period, the polymers within the composites experience material degradation due to their inherent viscoelastic and/or plastic properties, causing stress relaxation and accumulation of plastic strains, thereby reducing the deployment capability and resulting in issues related to recovery accuracy. This paper aims to give a state-of-the-art review of recent advances in the design, modeling, and manufacturing of high-strain composites for deployable structures in space applications, emphasizing the long-term stowage effects. This review is intended to initiate discussion of future research to enable efficient, robust, and accurate design of composite deployable structures that account for the enduring challenges posed by long-term stowage effects. Xiaofei Ma and colleagues provide a review of high-strain composite materials and their use in deployable space structures. The review contributes a broad overview of the field and discusses important design considerations for high-strain composite structures including manufacturing, viscoelasticity, and material selection.

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用于空间可部署结构的高应变复合材料的设计、建模和制造
下一代太空任务需要更大、更轻的机械装置,因此必须使用可展开结构。高应变纤维聚合物复合材料因其出色的强度重量比、制造通用性、包装效率以及利用存储应变能进行自我部署的能力,在此类应用中大有可为。然而,复合材料可部署结构在太空应用中面临的一个重大挑战是,在将其部署到轨道上的运行配置之前,不可避免地会有一段较长的收放期。在存放期间,复合材料中的聚合物由于其固有的粘弹性和/或塑性特性而发生材料降解,导致应力松弛和塑性应变累积,从而降低了部署能力,并造成与回收精度有关的问题。本文旨在对空间应用中可部署结构的高应变复合材料的设计、建模和制造方面的最新进展进行综述,并强调长期收放效应。该综述旨在启动对未来研究的讨论,以便高效、稳健、准确地设计复合材料可展开结构,应对长期收放效应带来的持久挑战。马晓飞及其同事对高应变复合材料及其在可部署空间结构中的应用进行了综述。该综述对该领域进行了广泛概述,并讨论了高应变复合材料结构的重要设计考虑因素,包括制造、粘弹性和材料选择。
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