Shape memory polymer lattice structures with programmable thermal recovery time

Jinyu Ji, Kai Zhang, Xiaogang Guo
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Abstract

Shape memory polymer (SMP) lattice structures have garnered considerable attention due to their intrinsic capability for self-recovery and mechanical reconfiguration. The temporal path, encompassing aspects such as recovery time and deployment sequence, of the shape recovery process in SMP lattice structures holds paramount significance across various domains, including but not limited to medical devices and space deployable structures. Nonetheless, the programming of shape recovery time or deployment sequences in SMP lattice structures, particularly in scenarios devoid of external controllers, remains a challenge. In addressing these challenges, this study presents a novel class of SMP structures endowed with customizable thermal recovery times and programmable deployment sequences, leveraging the influence of structural geometry. Notably, the programmable recovery time and serialized deployment behavior of the proposed SMP lattice structure are achieved within a constant temperature environment, obviating the need for external time-varying stimuli. Finite element simulations and experimental validations corroborate that the proposed SMP structures can be programmed to exhibit recovery times spanning from mere seconds to several hundred seconds. Moreover, a three-stage sequential recovery behavior is attained without necessitating prior local configuration programming. Furthermore, exploiting the distinctive sequential reversibility inherent in a constant high-temperature environment, the designed lattice structure showcases the ability to transition to multiple distinct stable configurations by modulating the duration of high-temperature exposure. The proposed recovery time programmable SMP lattice structure thus presents a viable avenue for realizing intricate multistage controllable shape-shifting structures devoid of external control equipment.
具有可编程热恢复时间的形状记忆聚合物晶格结构
形状记忆聚合物(SMP)晶格结构因其固有的自我恢复和机械重构能力而备受关注。SMP 晶格结构形状恢复过程的时间路径(包括恢复时间和部署顺序等方面)在各个领域都具有重要意义,包括但不限于医疗设备和空间可部署结构。然而,SMP 晶格结构中形状恢复时间或部署序列的编程,尤其是在没有外部控制器的情况下,仍然是一项挑战。为应对这些挑战,本研究利用结构几何的影响,提出了一类新型 SMP 结构,该结构具有可定制的热恢复时间和可编程的部署序列。值得注意的是,所提出的 SMP 晶格结构的可编程恢复时间和序列化部署行为是在恒温环境中实现的,无需外部时变刺激。有限元模拟和实验验证证实,拟议的 SMP 结构可通过编程实现从几秒到几百秒不等的恢复时间。此外,无需事先进行局部配置编程,即可实现三阶段顺序恢复行为。此外,利用恒定高温环境中固有的独特顺序可逆性,所设计的晶格结构通过调节高温暴露的持续时间,展示了过渡到多种不同稳定配置的能力。因此,所提出的恢复时间可编程 SMP 晶格结构为在没有外部控制设备的情况下实现复杂的多级可控形变结构提供了一条可行的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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