3D printed modular Bouligand dissipative structures with adjustable mechanical properties for gradient energy absorbing

Junfeng Xiao, Mengxing Zhang, Fei Zhai, Hongrui Wei, Sen Liu, Peng Wang, Zhiyang Liu, Zhongying Ji, Xiaolong Wang
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Abstract

3D printing enables the creation of intricate, layered structures with specific micro and macro architectures that cannot be achieved through traditional methods. By designing 3D structures with geometric precision, selective regulation of mechanical properties can be achieved, allowing for efficient dissipation of mechanical energy. In this study, a series of modular samples inspired by Bouligand structure were designed and produced through a direct ink writing system along with a classical printable polydimethylsiloxane (PDMS) ink. By changing the angles of filaments in adjacent layers of these modular samples (from 30° to 90°) and the filament spacing during printing (from 0.8 mm to 2.4 mm), they show adjustable mechanical properties. Compression mechanical testing revealed that the 3D printed modular Bouligand structures exhibit stress-strain responses that enable multiple regulation of elasticity modulus from 0.06 Mpa to over 0.8 Mpa. The mechanical properties were regulated over 10 times in printed samples prepared using homogeneous materials. The gradient control mechanism of mechanical properties during this process was analyzed using finite element analysis. Lastly, 3D printed customized modular Bouligand structures can be assembled to compose an array with Bouligand structures show different orientations and interlayer details according to specific needs. Begin with decomposing the original Bouligand structure to achieving modular 3D printing, and then assembling the modular samples into a special Bouligand structures array, this research will providing parameters for achieving gradient energy absorption structures.
具有可调机械特性的 3D 打印模块化布利甘消散结构,用于梯度能量吸收
通过三维打印技术,可以制造出具有特定微观和宏观结构的复杂分层结构,这是传统方法无法实现的。通过设计具有几何精度的三维结构,可以实现对机械性能的选择性调节,从而有效地耗散机械能。在这项研究中,受 Bouligand 结构启发,设计了一系列模块化样品,并通过直接墨水书写系统和经典的可打印聚二甲基硅氧烷(PDMS)墨水进行生产。在打印过程中,通过改变这些模块化样品相邻层的长丝角度(从 30° 到 90°)和长丝间距(从 0.8 毫米到 2.4 毫米),它们显示出了可调节的机械性能。压缩机械测试表明,3D 打印的模块化 Bouligand 结构表现出应力-应变响应,可实现从 0.06 兆帕到超过 0.8 兆帕的弹性模量的多重调节。在使用均质材料制备的打印样品中,机械性能的调节幅度超过 10 倍。在此过程中,使用有限元分析法对机械性能的梯度控制机制进行了分析。最后,三维打印的定制模块化布里甘德结构可以根据特定需求组装成布里甘德结构阵列,并显示出不同的方向和层间细节。从分解原始 Bouligand 结构到实现模块化 3D 打印,再将模块化样品组装成特殊的 Bouligand 结构阵列,这项研究将为实现梯度能量吸收结构提供参数。
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