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An insight into biomimetic 4D printing

机译:洞察生物摩托素4D印刷

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4D printed objects are indexed under additive manufacturing (AM) objects. The 4D printed materials are stimulus-responsive and have shape-changing features. However, the manufacturing of such objects is still a challenging task. For this, the designing space has to be explored in the initial stages, which is lagging so far. This paper encompasses two recent approaches to explore the conceptual design of 4D printed objects in detail: (a) an application-based modeling and simulation approach for phytomimetic structures and (b) a voxel-based modeling and simulation approach. The voxel-based modeling and simulation approach has the enhanced features for the rapid testing (prior to moving into design procedures) of the given distribution of such 4D printed smart materials (SMs) while checking for behaviors, particularly when these intelligent materials are exposed to a stimulus. The voxel-based modeling and simulation approach is further modified using bi-exponential expressions to encode the time-dependent behavior of the bio-inspired 4D printed materials. The shape-changing materials are inspired from biological objects, such as flowers, which are temperature-sensitive or touch-sensitive, and can be 4D printed in such a way that they are encrypted with a decentralized, anisotropic enlargement feature under a restrained alignment of cellulose fibers as in the case of composite hydrogels. Such plant-inspired architectures can change shapes when immersed in water. This paper also outlines a review of the 4D printing of (a) smart photocurable and biocompatible scaffolds with renewable plant oils, which can be a better alternative to traditional polyethylene glycol diacrylate (PEGDA) to support human bone marrow mesenchymal stem cells (hMSCs), and (b) a biomimetic dual shape-changing tube having applications in biomedical engineering as a bioimplant. The future applications would be based on these smart and intelligent materials; thus, it is important to modify the existing voxel-based modeling and simulation approach and discuss efficient printing methods to fabricate such bio-inspired materials.
机译:4D印刷对象在添加剂制造(AM)对象下索引。 4D印刷材料是刺激响应性,具有变形的特征。然而,这些物体的制造仍然是一个具有挑战性的任务。为此,必须在初始阶段探索设计空间,这是迄今为止滞后的初始阶段。本文介绍了最近的两个方法,详细探讨了4D印刷对象的概念设计:(a)基于应用的植物摩擦结构和仿真方法和(b)基于体素的建模和仿真方法。基于体素的建模和仿真方法具有在检查行为的特定分布的快速测试(进入设计过程之前)的增强功能,特别是当这些智能材料暴露于刺激。使用双指数表达式进一步修改基于体素的建模和模拟方法以编码生物启发4D印刷材料的时间依赖性行为。形状改变的材料是从生物物体的启发,例如鲜花,这些物体是温度敏感的或触摸敏感的,并且可以以这样的方式印刷,使得它们在受限制的对准下以分散的,各向异性的扩大特征进行加密。纤维素纤维如复合水凝胶的情况。这种植物启发的架构可以在浸入水中时改变形状。本文还概述了(A)型智能光固化和生物相容性支架的4D印刷与可再生植物油的综述,这可以是传统聚乙二醇二丙烯酸酯(PEGDA)的更好的替代,以支持人骨髓间充质干细胞(HMSC), (b)一种具有在生物医学工程中的应用作为生物酰亚胺的仿生双形变形管。未来的应用程序将基于这些智能和智能材料;因此,重要的是要修改现有的基于体素的建模和仿真方法,并讨论有效的印刷方法来制造这种生物启发材料。

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    《RSC Advances》 |2019年第65期|共18页
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  • 正文语种 eng
  • 中图分类 化学;
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