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Micro 3D Printing Using a Digital Projector and its Application in the Study of Soft Materials Mechanics

机译:使用数字投影仪的Micro 3D打印及其在软材料力学研究中的应用

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摘要

Buckling is a classical topic in mechanics. While buckling has long been studied as one of the major structural failure modes1, it has recently drawn new attention as a unique mechanism for pattern transformation. Nature is full of such examples where a wealth of exotic patterns are formed through mechanical instability2-5. Inspired by this elegant mechanism, many studies have demonstrated creation and transformation of patterns using soft materials such as elastomers and hydrogels6-11. Swelling gels are of particular interest because they can spontaneously trigger mechanical instability to create various patterns without the need of external force6-10. Recently, we have reported demonstration of full control over buckling pattern of micro-scaled tubular gels using projection micro-stereolithography (PμSL), a three-dimensional (3D) manufacturing technology capable of rapidly converting computer generated 3D models into physical objects at high resolution12,13. Here we present a simple method to build up a simplified PμSL system using a commercially available digital data projector to study swelling-induced buckling instability for controlled pattern transformation.A simple desktop 3D printer is built using an off-the-shelf digital data projector and simple optical components such as a convex lens and a mirror14. Cross-sectional images extracted from a 3D solid model is projected on the photosensitive resin surface in sequence, polymerizing liquid resin into a desired 3D solid structure in a layer-by-layer fashion. Even with this simple configuration and easy process, arbitrary 3D objects can be readily fabricated with sub-100 μm resolution.This desktop 3D printer holds potential in the study of soft material mechanics by offering a great opportunity to explore various 3D geometries. We use this system to fabricate tubular shaped hydrogel structure with different dimensions. Fixed on the bottom to the substrate, the tubular gel develops inhomogeneous stress during swelling, which gives rise to buckling instability. Various wavy patterns appear along the circumference of the tube when the gel structures undergo buckling. Experiment shows that circumferential buckling of desired mode can be created in a controlled manner. Pattern transformation of three-dimensionally structured tubular gels has significant implication not only in mechanics and material science, but also in many other emerging fields such as tunable matamaterials.
机译:屈曲是力学中的经典话题。长期以来,作为主要的结构破坏模式之一,屈曲一直被研究,而屈曲作为一种独特的模式转换机制引起了人们的关注。大自然充满了这样的例子,其中通过机械不稳定性 2-5 形成了许多奇特的图案。受到这种优雅机制的启发,许多研究表明使用弹性体和水凝胶 6-11 之类的柔软材料可以创建和转换图案。膨胀凝胶特别受关注,因为它们可以自发地引发机械不稳定性,从而无需外力 6-10 即可创建各种样式。最近,我们报道了使用投影微立体光刻技术(PμSL)来完全控制微尺度管状凝胶的屈曲模式的演示,该技术是能够以高分辨率将计算机生成的3D模型快速转换为物理对象的三维(3D)制造技术 12,13 。在这里,我们介绍一种使用市售数字数据投影仪来构建简化的PμSL系统的简单方法,以研究膨胀引起的屈曲不稳定性以进行受控图案转换。简单的台式3D打印机是使用现成的数字数据投影仪和简单的光学组件,例如凸透镜和反射镜 14 。从3D实体模型中提取的横截面图像依次投影在光敏树脂表面上,从而将液态树脂逐层聚合为所需的3D实体结构。即使采用这种简单的配置和简单的工艺,也可以很容易地以低于100μm的分辨率制造任意3D对象。这款台式机3D打印机通过提供探索各种3D几何形状的绝好机会,在软材料力学研究中具有潜力。我们使用该系统来制造具有不同尺寸的管状水凝胶结构。固定在底部的管状凝胶在膨胀过程中会产生不均匀的应力,从而导致屈曲不稳定性。当凝胶结构发生屈曲时,沿管的圆周会出现各种波浪形图案。实验表明,可以以受控方式创建所需模式的周向屈曲。三维结构的管状凝胶的图案转换不仅在力学和材料科学中,而且在许多其他新兴领域(例如可调材料)中都具有重要意义。

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