Prototyping of digitally manufactured thin glass composite façade panels

Daniel Pfarr, Christian Louter
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Abstract

Abstract

The use of thin glass promises to enable a variety of construction industry pursuits. In addition to the ecological benefits of more efficient use of resources, architects can anticipate new design freedoms with thin glass. Based on the sandwich theory, the flexible thin glass can be combined with a 3D-printed open-cell polymer core to form a very rigid yet lightweight composite element. This paper presents an exploratory attempt on the digital manufacturing of thin glass composite façade panels with an industrial robot. It explains the idea of a digital “file-to-factory”-workflow which includes Computer-Aided Design (CAD), Engineering (CAE) and Manufacturing (CAM). The research shows a parametric design process to enable the seamless integration of digital analytic tools. Furthermore, this process shows the potentials and challenges of the digital manufacturing of a thin glass composite panel. Here, partial production steps executed by an industrial robot arm, such as large-format additive manufacturing, mechanical surface preparation, bonding and assembly process are explained. Finally, a first insight into mechanical properties of the composite panel are experimentally and numerically investigated and evaluated under surface load. The general concept of the digital design and manufacturing workflow as well as the results of the experimental study provide the background for the integration of further form-finding and analysis methods as well as the implementation of extensive mechanical investigations in future research.

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数字化制造薄玻璃复合面板的原型设计
摘要薄玻璃的使用有望实现各种建筑行业的追求。除了更有效地利用资源带来的生态效益外,建筑师还可以利用薄玻璃实现新的设计自由。基于三明治理论,柔性薄玻璃可以与3d打印的开孔聚合物芯结合,形成非常刚性但重量轻的复合元件。本文对利用工业机器人实现薄型玻璃复合材料面板的数字化制造进行了探索性尝试。它解释了数字“文件到工厂”工作流程的概念,包括计算机辅助设计(CAD)、工程(CAE)和制造(CAM)。该研究展示了一个参数化设计过程,以实现数字分析工具的无缝集成。此外,该工艺显示了薄玻璃复合面板数字化制造的潜力和挑战。本文介绍了由工业机械臂执行的部分生产步骤,如大尺寸增材制造、机械表面制备、粘接和装配过程。最后,对复合材料板在表面荷载作用下的力学性能进行了实验和数值研究和评估。数字化设计和制造工作流的一般概念以及实验研究的结果为进一步的形式查找和分析方法的集成以及在未来的研究中进行广泛的力学研究提供了背景。
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