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Integrated analysis of kinematic form active structures for architectural applications: Design of a representative case study

机译:用于建筑应用的运动形式有源结构的综合分析:代表案例研究的设计

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摘要

Today's architecture is characterized by a growing demand for flexibility and adaptability, allowing to adjust to meet the current needs. Both covering spaces for weather protection and improving energy performance of buildings ask for dynamic architectural solutions. The integration of lightweight technical textiles offers great possibilities for these kinematic structures, due to their inherently high flexibility. Unfortunately, until now, there is a lack of in-depth knowledge on the material properties of technical textiles, their structural behaviour during deformation and the use of available design tools. The inability to keep the fabric properly pretensioned in all deployment stages within the structure's limitations, obstructs the use of fabric structures for kinematic applications. In order to make a good design and analysis possible, we investigated the material properties of a standard polyester-PVC fabric and implemented these properties in a simple linear elastic computer model of a case study. Afterwards, we performed a parameter study to derive a set of conceptual design considerations for the kinematic prestressed fabric structure. The specified parameters to verify in the design process are (i) the boundary configuration in which form-finding is conducted (i.e. the reference state), (ii) the prestress levels and ratios, (iii) the control of the deployment and (iv) the used material parameters. The paper discusses how the computed model can serve as a design tool. An exhaustive preliminary study is essential to enhance the overall structural behaviour of the membrane structure in all stages of its transformation, within the application range, keeping the membrane properly tensioned and avoiding excessive stress concentrations. In a next step, a large-scale experimental model is set up, measuring the geometry, reaction forces and strains in the membrane. This model will serve as an experimental validation of the numerically obtained results. (C) 2016 Elsevier Ltd. All rights reserved.
机译:今天的建筑的特点是灵活性和适应性的需求越来越大,允许调整,以满足当前的需要。建筑既涵盖了全天候的保护空间和提高能源性能要求动态架构解决方案。轻量化技术纺织品的整合,由于其固有的高柔性,这些运动机构提供了巨大的可能性。不幸的是,到现在为止,对技术纺织品,变形过程中其结构行为和利用现有的设计工具的材料特性缺乏深入了解。由于无法保持所有部署阶段适当预紧结构的限制范围内的面料,阻碍了运动应用中使用的织物结构。为了使一个良好的设计和分析可能的,我们研究了一个标准的聚酯-PVC织物的材料特性和在一个简单的线性的情况下,研究的弹性计算机模型来实现这些性能。之后,我们进行了研究参数来导出一组概念设计考虑的运动预应力织物结构。指定参数,以在设计过程中验证为(i)的边界配置,其中找形被传导(即,基准状态),(ii)所述的预应力水平和比率,(ⅲ)的部署和(iv的控制)所使用的材料参数。本文讨论了计算模型如何作为设计工具。详尽的初步研究是必要的,以提高该膜结构的整体结构行为在其转化的所有阶段,应用范围内,保持所述膜适当张紧和避免过度的应力集中。在下一步骤中,一个大型实验模型被建立,测量所述膜的几何形状,反作用力和应变。该模型将作为数值获得的结果的实验​​验证。 (c)2016 Elsevier有限公司保留所有权利。

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