可重构扇形混凝土壳楼板系统的设计与原型制作

Mishael Nuh, Robin Oval, John Orr
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引用次数: 0

摘要

建筑上层建筑对环境影响的很大一部分在于其结构地板。通过利用索道形式,如薄混凝土壳,可以实现材料和碳效率替代弯曲主动地板系统。此外,通过分段和使用干接缝接口,分段混凝土外壳可以轻松拆卸,符合建筑环境的循环经济原则。本文提出了一种新型的分段混凝土壳地板系统,该系统利用了经典扇形拱顶形式的旋转对称性,通过增加可重构性来促进未来设计的灵活性。通过演化算法和有限元分析,详细介绍了扇形混凝土壳的设计和寻形。四分之一比例的原型是使用机器人混凝土喷涂过程进行数字制造的,然后进行组装和测试,以评估其结构潜力,评估局限性,并确定未来工作的领域。隐含碳分析表明,与传统地板系统相比,该系统提供了质量和隐含碳节约,同时比类似的不可重构分段壳地板系统增加了大约20%的隐含碳溢价。换句话说,如果通过重新配置使设计灵活性增加至少20%的系统寿命,则提议的系统提供了积极的隐含碳节约。通过这项工作,研究表明,分段风扇混凝土外壳呈现出一种可行的轻质碳高效地板系统,它有可能成为一种可持续的替代方案,可以拆卸、重复使用,甚至可重新配置,为循环建筑提供进一步的研究和开发,以解决其目前在工业实践中采用的局限性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing and prototyping of a reconfigurable segmented fan concrete shell as a flooring system

A significant portion of the environmental impact of a building’s superstructure lies in its structural flooring. By leveraging funicular forms such as thin concrete shells, a materially and carbon-efficient alternative to bending-active flooring systems can be attained. In addition, through segmentation and the use of dry jointed interfaces, a segmented concrete shell allows for ease of disassembly compatible with circular economy principles for the built environment. This paper presents a novel segmented concrete shell flooring system that leverages the symmetry of revolution of the classical fan vault form to facilitate future design flexibility through increased reconfigurability. The design and form-finding of the segmented fan concrete shell are detailed through the use of an evolutionary algorithm and finite element analysis. Quarter-scale prototypes were digitally fabricated using a robotic concrete spraying process which were then assembled and tested to assess its structural potential, evaluate the limitations, and identify areas of future work. An embodied carbon analysis demonstrates that the system provides a mass and embodied carbon saving compared to conventional flooring systems while adding approximately a 20% embodied carbon premium over a comparable non-reconfigurable segmented shell flooring system. Rephrased, the proposed system provides a positive embodied carbon saving if enabling design flexibility through reconfiguration increases the life-span of the system by at least 20%. Through this work, it is shown that a segmented fan concrete shell presents a viable lightweight and carbon-efficient flooring system which has the potential to become a sustainable alternative that enables disassembly, reuse, and even reconfigurability for circular construction provided further research and development to address its current limitations for adoption in industry practices.

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