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轻量仿生天花板结构的可持续性评估。

Sustainability assessment of a lightweight biomimetic ceiling structure.

机构信息

Plant Biomechanics Group, Botanic Garden, Faculty of Biology, University of Freiburg, D-79104 Freiburg, Germany. Öko-Institut e.V., Institute for Applied Ecology, D-79017 Freiburg, Germany.

出版信息

Bioinspir Biomim. 2014 Mar;9(1):016013. doi: 10.1088/1748-3182/9/1/016013. Epub 2014 Feb 7.

Abstract

An intensive and continuous debate centres on the question of whether biomimetics has a specific potential to contribute to sustainability. In the context of a case study, the objective of this paper is to contribute to this debate by presenting the first systematic approach to assess the sustainability of a complex biomimetic product. The object of inquiry is a lecture hall's ribbed slab. Based on criteria suggested by the Association of German Engineers (VDI), it has been verified that the slab has been correctly defined as biomimetic. Moreover, a systematic comparative product sustainability assessment has been carefully carried out. For purposes of comparison, estimated static calculations have been performed for conceivable current state-of-the-art lightweight ceiling structures. Alternative options are a hollow article slab and a pre-stressed flat slab. Besides a detailed benefit analysis and a discussion of social effects, their costs have also been compared. A particularly detailed life cycle assessment on the respective environmental impacts has also been performed. Results show that the biomimetic ribbed slab built in the 1960s is able to keep up with the current state-of-the-art lightweight solutions in terms of sustainability. These promising results encourage a systematic search for a broad range of sustainable biomimetic solutions.

摘要

一场激烈而持续的辩论集中在仿生学是否具有特定的可持续发展潜力这一问题上。在案例研究的背景下,本文的目的是通过提出评估复杂仿生产品可持续性的第一个系统方法来为这场辩论做出贡献。研究的对象是一个礼堂的肋形楼板。基于德国工程师协会(VDI)提出的标准,已经验证了该楼板被正确地定义为仿生学。此外,还仔细进行了系统的比较产品可持续性评估。出于比较的目的,对可想象的当前最先进的轻质天花板结构进行了估计的静态计算。替代方案是空心制品板和预应力平板。除了详细的效益分析和社会影响讨论外,还比较了它们的成本。还对各自的环境影响进行了特别详细的生命周期评估。结果表明,20 世纪 60 年代建造的仿生肋形楼板在可持续性方面能够跟上当前最先进的轻质解决方案。这些有希望的结果鼓励系统地寻找广泛的可持续仿生解决方案。

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