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Environmental assessment of multi-functional building elements constructed with digital fabrication techniques

机译:用数字化制造技术建造的多功能建筑元素的环境评估

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PurposeDigital fabrication is revolutionizing architecture, enabling the construction of complex and multi-functional building elements. Multi-functionality is often achieved through material reduction strategies such as functional or material hybridization. However, these design strategies may increase environmental impacts over the life cycle. The integration of functions may hinder the maintenance and shorten the service life. Moreover, once a building element has reached the end of life, hybrid materials may influence negatively its recycling capacity. Consequently, the aim of this paper is to analyze the influence of multi-functionality in the environmental performance of two digitally fabricated architectural elements: The Sequential Roof and Concrete-Sandstone Composite Slab and to compare them with existing standard elements.MethodsA method based on the life-cycle assessment (LCA) framework is applied for the evaluation of the environmental implications of multi-functionality in digital fabrication. The evaluation consists of the comparison of embodied impacts between a multi-functional building element constructed with digital fabrication techniques and a conventional one, both with the same building functions. Specifically, the method considers the lifetime uncertainty caused by multi-functionality by considering two alternative service life scenarios during the evaluation of the digitally fabricated building element. The study is extended with a sensitivity analysis to evaluate the additional environmental implications during end-of-life processing derived from the use of hybrid materials to achieve multi-functionality in architecture.Results and discussionThe evaluation of two case studies of digitally fabricated architecture indicates that their environmental impacts are very sensitive to the duration of their service life. Considering production and life span phases, multi-functional building elements should have a minimum service life of 30years to bring environmental benefits over conventional construction. Furthermore, the case study of Concrete-Sandstone Composite Slab shows that using hybrid materials to achieve multi-functionality carries important environmental consequences at the end of life, such as the emission of air pollutants during recycling.ConclusionsThe results from the case studies allow the identification of key environmental criteria to consider during the design of digitally fabricated building elements. Multi-functionality provides material efficiency during production, but design adaptability must be a priority to avoid a decrease in their environmental performance. Moreover, the high environmental impacts caused by end-of-life processing should be compensated during design.
机译:用途数字制造正在彻底改变建筑,实现复杂和多功能建筑元素的构建。多功能性通常是通过材料减少策略(例如功能或材料杂交)来实现的。但是,这些设计策略可能会在整个生命周期中增加对环境的影响。功能的集成可能会妨碍维护并缩短使用寿命。此外,一旦建筑材料达到使用寿命,混合材料可能会对其回收能力产生负面影响。因此,本文的目的是分析多功能性对两种数字化建筑元素:顺序屋顶和混凝土-砂岩复合板的环境性能的影响,并将它们与现有的标准元素进行比较。生命周期评估(LCA)框架用于评估数字制造中多功能性对环境的影响。评估包括对用数字制造技术构造的多功能建筑构件与传统的具有相同建筑功能的建筑构件之间的具体影响进行比较。具体地,该方法通过在数字化制造的建筑元件的评估期间考虑两个替代的使用寿命场景来考虑由多功能性引起的寿命不确定性。这项研究还进行了敏感性分析,以评估使用混合材料实现建筑的多功能性所带来的报废处理过程中的其他环境影响。结果与讨论对两个数字化建筑的案例研究的评估表明:它们的环境影响对其使用寿命非常敏感。考虑到生产和寿命阶段,多功能建筑构件的最小使用寿命应为30年,以使环境效益优于传统建筑。此外,以混凝土-砂岩复合板为例的案例研究表明,使用混合材料实现多功能性会在使用寿命终结时带来重要的环境后果,例如回收过程中的空气污染物排放。设计数字化建筑元素时要考虑的关键环境标准。多功能性可在生产过程中提高材料效率,但是必须将设计适应性放在首位,以避免其环境性能下降。此外,在设计过程中应补偿由报废处理引起的高环境影响。

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