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Optimization Formulations for the Design of Low Embodied Energy Structures Made from Reused Elements

机译:优化配方,用于设计的低成本元素

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The building sector is one of the major contributors to material resource consumption, greenhouse gas emission and waste production. Load-bearing systems have a particularly large environmental impact because of their material and energy intensive manufacturing process. This paper aims to address the reduction of building structures environmental impacts through reusing structural elements for multiple service lives. Reuse avoids sourcing raw materials and requires little energy for reprocessing. However, to design a new structure reusing elements available from a stock is a challenging problem of combinatorial nature. This is because the structural system layout is a result of the available elements' mechanical and geometric properties. In this paper, structural optimization formulations are proposed to design truss systems from available stock elements. Minimization of weight, cut-off waste and embodied energy are the objective functions subject to ultimate and serviceability constraints. Case studies focusing on embodied energy minimization are presented for: (1) three roof systems with predefined geometry and topology; (2) a bridge structure whose topology is optimized using the ground structure approach; (3) a geometry optimization to better match the optimal topology from 2 and available stock element lengths. In order to benchmark the energy savings through reuse, the optimal layouts obtained with the proposed methods are compared to weight-optimized solutions made of new material. For these case studies, the methods proposed in this work enable reusing stock elements to design structures embodying up to 71% less energy and hence having a significantly lower environmental impact with respect to structures made of new material.
机译:建筑业是材料资源消耗,温室气体排放和废物生产的主要贡献者之一。由于其材料和能量密集的制造过程,承重系统具有特别大的环境影响。本文旨在解决通过重用多种服务生命的结构元素来解决建筑物环境影响的减少。重用避免采购原材料,需要几乎没有再加工的能量。但是,要设计一种新的结构,可从库存中获得的重用元素是组合性质的一个具有挑战性的问题。这是因为结构系统布局是可用元件的机械和几何属性的结果。本文提出了结构优化制剂,用于设计可用库存元素的桁架系统。最小化重量,截止浪费和体现能量是符合最终和可维护性约束的目标功能。专注于体现能量最小化的案例研究显示:(1)具有预定义几何和拓扑的三个屋顶系统; (2)使用地面结构方法优化其拓扑的桥梁结构; (3)几何优化,以更好地与2和可用的库存元素长度匹配最佳拓扑。为了通过再利用节省节能,用所提出的方法获得的最佳布局与由新材料制成的重量优化的溶液进行比较。对于这些案例研究,本作作品中提出的方法使得将储备元素重用到体现高达71%的能量的设计结构,因此对于由新材料制成的结构具有显着降低的环境影响。

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