Strategies for connecting whole-building LCA to the low-carbon design process

Kieren H. McCord, Heather E Dillon, Patricia Gunderson, Sadie Carlson, Adam Phillips, Darrin Griechen, Chrissi A. Antonopoulos
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Abstract

Decarbonization is essential to meeting urgent climate goals. With the building sector in the United States accounting for 35% of total U.S. carbon emissions, reducing environmental impacts within the built environment is critical. Whole-building life cycle analysis (WBLCA) quantifies the impacts of a building throughout its life cycle. Despite being a powerful tool, WBLCA is not standard practice in the integrated design process (IDP). When WBLCA is used, it is typically either speculative and based on early design information or conducted only after design completion as an accounting measure, with virtually no opportunity to impact the actual design. This work proposes a workflow for fully incorporating WBLCA into the building design process in an iterative, recursive manner, where design decisions impact the WBLCA, which in turn informs future design decisions. We use the example of a negative-operational carbon modular building seeking negative upfront embodied carbon using bio-based materials for carbon sequestration as a case study for demonstrating the utility of the framework. Key contributions of this work include a framework of computational processes for conducting iterative WBLCA, using a combination of an existing building WBLCA tool (Tally) within the building information modeling (BIM) superstructure (Revit) and a custom script (in R) for materials, life cycle stages, and workflows not available in the WBLCA tool. Additionally, we provide strategies for harmonizing the environmental impacts of novel materials or processes from various life cycle inventory sources with materials or processes in existing building WBLCA tool repositories. These strategies are useful for those involved in building design with an interest in reducing their environmental impact. For example, this framework would be useful for researchers who are conducting WBLCAs on projects that include new or unusual materials and for design teams who want to integrate WBLCA more fully into their design process in order to ensure the building materials are consciously chosen to advance climate goals, while still ensuring best performance by traditional measures.
将整个建筑物的生命周期评估与低碳设计过程联系起来的战略
去碳化对于实现紧迫的气候目标至关重要。美国建筑行业的碳排放量占美国碳排放总量的 35%,因此减少建筑环境对环境的影响至关重要。建筑全生命周期分析(WBLCA)可量化建筑在其整个生命周期内对环境的影响。尽管 WBLCA 是一个强大的工具,但它并不是综合设计流程(IDP)中的标准做法。在使用 WBLCA 时,通常要么是基于早期设计信息的推测,要么是在设计完成后作为一种核算措施进行的,几乎没有机会对实际设计产生影响。这项工作提出了一个工作流程,以迭代递归的方式将 WBLCA 完全纳入建筑设计流程,其中设计决策会影响 WBLCA,而 WBLCA 又会为未来的设计决策提供信息。我们以使用生物基材料进行碳封存的负运行碳模块化建筑为例,说明该框架的实用性。这项工作的主要贡献包括:在建筑信息建模(BIM)上层建筑(Revit)中结合使用现有的建筑 WBLCA 工具(Tally),以及针对材料、生命周期阶段和 WBLCA 工具中不存在的工作流程的定制脚本(R 语言),建立了一个用于进行迭代 WBLCA 的计算流程框架。此外,我们还提供了将来自各种生命周期清单来源的新型材料或工艺的环境影响与现有建筑 WBLCA 工具库中的材料或工艺相协调的策略。这些策略对于有意减少环境影响的建筑设计人员非常有用。例如,研究人员在项目中使用新材料或特殊材料进行 WBLCA 分析时,设计团队希望将 WBLCA 更全面地融入设计过程,以确保有意识地选择建筑材料来推进气候目标的实现,同时还能通过传统措施确保最佳性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.70
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