School of Engineering, University of Santiago de Compostela, E-15782 Santiago de Compostela, Spain.
J Hazard Mater. 2011 Sep 15;192(3):1705-19. doi: 10.1016/j.jhazmat.2011.07.003. Epub 2011 Jul 8.
Life cycle thinking (LCT) is one of the philosophies that has recently appeared in the context of the sustainable development. Some of the already existing tools and methods, as well as some of the recently emerged ones, which seek to understand, interpret and design the life of a product, can be included into the scope of the LCT philosophy. That is the case of the material and energy flow analysis (MEFA), a tool derived from the industrial metabolism definition. This paper proposes a methodology combining MEFA with another technique derived from sustainable development which also fits the LCT philosophy, the BAT (best available techniques) analysis. This methodology, applied to an industrial process, seeks to identify the so-called improvable flows by MEFA, so that the appropriate candidate BAT can be selected by BAT analysis. Material and energy inputs, outputs and internal flows are quantified, and sustainable solutions are provided on the basis of industrial metabolism. The methodology has been applied to an exemplary roof tile manufacture plant for validation. 14 Improvable flows have been identified and 7 candidate BAT have been proposed aiming to reduce these flows. The proposed methodology provides a way to detect improvable material or energy flows in a process and selects the most sustainable options to enhance them. Solutions are proposed for the detected improvable flows, taking into account their effectiveness on improving such flows.
生命周期思维(LCT)是可持续发展背景下最近出现的哲学之一。一些已经存在的工具和方法,以及一些最近出现的方法,旨在理解、解释和设计产品的生命周期,可以被纳入 LCT 哲学的范围。这就是物质和能量流分析(MEFA)的情况,它是一种源自工业代谢定义的工具。本文提出了一种将 MEFA 与另一种同样符合 LCT 哲学的源自可持续发展的技术——最佳可行技术(BAT)分析相结合的方法。该方法应用于工业过程,旨在通过 MEFA 识别所谓的可改进流,以便通过 BAT 分析选择合适的候选 BAT。对物质和能量的输入、输出和内部流进行了量化,并基于工业代谢提供了可持续的解决方案。该方法已应用于一个典型的屋顶瓦制造工厂进行验证。已经确定了 14 个可改进的流,并提出了 7 个候选 BAT,旨在减少这些流。所提出的方法提供了一种在过程中检测可改进的物质或能量流的方法,并选择最可持续的选项来增强它们。针对检测到的可改进流提出了解决方案,同时考虑了它们在改进这些流方面的有效性。