Institute of Technical Thermodynamics, RWTH Aachen University, 52062 Aachen, Germany; email:
Centre for Management Studies, Instituto Superior Técnico, University of Lisbon, 1649-004, Lisbon, Portugal.
Annu Rev Chem Biomol Eng. 2020 Jun 7;11:203-233. doi: 10.1146/annurev-chembioeng-011520-075844. Epub 2020 Mar 27.
Design in the chemical industry increasingly aims not only at economic but also at environmental targets. Environmental targets are usually best quantified using the standardized, holistic method of life cycle assessment (LCA). The resulting life cycle perspective poses a major challenge to chemical engineering design because the design scope is expanded to include process, product, and supply chain. Here, we first provide a brief tutorial highlighting key elements of LCA. Methods to fill data gaps in LCA are discussed, as capturing the full life cycle is data intensive. On this basis, we review recent methods for integrating LCA into the design of chemical processes, products, and supply chains. Whereas adding LCA as a posteriori tool for decision support can be regarded as established, the integration of LCA into the design process is an active field of research. We present recent advances and derive future challenges for LCA-based design.
在化学工业中,设计的目标不仅是经济目标,还包括环境目标。环境目标通常最好使用标准化的、整体的生命周期评估(LCA)方法来量化。由此产生的生命周期视角对化学工程设计提出了重大挑战,因为设计范围扩大到包括工艺、产品和供应链。在这里,我们首先提供一个简要的教程,突出 LCA 的关键要素。讨论了填补 LCA 数据空白的方法,因为捕获完整的生命周期需要大量的数据。在此基础上,我们回顾了将 LCA 纳入化学工艺、产品和供应链设计的最新方法。虽然将 LCA 作为事后决策支持工具的添加已经得到认可,但将 LCA 纳入设计过程是一个活跃的研究领域。我们介绍了基于 LCA 的设计的最新进展,并得出了未来的挑战。