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首页> 外文期刊>The International Journal of Life Cycle Assessment >Contribution-based prioritization of LCI database improvements: the most important unit processes in ecoinvent
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Contribution-based prioritization of LCI database improvements: the most important unit processes in ecoinvent

机译:LCI数据库改进的基于贡献的优先级:ecoinvent中最重要的单元过程

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Purpose Improving the quality and quantity of unit process datasets in Life Cycle Inventory (LCI) databases affects every LCA they are used in. However, improvements in data quality and quantity are so far rather directed by the external supply of data and situation-driven requirements instead of systematic choices guided by structural dependencies in the data. Overall, the impact of current data updates on the quality of the LCI database remains unclear and maintenance efforts might be ineffective. This article analyzes how a contribution-based prioritization approach can direct LCI update efforts to datasets of key importance.Methods A contribution-based prioritization method has been applied to version 3 of the ecoinvent database. We identified the relevance of unit processes on the basis of their relative contributions throughout each product system with respect to a broad range of Life Cycle Impact Assessment (LCIA) indicators. A novel ranking algorithm enabled the ranking of unit processes according to their impact on the LCIA results. Finally, we identified the most relevant unit processes for different sectors and geographies.Results and discussion The study shows that a relatively large proportion of the overall database quality is dependent on a small set of key processes. Processes related to electricity generation, waste treatment activities, and energy carrier provision (petroleum and hard coal) consistently cause large environmental impacts on all product systems. Overall, 300 datasets are causing 60% of the environmental impacts across all LCIA indicators, while only 3 datasets are causing 11% of all climate change impacts. In addition, our analysis highlights the presence and importance of central hubs, i.e., sensitive intersections in the database network, whose modification can affect a large proportion of database quality.Conclusions Our study suggests that contribution-based prioritization offers important insights into the systematic and effective improvement of LCI databases. The presented list of key processes in ecoinvent version 3.1 adds a new perspective to database improvements as it allows the allocation of available resources according to the structural dependencies in the data.
机译:目的改进生命周期清单(LCI)数据库中的单位过程数据集的质量和数量会影响使用它们的每个LCA。但是,到目前为止,数据质量和数量的提高主要取决于外部数据的提供和情况驱动的需求。而不是根据数据的结构依赖性进行系统选择。总体而言,当前数据更新对LCI数据库质量的影响尚不清楚,维护工作可能无效。本文分析了基于贡献的优先级排序方法如何将LCI更新工作定向到关键重要性数据集。方法基于贡献的优先级排序方法已应用于ecoinvent数据库的版本3。我们根据整个产品系统相对于广泛的生命周期影响评估(LCIA)指标的相对贡献,确定了单位过程的相关性。一种新颖的排名算法可以根据单元过程对LCIA结果的影响来对单元过程进行排名。最后,我们确定了不同部门和地区最相关的单位流程。结果与讨论研究表明,整体数据库质量中相对较大的比例取决于一小部分关键流程。与发电,废物处理活动和能源载体供应(石油和硬煤)相关的过程始终对所有产品系统造成巨大的环境影响。总体而言,在所有LCIA指标中,有300个数据集造成了60%的环境影响,而只有3个数据集造成了所有气候变化影响的11%。此外,我们的分析突出显示了中心枢纽(即数据库网络中的敏感交叉点)的存在和重要性,这些中心的修改会影响很大一部分数据库质量。结论我们的研究表明,基于贡献的优先级划分可为系统和数据中心提供重要见解有效改善LCI数据库。 ecoinvent版本3.1中列出的关键过程列表为数据库改进添加了新的视角,因为它允许根据数据中的结构依赖性分配可用资源。

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