Data quality assessment of aggregated LCI datasets: A case study on fossil-based and bio-based plastic food packaging

被引:2
作者
Carlesso, Anna [1 ]
Pizzol, Lisa [1 ]
Marcomini, Antonio [1 ]
Semenzin, Elena [1 ]
机构
[1] CaFoscari Univ Venice, Dept Environm Sci Informat & Stat, Via Torino 155, I-30172 Venice, Italy
关键词
aggregated LCI datasets; data quality assessment; industrial ecology; life cycle inventory; plastic food packaging; representativeness;
D O I
10.1111/jiec.13572
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Environmental impacts resulting from plastic food packaging, made from both fossil-based and bio-based polymers, are increasingly analyzed in life cycle assessment (LCA) studies. However, the literature reveals significant variations in results for the same polymer within the same scope. To enhance the reliability of these assessments, data quality assessment (DQA) plays a relevant role. However, despite most of the LCA studies employing aggregated life cycle inventory (LCI) datasets, in the literature, DQA methods for aggregated processes are not available. To fill this gap, in this paper, a DQA for aggregated LCI datasets is proposed and demonstrated through its application to 101 aggregated LCI datasets, extracted from Ecoinvent and GaBi databases. The DQA method has been developed by adapting and integrating the pedigree matrix and the data quality ranking proposed by the recently published EC Plastic LCA method. The three data quality indicators (DQIs) used are technological, geographical, and time-related representativeness. The application of this method exhibits an overall positive evaluation of the selected datasets with differences among the three DQIs. Moreover, it highlights the role of metadata structure in adequately supporting a robust DQA. Indeed, in the absence of a common framework that defines, assesses, and provides access to data quality information, transparency must be assured by the operator in the metadata interpretation and related assumptions along the DQA process. Finally, although the proposed DQA method was developed for the plastic sector, its application can be extended to LCI aggregated datasets relevant to other sectors, materials, and products.
引用
收藏
页码:1900 / 1911
页数:12
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