A knowledge graph-based intelligent planning method for remanufacturing processes of used parts

再制造 计算机科学 过程(计算) 重新使用 图形 相似性(几何) 节点(物理) 数据挖掘 人工智能 工程类 制造工程 理论计算机科学 结构工程 操作系统 图像(数学) 废物管理
作者
Shuo Zhu,Liuyang Gao,Zhigang Jiang,Wei Yan,Hua Zhang
出处
期刊:Journal of Engineering Design [Taylor & Francis]
卷期号:36 (10): 1824-1851 被引量:5
标识
DOI:10.1080/09544828.2025.2450761
摘要

Intelligent remanufacturing process planning is crucial for the efficient and high-quality remanufacturing of used parts with complex failure characteristics. However, due to the varied failure characteristics of used parts, the diversity of remanufacturing processes, and complex non-linear relationships among remanufacturing process elements, relying solely on mathematical programming or manual empirical is difficult to effectively model and optimise the remanufacturing process planning. To this end, a knowledge graph-based intelligent planning method for remanufacturing processes is proposed to enhance efficiency and quality by combining mathematical programming and knowledge reuse. Firstly, with failure characteristics as decision nodes, a full-element remanufacturing process ontology model is constructed, linking used parts, failure characteristics, and corresponding process plans. The BERT-BiLSTM-CRF model extracts remanufacturing process entities, and a remanufacturing process knowledge graph (RPKG) is constructed. Secondly, an intelligent decision-making model based on graph multi-node path retrieval is proposed. Aim to minimise carbon emissions, time, and cost, combining feature similarity calculations and nearest neighbour search (NNS) to efficiently retrieve the optimal process plan for each failure characteristic. Then, the optimal process plans are merged based on process constraints to create the complete plan. Finally, a concrete case is given to verify the effectiveness and advantages of this method.
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