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A knowledge-based multi-role decision support system for ore blending cost optimization of blast furnaces

机译:基于知识的高炉矿石混合成本优化多决策支持系统

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摘要

Literature illustrates the difficulties in obtaining the lowest-cost optimal solution to an ore blending problem for blast furnaces by using the traditional trial-and-error method in iron and steel enterprises. To solve this problem, we developed a cost optimization model which we have implemented in a multi-role-based decision support system (DSS). On the basis of analyzing the business flow and working process of ore blending, we propose an architecture of DSS which is built based on multi-roles. This DSS construction pre-processes the data for materials and elements, builds a general database, abstracts the related optimal operations research models and introduces the reasoning mechanism of an expert system. A non-linear model of ore blending for blast furnaces and its solutions are provided. A database, a model base and a knowledge base are integrated into the expert system-based multi-role DSS to meet the different demands of data, information and decision-making knowledge for the various roles of users. A comparison of the results for the DSS and the trial-and-error method is provided. The system has produced excellent economic benefits since it was implemented at the Xiangtan Iron & Steel Group Co. Ltd.; China.
机译:文献说明了在钢铁企业中使用传统的试错法获得高炉矿石混合问题的最低成本的最佳解决方案的困难。为了解决此问题,我们开发了成本优化模型,该模型已在基于多角色的决策支持系统(DSS)中实现。在分析混矿业务流程和工作流程的基础上,提出了基于多角色的DSS体系结构。该DSS构造可对材料和元素的数据进行预处理,构建通用数据库,提取相关的最佳运筹学模型,并介绍专家系统的推理机制。提供了高炉矿石混合的非线性模型及其解决方案。将数据库,模型库和知识库集成到基于专家系统的多角色DSS中,以满足用户各种角色的数据,信息和决策知识的不同需求。提供了DSS和试错法结果的比较。该系统自湘潭钢铁集团有限公司实施以来,产生了卓越的经济效益。中国。

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