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Productive and environmental performance indicators analysis by a combined LCA hybrid model and real-time manufacturing process monitoring: A grinding unit process application

机译:通过LCA混合模型和实时制造过程监控相结合的生产和环境绩效指标分析:研磨单元过程应用

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Among machining processes, grinding has been used to achieve high dimensional tolerances and surface quality on workpieces. Yet, high levels of energy expenditure per volume of removed material and the need for cutting fluids make grinding one of the most environmentally impactful machining processes. Furthermore, changes in parameters such as grain and bond specifications of the grinding wheel, cutting speed, and specific material removal rate can lead to different productive and environmental results. Thus, the analysis of grinding processes should not be aggregated and leveraged into a single and broad output parameter. Instead, comprehensive study should be performed, in which the most relevant process parameters, inputs and outputs are considered. This paper presents a detailed study of grinding process, including the characterization of machine subunits and production modes, along with the use of a combined life cycle assessment hybrid model and real-time monitoring system to evaluate the consumption of energy, tooling, cutting fluid and compressed air. A detailed cradle-to-gate life cycle assessment study using eleven different impact categories and a productive performance assessment were performed to evaluate the effects on varying specific material removal rate and wheel type. For equal values of specific material removal rate, the change from a conventional wheel to a cubic boron nitride represented a power requirement increase of 19-24%. Cubic boron nitride wheel achieved remarkably better results on the wheel wear and part roughness indicators for all tested conditions. The environmental performance assessment showed a strict relation between the process environmental impacts and the consumption of electric energy and cutting fluid. To conclude, despite the higher power requirements, the combination of cubic boron nitride wheel with high values of specific material removal rate optimizes both the productive and the environmental results. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在机械加工工艺中,磨削已用于实现工件的高尺寸公差和表面质量。然而,单位体积所去除材料的高能量消耗以及对切削液的需求使磨削成为对环境影响最大的加工工艺之一。此外,诸如砂轮的颗粒和粘结规格,切割速度和特定材料去除率等参数的变化会导致不同的生产和环境结果。因此,不应将对磨削过程的分析汇总起来并利用到一个单一而广泛的输出参数中。相反,应该进行综合研究,其中要考虑最相关的过程参数,输入和输出。本文对磨削过程进行了详细的研究,包括对机器亚单元和生产模式的表征,以及使用组合的生命周期评估混合模型和实时监控系统来评估能源,工具,切削液和燃料的消耗。压缩的空气。使用11种不同的冲击类别进行了详细的从摇篮到大门的生命周期评估研究,并进行了生产性能评估,以评估对各种特定材料去除率和砂轮类型的影响。对于相等的特定材料去除率值,从常规砂轮到立方氮化硼的变化表示功率需求增加了19-24%。在所有测试条件下,立方氮化硼砂轮在砂轮磨损和零件粗糙度指示器上均取得了显着更好的结果。环境绩效评估表明过程环境影响与电能和切削液的消耗之间存在严格的关系。总而言之,尽管功率要求更高,但立方氮化硼砂轮与特定材料去除率值较高的组合可以优化生产和环境结果。 (C)2017 Elsevier Ltd.保留所有权利。

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