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Resource Efficient Regrinding of Cemented Carbide Milling Tools

机译:硬质合金铣刀的资源高效研磨

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Cemented carbide tools are often used for milling operations that cause high thermal and mechanical process loads, e.g. machining processes for titanium alloys. However, the disposal of those tools after one life cycle would significantly reduce their resource efficiency. Therefore, regrinding operations are crucial in order to recycle worn tools and ensure an economical as well as resource efficient manufacturing process. The main challenges during regrinding are the precise quantification of present defects and the subsequent determination of the grinding allowance. As it is, a worker performs both tasks using his individual estimations. Consequently, the estimated grinding allowance is often too low or too high. This either decreases the lifetime of the reground tools due to remaining defects or reduces the resource efficiency since more material than necessary is removed. This paper investigates the determination of the grinding allowance and the environmental impact of regrinding operations on the life cycle of the investigated tools. It is shown that about 12.5% percent of the worn tools are being unnecessarily disposed of. Furthermore, the resource efficiency of tools with small breakouts might be increased by 20% if the recommended allowance strategy is utilized. The tool wear of the grinding tools is also taken into consideration in order to further increase the resource efficiency of the whole life cycle, including milling tool and grinding wheel. The results show that small grain sizes and low grain concentrations are not suitable for efficient regrinding processes since higher wear and consequently higher geometrical inaccuracies of the reground tools occur.
机译:硬质合金工具通常用于铣削操作,这些操作会导致较高的热和机械加工负荷,例如钛合金的机械加工工艺。但是,在一个生命周期后处置这些工具将大大降低其资源效率。因此,再磨操作对于回收磨损的工具并确保经济且节约资源的制造过程至关重要。再磨削过程中的主要挑战是对当前缺陷进行精确定量以及随后确定磨削余量。实际上,工人使用自己的估计来执行两项任务。因此,估计的磨削余量通常太低或太高。由于残留的缺陷,这将缩短再磨工具的使用寿命,或者由于去除了多余的材料而降低了资源效率。本文研究了磨削余量的确定以及再研磨操作对所研究工具生命周期的环境影响。结果表明,约有12.5%的磨损工具被不必要地处置。此外,如果采用建议的配额策略,则具有较小突破的工具的资源效率可能会提高20%。为了进一步提高包括铣刀和砂轮在内的整个生命周期的资源效率,还考虑了磨具的刀具磨损。结果表明,小晶粒尺寸和低晶粒浓度不适用于有效的再磨削工艺,因为发生了更高的磨损,从而导致了再磨工具的更高的几何精度。

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