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电火花线切割加工参数设置对加工哈道克斯400钢时缺陷产生的影响

The Influence of WEDM Parameters Setup on the Occurrence of Defects When Machining Hardox 400 Steel.

作者信息

Mouralova Katerina, Prokes Tomas, Benes Libor, Bednar Josef

机构信息

Faculty of Mechanical Engineering, Brno University of Technology, 616 69 Brno and Czech Republic.

Faculty of Production Technologies and Management, Jan Evangelista Purkyně University, 400 96 Ústí nad Labem, Czech Republic.

出版信息

Materials (Basel). 2019 Nov 15;12(22):3758. doi: 10.3390/ma12223758.

Abstract

The unconventional technology wire electrical discharge machining is a highly used technology for producing precise and indented shaped parts of all materials that are at least electrically conductive. Its wide use makes this technology applicable in almost all branches of industry, even in the automotive industry, where the abrasion resistant material under investigation Hardox 400 steel is widely used for the manufacturing of truck bodies. The aim of this study was a comprehensive analysis of the machinability of this material using WEDM employing a 33-round experiment. Based on the change in machine parameters (pulse off time, gap voltage, discharge current, pulse on time, and wire feed), the cutting speed, the topography of machined surfaces, and the chemical composition of the workpiece surface, the morphology and condition of the subsurface layer including lamella production and a subsequent determination of the distribution of individual elements in the given area were analyzed. It has been found that during the machining of this steel, many defects occur in the subsurface layer of the material in the form of cracks with a depth of up to 22 µm and burned cavities. However, by appropriately adjusting the machine parameters, it was possible to completely remove these cracks.

摘要

非常规技术——电火花线切割加工是一种广泛应用的技术,用于加工各种至少具有导电性材料的精密和异形零件。其广泛应用使得该技术几乎适用于所有工业领域,甚至在汽车工业中,正在研究的耐磨材料Hardox 400钢被广泛用于制造卡车车身。本研究的目的是通过33轮实验,对使用电火花线切割加工这种材料的可加工性进行全面分析。基于机床参数(脉冲关断时间、间隙电压、放电电流、脉冲导通时间和送丝速度)的变化、切割速度、加工表面的形貌以及工件表面的化学成分,分析了亚表层的形态和状况,包括薄片的产生以及随后对给定区域内各元素分布的测定。研究发现,在这种钢的加工过程中,材料的亚表层会出现许多缺陷,形式为深度达22 µm的裂纹和烧蚀空洞。然而,通过适当调整机床参数,可以完全消除这些裂纹。

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