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首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Selective laser melting fabricated tungsten with thin-walled structure: role of linear energy density on temperature evolution and manufacturing quality
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Selective laser melting fabricated tungsten with thin-walled structure: role of linear energy density on temperature evolution and manufacturing quality

机译:选择性激光熔化制备薄壁结构钨:线性能量密度对温度变化和制造质量的影响

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摘要

Thin-walled parts has been extensively used in the field of aerospace, refrigeration and electronic equipment for its characteristics of lightweight, material-saving and compact-structure. Selective laser melting (SLM) technology has been regarded as an effective way to manufacture parts with complex structures due to its high flexibility and efficiency. In this work, tungsten thin-walled parts are manufactured at different laser energy densities, and the finite element modelling of manufacturing process is combined with densification, dimensional accuracy and surface roughness measurement to optimize the SLM process parameters of tungsten thin-walled parts. The results indicated that the transient temperature peak is higher at the top position than at the bottom during the manufacturing process of thin-walled parts, which is also the same in the roughness. With the increase of laser energy input, the temperature of the molten pool is improved, which leads to an increment in the wall thickness. A sample with a maximum relative density of 84.5 was obtained at the optimal energy density about 1000 J/mm and its surface morphology exhibits fewer pores and cracks. The sample prepared at the laser energy input of 800 J/m exhibits the superior property of microhardness with the value of 504.3HV(0.2). All these results are significant in the manufacture of thin-walled parts with high performances.
机译:薄壁件以其轻量化、省材、结构紧凑等特点,在航空航天、制冷、电子设备领域得到了广泛的应用。选择性激光熔化 (SLM) 技术因其高灵活性和效率而被认为是制造结构复杂零件的有效方法。本工作以不同激光能量密度制造钨薄壁件,结合制造工艺的有限元建模,结合致密化、尺寸精度和表面粗糙度测量,优化钨薄壁件的SLM工艺参数。结果表明,在薄壁件的制造过程中,顶部位置的瞬态温度峰值高于底部位置,粗糙度也相同。随着激光能量输入的增加,熔池的温度得到改善,从而导致壁厚的增加。在1000 J/mm左右的最佳能量密度下,获得了最大相对密度为84.5%的样品,其表面形貌表现出较少的孔隙和裂纹。在800 J/m的激光能量输入下制备的样品表现出优越的显微硬度性能,其值为504.3HV(0.2)。所有这些结果对于制造高性能薄壁零件都具有重要意义。

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