首页|SLM增材高强铝的DED连接工艺及超声辅助性能优化

SLM增材高强铝的DED连接工艺及超声辅助性能优化

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针对目前激光选区熔化难以直接成形大尺寸、高强度铝合金构件的问题,对定向能量沉积(DED)连接激光选区熔化成形Al-Mg-Sc-Zr合金的工艺进行研究,分析缺陷分布的位置、形貌以及对力学性能的影响,对比分析定向能量沉积参数以及超声外场辅助下连接试样的微观组织、元素分布和力学性能,并通过热等静压进一步提升力学性能。结果表明:缺陷主要分布在基材与连接区交界的熔合区,密集气孔聚集导致熔合区硬度远低于连接区和基材的硬度,并使整体拉伸性能弱化。在75~150 J/mm2 激光能量密度范围内,随能量密度增大,致密度和抗拉强度均提升。采用3000 W激光功率、5 mm/s扫描速率、3。7 g/min送粉速率,得到最高的熔合区硬度、连接区致密度以及抗拉强度,分别为 90 HV、90。83%、203。38 MPa。超声外场辅助会促进Al3(Sc,Zr)强化相的析出并细化晶粒,且能够有效减少气孔的数量和缩小气孔的尺寸。超声后试样的综合力学性能得到显著提升,熔合区硬度为 95 HV,致密度为 93。06%,抗拉强度为292 MPa,较未加超声时分别提高了5%、2。4%和44%。超声后采用热等静压的后处理方法,可使综合力学性能得到进一步提升,熔合区硬度为 160 HV,致密度为 99。99%,抗拉强度为 405。71 MPa,较未热等静压时分别提高了 68。4%、7。4%和38。9%。
DED Joining Process and Ultrasonic-Assisted Performance Optimization of High-Strength Aluminum Alloys Manufactured by SLM
Objective As structural materials,aluminum alloys are widely employed in aerospace,especially in the 5 series and 7 series aluminum alloys.Currently,most of these aluminum alloy materials are prepared by traditional forging processes.Additive manufacturing technology,especially selective laser melting(SLM)forming technology,has gradually demonstrated enormous technological advantages under numerous demanding requirements such as weight reduction and functional upgrading of aerospace structures.However,currently,SLM forming of aluminum alloy structural components mainly relies on low-strength aluminum alloys,and these aluminum alloys'strength and other indicators cannot meet the performance requirements of 5 series and 7 series aluminum alloys.Additionally,the size of structural aluminum alloy components formed by SLM often has certain limitations.The development of high-strength Al-Mg-Sc-Zr forming and joining processes is significant for the large-scale and integrated development of aerospace equipment.Currently,there is relatively little research on the joining technology of SLM-formed Al-Mg-Sc-Zr alloys both domestically and internationally.Therefore,we hope to find a method to improve the joining performance of high-strength aluminum alloys.Methods Due to the difficulty in forming large-scale high-strength aluminum components by SLM directly,we investigate the directed energy deposition(DED)joining process of Al-Mg-Sc-Zr fabricated by SLM.The distribution and morphology of defects and their influence on the mechanical properties are analyzed.Moreover,the microstructure,element distribution,and properties of specimens joining with different DED process parameters and the addition of ultrasonic external field assistance are compared,and mechanical properties are improved by hot isostatic pressing.Results and Discussions The results indicate that the defects are mainly distributed in the fusion zone,which is the interface between the base and the joining zone(Fig.4).The aggregation of dense pores at the fusion zone leads to a lower hardness than that of the joining zone and the base and then affects the mechanical properties of the whole specimens.With the laser energy density of 75-150 J/mm2,the higher energy density leads to higher density and tensile strength(Fig.6).The highest fusion zone hardness,joining zone efficiency of space filling,and tensile strength of 90 HV,90.83%,and 203.38 MPa respectively are obtained using 3000 W laser power,5 mm/s scanning rate,and 3.7 g/min powder feeding rate.Ultrasonic vibration promotes the precipitation of the Al3(Sc,Zr)-enhanced phases and refines the grains,and ultrasonic vibration reduces the pore number and size.With ultrasonic vibration,the comprehensive mechanical properties of the specimens are significantly improved(Fig.7).Hot isostatic pressing after ultrasound can further enhance the comprehensive mechanical properties.Conclusions We employ the DED process to join SLM forming Al-Mg-Sc-Zr and explore the influence of different process parameters and ultrasonic external field assistance conditions on the microstructure and tensile mechanical properties of the joining samples.We also elucidate that the suppression of pore defects is a key factor in improving the microhardness and tensile mechanical properties of the connecting sample.Between 75 J/mm2 and 150 J/mm2 laser energy densities,the larger energy density brings fewer pores and higher tensile strength.The highest hardness,efficiency of space filling,and tensile strength of the fusion zone are obtained using 3000 W laser power,5 mm/s scanning rate,and 3.7 g/min powder feeding rate,with values of 90 HV,90.83%,and 203.38 MPa respectively.Ultrasonic vibration promotes the formation and precipitation of Al3(Sc,Zr)-enhanced phases,refines the grains,and solves the defects,causing the pores to tend to escape outward and disperse into the joining zone.With ultrasonic vibration at a frequency of 19.66 kHz and a 1.6 A current,the Al-Mg-Sc-Zr joining is carried out by DED.Ultrasonic vibration generates a stirring effect in the melt pool,providing sufficient escape speed for the upward movement of pores in the melt pool.Compared with the alloy samples without ultrasonic vibration,the pore defects in the sample are significantly reduced and distributed more evenly,with notably improved mechanical properties such as strength and hardness.The hardness at the fusion zone is 95 HV,the efficiency of space filling is 93.06%,and the tensile strength is 292 MPa,all of which are 5%,2.4%,and 44%higher than those without ultrasonic vibration respectively.The post-treatment method using hot isostatic pressing after ultrasonic vibration can further improve the comprehensive mechanical properties.The hardness of the fusion zone is 160 HV,the efficiency of space filling is 99.99%,and the tensile strength is 405.71 MPa,which are 68.4%,7.4%,and 38.9%higher than those without hot isostatic pressing respectively.

optical designdirected energy depositionjoiningAl-Mg-Sc-Zr alloysultrasonic external field assistancemechanical propertieshot isostatic pressing

尚晓峰、董建舟、张英伟、王志国、赵宇辉、何振丰、赵吉宾

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沈阳航空航天大学机电工程学院,辽宁 沈阳 110135

中国科学院沈阳自动化研究所,辽宁 沈阳 110016

航空工业沈阳飞机工业(集团)有限公司,辽宁 沈阳 110850

中国科学院机器人与智能制造创新研究院,辽宁 沈阳 110169

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光学设计 定向能量沉积 连接 Al-Mg-Sc-Zr合金 超声外场辅助 力学性能 热等静压

沈阳市中青年科技创新人才支持计划项目"兴辽英才计划"青年拔尖人才揭榜挂帅项目2023年数字辽宁智造强省(智造强省方向)专项国防科技重点实验室基金

RC220527XLYC22031542022JH1/10800048辽工信投资[2023]171号61420052022KJW05

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(4)
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