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Cu改性AgSnO2In2O3电接触材料的内氧化制备及其电气性能研究
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作者单位:

1.浙江大学材料科学与工程学院;2.温州宏丰电工合金股份有限公司;3.浙江大学温州研究院

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中图分类号:

TG 501.3

基金项目:

浙江省重点研发计划项目资助(项目号 2017C01051);浙江省自然科学(项目号 LQ20E020008)


Electrical performance of Cu Doped AgSnO2In2O3 Electrical Contacts Fabricated by Internal Oxidation
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Fund Project:

the key R & D program of Zhejiang Province (Project No. 2017c01051); Zhejiang Natural Science Foundation Project (Project No.: lq20e02008)

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    摘要:

    采用合金熔炼—内氧化法制备了系列Cu改性AgSnO2In2O3电接触材料样品。利用温升试验台和电寿命型式试验系统对 Cu改性样品进行温升、电寿命性能评价,利用离位VR 3D投影技术、XRD与附带能谱的SEM等仪器对Cu改性样品的3D显微结构、物相组成、微观形貌及化学成分进行了表征,并探究其电寿命服役能力失效机制。结果表明:随着Cu掺杂量的增加,改性样品的显微组织从短小的类晶须状氧化物向细长的类纤维状氧化物组织转变,但当Cu掺杂量高达6.8 wt.%时,组织内部发生了“溶解-偏析”现象,大量氧化物颗粒优先在晶界处发生偏聚。改性AgSnO2In2O3触点材料的温升随着Cu掺杂量的增加呈先下降而后上升的变化态势,当铜掺杂量为2.15 wt.%时,其温升平均值低至76.558K。系列Cu改性AgSnO2In2O3材料的电寿命服役能力顺序如下:Cu (2.15) >Cu (1.65)>Cu (1.1)>Cu (3.4)>Cu (4.0)>Cu(6.8),相应的电寿命失效模式为熔焊,其主要原因在于电弧侵蚀过程中存在微裂纹、高比例 (Ag, Cu)组织或(Sn, Cu)组织富集以及大面积喷溅等失效特征。

    Abstract:

    A series of Cu Modified AgSnO2In2O3 electrical contact materials were prepared by alloy melting—internal oxidation method. The temperature rise and electrical life testing system were used to evaluate the performance of Cu Modified samples. The 3D microstructure, phase composition, micro morphology and chemical composition of Cu Modified samples were characterized by ex-situ VR 3D projection technology, XRD and SEM/EDS, and the failure mechanism of electrical life endurance was explored. The results show that with the increase of Cu doping content, the microstructure of the modified samples changes from short whisker like oxide to slender fibrous like oxide. However, when the Cu doping content is as high as 6.8 wt.%, the phenomenon of "dissolution-segregation" occurs, a large number of oxide particles preferentially segregate at the grain boundary. The temperature rise behavior of the modified AgSnO2In2O3 contact material decreases first and then increases with the increase of Cu doping. When the copper doping is 2.15 wt.%, the average temperature rise is as low as 76.558k. The order of electrical life service capability of series Cu Modified AgSnO2In2O3 materials is as follows: Cu (2.15) > Cu (1.65) > Cu (1.1) > Cu (3.4) > Cu (4.0) > Cu (6.8). The corresponding electrical life failure mode is fusion welding, which is mainly due to the failure characteristics such as microcracks, enrichment of high proportion (Ag, Cu) microstructure or (Sn, Cu) microstructure and large-area splashing in the process of arc erosion.

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穆成法,沈 涛,王开旭,陈晓统,周 馨,李 跃,杨 辉. Cu改性AgSnO2In2O3电接触材料的内氧化制备及其电气性能研究[J].稀有金属材料与工程,2023,52(2):575~585.[Mu Chengfa, Shen Tao, Wang Kaixu, Chen Xiaotong, Zhou Xin, Li Yue, Yang Hui. Electrical performance of Cu Doped AgSnO2In2O3 Electrical Contacts Fabricated by Internal Oxidation[J]. Rare Metal Materials and Engineering,2023,52(2):575~585.]
DOI:10.12442/j. issn.1002-185X.20211161

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历史
  • 收稿日期:2021-12-31
  • 最后修改日期:2022-04-12
  • 录用日期:2022-04-25
  • 在线发布日期: 2023-03-09
  • 出版日期: 2023-02-28