Stress-Corrosion Cracking of Aerial Plant Fuses

{"title":"Stress-Corrosion Cracking of Aerial Plant Fuses","authors":"","doi":"10.31399/asm.fach.design.c0006898","DOIUrl":null,"url":null,"abstract":"\n Several fuses made of nickel silver (57 to 61% Cu, 11 to 13% Ni, bal Zn) exposed to air containing ammonium and nitrate ions failed by SCC. Test solutions of 1 N ammonium nitrate (NH4NO3) and a 1:1 mixture of 1 N sodium nitrate (NaNO3) and 1 N calcium nitrate (Ca(NO3) 2) were prepared. In addition, stressed fuses made of nickel silver and of cupro-nickel (80Cu-20Ni) were exposed to a drop of corrosive solution in the stressed area. All nickel silver specimens failed after two days of exposure to NH4NO3 solution. However, 17% of them failed and 67% showed crack initiation but no failure after 42 days of exposure to NaNO3 + Ca(NO3)2 solution. None of the cupro-nickel specimens failed, but among those exposed to NH4NO3, 17% displayed crack initiation and 83% showed partial dealloying after 42 days. Based on the test results, the fuse material was changed from nickel silver to cupro-nickel, solving the SCC problem.","PeriodicalId":436305,"journal":{"name":"ASM Failure Analysis Case Histories: Design Flaws","volume":"7 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2019-06-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"ASM Failure Analysis Case Histories: Design Flaws","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.31399/asm.fach.design.c0006898","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

Several fuses made of nickel silver (57 to 61% Cu, 11 to 13% Ni, bal Zn) exposed to air containing ammonium and nitrate ions failed by SCC. Test solutions of 1 N ammonium nitrate (NH4NO3) and a 1:1 mixture of 1 N sodium nitrate (NaNO3) and 1 N calcium nitrate (Ca(NO3) 2) were prepared. In addition, stressed fuses made of nickel silver and of cupro-nickel (80Cu-20Ni) were exposed to a drop of corrosive solution in the stressed area. All nickel silver specimens failed after two days of exposure to NH4NO3 solution. However, 17% of them failed and 67% showed crack initiation but no failure after 42 days of exposure to NaNO3 + Ca(NO3)2 solution. None of the cupro-nickel specimens failed, but among those exposed to NH4NO3, 17% displayed crack initiation and 83% showed partial dealloying after 42 days. Based on the test results, the fuse material was changed from nickel silver to cupro-nickel, solving the SCC problem.
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航空植物引信的应力腐蚀开裂
几种由镍银(57 ~ 61% Cu, 11 ~ 13% Ni, bal Zn)制成的熔断器暴露于含有铵离子和硝酸盐离子的空气中,SCC失效。制备了1 N硝酸铵(NH4NO3)和1 N硝酸钠(NaNO3)与1 N硝酸钙(Ca(NO3) 2)的1:1混合溶液。此外,将镍银和铜镍(80Cu-20Ni)制成的应力熔断器暴露在应力区一滴腐蚀性溶液中。所有镍银样品在NH4NO3溶液中暴露两天后均失效。然而,在NaNO3 + Ca(NO3)2溶液中暴露42天后,其中17%的材料失效,67%的材料出现裂纹萌生但未失效。铜镍合金试样均未破裂,但在NH4NO3处理的试样中,17%的试样在42天后出现裂纹萌生,83%的试样出现部分合金化。根据试验结果,将熔断器材料由镍银改为铜镍,解决了SCC问题。
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