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      구리와 알루미늄 이종금속 판재간의 전기저항가열 표면마찰 스폿용접 특성 = Characteristics of Electric Resistance Heated Surface Friction Spot Welding Process of Copper and Aluminum Dissimilar Metal Sheets

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      https://www.riss.kr/link?id=A108246902

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      다국어 초록 (Multilingual Abstract)

      In this study, an electric resistance-heated surface friction spot-welding process was proposed and tested for the spot-welding ability of copper and aluminum dissimilar metal sheets using electric resistance heating and surface friction heating. This process has welding variables, such as the current value, energizing cycles, rotational speed, and friction time. The current value and energizing cycle can affect the resistance heat, and the rotational speed of the rotating pin and friction time influence frictional heat generation. Resistance heating before friction heating has a preheating effect on the Cu–Al contact interface and a positive effect on preventing friction heat loss during the friction stage. However, because resistance preheating can soften the copper sheet and affect the contact stress and friction coefficient, it has difficulties that may adversely affect frictional heat generation. Therefore, the optimal combination of welding variables should be determined through simulations and experiments of the spot-welding process to determine the effects of electric resistance preheating on the suggested process. Through this procedure, it is known that the proposed spot-welding process can improve the welding quality during the spot welding of Cu–Al sheets.
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      In this study, an electric resistance-heated surface friction spot-welding process was proposed and tested for the spot-welding ability of copper and aluminum dissimilar metal sheets using electric resistance heating and surface friction heating. This...

      In this study, an electric resistance-heated surface friction spot-welding process was proposed and tested for the spot-welding ability of copper and aluminum dissimilar metal sheets using electric resistance heating and surface friction heating. This process has welding variables, such as the current value, energizing cycles, rotational speed, and friction time. The current value and energizing cycle can affect the resistance heat, and the rotational speed of the rotating pin and friction time influence frictional heat generation. Resistance heating before friction heating has a preheating effect on the Cu–Al contact interface and a positive effect on preventing friction heat loss during the friction stage. However, because resistance preheating can soften the copper sheet and affect the contact stress and friction coefficient, it has difficulties that may adversely affect frictional heat generation. Therefore, the optimal combination of welding variables should be determined through simulations and experiments of the spot-welding process to determine the effects of electric resistance preheating on the suggested process. Through this procedure, it is known that the proposed spot-welding process can improve the welding quality during the spot welding of Cu–Al sheets.

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      참고문헌 (Reference)

      1 김태현 ; Sun Xiaoguang ; 진인태, "회전금형을 사용하는 AZ31 마그네슘 합금판재의전기저항 표면마찰 스폿용접" 한국소성∙가공학회 27 (27): 145-153, 2018

      2 김태현 ; 장민수 ; 진인태, "중첩된 알루미늄5052 합금판재의 전기저항가열 마찰교반점용접에 관한 연구" 한국소성∙가공학회 24 (24): 256-263, 2015

      3 순샤오광 ; 진인태, "중첩된 구리 판재의 전기저항가열 표면마찰 점용접(RSFSW)에 관한 연구" 한국기계가공학회 20 (20): 93-100, 2021

      4 Rikka, V. R., "Tailoring micro resistance spot welding parameters for joining nickel tab to inner aluminium casing in a cylindrical lithium ion cell and its influence on the electrochemical performance" 49 : 463-471, 2020

      5 Shafee, S., "Resistance spot weld quality characteristics improvement by Taguchi method" 2 : 2595-2604, 2015

      6 Lee, S. S., "Joining technologies for automotive lithium-ion battery manufacturing : A review" 49460 : 541-549, 2010

      7 Dimatteo, V., "Experimental investigation on the effect of spot diameter on continuous-wave laser welding of copper and aluminum thin sheets for battery manufacturing" 145 (145): 2022

      8 Tyagi, A., "Experimental investigation for optimization of robot spot welding parameters on low carbon steel JSC 590RN" 51 : 1211-1216, 2021

      9 Jin, I. T., "Electric Resistance Spot Welding Machine With Surface Friction Heating"

      10 Tyagi, A., "Analysis the effect of process parameters on robot spot welding of JSC 590RN mild steel using Taguchi based GRA" 51 : 1006-1011, 2021

      1 김태현 ; Sun Xiaoguang ; 진인태, "회전금형을 사용하는 AZ31 마그네슘 합금판재의전기저항 표면마찰 스폿용접" 한국소성∙가공학회 27 (27): 145-153, 2018

      2 김태현 ; 장민수 ; 진인태, "중첩된 알루미늄5052 합금판재의 전기저항가열 마찰교반점용접에 관한 연구" 한국소성∙가공학회 24 (24): 256-263, 2015

      3 순샤오광 ; 진인태, "중첩된 구리 판재의 전기저항가열 표면마찰 점용접(RSFSW)에 관한 연구" 한국기계가공학회 20 (20): 93-100, 2021

      4 Rikka, V. R., "Tailoring micro resistance spot welding parameters for joining nickel tab to inner aluminium casing in a cylindrical lithium ion cell and its influence on the electrochemical performance" 49 : 463-471, 2020

      5 Shafee, S., "Resistance spot weld quality characteristics improvement by Taguchi method" 2 : 2595-2604, 2015

      6 Lee, S. S., "Joining technologies for automotive lithium-ion battery manufacturing : A review" 49460 : 541-549, 2010

      7 Dimatteo, V., "Experimental investigation on the effect of spot diameter on continuous-wave laser welding of copper and aluminum thin sheets for battery manufacturing" 145 (145): 2022

      8 Tyagi, A., "Experimental investigation for optimization of robot spot welding parameters on low carbon steel JSC 590RN" 51 : 1211-1216, 2021

      9 Jin, I. T., "Electric Resistance Spot Welding Machine With Surface Friction Heating"

      10 Tyagi, A., "Analysis the effect of process parameters on robot spot welding of JSC 590RN mild steel using Taguchi based GRA" 51 : 1006-1011, 2021

      11 Sadeghian, A., "A review on dissimilar laser welding of steel-copper, steel-aluminum, aluminum-copper, and steel-nickel for electric vehicle battery manufacturing" 146 (146): 2022

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2026 평가예정 재인증평가 신청대상 (재인증)
      2020-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2017-01-01 평가 등재학술지 유지 (계속평가) KCI등재
      2013-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2010-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2009-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2008-01-01 평가 등재후보 1차 FAIL (등재후보1차) KCI등재후보
      2007-01-01 평가 등재후보학술지 유지 (등재후보1차) KCI등재후보
      2005-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.77 0.77 0.62
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.53 0.47 0.441 0.13
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