DOI QR코드

DOI QR Code

이차전지 캡 어셈블리 인서트 몰딩 적용에 관한 연구

A study on insert molding application to secondary battery cap assembly

  • 우승민 (아주대학교 경영학과) ;
  • 윤금석 (주식회사 블루캡캔 연구전담부서)
  • Seung-Min Woo (Department of Business, Ajou University) ;
  • Geum-Seok Yoon (Bluecapcan, Reseach Center)
  • 투고 : 2024.08.09
  • 심사 : 2024.09.30
  • 발행 : 2024.09.30

초록

This study applied the insert molding technology which is a metal and resin joining method, to secondary battery prismatic cap assembly component and investigated the improvement comparing with standard PHEV2 Type of prismatic battery under the goal of enhancing the global market competitiveness by reducing the number of cap assembly sub-component and simplifying its manufacturing processes. Insert molding replaced the rivet terminal which is composed of 6 parts to which led significant decreasing of product cost, weight and resistance and increasing tensile strength. The angle of current collector to cap plate is a key of leakage defect which is determined by temperature of product and mold, injection temperature, pressure and time and these data can be used for bigger size of insert cap assembly as the demand of high capacity battery is getting high

키워드

참고문헌

  1. Song, K.H. and Kim Y.G., "Technology Commercialization Research Topic Modeling Analysis Using LDA Algorithm", Korea management engineering society, Vol 26:1 pp. 107-122, 2023, doi: 10.35373/kmes.26.1.1
  2. Hong, U.S., 2001, Cap assembly of prismatic secondary battery, KOR, 10-0319111
  3. Seung Y.C, Park K.D and Lee C.K, "Analysis of friction stir welding characteristics of aluminum allow using machining center", Design & Manufacturing, 14:4, 2020, pp.46-51, doi: 10.22847/ksdme.14.4.202012.006
  4. Kim J.D, Yu S.J and Kim J.S, "The weldability of Aluminum Alloy for secondary battery by pulsed Nd:YAG Laser(II)", J of Korea Laser machining, 2005, pp45-47,
  5. Park J.H, Kim M.J, Kang H.S and Chun E.J "Effect of Ni-P coating layer on the solidification cracking of Cu-Steel Dissimilar Welds for Li-Ion Battery Pack Manufacturing", J. Korean Met. Mater, Vol 62:7, pp 503-510, 2024, doi: 10.3365/KJMM.2024.62.7.503
  6. Kim, K.Y. and Kim D.S., "About Vacuum Technology(2); Leak Detector", state of the art report V12:2, 2000 pp. 61-69
  7. Kim S.I., "Experimental and Analysis on the Thermal Characteristics of Lithium-ion Battery for ESS, a master's thesis of Kangwon Univ, 2020
  8. Vilsen S.B., Knudesen K.S. and Stroe D.L., "Predicting Lithium-ion Battery Resistance Degradation using a Log-Linear Model, ECCE, pp. 1136-1143, 2019, doi: 10.1109/EWE.2019.8912770
  9. Fraunhofer, Lithium-Ion Battery Roadmap-Industrial ization Perspectives Toward 2030, pp 22~23
  10. Kim D.H., "A study to the adhesion behavior between polymer resins due to processing conditions of insert injection," master's thesis of Soonchunhyang Univ, 2020
  11. Lee B.G. and Na S.S., "Numerical Analysis of the Filling Stage in Insert Injection Molding of Microfluidic Chip with Metal Electrodes" J. Korean Soc. Precis. Eng., Vol 32:11, pp 969-976, 2015, doi: 10.7736/KSPE.2015.32.11.969
  12. Kim J.S., "Development of a injection molding automation system of busbar insert for the electric vehicle", Design & Manufacturing, Vol 18:2, 2024, pp. 35-40, doi: 10.22847/KSDME.18.2.2024.006
  13. Jung E.C, Yoon K.Y, Hong S.K, Lee S.Y, and Lee S.H, "A study on carbon composite fabrication using injection/ compression molding and insert-over molding", Design & Manufacturing, Vol 14:4, 2020, pp. 11-16, doi: 10.22847/ksdme.14.4.202012.002