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    Optimization of the Field Shaper Parameters in Electromagnetic Pulse Crimping of Cable

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    https://www.riss.kr/link?id=A107865896

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Crimping of wires to achieve a secure connection is one of the most critical challenges in fabrication of electronic circuit boards, automobiles, aviation, satellite and communication components. The electromagnetic pulse crimping process offers great potential to successfully address these challenges. In this paper, ANSYS/Multi physical software was used to first determine the electromagnetic force distribution on the terminal lug by analyzing the magnetic field in the electromagnetic pulse crimping process. The electromagnetic force was then imported into the ABAQUS/Explicit software as the boundary condition to calculate the deformation behavior of the terminal lug barrel and cable according to the stress–strain curve of the terminal material under high strain rate. The calculated deformation result was subsequently verified by experimental data. Three main parameters of the field shaper were analyzed to determine their influence on the crimping result; slit position, the inner diameter vertical dimension and the position relationship between the terminal lug and field shaper. Then using the empirical formula we calculated and verified the inner diameter vertical dimension of the field shaper. The model proved to be reliable. Deformation of the terminal was determined to be uneven along the circumference in the crimping area. For the type of terminal lug studied, an inner diameter vertical dimension of 10 mm proved to be optimum for increased strength of the crimped terminal connection. Allowing the terminal to protrude 1 mm from the field shaper resulted in a flatter crimped area and significant improvement in the quality of the crimped barrel surface. The empirical formula for calculating the inner diameter vertical dimension of the field shaper is reasonable and reliable, and the calculated measurement resulted in improved connection strength. The results of this research can be used to guide the electromagnetic pulse crimping of other terminal lug and cable types.
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    Crimping of wires to achieve a secure connection is one of the most critical challenges in fabrication of electronic circuit boards, automobiles, aviation, satellite and communication components. The electromagnetic pulse crimping process offers great...

    Crimping of wires to achieve a secure connection is one of the most critical challenges in fabrication of electronic circuit boards, automobiles, aviation, satellite and communication components. The electromagnetic pulse crimping process offers great potential to successfully address these challenges. In this paper, ANSYS/Multi physical software was used to first determine the electromagnetic force distribution on the terminal lug by analyzing the magnetic field in the electromagnetic pulse crimping process. The electromagnetic force was then imported into the ABAQUS/Explicit software as the boundary condition to calculate the deformation behavior of the terminal lug barrel and cable according to the stress–strain curve of the terminal material under high strain rate. The calculated deformation result was subsequently verified by experimental data. Three main parameters of the field shaper were analyzed to determine their influence on the crimping result; slit position, the inner diameter vertical dimension and the position relationship between the terminal lug and field shaper. Then using the empirical formula we calculated and verified the inner diameter vertical dimension of the field shaper. The model proved to be reliable. Deformation of the terminal was determined to be uneven along the circumference in the crimping area. For the type of terminal lug studied, an inner diameter vertical dimension of 10 mm proved to be optimum for increased strength of the crimped terminal connection. Allowing the terminal to protrude 1 mm from the field shaper resulted in a flatter crimped area and significant improvement in the quality of the crimped barrel surface. The empirical formula for calculating the inner diameter vertical dimension of the field shaper is reasonable and reliable, and the calculated measurement resulted in improved connection strength. The results of this research can be used to guide the electromagnetic pulse crimping of other terminal lug and cable types.

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    참고문헌 (Reference)

    1 Backus, D., "The effect of a field shaper on electromagnetic forming of aluminum tubes" The Ohio State University 2013

    2 Hideo Suzuki, "The effect of a field shaper in electromagnetic tube bulging" Elsevier BV 15 (15): 229-240, 1987

    3 Ashish Kumar Rajak, "Numerical simulation and experimental study on electromagnetic crimping of aluminium terminal to copper wire strands" Elsevier BV 163 : 744-753, 2018

    4 Ashish K. Rajak, "Numerical and Experimental Study on Effect of Different Types of Field-Shaper on Electromagnetic Terminal-Wire Crimping Process" 한국정밀공학회 19 (19): 453-459, 2018

    5 Ashish Kumar Rajak, "Experimental investigation of aluminium–copper wire crimping with electromagnetic process: Its advantages over conventional process" Elsevier BV 26 : 57-66, 2017

    6 V. Psyk, "Electromagnetic forming—A review" Elsevier BV 211 (211): 787-829, 2011

    7 Haiping Yu, "Effect of field shaper on magnetic pressure in electromagnetic forming" Elsevier BV 168 (168): 245-249, 2005

    8 Ashish K Rajak, "Designing of field shaper for the electro-magnetic crimping process" 대한기계학회 33 (33): 5407-5413, 2019

    9 Ashish Kumar Rajak, "Comparison of different types of coil in Electromagnetic terminal - wire crimping process: Numerical and experimental analysis" Elsevier BV 34 : 329-338, 2018

    10 Ashish K. Rajak, "Application of electromagnetic forming in terminal crimping using different types of field shapers" 대한기계학회 32 (32): 4291-4297, 2018

    1 Backus, D., "The effect of a field shaper on electromagnetic forming of aluminum tubes" The Ohio State University 2013

    2 Hideo Suzuki, "The effect of a field shaper in electromagnetic tube bulging" Elsevier BV 15 (15): 229-240, 1987

    3 Ashish Kumar Rajak, "Numerical simulation and experimental study on electromagnetic crimping of aluminium terminal to copper wire strands" Elsevier BV 163 : 744-753, 2018

    4 Ashish K. Rajak, "Numerical and Experimental Study on Effect of Different Types of Field-Shaper on Electromagnetic Terminal-Wire Crimping Process" 한국정밀공학회 19 (19): 453-459, 2018

    5 Ashish Kumar Rajak, "Experimental investigation of aluminium–copper wire crimping with electromagnetic process: Its advantages over conventional process" Elsevier BV 26 : 57-66, 2017

    6 V. Psyk, "Electromagnetic forming—A review" Elsevier BV 211 (211): 787-829, 2011

    7 Haiping Yu, "Effect of field shaper on magnetic pressure in electromagnetic forming" Elsevier BV 168 (168): 245-249, 2005

    8 Ashish K Rajak, "Designing of field shaper for the electro-magnetic crimping process" 대한기계학회 33 (33): 5407-5413, 2019

    9 Ashish Kumar Rajak, "Comparison of different types of coil in Electromagnetic terminal - wire crimping process: Numerical and experimental analysis" Elsevier BV 34 : 329-338, 2018

    10 Ashish K. Rajak, "Application of electromagnetic forming in terminal crimping using different types of field shapers" 대한기계학회 32 (32): 4291-4297, 2018

    11 M.A. Bahmani, "3D Simulation of magnetic field distribution in electromagnetic forming systems with field-shaper" Elsevier BV 209 (209): 2295-2301, 2009

    12 Fenqiang Li, "3D Numerical simulation method of electromagnetic forming for low conductive metals with a driver" Springer Science and Business Media LLC 64 (64): 1575-1585, 2013

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    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2011-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2009-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-06-23 학회명변경 영문명 : Korean Society Of Precision Engineering -> Korean Society for Precision Engineering KCI등재
    2006-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2005-05-30 학술지명변경 한글명 : 한국정밀공학회 영문논문집 -> International Journal of the Korean of Precision Engineering KCI등재후보
    2005-05-30 학술지명변경 한글명 : International Journal of the Korean of Precision Engineering -> International Journal of Precision Engineering and Manufacturing
    외국어명 : International Journal of the Korean of Precision Engineering -> International Journal of Precision Engineering and Manufacturing
    KCI등재후보
    2005-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2003-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    2016 1.38 0.71 1.08
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.92 0.85 0.583 0.11
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