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References

[Chapter 1]

[1.1] 전만수, 정완진, 정석환, 이민철 2016, 고등 고체역학과 유한요소법 2판, 진샘미디어.

[1.2] R. Hill, 1950, The Mathematical Theory of Plasticity, Oxford at the Clarendon Press.

[1.3] E.G. Thomsen, C.T. Yang, S. Kobayashi, 1965, Mechanics of Plastic deformation in metal processing, Macmillan, New York.

[1.4] B. Avitzur, 1968, Metal forming: processes and analysis, McGraw-Hill, New York.

[1.5] W. Johnson, P.B. Mellor, 1973, Engineering plasticity, England.

[1.6] R.A.C. Slater, 1977, Engineering plasticity - Theory and application to metal forming processes, The Macmillan Press.

[Chapter 3]

[3.1] L.E. Malvern, 1969, Introduction to the mechnics of a continuous medium, Englewood Cliffs, N. J., Prentice Hall.

[Chapter 5]

[5.1] 일본소성가공학회편집, 알기쉬운 단조가공, 일간공업신문사, 2007.

[5.2] M.S. Joun, H.G. Moon, I.S. Choi, M.C. Lee, B.Y. Jun, 2009, Effects of friction laws on metal forming processes, Tribol. Int., Vol. 42, No. 2, pp. 311-319.

[5.3] J.F. Archard, 1953, Contacts and rubbins of flat surfaces, J. Applied Physics, Vol. 24, pp. 981-988.

[Chapter 6]

[6.1] Y. Bao, T. Wierzbicki, 2004, On fracture locus in the equivalent strain and stress triaxiality space, Int. J. Mech. Sci., Vol. 46, pp. 81-98.

[6.2] Y. Li, T. Wierzbicki, 2010, Prediction of plane strain fracture of AHSS sheets with post-initiation softening, Int. J. Solids Struct., Vol. 47, pp. 2316-2327.

[6.3] Y. Bai, T. Wierzbicki, 2008, A new model of metal plasticity and fracture with pressure and Lode dependence, Int. J. Plast., Vol. 24 pp. 1071-1096.

[6.4] Y. Bai, T. Wierzbicki, 2010, Application of extended Mohr-Coulomb criterion to ductile fracture, Int. J. Fracture, Vol. 161, pp. 1-20.

[6.5] F. Neukamm, M. Feucht, A. Haufe, 2008, Consistent damage modelling in the process chain of forming to crashworthiness simulations, Proc. 7th LS-DYNA anwenderforum, Bamberg, Germany.

[6.6] F. Neukamm, M. Feucht, A. Haufe, 2009, Considering damage history in crashworthiness simulations, In: Proc. 7th European LS-DYNA conference, Salzburg, Austria.

[Chapter 8]

[8.1] M.L. Wilkins, 1964, Calculation of elasto-plastic flow, Method of Computational Physics, Vol. 3, New York, Academic Press.

[8.2] J.C. Simo and R.L. Taylor, 1985, Consistent tangent operators for rate-independent elastoplasticity, Comp. Meth. Appl. Mech. Engng, Vol. 48, pp. 101∼118.

[8.3] D.N. Arnold, F. Brezzi, M. Fortin, 1984, A stable finite element for Stokes equations, Calcolo, Vol. 21, pp. 337-344.

[8.4] E. Perchat, Mini-élément et factorization incomplètes pour la parallélisation d’un solveur de Stokes 2D. Application au forgeage, 2000, thèses de Doctoral en Sciences et Génie des Matéiaux, ENSMP.

[Chapter 9]

[9.1] 김민철, 김봉수, 전만수, 2013, 가정한 금형 온도를 이용한 소성가공 공정의 근사 비등온해석, 한국소성가공학회 춘계학술대회, pp. 102-105.

[Chapter 11]

[11.1] M.S. Joun and M.C. Lee, 1997, Quadrilateral finite-element generation and mesh quality control for metal forming simulation, Int. J. Num. Meth. Engrg., pp. 4059-4075.

[11.2] M.C. Lee, S.H. Chung, S.M. Jang and M.S. Joun, 2009, Three-dimensional simulation of forging using tetrahedral and hexahedral elements, Finite Elem. Anal. Des., pp. 745-754.

[11.3] M.C. Lee, J.K. Lee and M.S. Joun, 2007, Adaptive tetrahedral element generation and refinement to improve the quality of bulk metal forming simulation, Finite Elem. Anal. Des., pp. 788-802.

[11.4] N. Rebelo, S.Kobayashi, 1980, A coupled of viscoplastic deformation and heat transfer-Ⅰ, Int. J. Mech. Sci., Vol. 22, pp. 699-718

[11.5] S.M. Hwang, M.S. Joun, Y.H. Kang, 1993, Finite element analysis of temperatures, metal flow, and roll pressure in hot strip rolling, J. Manuf. Sci. Eng., Vol. 155, No. 3, pp. 290-298.

[11.6] 정순종, 2001, 밀폐단조기술을 이용한 자동차용 허브 개발, 소성가공 CAE 워크샵 2001.

[11.7] 전만수, 소성가공 CAE 기술 워크샵 1996, 경상대학교.

[11.8] 엄재근, 강신길, 김진우, 박건형, 정순종, 김민철, 이민철, 전만수, 2010,알루미늄 로어암의 고수율 복합성형 공정의 유한요소해석, 소성가공학회 추계학술대회, pp. 242-245.

[11.9] 김민철, 엄재근, 박건형, 강신길, 정순종, 전만수, 2010, 긴 단조품의 측방향 열간 단조공정 중 금형의 실용적 구조해석 기술에 관한 연구, 한국소성가공학회 춘계학술대회, pp. 387-390.

[11.10] M.C. Lee, S.H. Chung, M.S. Joun, 2009, Automatic and precise simulation of multistage automatic cold-forging processes by combined analyses of two- and three-dimensional approaches, Int. J. Adv. Manuf. Tech., Vol. 41, pp. 1-7.

[11.11] E. Orowan, 1943, The calculation of roll pressure in hot and cold flat rolling, Proc. Inst. Mech. Eng., Vol. 150, pp.140-167.

[Chapter 12]

[12.1] W. G. Wusatowski, O, Piot, H. Teofil, 1969, Fundamentals of rolling, Wydawnictwo Slask, cop.

[12.2] H.K. Moon, J.S. Lee, S.J. Yoo, M.S. Joun, J,K. Lee, 2007, Hot deformation behavior of bearing steels, ASME J. Eng. Mat. Tech., Vol. 129, pp. 349-355.

[12.3] S.H. Crandall, N.C. Dahl, T.J. Lardner, 1978, An introduction to the mechanics of solids, 2nded., McGraw-Hill Companies, New York.

[12.4] M. Considère, 1885, L'Emploi du Fer de l'Acier dans les Constructions, Annales des Ponts et Chaussées, Vol. 9, pp. 574-775.

[12.5] M.S. Joun, I.S. Choi, J.G. Eom, M.C. Lee, 2007, Finite element analysis of tensile testing with emphasis on necking, Comp. Mat. Vol. 41, pp. 63-69.

[12.6] M.S. Joun, J.G. Eom, M.C. Lee, 2008, A new method for acquiring true stress-strain curves over a large range of strains using a tensile test and finite element method, Mech. Mater., Vol. 40, pp. 586-593.

[12.7] G. L. Ji, F. G. lL, Q. H. Li, H. Q. Li, Z. Li, 2011, A comparative study on Arrhenius-type constitutive model and artificial neural network model to predict high-temperature deformation behaviour in Aermet100 steel, Mater. Sci. Eng. A, Vol. 528, pp. 4774-4782

[12.8] C.M. Sellars, W.J. Mctegart, 1966, On the mechanism of hot deformation. Acta. Metall., Vol. 14, No. 9, pp. 1136-1138

[12.9] L.W. Meyer, A. Weise and F. Hahn, 1997, Comparison of Constitutive Flow Curve Relations in Cold and Hot Forming, J. Phys. IV France, Vol. 7, pp. C3-13-C3-20

[12.10] A. Cingara, H.J. McQueen, 1992, New formula for calculating flow curves from high temperature constitutive data for 300 austenitic steels, J. Mater. Process. Technol., Vol. 36, No. 1, pp. 31-42

[12.11] R. Ebrahimi, S.H. Zahiri, A. Najafizadeh, 2006, Mathematical modelling of the stress–strain curves of Ti-IF steel at high temperature, J. Mater. Process. Technol., Vol. 171, No. 2, pp. 301-305

[12.12] F. Fereshteh-saniee, F. Barati, H. Badnava, K. Fallah-Nejad, 2012, An exponential material model for prediction of the flow curves of several AZ series magnesium alloys in tension and compression, Mater. Design., Vol. 35, pp. 1-11

[12.13] M.K. Razali, M. Irani, M.S. Joun, 2018, Consideration of Voce’s flow stress model and its variants, Kor. Socie. Technol. Plast. Spring Meeting, Vol. 5, pp. 138-139

[12.14] M.S. Joun, S.T. Ahn, H.T. Jin, Y.H. Son, D.J. Yoon, 2017, Quantitative study of the Bauschinger effect in high-strength low-strain-hardening materials for metal forming applications, Int. J. Mat. Prod. Tech., Vol. 54, pp. 20-31.

[12.15] M.S. Joun, M.C. Kim, D.J. Yoon, H.J. Choi, Y.H. Son, 2011, Finite element analysis of central bursting defects occurring in cold forward extrusion, Proceedings of ASME-MSEC2011, Corvallis, Oregon, USA.

[Chapter 14]

[14.1] 정승원, 전만수, 2016, 금형 탄성변형을 고려한 축대칭 열간단조 공정의 강소성 유한요소해석, 2016 한국소성가공학회 춘계학술대회논문집, pp. 34-36

[14.2] 장성민, 김성현, 이민철, 제갈영진, 박태현, 조범제, 전만수, 2010, 대형크랭크샤프트 해머단조공정의 시뮬레이션 및 실험적 검증, 2010 한국소성가공학회 춘계학술대회논문집, pp. 228-231

[14.3] 박형근, 2001, 고속단조형의 2D 성형해석 적용, 소성가공 CAE 기술 워크샵 2001, 경상대학교

[14.4] 장성민, 2017, 열간단조 공정 시뮬레이션 및 개선 사례, MFCAE 2017, 창원.

[14.5] 신영철, 윤덕재, 유성기어 단조공정의 최적화, 2014, MFCAE 2014, 진주.

[14.6] J.G. Eom, Y.H. Son, S.W. Jeong, S.T. Ahn, S.M. Jang, D.J. Yoon, M.S. Joun, 2014, Effect of strain hardening capability on plastic deformation behaviors of material during metal forming, Mater. Design., Vol. 54, pp. 1010-1018

[14.7] International Conference on Numerical Methods for Metal Forming in Industry, Baden-Baden, Germany, 1994. Reference 13 of 14.9

[14.8] 이민철, 전만수, 2007, 삼차원 단조공정의 지능적 시뮬레이션, 2007 한국소성가공학회 춘계학술대회논문집, pp. 155-159

[14.9] MFCAE 2018, 진주.

[Chapter 15]

[15.1] S. Ito, N. Tsushima, H. Muro, 1982, Accelerated rolling contact fatigue test by a cylinder-to-ball rig. In: Hoo JJC (ed) Rolling contact fatigue testing of bearing steels. ASTM International, pp. 125-135.

[Chapter 16]

[16.1] http://naito-mfg.co.jp

[16.2] 김진호 홍석무, 2015, 사각형 판재성형 시 벽두께 증육을 위한 금형 및 공정 설계, 한국산학기술학회 논문지, Vol. 16, No. 9, pp. 5789-5794.

[16.3] 홍석무, 황지훈, 2014, HSS강판 판재소성가공 시 스프링백 최소화를 위한 드로우 비드 최적 설계, 한국생산제조시스템학회지, Vol. 23 No. 4, pp. 350-354.

[16.4] 김기태, 김승현, 유국호, 이춘우, 심현보, 2014, 고강도강 Reinforce Center Pillar의 스프링백 해석, 소성가공, Vol. 23 No. 5, pp. 297-302

[16.5] W. J. Chung, B. S. Kim, S. W. Lee, H. Y. Ryu, M. S. Joun, 2014, Finite element simulation of plate or sheet metal forming processes using tetrahedral MINI-elemnets, Journal of Mechanical Science and Technology, Vol. 28, pp. 237-243.

[16.6] H. J. Xu, Y. Q. Liu, Z.B. Zhang, T. Du, 2010, Solid-shell finite element method for progressive die forming simulation, Proc. Metal Forming 2010, pp. 721-724.

[16.7] 정석환, 정완진, 전만수, 2015, 체적요소를 이용한 사각컵 딥드로잉 공정의 탄소성 유한요소해석, 한국소성가공학회 춘계학술대회논문집, pp. 147-149.

[16.8] 정승원, 이성원, 전만수, 2013, 하중부과금형의 처리 기법을 이용한 파인블랭킹 공정의 유한요소해석, 한국소성가공학회 춘계학술대회논문집, pp. 263-266.

[16.9] 이광오, 김민철, 이진형, 김국용, 2018, 솔리드요소망을 적용한 판재성형공정 해석, 2018년도 한국산업융합학회 추계학술대회 논문집, pp.121-122.

[16.10] S. P. Keeler, 1965, Determination of forming limits in automotive stampings, Sheet Met. Ind., Vol. 42, pp. 683–91.

[16.11] G. M. Goodwin, 1968, Application of strain analysis to sheet metal forming problemsin the press shop, Trans. Soc. Automotive Eng., pp. 380–387.

[16.12] S. S. Hecker, 1975, Simple technique for determining forming limit curves, Sheet Met. Ind., Vol. 52, No. 11, pp. 671–676.

[16.13] 홍석무, 황지훈, 심재원, 정완진, 전만수, 2015, 클래드재료 후판단조 공정 중 발생한 파단 원인 규명, 한국소성가공학회 추계학술대회논문집, pp. 165-168.

[16.14] Donald R. Askeland, 2002, The science and engineering of materials 4th edition, Cengage learning.