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金属板料数控渐进成形工艺的研究现状
英文标题:Research status on NC incremental forming process for sheet metal
作者:鲁世红 付婧颐 丁腾飞 陈晟 
单位:南京航空航天大学 
关键词:渐进成形 金属板料 成形工艺优化 成形精度 表面质量 辅助装置 
分类号:TG306
出版年,卷(期):页码:2022,47(10):1-11
摘要:

数控渐进成形工艺作为无模成形技术之一,在钣金零件制造领域受到了广泛的关注与研究。总结了近年来金属板料数控渐进成形工艺的研究进展,综述了有关新型板料数控渐进成形工艺方面的研究现状,并全面地概述了板料数控渐进成形加工质量控制、成形工艺优化以及数控渐进成形辅助装置研发等方面的研究成果。现有研究和应用表明,不断深化开发和研究新型板料数控渐进成形技术并提高渐进成形零件的尺寸精度、形状精度是热点研究内容,而以全面优化工艺参数为手段,获得更高的加工质量是该技术研究的核心目标,同时一些新型板料数控渐进成形加工工艺的变形机制及成形件的微观组织变化与成形过程之间的联系尚有待于揭示和研究。

As one of the dieless forming technologies, NC incremental forming process has received extensive attention and research in the field of sheet metal parts manufacturing. Therefore, the research progress of sheet metal NC incremental forming technology in recent years was summarized, and the research status of new sheet metal NC incremental forming process was stated. Then, the research results of the processing quality control and forming process optimization of sheet metal NC incremental forming, and the research and development of NC incremental forming auxiliary device were introduced comprehensively. Existing research and applications show that the continuous deepening of the development and research of new sheet metal NC incremental forming technology and improving of the dimensional and shape accuracies of incremental forming parts are hot research topics. While using comprehensive optimization of process parameters as a means to obtain higher processing quality is the core target of this technology research. Simultaneously, the deformation mechanism of some new sheet metal NC incremental forming processes and the relationship between the microstructure changes of formed parts and the forming process need to be revealed and studied.
基金项目:
作者简介:
鲁世红(1964-),女,博士,教授,E-mail:lush@nuaa.edu.cn
参考文献:

[1]莫健华, 叶春生, 黄树槐, .金属板料数控渐进成形技术[J].航空制造技术, 2002, (12): 25-27.

Mo J H, Ye C S, Huang S H, et al, Sheet metal CNC incremental forming[J]. Aeronautical Manufacturing Technology, 2002, (12): 25-27.

[2]松原茂夫. 数値制御逐次成形法[J]. プラスチック加工,1994, 35(406)1258-1263.

Matsubara Shigeo. Numerically controlled successive forming method[J]. Plasticity and Processing, 1994, 35(406)1258-1263.

[3]Ambrogio G, Napoli L D, Filice L, et al. Application of incremental forming process for high customised medical product manufacturing[J]. Journal of Materials Processing Technology, 2005, 162-163:156-162.

[4]范国强, 高霖, 刘鹏, . TC4板料电辅助加热数控渐进成形工艺分析及优化[J]. 南京航空航天大学学报, 2010, 42(2): 238-243.

Fan G Q, Gao L, Liu P, et al. Technology analysis and optimization for electric hot incremental forming of Ti-6Al-4V sheet[J]. Journal of Nanjing University of Aeronautics & Astronautics, 2010, 42(2): 238-243.

[5]Valoppi B, Ghiotti A, Bruschi S. Elevated temperature behaviour of Ti6Al4V sheets with thermoelectrochemical modified surfaces for biomedical applications[J]. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 2017, 231(6): 523-533.

[6]Li X F, Wang S, Zhao S J, et al. Effect of pulse current on the tensile deformation of SUS304 stainless steel[J]. Journal of Materials Engineering and Performance, 2015, 24(12): 5065-5070.

[7]敖冬威. Ti-6Al-4V钛合金板料电脉冲辅助单点渐进成形研究[D]. 济南:山东大学, 2019.

Ao D W. Research on Electropulsing Assisted Single Incremental Forming of Ti-6Al-4V Titanium Alloy Sheet[D]. Jinan: Shandong University, 2019.

[8]Gao L T, Zhao Y X, Yu Z Q, et al. Formability analysis of electrically assisted doubleside multipoint incremental sheet forming[J]. The International Journal of Advanced Manufacturing Technology, 2020, 108(11-12): 3405-3417.

[9]Cao J J, Huang Y, Reddy N V, et al. Incremental sheet metal forming: Advances and challenges [A]. Proceedings of 9th International Conference on Technology of Plasticity[C]. Gyeongju,2018.

[10]Xu D K, Lu B, Cao T T, et al. Enhancement of process capabilities in electricallyassisted double sided incremental forming[J]. Materials & Design, 2016, 92: 268-280.

[11]Meier H, Smukala V, Dewald O, et al. Two point incremental forming with two moving forming tools[J]. Key Engineering Materials, 2007, 344: 599-605.

[12]Vihtonen L, Puzik A, Katajarinne T. Comparing two robot assisted incremental forming methods: Incremental forming by pressing and incremental hammering[J]. International Journal of Material Forming, 2008, 1(1): 1207-1210.

[13]Belchior J, Guillo M, Courteille E, et al. Offline compensation of the tool path deviations on robotic machining: Application to incremental sheet forming[J]. Robotics and ComputerIntegrated Manufacturing, 2013, 29(4): 58-69.

[14]Lu B, Fang Y, Xu D K, et al. Investigation of material deformation mechanism in double side incremental sheet forming[J].International Journal of Machine Tools and Manufacture, 2015, 93: 37-48.

[15]Okoye C N, Jiang J H, Hu Z D. Application of electromagneticassisted stamping (EMAS) technique in incremental sheet metal forming[J]. International Journal of Machine Tools and Manufacture, 2006, 46(11): 1248-1252.

[16]Fang J X, Mo J H, Li J J. Microstructure difference of 5052 aluminum alloys under conventional drawing and electromagnetic pulse assisted incremental drawing[J]. Materials Characterization, 2017, 129: 88-97.

[17]Fang J X, Mo J H, Cui X H, et al. Electromagnetic pulseassisted incremental drawing of aluminum cylindrical cup[J]. Journal of Materials Processing Technology, 2016, 238: 395-408.

[18]Cui X H, Mo J H, Li J J, et al. Electromagnetic incremental forming(EMIF): A novel aluminum alloy sheet and tube forming technology[J]. Journal of Materials Processing Technology, 2014, 214(2): 409-427.

[19]赵升吨,李泳峄,范淑琴.超声振动塑性加工技术的现状分析[J].中国机械工程, 2013, 24(6): 835-840.

Zhao S D, Li Y Y, Fan S Q. Status analysis of plastic processing technology with ultrasonic vibration[J]. China Mechanical Engineering, 2013, 24(6): 835-840.

[20]Li Y L, Zhai W D, Wang Z J, et al. Investigation on the material flow and deformation behavior during ultrasonicassisted incremental forming of straight grooves[J]. Journal of Materials Research and Technology, 2020, 9(1): 433-454.

[21]翟维东. 铝合金薄板超声辅助渐进成形表面质量及表面材料流动特性探究[D]. 济南:山东大学, 2020.

Zhai W D. Study on the Surface Quality and Surface Material Flow Behavior During Ultrasonicassisted Incremental Sheet Forming of Aluminum Alloy Sheets[D]. Jinan: Shandong University, 2020.

[22]Yang M S, Bai L, Lin Y B, et al. Research on the radial accuracy of ultrasonic vibrationassisted single point incremental forming parts[J]. International Journal of Aerospace Engineering, 2019, (3): 1-9.

[23]李燕乐, 陈晓晓, 李方义, . 金属板料数控渐进成形工艺的研究进展[J].精密成形工程, 2017, 9(1): 1-9.

Li Y L, Chen X X, Li F Y, et al. Research development on incremental sheet metal forming process[J]. Journal of Netshape Forming Engineering, 2017, 9(1): 1-9.

[24]Allwood J M, King G P F, Duflou J R. A structured search for applications of the incremental sheet forming process by product segmentation[J]. Proceedings of the Institution of Mechanical Engineers Part B: Journal of Engineering Manufacture, 219(2): 239-244.

[25]Micari F, Ambrogio G, Filice L. Shape and dimensional accuracy in single point incremental forming: State of the art and future trends[J]. Journal of Materials Processing Technology, 2007, 191(1-3): 390-395.

[26]龚攀. 基于闭环控制的板材数控渐进成形回弹补偿[D].武汉:华中科技大学, 2008.

Gong P. Springback Compensation Strategy of Sheet Metal CNC Incremental Forming Based on Closedloop Control [D]. Wuhan: Huazhong University of Science and Technology, 2008.

[27]Sbayti M, Bahloul R, Belhadjsalah H. Efficiency of optimization algorithms on the adjustment of process parameters for geometric accuracy enhancement of denture plate in single point incremental sheet forming [J]. Neural Computing and Applications, 2020, 32(13): 8829-8846.

[28]Neveux T C, Roth J T, Ragai I. Springback induced in single point incrementally formed 2024-T3 aluminum of various thicknesses[A]. The 11th International Manufacturing Science and Engineering Conference[C]. Virginia: ASME, 2016.

[29]Pacheco P A P, Silveira M E. Numerical simulation of electric hot incremental sheet forming of 1050 aluminum with and without preheating[J]. The International Journal of Advanced Manufacturing Technology, 2018, 94(9-12): 3097-3108.

[30]Li Z F, Lu S H, Zhang T, et al. 1060 Al electric hot incremental sheet forming process: Analysis of dimensional accuracy and temperature[J]. Transactions of the Indian Institute of Metals, 2018,71(4): 961-970.

[31]Behera A K, Ou H G. Effect of stress relieving heat treatment on surface topography and dimensional accuracy of incrementally formed grade titanium sheet parts [J]. The International Journal of Advanced Manufacturing Technology, 2016, 87(9-12): 3233-3248.

[32]Wang H Y, Zhang R F, Zhang H, et al. Novel strategies to reduce the springback for doublesided incremental forming[J]. The International Journal of Advanced Manufacturing Technology, 2018, 96(1-4): 973-979.

[33]Praveen K, Lingam R, Venkata Reddy N. Tool path design system to enhance accuracy during double sided incremental forming: An analytical model to predict compensations for small/large components[J]. Journal of Manufacturing Processes, 2020, 58: 510-523.

[34]Peng W X, Li M, Lu B, et al. Experimental and finite element investigation of overbending phenomenon in doublesided incremental forming (DSIF) of aluminium sheets[J]. Procedia Manufacturing, 2019, 29: 59-66.

[35]Trzepieciński T, Kubit A, Dzierwa A, et al. Surface finish analysis in single point incremental sheet forming of ribstiffened 2024T3 and 7075-T6 alclad aluminium alloy panels[J]. Materials, 2021, 14(7): 1640.

[36]Wang Z W, Cai S, Chen J. Experimental investigations on friction stir assisted single point incremental forming of lowductility aluminum alloy sheet for higher formability with reasonable surface quality[J]. Journal of Materials Processing Technology, 2020, 277: 116488.

[37]徐青. 金属板料单点增量成形的摩擦机理及影响研究[D]. 西安: 西安理工大学, 2018.

Xu Q.Research on the Friction Mechanism and Influence of Single Point Incremental Forming of Sheet Metal[D]. Xi′an: Xi′an University of Technology, 2018.

[38]Durante M, Formisano A, Boccarusso L, et al. Influence of coldrolling on incremental sheet forming of polycarbonate[J]. Materials and Manufacturing Processes, 2020, 35(3): 328-336.

[39]宋修成. 板料数控渐进成形件的表面质量控制技术研究[D]. 上海: 上海交通大学, 2013.

Song X C. Research on Surface Quality Control in Incremental Sheet Forming[D]. Shanghai: Shanghai Jiao Tong University, 2013.

[40]Azevedo N G, Farias J S, Bastos R P, et al. Lubrication aspects during single point incremental forming for steel and aluminum materials[J]. International Journal of Precision Engineering and Manufacturing, 2015, 16(3): 589-595.

[41]Li Z F, Lu S H, Zhang T, et al. A simple and lowcost lubrication method for improvement in the surface quality of incremental sheet metal forming[J]. Transactions of the Indian Institute of Metals, 2018, 71(7): 1715-1719.

[42]范国强, 高霖, 李万军, . TC4板料电辅助加热数控渐进成形时摩擦和润滑的研究[J]. 机械科学与技术, 2010, 29(2): 201-205.

Fan G Q, Gao L, Li W J, et al. A study of the friction and lubrication in electric hot incremental forming of TC4 sheet[J]. Mechanical Science and Technology for Aerospace Engineering, 2010, 29(2): 201-205.

[43]卢仁伟, 高霖, 史晓帆. 0Cr18Ni9板料数控渐进成形润滑技术研究[J]. 机械科学与技术, 2012, 31(4): 597-599.

Lu R W, Gao L, Shi X F. A lubrication technology for incremental forming of 0Cr18Ni9 stainless steel[J]. Mechanical Science and Technology for Aerospace Engineering, 2012, 31(4): 597-599.

[44]Maa F, Hahn M, Tekkaya A E. Interaction of process parameters, forming mechanisms, and residual stresses in single point incremental forming[J]. Metals, 2020,10(5): 656.

[45]光凯惠,姚运飞,吴田莉,.TC4钛合金板电磁感应加热渐进成形的成形极限研究[J].热加工工艺,2021,50(5):86-89.

Guang K H, Yao Y F, Wu T L, et al. Study on forming limit of incremental foriming of TC4 titanium alloy sheet by electromagnetic induction heating[J]. Hot Working Technology, 2021, 50(5):86-89.

[46]Ajay C V. Prediction of forming force in incremental forming of Ti-6Al-4V alloy material[J]. Materials Today: Proceedings, 2021, 39: 1594-1599.

[47]Xiao X, Kim J J, Hong M P, et al. RSM and BPNN modeling in incremental sheet forming process for AA5052 sheet: Multiobjective optimization using genetic algorithm[J]. Metals, 2020, 10(8): 1003.

[48]毛志翔, 鲁世红, 李正芳, . 电加热渐进成形工艺参数优化及成形温度预测[J]. 热加工工艺, 2019, 48(19): 100-103.

Mao Z X, Lu S H, Li Z F, et al. Optimization of process parameters and prediction of forming temperature for electroheating incremental forming[J]. Hot Working Technology, 2019, 48(19): 100-103.

[49]Kumar A, Gulati V, Kumar P, et al. Parametric effects on formability of AA2024-O aluminum alloy sheets in single point incremental forming[J]. Journal of Materials Research and Technology, 2019, 8(1): 1461-1469.

[50]Baharudin B T H T, Azpen Q M, Sulaima S, et al. Experimental investigation of forming forces in frictional stir incremental forming of aluminum alloy AA6061-T6[J].Metals, 2017, 7(11):484.

[51]Ou L, An Z G, Gao Z Y, et al. Effects of process parameters on the thickness uniformity in twopoint incremental forming (TPIF) with a positive die for an irregular stepped part[J]. Materials, 2020, 13(11): 2634.

[52]Attanasio A, Ceretti E, Giardini C. Optimization of tool path in two points incremental forming[J]. Journal of Materials Processing Technology, 2006, 177(1-3): 409-412.

[53]朱虎,敖成.成形轨迹对数控渐进成形质量的影响[J].锻压技术, 2021,46(3):64-69.

Zhu H, Ao C. Influence of forming track on CNC progressive forming quality[J]. Forging & Stamping Technology, 2021, 46(3):64-69.

[54]Li X Q, Han K, Xu P, et al. Experimental and theoretical analysis of the thickness distribution in multistage two point incremental sheet forming[J]. The International Journal of Advanced Manufacturing Technology, 2020,107(1-2): 191-203.

[55]Lingam R, Prakash O, Belk J H, et al. Automatic feature recognition and tool path strategies for enhancing accuracy in double sided incremental forming[J]. International Journal of Advanced Manufacturing Technology, 2017,88(5): 1639-1655.

[56]Moser N, Zhang Z X, Ren H Q, et al. Effective forming strategy for doublesided incremental forming considering inplane curvature and tool direction[J]. CIRP Annals Manufacturing Technology, 2016, 65(1): 265-268.

[57]Xu D K, Lu B, Cao T T, et al. Enhancement of process capabilities in electricallyassisted double sided incremental forming[J]. Materials & Design, 2016, 92: 268-280.

[58]张欢. 面向工艺特征的铝合金钣金件渐进成形技术与变形特性分析[D]. 上海:上海交通大学, 2019.

Zhang H. Process Development and Deformation Characteristics Analysis on Featureoriented Incremental Sheet Metal Forming of Aluminium Alloy[D]. Shanghai: Shanghai Jiao Tong University, 2019.

[59]Lamminen L. Incremental sheet forming with an industrial robotforming limits and their effect on component design[J]. Advanced Materials Research, 2005, 6: 457-464.

[60]Duflou J R, Callebaut B, Verbert J, et al. Laser assisted incremental forming: Formability and accuracy improvement[J]. CIRP AnnalsManufacturing Technology, 2007, 56(1): 273-276.

[61]Meier H, Zhu J, Buff B, et al. CAx process chain for two robots based incremental sheet metal forming[J]. Procedia CIRP, 2012, 3: 37-42.

[62]毛锋, 莫健华, 黄树槐. 金属板材数控无模成形机及其应用程序开发[J]. 锻压机械, 2002, (2): 38-41.

Mao F, Mo J H, Huang S H. CNC sheet forming machine without diedevelopment of its application program [J]. Metalforming Machinery, 2002(2): 38-41.

[63]Liu R Z, Lu B, Xu D K, et al. Development of novel tools for electricityassisted incremental sheet forming of titanium alloy[J]. The International Journal of Advanced Manufacturing Technology, 2016, 85(5-8): 1137-1144.

[64]Nasulea D, Oancea G. Achieving accuracy improvements for singlepoint incremental forming process using a circumferential hammering tool[J]. Metals, 2021,11(3): 482.

[65]张春.自阻电加热渐进成形温度控制系统的研究[D]. 南京: 南京航空航天大学, 2019.

Zhang C. Research on Temperature Control System of Selfresistance Electrical Heating Incremental Forming[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2019.

[66]李华溢. 基于可成形性的数控渐进成形轨迹生成与规划[D]. 沈阳:沈阳航空航天大学, 2016.

Li H Y. NC Incremental Forming Path Generation And Planning Based on Formability[D]. Shenyang: Shenyang Aerospace University, 2016.

[67]崔超. 基于PMAC的渐进成形数控系统研究与开发[D].南京:南京航空航天大学, 2011.

Cui C. Research and Development of CNC System for Incremental Forming based on PMAC[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2011.

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