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中国塑料 ›› 2020, Vol. 34 ›› Issue (10): 94-99.DOI: 10.19491/j.issn.1001-9278.2020.10.016
叶巴丁1, 陆晨风2, 储能奎2, 沈海波2, 李斌斌2, 谢鹏程1()
收稿日期:
2020-03-17
出版日期:
2020-10-26
发布日期:
2020-10-26
YE Bading1, LU Chenfeng2, CHU Nengkui2, SHEN Haibo2, LI Binbin2, XIE Pengcheng1()
Received:
2020-03-17
Online:
2020-10-26
Published:
2020-10-26
Contact:
Pengcheng XIE
E-mail:xiepc@foxmail.com
摘要:
介绍了全电动注塑机的特色,综述了国内外全电动注塑机在精密注塑、智能注塑、高效注塑和绿色注塑方面的研究进展,并对全电动注塑机在汽配电子行业中的应用作了简单介绍。对双电机同步控制技术的逐渐成熟为全电动注塑机实现大型化提供了助力,全电动注塑机高效、精密、智能、节能、环保的优势在汽配电子行业显示了很好的应用前景。
中图分类号:
叶巴丁, 陆晨风, 储能奎, 沈海波, 李斌斌, 谢鹏程. 全电动注塑机研究进展及在汽配电子行业中的应用[J]. 中国塑料, 2020, 34(10): 94-99.
YE Bading, LU Chenfeng, CHU Nengkui, SHEN Haibo, LI Binbin, XIE Pengcheng. Research Progress in All⁃Electric Injection Molding Machine and Its Application in Auto Parts Electronic Industry[J]. China Plastics, 2020, 34(10): 94-99.
机型 | 效率 | 反应时间/ms | 耗电(以液压注塑机耗电为参考) | 耗水(以液压注塑机耗水为参考) |
---|---|---|---|---|
液压注塑机 | 0.6 | 80 | 1 | 1 |
全电动注塑机 | 0.84 | 30 | 0.2~0.75 | 0.1~0.2 |
机型 | 效率 | 反应时间/ms | 耗电(以液压注塑机耗电为参考) | 耗水(以液压注塑机耗水为参考) |
---|---|---|---|---|
液压注塑机 | 0.6 | 80 | 1 | 1 |
全电动注塑机 | 0.84 | 30 | 0.2~0.75 | 0.1~0.2 |
1 | 邓荣坚, 王继武, 曹远兵. 全电动注塑机的研究与开发[J]. 塑料, 2012, 41(02):112⁃114+63. |
DENG R J, WANG J W, CAO Y B. Researches And Development of All⁃Electric Injection Molding Machines[J]. Plastics, 2012, 41(02):112⁃114+63. | |
2 | 韦 凤. 全电动注塑机的特点及应用[J]. 科技风, 2014(11):120+122. |
WEI F. Features And Application of All Electric Injection Molding Machine[J]. Technology Wind, 2014(11):120+122. | |
3 | BANG Y B, ITO S. Linear Motor Drive Ultrahigh⁃Speed Injection Moulding Machine[J]. Proceedings of The Institution of Mechanical Engineers Part B Journal of Engineering Manufacture, 2002, 216(5):773⁃781. |
4 | WANG Y D, CHANG P Q, WU Y F, et al. Design and Fabrication of an All⁃Electric Tiebarless Injection Molding Machine[C]// Mechatronics, 2005. ICM '05. IEEE International Conference on. IEEE, 2005. |
5 | POTSCH G, ROBERS T. Reaching The Goal in A Distinctive Way[J]. Kunststoffe Plast Europe, 2004, 94(10):175⁃179. |
6 | 向 鹏, 李绣峰, 杜遥雪. 全电动注塑机的特点及应用领域[J]. 现代塑料加工应用, 2007(01):52⁃54. |
XIANG P, LI X F, DU Y X. Character And Application Area of All⁃Electric Injection Moulding Machine[J]. Modern Plastics Processing And Applications, 2007(01):52⁃54. | |
7 | 艾邦团队. 2019年德国K展总结精华版[EB/OL].[2019⁃11⁃1].. |
8 | 王兴天.注塑技术与注塑机[M].北京:化学工业出版社,2005:1⁃2. |
9 | CHRISTOPH F, KEMMETMÜLLER W, ANDREAS K. Control⁃Oriented Modeling of Servo⁃Pump Driven Injection Molding Machines in The Filling And Packing Phase[J]. Mathematical & Computer Modelling of Dynamical Systems, 2018:1⁃21. |
10 | 滕秀才. 高效节能注塑机关键技术分析研究[D]. 广州:广东工业大学, 2014. |
11 | 陈晓华. 全电动注塑机的绿色生产技术[J]. 橡塑技术与装备, 2019, 45(08):33⁃37. |
CHEN X H. Green Production Technology of All Electric Injection Molding Machine[J]. China Rubber/Plastics Technology And Equipment, 2019, 45(08):33⁃37. | |
12 | JUNG H S, YOO J H. Injection Unit Precision Inspection According to Control Method of Injection Molding Machine[J]. Journal of Korea Academia⁃Industrial Cooperation Society, 2016, 17(4): 414⁃419. |
13 | AKASAKA N. A Synchronous Position Control Method at Pressure Control Between Multi⁃AC Servomotors Driven in Injection Molding Machine[C]// SICE 2003 Annual Conference. 2003. |
14 | 颜晓河. 全电动注塑机螺杆速度的控制研究[J]. 电工技术, 2014(12):52⁃53. |
YAN X H. Research on Screw Speed Control of All Electric Injection Molding Machine[J]. Electric Engineering, 2014(12):52⁃53. | |
15 | 陈茂林, 刘知贵, 罗 亮. 注塑机注射速度控制研究现状和发展综述[J]. 计算技术与自动化, 2015,34(03):60⁃63. |
CHEN M L, LIU Z G, LUO L. Current Situation and Development of Injection Speed Control of Injection Molding Machine[J]. Computing Technology And Automation, 2015,34(03):60⁃63. | |
16 | CHANG P C, HWANG S J, LEE H H, et al. Design and Verification of A Clamping System for Micro⁃Injection Molding Machine[J]. Transactions of The Canadian Society for Mechanical Engineering, 2006, 30(3):413⁃428. |
17 | DAWSON A J, COATES P D, COLLIS R, et al. Injection Moulding Process Assessment by Energy Monitoring[J]. Plastics Rubber And Composites, 2004, 33(1):19⁃25. |
18 | 赵一心. 基于模糊自适应PID注塑机电控系统研究[J]. 塑料工业, 2016, 44(08):58⁃62. |
ZHAO Y X. Study on Electronic Control System of Injection Molding Machine Based on Fuzzy Adaptive PID[J]. China Plastics Industry, 2016, 44(08):58⁃62. | |
19 | 马立军, 廖贵成, 李瑞娟. 粒子群自整定变论域模糊控制算法在全电动注塑机中的应用[J]. 塑料科技, 2019, 47(08):28⁃32. |
MA L J, LIAO G C, LI R J. Application of Particle Swarm Self⁃Tuning Variable Universe Fuzzy | |
Control Algorithm in All Electric Injection Molding Machine[J]. Plastics Science And Technology, 2019, 47(08):28⁃32. | |
20 | YU S R, ZENG L Y. Control Strategy of Screw Motion During Plasticizing Phase for All⁃Electric Injection Molding Machine[J]. International Journal of Automation Technology, 2018, 12(2):215⁃222. |
21 | WU H. Design of Permanent Magnet Synchronous Motor Speed Control System Based on SVPWM[C]// 2017 5TH International Conference on Computer⁃Aided Design, Manufacturing, Moldeling and Simulation(CDMMS2017). |
LLCAIP Publishing, 2017. | |
22 | 胡 浪. 全电动注塑机控制系统研发[D]. 武汉:华中科技大学, 2017. |
23 | JACHOWICZ T. All⁃Electric Injection Molding Machines[J]. Polimery Warsaw, 2007, 52(2):99⁃105. |
24 | HSU Y L, HUANG M S, FUNG R F. Adaptive Tracking Control of A Toggle Mechanism for The Electric Injection Molding Machines[C]// Chinese Control Conference. 2010. |
25 | CHO S H, HELDUSER S. Robust Motion Control of A Clamp⁃Cylinder for Energy⁃Saving Injection Moulding Machines[J]. Journal of Mechanical Science & Technology, 2008, 22(12):2 445⁃2 453. |
26 | 刘晓彬. 1300KN全电动注塑机合模机构设计及其优化分析[D]. 北京:北京化工大学, 2016. |
27 | 李 波. 全电动注塑机合模机构的优化设计研究[D]. 西安:陕西科技大学, 2016. |
28 | 何添成. 电动注塑机电动—机械式负后角型肘杆合模机构的优化[D]. 广州:华南理工大学, 2016. |
29 | 李 辰. 全电动注塑机合模机构的优化设计及弹流润滑分析[D]. 济南:山东大学, 2015. |
30 | TOENSMEIER P A. Direct⁃Drive Motor and Nonlinear Actuator Boost Productivity of Electric Injection Unit[J]. Plastics Engineering, 2007, 63(4):38⁃40. |
31 | HU G, XIA A, LI Z, et al. Research on Injection Molding Machine Drive System Based on Model Predictive Control[C]// International Conference on Robotics & Automation Engineering. 2017. |
32 | ZHAO P, ZHOU H, HE Y, et al. A Nondestructive Online Method for Monitoring the Injection Molding Process by Collecting and Analyzing Machine Running Data[J]. The International Journal of Advanced Manufacturing Technology, 2014, 72(5⁃8):765⁃777. |
33 | VELIGORSKYI O, CHAKIROV R, KHOMENKO M, et al. Artificial Neural Network Motor Control for Full⁃Electric Injection Moulding Machine[C]// IEEE International Conference on Industrial Technology. IEEE, 2019. |
34 | LI M H, LI Z Q. Based on Vector Control of All⁃Electric Injection Molding Machine Control System Design[J]. Advanced Materials Research, 2012, 490⁃495:2 210⁃2 214. |
35 | 姜思佳, 李 炜, 罗永有. GAAS优化PID算法在全电动注塑机注射系统中的应用[J]. 塑料, 2019, 48(2):86⁃89. |
LI S J, LI W, LUO Y Y. Application of GAAS Optimization PID Algorithm in Injection System of | |
All⁃ Electric Injection Molding Machine[J]. Plastics, 2019, 48(2):86⁃89. | |
36 | 邱扬法. 全电动超高速注射成型关键技术研究[D]. 北京:北京化工大学, 2015. |
37 | KERBER M. Control Functions with Artificial Intelligence⁃A1 Brings Advantages in Precision Injection Moulding with All⁃Electric Machines[J]. Kunststoffe Plast Europe, 2002, 92(12):34. |
38 | MIANEHROW H, ABBASIAN A. Energy Monitoring of Plastic Injection Molding Process Running with Hydraulic Injection Molding Machines[J]. Journal of Cleaner Production, 2017, 148(APR.1):804⁃810. |
39 | BLEIER H, KOSTHORST T. Virtually Equal in Terms of Precision[J]. Kunststoffe Plast Europe, 2004, 94(1):38⁃42. |
40 | THIRIEZ A, GUTOWSKI T. An Environmental Analysis of Injection Molding[C]//14th IEEE International Symposium on Electronics And The Environment (ISEE)/7th Electronics Recycling Summit. 2006. |
41 | ZHAO H J, REN L, GAO Y, et al. A Comprehensive Study of Energy Conservation in Electric⁃Hydraulic Injection⁃Molding Equipment[J]. Energies, 2017, 10(11):1 768. |
42 | LIU H, ZHANG X G, QUAN L, et al. Research on Energy Consumption of Injection Molding Machine Driven by Five Different Types of Electro⁃Hydraulic Power Units[J]. Jouenal of Cleaner Production, 2020, 242:118355. |
43 | SPIERING T, KOHLITZ S, SUNDMAEKER H, et al. Energy Efficiency Benchmarking for Injection Moulding Processes[J]. Robotics and Computer⁃Integrated Manufacturing, 2015, 36:45⁃59. |
44 | ELDUQUE A, ELDUQUE D, CLAVERIA I, et al. Influence of Material and Injection Molding Machine’s Selection on the Electricity Consumption And Environmental Impact of the Injection Molding Process: an Experimental Approach[J]. International Journal of Precision Engineering and Manufacturing⁃Green Technology, 5(1):13⁃28. |
45 | KLAUS M. 15 Things to Know About Servo⁃Driven Injection Machines[J]. Plastics Technology, 2017, 63(3):46⁃51. |
46 | ZHANG H W, CHEN C J, DONG J X. Development of GE Series Motion Controller Utilized in Full Electric Plastic Injection Molding Machine[M]// Applied Informatics And Communication. Springer Berlin Heidelberg, 2011. |
47 | 走进“2019年中国国际橡塑展”[J]. 现代化工,2019, 39(6):232⁃234. |
Enter “China International Rubber and Plastic Exhibition2019”[J]. Modern Chemical Industry,2019, 39(6):232⁃234. | |
48 | 艾邦团队. 从K展看:IMD模内装饰注塑技术发展趋势[EB/OL].[2019⁃11⁃18].. |
49 | 伊之密推出全电动注塑机.[EB/OL].[2019⁃03⁃10].. |
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