Applied Mathematics and Mechanics (English Edition) ›› 2024, Vol. 45 ›› Issue (8): 1315-1334.doi: https://doi.org/10.1007/s10483-024-3132-7
• Articles • Previous Articles Next Articles
Jianghua KONG1,2, Bei DING1,2, Wei WANG1,2,*(), Zhixia WANG1,2, Juliang XIAO1,3, Hongyun QIU1,2
Received:
2024-04-03
Online:
2024-08-03
Published:
2024-07-31
Contact:
Wei WANG
E-mail:wwang@tju.edu.cn
Supported by:
2010 MSC Number:
Jianghua KONG, Bei DING, Wei WANG, Zhixia WANG, Juliang XIAO, Hongyun QIU. An electromagnetic semi-active dynamic vibration absorber for thin-walled workpiece vibration suppression in mirror milling. Applied Mathematics and Mechanics (English Edition), 2024, 45(8): 1315-1334.
Fig. 15
(a) The displacement signals; (b) FFT signals with and without ESADVA of -6 mm at spindle speed of 6 000 r/min; (c) the displacement signals; (d) FFT signals with and without ESADVA of -4 mm at spindle speed of 6 300 r/min; (e) the displacement signals; (f) FFT signals with and without ESADVA of 0 mm at the spindle speed of 6 600 r/min (color online)"
1 | DEL SOL, I., RIVERO, A., DE LACALLE, L. N. L., and GAMEZ, A. J. Thin-wall machining of light alloys: a review of models and industrial approaches. Materials, 12 (12), 2012 (2019) |
2 | DONG, H. Q., JI, Y. L., WANG, X. Z., and BI, Q. Z. Stability analysis of thin-walled parts end milling considering cutting depth regeneration effect. International Journal of Advanced Manufacturing Technology, 113 (11-12), 3319- 3328 (2021) |
3 | DU, J. A., and LONG, X. H. Chatter suppression for milling of thin-walled workpieces based on active modal control. Journal of Manufacturing Processes, 84, 1042- 1053 (2022) |
4 | WAN, M., DANG, X. B., ZHANG, W. H., and YANG, Y. Chatter suppression in the milling process of the weakly-rigid workpiece through a moving fixture. Journal of Materials Processing Technology, 299, 117293 (2022) |
5 | MAHMUD, A., MAYER, J. R. R., and BARON, L. Determining the minimum clamping force by cutting force simulation in aerospace fuselage pocket machining. International Journal of Advanced Manufacturing Technology, 80 (9-12), 1751- 1758 (2015) |
6 | BAO, Y., WANG, B., HE, Z. X., KANG, R. K., and GUO, J. Recent progress in flexible supporting technology for aerospace thin-walled parts: a review. Chinese Journal of Aeronautics, 35 (3), 10- 26 (2022) |
7 | WANG, S. Q., HE, C. L., LI, J. G., and WANG, J. Vibration-free surface finish in the milling of a thin-walled cavity part using a corn starch suspension. Journal of Materials Processing Technology, 290, 116980 (2021) |
8 | SHENG, X. J., and ZHANG, X. Fuzzy adaptive hybrid impedance control for mirror milling system. Mechatronics, 53, 20- 27 (2018) |
9 | ZHANG, S., BI, Q., JI, Y., and WANG, Y. Real-time thickness compensation in mirror milling based on modified Smith predictor and disturbance observer. International Journal of Machine Tools & Manufacture, 144, 103427 (2019) |
10 | TIAN, Y., XIAO, J. L., LIU, S. J., MA, S. J., LIU, H. T., and HUANG, T. Vibration and deformation suppression in mirror milling of thin-walled workpiece through a magnetic follow-up support fixture. Journal of Manufacturing Processes, 99, 168- 183 (2023) |
11 | LIU, S. J., XIAO, J. L., TIAN, Y., MA, S. J., LIU, H. T., and HUANG, T. Chatter-free and high-quality end milling for thin-walled workpieces through a follow-up support technology. Journal of Materials Processing Technology, 312, 117857 (2023) |
12 | DENG, H. X., and GONG, X. L. Adaptive tuned vibration absorber based on magnetorheological elastomer. Journal of Intelligent Material Systems and Structures, 18 (12), 1205- 1210 (2007) |
13 | SUN, S. S., CHEN, Y., YANG, J., TIAN, T. F., DENG, H. X., LI, W. H., DU, H., and ALICI, G. The development of an adaptive tuned magnetorheological elastomer absorber working in squeeze mode. Smart Materials and Structures, 23 (7), 075009 (2014) |
14 | YUAN, L., SUN, S., PAN, Z., DING, D., GIENKE, O., and LI, W. Mode coupling chatter suppression for robotic machining using semi-active magnetorheological elastomers absorber. Mechanical Systems and Signal Processing, 117, 221- 237 (2019) |
15 | KWAK, M. K., YANG, D. H., and SHIN, J. H. Active vibration control of structures using a semi-active dynamic absorber. Noise Control Engineering Journal, 63 (3), 287- 299 (2015) |
16 | MCDAID, A. J., and MACE, B. R. A self-tuning electromagnetic vibration absorber with adaptive shunt electronics. Smart Materials and Structures, 22 (10), 105013 (2013) |
17 | CHANG, Y., ZHOU, J., WANG, K., and XU, D. Theoretical and experimental investigations on semi-active quasi-zero-stiffness dynamic vibration absorber. International Journal of Mechanical Sciences, 214, 106892 (2022) |
18 | MENG, K., GU, Y., LIU, Y., and MA, T. Transmissibility characteristics of semi-active vibration isolator based on controllable electro-magnetic negative stiffness. Journal of Vibration and Shock, 41 (7), 228- 234 (2022) |
19 | WANG, Q., ZHOU, J., WANG, K., LIN, Q., XU, D., and WEN, G. A compact quasi-zero-stiffness device for vibration suppression and energy harvesting. International Journal of Mechanical Sciences, 250, 108284 (2023) |
20 | WANG, Q., ZHOU, J., WANG, K., GAO, J., LIN, Q., CHANG, Y., XU, D., and WEN, G. Dual-function quasi-zero-stiffness dynamic vibration absorber: low-frequency vibration mitigation and energy harvesting. Applied Mathematical Modelling, 116, 636- 654 (2023) |
21 | MOFIDIAN, S. M. M., and BARDAWEEL, H. A dual-purpose vibration isolator energy harvester: experiment and model. Mechanical Systems and Signal Processing, 118, 360- 376 (2019) |
22 | MOFIDIAN, S. M. M., and BARDAWEEL, H. Theoretical study and experimental identification of elastic-magnetic vibration isolation system. Journal of Intelligent Material Systems and Structures, 29 (18), 3550- 3561 (2018) |
23 | CAI, Q., and ZHU, S. The nexus between vibration-based energy harvesting and structural vibration control: a comprehensive review. Renewable and Sustainable Energy Reviews, 155, 111920 (2022) |
24 | XIE, L., LI, J., LI, X., HUANG, L., and CAI, S. Damping-tunable energy-harvesting vehicle damper with multiple controlled generators: design, modeling and experiments. Mechanical Systems and Signal Processing, 99, 859- 872 (2018) |
25 | YAN, B., WANG, K., KANG, C. X., ZHANG, X. N., and WU, C. Y. Self-sensing electromagnetic transducer for vibration control of space antenna reflector. IEEE/ASME Transactions on Mechatronics, 22 (5), 1944- 1951 (2017) |
26 | GRIFFITHS, D. J. Introduction to Electrodynamics, Pearson Education, New York (2014) |
27 | NGUYEN, H. T., DENTCHO, G., and HAMZEH, B. Mono-stable and bi-stable magnetic spring based vibration energy harvesting systems subject to harmonic excitation: dynamic modeling and experimental verification. Mechanical Systems and Signal Processing, 134, 106361 (2019) |
28 | NGUYEN, H. T., GENOV, D. A., and BARDAWEEL, H. Vibration energy harvesting using magnetic spring based nonlinear oscillators: design strategies and insights. Applied Energy, 269, 115102 (2020) |
[1] | Zeyu CHAI, J. T. HAN, Xuyuan SONG, Jian ZANG, Yewei ZHANG, Zhen ZHANG. Theoretical and experimental investigations on an X-shaped vibration isolator with active controlled variable stiffness [J]. Applied Mathematics and Mechanics (English Edition), 2024, 45(8): 1371-1386. |
[2] | Long ZHAO, Zeqi LU, Hu DING, Liqun CHEN. A viscoelastic metamaterial beam for integrated vibration isolation and energy harvesting [J]. Applied Mathematics and Mechanics (English Edition), 2024, 45(7): 1243-1260. |
[3] | Dongxing CAO, Junru WANG, Xiangying GUO, S. K. LAI, Yongjun SHEN. Recent advancement of flow-induced piezoelectric vibration energy harvesting techniques: principles, structures, and nonlinear designs [J]. Applied Mathematics and Mechanics (English Edition), 2022, 43(7): 959-978. |
[4] | Xiangjian DUAN, Dongxing CAO, Xiaoguang LI, Yongjun SHEN. Design and dynamic analysis of integrated architecture for vibration energy harvesting including piezoelectric frame and mechanical amplifier [J]. Applied Mathematics and Mechanics (English Edition), 2021, 42(6): 755-770. |
[5] | Jin ZENG, Hui MA, Kun YU, Zhitao XU, Bangchun WEN. Coupled flapwise-chordwise-axial-torsional dynamic responses of rotating pre-twisted and inclined cantilever beams subject to the base excitation [J]. Applied Mathematics and Mechanics (English Edition), 2019, 40(8): 1053-1082. |
[6] | Qianli ZHAO, Zhili SUN. In-plane forced vibration of curved pipe conveying fluid by Green function method [J]. Applied Mathematics and Mechanics (English Edition), 2017, 38(10): 1397-1414. |
[7] | Zhiyong AI, Lihua WANG. Layer-element analysis of multilayered saturated soils subject to axisymmetric vertical time-harmonic excitation [J]. Applied Mathematics and Mechanics (English Edition), 2017, 38(9): 1295-1312. |
[8] | DING Bo-Yang;DANG Gai-Hong;YUAN Jin-Hua. Lamb’s integral formulas of two-phase saturated medium for soil dynamic with drainage [J]. Applied Mathematics and Mechanics (English Edition), 2010, 31(09): 1113-1124. |
[9] | ZHANG Zhi-liang;CHENG Chang-jun. Forced vibration and special effects of revolution shells in turning point range [J]. Applied Mathematics and Mechanics (English Edition), 2007, 28(7): 861-872 . |
[10] | HU Ji-yun;YIN Xue-gang;YU Cui-ping. ELECTROMECHANICAL COUPLING MODEL AND ANALYSIS OF TRANSIENT BEHAVIOR FOR INERTIAL RECIPROCATION MACHINES [J]. Applied Mathematics and Mechanics (English Edition), 2005, 26(11): 1499-1505 . |
[11] | Chao FU, Kuan LU, Y. D. XU, Yongfeng YANG, F. S. GU, Yushu CHEN. Dynamic analysis of geared transmission system for wind turbines with mixed aleatory and epistemic uncertainties [J]. Applied Mathematics and Mechanics (English Edition), 2022, 43(2): 275-294. |
[12] | Jingming FAN, Bo CHEN, Yinghui LI. Closed-form steady-state solutions for forced vibration of second-order axially moving systems [J]. Applied Mathematics and Mechanics (English Edition), 2023, 44(10): 1701-1720. |
[13] | Zhiyuan WU, Linchuan ZHAO, Han YAN, Ge YAN, Ao CHEN, Wenming ZHANG. Multi-blade rubbing characteristics of the shaft-disk-blade-casing system with large rotation [J]. Applied Mathematics and Mechanics (English Edition), 2024, 45(1): 111-136. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||