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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 電機工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/25037
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor劉志文(Chih-Wen Liu)
dc.contributor.authorChung-Wen Hungen
dc.contributor.author洪崇文zh_TW
dc.date.accessioned2021-06-08T06:00:47Z-
dc.date.copyright2007-07-31
dc.date.issued2007
dc.date.submitted2007-07-30
dc.identifier.citationREFERENCES
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[7] T. Hara and M. Tomizuka, “Multi-Rate Controller for Hard Disk Drive with Redesign of State Estimator”, Proceedings of 1998 American Control Conference, June 24-26, Philadelphia, Pennsylvania, U.S.A., 1998, pp. 3033-3037.
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[12] A. M. Phillips, “Multi-rate and Variable-rate Estimation and Control of Systems with Limited Measurements with Applications to Information Storage Devices”, Ph.D. dissertation, Department of Mechanical Engineering, University of California, Berkeley, 1995.
[13] A. M. Phillips and M. Tomizuka, “Multi-Rate Estimation and Control Under Time-varying Data Sampling with Applications to Information Storage Devices”. Proceedings 1996 American Control Conference, Seattle, Washington, June, 1996, pp. 4151- 4155.
[14] Jia-Yush Yen, Yang-Lin Chen and Masayoshi Tomizuka , “Variable Sampling Rate Controller Design for Brushless DC Motor”, Proceedings of the 41st IEEE Conference on Decision and Control, Las Vegas, December, 2002, pp. 462-467.
[15] Lilit Kovudhikulrungsri and Takafumi Koseki, “Precise Speed Estimation From a Low-Resolution Encoder by Dual-Sampling-Rate Observer”, IEEE/ASME Trans. on Mechatronics, vol. 11, no. 6, December, 2006.
[16] W. B. Gao, Y. Wang and A. Homaifa, “A Discrete-Time Variable Structure Control System”, IEEE Trans. on Industrial Electronics, vol. 42, no. 2, Apr. 1995.
[17] Janardhanan S. and Bandyopadhyay B., “Output Feedback Sliding-Mode Control for Uncertain Systems Using Fast Output Sampling Technique”, IEEE Trans. on Industrial Electronics, vol. 53, no. 5, 2006, pp. 1677-1682.
[18] Janardhanan S. and Bandyopadhyay B., “Multirate Output Feedback Based Digital Redesign of Sliding Mode Control Algorithms”, Proceedings of the 2006 International Workshop on Variable Structure Systems, Italy, June , 2006
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[20] A. Bartoszewicz, “Remark on ‘Discrete-Time Variable Structure Control System’ ”, IEEE Trans. on Industrial Electronics, vol. 43, no. 1, Feb., 1996, pp. 235-238.
[21] C. B. Jacobina, E. R. C. da Silva, A. M. N. Lima and R. L. A. Ribeiro, “Vector and Scalar Control of a Four Switch Three Phase Inverter”, Conference Record of IEEE industry Application Conference, vol. 3, 1995, pp. 2422-2429.
[22] M. Azab and A. L. Orille, “Novel Flux and Torque Control of Induction Motor Drive Using Four Switch Three Phase Inverter”, Annual Conference of the IEEE Industrial Electronics Society, vol. 2, 2001, pp. 1268-1273.
[23] Z. Jiang, D. Xu and Z. Xiangjuan, “A Study of the Four-Switch Low Cost Inverter That Uses The Magnetic Flux Control Method”, Conference Record of the IEEE Power Electronics and Motion Control Conference, vol. 3, 2004, pp. 1368-1371.
[24] J. H. Lee, S. C. Ahn and D. S. Hyun, “A BLDCM Drive with Trapezoidal Back EMF Using Four-Switch Three Phase Inverter”, Conference Record of the IEEE Industry Application, vol. 3, 2000, pp. 1705 - 1709.
[25] B. K. Lee, T. H. Kim and M. Ehsani, “On the Feasibility of Four-Switch Three-Phase BLDC Motor Drives for Low Cost Commercial Applications: Topology and Control”, IEEE Trans. on Power Electronics, vol. 8, 2003, pp. 164-172.
[26] Maurício Beltrão de Rossiter Corrêa, Cursino Brandão Jacobina, Edison Roberto Cabral da Silva and Antonio Marcus Nogueira Lim, “A General PWM Strategy for Four-Switch Three-Phase Inverters”, IEEE Trans. on Power Electronics, vol. 21, no. 6, 2006, pp. 1618-1627.
[27] R. L. Lin, M. T. Hu, S. C. Chen and C. Y. Lee, “Using Phase-Current Sensing Circuit as the Position Sensor for Brushless DC Motors Without Shaft Position Sensor”, Annual Conference of the IEEE Industrial Electronics Society, vol. 1, 1989, pp. 215-218.
[28] J. P. Johnson, M. Ehsani and Y. Guzelgunler, “Review of Sensorless Methods for Brushless DC”, Conference Record of the IEEE on Industry Application, vol. 1, 1999, pp. 143-150.
[29] J. P. Johnson and M. Ehsani, “Sensorless Brushless DC Control Using a Current Waveform Anomaly”, Conference Record of the IEEE on Industry Application, vol. 1, 1999, pp. 151-158.
[30] Ji. Shao and D. Nolan, “Further Improvement of Direct Back EMF Detection for Sensorless Brushless DC (BLDC) Motor Drives”, IEEE Applied Power Electronics Conference and Exposition, vol. 2, 2005, pp. 933-937.
[31] Xiaorong Xie, Qiang Song, Gangui Yan, and Wenhua Liu, “MATLAB-Based Simulation of Three-Level PWM Inverter-Fed Motor Speed Control System”, Proceedings of Applied Power Electronics Conference and Exposition, 2003, pp. 1105-1110.
[32] C. D. French and P. P. Acarnley, “Simulink Real Time Controller Implementation in a DSP Based Motor Drive System,” IEEE Colloquium on DSP Chips in Real Time Measurement and Control, 1997, pp. 3/1-3/5.
[33] K. L. Shi, T. F. Chan, and Y. K. Wong, “Modelling of The Three-Phase Induction Motor Using SIMULINK,” Proceedings of IEEE Conference on Electric Machines and Drives, 1997, pp. WB3/6.1 – WB3/6.3.
[34] J. C. Liao, S. N. Yeh, J. C. Hwang, Y. H. H.,” Application of Fuzzy Logic Control of Intrgrated Rectifier/Inverter Servvo Drive Systems”, Science and Technology, 2004. KORUS 2004. Proceedings. The 8th Russian-Korean International Symposium, vol. 1, 2004, pp.109 – 113.
[35] J. C. Liao, and S. N. Yeh, “A Novel Instantaneous Power Control Strategy and Analytic Model for Integrated Rectifier/Inverter Systems”, IEEE Trans. on Power Electronics, vol. 15, no. 6, November 2000.
[36] Y. S. Lai and F. S. Shyu, “New Initial Position Detection Technique for Three-Phase Brushless DC Motor Without Position and Current Sensors”, Conference Record of the IEEE IAS Annual Meeting, October, 2002, pp. 1653 -1660.
[37] Y. S. Lai, F. S. Shyu, and Y. H. Chang, “Novel Pulse-Width Modulation Technique With Loss Reduction for Small Power Brushless DC Motor Drives”, Conference Record of the IEEE IAS Annual Meeting, October 2002, pp. 2057 -2064.
[38] P. Pillay and R. Krishnan, “Modeling, Simulation, and Analysis of Permanent- Magnet Motor Drives.--Part II: The Brushless DC Motor Drive”, IEEE Trans. on Industry Applications, vol. 25, 1989, pp.274 – 279.
[39] Gary J. Balas, John C. Doyle, Keith Glover, Andy Packard, Roy Smith, Mu-Analysis and Synthesis Toolbox, MUSYN Inc. and The MathWorks, Inc., June 1998, pp. 4-1 – 4-15.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/25037-
dc.description.abstract由於直流無刷電動機的運轉效率等等優點,相關應用與日俱增,而通常使用霍爾元件來決定換相時間與量測運轉速度。由於原始設計目的在於換相,通常僅使用三個霍爾元件,因此速度回授時間因馬達轉速而異,亦即速度回授取樣時間是變動的,此一現象亦發生於一般直流無刷馬達的無位置感測器控制,吾人稱之為可變取樣系統。此一現象需要剛健性控制器來處理,本論文即針對此類使用低解析度的感測器的直流無刷馬達推導出兩種不同的剛健性控制器。
本論文首先提出一個剛健控制器的合成方法,藉由將系統的變取樣特性轉換為系統的不確定度,再利用相當普遍的Mu-合成程序計合成出控制器。正因為僅具低解析度感測器的直流無刷馬達回授的變取樣現象,可被視為系統不確定度,因而此現象可以線性分式轉換來描述,所以Mu-合成器可以提供控制器設計必要且足夠的條件。實驗結果驗證了原始設計規格並示範了此方法的成效。
不同於上述以系統不確定度發展控制器,本論文接著推導出在可變取樣率下的變動結構控制器設計方法。本研究改良了現有的離散時間控制器的逼近法則,並推針對直流無刷馬達導出可變取樣控制,完成準滑差控制法則。本控制方法業經模擬與實驗加以驗證。同時,本論文亦討論比較了數種控制器的各項優劣。
為了發展上述的控制器,可以支援變取樣模擬的工具不可或缺,本文設計了一個與速度相關的可變取樣擬工具。然後,由於實際上述霍爾元件安裝時位置誤差無可避免,因而引起速度量測誤差,數種抑制此類誤差的方法亦於本論文呈現。
最後,本論文提出針對三相四開關直流無刷電動機在無位置感測元件下新穎的控制方法,不同於傳統的六開關三相架構,此一方法之所以引人乃在於節省了兩個開關與霍爾感測器的成本。不像一般三相四開關結構,若非使用高階控制器來輔助只有四個向量的缺點,便是需要額外的電流感測來滿足六個向量控制所需,本論文的方法可以支援六個向量的無感測器控制,同時因為可以提供定電流所以轉矩亦可固定,實驗結果可以看出此方式效果非常好。
zh_TW
dc.description.abstractBrushless DC (BLDC) motors are gaining increased application because of their efficient operation, high-density characteristics, and easy maintenance. BLDC motors usually use Hall-effect sensors for commutation and rotor speed. Because the Hall sensor signals originally were designed for commutation purposes and the speed feedback is based on low-resolution sensors. Therefore, with or without a sensor, the time intervals between speed feedbacks depend on the motor speed. As a result, the speed feedback sampling time is variable, and is called a variable sampling system. Two robust variable sampling control methods for BLDC motors with low-resolution sensors were proposed and implemented in this dissertation.
A method of synthesis of a robust controller was proposed. In this method, variable sampling rates are translated into system uncertainties, and then the popular Mu-synthesis procedure was used to synthesis the controller. The variable sampling feedback phenomenon of a BLDC motor with low-resolution sensors was treated as system uncertainty. Therefore, it is possible to describe the system with the standard linear fractional transformation. The Mu-synthesis can provide a necessary and sufficient condition for the controller design. Experimental results conformed to the original design specifications and have demonstrated the effectiveness of the proposed methods. The implementation skill of decomposition into fractional expansion from a complicated controller was also verified in experiments.
As opposed to as the treatment of system uncertainty, another variable sampling VSC is also derived from the conventional discrete-time VSC in this dissertation. It uses a modification of the discrete-time variable-structure-control (VSC) reaching law and derives a variable sampling control law for a BLDC motor to achieve the quasi-sliding mode condition. Both simulation and experimental results have confirmed the effectiveness of the proposed control laws and estimator. A comparison of several controllers is also given in this dissertation.
Further, a variable sampling simulation tool for BLDC motor drivers is proposed, it is very useful when developing a variable sampling controller. Then, mitigation methods of speed measurement error, which is caused by misalignment of Hall sensors, are also presented.
Finally, a novel position sensorless control for four-switch three-phase (FSTP) BLDC motors is proposed. Different from the traditional six-switch three-phase (SSTP) scheme, an FSTP is a fancy solution because it eliminates the cost of two switches and Hall sensors. Unlike conventional FSTP structures, which are implemented in either four vectors with a high-performance MCU or six vectors with current sensors, the FSTP control method supports six vectors and position sensorless control. The control method provides constant current, which means constant torque. The experimental results show that the scheme works very well.
en
dc.description.provenanceMade available in DSpace on 2021-06-08T06:00:47Z (GMT). No. of bitstreams: 1
ntu-96-D90921003-1.pdf: 2162558 bytes, checksum: 2b447d9e72a3e92f1c46016dd56d6b1c (MD5)
Previous issue date: 2007
en
dc.description.tableofcontents中文摘要 .................................................I
AbSTRACT................................................III
LIST OF CONTENTS..........................................V
LIST OF FIGURES.........................................VII
LIST OF TABLES............................................X
CHAPTER 1 Introduction....................................1
1-1 Motivations...........................................1
1-2 Literature Survey.....................................2
1-3 Contributions.........................................6
1-4 Chapter Outline.......................................8
CHAPTER 2 A Robust Variable Sampling Mu-Controller for Six-Switch Three-Phase BLDC Motors............................9
2-1 Phenomenon Formulation................................9
2-2 Controller Design....................................12
2-3 A System Description.................................12
2-4 Experimental Setup...................................18
2-5 Closing Remarks......................................24
CHAPTER 3 A Variable Sampling Variable Structure Controller for Six-Switch Three-Phase BLDC Motors........27
3-1 Control Law..........................................27
3-2 Simulation...........................................32
3-3 Speed Measurement Error Mitigation Techniques and Experimental Results.....................................37
3-3-1 Variable sampling VSC with different order filters for measurement error mitigation.........................38
3-3-2 Variable sampling VSC with calibrated sensor angular position.................................................40
3-3-3 Variable sampling VSC with hybrid error mitigation method...................................................41
3-3-4 A Load Experimental Result of Variable sampling VSC with hybrid error mitigation method......................44
3-4 Comparison of the Controllers........................44
3-5 Closing Remarks......................................46
CHAPTER 4 Position Sensorless Control for Four-Switch Three-Phase BLDC Motors..................................49
4-1 FSTP BLDC Motor Drive Using Conventional Voltage PWM Schemes..................................................49
4-2 The Novel Voltage PWM Scheme.........................52
4-3 Sensorless Four-Switch Three-Phase Inverter..........54
4-3 Closing Remarks......................................60
CHAPTER 5 Conclusions and Future Works...................63
5-1 Conclusions..........................................63
5-2 Future Works.........................................64
REFERENCES...............................................67
BIOGRAPHICAL NOTE........................................73
A. Journal papers:.......................................73
B. Conference Papers:....................................73
dc.language.isoen
dc.subject可變取樣zh_TW
dc.subject直流無刷電動機zh_TW
dc.subject可變結構控制zh_TW
dc.subjectMu-合成器zh_TW
dc.subject三相四開關驅動器zh_TW
dc.subjectBrushless DC (BLDC) Motoren
dc.subjectFour-Switch Three-Phase (FSTP) Driveen
dc.subjectMu-Synthesisen
dc.subjectVariable Sampling:Variable Structure Control (VSC)en
dc.title使用低解析度感測器之直流無刷電動機驅動器的新型可變取樣控制法zh_TW
dc.titleNovel Variable Sampling Control Methods for Brushless DC Motor Drives with Low Resolution Sensors Sensorsen
dc.typeThesis
dc.date.schoolyear95-2
dc.description.degree博士
dc.contributor.oralexamcommittee陳德玉(Dan Chen),顏家鈺(Jia-Yush Yen),潘晴財(Ching-Tsai Pan),賴炎生(Yen-Shin Lai),劉承宗(Cheng-Tsung Liu),鄭博泰(Po-Tai Cheng),陳建富(Jiann-Fuh Chen)
dc.subject.keyword直流無刷電動機,可變取樣,可變結構控制,Mu-合成器,三相四開關驅動器,zh_TW
dc.subject.keywordBrushless DC (BLDC) Motor,Variable Sampling:Variable Structure Control (VSC),Mu-Synthesis,Four-Switch Three-Phase (FSTP) Drive,en
dc.relation.page73
dc.rights.note未授權
dc.date.accepted2007-07-30
dc.contributor.author-college電機資訊學院zh_TW
dc.contributor.author-dept電機工程學研究所zh_TW
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