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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 工程科學及海洋工程學系
Please use this identifier to cite or link to this item: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/63303
Full metadata record
???org.dspace.app.webui.jsptag.ItemTag.dcfield???ValueLanguage
dc.contributor.advisor江茂雄(Mao-Hsiung Chiang)
dc.contributor.authorYi-Chang Chenen
dc.contributor.author陳奕錩zh_TW
dc.date.accessioned2021-06-16T16:33:46Z-
dc.date.available2018-01-16
dc.date.copyright2013-01-16
dc.date.issued2012
dc.date.submitted2012-11-27
dc.identifier.citation[1] Thomas Ackermann, Lennart Soder, “Wind energy technology and current status: a review”, Renewable and Sustainable Energy Reviews, Vol.4, Page(s): 315-374, Dec. 2000.
[2] Stol, Karl Alexander, “Dynamics modeling and periodic control of horizontal-axis wind turbines”, PhD thesis, University of Colorado at Boulder, 2001.
[3] Adalagisa E Lopez, “Model-based analysis of control strategies for a variable speed wind turbine”, Master thesis, University of Texas at EL PASO, 2003.
[4] K. Rehfeldt, “Untersuchungen zur Modellbildung von Windkraftanlagen mit hydrostatischem Treibstrang und deren Regelung auf der Basis der Fuzzy-Logik (in German), VDI Verlag, Reihe 8, Nr.538, 2003.
[5] Ph. Delarue, A. Bouscayrol, A. Tounzi, X. Guillaud, G. Lancigu, “Modeling control and simulation of an overall wind energy conversion system”, Renewable Energy, Vol.28, no.8, Page(s): 1159-1324, July 2003.
[6] Ali-Reza Sharif-Razi, “Discrete-time blade pitch control for wind turbine torque regulation with digitally simulated random turbulence excitation”, PhD thesis, Oregon state university, 1986.
[7] S. M. B. Wilmshurst, “Control strategies for Wind turbines”, Wind Eng., Vol.12, no.4, Page(s): 236-249, 1988.
[8] R. Jones, G. A. Smith, “High quality mains power from variable speed wind turbines”, International Conference on Renewable Energy—Clean Power 2001, Page(s): 202-206, 1993.
[9] J. Freeman, M. Balas, “An investigation of variable speed horizontal-axis wind turbines using direct model-reference adaptive control”, Proceedings of the 18th ASME wind energy symposium, Page(s): 66-76, 1999.
[10] Moshe Idan, David Lior, “Continuous variable speed wind turbine: transmission concept and robust control”, Wind Engineering, Vol.24, no.3, Page(s): 151-167, Nov. 2009.
[11] Y. D. Song, B. Dhinakaran, X. Y. Bao, “Variable speed control of wind turbines using nonlinear and adaptive algorithms”, Journal of Wind Engineering and Industrial Aerodynamics, Vol.85, Issue: 3, Page(s): 293-308, 2000.
[12] Hongche Guo, Qingding Guo, “H control of adjustable-pitch wind turbine adjustable-pitch system”, CES/IEEE 5th International Power Electronics and Motion Control Conference (IPEMC 2006), Page(s): 1-4, Aug. 2006.
[13] Zhao Lin, Guo Qingding, “Adjustable-pitch and variable-speed control of wind turbines using nonlinear algorithm”, Sixth International Conference on Electrical Machines and Systems (ICEMS 2003), Vol.1, Page(s): 270-273, Nov. 2003.
[14] R. Sakamoto, T. Senjyu, T, Kinjo, N. Urasaki, T. Funabashi, H. Fujita, H. Sekine, “Output power leveling of wind turbine generator for all operating regions by pitch angle control”, Power Engineering Society General Meeting, 2005. IEEE, Vol.1, Page(s): 45-52, June 2006.
[15] Xinyan Zhang, Weiqing Wang, Ye Liu, Jing Cheng, “Fuzzy Control of Variable Speed Wind Turbine”, The Sixth World Congress on Intelligent Control and Automation (WCICA 2006), Page(s): 3872-3876, June 2006
[16] Hongwei Liu, Yonggang Lin, Wei Li, “Study on Control Strategy of Individual Blade Pitch-Controlled Wind Turbine”, The Sixth World Congress on Intelligent Control and Automation (WCICA 2006), Page(s): 6489-6492, June 2006.
[17] Junhua Yang, Jianhua Li, Jie Wu, Jinming Yang, “Fuzzy Adaptive Control of Novel Brushless Doubly-fed Wind Turbine”, The Sixth World Congress on Intelligent Control and Automation (WCICA 2006), Page(s): 8241-8245, June 2006.
[18] K. E. Johnson, L. Y. Pao, M. J. Balas, L. J. Fingersh, “Control of variable-speed wind turbines: standard and adaptive techniques for maximizing energy capture”, Control Systems, IEEE, Vol.26, Issue: 3, Page(s):70-81, June 2006.
[19] T. Senjyu, R. Sakamoto, N. Urasaki, T. Funabashi, H. Fujita, H. Sekine, “Output power leveling of wind turbine Generator for all operating regions by pitch angle control”, IEEE Transactions on Energy Conversion, Vol.21, Issue: 2, Page(s): 467-475, June 2006.
[20] H. Camblong, G. Tapia, M. Rodriguez, “Robust digital control of a wind turbine for rated-speed and variable-power operation regime”, IEE Proceedings - Control Theory and Applications, Vol.153, Issue 1, Page(s): 81-91, Jan. 2006.
[21] L. A. Zadeh, ”Fuzzy sets”, Information and control, Vol. 8, Issue: 3, Page(s): 338-353, June 1965.
[22] E. H. Mamdani, S. Assilian, “A Fuzzy Logic Controller for a Dynamic Plant”, International Journal of Man-Machine Study, no.7, Page(s): 1-13, 1975.
[23] 沈士棠, “閥控液壓缸系統節能控制與伺服控制之智慧型平行控制”, 國立台灣科技大學碩士論文, 2004年.
[24] 王琮右, “控制於電液負載感測系統之研究”, 國立台灣科技大學碩士論文, 2000.
[25] 李聯旺, “結合基因演算法與 控制整合閥控液壓缸系統節能控制與伺服控制之研究”, 國立台灣科技大學碩士論文, 2001.
[26] 蔡金江, “適應性強健控制應用於整合閥控液壓缸系統之變轉速節能控制與伺服控制之研究”, 國立台灣科技大學碩士論文, 2002.
[27] 葉永培, “解耦合自組織模糊滑動平面控制應用於閥控液壓缸系統變排量節能控制與伺服控制之整合控制研究”, 國立台灣科技大學碩士論文, 2003.
[28] 王明堯, “整合閥控液壓缸系統之負載壓力控制與變轉速節能控制之研究”, 國立台灣科技大學碩士論文, 2003年.
[29] 張一丁, 徐兵, 楊華勇, 丁惠公, “變轉速泵控液壓缸實驗仿真分析”(中國大陸), 液壓與氣動, no.1, Page(s): 18-20, 2003。
[30] 林建杰, 徐兵, 楊華勇, “配置蓄能器的變頻驅動液壓電梯能耗特性研究”(中國大陸), 機械工程學報, Vol.39, no.7, Page(s): 63-66, 2003.
[31] 黃方平, 徐兵, 楊華勇, 關紅力, “變頻液壓技術在注塑機中的應用”(中國大陸), 液壓氣動與密封, no.3, Page(s): 22-25, 2004.
[32] 彭天好, 徐兵, 楊華勇, “變頻液壓技術的發展及研究綜述”(中國大陸), 浙江大學學報, Vol.38, no.2, Page(s): 215-221, 2004.
[33] 朱宜庚, 李茹, 朱宜辛, “應用變頻調速技術 提高柱塞泵的運行效率”(中國大陸), 節能, no.9, Page(s): 48-49, 2004.
[34] Yang, F.L., Chiang, M.H., Wu, C.N., Kuo, C.H., Chen, Y.N. and Yeh, Y.C.*, “Study on Force Control and Load-Sensing Control of a Hydraulic Valve-Controlled Cylinder Systems with Decoupling Self-Organizing Fuzzy Sliding Mode Controller, Bulletin of the College of Engineering”, N.T.U., no. 92, Page(s): 21–34, June 2004.
[35] Chiang, M.H., Yang, F.L., Chen, Y.N. and Yeh, Y.P., “Integrated Control of Clamping Force and Energy-Saving in Hydraulic Injection Moulding Machines Using Decoupling Fuzzy Sliding-Mode Control”, International Journal of Advanced Manufacturing Engineering, Vol.27, Page(s): 53-62, Nov. 2005.
[36] Chiang, M.H., Yu, D.D., Lee, L.W., “Parallelregelung der Bahnsteuerung mit Energiesparungsregelung fur einen ventilgesteuerten hydraulischen Zylinderantrieb mit robustem H∞-optimalem Regler, (Robust H∞ optimal Control for Parallel Control of Path Control and Energy-Saving Control on Hydraulic Throttle-Controlled Systems)”, Olhydraulik und Pneumatik. 5/2005, Page(s): 356-360, 2005.
[37] Chiang, M.H., Lee, L.W., Tsai , J.J., “The Concurrent Implementation of High Velocity Control Performance and High Energy Efficiency for Hydraulic Injection Moulding Machines, International Journal of Advanced Manufacturing Engineering”, Vol.23, Page(s): 256-262, 2004.
[38] Chiang, M.H., Chien Y.W., “Parallel control of velocity control and energy-saving control on a hydraulic valve controlled system using self-organizing fuzzy sliding mode control”, JSME International Journal, Series C, Vol.46, no.1, Page(s): 224-231, 2003.
[39] 江茂雄, 蔡金江, “兼具高軌跡控制響應與高能源效率之閥控液壓系統 - 變轉速與變排量節能控制”, 機械月刊, no.331, Page(s): 66-74, Feb. 2003.
[40] 江茂雄, 簡御偉, 李聯旺, “閥控液壓缸系統節能控制與軌跡控制之整合研究”, 機械月刊, no.323期, Page(s): 22-29, Jun. 2002.
[41] 江茂雄, 余冬帝, “適應性類神經模糊控制應用於電液負載感測系統之研究”, 機械月刊, no.312, Page(s): 325-335, Jul. 2001.
[42] 江茂雄, 余冬帝, 王琮右, ”閥控液壓系統之節能控制–電液負載感測系統”,機械月刊, no.302, Page(s): 373-382, Sep. 2000.
[43] Chiang, M.H., LEE, L.W., YEH, Y.C. and SHENG, S.T., Concurrent Control of Velocity-Force Control and Energy-Saving Control in Hydraulic Valve-Controlled Cylinder Systems, The 6th JFPS International Symposium of Fluid Power, Tsukuba, Japan, 2005.
[44] Chiang, M-H, Yeh, I.C., Parallel Control of Path Control and Energy-Saving Control for a Hydraulic Valve-Controlled Cylinder System Using Decoupling Fuzzy Sliding Mode Control, The 13rd National Conference on Automation Technology, Taipei, Taiwan, Jun. 2004
[45] Chiang, M-H, Yeh, Y.P., “解耦合自組織模糊滑動模式控制應用於閥控液壓缸系統變排量節能控制與速度控制之平行控制研究”, The 20th National Conference on Mechanical Engineering of the Chinese Society of Mechanical Engineers, Taipei, Taiwan, 2003.
[46] Chiang, M.H., Chien Y.W., Adaptive Robust Control for Integration of Path Control and Energy-Saving Control on a Hydraulic Valve Controlled System, The 19th National Conference on Mechanical Engineering of the Chinese Society of Mechanical Engineers, Yun-Lin, Taiwan.
[47] Chiang, M.H., Chien Y.W., Integration of path control and load-sensing control on a hydraulic valve controlled system, The 3rd International Fluid Power Conference (3. IFK), Aachen, Germany, 2002.
[48] Chiang, M.H., Lee, L.W., Control with Genetic Algorithm on Integration of Energy-saving Control and Velocity Control of a Hydraulic Valve-controlled System, The 18th National Conference on Mechanical Engineering of the Chinese Society of Mechanical Engineers, Taipei, Taiwan, 2001.
[49] Chiang, M.H., Chien Y.W., Integration of path control and load-sensing control on a hydraulic valve controlled system using fuzzy sliding mode control, The 18th National Conference on Mechanical Engineering of the Chinese Society of Mechanical Engineers, Taipei, Taiwan, 2001.
[50] Chiang, M.-H., Yu, D,-J., Study on Adaptive Neural Fuzzy Control for Electro-hydraulic Load-sensing System, 2001 Automatic Control Conference, Taoyuen, Taiwan, 2001.
[51] Chiang, M.-H., Wang T,-L., A Study of Control for Electro-Hydraulic Load-Sensing System, The 17th National Conference on Mechanical Engineering of the Chinese Society of Mechanical Engineers, Kaoshiung, Taiwan, 2000.
[52] 江茂雄, 余冬帝, 王琮右, Implementation of Energy-Saving Control on Hydraulic Valve-controlled Systems- with Electro-Hydraulic Load-Sensing System, 第一屆台灣流體傳動與控制技術暨產業發展策略研討會, Taipei, Taiwan, 2000.
[53] S Helduser, “Moderne hydraulische Antriebe und Steuerungen am Beispiel von Kunststoff-Spritgiessmaschinen” (in German), O+P Olhydraulik und Pneumatik 39, no.10, 1995.
[54] I Ruhlicke, “Elektro-hydraulische Antriebssysteme mit drehzahlveranderbarer Doppelpumpe”, (in German), O+P Olhydraulik und Pneumatik 41, no.10, 1997.
[55] H Murrenhuff, “Innovation in der Fluidtechnik”, (in German), Proc. of 1. International Fluid Power Conference (1. IFK), Aachen, Germany, Band 1, Page(s): 22-58, 1998.
[56] B Kazmeier and D G Feldmann, “Ein neues Konzept fureinen kompakten elektrohydraulischen Linearantrieb” (in German), Proc. of 1. International Fluid Power Conference (1. IFK), Aachen, Germany, Band 1, Page(s): 345-358, 1998.
[57] Th. Nerbert, “Elektro-hydraulische Antriebssyetme mit dreizahlveraenderbaren Pumpen” (in German), Proc. of the 1. International Fluid Power Conference (1. IFK), , Aachen, Germany, Band 1, Page(s): 287-300, 1998.
[58] S Helduser, “Electric-hydrostatic drive – an innovative energy-saving power and motion control system”, Proc. of Institution of Mechanical Engineers, Vol.213, Part I, Page(s): 427-439, 1999.
[59] Bildstein, “Application of electro-hydrostatic actuators (EHA) for future aircraft primary flight control”, Proc. of the 1. International Fluid Power Conference (1. IFK), , Aachen, Germany, Band 1, Page(s): 93-105, 1998.
[60] S Habibi and A Goldenberg, “Design of a new high performance electro-hydraulic actuator”, Proc. of the 1999 IEEE/ASME International Conference on Advanced Mechatroics, Atlanta, USA, Page(s): 227-232, 1999.
[61] 平野謙一, 大場孝一, “最近の油压省エネシステムの動向”(in Japanese), 油壓與空氣壓, Vol.32, no.4, Page(s): 225-230, 2001.
[62] 沢田祐造, ”油压とSRモータ・インバータ技術の融合”(in Japanese), 油壓與空氣壓, Vol.32, no.5, Page(s): 286-289, 2001.
[63] A. Helbig, “Injection moulding machine with electric-hydrostatic drives”, Proc. of the 3. International Fluid Power Conference (3. IFK), Aachen, Germany, Vol.1, Page(s): 67-82, 2002.
[64] 權龍, Neubert T, Heldruser S, “轉速可調泵直接閉環控制差動缸伺服系統的動特性”(中國大陸), 機械工程學報, Vol.39, no.2, Page(s): 13-17, 2003.
[65] 權龍, Neubert T, Heldruser S, “轉速可調泵直接閉環控制差動缸伺服系統的靜特性”(中國大陸), 機械工程學報, Vol.38, no.3, Page(s): 144-148, 2002.
[66] 權龍, Helduser S, “基于可調速電動機的高動態節能型電液動力源”(中國大陸), 中國機械工程, no.7, Page(s): 606-609, 2003.
[67] G. L. Zarotti, N. Nervegna, “Hydraulic Torque Converters Design”, 6th Australasian Hydraulics and Fluid Mechanics Conference Adelaide, Australia, Page(s): 386-390, Dec. 1977.
[68] P. J. Strachan, F. P. Reynaud, T. W. von Backstrom, “The hydrodynamic modeling of torque converters”, N&O JOERNAAL, Page(s): 21-28, Apr. 1992.
[69] A. Kesy, Z. Kesy, “Damping Characteristics of a Transmission System with a Hydrodynamic Torque Converter”, Journal of Sound and Vibration (1993), Vol.166, no.3, Page(s): 493-506, 1993.
[70] Diana Yanakiev, Ioannis Kanellakopoulos, “Engine and Transmission Modeling for Heavy-Duty Vehicles”, Institute of Transportation Studies University of California, Berkeley, PATH Technical Note, Aug. 1995.
[71] H. Behrens, P. Jaschke, J. Steinhausen, H.Waller, “Modeling of Technical Systems: Application to Hydrodynamic Torque Converters and Couplings”, Mathematical and Computer Modeling of Dynamical Systems, Vol.6, no.3, Page(s): 223-250, 2000.
[72] 穆希輝, 劉秀雲, 馬振書, “液力傳動叉車動力匹配優化”, 起重運輸機械, Vol.5, Page(s): 6-8, 2003.
[73] Shinya Kano, Yuji Terasaka, Kouzou Yano, “Prediction of Torque Converter Characteristics by Fluid Flow Simulation”, Komatsu Technical Report, Vol.50 no.154, Page(s): 1-6, 2004.
[74] J. Murin, “Some properties of a diesel drive line with hydrodynamic torque converters of the latest generation”, Mechanism and Machine Theory 4, Page(s): 99–117, 2005.
[75] 王普凱, 畢小平, 韓隨平, 李莉, “閉鎖式液力傳動裝甲履帶車輛起步加速過程仿真模型”, 北京理工大學學報, Vol.25, no.4, Apr. 2005.
[76] 霍曉強, 申岳國, 劉琦, 王勇, “液力變矩器閉鎖時機對傳動系統動態特性影響的仿真研究”, 工程機械, Vol.38, Page(s): 53-57, Apr. 2007.
[77] 張炳力, 宋振翔, 趙韓, “基於Simulink的液力變矩器閉鎖性能仿真”, 合肥工業大學學報, Vol.33, no.9, Page(s): 1281-1284, Sept. 2010.
[78] 閻國軍, 董泳, 吳劍威, “液力變矩器部分充液特性研究及應用”, 工程機械, Vol.38, Page(s): 47-50, May 2007.
[79] 何玉林, 李成武, 杜靜, 李麗麗, 黎明, “大功率風電機組新型傳動系的建模與仿真”, 重慶大學學報, Vol.30, no.9, Page(s): 1-4, Sep. 2007.
[80] 陳柏仲, “扭力轉換器扁平化設計的數值模擬分析”, 國立成功大學航空太空工程學系, 碩士論文, 指導教授: 陳世雄, 2009.
[81] 江榮根, “液體離合器葉片幾何條件對流場、溫度及傳動效益之影響”, 國立雲林科技大學機械工程學研究所, 碩士論文, 指導教授: 羅斯維, 2010.
[82] 周倩, 董泳, “可調式液力變矩器可調導輪參數計算方法”, 節能技術, Vol.28, Sum. no.159, Page(s): 18-20, Jan. 2010.
[83] 董泳, 周緒強, 畢強, “風力機與液力變速傳動裝置匹配工作特性研究”, 中國機械工程, Vol.23, Issue.6, Page(s): 660-687, Mar. 2012.
[84] 葉永培, “解耦合自組織模糊滑動平面控制應用於閥控液壓缸系統變排量節能控制與伺服控制之整合控制研究“, 台灣科技大學自動化及控制研究所, 碩士論文, 指導教授: 江茂雄, 2003.
[85] Eric Baily, Aristotle Arapostathis, “Simple sliding mode control scheme applied to robot manipulator”, Int. J. Control, Vol.45, no.45, Page(s): 1197-1209, 1987
[86] Sung-Woo Kim, Ju-Jang Lee, “Design of a fuzzy controller with fuzzy sliding surface”, Fuzzy Sets and Systems, Vol.71, Issue. 3, Page(s): 359-367, May 1995.
[87] 姜繼海, 蘇文海, 劉慶和, “直驅式容積控制電液伺服系統”(中國大陸), 軍民兩用技術與產品, no.9, Page(s): 43-45, 2003.
[88] 牛山泉, “風車工學入門 從基礎理論到風力發電技術”, 國立澎湖科技大學, 2009.
[89] 楊英魁, 孫宗瀛, 鄭魁香, 林建德, 蔣旭堂, “模糊控制理論與技術”, 全華科技出版社, 1996
[90] 蘇木春, 張孝德, “機械學習:類神經網路、模糊系統及基因演算法則, 全華科技圖書, 1999
[91] 劉明翰, “風力發電機機電控制系統模擬及分析之研究”, 國立台灣大學工程科學暨海洋工程學研究所, 碩士論文, 指導教授: 江茂雄, 2008.
[92] S. M. Muyeen, R. Takahashi, T. Murata, J. Tamura, M. H. Ali, “Transient Stability Analysis of Permanent Magnet Variable Speed Synchronous Wind Generator”, Proceeding of International Conference on Electrical Machines and System (ICEMS 2007), Page(s): 288-293, Oct. 2007.
[93] 徐銘宇, 鐘聲, “同軸雙輸出行星齒輪減速器運動學及動力學分析”, 重慶工商大學學報(自然科學版), Vol.28, no.2, Page(s): 176-181, Apr. 2010.
[94] 劉坤南, “基因演算法於行星齒輪傳動機構之系統鑑別”, 國立中山大學機械工程研究所, 碩士論文, 指導教授: 洪英榮, 2001.
[95] 茆尚勳, “新型切換式磁阻與同心式永磁馬達之設計與實現”, 國立成功大學機械工程學系, 博士論文, 指導教授: 蔡明祺, 2006.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/63303-
dc.description.abstract本研究旨在探討三種不同液壓無段變速傳動系統應用於2MW風力發電機,利用液壓系統替代傳統的變速齒輪箱系統,期望達到風力發電機於發電端能有穩定輸出功率的效果,以避免發電機於整流時損失的能源耗損。
本文分別建立不同的三種不同液壓無段變速傳動系統數學模型,分別是直驅式液靜壓傳動、迴授式液靜壓傳動以及迴授式液動壓傳動,利用MATLAB/ SIMULINK軟體進行動態模擬分析,以模擬系統傳動性能。並以模糊滑動控制器進行轉速控制器設計,最後,分別進行開迴路及閉迴路轉速控制模擬分析,以達到減輕風力發電機起動扭矩,並於變風速下也能有穩定轉速輸出的優良效能,模擬結果證實,在變速輸入、定速輸出上都可達到良好的變速控制性能。
zh_TW
dc.description.abstractThe thesis aims to investigate three different types of hydraulic variable speed transmission system for 2MW wind turbines. Instead of the gear box, the hydraulic variable speed transmission system can achieve a steady rotational speed for the generator of 2MW wind turbine for avoiding the rectification and increasing the electric generation efficiency.
The mathematical models of three different types of hydraulic variable speed transmission system, including the direct-driving hydrostatic transmission system, feedback-driving hydrostatic transmission system and feedback-driving hydrodynamic transmission system, are derived respectively. The dynamic simulation of the three systems is implemented via MATLAB/SIMULINK. For achieving the constant rotational speed control of generator, fuzzy sliding mode control is used for the controller design. Finally, open-loop simulation of the three transmission systems and closed-loop simulation of constant rotational speed control are performed for verifying the feasibility and the control performance.
en
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Previous issue date: 2012
en
dc.description.tableofcontents致謝 I
摘要 II
ABSTRACT III
目錄 IV
圖目錄 VII
表目錄 X
符號表 XI
第一章 緒論 1
1.1 前言 1
1.2 文獻回顧 1
1.2.1 風力發電機系統回顧 2
1.2.2 控制理論回顧 3
1.2.3 泵控液壓系統回顧 3
1.2.4 液動壓傳動系統回顧 6
1.3 研究動機 7
1.4 本文架構 7
第二章 2MW風力發電機可變速控制架構 9
2.1 2MW風力發電機架構 9
2.2 直驅式液靜壓傳動系統架構 14
2.3 迴授式液靜壓傳動系統架構 16
2.4 迴授式液動壓傳動系統架構 18
第三章 液壓傳動變速系統分析及數學模式建立 21
3.1 液靜壓傳動系統 21
3.1.1 變排量泵之閥控液壓缸系統 21
3.1.2 液靜壓傳動系統 30
3.2 液動壓傳動系統 35
3.3 迴授式傳動系統 43
3.3.1 迴授式傳動系統運動分析 43
3.3.2 迴授式傳動系統動力分析 49
第四章 控制理論與策略 58
4.1 模糊滑動控制器 58
4.2 滑動平面選取 60
4.3 歸屬函數建立 60
4.4 解模糊化法則 64
4.5 參數 、 與 設定 65
第五章 模擬結果與討論 66
5.1 液靜壓傳動系統開迴路非線性動態模擬 66
5.1.1 固定輸入扭矩之開迴路非線性動態模擬 66
5.1.2 小幅度變動扭矩輸入之開迴路非線性動態模擬 70
5.1.3 大幅度變動扭矩輸入之開迴路非線性動態模擬 74
5.2 液動壓傳動系統開迴路非線性動態模擬 77
5.2.1 固定輸入扭矩之開迴路非線性動態模擬 77
5.2.2 小幅度變動扭矩輸入之開迴路非線性動態模擬 81
5.2.3 大幅度變動扭矩輸入之開迴路非線性動態模擬 84
5.3 迴授式行星齒輪傳動系統非線性動態模擬 87
5.3.1 固定扭矩輸入迴授式行星齒輪傳動系統非線性動態模擬 87
5.3.2 小幅度變動扭矩輸入迴授式行星齒輪傳動系統非線性動態模擬 90
5.3.3 大幅度變動扭矩輸入迴授式行星齒輪傳動系統非線性動態模擬 92
5.4 直驅式液靜壓傳動系統控制模擬結果 94
5.4.1 固定輸入扭矩之閉迴路非線性動態模擬 94
5.4.2 緩變動輸入扭矩之閉迴路非線性動態模擬 97
5.4.3 急變動輸入扭矩之閉迴路非線性動態模擬 100
5.4.4 混合變動輸入扭矩之閉迴路非線性動態模擬 103
5.5 迴授式液靜壓傳動系統控制模擬結果 106
5.5.1 固定輸入扭矩之閉迴路非線性動態模擬 106
5.5.2 緩變動輸入扭矩之閉迴路非線性動態模擬 109
5.5.3 急變動輸入扭矩之閉迴路非線性動態模擬 112
5.5.4 混合變動輸入扭矩之閉迴路非線性動態模擬 115
5.6 迴授式液動壓傳動系統控制模擬結果 118
5.6.1 固定輸入扭矩之閉迴路非線性動態模擬 118
5.6.2 緩變動輸入扭矩之閉迴路非線性動態模擬 121
5.6.3 急變動輸入扭矩之閉迴路非線性動態模擬 124
5.6.4 混合變動輸入扭矩之閉迴路非線性動態模擬 127
第六章 結論與未來展望 130
6.1 結論 130
6.2 未來展望 130
參考文獻 131
附錄A 142
dc.language.isozh-TW
dc.subject迴授式液動壓傳動系統zh_TW
dc.subject液壓閥控系統zh_TW
dc.subject模糊滑動控制zh_TW
dc.subject迴授式液靜壓傳動系統zh_TW
dc.subject直驅式液靜壓傳動系統zh_TW
dc.subject風力發電zh_TW
dc.subjectdirect- driving hydrostatic transmissionen
dc.subjectrotational speed controlen
dc.subjectfeedback- driving hydrodynamic transmissionen
dc.subjectwind turbineen
dc.subjectfeedback-driving hydrostatic transmissionen
dc.subjectfuzzy sliding mode controlen
dc.title2MW風力發電機無段變速液壓傳動控制之研究zh_TW
dc.titleThe Study of Hydraulic Variable Speed Transmission Control for a 2MW Wind Turbineen
dc.typeThesis
dc.date.schoolyear101-1
dc.description.degree碩士
dc.contributor.oralexamcommittee李聯旺(Lian-Wang Lee),林靖國(Ching-Kuo Lin),李坤彥(Kun-Yan Lee)
dc.subject.keyword風力發電,直驅式液靜壓傳動系統,迴授式液靜壓傳動系統,迴授式液動壓傳動系統,液壓閥控系統,模糊滑動控制,zh_TW
dc.subject.keywordwind turbine,fuzzy sliding mode control,direct- driving hydrostatic transmission,feedback-driving hydrostatic transmission,feedback- driving hydrodynamic transmission,rotational speed control,en
dc.relation.page144
dc.rights.note有償授權
dc.date.accepted2012-11-27
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept工程科學及海洋工程學研究所zh_TW
Appears in Collections:工程科學及海洋工程學系

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