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研究生:羅佑昇
研究生(外文):Yu-Sheng Lo
論文名稱:具有彈性底座之小型振動發電機
論文名稱(外文):Miniature Vibration-Based Generator with Elastic Base
指導教授:呂宗熙
指導教授(外文):Tzong-Shi Liu
學位類別:碩士
校院名稱:國立交通大學
系所名稱:機械工程系所
學門:工程學門
學類:機械工程學類
論文種類:學術論文
論文出版年:2008
畢業學年度:96
語文別:中文
論文頁數:71
中文關鍵詞:壓電振動發電彈性底座
外文關鍵詞:PZTvibrationelastic base
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  • 被引用被引用:0
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利用壓電材料來發電是現在相當熱門的研究,較多的研究著重在發電機構的設計或發電量的多寡,未見對壓電片本身動態特性的研究(例如:共振頻率)。本研究於壓電彎片與底座之間,加入已知彈簧係數之彈簧與已知質量大小之印刷電路板,來達到彈性底座的效果,進而改變壓電彎片的共振頻率,使其更接近周圍環境的振動頻率。我們研究不同的彈性底座,以找出能使壓電彎片產生更大的發電量的彈性底座。本研究也討論雜訊的處理,將利用同軸電纜或接地等方式來減低雜訊的影響。本研究探討了不同彈性底座對壓電彎片發電量的影響,在馬達搖擺振幅為0.9度、頻率為15Hz且彈性底座之質量比a為4,剛性比r為2時,獲得最佳的發電電壓90mV和396nW的發電效果。
Nowadays the research on harvesting energy using piezoelectric generators is in great demand. Most research puts emphasis on mechanism design or power generation method, but few on the dynamic properties of piezoelectric benders, e.g.resonant frequency. This work achieves the effect of elastic base by adding springs with prescribed stiffness and a printed circuit board with given mass between piezoelectric benders and bases to make the resonant frequency of piezoelectric benders close to the low frequency of ambient vibration. To look for the elastic base which can make piezoelectric benders generate more electric power, we compare different elastic bases. Accordingly, more electric power is generated from piezoelectric generators using a designed elastic base. We have compared different elastic bases based on power generated by piezoelectric benders. We obtained the best result of 90mV and 396 nW when index a equals 4 and index r equals 2.
摘 要 I
ABSTRACT II
誌謝 III
目錄 IV
圖目錄 VII
表目錄 X
表目錄 X
第一章 引言 1
1.1文獻回顧 2
1.2研究目的 3
第二章 彈性底座理論 5
2.1彈性底座 5
2.2彈性底座對共振頻率的影響 9
2.2.1壓電彎片的剛性 9
2.2.2彈性底座對壓電彎片之共振頻率的影響 12
第三章 系統鑑別 17
3.1實驗介紹 17
3.2實驗結果 22
3.2.1不具彈性底座 22
3.2.2具有彈性底座 (a=1) 23
3.2.3具有彈性底座 (a=4) 27
3.2.4具有彈性底座 (a=8) 31
3.2.4具有彈性底座 (a=10) 34
第四章 充電電路分析 38
4.1電容 38
4.1.1不同電容值 39
4.2電阻 43
4.2.1最大電壓傳輸 44
4.2.2最大電流傳輸 46
4.2.3最大能量傳輸 48
4.3討論 50
第五章 發電實驗 51
5.1實驗架構 51
5.1.1發電裝置 51
5.1.2雜訊消除 53
5.1.3其他實驗儀器 54
5.1.4實驗流程 55
5.2實驗量測結果 55
5.3點質量 59
第六章 結論與未來工作 67
6.1結論 67
6.2未來工作 68
參考文獻 69
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[2] Roundy, S., Wright, P. K., Rabaey, J. (2003) "A Study of Low Level Vibrations as a Power Source for Wireless Sensor Nodes," Comput. Commun., Vol. 26, No. 11, pp. 1131-1144.
[3] Roundy, S. (2005) "Improving Power Output for Vibration-Based Energy Scavengers," IEEE Pervasive Computing, Vol. 4, No. 1, pp. 28.
[4] Xu, C. N., Akiyama, M., Nonaka, K., Watanabe, T. (1998) "Electrical Power Generation Characteristics of PZT Piezoelectricceramics,", IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control,Vol. 45, No. 4, pp. 1065-1070.
[5] Kang, J. Y., Kim, H. J., Kim, J. S., Kim, T. S. (2002) "Optimal Design of Piezoelectric Cantilever for a Micro Powergenerator with Microbubble," Microtechnologies in Medicine & Biology 2nd Annual International IEEE-EMB Special Topic Conference, pp . 424-427.
[6] Yuantai, H., Hongping, H., Jiashi, Y. (2006) "A Low Frequency Piezoelectric Power Harvester Using a Spiral-Shaped Bimorph,".pp.649-659.
[7] Gautschi, G. H. (2002) "Piezoelectric Sensorics: Force, Strain, Pressure, Acceleration and Acoustic Emission Sensors, Materials and Amplifiers, Springer,", pp. 168-176.
[8] Cornwell, P., Goethal, J., Kowko, J., Damianakis, M. (2005) "Enhancing Power Harvesting Using a Tuned Auxiliary Structure," J Intell Mater Syst Struct, Vol. 16, No. 10, pp.825-834.
[9] Richards, C. D., Anderson, M. J., Bahr, D. F., Richards, R. F. (2004) "Efficiency of Energy Conversion for Devices Containing a Piezoelectric Component," J Micromech Microengineering, Vol. 14, No. 5, pp. 717-721.
[10] Cho, J., Richards, R., Bahr, D., Richards, C., Anderson, M. (2006) "Efficiency of Energy Conversion by Piezoelectrics," Appl. Phys. Lett., Vol. 89, pp. 104-107.
[11] Guyomar, D., Badel, A., Lefeuvre, E., Richard, C. (2005) "Toward Energy Harvesting Using Active Materials and Conversion Improvement by Nonlinear Processin," IEEE Trans. Ultrason. Ferroelectr. Freq. Control, Vol. 52, No. 4, pp. 584-595.
[12] Makihara, K., Onoda, J., Miyakawa, T. (2006) "Low Energy Dissipation Electric Circuit for Energy Harvesting," Smart Mater Struct, Vol. 15, No. 5, pp. 1493-1498.
[13] Liu, W., Feng, Z., He, J., Liu, R. (2007) "Maximum Mechanical Energy Harvesting Strategy for a Piezoelement," Smart Mater Struct,Vol. 16, pp. 2130-2136.
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