基于自供电无线传感网络的天线健康监测系统设计图文

上传人:206****923 文档编号:90727510 上传时间:2019-06-15 格式:DOC 页数:9 大小:177.50KB
返回 下载 相关 举报
基于自供电无线传感网络的天线健康监测系统设计图文_第1页
第1页 / 共9页
基于自供电无线传感网络的天线健康监测系统设计图文_第2页
第2页 / 共9页
基于自供电无线传感网络的天线健康监测系统设计图文_第3页
第3页 / 共9页
基于自供电无线传感网络的天线健康监测系统设计图文_第4页
第4页 / 共9页
基于自供电无线传感网络的天线健康监测系统设计图文_第5页
第5页 / 共9页
点击查看更多>>
资源描述

《基于自供电无线传感网络的天线健康监测系统设计图文》由会员分享,可在线阅读,更多相关《基于自供电无线传感网络的天线健康监测系统设计图文(9页珍藏版)》请在金锄头文库上搜索。

1、南 京 航 空 航 天 大 学 攻读硕士学位研究生课 题 论 证 报 告姓 名学 号专 业研究方向指导教师2011年 12月 10日1 2 3 4 5 6 7 8 9 参 考 文 献 (应 有 20 篇 以 上 1 贺学锋,李江,赵兴强,温志渝,王晓兰.带质量块的微型压电式风能采集器研究J.传感技术 学报 2011,24(7) :986-989. 2 Yen Kheng Tan. Self-Autonomous Wireless Sensor Nodes With Wind Energy Harvesting for Remote Sensing of Wind-Driven Wildre S

2、pread J.IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT,2011,60(4:1367-1377. 3 Yen Kheng Tan. Optimized Wind Energy Harvesting System Using Resistance Emulator and Active Rectier for Wireless Sensor Nodes J. IEEE TRANSACTIONS ON POWER ELECTRONICS,2011,26(1,38-50. 4 Emilio Sardini. Self-Powered

3、Wireless Sensor for Air Temperature and Velocity Measurements With Energy Harvesting Capability J. IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT,2011,60(5:1838-1844. 5 M. A. Weimer, T. S. Paing, and R. A. Zane.Remote area wind energy harvesting for low-power autonomous sensorsJ.in Proc. Power

4、 Electron.Spec. Conf, 2006, 1-5. 6 P. D. Mitcheson, E. M. Yeatman, G. K. Rao, A. S. Holmes, and T. C. Green. Energy harvesting from human and machine motion for wireless electronic devicesJ. Proc. IEEE, 2008 ,96 (9,14571486. 7 H. J. Jung, S. W. Lee, and D. D. Jang. Feasibility study on a new energy

5、harvesting electromagnetic device using aerodynamic instabilityJ.IEEE Trans. Magn,vol. 2009 ,45(10 , 43764379. 8 C. Vlad, I. Munteanu, A. I. Bratcu, and E. Ceanga.Output power maximization of low-power wind energy conversion systems revisited: Possible control solutionsJ.Energy Convers. Manage, 2010

6、,51(2, 305310. 9 E. Sardini and M. Serpelloni.Passive and self-powered autonomous sensors for remote measurementsJ. 2009,9(2, 118. 10 D. Marioli, A. Flammini, E. Sardini, and M. Serpelloni.An autonomous sensor with energy harvesting capability for airow speedmeasurementsJ. 2010,892897. 11 Paul D. Mi

7、tcheson,Tim C. Green,Eric M. Yeatman. Architecture for vibration-driven micropower generators. Journal of microelectromechanical systems, 2004: 429-440. 12P. G. Jones,Tudor,M. J. Beeby. An electromagnetic vibration-powered generator for intelligent sensor systems. Sensors and Actuators A: Physical,

8、2004: 344-349. 13Ching, Neil N.H.,Wong, H.Y. A laser-micromachined multi-modal resonating power transducer for wireless sensing systems. Sensors and Actuators A, 2001: 685-690. 14 Zhu, A Reid, S. Finney and M. Judd. Energy Scavenging Technique for Powering Wireless M. 10 Sensors. Proc. International

9、 Conference on Condition Monitoring and Diagnosis, 2008: 881-884. 15G. M. Rebeiz, J. B. Muldavin. RF MEMS Switches and Switch Circuits. IEEE MicroWave Magazine,2001: 59-71. 16M. Zhu, M. D. Judd and P. J. Moore. Energy Harvesting in Substations for Powering Autonomous Sensors. Sensor Technologies and

10、 Applications, 2009: 246 - 251. 17Dwari, S,Dayal, R. Efficient Direct AC-to-DC Converters for Vibration-Based Low Voltage Energy Harvesting. IECON, Industrial Electronics, 34th Annual Conference of IEEE, 2008: 2320 - 2325. 18Suman Dwari, Leila Parsa. An Efficient ACDC Step-Up Converter for Low-Volta

11、ge Energy Harvesting. Power Electronics, IEEE Transactions on,2010: 2188-2199. 19Starzyk, J.A.,Ying-Wei Jan,Fengjing Qiu.A DC-DC charge pump design based on voltage doublers. IEEE Transactions on, Fundamental Theory and Applications, 2001: 350-359. 20Dobbs, B.G.,Chapman, P.L.A Multiple-Input DCDC Co

12、nverter Topology. IEEE, Power Electronics Letters, 2003:6-9. 21Khaligh, A.,Li, Z. Battery, Ultracapacitor, Fuel Cell, and Hybrid Energy Storage Systems for Electric, Hybrid Electric, Fuel Cell, and Plug-In Hybrid Electric Vehicles: State of the Art. Vehicular Technology, IEEE Transactions on,2010:28

13、06-2814. 22 Khaligh, A , Peng Zeng , Xiaochun Wu. A Hybrid Energy Scavenging Topology for Human-Powered Mobile Electronics. Industrial Electronics, 34th Annual Conference of IEEE, 2008: 448-453. 11 开 题 报 告 专 家 组 考 核 意 见 (包括专家组提出的意见和建议,总体考核结论:通过、修改后通过或不通过 专家意见: 总体考核结论:通过。 专家组成员(签字 年 月 日 导 师 意 见 导师(签字) : 年 月 日 系 意 见 负责人(签字) : 年 月 日 学 院 意 见 负责人(签字) : 年 月 日 备 注 12

展开阅读全文
相关资源
相关搜索

当前位置:首页 > 中学教育 > 其它中学文档

电脑版 |金锄头文库版权所有
经营许可证:蜀ICP备13022795号 | 川公网安备 51140202000112号