Wideband Micro-Power Generators for Vibration Energy Harvesting
|
|
|
- Norah Campbell
- 10 years ago
- Views:
Transcription
1 Wideband Micro-Power Generators for Vibration Energy Harvesting by Mostafa Soliman Athesis presented to the University of Waterloo in fulfillment of the thesis requirement for the degree of Doctor of Philosophy in Electrical and Computer Engineering Waterloo, Ontario, Canada, 2009 c Mostafa Soliman 2009
2 I hereby declare that I am the sole author of this thesis. This is a true copy of the thesis, including any required final revisions, as accepted by my examiners. I understand that my thesis may be made electronically available to the public. ii
3 Abstract Energy harvesters collect and convert energy available in the environment into useful electrical power to satisfy the power requirements of autonomous systems. Vibration energy is a prevalent source of waste energy in industrial and built environments. Vibration-based energy harvesters, or vibration-based micro power generators (VBMPGs), utilize a transducer, a mechanical oscillator in this application, to capture kinetic energy from environmental vibrations and to convert it into electrical energy using electromagnetic, electrostatic, or piezoelectric transduction mechanisms. A key design feature of all VBMPGs, regardless of their transduction mechanism, is that they are optimally tuned to harvest vibration energy within a narrow frequency band in the neighborhood of the natural frequency of the oscillator. Outside this band, the output power is too low to be conditioned and utilized. This limitation is exacerbated by the fact that VBMPGs are also designed to have high quality factors to minimize energy dissipation, further narrowing the optimal operating frequency band. Vibrations in most environments, however, are random and wideband. As a result, VBMPGs can harvest energy only for a relatively limited period of time, which imposes excessive constraints on their usability. A new architecture for wideband VBMPGs is the main contribution of this thesis. The new design is general in the sense that it can be applied to any of the three transduction mechanisms listed above. The linear oscillator is replaced with a piecewise-linear oscillator as the energy-harvesting element of the VBMPG. The new architecture has been found to increase the bandwidth of the VBMPG during a frequency up-sweep, while maintaining the same bandwidth in a frequency downsweep. Experimental results show that using the new architecture results in a 313% increase in the width of the bandwidth compared to that produced by traditional architecture. Simulations show that under random-frequency excitations, the new architecture collects more energy than traditional architecture. iii
4 In addition, the knowledge acquired has been used to build a wideband electromagnetic VBMPG using MicroElectroMechanical Systems, MEMS, technology. This research indicates that a variety of piecewise-linear oscillators, including impact oscillators, can be implemented on MPG structures that have been built using MEMS technology. When the scale of the MPGs is reduced, lower losses are likely during contact between the moving oscillators and the stopper, which will lead to an increase in bandwidth and hence in the amount of energy collected. Finally, a design procedure has been developed for optimizing such wideband MPGs. This research showed that wideband MPGs require two design optimization steps in addition to the traditional technique, which is used in all types of generators, of minimizing mechanical energy losses through structural design and material selection. The first step for both regular and wideband MPGs minimizes the MPG damping ratio by increasing the mass and stiffness of the MPG by a common factor until the effect of size causes the rate at which energy losses increase to accelerate beyond that common factor. The second step, which is specific to wideband MPGs, tailors the output power and bandwidth to fit the Probability Density Function, PDF, of environmental vibrations. A figure of merit FoM was devised to quantify the quality of this fit. Experimental results show that with this procedure, the bandwidth at half-power level increases to more than 600% of the original VBMPG bandwidth. iv
5 Acknowledgments First of all, I would like to express my sincere gratitude to my supervisors Professor Raafat Mansour, Professor Ehab El-Saadany and Professor Eihab Abdel- Rahman, for their guidance, encouragement, and contributions in the development of my research. Without their vision, deep insight, advice, and willingness to provide funding, this work would not have been possible. Their extensive knowledge, strong analytical skills, and commitment to the excellence of research are certainly treasures to their students. They give students freedom to explore the uncharted areas while providing the needed assistance at the right time. They are willing to share their knowledge and career experience and give emotional and moral encouragement. Their hard working attitude and high expectation toward research have inspired me to mature into a better researcher. I feel they are not just advisers but role models and friends. Working with them is proved to be a rewarding experience. I would like to thank them genuinely for everything I have achieved in my research so far. I would also like to thank Prof. Patricia Nieva, Siva Sivoththaman, and Prof. Kankar Bhattacharya, for serving on my dissertation committee and providing valuable advice on my research. They have devoted precious time reading my thesis. Their constructive comments and valuable suggestions have greatly improved this dissertation. Special thanks go to Bill Jolley of the Centre For Integrated RF Engineering (CIRFE). He created such a wonderful collaborative research environment and pleasant work atmosphere. I benefit greatly from his solid and broad technical knowledge, insightful comments, and invaluable advice. I would like to thank my fellow graduate students in the CIRFE, with whom I have shared numerous hours (days and nights), and have had several intellectually stimulating discussions covering a wide range of topics. v
6 This dissertation is dedicated to my parents whose love, sacrifice, support, and prayers have always been the greatest inspiration for me in my pursuit for betterment. My deepest acknowledgment goes to my sincere wife Nevien for her dedicated support and encouragement. This dissertation could not be completed without her presence beside me. My final acknowledgment goes to my lovely kids Rahma and Omar. vi
7 To my father, to my mother To my sincere wife Nevien and To my beloved children, Rahma and Omar vii
8 Contents List of Tables List of Figures xi xii 1 Introduction Preamble Research Objectives Approach Thesis Outline Literature Review and Background Potential Power Sources Vibration as a Constant Power Source Vibration-Based Micro-Power Generators Piezoelectric MPGs Electrostatic MPGs Electromagnetic MPGs Scaling of Electromagnetic MPGs Macro-Sized EMPGs Miniaturized MEMS-Based EMPGs Comparison of the vibration-based MPGs viii
9 Bibliography [36] C. Tsung-Shune, Permanent magnet films for applications in microelectromechanical systems, Journal of Magnetism and Magnetic Materials, 2000, vol. 209, pp [37] W. Trimmer, Microrobots and micromechanical systems, J. Sensors and Actuators, 1989, vol. 19, pp [38] O. Cugat, J. Delamare, and G. Reyne, Magnetic micro-actuators and systems (MAGMAS), IEEE Trans. Magn.,2003, vol. 39(6), pp [39] D. Arnold, Review of microscale magnetic power generation, IEEE Trans. Magnetics, 2007, vol. 43(11), pp [40] S. Priya, and D. Inman, Energy Harvesting Technologies, Springer, [41] T. Sterken, K. Baert, C. Van Hoof, R. Puers, G. Borghs, and P. Fiorini, Comparative Modeling for Vibration Scavengers, Proceedings of IEEE Sensors, 2004, vol. 3, pp [42] R. Amirtharajah, and A. Chandrakasan, Self-powered signal processing using vibration-based power generation, IEEE Journal of Solid-Stat Circuits, 1998, vol. 33(5), pp [43] M. El-Hami, P. Glynne-Jones, N. White, M. Hill, S. Beeby, E. James, A. Brown, and J. Ross, A new approach towards the design of a vibrationbased microelectromechanical generator, Proc. 14th European Conference on Solid-State Transducers, Copenhagen, August 2730, 2000, pp [44] M. El-Hami, P. Glynne-Jones, N. White, M. Hill, S. Beeby, E. James, A. Brown, and N. Ross, Design and fabrication of a new vibration-based electromechanical power generator, J. Sensors and Actuators, A: Physical, 2001, vol. 92, pp
10 Bibliography [45] N. Neil, H. Wong, J. Wen, H. Philip, and Zhiyu Wen, A laser-micromachined multi-modal resonating power transducer for wireless sensing systems, J. Sensors and Actuators, A: Physical, 2002, vol , pp [46] J. Wen, Z. Wen, P. Wong, G. Chan, and P. Leong, A micromachined vibration-induced power generator for low power sensors for robotic systems, Proceedings of the World Automation Congress: 8th International Symposium on Robotics with Applications, June 11-14, 2000, Hawaii, USA,. [47] J. Wen,C. Terry Ho, M. Gordon Chan, H. Philip Leong, and H. Yung Wong, Infrared signal transmission by a Laser-Micromachined Vibration-Induced power generator, Proc. of 43rd IEEE Midwest Symposium on Circuits and Systems, 2000, Lasing MI, pp [48] M. Johnny Lee, C. Steve Yung, J. Wen Li, and H. Philip Leong, Development of an AA size energy transducer with micro resonators, IEEE International Symposium On Circuit and Systems, 2003, Thailand, pp. IV.876 IV.879. [49] P. Glynne-Jones, M. Tudor, S. Beeby, N. White, An electromagnetic, vibration-powered generator for intelligent sensor systems, J. Sensors and Actuators, 2004, vol. A110(13)pp [50] S. Beeby, R. Torah, M. Tudor, P. Glynne-Jones, T. ODonnell, C. Saha, and S. Roy, A micro electromagnetic generator for vibration energy harvesting, J. Micromech. Microeng., 2007, vol. 17, pp [51] R. Torah, P. Glynne-Jones, M. Tudor, T. ODonnell, S. Roy, and S. Beeby, Self-powered autonomous wireless sensor node using vibration energy harvesting, J. Meas. Sci. Technol., 2008, vol. 19, [52] K. Sasaki, Y. Osaki, J. Okazaki, H. Hosaka, and K. Itao, Vibration-based automatic power-generation system, J. Microsyst. Technol., 2005, vol. 11(810), pp
11 Bibliography [53] V. Thomas, and T. Gerhard, Design and optimization of a linear vibrationdriven electromagnetic micro-power generator, J. Sensors and Actuators, 2007, vol. A135, pp [54] C. Saha, T. O Donnell, N. Wang, and P. McCloskey, Electromagnetic generator for harvesting energy from human motion, J. Sensors and Actuators, 2008, vol. A147, pp [55] Z. Hadas, M. Kluge, V. Singule, and C. Ondrusek, Electromagnetic Vibration Power Generator, IEEE International Symposium on Diagnostics for Electric Machines, Power Electronics and Drives, 2007, pp [56] C. Williams, and R. Yates, Analysis of a micro-electric generator for microsystems, J. Sensors and Actuators, 1996 vol. A52(1), pp [57] C. Shearwood and R. Yates, Development of an electromagnetic microgenerator, IEEE Electron. Lett., 1997, vol. 33(22), pp [58] C. Williams, C. Shearwood, M. Harradine, P. Mellor, T. Birch, and R. Yates, Development of an electromagnetic micro-generator, IEE Proc. Circuits, Devices Syst., 2001, vol. 148(6), pp [59] H. Kulah, and K. Najafi, An electromagnetic micro power generator for low frequency environmental vibrations, 17th IEEE International Conference on Microelectromechanical Systems, 2004, pp [60] M. Mizuno, and D. Chetwynd, Investigation of resonance microgenerator, J. Micromech. and Microeng., 2003, vol. 13, pp [61] C. Serre, A. Perez-Rodrguez, N. Fondevilla, E. Martincic, S. Martnez, J. Morante, J. Montserrat, and J. Esteve, IDesign and implementation of mechanical resonators for optimized inertial electromagnetic microgenerators, J. Microsyst. Technol., 2008, vol. 14, pp
12 Bibliography [62] C. Pan, Y. Hwang, H. Hu, and H. Liu, Fabrication and analysis of a magnetic self-power microgenerator, J. Magnetism and Magnetic Material., 2006, vol. 304(1), pp. e394-e396. [63] E. Koukharenko, S. Beeby, M. Tudor, N. White, T. ODonnell, C. Saha, S. Kulkarni, and S. Roy, Microelectromechanical systems vibration powered electromagnetic generator for wireless sensor applications, J. Microsyst Technol, 2006, vol. 12, pp [64] S. Kulkarni, S. Roy, T. ODonnell, S. Beeby, and J. Tudor, Vibration Based Electromagnetic MicroPower Generator on Silicon, J. Applied Physics, 2006, vol.99, 08P511. [65] Pei-Hong Wanga, Xu-Han Daia, Dong-Ming Fang, and Xiao-Lin Zhao, Design, fabrication and performance of a new vibration-based electromagnetic micro power generator, Microelectronics Journal, 2007, vol. 38, pp [66] P. Mitcheson, E. Reilly, T. Toh, P. Wright, and E. Yeatman, Performance limits of the three MEMS inertial energy generator transduction types, J. Micromech. Microeng., 2007, vol. 17, pp. S211-S216. [67] I. Sari, T. Balkan, and H, Kulah, A wideband electromagnetic micro power generator for wireless microsystems, Transducers and Eurosensors 07, 2007, pp [68] I. Sari, T. Balkan, and H. Kulah, An electromagnetic micro power generator for wideband environmental vibrations, J. Sensors and Actuators, 2008, vol. A145146, pp [69] S. Shahruz, Design of mechanical band-pass filters with large frequency bands for energy scavenging, Journal of Mechatronics, 2006, vol. 16, pp
13 Bibliography [70] S Shahruz, and Jingang Yi, Performance of mechanical band-pass filters used in energy scavenging in the presence of fabrication errors and coupling, Proceedings of IMECE2007: 2007 ASME International Mechanical Engineering Congress and Exposition, 2007, Seattle, Washington, USA, [71] S. Shahruz, Performance of Mechanical Bandpass Filters Used in Energy Scavenging in the Presence of Fabrication Errors and Coupling, J. Vibration and Acoustics, 2008, vol. 130, [72] S. Shahruz, Design of Mechanical Band-Pass Filters for Energy Scavenging: Multi-Degree-of-Freedom Models, J. Vibration and Control, 2008, vol. 14(5), pp [73] M. Ferrari, V. Ferrari, M. Guizzetti, D. Marioli, and A. Taroni, Piezoelectric multifrequency energy converter for power harvesting in autonomous microsystems, J. Sensors and Actuators, 2008, vol. A142, pp [74] Jing-Quan Liu, Hua-Bin Fang, Zheng-Yi Xu, Xin-Hui Mao, Xiu-Cheng Shen, Di Chen, Hang Liao, and Bing-Chu Cai, A MEMS-based piezoelectric power generator array for vibration energy harvesting, Microelectronics Journal, 2008, vol. 39, pp [75] E. Leland and P. Wright, Resonance tuning of piezoelectric vibration energy scavenging generators using compressive axial preload, J. Smart Materials and Structures, 2006, vol. 15, pp [76] J. Loverich, R. Geiger, and J. Frank, Stiffness nonlinearity as a means for resonance frequency tuning and enhancing mechanical robustness of vibration power harvesters, Active and Passive Smart Structures and Integrated Systems, Proc. of SPIE, 2008, vol. 6928,
14 Bibliography [77] V. Challa, M. Prasad, Y. Shi, and F. Fisher, A vibration energy harvesting device with bidirectional resonance frequency tunability, J. Smart Materials and Structures, 2007, vol. 17, [78] V. Challa, M. Prasad, and F. Fisher, High efficiency energy harvesting device with mamagnetic coupling for resonance frequency tuning, Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems, Proc. of SPIE, 2008, vol. 6932, 69323Q. [79] S. Burrow, and L. Clare, A Resonant Generator with Non-Linear Compliance for Energy Harvesting in High Vibrational Environments, IEMDC 07, 3-5 May, 2007, vol. 1, pp [80] S. Burrow, L. Clare, A. Carrella, and D. Barton, Vibration energy harvesters with non-linear compliance, Active and Passive Smart Structures and Integrated Systems, Proc. of SPIE, 2008 vol. 6928, [81] B. Yang, C. Lee,W. Xiang, J. Xie, J. Han He, R. Kotlanka, S. Low and H. Feng, Electromagnetic energy harvesting from vibrations of multiple frequencies, J. Micromech. Microeng., 2009, vol. 19, [82] J. Wen, Z. Wen, P. Wong, G. Chan, and P. Leong, A micromachined vibration-induced power generator for low power sensors for robotic systems, Proc. Of the World Automation Congress, June 11-14, 2000, Hawaii, USA. [83] N. Stephen, On energy harvesting from ambient vibration, J. Sound and Vibration., 2006, vol. 293, pp [84] Permanent Magnets data sheets available from MMG Magdev Limited. [85] M. Harris, Shock and Vibration Handbook, McGraw-HILL, Fourth Eddition,
15 Bibliography [86] P. Laura, J. Pombo, and E. Susemihl, A note on the vibrations of a clampedfree beam with a mass at the free end, J. Sound and Vibration, 1974, vol. 37(2), pp [87] A. Narimani, and F. Golnaraghi, Frequency Response of a Piecewise linear Vibration isolator, J. Vibration and control, 2004, pp [88] A. Nayfeh, and B. Balachandran, Applied Nonlinear Dynamics, Wiley, New York,
Wideband Micro-Power Generators for Vibration Energy Harvesting
Wideband Micro-Power Generators for Vibration Energy Harvesting by Mostafa Soliman Athesis presented to the University of Waterloo in fulfillment of the thesis requirement for the degree of Doctor of Philosophy
An Electromagnetic Micro Power Generator Based on Mechanical Frequency Up-Conversion
International Journal of Materials Science and Engineering Vol. 1, No. December 013 An Electromagnetic Micro Power Generator Based on Mechanical Frequency Up-Conversion Vida Pashaei and Manouchehr Bahrami
DEVELOPMENT OF A VIBRATION POWERED MICRO GENERATOR AND ITS APPLICATION TO HARVEST THE VIBRATION ENERGY OF THE KRI KKP- 811 S ENGINE
1 DEVELOPMENT OF A VIBRATION POWERED MICRO GENERATOR AND ITS APPLICATION TO HARVEST THE VIBRATION ENERGY OF THE KRI KKP- 811 S ENGINE Harus L.G. 1), Wiwiek Hendrowati ) and Rahmat Susanto ) 1) Lecturer,
Modeling and Simulation of a Piezoelectric Micro-Power Generator
Excerpt from the Proceedings of the Conference 2010 Boston Modeling and Simulation of a Piezoelectric Micro-Power Generator Manu Pallapa*, Mohamed Aly Saad Aly, Albert I. H. Chen, Lawrence Wong, Ka Wai
Power Generation in Pipeline: Report
LA-UR-05-6354 Approved for public release; distribution is unlimited. Title: Power Generation in Pipeline: Report Author(s): Dipen N. Sinha Submitted to: Gas Technology Management Division Strategic Center
NATIONAL SUN YAT-SEN UNIVERSITY
NATIONAL SUN YAT-SEN UNIVERSITY Department of Electrical Engineering (Master s Degree, Doctoral Program Course, International Master's Program in Electric Power Engineering) Course Structure Course Structures
Department of Electrical and Electronics Engineering, Antalya International University, Antalya, TURKEY Email: [email protected].
MUSTAFA ILKER BEYAZ Department of Electrical and Electronics Engineering, Antalya International University, Antalya, TURKEY Email: [email protected] PROFESSIONAL EXPERIENCE Assistant Professor Department
Study of Effect on Resonance Frequency of Piezoelectric Unimorph Cantilever for Energy Harvesting
Study of Effect on Resonance Frequency of Piezoelectric Unimorph Cantilever for Energy Harvesting G. Ravi Prakash*, K. M. Vinayaka Swamy, S. Huddar, B. G. Sheeparamatti, Department of Electronics and Communication
RF energy harvester based on MEMS
9/9/010 NiPS Summer School 010 Summer School: Energy Harvesting at micro and nanoscale, August 1 6, 010 NiPSWorkshop: Noiseindynamicalsystemsat themicro and nanoscale, August6 8, 010 La Tenuta dei Ciclamini,
Depth and Excluded Courses
Depth and Excluded Courses Depth Courses for Communication, Control, and Signal Processing EECE 5576 Wireless Communication Systems 4 SH EECE 5580 Classical Control Systems 4 SH EECE 5610 Digital Control
MEMS electrostatic micropower generator for low frequency operation
Sensors and Actuators A 115 (24) 523 529 MEMS electrostatic micropower generator for low frequency operation P.D. Mitcheson, P. Miao, B.H. Stark, E.M. Yeatman, A.S. Holmes, T.C. Green Department of Electrical
Acoustic Energy Harvesting Using Piezoelectric Generator for Low Frequency Sound Waves Energy Conversion
Acoustic Energy Harvesting Using Piezoelectric Generator for Low Frequency Sound Waves Energy Conversion Haris Fazilah Hassan #1, Syed Idris Syed Hassan #2, Rosemizi Abd Rahim #3, #1 Electrical, Electronics
ENERGY HARVESTING FOR MICRO-ELECTROMECHANICAL-SYSTEMS (MEMS)
ENERGY HARVESTING FOR MICRO-ELECTROMECHANICAL-SYSTEMS (MEMS) GURKAN ERDOGAN TABLE OF CONTENTS ABSTRACT (223 words)... 2 INTRODUCTION (758 words)... 3 A CRITICAL LITERATURE REVIEW (1867 words)... 6 SUMMARY
Electromagnetic Micropower. generation - System Design and. Analyses. Nibras Awaja Bachelor of Engineering (Electrical & Electronic Engineering)
Electromagnetic Micropower generation - System Design and Analyses A thesis submitted in fulfilment of the requirements for the degree of Master of engineering Nibras Awaja Bachelor of Engineering (Electrical
Micro enano energy harvesting
Micro enano energy harvesting Helios Vocca NiPS Lab, Physics Dept., University of Perugia, IT & Wisepower srl [email protected] Who are we? www.wisepower.it In Arcadia, California The NiPS experience
Wireless Sensor Networks
Edgar H. Callaway, Jr. Wireless Sensor Networks Architectures and Protocols A AUERBACH PUBLICATIONS A CRC Press Company Boca Raton London New York Washington, D.C. Chapter 1 Introduction to Wireless Sensor
A. Ricci, E. Giuri. Materials and Microsystems Laboratory
Presented at the COMSOL Conference 2009 Milan FSI Analysis of Microcantilevers Vibrating in Fluid Environment Materials and Microsystems Laboratory Politecnico di Torino Outline Brief Presentation of Materials
Micro Power Generators. Sung Park Kelvin Yuk ECS 203
Micro Power Generators Sung Park Kelvin Yuk ECS 203 Overview Why Micro Power Generators are becoming important Types of Micro Power Generators Power Generators Reviewed Ambient Vibrational energy Radiant
Micro-Power Generation
Micro-Power Generation Elizabeth K. Reilly February 21, 2007 TAC-meeting 1 Energy Scavenging for Wireless Sensors Enabling Wireless Sensor Networks: Ambient energy source Piezoelectric transducer technology
A Vibration-Based MEMS Piezoelectric Energy Harvester and Power Conditioning Circuit
Sensors 2014, 14, 3323-3341; doi:10.3390/s140203323 Article OPEN ACCESS sensors ISSN 1424-8220 www.mdpi.com/journal/sensors A Vibration-Based MEMS Piezoelectric Energy Harvester and Power Conditioning
Factors Influencing the Adoption of Biometric Authentication in Mobile Government Security
Factors Influencing the Adoption of Biometric Authentication in Mobile Government Security Thamer Omar Alhussain Bachelor of Computing, Master of ICT School of Information and Communication Technology
The Department of Electrical and Computer Engineering (ECE) offers the following graduate degree programs:
Note that these pages are extracted from the full Graduate Catalog, please refer to it for complete details. College of 1 ELECTRICAL AND COMPUTER ENGINEERING www.ece.neu.edu SHEILA S. HEMAMI, PHD Professor
Electrical and Computer Engineering (ECE)
Department of Electrical and Computer Engineering Contact Information College of Engineering and Applied Sciences B-236 Parkview Campus 1903 West Michigan, Kalamazoo, MI 49008 Phone: 269 276 3150 Fax:
Design and Electromagnetic Modeling of E-Plane Sectoral Horn Antenna For Ultra Wide Band Applications On WR-137 & WR- 62 Waveguides
International Journal of Engineering Science Invention ISSN (Online): 2319 6734, ISSN (Print): 2319 6726 Volume 3 Issue 7ǁ July 2014 ǁ PP.11-17 Design and Electromagnetic Modeling of E-Plane Sectoral Horn
Potential Ambient Energy-Harvesting Sources and Techniques
40 Potential Ambient Energy-Harvesting Sources and Techniques Faruk Yildiz Abstract Ambient energy harvesting is also known as energy scavenging or power harvesting, and it is the process where energy
能 量 採 集 技 術 簡 介 及 發 展 現 況
能 量 採 集 技 術 簡 介 及 發 展 現 況 邱 一 國 立 交 通 大 學 電 機 系 教 授 [email protected] 03-5731838 2015 電 源 技 術 論 壇 December 10, 2015 1 大 綱 能 量 採 集 技 術 (energy harvesting/ scavenging) 簡 介 應 用 實 例 及 發 展 現 況 未 來 可 能
ISSN: 2321-7782 (Online) Volume 2, Issue 2, February 2014 International Journal of Advance Research in Computer Science and Management Studies
ISSN: 2321-7782 (Online) Volume 2, Issue 2, February 2014 International Journal of Advance Research in Computer Science and Management Studies Research Article / Paper / Case Study Available online at:
Energy Harvesting From Human and Machine Motion for Wireless Electronic Devices
CONTRIBUTED P A P E R Energy Harvesting From Human and Machine Motion for Wireless Electronic Devices Practical miniature devices are becoming available for harnessing kinetic energy as a substitute for
Experimental Investigation of Damping characteristics for various Damping Materials
Experimental Investigation of Damping characteristics for various Damping Materials Jilani Shaik 1, Sd.Abdul kalam 2, P.Ravi kumar 3 1Department of Mechanical Engineering (Machine Design), PVPSIT, Kanuru,
SECOND YEAR. Major Subject 3 Thesis (EE 300) 3 Thesis (EE 300) 3 TOTAL 3 TOTAL 6. MASTER OF ENGINEERING IN ELECTRICAL ENGINEERING (MEng EE) FIRST YEAR
MASTER OF SCIENCE IN ELECTRICAL ENGINEERING (MS EE) FIRST YEAR Elective 3 Elective 3 Elective 3 Seminar Course (EE 296) 1 TOTAL 12 TOTAL 10 SECOND YEAR Major Subject 3 Thesis (EE 300) 3 Thesis (EE 300)
Overview. also give you an idea of ANSYS capabilities. In this chapter, we will define Finite Element Analysis and. Topics covered: B.
2. FEA and ANSYS FEA and ANSYS Overview In this chapter, we will define Finite Element Analysis and also give you an idea of ANSYS capabilities. Topics covered: A. What is FEA? B. About ANSYS FEA and ANSYS
ENS 07 Paris, France, 3-4 December 2007
ENS 7 Paris, France, 3-4 December 7 FRICTION DRIVE SIMULATION OF A SURFACE ACOUSTIC WAVE MOTOR BY NANO VIBRATION Minoru Kuribayashi Kurosawa, Takashi Shigematsu Tokyou Institute of Technology, Yokohama
MS and PhD Degree Requirements
MS and PhD Degree Requirements Department of Electrical and Computer Engineering September 1, 2014 General Information on ECE Graduate Courses This document is prepared to assist ECE graduate students
The activities of Mechanical and Industrial Engineering Department.
Dipartimento di Ingegneria Meccanica e Industriale Department of Mechanical and Industrial Engineering The activities of Mechanical and Industrial Engineering Department. Director of DIMI Professor R.
A PRACTICAL MINIATURIZED U-SLOT PATCH ANTENNA WITH ENHANCED BANDWIDTH
Progress In Electromagnetics Research B, Vol. 3, 47 62, 2008 A PRACTICAL MINIATURIZED U-SLOT PATCH ANTENNA WITH ENHANCED BANDWIDTH G. F. Khodaei, J. Nourinia, and C. Ghobadi Electrical Engineering Department
Class of 2016 Second Year Common CORE - 2013-2014
2013-2014 Engineering and Applied Science Calendar Class of 2016 Second Year Common CORE - 2013-2014 APSC 200 Engineering Design and Practice II F 3-0-1 4 APSC 293 Engineering Communications F.25-0-.75
Coursework for MS leading to PhD in Electrical Engineering. 1 Courses for Digital Systems and Signal Processing
work for MS leading to PhD in Electrical Engineering 1 s for Digital Systems and Signal Processing EE 801 Analysis of Stochastic Systems EE 802 Advanced Digital Signal Processing EE 80 Advanced Digital
2014 Voluntary Page and Overlength Article Charges
2014 and NOTE: page charges do not apply to open access articles. Title Aerospace & Electronic $200 10 4 Aerospace & Electronic Affective Computing Annals of the History of Computing Antennas & Propagation
Compact Tunable and Dual band Circular Microstrip Antenna for GSM and Bluetooth Applications
205 Compact Tunable and Dual band Circular Microstrip Antenna for GSM and Bluetooth Applications *K. P. Ray 1, S. Nikhil 2 and A. Nair 2 1 SAMEER, IIT Campus, Powai, Mumbai 400 076, India 2 K.J.Somaiya
Energy Harvesting Powered Wireless Sensor Node and Asset Tracking Solutions in Random Vibration Environments
White Paper Energy Harvesting Powered Wireless Sensor Node and Asset Tracking Solutions in Random Vibration Environments by Anurag Kasyap, Ph.D. April 2009 Copyright 2009 AdaptivEnergy LLC. All rights
School of Electrical Engineering and Telecommunications
School of Electrical Engineering and Telecommunications Masters By Coursework Never Stand Still Faculty of Engineering School of Electrical Engineering and Telecommunications Electrical Engineering With
A Highly Efficient Power Management System for Charging Mobile Phones using RF Energy Harvesting
A Highly Efficient Power Management System for Charging Mobile Phones using RF Energy Harvesting Ajay Sivaramakrishnan, Kailarajan Jeyaprakash Jegadishkumar 2 B.E Electronics & Communication, II year,
Simulation and Design of Printed Circuit Boards Utilizing Novel Embedded Capacitance Material
Simulation and Design of Printed Circuit Boards Utilizing Novel Embedded Capacitance Material Yu Xuequan, Yan Hang, Zhang Gezi, Wang Haisan Huawei Technologies Co., Ltd Lujiazui Subpark, Pudong Software
Revistas IEEE ANII 2009
Revistas IEEE ANII 2009 Advanced Packaging, IEEE Transactions on Aerospace and Electronic Systems Magazine, IEEE Aerospace and Electronic Systems, IEEE Transactions on American Institute of Electrical
Vibration Measurement of Wireless Sensor Nodes for Structural Health Monitoring
, pp.18-22 http://dx.doi.org/10.14257/astl.2015.98.05 Vibration Measurement of Wireless Sensor Nodes for Structural Health Monitoring Surgwon Sohn, Seong-Rak Rim, In Jung Lee Div. of Computer and Information
DESIGN FOR MONITORING AND OPTIMIZATION OF POWER DEMAND FOR WIRELESSLY COMMUNICATING ELECTRIC LOADS
DESIGN FOR MONITORING AND OPTIMIZATION OF POWER DEMAND FOR WIRELESSLY COMMUNICATING ELECTRIC LOADS Patil Snehal S.S. 1, Mr. Shivdas S.S. 2 1 M. E. Electronics (II), Department of Electronics Engineering;
ELECTRICAL ENGINEERING
EE ELECTRICAL ENGINEERING See beginning of Section H for abbreviations, course numbers and coding. The * denotes labs which are held on alternate weeks. A minimum grade of C is required for all prerequisite
Design of an U-slot Folded Shorted Patch Antenna for RF Energy Harvesting
Design of an U-slot Folded Shorted Patch Antenna for RF Energy Harvesting Diponkar Kundu, Ahmed Wasif Reza, and Harikrishnan Ramiah Abstract Novel optimized U-slot Folded Shorted Patch Antenna (FSPA) is
Overview of Energy Harvesting Systems (for low-power electronics)
Overview of Energy Harvesting Systems (for low-power electronics) Gyuhae Park Engineering Institute Engineering Sciences & Applications Los Alamos National Laboratory The First Engineering Institute Workshop:
Safakcan Tuncdemir 1, William M. Bradley *2. 1. Introduction
Modeling and Experimental Verification of the Power Transfer and Thermal Characteristics of Piezoelectric Transformers Subjected to Combined Mechanical and Electrical Loading Safakcan Tuncdemir 1, William
Sensor Devices and Sensor Network Applications for the Smart Grid/Smart Cities. Dr. William Kao
Sensor Devices and Sensor Network Applications for the Smart Grid/Smart Cities Dr. William Kao Agenda Introduction - Sensors, Actuators, Transducers Sensor Types, Classification Wireless Sensor Networks
III. MEMS Projection Helvetica 20 Displays
Helvetica 26 Helvetica 22 III. MEMS Projection Displays Micro Mirror Projection - Texas Instruments DMD - Daewoo Elec. AMA Grating Light Valve - Silicon Light Machines Image Projection Color Synthesis
Nano Meter Stepping Drive of Surface Acoustic Wave Motor
Proc. of 1st IEEE Conf. on Nanotechnology, Oct. 28-3, pp. 495-5, (21) Maui, Hawaii Nano Meter Stepping Drive of Surface Acoustic Wave Motor Takashi Shigematsu*, Minoru Kuribayashi Kurosawa*, and Katsuhiko
EXPERIMENTAL INVESTIGATION OF A TWO-DEGREE-OF-FREEDOM VIBRO-IMPACT SYSTEM
International Journal of Bifurcation and Chaos, Vol. 22, No. 5 (2012) 1250110 (7 pages) c World Scientific Publishing Company DOI: 10.1142/S0218127412501106 EXPERIMENTAL INVESTIGATION OF A TWO-DEGREE-OF-FREEDOM
AUTOMATIC ACCIDENT DETECTION AND AMBULANCE RESCUE WITH INTELLIGENT TRAFFIC LIGHT SYSTEM
AUTOMATIC ACCIDENT DETECTION AND AMBULANCE RESCUE WITH INTELLIGENT TRAFFIC LIGHT SYSTEM Mr.S.Iyyappan 1, Mr.V.Nandagopal 2 P.G Scholar, Dept. of EEE, Ganadipathy Tulis s Jain Engineering College, Vellore,
A SILICON-BASED MICRO GAS TURBINE ENGINE FOR POWER GENERATION. Singapore Institute of Manufacturing Technology, Singapore 658075
Stresa, Italy, 26-28 April 2006 A SILICON-BASED MICRO GAS TURBINE ENGINE FOR POWER GENERATION X. C. Shan 1, Z. F. Wang 1, R. Maeda 2, Y. F. Sun 1 M. Wu 3 and J. S. Hua 3 1 Singapore Institute of Manufacturing
Analysis of Mobile Phone Reliability Based on Active Disassembly Using Smart Materials *
Journal of Surface Engineered Materials and Advanced Technology, 2011, 1, 80-87 doi:10.4236/jsemat.2011.12012 Published Online July 2011 (http://www.scirp.org/journal/jsemat) Analysis of Mobile Phone Reliability
Chalmers Publication Library
Chalmers Publication Library Contactless pin-flange adapter for high-frequency measurements This document has been downloaded from Chalmers Publication Library (CPL). It is the author s version of a work
Obstacle Avoidance Design for Humanoid Robot Based on Four Infrared Sensors
Tamkang Journal of Science and Engineering, Vol. 12, No. 3, pp. 249 258 (2009) 249 Obstacle Avoidance Design for Humanoid Robot Based on Four Infrared Sensors Ching-Chang Wong 1 *, Chi-Tai Cheng 1, Kai-Hsiang
Energy Scavenging for Wireless Sensor Nodes with a Focus on Vibration to Electricity Conversion. Shadrach Joseph Roundy
Energy Scavenging for Wireless Sensor Nodes with a Focus on Vibration to Electricity Conversion by Shadrach Joseph Roundy B.S. (Brigham Young University) 1996 M.S. (University of California, Berkeley)
Electrical Engineering Postgraduate coursework programs
Electrical Engineering Postgraduate coursework programs Never Stand Still Engineering Electrical Engineering and Telecommunications Your future. Your choice. Postgraduate study in electrical engineering
THE FLORIDA STATE UNIVERSITY COLLEGE OF ENGINEERING DESIGN OF A COMPACT MICROSTRIP PATCH ANTENNA FOR USE IN WIRELESS/CELLULAR DEVICES.
THE FLORIDA STATE UNIVERSITY COLLEGE OF ENGINEERING DESIGN OF A COMPACT MICROSTRIP PATCH ANTENNA FOR USE IN WIRELESS/CELLULAR DEVICES By: Punit S. Nakar A Thesis submitted to the Department of Electrical
National Laboratory of Antennas and Microwave Technology Xidian University Xi an, Shaanxi 710071, China
Progress In Electromagnetics Research, PIER 76, 237 242, 2007 A BROADBAND CPW-FED T-SHAPE SLOT ANTENNA J.-J. Jiao, G. Zhao, F.-S. Zhang, H.-W. Yuan, and Y.-C. Jiao National Laboratory of Antennas and Microwave
A bidirectional DC-DC converter for renewable energy systems
BULLETIN OF THE POLISH ACADEMY OF SCIENCES TECHNICAL SCIENCES Vol. 57, No. 4, 2009 A bidirectional DC-DC converter for renewable energy systems S. JALBRZYKOWSKI, and T. CITKO Faculty of Electrical Engineering,
SIW 2D PLANAR ARRAY WITH FOUR CROSS SLOTS RADIATOR AND TUNING VIAS
Progress In Electromagnetics Research C, Vol. 40, 83 92, 2013 SIW 2D PLANAR ARRAY WITH FOUR CROSS SLOTS RADIATOR AND TUNING VIAS P. Sanchez-Olivares, J. L. Masa-Campos *, J. A. Ruiz-Cruz, and B. Taha-Ahmed
STUDENTS ATTITUDES TOWARDS BUSINESS ETHICS: A COMPARISON BETWEEN INDONESIA AND LESOTHO.
i THESIS STUDENTS ATTITUDES TOWARDS BUSINESS ETHICS: A COMPARISON BETWEEN INDONESIA AND LESOTHO. MPHOLLE CLEMENT PAE-PAE Student ID Number :125001758/PS/MM MASTER OF MANAGEMENT PROGRAM POSTGRADUATE PROGRAM
TECHNOLOGIE ENERGY HARVESTING - Generování elektrické energie z okolí (autonomní zdroje elektrické energie)
- Generování elektrické energie z okolí (autonomní zdroje elektrické energie) Ing. Zdeněk HADAŠ, Ph.D. Ústav mechaniky těles, mechatroniky a biomechaniky Fakulta strojního inženýrství Vysoké učení technické
STUDENT PROFILES 2014-15 M.TECH IN RADIO FREQUENCY DESIGN AND TECHNOLOGY
STUDENT PROFILES 2014-15 M.TECH IN RADIO FREQUENCY DESIGN AND TECHNOLOGY CENTRE FOR APPLIED RESEARCH IN ELECTRONICS INDIAN INSTITUTE OF TECHNOLOGY, DELHI http://care.iitd.ac.in Page 2 of 8 Dhritiman Kashyap
Sensors and actuators are ubiquitous. They are used
Understanding IEEE 1451 Networked Smart Transducer Interface Standard Eugene Y. Song and Kang Lee istockphoto.com What Is a Smart Transducer? Sensors and actuators are ubiquitous. They are used in a variety
INTRODUCTION TO SENSORS AND ACTUATORS
Summer 2015 INTRODUCTION TO SENSORS AND ACTUATORS This course is an elective and will be offered as an undergraduate/graduate class. If you require a more detailed outline or any additional information,
Piezoelectric Driven Non-toxic Injector for Automated Cell Manipulation
Medicine Meets Virtual Reality 18 J.D. Westwood et al. (Eds.) IOS Press, 2011 2011 The authors. All rights reserved. doi:10.3233/978-1-60750-706-2-231 231 Piezoelectric Driven Non-toxic Injector for Automated
Research of Smart Space based on Business Intelligence
Research of Smart Space based on Business Intelligence 1 Jia-yi YAO, 2 Tian-tian MA 1 School of Economics and Management, Beijing Jiaotong University, [email protected] 2 School of Economics and Management,
DC/DC BUCK Converter for Renewable Energy Applications Mr.C..Rajeshkumar M.E Power Electronic and Drives,
DC/DC BUCK Converter for Renewable Energy Applications Mr.C..Rajeshkumar M.E Power Electronic and Drives, Mr.C.Anandaraj Assistant Professor -EEE Thiruvalluvar college of Engineering And technology, Ponnur
Similar benefits are also derived through modal testing of other space structures.
PAGE 1 OF 5 PREFERRED RELIABILITY PRACTICES MODAL TESTING: MEASURING DYNAMIC STRUCTURAL CHARACTERISTICS Practice: Modal testing is a structural testing practice that provides low levels of mechanical excitation
SEISMIC MONITORING & PROTECTION SYSTEMS
SEISMIC MONITORING & PROTECTION SYSTEMS PRODUCT GUIDE Seismic Transducers & Switches Nuclear Infrastructure Protection Structural & Environmental Monitoring Data Capture & Analysis 25 YEARS 1978-2003 PROTECTING
Analysis of seismic response control for long-span cable-stayed. bridge under traveling wave input *
Analysis of seismic response control for long-span cable-stayed bridge under traveling wave input * QI ing-jun, LI iao-jun 2 ( Associate Professor, School of Civil Engineering, Shandong Jianzhu University,
Multipath fading in wireless sensor mote
Multipath fading in wireless sensor mote Vaishali M.Tech (VLSI), IMSEC, Ghaziabad/MTU, Noida Abstract: In this paper we study about the new technology as to transfer the data with the help of smart device,
INTERNET-BASED COLLABORATIVE PROGRAMMING TECHNIQUES AND ENVIRONMENTS
INTERNET-BASED COLLABORATIVE PROGRAMMING TECHNIQUES AND ENVIRONMENTS By Haifeng Shen A DISSERTATION SUBMITTED IN FULFILLMENT OF THE REQUIREMENTS OF THE DEGREE OF DOCTOR OF PHILOSOPHY AT THE SCHOOL OF COMPUTING
RF Energy Harvesting Principle and Research
RF Energy Harvesting Principle and Research Outline Introduction and Motivation Energy Harvesting Techniques RF Energy Vibration Energy Solar Energy Energy Harvesting Architecture System Evaluation Circuit
Graduate School of Science and Technology
Contents Master's Course 2 Three Common Courses 2 Materials and Life Science Course 2 Computer and Information Science Course 3 Electrical and Mechanical Engineering Course 3 Doctor's Course 5 Materials
Harvested Energy Adaptive Load Balancing in WSNs
Harvested Energy Adaptive Load Balancing in WSNs Ishu JindalIshu Jindal and Er. Divya Bharti** M.tech Pursuing*, Assistant Professor** Desh Bhagat University ABSTRACT The distribution of wireless sensor
Construction and experiment on micro-gyroscope detection balance loop
International Conference on Manufacturing Science and Engineering (ICMSE 05) Construction and experiment on micro-groscope detection balance loop Wang Xiaolei,,a *, Zhao Xiangang3, Cao Lingzhi, Liu Yucui,
