|
ABSTRACT
Harvesting energy from the environment is a desirable and increasingly important capability in several emerging applications of embedded systems such as sensor networks, biomedical implants, etc. While energy harvesting has the potential to enable near-perpetual system operation, designing an efficient energy harvesting system that actually realizes this potential requires an in-depth understanding of several complex tradeoffs. These tradeoffs arise due to the interaction of numerous factors such as the characteristics of the harvesting transducers, chemistry and capacity of the batteries used (if any), power supply requirements and power management features of the embedded system, application behavior, etc. This paper surveys the various issues and tradeoffs involved in designing and operating energy harvesting embedded systems. System design techniques are described that target high conversion and storage efficiency by extracting the most energy from the environment and making it maximally available for consumption. Harvesting aware power management techniques are also described, which reconcile the very different spatio-temporal characteristics of energy availability and energy usage within a system and across a network.
REFERENCES
Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.
| |
1
|
|
| |
2
|
Vijay Raghunathan , Aman Kansal , Jason Hsu , Jonathan Friedman , Mani Srivastava, Design considerations for solar energy harvesting wireless embedded systems, Proceedings of the 4th international symposium on Information processing in sensor networks, April 24-27, 2005, Los Angeles, California
|
| |
3
|
|
 |
4
|
|
 |
5
|
Henri Dubois-Ferrière , Laurent Fabre , Roger Meier , Pierre Metrailler, TinyNode: a comprehensive platform for wireless sensor network applications, Proceedings of the fifth international conference on Information processing in sensor networks, April 19-21, 2006, Nashville, Tennessee, USA
[doi> 10.1145/1127777.1127831]
|
| |
6
|
Chulsung Park and Pai H. Chou. AmbiMax: Efficient, autonomous energy harvesting system for multiple-supply wireless sensor nodes. In to appear, Proc. Third Annual IEEE Communications Society Conference on Sensor, Mesh, and Ad Hoc Communications and Networks (SECON), 2006.
|
 |
7
|
|
| |
8
|
|
| |
9
|
|
| |
10
|
Olivier Chevalerias , Terence O'Donnell , Daithi Power , Neil O'Donovan , Gerald Duffy , Gary Grant , Sean Cian O'Mathuna, Inductive Telemetry of Multiple Sensor Modules, IEEE Pervasive Computing, v.4 n.1, p.46-52, January 2005
[doi> 10.1109/MPRV.2005.15]
|
| |
11
|
David L. Churchill, Michael J. Hamel, Christopher P. Townsend, and Steven W. Arms. Strain energy harvesting for wireless sensor networks. Proceedings of SPIE, 5055:319, 2003.
|
| |
12
|
S. Kim, W.W. Clark, and Q.M. Wang. Piezoelectric energy harvesting using diaphragm structure. Proceedings of SPIE, 5055:307, 2003.
|
| |
13
|
Henry A. Sodano, Daniel J. Inman, and Gyuhae Park. A review of power harvesting from vibration using piezoelectric materials. The Shock and Vibration Digest, 36(3):197--205, 2004.
|
| |
14
|
Sunghwan Kim. Low power energy harvesting with piezoelectric generators. PhD thesis, University of Pittsburgh, 2002.
|
| |
15
|
Shad Roundy , Eli S. Leland , Jessy Baker , Eric Carleton , Elizabeth Reilly , Elaine Lai , Brian Otis , Jan M. Rabaey , V. Sundararajan , Paul K. Wright, Improving Power Output for Vibration-Based Energy Scavengers, IEEE Pervasive Computing, v.4 n.1, p.28-36, January 2005
[doi> 10.1109/MPRV.2005.14]
|
| |
16
|
Geffrey K. Ottman, Heath F. Hofmann, Archin C. Bhatt, and George A. Lesieutre. Adaptive piezoelectric energy harvesting circuit for wireless remote power supply. IEEE Transactions on Power Electronics, 17(5):669--676, 2002.
|
| |
17
|
|
 |
18
|
|
| |
19
|
Geffrey K. Ottman, Heath F. Hofmann, and George A. Lesieutre. Optimized piezoelectric energy harvesting circuit using step-down converter in discontinuous conduction mode. IEEE Transactions on Power Electronics, 18(2):696--703, March 2003.
|
 |
20
|
|
| |
21
|
P. Enjeti, J.W. Howze, and L. Palma. An approach to improve battery run-time in mobile applications with supercapacitors. In IEEE 34th Annual Power Electronics Specialists Conference, 2003.
|
| |
22
|
T.A. Smith, J.P. Mars, and G.A. Turner. Using supercapacitors to improve battery performance. In Power Electronics Specialists Conference, 2002.
|
| |
23
|
H. Pollock. High efficiency, high frequency power supplies for capacitor and battery charging. In IEE Colloquium on Power Electronics for Demanding Applications, pages 901 -- 910, Apr. 1999.
|
| |
24
|
R.M. Nelms and J.E. Schatz. A capacitor charging power supply utilizing a ward converter. IEEE Trans. Ind. Electronics, 39:421--428, Oct. 1992.
|
 |
25
|
|
 |
26
|
Jason Hsu , Sadaf Zahedi , Aman Kansal , Mani Srivastava , Vijay Raghunathan, Adaptive duty cycling for energy harvesting systems, Proceedings of the 2006 international symposium on Low power electronics and design, October 04-06, 2006, Tegernsee, Bavaria, Germany
[doi> 10.1145/1165573.1165616]
|
| |
27
|
|
| |
28
|
Rahul C. Shah and Jan M. Rabaey. Energy aware routing for low energy ad hoc sensor networks. In Proc. IEEE Wireless Communications and Networking Conference (WCNC), pages 350--355, 2002.
|
CITED BY 3
|
|
|
|
|
Volodymyr Pryyma , Ladislau Bölöni , Damla Turgut, Uniform sensing protocol for autonomous rechargeable sensor networks, Proceedings of the 11th international symposium on Modeling, analysis and simulation of wireless and mobile systems, October 27-31, 2008, Vancouver, British Columbia, Canada
|
|
|
Nathaniel J. Guilar , Erin G. Fong , Travis Kleeburg , Diego R. Yankelevich , Rajeevan Amirtharajah, Energy harvesting photodiodes with integrated 2D diffractive storage capacitance, Proceeding of the thirteenth international symposium on Low power electronics and design, August 11-13, 2008, Bangalore, India
|
|