Over the last decade, wireless devices have decreased in size and power requirements. These devices generally use batteries as a power source but can employ additional means of power, such as solar, thermal or wind energy. However, sensor networks are often deployed in conditions of minimal lighting and thermal gradient such as densely wooded environments, where even normal wind energy harvesting is limited. In these cases a possible source of energy is from the motion of the trees themselves. We investigated the amount of energy and power available from the motion of a tree in a sheltered position, during Beaufort 4 winds. We measured the work performed by the tree to lift a mass, we measured horizontal acceleration of free movement, and we determined the angular deflection of the movement of the tree trunk, to determine the energy and power available to various types of harvesting devices. We found that the amount of power available from the tree, as demonstrated by lifting a mass, compares favourably with the power required to run a wireless sensor node.
References
[1]
Doolin, DM; Sitar, N. Wireless sensors for wildfire monitoring. Proceedings of the Smart Structures and Materials 2005: Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems, San Diego, CA, USA, 6–10 March 2005; 5765, pp. 477–484.
[2]
Wark, T; Wen, H; Corke, P; Hodge, J; Keto, A; Mackey, B; Foley, G; Sikka, P; Brunig, M. Springbrook: Challenges in developing a long-term, rainforest wireless sensor network. Proceedings of the 2008 International Conference on Intelligent Sensors, Sensor Networks, and Information Processing, ISSNIP 2008, Sydney, Australia, 15–18 December 2008; pp. 599–604.
Pearcy, RW. The light environment and growth of C-3 and C-4 tree species in the understory of a Hawaiian forest. Oecologia 1983, 58, 19–25.
[6]
Kruijt, B; Malhi, Y; Lloyd, J; Norbre, AD; Miranda, AC; Pereira, MGP; Culf, A; Grace, J. Turbulence statistics above and within two Amazon rain forest canopies. Bound.-Layer Meteorol 2000, 94, 297–331.
[7]
Mooring, J. Spring Motor Powered Electricity Generation System Actuated by Reciprocating Natural ForcesU.S. Patent 6,825,574 B1. 30, November, 2004.
[8]
Kim, HB; Kim, YJ; Lee, M; Kim, SK; Kim, JK. Spring Activated Energy Transducer Generating a/C Electricity from Natural Forces-Frictionless Magnetic PlateU.S. Patent 7,304,398. 4, December, 2007.
[9]
Rees, HD. Distributed System of Electrical Generators Utilizing Wind Driven Natural Motion of TreesU.S. Patent Application 2009/0224539 A1. 10, September, 2009.
[10]
Rees, HD; Faigen, MJ. Distributed System of Electrical Generators Utilizing Wind Driven Natural Motion of TreesU.S. Patent 7,936,079 B2. 3, May, 2011.
[11]
Voltree Bioenergy Harvester. Available online: http://www.voltreepower.com/bioHarvester.html (accessed on 23 July 2011).
[12]
Himes, C; Carlson, E; Ricchiuti, RJ; Otis, BP; Parviz, BA. Ultralow voltage nanoelectronics powered directly, and solely, from a tree. IEEE Trans. Nanotechnol 2010, 9, 2–5.
[13]
Knight, C; Davidson, J; Behrens, S. Energy options for wireless sensor nodes. Sensors 2008, 8, 8037–8066.
[14]
Riffat, SB; Ma, XL. Thermoelectrics: A review of present and potential applications. Appl. Therm. Eng 2003, 23, 913–935.
[15]
Lawrence, EE; Snyder, GJ. A study of heat sink performance in air and soil for use in a thermoelectric energy harvesting device. Proceedings of the 21st International Conference on Thermoelectrics (ICT ’02), Long Beach, CA, USA, 25–29 August 2002; pp. 446–449.
[16]
Meydbray, Y; Singh, R; Shakouri, A. Thermoelectric module construction for low temperature gradient power generation. Proceedings of the 24th International Conference on Thermoelectrics (ICT ’05), Clemson, SC, USA, 19–23 June 2005; pp. 348–351.
[17]
Paradiso, JA; Starner, T. Energy scavenging for mobile and wireless electronics. IEEE Pervasive Comput 2005, 4, 18–27.
[18]
Thomas, JP; Qidwai, MA; Kellogg, JC. Energy scavenging for small-scale unmanned systems. J. Power Sources 2006, 159, 1494–1509.
[19]
Taylor, GW; Burns, JR; Kammann, SA; Powers, WB; Welsh, TR. The energy harvesting eel: A small subsurface ocean/river power generator. IEEE J. Ocean. Eng 2001, 26, 539–547.
[20]
Humdinger Wind Energy. Available online: http://www.humdingerwind.com/ (accessed on 23 July 2011).
[21]
Dinwoodie, JM. Timber, Its Nature and Behaviour; Taylor & Francis Group: London, UK, 2000.
[22]
Munson, BR; Young, DF; Okiishi, TH. Fundamentals of Fluid Mechanics; John Wiley & Sons Inc: Hoboken, NJ, USA, 1998.
[23]
Murphy, SD; Robertson, DGE. Construction of a high-pass digital-filter from a low-pass digital-filter. J. Appl. Biomech 1994, 10, 374–381.