DOI QR코드

DOI QR Code

Development and Evaluation of Rack Type Piezoelectric Harvester for Smart Street Lamps Control

가로등 제어용 다층패드형 압전 하베스터의 개발 및 평가

  • Kim, Chang-Il (Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology) ;
  • Jeong, Young-Hun (Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology) ;
  • Park, Woon Ik (Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology) ;
  • Cho, Jeong-Ho (Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology) ;
  • Jang, Yong-Ho (Senbool Inc.) ;
  • Choi, Beom-Jin (Senbool Inc.) ;
  • Park, Shin-Seo (Senbool Inc.) ;
  • Paik, Jong-Hoo (Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology)
  • 김창일 (한국세라믹기술원 전자융합소재본부) ;
  • 정영훈 (한국세라믹기술원 전자융합소재본부) ;
  • 박운익 (한국세라믹기술원 전자융합소재본부) ;
  • 조정호 (한국세라믹기술원 전자융합소재본부) ;
  • 장용호 ((주)센불) ;
  • 최범진 ((주)센불) ;
  • 박신서 ((주)센불) ;
  • 백종후 (한국세라믹기술원 전자융합소재본부)
  • Received : 2016.09.26
  • Accepted : 2016.10.10
  • Published : 2016.11.01

Abstract

In this study, to increase output of road piezoelectric energy harvester, it was made into rack type in which many piezoelectric materials can be installed and load transfer device of the leverage type to transfer vehicle load was made. By paving it in the road, the output characteristics depending on vehicle load and speed were evaluated. Changing vehicle load, harvester output characteristics depending on speed changes were evaluated at the interval of 10 km/h from 10 km/h to 100 km/h. Also, by making a wireless switch and sending wireless signal with output of rack type harvester, whether to receive it was evaluated by distance. It was checked that all switches work up to front-to-back 100 m from harvester.

Keywords

References

  1. E. Romero, R. O. Warrington, and M. R. Neuman, Physiological Measurement, 30, R35 (2009). [DOI: http://dx.doi.org/10.1088/0967-3334/30/9/R01]
  2. S. Roundy, Journal of Intelligent Material Systems and Structures, 16, 809 (2005). [DOI: http://dx.doi.org/10.1177/1045389X05054042]
  3. T. Starner, IBM Systems Journal, 35, 618 (1996). [DOI: http://dx.doi.org/10.1147/sj.353.0618]
  4. N. S. Shenck and J. A. Paradiso, IEEE, 21, 30 (2001).
  5. J. Kymissis, C. Kendall, J. Paradiso, and N. Gershenfeld, Proc. Second IEEE International Symposium on Wearable Computers (Washington, USA, 1998) p. 132.
  6. J. A. Paradiso and M. Feldmeier, Proc. the 3rd International Conference on Ubiquitous Computing (eds. G. Abowd, B. Brumitt, and S. Shafer) (Atlanta, US, 2001) p. 299.
  7. K. Chebrolu, B. Raman, N. Mishra, P. K. Valiveti, and R. K. Brimon, Proc. the 6th International Conference on Mobile Systems, Applications, and Services (Colorado, US, 2008) p. 2.
  8. R. G. Lee, K. C. Chen, S. S. Chiang, C. C. Lai, H. S. Liu, and M. S. Wei, Proc. the 4th Annual Commucication Networks and Services Research Conference (IEEE, Moncton, New Brunswick, Canada, 2006) p. 161.
  9. C. I. Kim, J. H. Lee, K. B. Kim, Y. H. Jeong, J. H. Cho, J. H. Paik, Y. J. Lee, and S. Nahm, J. Korean Inst. Electr. Electron. Mater. Eng., 24, 554 (2011). [DOI:10.4313/JKEM.2011.24.7.554]
  10. C. I. Kim, K. B. Kim, J. H. Jeon, Y. H. Jeong, J. H. Cho, J. H. Paik, I. S. Kang, M. Y. Lee, B. J. Choi, Y. B. Cho, S. S. Park, S. Nahm, and Y. J. Lee, J. Korean Inst. Electr. Electron. Mater. Eng., 25, 511 (2012). [DOI: 10.4313/JKEM.2012.25.7.511]
  11. C. I. Kim, K. B. Kim, Y. H. Jeong, Y. J. Lee, J. H. Cho, J. H. Paik, I. S. Kang, M. Y. Lee, B. J. Choi, S. S. Park, Y. B. Cho, and S. Nahm, J. Korean Inst. Electr. Electron. Mater. Eng., 25, 773 (2012). [DOI: 10.4313/JKEM.2012.25.10.773]
  12. C. I. Kim, Y. H. Jeong, J. S. Yun, J. H. Cho, J. H. Paik, Y. H. Jang, B. J. Choi, S. S. Park, and Y. B. Cho, J. Korean Inst. Electr. Electron. Mater. Eng., 29, 274 (2016). [DOI: 10.4313/JKEM.2016.29.5.274]