Mohit Yadav, Dinesh Yadav
Abstract
Keywords: Energy harvesting, piezoelectric effect, piezoelectric materials, hydraulic pressure, fluid vibrational energy
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REFERENCES
1. Koyvanich, P. Smithmaitrie and N. Muensit, “Perspective microscale piezoelectric harvester for converting flow energy in water way,” Adv. Mater. Lett. 6(6), 538-543 (2015).
2. Amit Kumar, Deepak Chhabra “Design of Neural Network Controller for Active Vibration control of Cantilever plate with piezo-patch as sensor /actuator” International Journal of Modern Engineering Research Vol. 3, Issue. 4, 2013 pp-2481-2488 ISSN: 2249-6645.
3. M. T. Tien, N. S. Goo, “Use of a piezocomposite generating element in energy harvesting,” J. Intell. Mater. Syst. Struct. 21(14), 1427-1436 (2010).
4. A. Wang, and H. H. Ko, “Piezoelectric energy harvesting from flow-induced vibration,” J. Micromech. Micro eng. 20(2), 025019 (2010).
5. D. Chhabra, G. Bhushan and P. Chandna, “Multilevel optimization for the placement of piezo-actuators on plate structures for active vibration control using modified heuristic genetic algorithm.” In Industrial and Commercial Applications of Smart Structures Technologies 9059, 90590J (2014). International Society for Optics and Photonics.
6. D. Chhabra, G. Bhushan and P. Chandna, “Optimization of Collocated/Non collocated Sensors and Actuators along with Feedback Gain Using Hybrid Multi objective Genetic Algorithm-Artificial Neural Network,” Chin. J. Eng. 2014 (2014), 692140 (2014).
7. D. Chhabra, K. Narwal and P. Singh, “Design and analysis of piezoelectric smart beam for active vibration control,” Int. J. Adv. Res. Technol. 1(1), 1-5(2012).
8. D. Yadav and R. Sehrawat, “Green Energy Generation using Single and Double parallel circuit configuration of PZT piezoelectric patch by application of Hydro Dynamism,” Inter. J. R&D Eng. Sci. Manag. 9 (2), 25-38
9. D. Yadav, “Comparison of Green Energy harvested using PZT piezo patch in different series configuration and Optimization of circuitry system,” Journal of Emerging Technologies and Innovative Research. 5 (8), 974-984.2018.
10. D.Yadav, J. Yadav, R. Vashistha, D.P. Goyal, and D. Chhabra, “Modeling and simulation of an open channel PEHF system for efficient PVDF energy harvesting.” Mechanics of Advanced Materials and Structures, 1-15 (2019)
11. W. Taylor, J. R. Burns, S. M. Kammann, W. B. Powers and T. R. Wel, “The energy harvesting eel: a small subsurface ocean/river power generator,” J. Ocean Eng. Sci. 26(4), 539-547(2001).
12. J. Yadav and Dinesh, “Design of an open channel fluid flow system for piezoelectric energy harvesting,” Int. J. Latest Trends Eng. Technol. 8(4-1), pp.244-249 (2017).
13. J. Yadav, Dinesh and D. P. Goyal, “A review on advance piezoelectric energy harvesting and their circuitry system,” Inter. J. R&D Eng. Sci. Manag. 4(7), pp.8-17 (2016).
14. J. Yadav, D. Yadav, R. Vashistha, D.P. Goyal, and D. Chhabra, “Green energy generation through PEHF–a blueprint of alternate energy harvesting. International journal of green energy, 16(3), 242-255 (2019).
15. L.Tang, M. P. Païdoussis and J. Jiang, “Cantilevered flexible plates in axial flow: energy transfer and the concept of flutter-mill,” J. Sound Vib. 326(1), 263-276(2009).
16. M. S. Bhuyan, B. Y. Majlis, M. Othman, S. H. M. Ali, C. Kalaivani, and S. Islam, “Bluff Body Fluid Interactions Modelling for Micro Energy Harvesting Application,” J. Phys. Conf. Ser. 431 (2013).
17. P. Rani and D. Chhabra,”Piezoelectric energy harvesting from fluid flow dynamism using pvdf. Int. J R&d Eng. Sci. Manag., 4(1), 23-36.2016.
18. Q. Zhu and Z. Peng, “Mode coupling and flow energy harvesting by a flapping foil,” Phys. Fluids, 21(3), 033601 (2009).
19. R. Patel, S. McWilliam and A. A. Popov, “Optimization of piezoelectric cantilever energy harvesters including non-linear effects,” Smart Mater. Struct. 23(8), 085002 (2011).
20. S. Abrol, and D. Chhabra, “Harvesting piezoelectricity using different structures by utilizing fluid flow interactions Inter. J. R&D Eng. Sci. Manag, 5(7), 24-36 (2017).
21. S. D. Kwon, “A T-shaped piezoelectric cantilever for fluid energy harvesting,” Appl. Phys. Lett. 97(16), 164102 (2010).
22. Sanchita Abrol, Deepak Chhabra “Experimental Investigations of Piezoelectric Energy Harvesting with Turbulent Flow” International Journal of Mechanical and Production Engineering Research & Development, Volume: 8 Issue: 1 pp.703 –710 ISSN: 2449-8001 (2018).
23. T. M. Kamel, R. Elfrink, M. Renaud, D. Hohlfeld, M. Goedbloed, C. De Nooijer and R. Van Schaijk, “Modeling and characterization of MEMS-based piezoelectric harvesting devices,” J. Micromech. Microeng. 20(10), 105023 (2010).
24. Ashwani Kumar and Deepak Chhabra “Study of PEH Configurations & Circuitry and Techniques for Improving PEH Efficiency” International Journal for Scientific Research & Development, Vol.4 , Issue 3: pp.2098-2102 (2016).
25. Kumar, V., Kumar, A., Chhabra, D., Shukla, P. Improved biobleaching of mixed hardwood pulp and process optimization using novel GA-ANN and GA-ANFIS hybrid statistical tools (2019) Bioresource Technology, 271, pp. 274-282.
26. X. D. Xie, Q. Wang and N. Wu, “Potential of a piezoelectric energy harvester from sea waves,” J. Sound Vib. 333(5), 1421-1429 (2014).
27. Y. K. Ramadass and A. P. Chandrakasan, “An efficient piezoelectric energy harvesting interface circuit using a bias-flip rectifier and shared inductor,” IEEE J. Solid State Circuits. 45(1), 189-204 (2010).
28. Y. Tanaka, T. Oko, H. Mutsuda, R. Patel, S. M. William and A. Atanas, “An Experimental Study of Wave Power Generation Using a Flexible Piezoelectric Device,” J. Ocean Wind Energy, 2(1), 28-36 (2015).
29. Neeraj Sehgal, Monu Malik, Deepak Chhabra, “Meta-heuristics Approaches for the Placement of Piezoelectric actuators/Sensors on a Flexible Cantilever Plate: A Review” International Journal of Enhanced Research In Science Technology & Engineering, Vol. 3, Issue 6, June, , pp: (7-16),ISSN: 2319-7463, 2014.