376
13. M. F. Hossain (2017). Design and Construction of Ultra-Relativistic Collision PV Panel and
Its Application into Building Sector to Mitigate Total Energy Demand. Journal of Building
Engineering. 9, 147-154.
14. Mohammad Pichan, Hasan Rastegar, Mohammad Monfared, Two fuzzy-based direct power
control strategies for doubly-fed induction generators in wind energy conversion systems,
Energy, vol. 51, 2013, pp. 154–162.
15. M. F. Hossain and Nowshin Fara (2016). Integration of Wind into Running Vehicles to Meet
Its Total Energy Demand. Energy, Ecology, and Environment. 2(1), 35-48. (Springer Nature).
16. M. F. Hossain, Solar Energy Integration into Advanced Building Design for Meeting Energy
Demand and Environment Problem, Int. J. Energy Res. 17 (2016) 49–55.
17. Tien, H., Scherer, C., Scherpen, J. and Muller, V. (2016). Linear Parameter Varying Control
of Doubly Fed Induction Machines. IEEE Transactions on Industrial Electronics, 63(1),
pp. 216-224.
18. Chakib, R., Essadki, A. and Cherkaoui, M. (2014). Modeling and control of a wind system
based on a DFIG by active disturbance rejection control. International Review on Modelling
and Simulations (IREMOS), 7(4), p. 626.
19. M. F. Hossain (2017). Green Science: Independent Building Technology to Mitigate Energy,
Environment, and Climate Change. Renewable and Sustainable Energy Reviews. 73; 695-705.
20. Bhandari, B., Lee, KT., Lee, GY. et al. Int. J. of Precis. Eng. and Manuf.-Green Tech. (2015)
2: 99.
21. Chien-Hsiung Tsai, Lung-Ming Fu, Chang-Hsien Tai, Yen-Loung Huang, Jik-Chang
Leong, Computational aero-acoustic analysis of a passenger car with a rear spoiler, Applied
Mathematical Modelling, Volume 33, Issue 9, September 2009, Pages 3661-3673.
22. A. Gaillard, P. Poure, S. Saadate, M. Machmoum. Variable Speed DFIG Wind Energy System
for Power Generation and Harmonic Current Mitigation, Renewable Energy, vol. 34, 2009,
pp. 1545-1553.
23. Beltran, B., Benbouzid, M., Ahmed-Ali, T., Mangel, H., DFIG-based wind turbine robust control using high-order sliding modes and a high gain observer, (2011) International Review on
Modelling and Simulations (IREMOS), 4 (3), pp. 1148-1155.
24. Chang, S. (2003). “Evaluating Disaster Mitigations: Methodology for Urban Infrastructure
Systems.” Nat. Hazards Rev., https://doi.org/10.1061/(ASCE)1527-6988(2003)4:4(186),
186-196.
25. Abdelmalek, Samir, Linda Barazane, Abdelkader Larabi, and Hocine Belmili. “Contributions
to diagnosis and fault tolerant control based on proportional integral observer: Application to a
doubly-fed induction generator”, 2015 4th International Conference on Electrical Engineering
(ICEE), 2015.
26. Abdullah, M. A., Yatim, A. H. M., and Chee Wei, T., “A Study of Maximum Power Point
Tracking Algorithms for Wind Energy system,” Proc. of IEEE First Conference on Clean
Energy and Technology (CET), pp. 321-326, 2011.
27. de Sherbinin, Alex, Marc A Levy, Erica Zell, Stephanie Weber, and Malanding Jaiteh. “Using
satellite data to develop environmental indicators”, Environmental Research Letters, 2014.
28. Dürr, M., Cruden, A., Gair, S., and McDonald, J. R., “Dynamic Model of a Lead Acid Battery
for Use in a Domestic Fuel Cell System,” Journal of Power Sources, Vol. 161, No. 2, pp. 14001411, 2006.
29. S.J. Thompson, Congressional Research Service, “High Speed Ground Transportation
(HGST): Prospects and Public Policy,” Apr. 6, 1989, p. 5.
30. Abdullah Asuhaimi B. Mohd Zin, Mahmoud Pesaran H. A, Azhar B. Khairuddin, Leila
Jahanshaloo, Omid Shariatu, An overview on doubly fed induction generators’ controls
and contributions to wind based electricity generation, Renewable and Sustainable Energy
Reviews, vol. 27, 2013, pp. 692-708.
31. Benoît Robyns, Bruno Francois, Philippe Degobert, Jean Paul Hautier, Vector control of induction machines (Springer-Verlag, London, 2012).
32. D.L. Mitchell and D.U. Gubser, “Magnetohydrodynamic Ship Propulsion with Superconducting
Magnets, ” Journal of Superconductivity, vol. 1, No. 4, 1988, p. 349.
17 Rapid Connectivity Within the Urban and Rural Area
13. M. F. Hossain (2017). Design and Construction of Ultra-Relativistic Collision PV Panel and
Its Application into Building Sector to Mitigate Total Energy Demand. Journal of Building
Engineering. 9, 147-154.
14. Mohammad Pichan, Hasan Rastegar, Mohammad Monfared, Two fuzzy-based direct power
control strategies for doubly-fed induction generators in wind energy conversion systems,
Energy, vol. 51, 2013, pp. 154–162.
15. M. F. Hossain and Nowshin Fara (2016). Integration of Wind into Running Vehicles to Meet
Its Total Energy Demand. Energy, Ecology, and Environment. 2(1), 35-48. (Springer Nature).
16. M. F. Hossain, Solar Energy Integration into Advanced Building Design for Meeting Energy
Demand and Environment Problem, Int. J. Energy Res. 17 (2016) 49–55.
17. Tien, H., Scherer, C., Scherpen, J. and Muller, V. (2016). Linear Parameter Varying Control
of Doubly Fed Induction Machines. IEEE Transactions on Industrial Electronics, 63(1),
pp. 216-224.
18. Chakib, R., Essadki, A. and Cherkaoui, M. (2014). Modeling and control of a wind system
based on a DFIG by active disturbance rejection control. International Review on Modelling
and Simulations (IREMOS), 7(4), p. 626.
19. M. F. Hossain (2017). Green Science: Independent Building Technology to Mitigate Energy,
Environment, and Climate Change. Renewable and Sustainable Energy Reviews. 73; 695-705.
20. Bhandari, B., Lee, KT., Lee, GY. et al. Int. J. of Precis. Eng. and Manuf.-Green Tech. (2015)
2: 99.
21. Chien-Hsiung Tsai, Lung-Ming Fu, Chang-Hsien Tai, Yen-Loung Huang, Jik-Chang
Leong, Computational aero-acoustic analysis of a passenger car with a rear spoiler, Applied
Mathematical Modelling, Volume 33, Issue 9, September 2009, Pages 3661-3673.
22. A. Gaillard, P. Poure, S. Saadate, M. Machmoum. Variable Speed DFIG Wind Energy System
for Power Generation and Harmonic Current Mitigation, Renewable Energy, vol. 34, 2009,
pp. 1545-1553.
23. Beltran, B., Benbouzid, M., Ahmed-Ali, T., Mangel, H., DFIG-based wind turbine robust control using high-order sliding modes and a high gain observer, (2011) International Review on
Modelling and Simulations (IREMOS), 4 (3), pp. 1148-1155.
24. Chang, S. (2003). “Evaluating Disaster Mitigations: Methodology for Urban Infrastructure
Systems.” Nat. Hazards Rev., https://doi.org/10.1061/(ASCE)1527-6988(2003)4:4(186),
186-196.
25. Abdelmalek, Samir, Linda Barazane, Abdelkader Larabi, and Hocine Belmili. “Contributions
to diagnosis and fault tolerant control based on proportional integral observer: Application to a
doubly-fed induction generator”, 2015 4th International Conference on Electrical Engineering
(ICEE), 2015.
26. Abdullah, M. A., Yatim, A. H. M., and Chee Wei, T., “A Study of Maximum Power Point
Tracking Algorithms for Wind Energy system,” Proc. of IEEE First Conference on Clean
Energy and Technology (CET), pp. 321-326, 2011.
27. de Sherbinin, Alex, Marc A Levy, Erica Zell, Stephanie Weber, and Malanding Jaiteh. “Using
satellite data to develop environmental indicators”, Environmental Research Letters, 2014.
28. Dürr, M., Cruden, A., Gair, S., and McDonald, J. R., “Dynamic Model of a Lead Acid Battery
for Use in a Domestic Fuel Cell System,” Journal of Power Sources, Vol. 161, No. 2, pp. 14001411, 2006.
29. S.J. Thompson, Congressional Research Service, “High Speed Ground Transportation
(HGST): Prospects and Public Policy,” Apr. 6, 1989, p. 5.
30. Abdullah Asuhaimi B. Mohd Zin, Mahmoud Pesaran H. A, Azhar B. Khairuddin, Leila
Jahanshaloo, Omid Shariatu, An overview on doubly fed induction generators’ controls
and contributions to wind based electricity generation, Renewable and Sustainable Energy
Reviews, vol. 27, 2013, pp. 692-708.
31. Benoît Robyns, Bruno Francois, Philippe Degobert, Jean Paul Hautier, Vector control of induction machines (Springer-Verlag, London, 2012).
32. D.L. Mitchell and D.U. Gubser, “Magnetohydrodynamic Ship Propulsion with Superconducting
Magnets, ” Journal of Superconductivity, vol. 1, No. 4, 1988, p. 349.
17 Rapid Connectivity Within the Urban and Rural Area
