[1] Davidson PA. An introduction to magnetohydrodynamics; Cambridge University Press, 2002.
[2] Lielausis O. Liquid-metal magnetohydrodynamics. Atomic Energy Review, 1975; 13(3): 527-581.
[3] Bykhovsky D G, Panov AN. U.S. Patent No. 5,009,399. Washington, DC: U.S. Patent and Trademark Office, 1991.
[4] Nguyen NT, Huang X, Chuan TK. MEMS-micropumps: a review. Journal of fluids Engineering, 2002; 124(2): 384-392.
[5] Laser DJ, Santiago JG. A review of micropumps. Journal of micromechanics and microengineering, 2004; 14(6): R35.
[6] https://www.skewsme.com/mhd.html
[7] Rice WA. U.S. Patent No. 2,997,013. Washington, DC: U.S. Patent and Trademark Office, 1961.
[8] Phillips OM. The prospects for magnetohydrodynamic ship propulsion. Journal of ship research, 1962; 43: 43-51.
[9] Way S. Propulsion of submarines by Lorantz forces in surrounding, Mechanical Engineering, 1965; 87(5):142.
[10] Akagi S, Fujita K, Soga K. Optimum design od thruster system for superconducting electromagnetic ship propulsion, 1994.
[11] Han J, Sha C, Peng Y. Fundamental Study on Alternating Magnetic Field MHD Thruster. 17th International Conference on Magnetically Levitated Systems and Linear Drives, 2002.
[12] Negahdari MR, Shafie zadeh E, Enayat A. Application of electromagnetic propulsion system as a submarine thruster, 4th congress of Marine Industries, Iranian Marine Engineering Association, 2012 (in Persian).
[13] Gilbertt JB, Lint TF. Analyses of underwater magnetohydrodynamic propulsion. 25th Intersociety Energy Conversion Engineering Conference, 1990.
[14] Saji Y, Iwata A, Sato S. Construction of model ship ST-500 with superconducting electromagnetic thrust system. 8th Int. Crogenic Engineering Conf, 1980
[15] Swallom DW, Sadovnik I, Gibbs JS, Gurol H, Nguyen LV, Van Den Bergh HH. Magnetohydrodynamic submarine propulsion systems. Naval Engineers Journal, 1991; 103(3): 141-157.
[16] Meng JC. Superconducting electromagnetic thruster (No. PAT-APPL-16 324). DEPARTMENT OF THE NAVY WASHINGTON DC, 1994.
[17] Meng JCS. Superconducting electromagnetic thruster for seawater propulsion. Proc Second Workshop on Magnetohydrodynamic Submarine Propulsion, San Diego, CA, 1989.
[18] Doss, E., & ROY, G. (1991). Flow characteristics inside MHD seawater thrusters. Journal of Propulsion and Power, 7(4), 635-641.
[19] Doss ED, Roy GD. Flow development and analysis of MHD generators and seawater thrusters. Journal of fluids engineering, 1992; 114(1): 68-72.
[20] Tixador, P. Magnetic levitation and MHD propulsion. Journal de Physique III, 1994; 4(4): 581-593.
[21] Holleck GL, Jones GS. Sacrificial electrodes for the enhancement of seawater conductivity, Third ONR Propulsion Meeting, Middletown, RI, 1990.
[22] Tempelmeyer KE. Electrical Characteristics of a Seawater MHD Thruster (No. DTRC-90/017). DAVID TAYLOR RESEARCH CENTER BETHESDA MD, 1990.
[23] Lin TF, Aumiller DL, Gilbert JB, Cosio MJ, Brandt BL, Rubin LG. Study of the influence of electric and magnetic fields on seawater magnetohydrodynamic propulsion. Second International Offshore and Polar Engineering Conference, International Society of Offshore and Polar Engineers, 1992.
[24] Moreno JE. Electrochemical aspects of magnetohydrodynamic thrusters. Florida Atlantic University, 2011.
[25] Taussig R. A foreign technology assessment of superconductor technology applied to MHD ship propulsion, Spectra Technology. Inc., STI, 1705, 1988.
[26] Lin TF. Superconducting magnetohydrodynamic ship propulsion—A worldwide research effort. Scientific Information Bul-letin-Office of Naval Research Asian Office, 1988: 237-242.
[27] Motora S, Takezawa S, Tamama H. Development of the MHD ship YAMATO-1. OCEANS, 1991.
[28] Takezawa S, Tamama H, Sugawawa K, Sakai H. Operation of the thruster for superconducting electromagnetohydrodynamic propulsion ship “YAMATO 1”. Bulletin of the MESJ, 1995; 23(1): 46.
[29] Way S. Electromagnetic propulsion for cargo submarines. Journal of Hydronautics, 1968; 2(2): 49-57.
[30] Bednarczyk AA. Nuclear electric magnetohydrodynamic propulsion for submarine. Massachusetts Inst of Tech Cambridge, 1989.
[31] Lin TF, Gilbert JB, Roy GD. Analyses of magnetohydrodynamic propulsion with seawater for underwater vehicles. Journal of Propulsion and Power, 1991; 7(6):1081-1083.
[32] Meng JC. Magnetohydrodynamic boundary layer control System U.S. Patent No. 5,273,465. Washington, DC: U.S. Patent and Trademark Office, 1993.
[33] Doss ED, Geyer HK. The need for superconducting magnets for MHD seawater propulsion. 25th Intersociety Energy Conversion Engineering Conference, 1990.
[34] Bennecib N, Abdessemed R, Drid S. Design and flow simulation for a new DC pump MHD for seawater, J. Appl. Fluid Mech, 2009; 2(2): 23-28.
[35] Lin TF, Aumiller DL, Gilbert JB, Coslo MJ. Studies of several small seawater MHD thrusters using the high-field solenoid of MIT's bitter magnet laboratory. Annual report, Pennsylvania State Univ., University Park, PA (United States). Applied Research Lab, 1993.
[36] Aoki LP, Maunsell MG, Schulz HE. A Magnetohydrodynamic study of behavior in an electrolyte fluid using numerical and experimental solutions. Revista de Engenharia Térmica, 2018; 11(1-2): 53-60.
[37] Doss ED, Geyer HK. MHD seawater propulsion. 1993.
[38] Boissonneau P, Thibault JP. Experimental analysis of couplings between electrolysis and hydrodynamics in the context of MHD in seawater. Journal of Physics D: Applied Physics, 1999; 32(18): 2387.
[39] Mitchell DL, Gubser DU. Magnetohydrodynamic ship propulsion with superconducting magnets. Journal of Superconductivity, 1988; 1(4): 349-364.
[40] Hales P, Hirst P, Milward S, Harrison S, Jones H. A solid-nitrogen cooled high-temperature superconducting magnet for use in magnetohydrodynamic marine propulsion. IEEE transactions on applied superconductivity, 2006; 16(2): 1419-1422.
[41] Petrick M, Libera J, Bouillard JX, Pierson ES, Hill D. Results from a large-scale MHD propulsion experiment (No. ANL/CP-76633; CONF-920677-16; CONF-921038-4). Argonne National Lab., IL, 1992.
[42] Picologlou B, Doss E, Black D, Sikes W. Experimental determination of magnetohydrodynamic seawater thruster performance in a two Tesla test facility (No. ANL/CP-76576; CONF-920801-22). Argonne National Lab., IL (United States), 1992.
[43] Homsy A, Koster S, Eijkel JC, van den Berg A, Lucklum F, Verpoorte E, de Rooij NF. A high current density DC magnetohydrodynamic (MHD) micropump. Lab on a Chip, 2005; 5(4): 466-471.
[44] Shatrov V, Gerbeth G. Magnetohydrodynamic drag reduction and its efficiency. Physics of Fluids, 2007; 19(3): 035109.
[45] Chekab MA, Ghadimi P Curvature Effects on the Electromagnetic Force, Efficiency, and Heat Transfer of a Weak Low Profile Magneto-Hydrodynamic Blanket Propulsion System. Journal of Applied Fluid Mechanics, 2017; 10(5): 1261-1270.
[46] Askari Saiar M, Akbari Vakil Abadi K, Dabghian AA. Investigation of magnetohydrodynamic thrusters in marine vehicles by optimization of inlet fluied paprameter. International congress of Engineering Science and Sustainable Urban Development, Polytechnic University of Denmark, 2018 (in Persian).
[47] Choudhary UK, Pratap A, Performance analysis of MHD thruster using CAE tools. International Journal of Scientific & Engineering Research, 2015; 6(5): 335-338.
[48] Gilbertt JB, Lint TF. Analyses of underwater magnetohydrodynamic propulsion. 25th Intersociety Energy Conversion Engineering Conference, 1990.
[49] Han J, Sha C, Peng Y. Fundamental study on alternating magnetic field MHD thruster. 17th International Conference on Magnetically Levitated Systems and Linear Drives, 2002.
[50] Akagi S, Fujita K, SOGA K. Optimal design of thruster system for superconducting electromagnetic ship propulsion, 1994.
[51] Sedor G. A conceptual design of a propulsion system for an autonomous underwater vehicle, 1989.
[52] Trapanese M, Raimondi FM, Curto D, Rao D. A magnetohydrodynamic auxiliary propulsion system for docking assistance of autonomous vehicle. OCEANS 2016 MTS/IEEE Monterey, 2016.
[53] Doss ED, Geyer HK. An overview of MHD seawater thruster performance and loss mechanisms, SAE Technical Paper 1992.
[54] Choi D, Knight CJ. Application of scalar implicit approximate factorization for underwater magnetohydrodynamic propulsion concept analyses. AIAA journal, 1993; 31(2):286-293.
[55] Jamalabadi MA. Analytical study of magnetohydrodynamic propulsion stability. Journal of Marine Science and Application, 2014; 13(3):281-290.
[56] Bansal P, Brizzolara S. Application perspectives of magneto-hydro-dynamics to propel autonomous underwater vehicles. In SNAME Maritime Convention. The Society of Naval Architects and Marine Engineers, 2018.
[57] Lineberry JT, Wu YS. Criteria for MHD sea mater propulsion. 25th Intersociety Energy Conversion Engineering Conference, 1990.
[58] Tempelmeyer KE. Electrical characteristics of a seawater MHD thruster. DAVID TAYLOR RESEARCH CENTER BETHESDA MD, 1990.
[59] Nishigaki K, Sha C, Takeda M, Peng Y, Zhou K, Yang A, Wada H. Elementary study on superconducting electromagnetic ships with helical insulation wall. Cryogenics, 2000; 40(6), 353-359.
[60] Cébron D, Viroulet S, Vidal J, Masson JP, Viroulet P. Experimental and theoretical study of magnetohydrodynamic ship models. PloS one, 2017; 12(6):e0178599.
[61] Doss ED, Sikes WC. Feasibility of MHD submarine propulsion (No. ANL-92/35; NNS--2732/1). Argonne National Lab., IL (United States); Newport News Shipbuilding and Dry Dock Co., 1992.
[62] Picologlou BF, Doss ED, Geyer HK, Sikes WC, Ranellone RF. MHD seawater thruster performance: A comparison of predictions with experimental results from a two Tesla test facility (No. ANL/CP-77194; CONF-921038-5). Argonne National Lab., IL (United States), 1992.
[63] Weier T, Shatrov V, Gerbeth G. Flow control and propulsion in poor conductors. In Magnetohydrodynamics, Springer, Dordrech, 2007.
[64] Ternpelmeyer KE, Norfolk J, Nesbitt S, Gordon J. Noise in a small MHD-type seawater thruster in real and simulated ocean waters. OCEANS 91, 1991.
[65] Kom CH, Brunet Y. Optimization of a MHD thruster geometry to minimize leakage fields. IEEE transactions on magnetics, 1995; 31(3), 2182-2185.
[66] Peng Y, Sha C, Zhou K, Yang A, Qing J. Performance analyses of helical MHD thruster in 14 Tesla. 33rd plasmadynamics and lasers conference, 2002.
[67] Doss ED. Performance and flow characteristics of MHD seawater thruster (No. CONF-9010293-1). Argonne National Lab., IL (USA), 1990.
[68] LIN, T., GILBERT, J., & Roy, G. D. (1990, July). Performances of Underwater Vehicles Using Sea-Water Magnetohydrodynamic Propulsion. In 26th Joint Propulsion Conference (p. 2475).
[69] Yan LG, Sha CW, Zhou K, Peng Y, Yang AH, Qin JQ. Progress of the MHD ship propulsion project in China, IEEE transactions on applied superconductivity, 2000; 10(1):951-954.
[70] Bansal P. Theoretical and Experimental Investigation of Magneto Hydrodynamic Propulsion for Ocean Vehicles (Doctoral dissertation, Virginia Tech), 2018.