Modeling and Simulation of Acoustic Link Using Mackenize Propagation Speed Equation
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Modeling and Simulation of Acoustic Link Using Mackenize Propagation Speed Equation

Authors: Christhu Raj M. R., Rajeev Sukumaran

Abstract:

Underwater acoustic networks have attracted great attention in the last few years because of its numerous applications. High data rate can be achieved by efficiently modeling the physical layer in the network protocol stack. In Acoustic medium, propagation speed of the acoustic waves is dependent on many parameters such as temperature, salinity, density, and depth. Acoustic propagation speed cannot be modeled using standard empirical formulas such as Urick and Thorp descriptions. In this paper, we have modeled the acoustic channel using real time data of temperature, salinity, and speed of Bay of Bengal (Indian Coastal Region). We have modeled the acoustic channel by using Mackenzie speed equation and real time data obtained from National Institute of Oceanography and Technology. It is found that acoustic propagation speed varies between 1503 m/s to 1544 m/s as temperature and depth differs. The simulation results show that temperature, salinity, depth plays major role in acoustic propagation and data rate increases with appropriate data sets substituted in the simulated model.

Keywords: Underwater Acoustics, Mackenzie Speed Equation, Temperature, Salinity.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1109894

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References:


[1] Jesus Llor M, P. Malumbres,“Underwater Wireless Sensor Networks: How Acoustic Propagation Models Impact on the Performance of Higher-level Protocols? ”, Sensors Vol. 12, No. 2, pp. 1312-1335, 2012
[2] Akyildiz. F, Pompili. D, Melodia T, “State of the Art in Protocol Research for Underwater Acoustic Sensor Network”. Proceedings of the ACM International Workshop on Underwater Networks (WuWNet), pp.7- 16, 2006
[3] Christhu Raj, Rajeev Sukumaran ,”Modeling UWSN Simulators- A Taxonomy”, International Journal of Computer, Electrical, Automation, Control and Information Engineering, World Academy of Science, Engineering and Technology, Vol. 9, No. 2, pp. 585-592, 2015.
[4] Weigang Bai, Haiyan Wang and Ruiqin Zhao, “Modeling Underwater Time-Varying Acoustic Channel using OPNET”, Applied Mechanics and Materials, Vol.263-266, pp. 1178-1183,2013
[5] James Gadze “On Optimal Slot Allocation for Reservation TDMA MAC Protocols in Shadow Fading Environment Wireless Communication Systems” ISWCS, Norway 2007
[6] Salvador Climent, Antonio Sanchez, Juan Vicente Capella, Nirvana Meratnia, Juna Jose Serrano, “Underwater Acoustic Sensor Networks: Advances and Future Trends in Physical, MAC, and Routing Layers”, Sensors, Vol. 14, No.1, pp. 795-853, 2014
[7] Chengsheng Pan, Liangchen Jia, Ruiyan Cai, Yuanming Ding “Modeling and Simulation of Channel for Underwater Communication Network”, International Journal of Innovative Computing, Information and Control Vol. 8 No. 3(B), pp. 2149-2156, 2014
[8] T. Niu, R. Yang, F. Liu “Research on Simulation and modeling about underwater acoustic communication channel”, Silicon Valley, No. 9, pp. 103-105, 2009.
[9] Christhu Raj, Rajeev Sukumaran, “Stochastic Network Calculus for Rician Fading in Underwater Wireless Networks”, Applied Mathematics and Information Sciences, Vol. 10, No. 4, pp 1-10, 2016.
[10] Kenneth V. Mackenzie, ”Nine –term equation for Sound speed in the oceans”, The Journal of the Acoustical Society of America, Vol. 70, No. 3, Sept 1981, pp. 807-812
[11] Sozer, Ethem M,. Stojanovic, Milica Proakis, John.G, “Design and Simulation of an Underwater Acoustic Local Area Network”, IEEE Ocean Engineering, Vol. 25, No. 1, pp 72-83, 2000.
[12] Jornet, J.M. AUVNetSim: A Simulator for Underwater Acoustic http://sourceforge.net/projects/auvnetsim/ (accessed on 12 December 2011).
[13] R.J Urick, “Principles of Underwater Sound”, 3rd ed New York: McGraw-Hill, 1983
[14] Xie G, Gibson J, “Incorporating Realistic Acoustic Propagation Models in Simulation of Underwater Acoustic Networks: A Statistical Approach”, Proceedings of MTS/IEEE Oceans Conference. pp. 18-21, 20066
[15] Harris III, Albert F. , “Modeling the Underwater Acoustic Channel in N2”, NSTOOLS, OCT 22, 2007
[16] B. Sun, E. Cheng, X. Ou, “Research and Simulation on shallow water acoustic channels”, Wireless Communication Technology, No. 3, pp. 11-15, 2006
[17] B. A. Tan, M. Motani, M. Chitre, S. S. Quek, “Multinational Communication based on adaptive equalization in very shallow water acoustic channels”, Proc of Acoustics pp. 515-522, 2006.
[18] H. Wang, J. Jiang, X. Shen, J. Bai, “Modifying SNR-Independent velocity estimation method to make it suitable for SNR estimation in shallow water acoustic communication”, Journal of North-western Polytechnical University, Vol. 27, No. 3, pp.368-374, 2009.
[19] L. Berkhovskikh, Y. Lysanov “Fundamentals of Ocean Acoustic”, Springer 1982.
[20] Herman Medwin, “A Simple equation for realistic parameters”, The Journal of the Acoustical Society of America, Vol. 59, No. 8, Dec 1975, pp. 1318-1319
[21] Chen-Tung Chen and Frank J. Millero, “Speed of Sound in seawater at high pressure”, The Journal of the Acoustical Society of America, Vol. 62, No. 5, Nov 1975, pp. 1129-1135.
[22] V. A Del Grosso, “New equation for the speed of sound in natural waters (with Comparsion to other equations)”, The Journal of the Acoustical Society of America, Vol. 56, No. 4, Dec 1974, pp. 1084-1091
[23] Wayne D. Wilson, “Equation for the speed of sound in sea water”, The Journal of the Acoustical Society of America, Vol. 32, No. 10, Oct 1980, pp. 1357.
[24] Smith, Kevin B. “Convergence, Stability and Variability of Shallow Water Acoustic Predictions Using a Split-Step Fourier Parabolic Equation Model.” Special Issue of Proceedings of the Shallow Water Acoustic Modeling (SWAM’99) Workshop 1999.
[25] Tikhonov, A. N; Samarskii, A. “A Equations of Mathematical Physics”, Dover Publ., New York, 1990.
[26] Christhu Raj M R, Rajeev Sukumaran, “Modeling UWSN-Simulators”, International Journal of Computer, Electrical, Automation, Control and Information Engineering, World Academy of Science, Engineering and Technology Vol: 9, No: 2, pp. 585-592, 2015.
[27] Christhu Raj M R, Rajeev Sukumaran, “Stochastic Network Calculus for Rician Fading in Underwater Wireless Communication Networks”, Applied Mathematics and Information Sciences, Vol 10(4), pp 1-10, July 2016.