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ASIC Implementation of Magnetic Induction based Wireless Communication System | IEEE Conference Publication | IEEE Xplore

ASIC Implementation of Magnetic Induction based Wireless Communication System


Abstract:

In this paper, the ASIC design result of magnetic induction for wireless communication system is presented. Magnetic induction system is designed for measurement of dista...Show More

Abstract:

In this paper, the ASIC design result of magnetic induction for wireless communication system is presented. Magnetic induction system is designed for measurement of distance and sensing status of river bed. The system has a low-power design because it has to be buried in the river bed for a long time. We implemented FPGA board to verify this system, and designed ASIC including digital modem block. Power consumption is 75mW, but real power we expect is low because the system has wake-up function for special case. Digital block gate count is 82k in TSMC 0.13um bcd plus process.
Date of Conference: 06-09 October 2021
Date Added to IEEE Xplore: 25 November 2021
ISBN Information:
Print on Demand(PoD) ISSN: 2163-9612
Conference Location: Jeju Island, Korea, Republic of
References is not available for this document.

I. Introduction

For special sections such as riverbeds, soft ground, and mountain slopes, visual inspection by an administrator is impossible, and monitoring by wired sensors is impossible. Research on detection of abnormal conditions and gas leaks in buried gas pipelines is required through constant monitoring of special sections to recognize quickly abnormal signs.

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1.
Min-Joon Kim, Sung-Hun Chae, Young-Bo Shim, Dong-Hyun Lee, Myung-Jin Kim, Yeon-Kug Moon, et al., "Design and Implementation of Magnetic Induction based Wireless Underground Communication System Supporting Distance Measurement", KSII TRANSACTIONS ON INTERNET AND INFORMATION SYSTEMS, vol. 13, no. 8, pp. 4227-4220, Aug. 2019.
2.
Ian F. Akyildiz, Pu Wang and H. Zhi Sun, "Realizing underwater communication through magnetic induction", IEEE Communications Magazine, vol. 53, no. 11, pp. 42-48, November 2015.
3.
Olutosin Charles Fawole and Massood Tabib-Azar, "An Electromechanically Modulated Permanent Magnet Antenna for Wireless Communication in Harsh Electromagnetic Environments", IEEE Transactions on Antennas and Propagation, vol. 65, no. 12, pp. 6927-6936, October 2017.
4.
Hongzhi Guo and Zhi Sun, " Demo Abstract: Prototyping M 2 I Communication System for Underground and Underwater Networks ", Proc. of IEEE Conference on Computer Communications Workshops (INFOCOM WKSHPS), pp. 962-963, May, 2017.
5.
Xin Tan, Zhi Sun and Ian F. Akyildiz, "Wireless Underground Sensor Networks: MI-based communication systems for underground applications", IEEE Antennas and Propagation Magazine, vol. 57, no. 4, pp. 74-87, August 2015.
6.
A. Markham and N. Trigoni, "Magneto-inductive networked rescue system (miners) taking sensor networks underground", Proc. 11th Int. Conf. Information Processing Sensor Networks, pp. 317-328, 2012.
7.
Ashish Kumar Sharma, Sadanand Yadav, Sandeep N. Dandu, Vinay Kumar, Joydeep Sengupta, Sanjay B. Dhok, et al., "Magnetic Induction-Based Non-Conventional Media Communications: A Review", IEEE SENSORS JOURNAL, vol. 17, no. 4, pp. 926-940, February 2017.
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References

References is not available for this document.