Research article Special Issues

Multi-slot energy harvesting wireless communication in interference environment

  • Received: 31 March 2021 Accepted: 07 May 2021 Published: 12 May 2021
  • Radio frequency energy harvesting (EH) technology can harvest the electromagnetic energy in the surrounding environment, and reduce the dependence of the communication devices on battery or power grid as power source, which is a very promising means of energy substitution and acquisition scheme. The random characteristics of wireless channel fading and possible co-channel interference (CCI) have great influence on EH efficiency and wireless communication performance with more complicated theoretical analysis. In this paper, the exact closed-form expressions of effective throughput of "harvest-store-use" and "harvest-use" multi-slot EH schemes with Rayleigh channel fading and CCI are derived theoretically. The simulation results show that in Rayleigh fading channels with CCI, CCI is beneficial to energy harvesting of EH device, but it will deteriorate the reception of required signals by information receiving device. Although there are obvious differences in working mechanism, working conditions and communication performance between the "harvest-store-use" scheme and the "harvest-use" scheme, the optimal time slot should be selected to balance the transmission probability and delay, minimize the interference of CCI to the desired signal, and improve the energy conversion efficiency of the energy harvester.

    Citation: Mingwei Wang, Kaisheng Shi, Zhao Wang, Rui Yan, Tao Lei, Jiaqin Xiao. Multi-slot energy harvesting wireless communication in interference environment[J]. Mathematical Biosciences and Engineering, 2021, 18(4): 4127-4145. doi: 10.3934/mbe.2021207

    Related Papers:

  • Radio frequency energy harvesting (EH) technology can harvest the electromagnetic energy in the surrounding environment, and reduce the dependence of the communication devices on battery or power grid as power source, which is a very promising means of energy substitution and acquisition scheme. The random characteristics of wireless channel fading and possible co-channel interference (CCI) have great influence on EH efficiency and wireless communication performance with more complicated theoretical analysis. In this paper, the exact closed-form expressions of effective throughput of "harvest-store-use" and "harvest-use" multi-slot EH schemes with Rayleigh channel fading and CCI are derived theoretically. The simulation results show that in Rayleigh fading channels with CCI, CCI is beneficial to energy harvesting of EH device, but it will deteriorate the reception of required signals by information receiving device. Although there are obvious differences in working mechanism, working conditions and communication performance between the "harvest-store-use" scheme and the "harvest-use" scheme, the optimal time slot should be selected to balance the transmission probability and delay, minimize the interference of CCI to the desired signal, and improve the energy conversion efficiency of the energy harvester.



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    [1] H. Tran, G. Kaddoum, RF wireless power transfer: regreening future networks, IEEE Potentials, 37 (2018), 5-41. doi: 10.1109/MPOT.2018.2868187
    [2] K. W. Li, Y. Chen, K. J. Ray Liu, Advances in energy harvesting communications: Past, present, and future challenges, IEEE Commun. Surveys Tuts., 18 (2016), 1384-1412.
    [3] X. Lu, P. Wang, D. Niyato, D. I. Kim, Z. Han, Wireless networks with RF energy harvesting: A contemporary survey, IEEE Commun. Surveys Tuts., 17 (2015), 757-789. doi: 10.1109/COMST.2014.2368999
    [4] R. L. Rosa, M. Costanza, P. Livreri, Advanced techniques for powering wireless sensor nodes through energy harvesting and wireless power transfer, AEIT Int. Conf. Electr. Electron. Technol. Automot., 2020, 1-6.
    [5] C. R. Valenta, G. D. Durgin, Harvesting wireless power: survey of energy-harvester conversion efficiency in far-field, wireless power transfer systems, IEEE Microw. Mag., 15 (2014), 108-120.
    [6] R. K. Sidhu, J. Singh Ubhi, A. Aggarwal, A survey study of different RF energy sources for RF energy harvesting, Int. Conf. Autom., Comput. Technol. Manag., 2019,530-533.
    [7] M. Molefi, E. D. Markus, A. Abu-Mahfouz, Wireless power transfer for IoT devices—a review, Int. Multidiscip. Inf. Technol. Eng. Conf., 2019, 1-8.
    [8] T. Sanislav, G. D. Mois, S. Zeadally, S. C. Folea, Energy harvesting techniques for internet of things (IoT), IEEE Access, 9 (2021), 39530-39549. doi: 10.1109/ACCESS.2021.3064066
    [9] A. Obaid, X. Fernando, Wireless energy harvesting from ambient sources for cognitive networks in rural communities, IEEE Canada Int. Humanit. Technol. Conf., 2017,139-143.
    [10] J. Singla, R. Mahajan, D. Bagai, A Survey on energy harvesting cognitive radio networks, 6th Ed. Int. Conf. Wirel. Networks Embed. Syst., 2018, 6-10.
    [11] N. Niaz, R. Ahmad, W. Ahmed, Performance evaluation of energy harvesting enabled phantom cellular network, Int. Symp. Recent Adv. Electri. Eng., 2018, 1-4.
    [12] J. Huang, C. Xing, C. Wang, Simultaneous wireless information and power transfer: technologies, applications, and research challenges, IEEE Commun. Mag., 55 (2017), 26-32.
    [13] T. H. Vu, S. Kim, Performance evaluation of power beacon-assisted wireless powered NOMA IoT-based systems, IEEE Internet Things J., 2021, 1-11.
    [14] N. P. Le, Throughput analysis of power-beacon-assisted energy harvesting wireless systems over non-identical Nakagami-m fading channels, IEEE Commun. Lett., 22 (2017), 840-843.
    [15] M. Long, Y. F. Chen. Performance analysis of energy harvesting communications using multiple time slots, IET Commun., 13 (2019), 289-296. doi: 10.1049/iet-com.2018.5210
    [16] M. W. Wang, H. Z. Li, Multi-slot energy harvesting wireless communication over Nakagami-m channel fading, Beijing Youdian Daxue Xuebao, 43 (2020), 34-40.
    [17] Y. Chen, N. Zhao, M. S. Alouini, Wireless energy harvesting using signals from multiple fading channels, IEEE Trans. Commun., 65 (2017), 5027-5039.
    [18] M. W. Wang, Comments on 'performance analysis of energy harvesting communications using multiple time slots', IET Commun., 13 (2019), 3601.
    [19] F. Yuan, Q. T. Zhang, S. Jin, H. Zhu, Optimal harvest-use-store strategy for energy harvesting wireless Systems, IEEE Trans. Wireless Commun., 14 (2015), 698-710. doi: 10.1109/TWC.2014.2358215
    [20] A. M. Siddiqui, L. Musavian, Q. Ni, Energy efficiency optimization with energy harvesting using harvest-use approach, IEEE Int. Conf. Commun. Workshop, 2015, 1982-1987.
    [21] Y. Chen, D. B. da Costa and H. Ding, Effect of CCI on WPC with time-division energy and information transmission, IEEE Wireless Commun. Lett., 5 (2016), 168-171. doi: 10.1109/LWC.2015.2514106
    [22] Y. Chen, Energy-harvesting AF relaying in the presence of interference and Nakagami-m fading, IEEE Trans. Wireless Commun., 15 (2016), 1008-1017. doi: 10.1109/TWC.2015.2481393
    [23] L. Elmorshedy, C. Leung, S. A. Mousavifar, RF energy harvesting in DF relay networks in the presence of an interfering signal, IEEE Int. Conf. Commun., 2016, 1-6.
    [24] C. Thakur, S. Chattopadhyay, A novel Interference-aided Energy Harvesting Scheme for Cooperative Network, Proc. IEEE Reg. 10 Symp., 2019, 84-89.
    [25] S. S. Kalamkar, A. Banerjee, Interference-assisted wireless energy harvesting in cognitive relay network with multiple primary transceivers, IEEE Glob. Commun. Conf., 2015, 1-6.
    [26] J. G. Proakis, Digital communications, 5th edition, McGraw-Hill, New York, USA, 2007.
    [27] I. S. Gradshteyn, I. M. Ryzhik, Table of Integrals, Series, and Products, Academic Press, 8th edition, San Diego, USA, 2014.
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