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2022 | OriginalPaper | Chapter

Comparative Analysis of Power Management System for Microbial Fuel Cell

Authors : Soumi Ray, Shipra Pandey, Madhusmita Mohanty, Subhransu Padhee

Published in: Computing, Communication and Learning

Publisher: Springer Nature Switzerland

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Abstract

Microbial Fuel Cell (MFC) is one of the attractive solution to generate electricity from biodegradable organic matter. But there are different technical challenges such as high source impedance, lower specific power density of MFC and ultra low voltage of MFC which limits the usability of the fuel cell. Different energy harvesting schemes to extract energy from MFC are being investigated by the researchers over the past several years. This work provides a comparative analysis of three distinct power management schemes for MFC.

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Literature
1.
go back to reference Wisniak, J.: Electrochemistry and fuel cells: the contribution of William Robert Grove. Indian J. Hist. Sci. 50(3), 476–490 (2015) Wisniak, J.: Electrochemistry and fuel cells: the contribution of William Robert Grove. Indian J. Hist. Sci. 50(3), 476–490 (2015)
2.
go back to reference Spink, S., Saathoff, S.: Superstorm sandy: fuel cell design for disaster recovery vs. backup power. In: Intelec 2013; 35th International Telecommunications Energy Conference, Smart Power and efficiency, pp. 1–6. VDE (2013) Spink, S., Saathoff, S.: Superstorm sandy: fuel cell design for disaster recovery vs. backup power. In: Intelec 2013; 35th International Telecommunications Energy Conference, Smart Power and efficiency, pp. 1–6. VDE (2013)
3.
go back to reference Patil, A.S., et al.: Portable fuel cell systems for Americas army: technology transition to the field. J. Power Sources 136(2), 220–225 (2004) Patil, A.S., et al.: Portable fuel cell systems for Americas army: technology transition to the field. J. Power Sources 136(2), 220–225 (2004)
4.
go back to reference Park, J.-D., Roane, T.M., Ren, Z.J., Alaraj, M.: Dynamic modeling of a microbial fuel cell considering anodic electron flow and electrical charge storage. Appl. Energy 193, 507–514 (2017) Park, J.-D., Roane, T.M., Ren, Z.J., Alaraj, M.: Dynamic modeling of a microbial fuel cell considering anodic electron flow and electrical charge storage. Appl. Energy 193, 507–514 (2017)
5.
go back to reference Kim, B.H., Chang, I.S., Gadd, G.M.: Challenges in microbial fuel cell development and operation. Appl. Microbiol. Biotechnol. 76(3), 485–494 (2007) Kim, B.H., Chang, I.S., Gadd, G.M.: Challenges in microbial fuel cell development and operation. Appl. Microbiol. Biotechnol. 76(3), 485–494 (2007)
6.
go back to reference Koffi, N., Okabe, S.: High voltage generation from wastewater by microbial fuel cells equipped with a newly designed low voltage booster multiplier (LVBM). Sci. Rep. 10(1), 1–9 (2020) Koffi, N., Okabe, S.: High voltage generation from wastewater by microbial fuel cells equipped with a newly designed low voltage booster multiplier (LVBM). Sci. Rep. 10(1), 1–9 (2020)
7.
go back to reference Padhee, S., Pati, U.C., Mahapatra, K.: Comparative analysis of DC-DC converter topologies for fuel cell based application. In: 2016 IEEE 1st International Conference on Power Electronics, Intelligent Control and Energy Systems (ICPEICES), pp. 1–6. IEEE (2016) Padhee, S., Pati, U.C., Mahapatra, K.: Comparative analysis of DC-DC converter topologies for fuel cell based application. In: 2016 IEEE 1st International Conference on Power Electronics, Intelligent Control and Energy Systems (ICPEICES), pp. 1–6. IEEE (2016)
8.
go back to reference Padhee, S., Pati, U.C., Mahapatra, K.: Investigation on transient response of fuel cell power conditioning unit during rapid load changes. In: 2015 IEEE International Conference on Computational Intelligence & Communication Technology, pp. 482–487. IEEE (2015) Padhee, S., Pati, U.C., Mahapatra, K.: Investigation on transient response of fuel cell power conditioning unit during rapid load changes. In: 2015 IEEE International Conference on Computational Intelligence & Communication Technology, pp. 482–487. IEEE (2015)
9.
go back to reference Wang, H., Park, J.-D., Ren, Z.J.: Practical energy harvesting for microbial fuel cells: a review. Environ. Sci. Technol. 49(6), 3267–3277 (2015) Wang, H., Park, J.-D., Ren, Z.J.: Practical energy harvesting for microbial fuel cells: a review. Environ. Sci. Technol. 49(6), 3267–3277 (2015)
10.
go back to reference Dutta, A., et al.: A review on power management systems: an electronic tool to enable microbial fuel cells for powering range of electronic appliances. J. Power Sources 517, 230688 (2022) Dutta, A., et al.: A review on power management systems: an electronic tool to enable microbial fuel cells for powering range of electronic appliances. J. Power Sources 517, 230688 (2022)
11.
go back to reference Veerubhotla, R., Nag, S., Das, D.: Internet of things temperature sensor powered by bacterial fuel cells on paper. J. Power Sources 438, 226947 (2019)CrossRef Veerubhotla, R., Nag, S., Das, D.: Internet of things temperature sensor powered by bacterial fuel cells on paper. J. Power Sources 438, 226947 (2019)CrossRef
12.
go back to reference Osorio de la Rosa, E., et al.: Plant microbial fuel cells-based energy harvester system for self-powered IoT applications. Sensors 19(6), 1378 (2019) Osorio de la Rosa, E., et al.: Plant microbial fuel cells-based energy harvester system for self-powered IoT applications. Sensors 19(6), 1378 (2019)
13.
go back to reference Osorio-de-la Rosa, E., et al.: Arrays of plant microbial fuel cells for implementing self-sustainable wireless sensor networks. IEEE Sensors J. 21(2), 1965–1974 (2020) Osorio-de-la Rosa, E., et al.: Arrays of plant microbial fuel cells for implementing self-sustainable wireless sensor networks. IEEE Sensors J. 21(2), 1965–1974 (2020)
14.
go back to reference Yamashita, T., Hayashi, T., Iwasaki, H., Awatsu, M., Yokoyama, H.: Ultra-low-power energy harvester for microbial fuel cells and its application to environmental sensing and long-range wireless data transmission. J. Power Sources 430, 1–11 (2019)CrossRef Yamashita, T., Hayashi, T., Iwasaki, H., Awatsu, M., Yokoyama, H.: Ultra-low-power energy harvester for microbial fuel cells and its application to environmental sensing and long-range wireless data transmission. J. Power Sources 430, 1–11 (2019)CrossRef
15.
go back to reference Carreon-Bautista, S., Erbay, C., Han, A., Sánchez-Sinencio, E.: Power management system with integrated maximum power extraction algorithm for microbial fuel cells. IEEE Trans. Energy Convers. 30(1), 262–272 (2014)CrossRef Carreon-Bautista, S., Erbay, C., Han, A., Sánchez-Sinencio, E.: Power management system with integrated maximum power extraction algorithm for microbial fuel cells. IEEE Trans. Energy Convers. 30(1), 262–272 (2014)CrossRef
16.
go back to reference Singh, S., Gautam, A.R., Fulwani, D.: Constant power loads and their effects in DC distributed power systems: a review. Renew. Sustain. Energy Rev. 72, 407–421 (2017) Singh, S., Gautam, A.R., Fulwani, D.: Constant power loads and their effects in DC distributed power systems: a review. Renew. Sustain. Energy Rev. 72, 407–421 (2017)
17.
go back to reference Xia, C., Zhang, D., Pedrycz, W., Zhu, Y., Guo, Y.: Models for microbial fuel cells: a critical review. J. Power Sources 373, 119–131 (2018)CrossRef Xia, C., Zhang, D., Pedrycz, W., Zhu, Y., Guo, Y.: Models for microbial fuel cells: a critical review. J. Power Sources 373, 119–131 (2018)CrossRef
18.
go back to reference Abul, A., Zhang, J., Steidl, R., Reguera, G., Tan, X.: Microbial fuel cells: control-oriented modeling and experimental validation. In: 2016 American Control Conference (ACC), pp. 412–417. IEEE (2016) Abul, A., Zhang, J., Steidl, R., Reguera, G., Tan, X.: Microbial fuel cells: control-oriented modeling and experimental validation. In: 2016 American Control Conference (ACC), pp. 412–417. IEEE (2016)
19.
go back to reference Kimball, J.W., Flowers, T.L., Chapman, P.L.: Low-input-voltage, low-power boost converter design issues. IEEE Power Electron. Lett. 2(3), 96–99 (2004) Kimball, J.W., Flowers, T.L., Chapman, P.L.: Low-input-voltage, low-power boost converter design issues. IEEE Power Electron. Lett. 2(3), 96–99 (2004)
20.
go back to reference Poli, F., Seri, J., Santoro, C., Soavi, F.: Boosting microbial fuel cell performance by combining with an external supercapacitor: an electrochemical study. ChemElectroChem 7(4), 893–903 (2020)CrossRef Poli, F., Seri, J., Santoro, C., Soavi, F.: Boosting microbial fuel cell performance by combining with an external supercapacitor: an electrochemical study. ChemElectroChem 7(4), 893–903 (2020)CrossRef
21.
go back to reference Garita-Meza, M.A., Ramírez-Balderas, L.A., Contreras-Bustos, R., Chávez-Ramírez, A.U., Cercado, B.: Blocking oscillator-based electronic circuit to harvest and boost the voltage produced by a compost-based microbial fuel cell stack. Sustain. Energy Technol. Assessments 29, 164–170 (2018) Garita-Meza, M.A., Ramírez-Balderas, L.A., Contreras-Bustos, R., Chávez-Ramírez, A.U., Cercado, B.: Blocking oscillator-based electronic circuit to harvest and boost the voltage produced by a compost-based microbial fuel cell stack. Sustain. Energy Technol. Assessments 29, 164–170 (2018)
22.
go back to reference Donovan, C., Dewan, A., Peng, H., Heo, D., Beyenal, H.: Power management system for a 2.5 W remote sensor powered by a sediment microbial fuel cell. J. Power Sources 196(3), 1171–1177 (2011) Donovan, C., Dewan, A., Peng, H., Heo, D., Beyenal, H.: Power management system for a 2.5 W remote sensor powered by a sediment microbial fuel cell. J. Power Sources 196(3), 1171–1177 (2011)
23.
go back to reference Meehan, A., Gao, H., Lewandowski, Z.: Energy harvesting with microbial fuel cell and power management system. IEEE Trans. Power Electron. 26(1), 176–181 (2010)CrossRef Meehan, A., Gao, H., Lewandowski, Z.: Energy harvesting with microbial fuel cell and power management system. IEEE Trans. Power Electron. 26(1), 176–181 (2010)CrossRef
24.
go back to reference Zhang, D., Yang, F., Shimotori, T., Wang, K.-C., Huang, Y.: Performance evaluation of power management systems in microbial fuel cell-based energy harvesting applications for driving small electronic devices. J. Power Sources 217, 65–71 (2012)CrossRef Zhang, D., Yang, F., Shimotori, T., Wang, K.-C., Huang, Y.: Performance evaluation of power management systems in microbial fuel cell-based energy harvesting applications for driving small electronic devices. J. Power Sources 217, 65–71 (2012)CrossRef
25.
go back to reference Umaz, R.: A two-stage power converter architecture with maximum power extraction for low-power energy sources. Turk. J. Electr. Eng. Comput. Sci. 27(6), 4744–4755 (2019)CrossRef Umaz, R.: A two-stage power converter architecture with maximum power extraction for low-power energy sources. Turk. J. Electr. Eng. Comput. Sci. 27(6), 4744–4755 (2019)CrossRef
26.
go back to reference Umaz, R.: A power management system for microbial fuel cells with 53.02% peak end-to-end efficiency. IEEE Trans. Circuits Syst. II Express Briefs 67(11), 2592–2596 (2019) Umaz, R.: A power management system for microbial fuel cells with 53.02% peak end-to-end efficiency. IEEE Trans. Circuits Syst. II Express Briefs 67(11), 2592–2596 (2019)
Metadata
Title
Comparative Analysis of Power Management System for Microbial Fuel Cell
Authors
Soumi Ray
Shipra Pandey
Madhusmita Mohanty
Subhransu Padhee
Copyright Year
2022
DOI
https://doi.org/10.1007/978-3-031-21750-0_11

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