{"status":"ok","message-type":"work","message-version":"1.0.0","message":{"indexed":{"date-parts":[[2024,2,4]],"date-time":"2024-02-04T00:12:36Z","timestamp":1707005556939},"reference-count":41,"publisher":"Institute of Electronics, Information and Communications Engineers (IEICE)","issue":"2","content-domain":{"domain":[],"crossmark-restriction":false},"short-container-title":["IEICE Trans. Electron."],"published-print":{"date-parts":[[2024,2,1]]},"DOI":"10.1587\/transele.2023ecp5018","type":"journal-article","created":{"date-parts":[[2023,7,31]],"date-time":"2023-07-31T22:13:02Z","timestamp":1690841582000},"page":"47-56","source":"Crossref","is-referenced-by-count":0,"title":["Capacitive Wireless Power Transfer System with Misalignment Tolerance in Flowing Freshwater Environments"],"prefix":"10.1587","volume":"E107.C","author":[{"given":"Yasumasa","family":"NAKA","sequence":"first","affiliation":[{"name":"Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology"}]},{"given":"Akihiko","family":"ISHIWATA","sequence":"additional","affiliation":[{"name":"Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology"}]},{"given":"Masaya","family":"TAMURA","sequence":"additional","affiliation":[{"name":"Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology"}]}],"member":"532","reference":[{"key":"1","unstructured":"[1] G.C. Lee, S.B. Mohan, C. Huang, and B.N. Fard, \u201cA study of U.S. bridge failures (1980-2012),\u201d <i>Multidisciplinary Center for Earthquake Engineering Research Technical Report<\/i>, MCEER-13-0008, Earthquake Engineering to Extreme Events: Buffalo, NY, USA, 2013."},{"key":"2","doi-asserted-by":"publisher","unstructured":"[2] M. Kondo and S. Anan, \u201cComprehensive inspection of Japanese dams in long-term operation,\u201d <i>Journal of Disaster Research<\/i>, vol.13, no.4, pp.616-623, Aug. 2018. doi: https:\/\/doi.org\/10.20965\/jdr.2018.p0616 10.20965\/jdr.2018.p0616","DOI":"10.20965\/jdr.2018.p0616"},{"key":"3","doi-asserted-by":"crossref","unstructured":"[3] J.W. Nicholson and A.J. Healey, \u201cThe present state of autonomous underwater vehicle (AUV) applications and technologies,\u201d <i>Marine Technol. Soc. J.<\/i>, vol.42, no.1, pp.44-51, March 2008. 10.4031\/002533208786861272","DOI":"10.4031\/002533208786861272"},{"key":"4","doi-asserted-by":"publisher","unstructured":"[4] M. Dunbabin and L. Marques, \u201cRobots for environmental monitoring: Significant advancements and applications,\u201d <i>IEEE Robot. Autom. Mag.<\/i>, vol.19, no.1, pp.24-39, March 2012. doi: 10.1109\/MRA.2011.2181683 10.1109\/mra.2011.2181683","DOI":"10.1109\/MRA.2011.2181683"},{"key":"5","doi-asserted-by":"publisher","unstructured":"[5] C.R. Teeneti, T.T. Truscott, D.N. Beal, and Z. Pantic, \u201cReview of wireless charging systems for autonomous underwater vehicles,\u201d <i>IEEE J. Ocean. Eng.<\/i>, vol.46, no.1, pp.68-87, Jan. 2021. doi: 10.1109\/JOE.2019.2953015 10.1109\/joe.2019.2953015","DOI":"10.1109\/JOE.2019.2953015"},{"key":"6","doi-asserted-by":"publisher","unstructured":"[6] R. Hasaba, K. Okamoto, S. Kawata, K. Eguchi, and Y. Koyanagi, \u201cMagnetic resonance wireless power transfer over 10m with multiple coils immersed in seawater,\u201d <i>IEEE Trans. Microw. Theory Techn.<\/i>, vol.67, no.11, pp.4505-4513, Nov. 2019. doi: 10.1109\/TMTT.2019.2928291 10.1109\/tmtt.2019.2928291","DOI":"10.1109\/TMTT.2019.2928291"},{"key":"7","doi-asserted-by":"publisher","unstructured":"[7] Z. Yan, Y. Zhang, T. Kan, F. Lu, K. Zhang, B. Song, and C.C. Mi, \u201cFrequency optimization of a loosely coupled underwater wireless power transfer system considering eddy current loss,\u201d <i>IEEE Trans. Ind. Electron.<\/i>, vol.66, no.5, pp.3468-3476, May 2019. doi: 10.1109\/TIE.2018.2851947 10.1109\/tie.2018.2851947","DOI":"10.1109\/TIE.2018.2851947"},{"key":"8","doi-asserted-by":"crossref","unstructured":"[8] M. Ogihara, T. Ebihara, K. Mizutani, and N. Wakatsuki, \u201cWireless power and data transfer system for station-based autonomous underwater vehicles,\u201d <i>OCEANS 2015-MTS\/IEEE Washington<\/i>, pp.1-5, Washington, DC, USA, Oct. 2015, doi: 10.23919\/OCEANS.2015.7404400 10.23919\/oceans.2015.7404400","DOI":"10.23919\/OCEANS.2015.7404400"},{"key":"9","doi-asserted-by":"publisher","unstructured":"[9] L. Yang, X. Li, Y. Zhang, B. Feng, T. Yang, H. Wen, J. Tian, D. Zhu, J. Huang, A. Zhang, and X. Tong, \u201cA review of underwater inductive wireless power transfer system,\u201d <i>IET Power Electronics<\/i>, Feb. 2023. (Early view) doi: https:\/\/doi.org\/10.1049\/pel2.12456 10.1049\/pel2.12456","DOI":"10.1049\/pel2.12456"},{"key":"10","doi-asserted-by":"publisher","unstructured":"[10] T. Kan, R. Mai, P.P. Mercier, and C.C. Mi, \u201cDesign and analysis of a three-phase wireless charging system for lightweight autonomous underwater vehicles,\u201d <i>IEEE Trans. Power Electron.<\/i>, vol.33, no.8, pp.6622-6632, Aug. 2018. doi: 10.1109\/TPEL.2017.2757015 10.1109\/tpel.2017.2757015","DOI":"10.1109\/TPEL.2017.2757015"},{"key":"11","doi-asserted-by":"publisher","unstructured":"[11] Z. Cheng, Y. Lei, K. Song, and C. Zhu, \u201cDesign and loss analysis of loosely coupled transformer for an underwater high-power inductive power transfer system,\u201d <i>IEEE Trans. Magn.<\/i>, vol.51, no.7, pp.1-10, July 2015, Art no.8401110. DOI: 10.1109\/TMAG.2014.2346737 10.1109\/tmag.2014.2346737","DOI":"10.1109\/TMAG.2014.2346737"},{"key":"12","doi-asserted-by":"publisher","unstructured":"[12] J. Kim and S. Ahn, \u201cDual loop reactive shield application of wireless power transfer system for leakage magnetic field reduction and efficiency enhancement,\u201d <i>IEEE Access<\/i>, vol.9, pp.118307-118323, Aug. 2021. doi: 10.1109\/ACCESS.2021.3106336 10.1109\/access.2021.3106336","DOI":"10.1109\/ACCESS.2021.3106336"},{"key":"13","doi-asserted-by":"publisher","unstructured":"[13] Cost Action IC1301 Team, \u201cEurope and the future for WPT: European contributions to wireless power transfer technology,\u201d <i>IEEE Microwave Magazine<\/i>, vol.18, no.4, pp.56-87, June 2017. doi: 10.1109\/MMM.2017.2680078 10.1109\/mmm.2017.2680078","DOI":"10.1109\/MMM.2017.2680078"},{"key":"14","doi-asserted-by":"publisher","unstructured":"[14] H. Zhang and F. Lu, \u201cInsulated coupler structure design for the long-distance freshwater capacitive power transfer,\u201d <i>IEEE Trans. Ind. Informat.<\/i>, vol.16, no.8, pp.5191-5201, Aug. 2020. doi: 10.1109\/TII.2019.2948649 10.1109\/tii.2019.2948649","DOI":"10.1109\/TII.2019.2948649"},{"key":"15","doi-asserted-by":"crossref","unstructured":"[15] M. Urano and A. Takahashi, \u201cStudy on underwater wireless power transfer via electric coupling,\u201d <i>Proc. 2016 IEEE International Meeting for Future of Electron Devices, Kansai<\/i>, pp.1-2, June 2016. doi: 10.1109\/imfedk.2016.7521674 10.1109\/imfedk.2016.7521674","DOI":"10.1109\/IMFEDK.2016.7521674"},{"key":"16","doi-asserted-by":"publisher","unstructured":"[16] Y. Naka, K. Yamamoto, T. Nakata, and M. Tamura, \u201cImprovement in efficiency of underwater wireless power transfer with electric coupling,\u201d <i>IEICE Trans. Electron.<\/i>, vol.E100-C, no.10, pp.850-857, Oct. 2017. doi: 10.1587\/transele.E100.C.850 10.1587\/transele.e100.c.850","DOI":"10.1587\/transele.E100.C.850"},{"key":"17","doi-asserted-by":"publisher","unstructured":"[17] M. Tamura, Y. Naka, K. Murai, and T. Nakata, \u201cDesign of a capacitive wireless power transfer system for operation in fresh water,\u201d <i>IEEE Trans. Microw. Theory Techn.<\/i>, vol.66, no.12, pp.5873-5884, Dec. 2018. doi: 10.1109\/TMTT.2018.2875960 10.1109\/tmtt.2018.2875960","DOI":"10.1109\/TMTT.2018.2875960"},{"key":"18","doi-asserted-by":"publisher","unstructured":"[18] M. Tamura, Y. Naka, and K. Murai, \u201cDesign of capacitive coupler in underwater wireless power transfer focusing on kQ product,\u201d <i>IEICE Trans. Electron.<\/i>, vol.E101-C, no.10, pp.759-766, Oct. 2018. doi: https:\/\/doi.org\/10.1587\/transele.E101.C.759 10.1587\/transele.E101.C.759","DOI":"10.1587\/transele.E101.C.759"},{"key":"19","doi-asserted-by":"publisher","unstructured":"[19] L. Yang, M. Ju, and B. Zhang, \u201cBidirectional undersea capacitive wireless power transfer system,\u201d <i>IEEE Access<\/i>, vol.7, pp.121046-121054, 2019. doi: 10.1109\/ACCESS.2019.2937888 10.1109\/access.2019.2937888","DOI":"10.1109\/ACCESS.2019.2937888"},{"key":"20","doi-asserted-by":"crossref","unstructured":"[20] H. Mahdi, B. Hoff, and T. \u00d8strem, \u201cMaximum available power of undersea capacitive coupling in a wireless power transfer system,\u201d <i>Proc. 2021 IEEE Wireless Power Transfer Conference (WPTC)<\/i>, pp.1-4, San Diego, CA, USA, June 2021. doi: 10.1109\/WPTC51349. 2021.9458006 10.1109\/wptc51349.2021.9458006","DOI":"10.1109\/WPTC51349.2021.9458006"},{"key":"21","doi-asserted-by":"crossref","unstructured":"[21] Y. Naka and M. Tamura, \u201cDesign of a capacitive coupler for underwater wireless power transfer focused on the landing direction of a drone,\u201d <i>IEICE Trans. Electron.<\/i> June 2023 (Submitted). 10.1587\/transele.2023ecp5023","DOI":"10.1587\/transele.2023ECP5023"},{"key":"22","doi-asserted-by":"publisher","unstructured":"[22] L. Yang, Y. Zhang, X. Li, B. Feng, X. Chen, J. Huang, T. Yang, D. Zhu, A. Zhang, and X. Tong, \u201cComparison survey of effects of hull on AUVs for underwater capacitive wireless power transfer system and underwater inductive wireless power transfer system,\u201d <i>IEEE Access<\/i>, vol.10, pp.125401-125410, Nov. 2022, doi: 10.1109\/ACCESS.2022.3225541. 10.1109\/access.2022.3225541","DOI":"10.1109\/ACCESS.2022.3225541"},{"key":"23","doi-asserted-by":"crossref","unstructured":"[23] H. Li, G. Li, X. Jin, J. Li, and G. Xu, \u201cA LC-CLL compensated capacitive wireless power transfer system in fresh water,\u201d <i>2022 5th International Conference on Power and Energy Applications (ICPEA)<\/i>, pp.130-137, Guangzhou, China, 2022, doi: 10.1109\/ICPEA56363.2022.10052278. 10.1109\/icpea56363.2022.10052278","DOI":"10.1109\/ICPEA56363.2022.10052278"},{"key":"24","doi-asserted-by":"publisher","unstructured":"[24] H. Matsukami, K. Murai, and M. Tamura, \u201cDesign of a misalignment-resistant capacitive coupler for wireless power transfer under fresh water,\u201d <i>IEICE Communications Express<\/i>, vol.10, no.2, pp.73-80, Feb. 2021. doi: https:\/\/doi.org\/10.1587\/comex.2020XBL0159 10.1587\/comex.2020XBL0159","DOI":"10.1587\/comex.2020XBL0159"},{"key":"25","doi-asserted-by":"publisher","unstructured":"[25] M. Tamura, K. Murai, and M. Matsumoto, \u201cDesign of conductive coupler for underwater wireless power and data transfer,\u201d <i>IEEE Trans. Microw. Theory Techn.<\/i>, vol.69, no.1, pp.1161-1175, Jan. 2021. doi: 10.1109\/TMTT.2020.3041245 10.1109\/tmtt.2020.3041245","DOI":"10.1109\/TMTT.2020.3041245"},{"key":"26","doi-asserted-by":"crossref","unstructured":"[26] S. Jeong, T.-H. Lin, and M.M. Tentzeris, \u201cRange-adaptive impedance matching of wireless power transfer system using a machine learning strategy based on neural networks,\u201d <i>Proc. IEEE MTT-S International Microwave Symposium (IMS)<\/i>, pp.1423-1425, Boston, MA, USA, June 2019, doi: 10.1109\/MWSYM.2019.8700996. 10.1109\/mwsym.2019.8700996","DOI":"10.1109\/MWSYM.2019.8700996"},{"key":"27","doi-asserted-by":"publisher","unstructured":"[27] Y. Lim, H. Tang, S. Lim, and J. Park, \u201cAn adaptive impedance-matching network based on a novel capacitor matrix for wireless power transfer,\u201d <i>IEEE Trans. Power Electron.<\/i>, vol.29, no.8, pp.4403-4413, Aug. 2014. doi: 10.1109\/TPEL.2013.2292596 10.1109\/tpel.2013.2292596","DOI":"10.1109\/TPEL.2013.2292596"},{"key":"28","doi-asserted-by":"publisher","unstructured":"[28] Y. Shao, H. Zhang, M. Liu, and C. Ma, \u201cExplicit design of impedance matching networks for robust MHz WPT systems with different features,\u201d <i>IEEE Trans. Power Electron.<\/i>, vol.37, no.9, pp.11382-11393, Sept. 2022. doi: 10.1109\/TPEL.2022.3165296 10.1109\/tpel.2022.3165296","DOI":"10.1109\/TPEL.2022.3165296"},{"key":"29","doi-asserted-by":"publisher","unstructured":"[29] E. Chung, J.-I. Ha, A.A. Bastami, and D.J. Perreault, \u201cImpedance compressing matching network based on two-port network analysis for wireless power transfer system,\u201d <i>Proc. IEEE Journal of Emerging and Selected Topics in Industrial Electronics<\/i>, vol.3, no.3, pp.432-442, July 2022. doi: 10.1109\/JESTIE.2021.3103679 10.1109\/jestie.2021.3103679","DOI":"10.1109\/JESTIE.2021.3103679"},{"key":"30","unstructured":"[30] F. Musolino, A. Abdullah, M. Pavone, F. Ferreyra, and P. Crovetti, \u201cDesign and efficiency analysis of an LCL capacitive power transfer system with load-independent ZPA,\u201d <i>Proc. 2022 24th European Conference on Power Electronics and Applications<\/i>, pp.1-8, Hanover, Germany, Sept. 2022."},{"key":"31","doi-asserted-by":"crossref","unstructured":"[31] Y. Naka, A. Ishiwata, and M. Tamura, \u201cCapacitive wireless power transfer independent of load impedance variation with transfer distance,\u201d <i>IEEE MTT-S Int. Microw. Symp.<\/i>, Th1D-4, San Diego, California, USA, June 2023. (Accepted)","DOI":"10.1109\/IMS37964.2023.10188100"},{"key":"32","unstructured":"[32] <i>Product category of BlueRobotics<\/i>, \u201cBlueROV2\u201d. Accessed: March 25, 2023. [Online available] https:\/\/bluerobotics.com\/store\/rov\/bluerov2\/."},{"key":"33","unstructured":"[33] <i>Product category of FullDepth<\/i>, \u201cfulldepth\u201d. Accessed: April 7, 2023. [Online available] https:\/\/en.fulldepth.co.jp\/"},{"key":"34","unstructured":"[34] <i>Product category of Notilo Plus Company<\/i>, \u201ciBubble\u201d. Accessed: April 6, 2023. [Online available] https:\/\/ibubble.camera\/."},{"key":"35","doi-asserted-by":"publisher","unstructured":"[35] M. Zargham and P.G. Gulak, \u201cMaximum achievable efficiency in near-field coupled power-transfer systems,\u201d <i>IEEE Trans. Biomed. Circuits and Syst.<\/i>, vol.6, no.3, pp.228-245, June 2012. doi: 10.1109\/TBCAS.2011.2174794 10.1109\/tbcas.2011.2174794","DOI":"10.1109\/TBCAS.2011.2174794"},{"key":"36","doi-asserted-by":"publisher","unstructured":"[36] T. Ohira, \u201cPower transfer theory on linear passive two-port systems,\u201d <i>IEICE Trans. Electron.<\/i>, vol.E101.C, no.10, pp.719-726, Oct., 2018. doi: https:\/\/doi.org\/10.1587\/transele.E101.C.719 10.1587\/transele.E101.C.719","DOI":"10.1587\/transele.E101.C.719"},{"key":"37","unstructured":"[37] D.M. Pozar, Microwave Engineering, 4th ed., John Wiley &amp; Sons, New York, 2011."},{"key":"38","doi-asserted-by":"publisher","unstructured":"[38] Y. Naka and M. Tamura, \u201cRepresentation of an equivalent circuit for capacitive wireless power transfer using a distributed-constant circuit,\u201d <i>IEICE Commun. Express<\/i>, vol.9, no.10, pp.457-463, Oct. 2020. doi: https:\/\/doi.org\/10.1587\/comex.2020XBL0093 10.1587\/comex.2020XBL0093","DOI":"10.1587\/comex.2020XBL0093"},{"key":"39","doi-asserted-by":"crossref","unstructured":"[39] M. Mizutani, S. Koyama, S. Abe, and T. Ohira, \u201cGeodesic theory of zero-voltage-switching RF power inverters for constant-voltage or-current output operation,\u201d <i>Proc. 2020 IEEE International Conference on Power and Energy<\/i>, pp.83-88, Dec. 2020. 10.1109\/pecon48942.2020.9314539","DOI":"10.1109\/PECon48942.2020.9314539"},{"key":"40","doi-asserted-by":"publisher","unstructured":"[40] S. Aldhaher, D.C. Yates, and P.D. Mitcheson, \u201cLoad-independent class E\/EF inverters and rectifiers for MHz-switching applications,\u201d <i>IEEE Trans. Power Electron.<\/i>, vol.33, no.10, pp.8270-8287, Oct. 2018. doi: 10.1109\/TPEL.2018.2813760 10.1109\/tpel.2018.2813760","DOI":"10.1109\/TPEL.2018.2813760"},{"key":"41","doi-asserted-by":"crossref","unstructured":"[41] W. Luo, X. Wei, H. Sekiya, and T. Suetsugu, \u201cDesign of load-independent class-E inverter with MOSFET parasitic capacitances,\u201d <i>Proc. 2019 IEEE 62nd International Midwest Symposium on Circuits and Systems<\/i>, pp.529-532, Dallas, TX, USA, 2019, doi: 10.1109\/MWSCAS.2019.8884834. 10.1109\/mwscas.2019.8884834","DOI":"10.1109\/MWSCAS.2019.8884834"}],"container-title":["IEICE Transactions on Electronics"],"original-title":[],"language":"en","link":[{"URL":"https:\/\/www.jstage.jst.go.jp\/article\/transele\/E107.C\/2\/E107.C_2023ECP5018\/_pdf","content-type":"unspecified","content-version":"vor","intended-application":"similarity-checking"}],"deposited":{"date-parts":[[2024,2,3]],"date-time":"2024-02-03T03:42:49Z","timestamp":1706931769000},"score":1,"resource":{"primary":{"URL":"https:\/\/www.jstage.jst.go.jp\/article\/transele\/E107.C\/2\/E107.C_2023ECP5018\/_article"}},"subtitle":[],"short-title":[],"issued":{"date-parts":[[2024,2,1]]},"references-count":41,"journal-issue":{"issue":"2","published-print":{"date-parts":[[2024]]}},"URL":"https:\/\/doi.org\/10.1587\/transele.2023ecp5018","relation":{},"ISSN":["0916-8524","1745-1353"],"issn-type":[{"value":"0916-8524","type":"print"},{"value":"1745-1353","type":"electronic"}],"subject":[],"published":{"date-parts":[[2024,2,1]]},"article-number":"2023ECP5018"}}