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Review

A review on the evolution of induction fluid heaters

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Pages 7949-7966 | Received 13 May 2022, Accepted 24 Aug 2022, Published online: 31 Aug 2022

References

  • Acero, J., C. Carretero, R. Alonso. 2010. Experimental setup for inductive efficiency measurements of domestic induction systems based on energy balance. IECON 2010 - 36th Annual Conference on IEEE Industrial Electronics Society, Glendale, AZ, USA, IEEE, 114–19. 10.1109/IECON.2010.5675191.
  • Ahmed, T., K. Ogura, S. Chandhaket, and M. Nakaoka. 2003. Asymmetrical duty cycle controlled edge resonant soft switching high frequency inverter for consumer electromagnetic induction fluid heater. Automatika 44:21–26.
  • Al-Dawody, M. F., and S. K. Bhatti. 2014. Experimental and computational investigations for combustion, performance and emission parameters of a diesel engine fueled with soybean biodiesel-diesel blends. Energy Procedia 52:421–30. doi:10.1016/j.egypro.2014.07.094.
  • Al-Shaikhli, A. K. M., and A. T. Meka. 2014. Design and implementation of practical induction heating cooker. The International Journal of Soft Computing and Engineering (IJSCE) 4(4):73–76. ISSN:.
  • Alavi, K. Apparatus and method for heating a fluid by induction heating. Patent No:US005914065A, 1999.
  • Altintaş, A. 2016. Investigating the effects of conductor types of induction coil on performance of the induction liquid heater. Marmara Journal of Science and Technology 1:49–58. doi:10.7240/mufbed.02953.
  • Altıntaş, A., and M. Karahan. 2015. Investigation of the fluid-heating apparatus operating with the principle of induction heating. SDU International Journal of Technologic Sciences 7:16–26.
  • Altıntaş, A., M. N. Yıldız, and I. Kızılkaya. 2012. Design of a liquid heater with microcontroller operating on the principle of induction heating. DPU Journal of Institute of Natural Sciences 29:45–52.
  • Bai-Zhong, S., L. Hong-Peng, L. Xiu, W. Qing, and L. Shao-Hua. 2009. Experimental investigation on electromagnetic induction heating characteristics for high temperature air. Proceedings of the Chinese Society for Electrical Engineering 29:30–34.
  • Bal, G., S. Oncu, and E. Ozbas. 2013. Self-oscillated induction heater for absorption cooler. Elektron IR Elektrotechnika 19:45–48. doi:10.5755/j01.eee.19.10.5894.
  • Bay, F., V. Labbe, Y. Favennec, and J. L. Chenot. 2003. A numerical model for induction heating processes coupling electromagnetism and thermomechanics. International Journal for Numerical Methods in Engineering 58 (6):839–67. doi:10.1002/nme.796.
  • Bean, R., B. W. Olesen, and K. W. Kim. 2010. History of radiant heating & cooling systems. ASHRAE Journal 52: 50–55.
  • Brom, P., A. Van Den Rhiger, K. Gram-Hanssen, and A. Meijer. 2019.Variances in residential heating consumption – Importance of building characteristics and occupants analysed by movers and stayers. Applied Energy 250: 713–28. doi:10.1016/j.apenergy.2019.05.078.
  • Burnett, H. J. Induction gas heater. Patent No:3,534,191, 1970.
  • Burnett, H. J. Electric induction gas heater. Patent No:3,671,715, 1972.
  • Codrington, J., P. Nguyen, S. Y. Ho, and A. Kotousov. 2009. Induction heating apparatus for high temperature testing of thermo-mechanical properties. Applied Thermal Engineering 29 (14–15):2783–89. doi:10.1016/j.applthermaleng.2009.01.013.
  • Cullen, J. M., and J. M. Allwood. 2010. The efficient use of energy: Tracing the global flow of energy from fuel to service. Energy Policy 38 (1):75–81. doi:https://doi.org/10.1016/j.enpol.2009.08.054.
  • Curran, S. J., and A. M. Featherstone. 1988. Electric-induction fluid heaters. Power Engineering Journal: 157–60.
  • Dong, Q., S. Li, and C. Han. 2020.Numerical and experimental study of the effect of solar radiation on thermal comfort in a radiant heating system. Journal of Building Engineering 32: 101497. doi:https://doi.org/10.1016/j.jobe.2020.101497.
  • Favennec, Y., V. Labbé, and F. Bay. 2003. Induction heating processes optimization a general optimal control approach. Journal of Computational Physics 187 (1):68–94. doi:10.1016/S0021-9991(03)00081-0.
  • Frogner, K., M. Andersson, T. Cedell, L. Svensson, P. Jeppsson, J.-E. Stahl. 2011. Industrial heating using energy efficient induction technology. Proceedings of the 44th CIRP International Conference on Manufacturing Systems, Madison, WI, USA.
  • Garza, B. A. Electromagnetic induction air heater system with moving heating element and methods. Patent No:US 2011/0215089 A1, 2011.
  • Guo, B., A. Okuno, H. Iwamoto, L. Gamage, O. Koudriavtsev, E. Hiraki, and M. Nakaoka. 1999. Latest electromagnetic heating appliance using voltage-source series modulation high-frequency inverter. International Journal of Electronics 86 (10):1261–79. doi:10.1080/002072199132798.
  • Hadoulias, S., D. L. Snyder, J. C. May Magnetic induction heat engine and heat pipe delivery systemand methods of producing and delivering heat. Patent No:US 9,544,945 B2, 2017.
  • Han, W., K. T. Chau, and W. H. Lam. 2019.All-Utensil domestic induction heating system. Energy Conversion and Management 195: 1035–43. doi:https://doi.org/10.1016/j.enconman.2019.05.093.
  • Handa, K. Induction warming system for fiber composite gas storage cylnders. Patent No:US 2009/0139987 A1, 2009.
  • Hans, E., F. K. Fichtner. Apparatus for inductively heating fluid. Patent No:4,600,821, 1986.
  • Heaviside, O. 2011. Electromagnetic waves - the propagation of potential and the electromagnetic effects of a moving charge. Electr. Pap., Cambridge University Press, 490–99. 10.1017/CBO9780511983139.017.
  • Iguchi, A. Electromagnetic induction heater. Patent No:US005237144A, 1993.
  • Jin, Y. Electromagnetic induction high temperature air heater. Patent No:CN 206145973 U, 2017
  • Kaneda, M., S. Hishikawa, T. Tanaka, B. Guo, M. Nakaoka. 1999. Innovative electromagnetic induction eddy current-based dual packs heater using voltage-fed high-frequency PWM resonant inverter for continuous fluid processing in pipeline. 25th Annual Conference of the IEEE Industrial Electronics Society, 797–802.
  • Keleşoğlu, A. 2019. Thermodynamic analysis of induction gas heaters. Master Thesis, Yalova University, Institute of Science.
  • Kim, M. G., S. M. Cho, and J. K. Kim. 2013. Prediction and evaluation of the cooling performance of radiators used in oil-filled power transformer applications with non-direct and direct-oil-forced flow. Experimental Thermal and Fluid Science 44:392–97. doi:10.1016/jexpthermflusci.2012.07.011.
  • Kranjc, M., A. Zupanic, D. Miklavcic, and T. Jarm. 2010. Numerical analysis and thermographic investigation of induction heating. International Journal of Heat and Mass Transfer 53 (17–18):3585–91. doi:10.1016/j.ijheatmasstransfer.2010.04.030.
  • Kurose, Y., E. Hiraki, A. Fukui, M. Nakaoka. 2003. Phase shifted ZVS-PWM high frequency load resonant inverter for induction heated foam metal type dual packs fluid heater. 29th Annual Conference of the IEEE Industrial Electronics Society, Roanoke, VA, USA, 1613–16.
  • Li, J., Z. Yang, H. Li, S. Hu, Y. Duan, and J. Yan. 2021.Optimal schemes and benefits of recovering waste heat from data center for district heating by CO2 transcritical heat pumps. Energy Conversion and Management 245: 114591. doi:https://doi.org/10.1016/j.enconman.2021.-114591.
  • Liu, Y., X. Lai, Y. Gu, B. Wang, G. Wang, and Q. Liu. 2021.Investigation on the ageing behaviour and hardening mechanisms of 5A90 Al–Li alloy U-shaped parts formed by electric resistance heating forming-quenching process. Journal of Alloys and Compounds 869: 159120. doi:https://doi.org/10.1016/j.jallcom.2021.159120.
  • Lu, Z., C. Zhang, N. Deng, H. Zhou, G. Wang, Y. Su, R. Fang, and H. Zhang. 2021.Evolution of grain boundary character distribution in near-surface regions of a cold-rolled nickel-based superalloy during induction heating process. Journal of Materials Research and Technology 15: 801–09. doi:10.1016/j.jmrt.2021.08.086.
  • Lucía, Ó., A. Domínguez, H. Sarnago, and J. M. Burdío. 2018. Induction heating. In Control of power electronic converters and systems, ed. F. Blaabjerg, Vol. 2, 265–87. Zaragoza: E-Publishing Inc. doi:10.1016/B978-0-12-816136-4.00022-1.
  • Luo, S., Y. Ding High frequency induction heating instantaneous tankless water heaters. Patent No:US 2009/0092.384 A1, 2009.
  • Ma, Y., Z. Wang, J. Lu, and L. Yang. 2018.Techno-Economic analysis of a novel hot air recirculation process for exhaust heat recovery from a 600 MW brown-coal-fired boiler. Energy 152: 348–57. doi:10.1016/j.energy.2018.03.176.
  • Manuel, G., and M. Khan. 2009. Design of an induction heating domestic water heater system. Bellville, South Africa: Cape Peninsula University of Technology. https://www.yumpu.com/en/document/read/29403940/design-of-an-induction-heating-domestic-water-cput-active-web
  • Nakamizo, T., M. Kaneda, S. Hishikawa, B. Guo, H. Iwamoto, M. Nakaoka. 1999. New generation fluid heating appliance using high-frequency load resonant inverter. IEEE 1999 International Conference on Power Electronics and Drive Systems, Hong Kong, 309–14.
  • Patil, T. G., and A. A. Patil. 2014. Experimental study of helical coil induction water heater using induction cooker. InternationalJournal of Research in Aeronautical and Mechanical Engineering 2:21–27.
  • Patil, T. G., A. A. Patil, and D. S. Deshmukh. 2016. Experimental analysis of helical coil induction and electric immersion type water heater. The International Journal of Science, Spirituality, Business and Technology (IJSSBT) 4:96–99.
  • Paya, B., J.-M. Fourmigue, B. Vairamohan, A. Amarnath. 2013. Results of an innovative 100kw induction heater prototype testing. 2013 ACEEE Summer Study on Industrial Energy Efficiency, India, 1–13.
  • Popa, C., and R. Pentiuc. 2012. Analysis of a new induction thermal converter for heating. Energy 42 (1):81–93. doi:https://doi.org/10.1016/j.energy.2011.07.046.
  • Rafael, O. F., R. C. Fabiola, M. C. Roberto, C. H. Carlos, M. H. H. Patricia. 2013. Water heater by magnetic induction. 23rd International Conference on Electronics, Communications and Computing., Cholula, Puebla, Mexico, 192–97.
  • Sadakata, H., M. Nakaoka, H. Yamashita, H. Omori, H. Terai. 2002. Development of induction heated hot water producer using soft switching PWM high frequency inverter. Proc. Power Convers. Conf, Osaka, Japan, 452–55.
  • Sadhu, P. K., N. Pal, A. Bandyopadhyay. 2012. Choice of semiconductor switches for energy efficient induction heated pipe-line using H.E. Mirror inverter. Proceedings of International MultiConference of Engineers and Computer Scientists, 2012 Vol II, IMECS 2012, March 14-16, 2012, Hong Kong, vol. 2196, Hong Kong, 1002–05.
  • Sarnago, H., O. Lucia, A. Mediano, and J. M. Burdio. 2013. Modulation scheme for improved operation of an RB-IGBT-based resonant inverter applied to domestic induction heating. IEEE Transactions on Industrial Electronics 60 (5):2066–73. doi:10.1109/TIE.2012.2207652.
  • Siddiqui, S., J. Macadam, and M. Barrett. 2021.The operation of district heating with heat pumps and thermal energy storage in a zero-emission scenario. Energy Reports 7: 176–83. doi:10.1016/j.egyr.2021.08.157.
  • Siesing, L., F. Lundström, K. Frogner, T. Cedell, and M. Andersson. 2018.Towards energy efficient heating in industrial processes - three steps to achieve maximized efficiency in an induction heating system. Procedia Manufacturing 25: 404–11. doi:https://doi.org/10.1016/j.promfg.2018.06.110.
  • Strupinskiy, M. L., N. N. Khrenkov, A. B. Kuvaldin, M. A. Fedin, and M. A. Rashevskaya. 2013. Waveform of inductor current at low-temperature induction heating. International Symposium on Theoretical Electrical Engineering 61–62. https://otik.zcu.cz/bitstream/11025/11467/1/Strupinskiy.pdf
  • Tanaka, H., M. Kaneda, S. Chandhaket, M. A. Al, M. Nakaoka, N. Uchida. 2000. Eddy current dual packs heater based continuous pipeline fluid heating using soft switching PWM high frequency inverter. ISIE’2000 Proc. 2000 IEEE Int. Symp. Ind. Electron, Cholula, Puebla, Mexico, 306–11.
  • Tavakoli, M. H., H. Karbaschi, and F. Samavat. 2010. Computational study of electromagnetic fields, eddy currents and induction heating in thin and thick workpieces. Communications in Computational Physics 8 (1):211–25. doi:10.4208/cicp.2009.09.107.
  • Terai, H., H. Sadakata, H. Omori, H. Yamashita, M. Nakaoka. 2002. High frequency soft switching inverter for fluid-heating appliance using induction eddy current-based involuted type heat exchanger. IEEE 33rd Annual IEEE Power Electronics Specialists Conference. Proceedings, vol. 4, Cairns, QLD, Australia, 1874–78.
  • Tomita, H., T. Maruyama, S. Yoshimura, N. Takahashi. 2009. Superheated steam generator by induction heating. 13th European Conference on Power Electronics and Applications, Barcelona, Spain.
  • Uchihori, Y., Y. Kawamura, M. Tokiwa, Y. J. Kim, M. Nakaoka. 1995. New induction heated fluid energy conversion process appliance incorporating auto-tuning PID control-based PWM resonant IGBT inverter with sensorless power factor correction. Proc. PESC ’95 - Power Electronics Specialists Conference, Atlanta, GA, USA, 1191–97.
  • Unver, H. M. 2012. A new induction water heating system design for domestic heating. Energy Education Science and Technology Part A: Energy Science and Research 29:1133–38.
  • Unver, U. 2016. Efficiency analysis of induction air heater and investigation of distribution of energy losses. Tehnički Vjesnik 23:1259–67. doi:10.17559/TV-20151122224719.
  • Ünver, Ü., and A. Yüksel. 2016. Experimental investigation of transient condition of induction air heating (In Turkish). Erzincan University Journal of Science and Technology 9:112–25. doi:10.18185/eufbed.63445.
  • Unver, U., A. Yuksel, A. Kelesoglu, F. Yuksel, and H. M. Unver. 2018. Analysis of a novel high performance induction air heater. Thermal Science 22 (Suppl. 3):843–53. doi:10.2298/TSCI170913018U.
  • Unver, U., F. Yuksel, A. Kelesoglu, A. Yuksel, and H. M. Unver. 2018. Analysis of the effect of construction parameters on energetic and exergetic efficiency of induction air heaters. International Journal of Exergy 25 (2):168–86. doi:10.1504/IJEX.2018.089554.
  • Valchev, V. C., T. P. Todorova. 2016. Design considerations of inductors for induction heating of fluids. 19th Int. Symp. Electr. Appar. Technol, Bourgas, Bulgaria, 1–3.
  • Virgin, G. C. Electromagnetic induction air heater. Patent No:4,503,305, 1985.
  • Yüksel, A. 2016. Investigation of the effects on heating efficiency of flow parameters in induction fluid heater (In Turkish). Master Thesis, Yalova University, Institute of Science.
  • Zhang, Z., Y. Zhou, N. Zhao, H. Li, B. Tohniyaz, and P. Mperejekumana. 2021.Clean heating during winter season in Northern China : A review. Renewable and Sustainable Energy Reviews 149: 111339. doi:10.1016/j.rser.2021.111339.

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