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Effect of electric field on dielectric loads by using the electrode plates for exterminating pests applications

Treść / Zawartość
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Warianty tytułu
PL
Wpływ pola elektrycznego na obciążenia dielektryczne przy użyciu płytek elektrodowych do tępienia szkodników
Języki publikacji
EN
Abstrakty
EN
This research was conducted to analyze the effect of electric field distribution and intensity in dielectric loads. The electric fields were caused by varying the electric power on electrode plates to improve the thermals temperatures of dielectric loads. The dielectric loads of the grains and pests, the rice and rice weevils were the target dielectric materials for analyzing the impact of thermal temperatures of the rice weevils and minimal thermal on the rice. To investigate the difference of electric power on heating predicted by the theoretical model, the electric field distribution and intensity were analyzed by using the finite difference time domain method. Theoretical analyzes was conducted to make power system effective for controlling the electric field distribution on the model. Theoretical and experimental investigations were carried out using dielectric load. The results demonstrated that the efficiency of the dielectric heating exterminated pests and temperature of grains without losing the quality. The advantage of the method is being able to be utilized for the dielectric heating applications to eliminate insects and control the appropriate temperature of the grains in the future.
PL
Badania przeprowadzono w celu analizy wpływu rozkładu i natężenia pola elektrycznego w obciążeniach dielektrycznych. Pola elektryczne powstały w wyniku zmiany mocy elektrycznej na płytkach elektrod w celu poprawy temperatur termicznych obciążeń dielektrycznych. Obciążenia dielektryczne ziaren i szkodników, ryżu i wołków ryżowych były docelowymi materiałami dielektrycznymi do analizy wpływu temperatur termicznych wołków ryżowych i minimalnych temperatur termicznych na ryż. Aby zbadać różnicę mocy elektrycznej podczas ogrzewania przewidywaną przez model teoretyczny, przeanalizowano rozkład i natężenie pola elektrycznego, stosując metodę różnic skończonych w dziedzinie czasu. Przeprowadzono analizy teoretyczne mające na celu zapewnienie efektywności systemu elektroenergetycznego w sterowaniu rozkładem pola elektrycznego na modelu. Badania teoretyczne i eksperymentalne przeprowadzono przy obciążeniu dielektrycznym. Wyniki wykazały, że skuteczność ogrzewania dielektrycznego eksterminowała szkodniki i temperaturę ziarna bez utraty jego jakości. Zaletą tej metody jest możliwość wykorzystania jej w zastosowaniach związanych z ogrzewaniem dielektrycznym w celu wyeliminowania owadów i kontrolowania w przyszłości odpowiedniej temperatury ziarna.
Rocznik
Strony
156--164
Opis fizyczny
Bibliogr. 42 poz., rys., tab.
Twórcy
  • Rajamangala University of Technology Isan, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Suranaree University of Technology, Nakhon Ratchasima, Thailand
  • Srinakharinwirot University, Nakhon Nayok, Thailand
Bibliografia
  • [1] Abed, B., Houcine, N., Mohamed, D. K., Radouane, F., Guelta B., Modeling and Simulation of a Novel Neural PLL controller for Circuit of Series Resonant Inverter in High Frequency Induction Heating, Przegląd Elektrotechniczny, 98, (2022), No. 4, 67-71
  • [2] Boonpeang, W., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., A new Modeling of IGBT and Freewheeling Diode based on Electrical Behavioral with Independently of Time Condition, Przegląd Elektrotechniczny, 96, (2020), No. 8, 10-15
  • [3] Poungprakhon, N., Thongsopa, C., Santalunai, S., Thosdeekoraphat, T., Santalunai, N., Chaipanya, P., The Study of Water Reconditioning using Magnetic Field for Plant Industry, Przegląd Elektrotechniczny, 99, (2023), No. 7, 59-64
  • [4] Srisuma, C., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., The Analysis and Design of Milk Pasteurization System by Using Radio Frequency Electric Fields, The 2017 Asia-Pacific International EMC Symposium, (2017), 158-160
  • [5] Sutacha, C., Santalunai, S., Thongsopa, C., Thosdeekoraphat, T., Penkhrue, W., Inactivation of Contaminated Fungi in Rice Grains by Dielectric Heating, Applied Sciences, 12 (2022), No. 20, 10478
  • [6] Seehanan, T., Fhafhiem, N., Santalunai, S., Krachodnok, P., Analysis of electric fields distribution by using EBG structure for dielectric heating applications, 4th International Conference on Engineering, Applied Sciences and Technology: Exploring Innovative Solutions for Smart Society, (2018), 1-4
  • [7] Santalunai, N., Santalunai, S., Meesawad, P., Tongsopa, C., Santalunai, S., Plus-Shape of Mushroom-Like EBG with Square Microstrip Emitter to Expand the Working Space in Dielectric Heating Applications, International Journal of Intelligent Engineering and Systems, 14 (2021), No. 3, 189-200
  • [8] Kornsing, S., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., Dielectric Property Measurement of Freshwater Fishes and Parasite Affecting Infection Opisthorchis Viverrini for Dielectric Heating Application, 9th International Symposium on Electrical Insulating Materials, (2020), 439-442
  • [9] Xu, J., Wang, B., Wang, Y., Electromagnetic fields assisted blanching—Effect on the dielectric and physicochemical properties of cabbage, Journal of Food Process Engineering, 42 (2019) No. 8, 13294
  • [10] Yodrot, T., Santalunai, S., Thongsopa, C., Thosdeekoraphat, T., Santalunai, N., Measurement of Dielectric Properties in Soil Contaminated by Biodiesel-Diesel Blends Based on Radio Frequency Heating, Applied Sciences, 13 (2023), no. 3, 1248
  • [11] Wasusathien, W., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., Rice Types Classification by Using Dielectric Properties Measurement with Saline Water Increasing Technique. 9th International Symposium on Electrical Insulating Materials. (2020), 433-438
  • [12] Gautam, S.G., Opit, G.P., Konemann, C., Shakya, K., Hosoda, E., Phosphine resistance in saw-toothed grain beetle, Oryzaephilus surinamensis in the United States, Journal of Stored Products Research, 89, (2020), 101690
  • [13] Oghabian, Z., Ahmadi, J., Pakravan, S., Tajaddini, S., Karami-Mohajeri, S., 2020. Successful treatment of aluminium phosphide poisoning by dihydroxyacetone: A two-case report study, Journal of Clinical Pharmacy and Therapeutics, 45 (2020), No. 5, 1194-1198
  • [14] Mitcham, E., Quarantine issues in 2000, Acta Horticulture, 553 (2001), 451–455.
  • [15] Rajendran, S., & Muralidharan, N., Performance of phosphine in fumigation of bagged paddy rice in indoor and outdoor stores, Journal of Stored Products Research, 37 (2001), 351– 358.
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  • [17] Maharjan, R., Yi, H., Ahn, J., Kim, Y., Bae, S. Effects of radiofrequency on the development and performance of Callosobruchus chinensis (Coleoptera: Chrysomelidae: Bruchinae) on three different leguminous seeds, Applied Entomology and Zoology, 54 (2019), No.3, 255-266
  • [18] Zhang, L., Lan, R., Zhang, B., Erdogdu, F., Wang, S., A comprehensive review on recent developments of radio frequency treatment for pasteurizing agricultural products, Critical Reviews in Food Science and Nutrition, 61 (2020) No.3, 380-394
  • [19] Zhao, L., Zhou, H., Ramaswamy, H., Wang, S., Developing effective treatment protocols to control bark beetle (scolytidae: Dendroctonus armandi) in wood using radio frequency heating and forced hot air, Transactions of the ASABE, 61 (2018), No. 6, 1979-1984
  • [20] Santalunai, S., Thongsopa, C., Thosdeekoraphat, T., The efficiency of dielectric heating by using symmetrically electric power ports on electrode plate for pest control, 2015 12th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology, (2015), 1-4
  • [21] Ratniyomchai, K., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., Optimization of capacitor copper plate for dielectric heating to eliminate insect, Applied Mechanics and Materials, 343 (2013), 101-105
  • [22] Mitcham, E. J., Veltman, R. H., Feng, X., Application of radio frequency treatments to control insects in in-shell walnuts. Postharvest Biology and Technology, 33 (2004), 93–100
  • [23] Wang, S., Tiwari, G., Jiao, S., Johnson, J.A., & Tang, J., Developing postharvest disinfestations treatments for legumes using radio frequency energy. Biosystems Engineering, 105 (2010), 341–349.
  • [24] Saeung, P., Santalunai, S., Thosdeekoraphat, T., Thongsopa, C., Improved Efficiency of Insect Pest Control System by SSPA, The 5th International Conference on Industrial Engineering and Applications, (2018), 179-183
  • [25] Marra, F., Zhang, L., & Lyng, J.G. Radio frequency treatment of foods: review of recent advances. Journal of Food Engineering, 91 (2009), 497–508.
  • [26] Zhou, L., Wang, S., Industrial-scale radio frequency treatments to control Sitophilus oryzae in rough, brown, and milled rice, Journal of Stored Products Research, 68 (2016), 9-18
  • [27] Ling, B., Hou, L., Li, R., Wang, S., Storage stability of pistachios as influenced by radio frequency treatments for postharvest disinfestations, Innovative Food Science and Emerging Technologies, 33, (2016), 357-364
  • [28] Zhou, L., Ling, B., Zheng, A., Zhang, B., Wang, S. Developing radio frequency technology for postharvest insect control in milled rice, Journal of Stored Products Research, 62 (2015), 22-31
  • [29] Ling, B., Tiwari, G., Wang, S., Pest control by microwave and radio frequency energy: dielectric properties of stone fruit, Agronomy for Sustainable Development, 35 (2014), No. 1, 233- 240
  • [30] Wang, S., Tang, J., Johnson, J.A., & Hansen, J.D. Thermal death kinetics of fifth-in star Amyelois transitella (Walker) (Lepidoptera: Pyralidae). Journal of Stored Products Research, 38 (2002), 427–440.
  • [31] Wang, S., Ikediala, J. N., Tang, J., & Hansen, J. D., Thermal death kinetics and heating rate effects for fifth-instar Cydiapomonella (L.) (Lepidoptera: Tortricidae). Journal of Stored Products Research, 38 (2002), 441–453.
  • [32] Wang, S., Monzon, M., Johnson, J. A., Mitcham, E. J., Tang, J., Industrial-scale radio frequency treatments for insect control in walnuts. I:Heating uniformity and energy efficiency. Postharvest Biology and Technology, 45 (2007), 240–246.
  • [33] Wang, S., Monzon, M., Johnson, J.A., Mitcham, E.J., & Tang, J., Industrial-scale radio frequency treatments for insect control in walnuts. II: Insect mortality and product quality. Postharvest Biology and Technology, 45 (2007), 247–253.
  • [34] Nelson, S. O., (2006). Agricultural applications of dielectric measurements. IEEE Transactions on Dielectrics and Electrical Insulation. 13. 688-702.
  • [35] Nelson, S.O., (1991). Dielectric properties of agricultural products Measurements and Applications. IEEE Transactions on Electrical Insulation. 26. 845-869.
  • [36] Nelson, S.O., (1996). Review and assessment of radio-frequency and microwave energy for stored-grain insect control. Transactions of the ASAE. 39. 1475–1484.
  • [37] Hasselgren, L., & Luomi, J., (1995). Geometrical aspects of magnetic shielding at extremely low frequencies. IEEE Transactions on Electromagnetic Compatibility. 37. 409–420.
  • [38] Du, Y., Cheng, T.C., & Farag, A.S., (1996). Principles of power frequency magnetic field shielding with flat sheets in a source of long conductors. IEEE Transactions on Electromagnetic Compatibility. 38. 450–459.
  • [39] Thongsopa, C., & Thosdeekoraphat, T., (2013). Analysis and Design of Magnetic Shielding System for Breast Cancer Treatment with Hyperthermia Inductive Heating, International Journal of Antennas and Propagation.
  • [40] Komarov, V., Dielectric and Thermal Properties of Materials at Microwave Frequencies, Handbook, Artech House, 2012
  • [41] Robinson W.H. Handbook of urban insects and arachnids: A handbook of urban entomology, Cambridge University Press, 2005.
  • [42] Wang, S., Tang, J., Johnson, J.A., Mitcham, E., Hansen, J.D., Hallman, G., Drake, S.R., and Wang, Y., Dielectric Properties of Fruits and Insect Pests as related to Radio Frequency and Microwave Treatments, Biosystems Engineering, Vol. 85, p. 201-212, 2003.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki i promocja sportu (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-16117d11-1b49-40e6-a994-d2df45c9cbf7
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