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High-efficiency continuous-flow microwave heating system based on metal-ring resonant structure
Affiliation:1. School of Electronic Information Engineering, China West Normal University, Nanchong 637002, China;2. College of Electronic and Information Engineering, Sichuan University, Chengdu 610065, China;1. College of Food Science and Technology, Huazhong Agricultural University, Wuhan, 430070, China;1. College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China;2. Institute of Agro-products Processing Science and Technology, Sichuan Academy of Agricultural Sciences, Chengdu 610066, China;3. School of Public Health, Southeast University, Nanjing 211189, China;4. College of Life Sciences, Sichuan Normal University, Chengdu 610101, China;5. Sichuan Jixiangju Food Co., Ltd, Meishan 620000, China;1. Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Industrias, Intendente Güiraldes 2160, Buenos Aires, Argentina;2. Universidad de Buenos Aires, Facultad de Ingeniería, Departamento de Ingeniería Química, Intendente Güiraldes 2160, Buenos Aires, Argentina;3. Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET) – Universidad de Buenos Aires, Instituto de Tecnología de Alimentos y Procesos Químicos (ITAPROQ), Intendente Güiraldes 2160. Buenos Aires, Argentina;1. DIL – German Institute of Food Technologies (DIL e.V.), Professor-von-Klitzing-Str. 7, 49160 Quakenbrück, Germany;2. Technische Universität Berlin, Institute of Food Technology and Food Chemistry, Department of Food Technology and Food Material Science, Königin-Luise-Str. 22, 14195 Berlin, Germany;3. University of Applied Science Osnabrück, Department of Agricultural Science and Landscape Architecture, Oldenburger Landstr. 62, 49090 Osnabrück, Germany
Abstract:Continuous-flow microwave heating has been widely applied in liquid food processing, and the heating efficiency relies heavily on the dielectric property of loads with fixed dimensions in a certain cavity. Specifically, rectangular waveguides are widely applied, and straight pipes are usually inserted through the center of rectangular waveguides. However, maintaining high efficiency is always challenging since the dielectric property will vary with temperature. Therefore, a simple and cheap resonant structure is proposed in this paper to maintain high heating efficiency for loads with a large range of relative permittivity in both modeling and experiment. First, the straight pipe surrounded by metal rings in a rectangular waveguide with a short circuit terminal was introduced to concentrate the electric field in the pipe. Then, a multiphysics model was established to calculate the energy efficiency of various load permittivity. The position of the short circuit terminal and the dimensions of the metal ring were further optimized. Finally, energy efficiency experiments of different aqueous ethanol solutions and liquid foods and point temperature rise experiments of continuous-flow water were carried out, and the results showed that the proposed structure can be used to maintain high energy efficiency over large dielectric dynamic ranges compared with the conventional microwave heating system based on rectangular waveguides. Moreover, the effect of different parameters, the pipe permittivity, the pipe wall thickness and the metal ring gap, on the heating efficiency was discussed to show the robustness of the proposed structure.
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