Dielectric properties of polyols, at frequency range 0.2–3 GHz and temperature range 293–473 K: an analysis in the frequency and temperature domain

IF 0.9 4区 工程技术 Q4 ENGINEERING, CHEMICAL
D. C. Campos
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引用次数: 2

Abstract

Abstract The use of polyols as green solvents in conjunction with microwave heating (MH) has become a very attractive synthetic protocol nowadays. However, among the needs of this area, as well as any other that uses MH, figure the electromagnetic properties of the materials. In this context, the contribution of this work is provide dielectric data of three polyols: glycerol, 1,2-propanediol and 1,3-propanediol. The data are presented in two ways: in frequency domain and in temperature domain (whose parameters were denominated f-dispersion and T-dispersion, respectively). In the frequency domain analysis, f-dispersion parameters were obtained for the Cole–Davidson model – one of Debye's models. From the analysis in this domain, the uncertainty and accuracy of the data was established. In the temperature domain analysis, an empirical model is proposed to represent the complex permittivity as a function of temperature – ɛ*(T) of the polyols. From the analysis in this domain, concluded that the presented model can be applied to other materials. In addition, that can to conclude that the phenomena of thermal runaway and self-limitation of heating are, in fact, subsequent opposite phenomena associated to the variation of the loss factor with the temperature.
多元醇的介电性能,频率范围为0.2-3 GHz,温度范围为293-473 K:频率和温度域的分析
使用多元醇作为绿色溶剂结合微波加热(MH)已成为一个非常有吸引力的合成方案。然而,在这个领域的需求中,以及任何其他使用MH的领域,都需要考虑材料的电磁特性。在这种情况下,本工作的贡献是提供三种多元醇:甘油,1,2-丙二醇和1,3-丙二醇的介电数据。数据以两种方式呈现:频率域和温度域(其参数分别命名为f-色散和t -色散)。在频域分析中,得到了Debye模型之一Cole-Davidson模型的f-色散参数。通过对该域的分析,确定了数据的不确定度和准确性。在温度域分析中,提出了一个经验模型来表示复合介电常数作为多元醇温度- *(T)的函数。通过对这一领域的分析,得出了该模型可以应用于其他材料的结论。此外,可以得出结论,热失控和加热自限现象实际上是损耗因子随温度变化的后续相反现象。
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来源期刊
Journal of Microwave Power and Electromagnetic Energy
Journal of Microwave Power and Electromagnetic Energy ENGINEERING, CHEMICAL-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
2.50
自引率
6.70%
发文量
21
期刊介绍: The Journal of the Microwave Power Energy (JMPEE) is a quarterly publication of the International Microwave Power Institute (IMPI), aimed to be one of the primary sources of the most reliable information in the arts and sciences of microwave and RF technology. JMPEE provides space to engineers and researchers for presenting papers about non-communication applications of microwave and RF, mostly industrial, scientific, medical and instrumentation. Topics include, but are not limited to: applications in materials science and nanotechnology, characterization of biological tissues, food industry applications, green chemistry, health and therapeutic applications, microwave chemistry, microwave processing of materials, soil remediation, and waste processing.
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