Abstract
Microwave-based methods have been used for years to monitor processes, tests, and substance mixtures. Solutions must preserve sample integrity and avoid time-consuming procedures to scale inline industrial applications and promote on-field tests. Today, testing procedures use portable, cost-effective devices operating on wide frequency ranges to perform low-power, wide-band microwave dielectric spectroscopy. This paper describes a proof of concept using SDR technology to match all these requirements. A prototype was tested for measuring sucrose-in-water solutions at different concentrations, which resulted in a novel concentration indicator based on radiofrequency absorbance. This application is critical for in-line monitoring and on-field testing in the food and beverage industries. The proposed method delivered robust, replicable, and reliable results. High levels of significance (> 99%) were achieved in statistical tests in the frequency range of 4 125 to 4 410 MHz. The indicator was shown to be sensitive to concentrations below those reported in the literature and could be easily integrated into non-destructive early chemical evaluation for food quality and production monitoring or into on-field testing devices, to name some applications.
Publisher
Universidad Nacional de Colombia
Subject
General Engineering,Building and Construction
Reference35 articles.
1. Agilent Technologies, Inc. (2006). Basics of measuring the dielectric properties of materials. Agilent Technologies: Santa Clara, CA, USA. (Application Note 5989-2589EN)
2. Ballin, N. Z., and Laursen, K. H. (2019). To target or not to target? definitions and nomenclature for targeted versus non-targeted analytical food authentication. Trends in Food Science and Technology, 86, 537-543. https://doi.org/10.1016/j.tifs.2018.09.025
3. Becker, F., Schwabig, C., Krause, J., Leuchs, S., Krebs, C., Gruna, R., Kuter, A., Langle, T., Nuessler, D., and Beyerer, J. (2020). From visual spectrum to millimeter wave: A broad spectrum of solutions for food inspection. IEEE Antennas and Propagation Magazine, 62(5), 55-63. https://doi.org/10.1109/MAP.2020.3003225
4. Bindu, G., Lonappan, A., Thomas, V., Aanandan, C. K., and Mathew, K. T.(2006). Dielectric studies of corn syrup for applications in microwave breast imaging. Prog. Electromagn. Res., 59, 175–186. https://doi.org/10.2528/PIER05072801
5. Blanco-Murillo, J.L., Yagüe-Jiménez, V., Coronel-Gaviro, J., and Casajús Quirós, F. (2022). A model-informed, single- input method for amplifiers assessment from pruned Volterra kernels collapsed projection. Measurement, 193, 110856. https://doi.org/10.1016/j.measurement.2022.110856