Vol. 28
Latest Volume
All Volumes
PIERM 126 [2024] PIERM 125 [2024] PIERM 124 [2024] PIERM 123 [2024] PIERM 122 [2023] PIERM 121 [2023] PIERM 120 [2023] PIERM 119 [2023] PIERM 118 [2023] PIERM 117 [2023] PIERM 116 [2023] PIERM 115 [2023] PIERM 114 [2022] PIERM 113 [2022] PIERM 112 [2022] PIERM 111 [2022] PIERM 110 [2022] PIERM 109 [2022] PIERM 108 [2022] PIERM 107 [2022] PIERM 106 [2021] PIERM 105 [2021] PIERM 104 [2021] PIERM 103 [2021] PIERM 102 [2021] PIERM 101 [2021] PIERM 100 [2021] PIERM 99 [2021] PIERM 98 [2020] PIERM 97 [2020] PIERM 96 [2020] PIERM 95 [2020] PIERM 94 [2020] PIERM 93 [2020] PIERM 92 [2020] PIERM 91 [2020] PIERM 90 [2020] PIERM 89 [2020] PIERM 88 [2020] PIERM 87 [2019] PIERM 86 [2019] PIERM 85 [2019] PIERM 84 [2019] PIERM 83 [2019] PIERM 82 [2019] PIERM 81 [2019] PIERM 80 [2019] PIERM 79 [2019] PIERM 78 [2019] PIERM 77 [2019] PIERM 76 [2018] PIERM 75 [2018] PIERM 74 [2018] PIERM 73 [2018] PIERM 72 [2018] PIERM 71 [2018] PIERM 70 [2018] PIERM 69 [2018] PIERM 68 [2018] PIERM 67 [2018] PIERM 66 [2018] PIERM 65 [2018] PIERM 64 [2018] PIERM 63 [2018] PIERM 62 [2017] PIERM 61 [2017] PIERM 60 [2017] PIERM 59 [2017] PIERM 58 [2017] PIERM 57 [2017] PIERM 56 [2017] PIERM 55 [2017] PIERM 54 [2017] PIERM 53 [2017] PIERM 52 [2016] PIERM 51 [2016] PIERM 50 [2016] PIERM 49 [2016] PIERM 48 [2016] PIERM 47 [2016] PIERM 46 [2016] PIERM 45 [2016] PIERM 44 [2015] PIERM 43 [2015] PIERM 42 [2015] PIERM 41 [2015] PIERM 40 [2014] PIERM 39 [2014] PIERM 38 [2014] PIERM 37 [2014] PIERM 36 [2014] PIERM 35 [2014] PIERM 34 [2014] PIERM 33 [2013] PIERM 32 [2013] PIERM 31 [2013] PIERM 30 [2013] PIERM 29 [2013] PIERM 28 [2013] PIERM 27 [2012] PIERM 26 [2012] PIERM 25 [2012] PIERM 24 [2012] PIERM 23 [2012] PIERM 22 [2012] PIERM 21 [2011] PIERM 20 [2011] PIERM 19 [2011] PIERM 18 [2011] PIERM 17 [2011] PIERM 16 [2011] PIERM 14 [2010] PIERM 13 [2010] PIERM 12 [2010] PIERM 11 [2010] PIERM 10 [2009] PIERM 9 [2009] PIERM 8 [2009] PIERM 7 [2009] PIERM 6 [2009] PIERM 5 [2008] PIERM 4 [2008] PIERM 3 [2008] PIERM 2 [2008] PIERM 1 [2008]
2013-01-02
Amplitude-Only Measurements of a Dual Open Ended Coaxial Sensor System for Determination of Complex Permittivity of Materials
By
Progress In Electromagnetics Research M, Vol. 28, 27-39, 2013
Abstract
This paper describes a novel permittivity measurement technique using dual open ended coaxial sensors. The magnitude reflection coefficients from two open ended coaxial sensors were used to determine complex reflection coefficients and permittivity of a sample under test.
Citation
Kim Yee Lee, Boon-Kuan Chung, Zulkifly Abbas, You Kok Yeow, and Ee Meng Cheng, "Amplitude-Only Measurements of a Dual Open Ended Coaxial Sensor System for Determination of Complex Permittivity of Materials," Progress In Electromagnetics Research M, Vol. 28, 27-39, 2013.
doi:10.2528/PIERM12082906
References

1. Berube, D. and F. M. Ghannouchi, "A comparative study of four open-ended coaxial sensor models for permittivity measurements of lossy dielectric/biological materials at microwave frequency," IEEE Trans. Microwave Theory and Techniques, Vol. 44, No. 10, 1928-1934, 1996.
doi:10.1109/22.539951

2. Wang, Y. and M. N. Afsar, "Measurement of complex permittivity of liquids using waveguide techniques," Progress In Electromagnetics Research, Vol. 42, 131-142, 2003.
doi:10.2528/PIER03010602

3. Sokoll, T. and A. F. Jacob, "In-situ moisture detection system with a vector network analyser," Meas. Sci. Tech., Vol. 18, No. 4, 1088-1093, 2007.
doi:10.1088/0957-0233/18/4/017

4. Hasar, U. C., "Permittivity determination of fresh cement-based materials by an open-ended waveguide probe using amplitude-only measurements," Progress In Electromagnetics Research, Vol. 97, 27-43, 2009.
doi:10.2528/PIER09071409

5. Hasar, U. C. and O. Simsek, "An accurate complex permittivity method for thin dielectric materials," Progress In Electromagnetics Research, Vol. 91, 123-138, 2009.
doi:10.2528/PIER09011702

6. Lee, K. Y., Z. Abbas, Y. K. Yeow, M. D. Nur Sharizan, C. E. Meng, "In situ measurements of complex permittivity and moisture content in oil palm fruit," The European Physical Journal --- Applied Physics,, Vol. 49, No. 3, 2010.

7. Chen, Q., K.-M. Huang, X. Yang, M. Luo, and H. Zhu, "An artificial nerve network realization in the measurement of material permittivity," Progress In Electromagnetics Research, Vol. 116, 347-361, 2011.

8. Gajda, G. and S. S. Stuchly, "An equivalent circuit of an open-ended coaxial line," IEEE Trans. Instrum. Meas., Vol. 32, No. 4, 506-508, 1983.
doi:10.1109/TIM.1983.4315125

9. Ghannouchi, F. M., R. G. Bosisio, Y. Demers, and R. Guay, "Computer aided measurement of dielectric properties of saline solutions using a six-port reflecometer," IEEE Trans. Instrum. Meas., Vol. 38, No. 2, 505-508, 1989.
doi:10.1109/19.192335

10. Kaatze, U., "Reference liquids for the calibration of dielectric sensors and measurement instrumentals," Meas. Sci. Tech., Vol. 18, No. 4, 967-976, 2007.
doi:10.1088/0957-0233/18/4/002

11. Misra, D., M. Chabbra, B. R. Epstein, M. Mirotznik, and K. R. Foster, "Noninvasive electrical characterization of materials at microwave frequencies using an open-ended coaxial line: Test of an improved calibration technique," IEEE Trans. Microwave Theory and Techniques, Vol. 38, No. 1, 8-14, Jan. 1990.
doi:10.1109/22.44150