Chiral metamaterial-based sensor applications to determine quality of car lubrication oil

Motor oils have to be changed periodically in a period of 10.000–20.000 km according to the motor types. A chiral metamaterial sensor that operates in X band is developed to determine the quality of motor oils, numerically analyzed and experimentally tested in this study. The proposed design has squ...

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Veröffentlicht in:Transactions of the Institute of Measurement and Control 2021-04, Vol.43 (7), p.1640-1649
Hauptverfasser: Dalgaç, Şekip, Karadağ, Faruk, Bakır, Mehmet, Akgöl, Oğuzhan, Ünal, Emin, Karaaslan, Muharrem
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container_issue 7
container_start_page 1640
container_title Transactions of the Institute of Measurement and Control
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creator Dalgaç, Şekip
Karadağ, Faruk
Bakır, Mehmet
Akgöl, Oğuzhan
Ünal, Emin
Karaaslan, Muharrem
description Motor oils have to be changed periodically in a period of 10.000–20.000 km according to the motor types. A chiral metamaterial sensor that operates in X band is developed to determine the quality of motor oils, numerically analyzed and experimentally tested in this study. The proposed design has square and circular shaped resonators that are printed on IS680 substrate. Reflection coefficient parameters of S11 and S22 are employed for the verification of sensor. The physical principle behind the structure in this study is based on the degradation of motor oil, which changes dielectric constant and causes resonance frequency shifts. According to S11 reflection coefficient data, 40 MHz(0 km–10000 km) and 60 MHz(0 km–5000 km) resonant frequency shifts are observed between clear and dirty motor oils samples. These shifts have the values of 30 MHz(0 km–10000 km) and 120 MHz(0 km–5000 km), when we look at S22. The simulated and experimental study results are complying with each other. The novel side of this study is to have high sensitivity and higher quality factor when it is compared with similar study results. Furthermore, no such studies have been conducted so far in the literature.
doi_str_mv 10.1177/0142331220976104
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subjects Metamaterials
Q factors
Reflectance
Resonant frequencies
Sensors
Substrates
Superhigh frequencies
title Chiral metamaterial-based sensor applications to determine quality of car lubrication oil
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