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Towards THz chipless high-Q cooperat...
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Jimenez-Saez, Alejandro.
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Towards THz chipless high-Q cooperative radar targets for identification, sensing, and ranging
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Towards THz chipless high-Q cooperative radar targets for identification, sensing, and ranging/ by Alejandro Jimenez-Saez.
作者:
Jimenez-Saez, Alejandro.
出版者:
Cham :Springer International Publishing : : 2022.,
面頁冊數:
xvi, 144 p. :ill. (chiefly color), digital ;24 cm.
附註:
"Doctoral thesis accepted by Technical University of Darmstadt, Darmstadt, Germany."
內容註:
Introduction -- High-Q Resonators for Chipless RFID and Sensing -- Wireless Sensing with Single Air-cladded High-Q Resonators -- Electromagnetic BandGap (EBG) high-Q Resonator Concepts -- High-RCS Wide-Angle Retroreflective Tags Towards THz 91.
Contained By:
Springer Nature eBook
標題:
Radar targets. -
電子資源:
https://doi.org/10.1007/978-3-031-04976-7
ISBN:
9783031049767
Towards THz chipless high-Q cooperative radar targets for identification, sensing, and ranging
Jimenez-Saez, Alejandro.
Towards THz chipless high-Q cooperative radar targets for identification, sensing, and ranging
[electronic resource] /by Alejandro Jimenez-Saez. - Cham :Springer International Publishing :2022. - xvi, 144 p. :ill. (chiefly color), digital ;24 cm. - Springer theses,2190-5061. - Springer theses..
"Doctoral thesis accepted by Technical University of Darmstadt, Darmstadt, Germany."
Introduction -- High-Q Resonators for Chipless RFID and Sensing -- Wireless Sensing with Single Air-cladded High-Q Resonators -- Electromagnetic BandGap (EBG) high-Q Resonator Concepts -- High-RCS Wide-Angle Retroreflective Tags Towards THz 91.
This work systematically investigates the use of high-quality (high-Q) resonators as coding particles of chipless cooperative radar targets to overcome clutter. Due to their high-Q, the backscattered signature can outlast clutter and permit reliable readouts in dynamic environments as well as its integration in other types of cooperative radar targets for joint identification, sensing, and ranging capabilities. This is first demonstrated with temperature and pressure sensors in the microwave frequency range, which include the characterization of a novel temperature sensor for machine tool monitoring up to 400 °C, as well as inside the machine. Afterwards, the thesis proposes and demonstrates the use of metallic as well as dielectric Electromagnetic BandGap (EBG) structures to enable the realization and to enhance the capabilities at mm-Wave and THz frequencies compared to microwave frequencies with compact monolithic multi-resonator cooperative radar targets. Furthermore, this work studies the integration of resonators as coding particles inside larger retroreflective configurations such as Luneburg lenses to achieve long-range and high accuracy for localization and, at the same time, frequency coding robust against clutter for identification. Finally, the successful readout of these cooperative radar targets is demonstrated in cluttered dynamic environments, as well as with readers based on Frequency-Modulated Continuous-Wave (FMCW) radars.
ISBN: 9783031049767
Standard No.: 10.1007/978-3-031-04976-7doiSubjects--Topical Terms:
817589
Radar targets.
LC Class. No.: TK6580
Dewey Class. No.: 621.3848
Towards THz chipless high-Q cooperative radar targets for identification, sensing, and ranging
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This work systematically investigates the use of high-quality (high-Q) resonators as coding particles of chipless cooperative radar targets to overcome clutter. Due to their high-Q, the backscattered signature can outlast clutter and permit reliable readouts in dynamic environments as well as its integration in other types of cooperative radar targets for joint identification, sensing, and ranging capabilities. This is first demonstrated with temperature and pressure sensors in the microwave frequency range, which include the characterization of a novel temperature sensor for machine tool monitoring up to 400 °C, as well as inside the machine. Afterwards, the thesis proposes and demonstrates the use of metallic as well as dielectric Electromagnetic BandGap (EBG) structures to enable the realization and to enhance the capabilities at mm-Wave and THz frequencies compared to microwave frequencies with compact monolithic multi-resonator cooperative radar targets. Furthermore, this work studies the integration of resonators as coding particles inside larger retroreflective configurations such as Luneburg lenses to achieve long-range and high accuracy for localization and, at the same time, frequency coding robust against clutter for identification. Finally, the successful readout of these cooperative radar targets is demonstrated in cluttered dynamic environments, as well as with readers based on Frequency-Modulated Continuous-Wave (FMCW) radars.
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