Alam, Jahangir; Khaliel, Maher; El-Awamry, Ahmed; Zheng, Feng; Solbach, Klaus; Kaiser, Thomas:
A Mathematical Framework, Simulation, and Measurement of Harmonic Identification Systems
In: IEEE Access, Vol. 11 (2023), pp. 71811 - 71822
2023article/chapter in journalOA Gold
Electrical Engineering and Information TechnologyFaculty of Engineering » Engineering and Information Technology » Digital Signal ProcessingFaculty of Engineering » Engineering and Information Technology » Hochfrequenztechnik
Related: 1 publication(s)
Title in English:
A Mathematical Framework, Simulation, and Measurement of Harmonic Identification Systems
Author:
Alam, Jahangir
Other
corresponding author
;
Khaliel, Maher
;
El-Awamry, Ahmed
;
Zheng, FengUDE
LSF ID
53444
ORCID
0000-0002-9031-5043ORCID iD
Other
connected with university
;
Solbach, KlausUDE
GND
138146225
LSF ID
1301
ORCID
0000-0001-7904-3983ORCID iD
Other
connected with university
;
Kaiser, ThomasUDE
GND
115440674
LSF ID
1858
ORCID
0000-0001-9679-5968ORCID iD
Other
connected with university
Year of publication:
2023
Open Access?:
OA Gold
Scopus ID
Note:
CA Alam
Language of text:
English
Keyword, Topic:
Harmonic analysis ; Harmonic transponder ; Mathematical Framework ; Mathematical models ; Measurement ; Non-Linear RFID ; Power harmonic filters ; Radar ; Receiving antennas ; Simulation ; Transfer functions ; Transponders

Abstract in English:

The main focus of this research paper is to develop a realistic mathematical framework to accurately characterize the performance of the harmonic identification system. This mathematical framework incorporates the essential factors that affect the harmonic identification system such as, the radiation pattern and polarization of the reader and transponder antennas, the angle of incidence and reflection, conversion efficiency of the non-linear element, besides the environmental effects which are multipath and clutter reflections. To validate the proposed analytical model, simulations and measurements are conducted using a state-of-the-art transponder equipped with a Schottky diode that exhibits non-linear characteristics in output power. The performance of the transponder is evaluated in both scenarios, with and without environmental reflections, where a significant drop in the backscattered signal is observed due to the multipath reflections. Accordingly, a Ray-tracing model is utilized to investigate the environmental reflections, and thus the system performance could be evaluated analytically. The close agreement between the results obtained from developed analytical framework and Ray-tracing simulations together with the corresponding measurements demonstrate the effectiveness of the proposed analytical framework in accurately predicting the performance of the harmonic identification systems.