Title :
Optimization design of UWB passive bandpass filter´s standing wave ratio
Author :
Li, Peng ; Ma, Hongmei
Author_Institution :
Dept. of Electron. Inf., North China Inst. of Sci. & Technol., Beijing, China
Abstract :
The filter´s voltage standing-wave ratio (VSWR) cannot be designed by network synthesis method, so the optimal design method of a filter´s VSWR with termination capacitance is proposed in this paper. Based on the circuit designed by network synthesis method, parallel inductance was transformed to series inductance and parallel capacitances in the input and output ports of the circuit. Then optimize the circuit by unconstrained optimization method so that the filter´s amplitude-frequency can be arithmetic symmetrical and VSWR is close to 1. The simulation result indicates that the optimal method can make not only the filter amplitude-frequency arithmetic symmetrical, but also the max value of VSWR just 1.0399, the max value of group delay ripple is 2.1374 ns and the max passband ripple is 0.001626 dB, furthermore relative bandwidth exceeds 83%.
Keywords :
band-pass filters; circuit optimisation; network analysis; passive filters; ultra wideband technology; UWB passive bandpass filter; circuit design; circuit input port; circuit output port; circuit simulation; group delay ripple; network synthesis method; optimal method; optimization design; parallel capacitances; parallel inductance; passband ripple; relative bandwidth; series inductance; symmetrical filter amplitude-frequency arithmetics; termination capacitance; unconstrained optimization method; voltage standing-wave ratio; Arithmetic; Band pass filters; Capacitance; Circuits; Design optimization; Inductance; Network synthesis; Optimization methods; Passive filters; Voltage; UWB; VSWR; filter; optimization design;
Conference_Titel :
Electronic Measurement & Instruments, 2009. ICEMI '09. 9th International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-3863-1
Electronic_ISBN :
978-1-4244-3864-8
DOI :
10.1109/ICEMI.2009.5274080