A Compact Size 5G Hairpin Bandpass Filter with Multilayer Coupled Line
The multilayer structure is a promising technique used to minimize the size of planar microstrip filters. In the flexible design and incorporation of other microwave components, multilayer band-pass filter results in better and enhanced dimensions. This paper introduces a microstrip fifth-generation...
Gespeichert in:
Hauptverfasser: | , , , , , , , |
---|---|
Format: | Artikel |
Sprache: | eng |
Online-Zugang: | Volltext bestellen |
Tags: |
Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
|
Zusammenfassung: | The multilayer structure is a promising technique used to minimize the size
of planar microstrip filters. In the flexible design and incorporation of other
microwave components, multilayer band-pass filter results in better and
enhanced dimensions. This paper introduces a microstrip fifth-generation (5G)
low-frequency band of 2.52-2.65 GHz using a parallel-coupled line (PCL)
Bandpass filter and multilayer (ML) hairpin bandpass filter. The targeted
four-pole resonator has a center frequency of 2.58 GHz with a bandwidth of 130
MHz. The filters are designed with a 0.1 dB passband ripple with a Chebyshev
response. The hairpin-line offers compact filter design structures.
Theoretically, they can be obtained by bending half-wavelength resonator
resonators with parallel couplings into a "U" shape. The proposed configuration
of the parallel-coupled line resonator is used to design the ML band-pass
filter. The FR4 substrate with a dielectric constant ({\epsilon}r) of 4.3 and
1.6 mm thickness was used. A comparative analysis between the simulated
insertion loss and the reflection coefficient of substrates RO3003 and FR4 was
performed to validate the efficiency of the proposed filter design. Simulation
of PCL filter is accomplished using computer simulation technology (CST) and an
advanced design system (ADS) software. The PCL Bandpass filter was
experimentally validated and a total tally between simulation results and
measured results were achieved demonstrating a well-measured reflection
coefficient. The simulated results obtained by the hairpin ML bandpass filter
show that the circuit performs well in terms of Scattering(S) parameters and
the filter size is significantly reduced. |
---|---|
DOI: | 10.48550/arxiv.2110.04118 |