Development of Compact Bandpass Filter Using Symmetrical Metamaterial Structures for GPS, ISM, Wi-MAX, and WLAN Applications
Abstract
:1. Introduction
2. Proposed Bandpass Filter Design Approach
2.1. Metamaterial Design
2.2. Metamaterial Analysis along with Proposed Bandpass Filter
- Design specification was considered for the filter design as per the desired applications.
- Simulation was performed using a commercially available electromagnetic tool (ANSYS ELECTRONIC DESKTOP, Version 19.2).
- The simulation was performed for the metamaterial unit cell, where Floquet mode analysis was performed in order to obtain metamaterial characteristics (i.e.,) permittivity, permeability, and the refractive index.
- The analyzed metamaterial was integrated with a microstrip line filter.
- The proposed bandpass filter with the integration of metamaterial was simulated.
- Once the desired frequency was as per the specification, we prototyped the filter and measured the filter characteristics using VNA.
2.3. Permittivity of the Metamaterial
- µeff is the permittivity of the metamaterial.
- V1 = S21 + S11.
- V2 = S21 − S11.
2.4. Permeability of the Metamaterial
2.5. Metamaterial Refractive Index
2.6. Metamaterial Bandpass Filter Design Approach
2.7. Estimation of Lumped Values of the Proposed Bandpass Filter
2.8. Proposed-Bandpass-Filter Equivalent-Circuit Extraction Process
- The equivalent circuit was extracted using commercially available software, i.e., (ANSYS ELECTRONIC DESTOP).
- Initially, we had to open the project in ANSYSY ELECTRONIC DESKTOP.
- Then, in the project, i.e., (Proposed Work) open insert the filter design, we had the analog approximation technique, in which we had four categories of passbands, topology, approximation, prototype, and technology.
- Bandpass must be included in the passband, idea lumped must be included in the topology, and GEN CHEBYSHEV TYPE-1 approximation approaches with a ripple factor of 0.05 dB must be included in the approximation technique.
- Finally, we had to insert the order of the filter, the lower frequency, and higher frequency; there, we obtained the final equivalent circuit extraction.
3. Discussion on Results of the Proposed BPF
3.1. Stating the Parametric Analysis by Changing the Physical Parameters
3.2. Return Loss
3.3. Insertion Loss
3.4. Group Delay
3.5. Designed BPF Phase Response
3.6. Surface Current Distribution
3.7. E-Field Distribution
3.8. H-Field Distribution
3.9. Designed BPF Prototype Model
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Reference | Resonating Frequency (GHz) | S11 (dB) | S12 (dB) | BW (GHz) | GD (ns) | Applications |
---|---|---|---|---|---|---|
[33] | 2.4/5.8 and 2.5/3.4 | <−10 | <0.1 | 0.5 | NA | WLAN/Wi-MAX |
[34] | 2.5/5.8 | <−10 | <1.24 | 0.8 | 1.32, 1.85 | Wi-Fi |
[35] | 3.5/5.5 | <−25 | <0.1 | 0.5, 0.15 | 1.68, 1.89 | Wireless communication application |
[36] | 2.4/5.2 | <−25 | 1.43, 1.34 | Narrow bandwidth | 2.45/2.14 | Wi-Fi, WLAN |
[37] | 2.4/5.2 | <−25 | 0.3, 0.7 | Narrow bandwidth | 1.47/1.95 | Wi-Fi, WLAN |
[38] | 1.8/4.1 | <−16 | 1/1.2 | 1.8/0.5 | 0.4, 0.6 | GSM, Fixed satellite application |
[39] | 4.59 | <−12 | 0.2 | 4.77 | 0.5 | WLAN, Wi-Fi, Bluetooth |
Proposed Filter | 1.9/3.3/5.2 | <−15 | <0.1 | 5 | 0.5/2.8/1 | GPS, Wi-Fi, WLAN, ISM, Wi-MAX |
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Vineetha, K.V.; Madhav, B.T.P.; Kumar, M.S.; Das, S.; Islam, T.; Alathbah, M. Development of Compact Bandpass Filter Using Symmetrical Metamaterial Structures for GPS, ISM, Wi-MAX, and WLAN Applications. Symmetry 2023, 15, 2058. https://doi.org/10.3390/sym15112058
Vineetha KV, Madhav BTP, Kumar MS, Das S, Islam T, Alathbah M. Development of Compact Bandpass Filter Using Symmetrical Metamaterial Structures for GPS, ISM, Wi-MAX, and WLAN Applications. Symmetry. 2023; 15(11):2058. https://doi.org/10.3390/sym15112058
Chicago/Turabian StyleVineetha, Kottapadikal Vinodan, Boddapati Taraka Phani Madhav, Munuswamy Siva Kumar, Sudipta Das, Tanvir Islam, and Moath Alathbah. 2023. "Development of Compact Bandpass Filter Using Symmetrical Metamaterial Structures for GPS, ISM, Wi-MAX, and WLAN Applications" Symmetry 15, no. 11: 2058. https://doi.org/10.3390/sym15112058
APA StyleVineetha, K. V., Madhav, B. T. P., Kumar, M. S., Das, S., Islam, T., & Alathbah, M. (2023). Development of Compact Bandpass Filter Using Symmetrical Metamaterial Structures for GPS, ISM, Wi-MAX, and WLAN Applications. Symmetry, 15(11), 2058. https://doi.org/10.3390/sym15112058