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Rashmi Ravi

Publications and source records attributed to Rashmi Ravi.

2 recordsLinked to original sources

Compact Microstrip Triplexer Using Square Open-Loop Resonators with High Isolation for 5G Sub-6 GHz Applications

The rapid proliferation of multi-standard 5G New Radio sub-6 GHz systems have intensified the demand for compact, high-isolation multiplexing components capable of simultaneously routing multiple frequency channels through a single shared antenna port without cross-band interference. This paper presents the design and full-wave electromagnetic simulation of a compact microstrip triplexer operating at 2.2, 2.6, and 3.0 GHz for 5G sub-6 GHz applications. The proposed triplexer employs square open-loop resonators arranged as three independent three-pole Chebyshev bandpass filter channels, yielding nine resonator poles in total. Each channel is synthesised from the standard normalised Chebyshev lowpass prototype. The three channels are integrated at a common input port via a T-junction, with connecting transmission line stubs dimensioned to enforce high inter-channel isolation. Full-wave EM simulation results demonstrate return losses of 21.1 dB, 23.1 dB, and 22.8 dB; insertion losses of 1.08 dB, 1.01 dB, and 0.98 dB; and inter-channel isolations of 45.7 dB, 45.2 dB, and 45.7 dB, respectively. The achieved inter-channel isolation exceeding 45 dB represents a significant improvement over the majority of recently reported microstrip triplexer designs.

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A Triple-Band Bandpass Filter Using Square Open-Loop Resonators

The rapid advancement of multi-band wireless communication systems has driven demand for compact, high-performance multi-band bandpass filters (BPFs) capable of isolating specific frequency bands within a wider spectrum. This paper reviews the current state-of-the-art in multi-band filter design and implementation techniques and presents the design, simulation, and characterisation of a prototype triple-band bandpass filter to validate one of the investigated techniques. A triple-band BPF operating at 2.1 GHz, 2.2 GHz, and 2.3 GHz is designed using Keysight ADS software and implemented on Rogers RT/Duroid 6010LM substrate (dielectric constant = 10.7, loss tangent = 0.0023, thickness = 1.27 mm). The design employs nine square open-loop resonators three per passband with a characteristic impedance of 50 {\Omega} and a fractional bandwidth of 6%. Simulation results demonstrate insertion losses of 0.674 dB, 0.976 dB, and 1.314 dB, and return losses of 16.785 dB, 33.609 dB, and 17.162 dB across the three passbands respectively. The 2.2 GHz centre frequency is achieved with high precision, confirming the effectiveness of the square open-loop resonator transformation technique for compact multi-band filter design in modern wireless communication systems.

eess.SP