Tuntrakool, Sunti
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Tuntrakool, Sunti
Alternative Name
Tuntrakool, S.
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Email
sunti.tu@kmitl.ac.th
6 results
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Item type:Publication, UWB MIMO antenna design and analysis at millimetre wave frequencies(2025-01-01) ;Mohamad Nazer, Mohamad Aiman Hadi ;Rahim, Mohamad Kamal A. ;Murad, Noor Asniza ;Samsuri, Noor AsmawatiPramudita, Aloysius AdyaThe Ultra-Wideband (UWB) antenna is widely used in radar systems due to its wide bandwidth and high diversity gain. However, UWB systems also experience challenges related to multipath fading. To address these issues, multiple-input-multiple-output (MIMO) technology has been introduced. To improve the performance of MIMO systems, it is essential for the elements within the MIMO antenna array to exhibit low correlation and high total efficiency. In this paper a design and simulation of a printed UWB antenna with additional MIMO implementation. The simulation results from three different MIMO configurations were systematically compared to assess their performance based on three parameters of MIMO: the Envelope Correlation Coefficient (ECC), Diversity Gain (DG), and Mean Effective Gain (MEG). In this proposal of the project, the evaluation of results is primarily cantered around the design of UWB antenna and analysis of the MIMO configurations. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Broadband Reflective Metasurface at X-band Frequency Using Snowflakes Fractal Ring Design(2025-01-01) ;Yaziz, Nur Syahirah Mohd ;Rahim, Mohamad Kamal A. ;Samsuri, Noor Asmawati ;Zubir, FaridA broadband reflective metasurface has been designed to integrate inward and outward fractal Koch rings operating at X-band frequencies. The integration between the inward and outward fractal Koch ring creates the snowflake fractal shape that operates at a center frequency of 10 GHz. Based on the simulated results, the reflection values are 0.9 with the reflection phase of 1800 which is between 900 to -900. Overall, all resonance frequencies exhibit more than 90% reflected power, with bandwidth of 1.90 GHz that cover from 8.70 GHz to 10.60 GHz. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Dual-Band Reflective Metasurfaces for 5G mmWave Applications: Design, Analysis, and Waveguide Validations(2026-01-01) ;Mohammed, Sunusi Garba ;Samsuri, Noor Asmawati Binti ;Rahim, Mohamad Kamal B.A. ;Ripin, Nabilah BintiTaufiqqurrachmanThis paper presents a dual-band reflective metasurface unit cell for millimeter-wave RIS applications operating at 26 GHz and 28 GHz, covering the 5G n258 and n257 bands. The proposed design features a hybrid resonator structure to achieve a consistent phase trend and strong reflection performance across the 5G mmWave frequency band. To ensure stable dual-band performance of the unit cell, parametric optimization is conducted. The unit cell is investigated through Floquet simulations and WR-34 rectangular -to-square waveguide-transition-based full-wave simulations, followed by experimental validation using a fabricated WR-34 rectangular-to-square waveguide transition. The simulated resonances at 26 GHz and 28 GHz are experimentally observed at 26.7 GHz and 28.9 GHz, respectively, indicating minor frequency deviations. Measured results demonstrate reflection magnitudes of -1.80 dB at 26.7 GHz and -0.80 dB at 28.9 GHz, with corresponding phase responses of - 68° and -13°, and bandwidths of 5.12% and 6.07%, respectively. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Geometry-Driven Performance of Unit Cells in Multiband Reflective Metasurfaces: A Comparative Study(2025-01-01) ;Taufiqqurrachman ;Rahim, Mohamad Kamal B.A. ;Samsuri, Noor Asmawati Binti ;Wijayanto, Yusuf NurYaziz, Nur Syahirah MohdA multiband reflective metasurface can be designed using a multi-ring resonator, where the resonator can take various shapes such as circular, square, hexagonal, triangular, and others. This paper presents a comparative study of unit-cell multiband reflective metasurfaces based on their geometric structure, focusing on reflection magnitude, reflection phase, and bandwidth performance of hexagonal and triangular shapes. Both proposed designs are designed and simulated at X-band frequencies using an F4BMX220 substrate with a thickness of 1.5 mm. Simulation results show that the hexagonal shape offers better reflection performance and a wider bandwidth compared to the triangular shape. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Multiband Reflective Metasurface at X-Band Frequency Using Multi-Square Ring Resonators (SRRs)(2025-01-01) ;Taufiqqurrachman ;Rahim, Mohamad Kamal B.A. ;Asmawati Binti Samsuri, Noor ;Wijayanto, Yusuf NurSyahirah Mohd Yaziz, NurA multiband reflective metasurface has been designed using a multi-Square Ring Resonator (SRR) operating at X-band frequencies. Each SRR is designed to resonate at 8, 10, and 12 GHz, respectively. Based on the simulated results, the reflection values are -0.4 dB at 8 GHz, -1.86 dB at 10 GHz, and -1.99 dB at 12 GHz, while the reflection phases are -1.06° at 8 GHz, -9.8° at 10 GHz, and -1.98° at 12 GHz. Overall, all resonance frequencies exhibit more than 60% reflected power, with bandwidths of 0.67 GHz at 8 GHz and 0.2 GHz at 10 and 12 GHz. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Comparison between Snowflake Fractal and Koch Fractal for Intelligent Reflecting Surface(2025-01-01) ;Yaziz, Nur Syahirah Mohd ;Rahim, Mohamad Kamal A. ;Samsuri, Noor Asmawati ;Zubir, FaridThis paper compares two fractal metasurface designs for Intelligent Reflecting Surfaces at X-band which is with a snowflake-shaped fractal ring and a fractal Koch metasurface. The snowflake ring design with a 10GHz center frequency achieves very high reflectance (~90%) at resonance and a bandwidth of about 1.90 GHz. The Koch-fractal design response with a bandwidth of 2.10 GHz at a center frequency of 10GHz. The method for both fractal metasurfaces and a comparable on their reflection coefficients, phase behaviour, bandwidth and current distributions are discussed in section II and section III.
