Performance Evaluation of Doppler Effect in HST at mmWave in 100 GHz Sub-Band with presence of Distortion and AWGN

Authors

  • Maha Fakhri Abbbas Department of Electrical Engineering, University of Wasit, Iraq
  • Basim K. J. Al-shammari Department of Electrical Engineering, University of Wasit, Iraq
  • Ahmed Magdy Electrical Engineering Department, Faculty of Engineering, Suez Canal University, Egypt

DOI:

https://doi.org/10.31185/wjes.Vol13.Iss2.619

Keywords:

Doppler shifts;Gaussian white noise(AWGN);High-speed raiway,

Abstract

Managing Doppler effects can be considered a critical technical challenge to ensure stable and efficient communication over millimeter Waves (mm Wave)in 5G networks, especially in high-mobility environments.the combined effects of Doppler shift and AWGN highlight the need for robust receiver designs that challenges  simultaneously .this paper provides system model was tested under various scenarios,where both Doppler shift and distortion in the presence of AWGN .Different levels of SNR and Doppler shifts were simulated to observe their joint impact on system performance .The combined presence of Doppler shift and distortion are resulted in a more significant increase of BER rather  than each factor could considered individually.The results are demonstrated  that at high speed (large Doppler shifts)and low the challenges of maintaining reliable communication in such environments.

Author Biographies

  • Maha Fakhri Abbbas, Department of Electrical Engineering, University of Wasit, Iraq
  • Basim K. J. Al-shammari, Department of Electrical Engineering, University of Wasit, Iraq

    College of Engineering -Department of Electrical Engineering -University  Wasit

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Published

2025-06-01

Issue

Section

Electrical Engineering

How to Cite

Maha Fakhri Abbbas, Basim K. J. Al-shammari, & Ahmed Magdy. (2025). Performance Evaluation of Doppler Effect in HST at mmWave in 100 GHz Sub-Band with presence of Distortion and AWGN. Wasit Journal of Engineering Sciences, 13(2), 1-13. https://doi.org/10.31185/wjes.Vol13.Iss2.619