Characterization of Rain Attenuation in 80-200 GHz from Experimental Drop Size Distributions

Riera Salís, José Manuel and Pimienta del Valle, Domingo and Pérez Peña, Santiago and García del Pino, Pedro and Benarroch Vila, Ana and Calvo, Ana I. and Blanco Alegre, Carlos (2023). Characterization of Rain Attenuation in 80-200 GHz from Experimental Drop Size Distributions. "IEEE Transactions on Antennas and Propagation" ; p. 1. ISSN 1558-2221. https://doi.org/10.1109/TAP.2023.3259682.

Description

Title: Characterization of Rain Attenuation in 80-200 GHz from Experimental Drop Size Distributions
Author/s:
  • Riera Salís, José Manuel
  • Pimienta del Valle, Domingo
  • Pérez Peña, Santiago
  • García del Pino, Pedro
  • Benarroch Vila, Ana
  • Calvo, Ana I.
  • Blanco Alegre, Carlos
Item Type: Article
Título de Revista/Publicación: IEEE Transactions on Antennas and Propagation
Date: 2023
ISSN: 1558-2221
Subjects:
Faculty: E.T.S.I. Telecomunicación (UPM)
Department: Señales, Sistemas y Radiocomunicaciones
Creative Commons Licenses: None

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Abstract

The use of frequencies well into the EHF band (30-300 GHz) is a key element in 5G and beyond technologies. Rain attenuation is the major impairment affecting terrestrial radio links in this band. In the absence of enough experimental measurements, rain attenuation can be estimated by using physical models of radiowave scattering in rain drops combined with information about the rain Drop Size Distributions (DSD). In this work, the characterization of rain attenuation in the 80-200 GHz frequency range is carried out from a large database of twelve years of experimental DSD gathered in Madrid, Spain. Rain attenuation is estimated for each collected minute of rain using two approaches: a first one based on the assumption of raindrops as spherical and the application of the Mie theory, and a second one that uses a non-spherical raindrop model and electromagnetic simulations and is consequently more realistic. The main results show that the currently used ITU-R model generally underestimates rain specific attenuation; the influence of polarization becomes smaller and negligible as frequency approaches 200 GHz; and rain specific attenuation significantly varies due to the spread of the DSD. Moreover, a model for this variability of rain attenuation is also proposed.

Funding Projects

Type
Code
Acronym
Leader
Title
Horizon Europe
871464
ARIADNE
Unspecified
Unspecified
Government of Spain
RTI2018-098189-B-I00
Unspecified
Unspecified
Unspecified

More information

Item ID: 73233
DC Identifier: https://oa.upm.es/73233/
OAI Identifier: oai:oa.upm.es:73233
DOI: 10.1109/TAP.2023.3259682
Deposited by: Prof. José Manuel / J.M. Riera
Deposited on: 04 Apr 2023 07:22
Last Modified: 04 Apr 2023 07:22
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