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Atmospheric boundary layer height from ground-based remote sensing: a review of capabilities and limitations

  • Simone Kotthaus
  • , Juan Antonio Bravo-Aranda
  • , Martine Collaud Coen
  • , Juan Luis Guerrero-Rascado
  • , Maria João Costa
  • , Domenico Cimini
  • , Ewan J. O'Connor
  • , Maxime Hervo
  • , Lucas Alados-Arboledas
  • , María Jiménez-Portaz
  • , Lucia Mona
  • , Dominique Ruffieux
  • , Anthony Illingworth
  • , Martial Haeffelin
  • University of Granada
  • Andalusian Institute for Earth System Research (IISTA-CEAMA)
  • MeteoSwiss
  • Universidade de Évora
  • University of Évora
  • Ev-K2-CNR Committee
  • Università Dell'Aquila
  • Finnish Meteorological Institute
  • University of Reading

Research output: Contribution to journalReview articlepeer-review

Abstract

The atmospheric boundary layer (ABL) defines the volume of air adjacent to the Earth's surface for the dilution of heat, moisture, and trace substances. Quantitative knowledge on the temporal and spatial variations in the heights of the ABL and its sub-layers is still scarce, despite their importance for a series of applications (including, for example, air quality, numerical weather prediction, greenhouse gas assessment, and renewable energy production). Thanks to recent advances in ground-based remote-sensing measurement technology and algorithm development, continuous profiling of the entire ABL vertical extent at high temporal and vertical resolution is increasingly possible. Dense measurement networks of autonomous ground-based remote-sensing instruments, such as microwave radiometers, radar wind profilers, Doppler wind lidars or automatic lidars and ceilometers are hence emerging across Europe and other parts of the world. This review summarises the capabilities and limitations of various instrument types for ABL monitoring and provides an overview on the vast number of retrieval methods developed for the detection of ABL sub-layer heights from different atmospheric quantities (temperature, humidity, wind, turbulence, aerosol). It is outlined how the diurnal evolution of the ABL can be monitored effectively with a combination of methods, pointing out where instrumental or methodological synergy are considered particularly promising. The review highlights the fact that harmonised data acquisition across carefully designed sensor networks as well as tailored data processing are key to obtaining high-quality products that are again essential to capture the spatial and temporal complexity of the lowest part of the atmosphere in which we live and breathe.

Original languageEnglish
Pages (from-to)433-479
Number of pages47
JournalAtmospheric Measurement Techniques
Volume16
Issue number2
DOIs
Publication statusPublished - 26 Jan 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

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