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Localizing gaseous fugitive emission sources by combining real-time optical remote sensing and wind data
1Department of Environmental Health, University of Washington, Seattle, USA.
Journal of the Air & Waste Management Association (1995)
|December 10, 1999
Summary
This study introduces a novel method for pinpointing ground-level air pollution sources. By analyzing gas plume data, it accurately reconstructs fugitive emission locations, aiding environmental monitoring.
Area of Science:
- Environmental Science
- Atmospheric Chemistry
- Remote Sensing
Background:
- Accurate localization of ground-level fugitive gaseous air pollution sources is crucial for effective environmental management and regulatory compliance.
- Traditional methods for source identification can be labor-intensive, costly, or lack the precision required for diffuse or intermittent emissions.
Purpose of the Study:
- To develop and validate a new approach for localizing point emissions from ground-level fugitive gaseous air pollution sources.
- To utilize path-integrated optical remote sensing data combined with advanced mathematical techniques for precise source reconstruction.
Main Methods:
- Employed smooth basis functions minimization (SBFM) to estimate the crosswind plume's ground-level peak location.
- Integrated path-integrated optical remote sensing concentration data acquired along alternating crosswind beam path lengths.
- Combined peak location estimates with real-time wind direction data for fugitive source reconstruction.
Main Results:
- A synthetic data study demonstrated the effectiveness of the proposed SBFM peak location reconstruction method.
- Field validation using open-path Fourier transform infrared (FTIR) data from a controlled point source showed reasonable source location estimates.
- The reconstructed source location in the field study was found to be within several meters of the actual source location.
Conclusions:
- The developed methodology provides a reliable and accurate approach for localizing ground-level fugitive gaseous pollution sources.
- The combination of SBFM and optical remote sensing offers a promising tool for real-time environmental monitoring and pollution source identification.
- This technique has the potential to significantly improve the efficiency and accuracy of air quality management strategies.