Published September 2019 | Version public
Journal Article

High-altitude and long-range transport of aerosols causing regional severe haze during extreme dust storms explains why afforestation does not prevent storms

  • 1. ROR icon Zhejiang University
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon Agricultural University of Hebei
  • 4. ROR icon Shaanxi Provincial Meteorological Bureau
  • 5. ROR icon Environmental Protection Agency
  • 6. ROR icon Centre for Research and Teaching in Environmental Geoscience
  • 7. ROR icon Hebrew University of Jerusalem

Abstract

Climate change is predicted to induce more extreme events such as storms, heat waves, drought and floods. Dust storms are frequently occurring in northern China. Those storms degrade air quality by decreasing visibility and inducing cardiovascular and respiratory diseases. To control dust storms, the Chinese government has launched a large-scale afforestation program by planting trees in arid areas, but the effectiveness of this program is still uncertain because the trajectories and altitudes of dust transport are poorly known. In particular, afforestation would be effective only if dust transport occurs at low altitudes. To test this hypothesis, we analyzed the extreme dust storm from May 2 to 7, 2017, which resulted in record-breaking dust loads over northern China. For that, we used dust RGB-composite data from the Himawari-8 satellite and the cloud-aerosol lidar, moderate-resolution imaging spectroradiometer data, and surface monitoring data. The source regions of the dust storms were identified using the hybrid single-particle Lagrangian integrated trajectory model and infrared pathfinder satellite observation. Contrary to our hypothesis, results show that dust is transported at high altitude of 1.0–6.5 km over long distances from northwestern China. This finding explains why the afforestation has not been effective to prevent this storm. Results also disclose the highest particulate matter (PM) concentrations of 447.3 μg/m^3 for PM_(2.5) and 1842.0 μg/m^3 for PM_(10) during the dust storm. Those levels highly exceed Chinese ambient air quality standards of 75 μg/m^3 for PM_(2.5) and 150 μg/m^3 for PM_(10).

Additional Information

© 2019 Springer Nature Switzerland AG. Received: 14 October 2018; Accepted: 19 January 2019. First Online: 14 March 2019. This work was partially supported by the Department of Science and Technology of China (Nos. 2016YFC0202702; 2014BAC22B06) and National Natural Science Foundation of China (No. 21577126). This work was also supported by the Joint NSFC–ISF Research Program (No. 41561144004), jointly funded by the National Natural Science Foundation of China and the Israel Science Foundation. Part of this work was also supported by the "Zhejiang 1000 Talent Plan" and Research Center for Air Pollution and Health in Zhejiang University. The views expressed in this presentation are those of the author(s) and do not necessarily represent those of the US EPA.

Additional details

Identifiers

Eprint ID
93870
Resolver ID
CaltechAUTHORS:20190315-131932192

Funding

Department of Science and Technology (China)
2016YFC0202702
Department of Science and Technology (China)
2014BAC22B06
National Natural Science Foundation of China
21577126
National Natural Science Foundation of China
41561144004
Israel Science Foundation
Zhejiang 1000 Talent Plan
Zhejiang University

Dates

Created
2019-03-15
Created from EPrint's datestamp field
Updated
2021-11-16
Created from EPrint's last_modified field