Causes and Effects of Sand and Dust Storms: What Has Past Research Taught Us? A Survey
Abstract
:1. Introduction
2. Causes, Prerequisites, and Origins of Sand and Dust Storms
- (large) wind-exposed areas (e.g., coasts, lakes, treeless areas, open pit mines);
- drought/dryness (very low soil moisture) of the upper soil or sediment layer;
- low degree of coverage by vegetation;
- low degree of coverage by biological crusts;
- loose surface-near soil structure of agriculturally used land by tillage or trampling.
- Weathering.
- Splash effects of the grains.
- Saltation (Lancaster et al. 2013; Mahmoodi et al. 2016). The more loose the particles, the higher their erodibility for wind erosion and the higher the SDS potential.
3. Effects of Sand and Dust Storms
3.1. The Atmosphere-Ocean Interaction of SDS Effects
3.2. Effects of Airborne Particle Input on Land
- overlaying or sanding up of topsoils, including traffic lanes (Figure 5);
- formation of dune hills as a result of long-term sedimentation;
- deformation of vegetation, especially of their leaves and stomata, as a result of abrasion processes;
- filling up of river and channel beds due to additional sediment input;
- contamination of open drinking water pipes;
- impairment of technical infrastructure (e.g., turbines) due to the high fine sediment load in the air;
- blocking of transportation networks (roads, railroads) and thereto related higher maintenance costs.
3.3. Effects of Sand and Dust Storms on Human Health
3.4. Economic Effects of Sand and Dust Storms
4. Consequences for SDS Mitigation and Hazard Reduction
4.1. SDS Observation by Remote Sensing and LIDAR (Summary)
4.2. On-Site Observation (Summary)
4.3. SDS Deflation Mitigation Measures (Summary)
- Reduction of livestock density on pastureland for preserving the vegetation cover.
- Optimization of crop rotation, for example by intercropping, for the reduction of barren surfaces.
- Reduction or forgoing of tillage for reducing soil disturbances.
- Establishment of stripe cropping and multistrata systems against the dominant wind direction for increased surface roughness.
- Increase of the input of organic residues for surface protection and additional water storage.
- Planting of hedgerows between agricultural plots for wind-breaking and moisture protection.
5. Conclusions
- Preparing a global response to SDS, including a strategy and action plan, which could result in development of a United Nations system-wide approach to addressing SDS.
- Identifying entry points to support countries and regions affected by SDS in the implementation of cross-sectoral and transboundary risk reduction and response measures for SDS.
- Preparing a platform for engaging with partners and enhancing dialogue and collaboration among affected countries and the United Nations system agencies at global, regional, and subregional levels.
- Providing a common platform for the exchange of knowledge, information, and technical expertise and resources for strengthening preparedness measures and strategies for risk reduction, consolidated policy, innovative solutions, advocacy and capacity-building efforts, and fund-raising initiatives.
- Identifying, mobilizing, and facilitating access to financial resources for joint responses to SDS, including through new and innovative resources and mechanisms (UNCCD 2021).
- -
- Early warning systems
- -
- Preparedness and resilience
- -
- Anthropogenic source mitigation (UNCCD 2021).
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Study Area | Rayon Kazalinsk | Rayon Zhanakorgan | ||
---|---|---|---|---|
Quantity of tested children | 2030 | 100% | 1979 | 100% |
Quantity of diseases, including | 229 | 11.3% | 239 | 11.9% |
Acute pneumonia | 145 | 63.0% | 153 | 65.1% |
Chronic bronchitis | 63 | 27.5% | 68 | 29.4% |
Chronic pneumonia | 21 | 9.5% | 13 | 5.5% |
1980 | 1981 | 1982 | 1983 | 1984 | 1985 | 1986 | 1987 | 1988 | 1989 | 1990 |
---|---|---|---|---|---|---|---|---|---|---|
4.5 | 5.8 | 7.1 | 7.2 | 7.1 | 7.4 | 8.7 | 9.5 | 7.7 | 9.9 | 7.8 |
Diseased on | Number of Tested People *) | % of Sick People | % of Tested People |
---|---|---|---|
chronic throat-tonsil-inflammation | 185 | 31.5 | 11.4 |
chronic angina-inflammation | 92 | 15.6 | 5.7 |
chronic tonsil-inflammation | 77 | 13.1 | 4.8 |
chronic ear-inflammation | 75 | 12.7 | 4.6 |
chronic paranasal sinus disease | 47 | 8.0 | 2.9 |
Other acute ENT disease | 112 | 19.1 | 6.9 |
ENTdiseases altogether | 588 | 100 | 36.4 |
Children at the Age of | 6–10 Years | 11–15 Years | 16–18 Years | Sum | ||||
---|---|---|---|---|---|---|---|---|
number of tested children | 167 | 34.3% | 168 | 34.5% | 152 | 31.2% | 487 | 100% |
sick children among them: | ||||||||
chronic nose-throat-inflammation | 57 | 31.4% | 34 | 20.2% | 32 | 21.0% | 123 | 25.2% |
chronic ear-inflammation | 26 | 15.5% | 30 | 17.9% | 22 | 14.5% | 78 | 16.0% |
chronic tonsil-inflammation | 31 | 18.6% | 11 | 6.6% | 20 | 13.2% | 62 | 12.6% |
other ENT-inflammation | 11 | 6.6% | 32 | 19.0% | 17 | 11.7% | 60 | 12.5% |
Total sick children | 125 | 74.8% | 107 | 63.7% | 91 | 59.9% | 323 | 66.3% |
Immediate SDS Effects |
Immediate human health problems (e.g., respiratory problems) and mortality; |
Annual and perennial crop damage; |
Livestock mortality; |
Infrastructural damage (e.g., to buildings, electricity and telecommunication structures, power facilities, solar farms, machinery, greenhouses); |
Costs for removing sand and dust from infrastructure (e.g., roads, airports, dams, irrigation canals, flood control structures, ditches, power facilities); |
Interruption of transport (air, road, rail) and communications (radio); air and road traffic accidents; |
Long-Term SDS Effects |
Cumulative human health problems (e.g., bronchitis, cardiovascular, and other chronic disorders); |
Soil erosion and reduced soil quality and fertility; |
Soil pollution through deposition of toxic biological substances (fungi, bacteria), heavy metals, salts, and microplastics; |
Disruption of the global climate, CO2, and nutrient cycles through various feedbacks involving global warming, glacier melting, cloud dynamics, precipitation changes, vegetation cover, sea level, and ocean productivity. |
Area | Reference | Year | Costs (USD) per Cubic Meter |
---|---|---|---|
Kuwait | (Al-Dousari et al. 2019) | 1993 | 1.8 |
Kuwait | (Al-Dousari et al. 2019) | 2013 | 5.33 |
Hafouf, Saudi Arabia | (Alghamdi and Al Kahdani 2005) | 2004 | 0.5 |
Sistan, Iran | (Pahlavanravi et al. 2012) | 2000 | 2.0 |
Sistan, Iran | (Pahlavanravi et al. 2012) | 2004 | 0.5 |
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Opp, C.; Groll, M.; Abbasi, H.; Foroushani, M.A. Causes and Effects of Sand and Dust Storms: What Has Past Research Taught Us? A Survey. J. Risk Financial Manag. 2021, 14, 326. https://doi.org/10.3390/jrfm14070326
Opp C, Groll M, Abbasi H, Foroushani MA. Causes and Effects of Sand and Dust Storms: What Has Past Research Taught Us? A Survey. Journal of Risk and Financial Management. 2021; 14(7):326. https://doi.org/10.3390/jrfm14070326
Chicago/Turabian StyleOpp, Christian, Michael Groll, Hamidreza Abbasi, and Mansour Ahmadi Foroushani. 2021. "Causes and Effects of Sand and Dust Storms: What Has Past Research Taught Us? A Survey" Journal of Risk and Financial Management 14, no. 7: 326. https://doi.org/10.3390/jrfm14070326
APA StyleOpp, C., Groll, M., Abbasi, H., & Foroushani, M. A. (2021). Causes and Effects of Sand and Dust Storms: What Has Past Research Taught Us? A Survey. Journal of Risk and Financial Management, 14(7), 326. https://doi.org/10.3390/jrfm14070326