Uncovering sources, distribution, and seasonal patterns of trace element deposition: the elemental puzzle of the western Himalayas
- PMID: 38764085
- DOI: 10.1007/s11356-024-33601-6
Uncovering sources, distribution, and seasonal patterns of trace element deposition: the elemental puzzle of the western Himalayas
Abstract
The transport and deposition of atmospheric pollutants in the Himalayas have a adverse impact on the climate, cryosphere, ecosystem, and monsoon patterns. Unfortunately, there is a insufficiency of data on trace element concentrations and behaviors in the high-altitude Himalayan region, leading to limited research in this area. This study presents a comprehensive and detailed comprehension of trace element deposition, its spatial distribution, seasonal variations, and anthropogenic signals in the high-altitude Kashmir region of the Western Himalayas. Our investigation involved the analysis of 10 trace elements (Al, Cr, Mn, Fe, Co, Ni, Cu, Zn, Cd, and Pb) in glacier ice, snow pits, surface snow, and rainwater collected at various sites including Kolahoi, Thajwas, Pahalgam (Greater Himalayan ranges), and Kongdori and Shopian (Pir Panjal Ranges) during 2021. The study reveals distinct ranges of concentrations for the trace elements at different sampling sites. Our analysis of trace element concentration depth profiles in snow pits reveals seasonal fluctuations during the deposition year. The highest concentrations were found in the autumn (below 20 cm) and summer (top layer), compared to the winter concentration (10-20 cm). The high enrichment factors (EFs) suggest the severity of human-induced trace metal deposition in the western Himalayan region, relative to surrounding regions. Surprisingly, the concentrations and EFs of trace elements showed seasonal contradictions, with lower concentration values and higher EFs during the non-monsoon season and vice versa. A source apportionment analysis using the positive matrix factorization (PMF) technique identified five sources of trace element deposition in the region, including crustal sources (32.33%), coal combustion (15.62%), biomass burning (17.63%), traffic emission (18.8%), and industrial sources (15.6%). Additionally, the study incorporated backward trajectories coupled with δ18O using the NOAA HYSPLIT model to estimate moisture sources in the region, which suggests atmospheric pollutants predominately deposited from the large-scale atmospheric circulation from westerlies (75%) during non-monsoon season. These findings underscore the urgent need for enhanced monitoring and research efforts in the future.
Keywords: Seasonal variability; Snow and glacier; Source apportionment; Trace elements; Western Himalayas; Wet deposition fluxes.
© 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
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References
-
- Adachi K, Tainosho Y (2004) Characterization of heavy metal particles embedded in tire dust. Environ Int 30(8):1009–1017. https://doi.org/10.1016/j.envint.2004.04.004 - DOI
-
- Al-Momani IF (2003) Trace elements in atmospheric precipitation at Northern Jordan measured by ICP-MS: acidity and possible sources. Atmos Environ 37(32):4507–4515. https://doi.org/10.1016/S1352-2310(03)00562-4 - DOI
-
- Barbante C, Schwikowski M, Döring T, Gäggeler HW, Schotterer U, Tobler L, Van De Velde K, Ferrari C, Cozzi G, Turetta A, Rosman K, Bolshov M, Capodaglio G, Cescon P, Boutron C (2004) Historical record of European emissions of heavy metals to the atmosphere since the 1650s from alpine snow/ice cores drilled near Monte Rosa. Environ Sci Technol 38(15):4085–4090. https://doi.org/10.1021/es049759r - DOI
-
- Bhat MA, Zhong J, Dar T, Kumar A, Li SL (2022a) Spatial distribution of stable isotopes in surface water on the upper Indus River basin (UIRB): Implications for moisture source and paleoelevation reconstruction. Appl Geochem 136:105137. https://doi.org/10.1016/j.apgeochem.2021.105137 - DOI
-
- Bhat MA, Romshoo SA, Beig G (2022b) Characteristics, source apportionment and long-range transport of black carbon at a high-altitude urban centre in the Kashmir valley North-Western Himalaya. Environ Pollut 305:119295. https://doi.org/10.1016/j.envpol.2022.119295 - DOI
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