[北京大气降水理化特征演变及其对环境的重大影响]。

Q2 Environmental Science Huanjing Kexue/Environmental Science Pub Date : 2024-07-08 DOI:10.13227/j.hjkx.202307273
Li-Hui Han, Qian Xiao, Xue-Mei Yang, Chao-Nan Qi, Jian Tian, Tong Lan, Shui-Yuan Cheng, Ai-Hua Zheng, Jing-Hua Guo
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The total concentrations of major metal elements in 2018, 2019, and 2021 were (4 787.46 ±4 704.31), (7 663.07 ±8 395.05), and (2 629.13 ±2 369.51) μg·L<sup>-1</sup>, respectively. The total equivalent concentrations of ions in 2018, 2019, and 2021 were (851.68 ±649.16), (973.98 ±850.94), and (644.31 ±531.16) μeq·L<sup>-1</sup>, respectively. The interannual changes in major metal elements and ions followed the order of 2019 &gt; 2018 &gt; 2021. The seasonal average total concentrations of major metal elements in spring, summer, autumn, and winter were (9 624.25 ±7 327.92), (4 088.67 ±5 710.14), (3 357.68 ±3 995.64), and (6 203.19 ±3 857.43) μg·L<sup>-1</sup>, respectively, and the seasonal average total equivalent concentrations of ions in spring, summer, autumn, and winter were (1 014.71 ±512.21), (729.83 ±589.90), (724.35 ±681.40), and (1 014.03 ±359.67) μeq·L<sup>-1</sup>, respectively, all presenting the order of spring &gt; winter &gt; summer &gt; autumn. NO<sub>3</sub><sup>-</sup> and SO<sub>4</sub><sup>2-</sup> were the main acid-causing ions in precipitation, whereas NH<sub>4</sub><sup>+</sup> and Ca<sup>2+</sup> were the main acid-neutralizing ions. The wet deposition fluxes of the heavy metal Cd were very low [(0.05 ±0.01) mg·(m<sup>2</sup>·a)<sup>-1</sup>], only accounting for (0.13 ±0.04)% of the total wet deposition fluxes of main metal elements; however, its soil safety years were 291 years, significantly lower than those of other heavy metals, displaying that its ecological risk was relatively the highest. The total wet precipitation flux of water-soluble ions NH<sub>4</sub><sup>+</sup>, Ca<sup>2+</sup>, NO<sub>3</sub><sup>-</sup>, and SO<sub>4</sub><sup>2-</sup> accounted for (85.72 ±2.18)% of the wet precipitation flux of total ions, suggesting that their comprehensive impact on the ecological environment might have been higher. 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引用次数: 0

摘要

分别于2018年、2019年和2021年在北京市采集了大气降水样品,研究了研究期间大气降水中主要金属元素和水溶性离子的浓度及其变化;大气降水中重金属、水溶性离子、溶解性无机氮和硫的湿沉降通量及其对生态环境的影响;以及典型降水对大气污染物的清除机制。结果表明,研究期间北京降水多为中性或碱性,酸雨发生频率很低,仅占 3.06%。2018 年、2019 年和 2021 年主要金属元素的总浓度分别为(4 787.46 ±4 704.31)、(7 663.07 ±8 395.05)和(2 629.13 ±2 369.51)。μg-L-1。2018 年、2019 年和 2021 年的离子总当量浓度分别为(851.68 ±649.16)、(973.98 ±850.94)和(644.31 ±531.16)μeq-L-1。μeq-L-1。主要金属元素和离子的年际变化顺序为 2019 > 2018 > 2021。春季、夏季、秋季和冬季主要金属元素的季节平均总浓度分别为(9 624.25 ±7 327.92)、(4 088.67 ±5 710.14)、(3 357.68 ±3 995.64)和(6 203.19 ±3 857.43)。μg-L-1,春、夏、秋、冬四季平均离子总当量浓度分别为(1 014.71 ±512.21)、(729.83 ±589.90)、(724.35 ±681.40)和(1 014.03 ±359.67)μeq-L-1。分别为(1 014 03 ±359.67)、(724 35 ±681.40)和(1 014 03 ±359.67)μeq-L-1,均呈春、冬、夏、秋顺序排列。NO3-和SO42-是降水中主要的致酸离子,而NH4+和Ca2+则是主要的中和酸离子。重金属镉的湿沉降通量非常低[(0.05 ±0.01)mg-(m2-a)-1],仅占降水量的(0.13 ±0.04)%。04)%;但其土壤安全年为 291 年,明显低于其他重金属,表明其生态风险相对最高。水溶性离子NH4+、Ca2+、NO3-和SO42-的湿沉降通量占总离子湿沉降通量的(85.72±2.18)%,表明其对生态环境的综合影响可能更大。DIN湿沉降通量以NH4+-N为主,对夏季生态环境有积极影响。SO42--S湿沉降通量在夏季较高,因此其对生态环境的积极影响也较大。大气降水对空气中污染物的清除作用受到多种因素的影响,这些因素的协同效应会直接影响降水对污染物的清除机制。
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[Evolution of Physical and Chemical Characteristics of Atmospheric Precipitation and Its Significant Impacts on the Environment in Beijing].

Atmospheric precipitation samples were collected in 2018, 2019, and 2021 in Beijing to study the concentrations and changes of the main metal elements and water-soluble ions; the wet deposition fluxes of heavy metals, water-soluble ions, dissolved inorganic nitrogen, and sulfur in the atmospheric precipitation and their impacts on the ecological environment; and the scavenging mechanisms of the typical precipitation to atmospheric pollutants during the study period. The results showed that the precipitation in Beijing during the study period was mostly neutral or alkaline, and the frequency of acid rain occurrence was very low, only accounting for 3.06%. The total concentrations of major metal elements in 2018, 2019, and 2021 were (4 787.46 ±4 704.31), (7 663.07 ±8 395.05), and (2 629.13 ±2 369.51) μg·L-1, respectively. The total equivalent concentrations of ions in 2018, 2019, and 2021 were (851.68 ±649.16), (973.98 ±850.94), and (644.31 ±531.16) μeq·L-1, respectively. The interannual changes in major metal elements and ions followed the order of 2019 > 2018 > 2021. The seasonal average total concentrations of major metal elements in spring, summer, autumn, and winter were (9 624.25 ±7 327.92), (4 088.67 ±5 710.14), (3 357.68 ±3 995.64), and (6 203.19 ±3 857.43) μg·L-1, respectively, and the seasonal average total equivalent concentrations of ions in spring, summer, autumn, and winter were (1 014.71 ±512.21), (729.83 ±589.90), (724.35 ±681.40), and (1 014.03 ±359.67) μeq·L-1, respectively, all presenting the order of spring > winter > summer > autumn. NO3- and SO42- were the main acid-causing ions in precipitation, whereas NH4+ and Ca2+ were the main acid-neutralizing ions. The wet deposition fluxes of the heavy metal Cd were very low [(0.05 ±0.01) mg·(m2·a)-1], only accounting for (0.13 ±0.04)% of the total wet deposition fluxes of main metal elements; however, its soil safety years were 291 years, significantly lower than those of other heavy metals, displaying that its ecological risk was relatively the highest. The total wet precipitation flux of water-soluble ions NH4+, Ca2+, NO3-, and SO42- accounted for (85.72 ±2.18)% of the wet precipitation flux of total ions, suggesting that their comprehensive impact on the ecological environment might have been higher. DIN wet deposition flux was mainly characterized by NH4+-N, which had a positive impact on the ecological environment in summer. SO42--S wet deposition flux was higher in summer, so its positive impact on the ecological environment was also greater. The scavenging effects of atmospheric precipitations to pollutants from the air were impacted by various factors, and the synergism effects of these factors could directly influence the scavenging mechanisms of precipitation to pollutants.

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Huanjing Kexue/Environmental Science
Huanjing Kexue/Environmental Science Environmental Science-Environmental Science (all)
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4.40
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