<p>Black carbon (BC), released due to partial burning of fuel, has serious negative impacts on climate and human health. We conducted continuous BC measurements over 5&#xa0;years (January 2019–December 2023) at Katarmal (29.38˚N, 79.37˚E, 1225&#xa0;m amsl) in the Central Himalayan Region. We examined BC mass concentration, temporal fluctuations, meteorological alterations, source apportionment, and the impact of COVID-19 period. BC concentrations on daily basis ranged from 0.01 to 13.7&#xa0;μg&#xa0;m<sup>−3</sup>, with an annual concentration of 1.6 ± 1.3&#xa0;μg&#xa0;m<sup>−3</sup>. The highest BC levels were in April 2022 (5.9 ± 2.5&#xa0;µg&#xa0;m<sup>−3</sup>), March 2022 (4.7 ± 1.8&#xa0;μg&#xa0;m<sup>−3</sup>) and February 2023 (4.3 ± 1.4&#xa0;μg&#xa0;m<sup>−3</sup>). Planetary boundary layer height (PBLH) was shallow in winter with higher BC concentrations, and higher in the monsoon (~ 1154&#xa0;m), with lower BC levels (~ 0.11&#xa0;μg&#xa0;m<sup>−3</sup>). Elevated BC in the pre-monsoon persisted despite of high PBLH (~ 1905&#xa0;m). Meteorological parameters like wind speed exhibited a positive correlation (<i>r</i> = 0.71), while relative humidity, air temperature, and total rainfall were negatively correlated with BC as <i>r</i> = -0.82, -0.60, and -0.79, respectively. Over a period of five years, fossil fuel sources (BC<sub>ff</sub>) accounted for 59.4% of the total BC, while biomass burning (BC<sub>bb</sub>) contributed 40.6%, indicating a higher biomass-burning impact compared to other Indian Himalayan areas. During the COVID-19 lockdown period, a significant decrease (~ 16%) was observed in BC due to reduced anthropogenic activities, mainly vehicular emissions. This was supported by 10% increase in the absorption Ångström exponent. Despite reduced fossil fuel emissions during the lockdown, 67.8% of BC at the site still originated from fossil fuel combustion, which is likely due to long-range transported dust of BC from outside the region.</p>

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Black carbon characterization and source apportionment over a semi-tourist site in the central Himalayan Region, India

  • Jagdish Chandra Kuniyal,
  • Archana Bawari,
  • Sheetal Chaudhary,
  • Arushi Sharma,
  • Bimal Pande

摘要

Black carbon (BC), released due to partial burning of fuel, has serious negative impacts on climate and human health. We conducted continuous BC measurements over 5 years (January 2019–December 2023) at Katarmal (29.38˚N, 79.37˚E, 1225 m amsl) in the Central Himalayan Region. We examined BC mass concentration, temporal fluctuations, meteorological alterations, source apportionment, and the impact of COVID-19 period. BC concentrations on daily basis ranged from 0.01 to 13.7 μg m−3, with an annual concentration of 1.6 ± 1.3 μg m−3. The highest BC levels were in April 2022 (5.9 ± 2.5 µg m−3), March 2022 (4.7 ± 1.8 μg m−3) and February 2023 (4.3 ± 1.4 μg m−3). Planetary boundary layer height (PBLH) was shallow in winter with higher BC concentrations, and higher in the monsoon (~ 1154 m), with lower BC levels (~ 0.11 μg m−3). Elevated BC in the pre-monsoon persisted despite of high PBLH (~ 1905 m). Meteorological parameters like wind speed exhibited a positive correlation (r = 0.71), while relative humidity, air temperature, and total rainfall were negatively correlated with BC as r = -0.82, -0.60, and -0.79, respectively. Over a period of five years, fossil fuel sources (BCff) accounted for 59.4% of the total BC, while biomass burning (BCbb) contributed 40.6%, indicating a higher biomass-burning impact compared to other Indian Himalayan areas. During the COVID-19 lockdown period, a significant decrease (~ 16%) was observed in BC due to reduced anthropogenic activities, mainly vehicular emissions. This was supported by 10% increase in the absorption Ångström exponent. Despite reduced fossil fuel emissions during the lockdown, 67.8% of BC at the site still originated from fossil fuel combustion, which is likely due to long-range transported dust of BC from outside the region.