沿海城市环境中河道修复的战略性种植-通过改善雨水径流实现碳封存
ID:36 View Protection:ATTENDEE Updated Time:2021-09-29 17:07:28 Hits:1005 Oral Presentation

Start Time:2021-10-25 20:20(Asia/Shanghai)

Duration:8min

Session:005 分会场报告-721室 » 5-8研究生论坛-1

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Abstract
Organic compounds and nutrients in urban runoff create negative impacts to global warming. Riparian planting (RP) of urban watershed can enhance the degradation of pollutants, while fixing the carbon and nitrogen in plant biomass. Although a few previous publications have demonstrated the potential benefits of stormwater treatment by RP, the critical plant-specific indexes and corresponding contributions to the reduction of greenhouse gas (GHG) emission, in both the senses of water purification and carbon
fixation, have never been elucidated quantitatively. This study investigated a total of 21 plant species to their capacities reducing both carbonaceous pollutants and ammonia in synthetic stormwater during a 30-day period and under different operational conditions. Water quality data were collected to analyze the half-life (t1/2) of pollutants degradation rates of each plant species. Carbon contents in the stem, leaf, and root of each species were measured and used to calculate the total carbon sequestration potential per planting area. Colocasia tonoimo (CT) and Thalia dealbata in freshwater; Crinum asiaticum and Phragmites australis in brackish water; and Kandelia obovate and Aegiceras corniculatum in seawater showed shortest average t1/2 for the degradation of all three pollutants. Negative linear relationships were found between thet1/2 of ammonia and the increased biomass in leaves and shoot. The highest carbon sequestration densities calculated using plant CT in the batch and continuous flow systems were 231.1 and 313.9 g/m2, respectively. Nitrogen sequestration densities of CT in batch and continuous flow conditions were 16.7 and 22.6 g/m2, respectively, which were also the highest among all the tested plant species. Current GHG emission of the targeted watershed without planting (Tsui Ping River, Hong Kong) were 0.151 kg CO2-e/ m3-water treated. When CT were planted in the simulated watershed at the maximum areas the GHG emission can be reduced to lower than 0.082 kg CO2-e/ m3.
 
Keywords
Speaker
唐晓静
博士研究生 武汉大学

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Important Date
  • Conference Date

    Oct 25

    2021

    to

    Oct 27

    2021

  • Oct 10 2021

    Draft paper submission deadline

  • Oct 10 2021

    Contribution Submission Deadline

  • Oct 23 2021

    Registration deadline

Sponsored By
中国科学院南京土壤研究所
中国土壤学会
Organized By
中国科学院土壤环境与污染修复重点实验室
中国科学院南京土壤研究所土壤与环境生物修复研究中心
农田土壤污染防控与修复技术国家工程实验室
场地安全修复技术国家工程实验室
中国土壤学会土壤环境专业委员会
中国土壤学会土壤修复专业委员会
中国土壤学会环境微塑料工作组
中国环境科学学会土壤与地下水环境专业委员会
中国土壤学会土壤工程专业委员会
森特士兴集团股份有限公司
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