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The Effect of Technogenic Contamination on Carbon Dioxide Emission by Soils in the Kola Subarctic

机译:技术污染对可拉亚北极土壤二氧化碳排放的影响

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Carbon dioxide emission (C07) is the most important part of carbon turnover, which characterizes the biological activity of soils. This parameter was investigated in background ecosystems and those that have undergone atmospheric contamination in thesubarctic zone of the Kola Peninsula, the large industrial region. The Pechenganikel' plant located in the region is the largest source of sulfur dioxide and heavy metals in northern Europe. Long-term contamination by its waste products has resulted in atechnogenic digression of forest ecosystems: destruction and death of the tree layer, poorer species composition of phytocenoses, lower soil biota activity, soil contamination, disturbance of biogeochemical cycles of elements, and a drop in ecosystem productivity. Technogenic wastelands have been formed near the plant. Field studies have shown a slowing down of C0_2 emission by soils in situ from 190—230 C—C0_2/m~2 h in the background pine forests to 130—160 mg C—C0_2/m~2 h in pine forests at the defoliation stage, to 100 mg C—C0_2/m~2 h in a technogenic pine thin forest, and to 5—20 mg C—C0_2/m~2 h in technogenic wastelands. C0_2 emission from soils is more intensive in birch forests when compared to pine forests, and there is a tendency to decrease with soil contamination from 290 mg C-C0_2/m~2 h in the background soils to 210—220 mg C-C0_2/m~2 h in birch forests at the defoliation stage and to 170—190 mg C—C0_2/m~2 h in technogenic thin forests. The C0_2 emission by soils of technogenicthin soils and wastelands differs significant from the background levels. Soil C0_2 emission is characterized by a great spatial variability within biogeocenoses. It becomes lower in pine forests upon a rise in soil contamination. Soil respiration (C0_2emission) shows the total production of carbon dioxide as a result of autotrophic (plant roots) and heterotrophic (soil microorganisms and animals) respiration. A decrease in part of the root respiration, contrary to soil contamination, was revealed in the region for the first time: it comprises from 38-57% in the background forests to 0% in wastelands. This is evidence that plants in biogeocenoses die first, while microorganisms are more resistant. Correlation analysis shows that soil respiration, andthe role of roots in it, are directly related to the distance from the plant, the mass of small roots, and the content of carbon and nitrogen. An adverse correlation is seen for the content of available nickel and copper compounds in soils. The remediation of technogenic wastelands has favored intensification of biological activity of the soils. Soil respiration becomes more active, and the role of roots in it is more effective under willow plantations with grass cover formed on man-made fertile soil layer than in contaminated soils after lime and fertilizer application (chemo-phytostabilization).
机译:二氧化碳排放(C07)是碳周转最重要的部分,它表征了土壤的生物活性。在背景生态系统以及在大型工业区可乐半岛的南亚地区经历过大气污染的生态系统中,对该参数进行了研究。位于该地区的Pechenganikel工厂是北欧最大的二氧化硫和重金属来源。废物的长期污染导致森林生态系统发生技术偏离:树木层的破坏和死亡,藻类植物的较差物种组成,较低的土壤生物区系活动,土壤污染,元素的生物地球化学循环紊乱以及土壤中生物素的下降。生态系统生产力。工厂附近已形成技术荒原。野外研究表明,原生松林土壤的C0_2排放量从背景松林中的190-230 C-C0_2 / m〜2 h减慢到落叶林中的130-160 mg C-C0_2 / m〜2 h在技​​术性松树稀疏林中达到100 mg C–CO_2 / m〜2 h,在技术性荒地中达到5–20 mg C–CO_2 / m〜2 h。与松林相比,桦木林中土壤中的C0_2排放更为密集,并且随着土壤污染从背景土壤中的290 mg C-C0_2 / m〜2 h降低到210-220 mg C-C0_2 /在落叶期,桦木林中的m〜2 h以及技术性稀林中的170〜190 mg C-CO_2 / m〜2 h。土壤和荒地中技术性土壤的CO 2排放与背景水平存在显着差异。土壤CO 2排放的特征是生物大地理区域内空间变异性大。随着土壤污染的增加,它在松树林中变得更低。土壤呼吸(CO_2排放)显示了自养(植物根)和异养(土壤微生物和动物)呼吸的二氧化碳总产量。与土壤污染相反,该地区首次发现了根系呼吸的减少:从背景森林的38-57%到荒地的0%。这证明了生物基因突变中的植物首先死亡,而微生物具有更强的抗性。相关分析表明,土壤呼吸作用以及根系在土壤中的作用与距植物的距离,小根的质量以及碳和氮的含量直接相关。土壤中有效镍和铜化合物的含量存在负相关关系。技术性荒地的修复有利于增强土壤的生物活性。在人工肥沃的土壤层上覆盖草皮的柳树人工林下,土壤呼吸变得更加活跃,并且在根系中的根源比在施用石灰和肥料(化学植物稳定化)后的污染土壤中更有效。

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