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Influence of asphalt pavement construction processes on urban soil formation in Tokyo

机译:东京沥青路面施工工艺对城市土壤形成的影响

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Urban soils have been drastically disturbed and modified by human activities. Soil sealing, necessary for transportation and infrastructure development, is one such process, which often results in negative effects on the soil ecosystem functions. However, sealed soils can play a critical role in material cycling through ground surfaces in urban ecosystems. This study investigated the effects of asphalt sealing on the mineral soils beneath the roads in Tokyo. The results confirmed that mineral soils beneath asphalt pavements were characterized by high pH levels, CaO content, inorganic carbon (IC), and electric conductivity (EC) due to liming for road material fixation at the subbase layers. An analysis of the concentrations of IC and Ca, or pH value suggested existence of calcium carbonate (CaCO3) mainly due to liming and absorption of atmospheric CO2 at subbase layers. Relatively high content of sulfur in the subbase layers is likely attributed to asphalt contaminants originating from petroleum. Removal of the original surface soils, for new road development, decreased oxides and organic matter content. Contents of oxides in top mineral soils were low as compared to those of natural Andosols by mixing of subbase materials. This study suggested that construction of asphalt pavement induced specific soil genesis beneath asphalt pavement such as soil alkalinization, calcium carbonate accumulation, and technogenic material mixing. First, surface soil removal for the construction of asphalt pavement decreases organic matter content in mineral soils. Concurrently technogenic materials mix with top mineral soils. Second, Ca dissolved into water from the subbase layer can react with dissolved inorganic carbon followed by calcium carbonate formation and Ca cation migration into the deeper horizon. As asphalt pavement intercepts litter supply, organic matter accumulation was prevented in mineral soils beneath the asphalt pavement. Our study confirmed that owing to the water infiltration, through pervious asphalt and the cracks developed on the asphalt surface by heavy traffic, material cycling exists even in mineral soils beneath the asphalt pavements.
机译:人类活动严重扰乱和改造了城市土壤。运输和基础设施发展所必需的土壤密封就是这样一种过程,它经常对土壤生态系统功能产生负面影响。但是,密封的土壤在城市生态系统中穿过地面的物质循环中可以发挥关键作用。这项研究调查了东京道路下方的沥青密封层对矿物土壤的影响。结果证实沥青路面下方的矿物土壤具有高pH值,CaO含量,无机碳(IC)和电导率(EC)的特点,这归因于在基层固定道路材料的石灰。对IC和Ca浓度或pH值的分析表明,碳酸钙(CaCO3)的存在主要是由于碱层中大气CO2的添加和吸收。基底层中相对较高的硫含量可能归因于源自石油的沥青污染物。去除原始表层土壤,以进行新的道路开发,减少氧化物和有机物含量。通过混合基础材料,与天然Andosols相比,顶级矿质土壤中的氧化物含量低。这项研究表明,沥青路面的施工引起了沥青路面下特定的土壤成因,例如土壤碱化,碳酸钙积累和技术性材料混合。首先,用于沥青路面施工的表层土壤去除降低了矿物土壤中的有机物含量。同时,技术材料与顶级矿物土壤混合。其次,从基底层溶解到水中的Ca可以与溶解的无机碳反应,随后形成碳酸钙和Ca阳离子迁移到更深的地层。由于沥青路面拦截垃圾的供应,因此防止了有机物质在沥青路面下方的矿物土壤中积聚。我们的研究证实,由于水的渗透,透水性沥青和由于交通拥挤而在沥青表面形成的裂缝,即使在沥青路面下方的矿物土壤中也存在物质循环。

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