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A study on the effect of compaction on transport properties of soil gas and water I: Relative gas diffusivity, air permeability, and saturated hydraulic conductivity

机译:压实对土壤气体和水的输运特性的影响研究I:相对气体扩散率,透气率和饱和导水率

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Operation of farm machinery in agricultural fields is the main cause of soil compaction, which may have detrimental effects on soil gas and water transport. However, application of organic matter (OM) reduces the adverse effects of compaction and improves transport properties of soil gases and water. To date, experimental data on the effect of compaction on those transport properties and its relationship to the presence of applied OM remains scarce. The effect of compaction on relative gas diffusivity (D-p/D-0)(100) and air permeability (k(a100)) at a soil matric suction of -100 cm H2O (soil pF 2.0), and saturated hydraulic conductivity (k(s)) were investigated using disturbed soil sample taken from 0-15 cm layer mixed with rice husk, rice straw, compost, sawdust, and wood bark at a rate of 20% of the soil volume. The common compaction caused by farm machinery in agricultural fields was simulated in the laboratory using a static compression load of 150, 225, and 300 kPa. The effect of compaction on total porosity (f) and air content at soil pF 2.0 (epsilon(100)) was also examined. Compaction reduced f, e(100), (D-p/D-0)(100), k(a100), and k(s), with the more pronounced significant difference between 150 and 300 kPa compactions. The decrease in (D-p/D-0)(100) was likely attributable to a reduced air content, and the decrease in k(a100) and k(s), was likely attributable to a reduced volume of macropores, as indicated by reduced epsilon(100) values. Compared with the control, addition of sawdust and wood bark seemed to have the most positive effect on (D-p/D-0)(100), k(a100), and k(s) in term of resistance to compaction, while rice straw had the opposite effect. The presence of OM was likely to block the soil pores and increase capillary water in the bottle-neck, leading to lower values of (D-p/D-0)(100) and k(a100) for a given value of epsilon(100) ("blockage effect"). These pores blocked by OM, however, seemed to allow the water to flow through the soil matric ("ceramic filter effect"). Further studies on the prolonged application of OM at field scale, taking into account the decomposition process, should be conducted
机译:农业机械在农业领域中的运行是土壤致密化的主要原因,这可能对土壤气体和水的运输产生不利影响。但是,有机物(OM)的使用减少了压实的不利影响,并改善了土壤气体和水的传输特性。迄今为止,关于压实对那些传输性能的影响及其与所施加的OM的关系的实验数据仍然很少。在-100 cm H2O(土壤pF 2.0)的土壤基质吸力下,压实对相对气体扩散率(Dp / D-0)(100)和透气率(k(a100))和饱和水导率(k( s))是使用取自0-15厘米层的受干扰土壤样本进行调查的,该样本与稻壳,稻草,堆肥,锯末和木皮混合,占土壤体积的20%。在实验室中使用150、225和300 kPa的静态压缩载荷模拟了由农业机械在农田中引起的常见压实。还检查了压实度对土壤孔隙度fF 2.0和总孔隙率(f)和空气含量(ε(100))的影响。压实度降低了f,e(100),(D-p / D-0)(100),k(a100)和k(s),压实度在150和300 kPa之间更为明显。 (Dp / D-0)(100)的减少很可能归因于空气含量的减少,而k(a100)和k(s)的减少则可能归因于大孔体积的减少,这表明epsilon(100)值。与对照相比,添加木屑和木皮似乎对(Dp / D-0)(100),k(a100)和k(s)的抗压实性最有效,而稻草产生了相反的效果。 OM的存在可能会阻塞土壤孔隙并增加瓶颈处的毛细水,从而导致给定值ε(100)下的(Dp / D-0)(100)和k(a100)值较低(“阻塞效应”)。但是,这些被OM堵塞的孔似乎允许水流过土壤基质(“陶瓷过滤作用”)。考虑到分解过程,应进一步研究OM在田间的长期应用

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