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A Laboratory Rig and a Scale- and Energy-Controlled Procedure for Tender Soil Fragmentation Test

机译:嫩土碎裂试验的实验室装备和规模与能量控制的程序

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摘要

A laboratory rig was developed for a scale- and energy-controlled tender soil fragmentation test, which required multiple impacts and step-by-step decomposition of the soil structure on a macroscale. Soil sample size classes were scaled down by a factor of two, giving ranges of 128, 64, 32, 16, 8, 4, 2, 1, and 0.5 mm, respectively. These size classes were also used as control scales for respective fragmentation stages. Fragmentation tests were conducted to illustrate the possible influences from shape effects, falling weights, displacements, and fragmentation stages, and to investigate the relations among specific fragmentation energy, number of strokes per fragmentation stage, and fragmentation fractal dimension. Specific fragmentation energy was influenced by both the size and the shape of the soil samples. The cylindrical- and ball-shaped soil samples behaved similarly. Thus ball samples were used for a benchmarking test on soil structural stabilities. Subsequent fragmentation on 60- and 80-g ball samples with changed displacements from 5 to 45 cm yielded a decreased number of strokes from around 150 to 10. Whereas, their respective fragmentation fractal dimensions varied insignificantly, ranging from 1.52 to 1.64 for samples of 60-g mass and 1.55 to 1.72 for 80 g, values much smaller than previously reported. Fragmentation fractal dimension appeared to be a nominal index for remolded soils under laboratory impacting actions. There was a slight increase in specific fragmentation energy as the number of impacts increased. But this increase was aggravated for a single or only few impacts. Thus 20 to 40 strokes was the appropriate stroke number to finish one fragmentation stage. A five-stage fragmentation on a sample in the 32- to 64-mm size range yielded fragmentation fractal dimensions of 1.29, 1.52, 1.45 and 1.61, for the first four stages, respectively, whereas their specific fragmentation energies increased linearly.
机译:开发了用于规模和能源控制的 嫩土壤破碎试验的实验室装置,该试验需要多重影响 以及宏观尺度上土壤结构的逐步分解。 将土壤样本大小类别缩小两倍, 给出范围为128、64、32、16、8、4、2、1和0.5 mm分别。 这些大小类还用作各个 分段阶段的控制尺度。进行了碎裂测试,目的是说明形状效应,下降的重量,位移和碎裂阶段的可能影响,并研究 与特定对象之间的关系。碎裂能量,每个碎裂阶段的 笔划数和碎裂分形维数。 特定碎裂能量受大小 和形状的影响。土壤样品。圆柱形和球形 土样的行为相似。因此,使用球形样品 进行了土壤结构稳定性的基准测试。随后的60克和80克球形样品的 碎裂,位移从5 cm到45 cm改变了 ,产生的笔划次数从 150减少到10.各自的碎片分形维数 变化不大,对于质量为60 g的样品 为1.52至1.64,对于80 g为1.55至1.72,其值小得多< sup> 比以前报告的要多。碎裂分形维数 似乎是在实验室冲击 作用下重塑土壤的标称指标。随着影响数量的增加,特定碎片能量 略有增加。但是,这种增加 对于单个或很少的影响而加剧了。因此,20至 笔画是完成一个碎片 阶段的适当笔画数。对于前四个阶段,在32到 64 mm尺寸范围内的样本上进行了五个阶段的碎裂,产生的碎裂分形维数分别为 1.29、1.52、1.45和1.61。分别是 ,而它们的特定碎片能线性增加。

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    《Soil Science Society of America Journal》 |2009年第4期|1286-1290|共5页
  • 作者单位

    Institute of Resources, Ecosystem and Environment of Agriculture, Nanjing Agricultural Univ., Nanjing 210095, China,College of Engineering, Nanjing Agricultural Univ., Nanjing, 21003, China;

    Institute of Resources, Ecosystem and Environment of Agriculture, Nanjing Agricultural Univ., Nanjing 210095, China,College of Engineering, Nanjing Agricultural Univ., Nanjing, 21003, China;

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