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True Triaxial Piping Test Apparatus for Evaluation of Piping Potential in Earth Structures

机译:用于评估地球结构中管道电势的真正三轴管道测试设备

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Current methods available for testing the piping potential of soils in dams (pinhole test, hole erosion test, and slot erosion test) are limited to cohesive soils that maintain an open hole within the sample. These tests do not adequately simulate conditions within a zoned embankment, where zones of non-cohesive materials are present under relatively high confining stresses. A new apparatus, called true triaxial piping test apparatus or TTPTA, was developed for testing a wider variety of soils under a wider range of confining stresses, hydraulic gradients, and pore pressures than current tests allow. The TTPTA is capable of applying a range of confining stresses along three mutually perpendicular axes in a true triaxial test apparatus. Pore pressures are also controlled through regulated inlet and outlet pressures. The test determines the critical hydraulic gradient and, more importantly, the critical hydraulic velocity at which piping is initiated in non-cohesive soils. Detailed descriptions of the test apparatus and test method are presented, as are initial test results using TTPTA. Three sets of initial tests were conducted using uniform sand to (1) assess the repeatability of test results, (2) evaluate how the rate of change of inflow impacts the critical discharge rate at which piping is initiated, and (3) evaluate how the angle of seepage affects the critical velocity for piping initiation. These initial tests were conducted to evaluate the method and to help set test parameters for future testing. It is found that the TTPTA is capable of yielding fairly consistent results with 10 % scatter in repeat tests. The seepage angle tests demonstrate that the angle between seepage flow direction and the direction of gravity is an important factor to consider when evaluating piping potential. The rate of change in seepage also has a minor influence on test results, but a change in flow rate of 5 (mL/min)/min could produce reliable results. Based on the results, the hydraulic gradient is found to be a less reliable indicator of piping potential than the hydraulic velocity for non-cohesive soils. The TTPTA is capable of simulating conditions within small to medium sized embankments.
机译:目前可用于测试大坝中土壤的管道潜力的方法(针孔测试,孔蚀测试和缝隙腐蚀测试)仅限于在样品中保持裸眼的粘性土壤。这些测试不能充分模拟带状路堤内的条件,在这种情况下,非粘性材料区域会在较高的围压下出现。开发了一种称为真三轴管道测试设备或TTPTA的新设备,用于在比当前测试所允许的更大范围的约束应力,水力梯度和孔隙压力下测试更广泛的土壤。 TTPTA能够在真正的三轴测试设备中沿三个相互垂直的轴施加一定范围的约束应力。孔压也通过调节的入口和出口压力来控制。该测试确定了临界水力梯度,更重要的是,确定了非粘性土壤中管道启动的临界水力速度。给出了测试设备和测试方法的详细说明,以及使用TTPTA的初始测试结果。使用均匀砂子进行了三组初始测试,以(1)评估测试结果的可重复性,(2)评估流入量的变化率如何影响启动管道的临界排放率,以及(3)评估渗透角影响管道启动的临界速度。进行这些初始测试以评估该方法并帮助设置测试参数以用于将来的测试。在重复测试中,发现TTPTA能够产生相当一致的结果,且散点为10%。渗流角测试表明,渗流方向与重力方向之间的夹角是评估管道潜力时要考虑的重要因素。渗透率的变化速率对测试结果也有较小的影响,但是流速变化为5(mL / min)/ min可以产生可靠的结果。根据结果​​,发现水力梯度是管道潜力的可靠指标,而不是非粘性土壤的水力速度。 TTPTA能够模拟中小型路堤内的状况。

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