首页> 外文期刊>Geotechnical testing journal >Design and Fabrication of End Platens for Acquisition of Small-Strain Piezoelectric Measurements During Large-Strain Triaxial Extension and Triaxial Compression Testing
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Design and Fabrication of End Platens for Acquisition of Small-Strain Piezoelectric Measurements During Large-Strain Triaxial Extension and Triaxial Compression Testing

机译:在大应变三轴拉伸和三轴压缩测试中采集小应变压电测量结果的端板的设计和制造

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A triaxial testing device was integrated with piezoelectric transducers to measure small-strain (<10~(-3)%) dynamic soil properties during large-strain (15 %) triaxial testing. To incorporate the technology into existing equipment, end platens were designed and fabricated to facilitate direct contact between the transducers and the soil specimen. The platens protected the sensitive electronics while providing a seal between the confining fluid and the pore fluid. Two types of transducers were incorporated into the apparatus, bender elements and bender disks, used to measure shear wave and compression wave velocities, respectively. The 3.81-cm (1.5-in.) diameter acrylic end platens were designed to house the transducers, a porous stone, and openings to facilitate pore fluid drainage and wiring for the transducers. The top platen included a vacuum attachment and piston mount that enabled triaxial compression and triaxial extension testing. Removable stainless steel inserts were designed and fabricated to house and secure the transducers. These stainless steel inserts were used to ground the apparatus and allowed for maintenance and, if necessary, replacement of individual transducers. To ensure that the transducers were not damaged when subjected to the pore fluid, the transducers were waterproofed. Accurate readings of shear wave and compression wave velocities were obtained via proper design, fabrication, calibration, and implementation of the integrated small-strain components. Accurate readings of axial deformation, shear stress, and confining stress were also obtained via proper design, fabrication, and implementation of the vacuum connection components. Calibration results, as obtained from tests on specimens of medium-dense, dry, Ottawa sand, are presented and discussed. The system time delay was determined to be 5.67 × 10~(-5) seconds for the bender elements and 3.50 × 10~(-5) seconds for the bender disks. Measured shear wave velocity values ranged between 178 and 251 m/s and the corresponding compression wave velocity values ranged between 291 and 451 m/s.
机译:将三轴测试设备与压电传感器集成在一起,以在大应变(15%)三轴测试过程中测量小应变(<10〜(-3)%)的动态土壤特性。为了将这项技术整合到现有设备中,对端压板进行了设计和制造,以促进传感器和土壤样本之间的直接接触。压板保护敏感的电子器件,同时在限制流体和孔隙流体之间提供密封。仪器中集成了两种类型的传感器,即弯曲元件和弯曲盘,分别用于测量剪切波和压缩波的速度。直径3.81厘米(1.5英寸)的丙烯酸压板设计为容纳换能器,一块多孔的石头和开口,以利于孔隙流体的排出和换能器的接线。顶板包括真空附件和活塞安装座,可进行三轴压缩和三轴延伸测试。可移动的不锈钢插件的设计和制造可以容纳和固定传感器。这些不锈钢插件用于使设备接地,并可以进行维护,必要时还可以更换单个换能器。为确保换能器在接触孔隙流体时不会损坏,换能器已防水。通过适当设计,制造,校准和实施集成的小应变组件,可以获得剪切波和压缩波速度的准确读数。通过正确设计,制造和实施真空连接组件,还可以获得轴向变形,剪切应力和约束应力的准确读数。介绍并讨论了从对中等密度,干燥的渥太华沙样品进行测试获得的校准结果。弯曲器元件的系统时间延迟确定为5.67×10〜(-5)秒,弯曲器盘的系统时间延迟确定为3.50×10〜(-5)秒。测得的剪切波速度值介于178和251 m / s之间,相应的压缩波速度值介于291和451 m / s之间。

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