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Effect of fiber reinforcement on the mechanical behavior of bio-cemented sand

机译:纤维增强对生物粘合沙子力学行为的影响

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摘要

To explore the possibility of providing additional reinforcement to bio-cemented sand through fiber inclusions, a series of sand-fiber mixtures were prepared by mixing sand with three types of fibers (polypropylene fiber, basalt fiber and carbon fiber) at different fiber contents (0, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6 and 0.8% by volume of sand). Each mixture was subjected to two cycles of controlled microbial-induced calcite precipitation (MICP) treatments. Unconfined compression tests and calcium carbonate content tests were performed to characterize their mechanical properties and calcite amounts, respectively. Stress-strain results indicate that fiber inclusions change the bio-cemented soil from brittle to ductile failure modes. Basalt fibers with the highest tensile strength were most effective to increase the unconfined compressive strength (UCS) of the mixture. Due to higher elongation at breakage, polypropylene fiber is superior to the other two fiber types for energy absorption during the softening phase, resulting in higher residual strength. Scanning electron microscopy (SEM) photographs reveal the spatial distribution of calcite precipitations at the inter-particle contacts, on sand grain surfaces, and on the fiber surfaces, which primarily contributes to the roughening of the surface texture of particles and fibers and increases the internal friction and inter-particle bonding.
机译:探讨通过纤维夹杂物向生物粘合砂提供额外的增强的可能性,通过在不同纤维内容物(0所述的纤维(0型,0.1,0.2,0.3,0.4,0.5,0.6和0.8%(体积)的沙子)。对每种混合物进行两次受控微生物诱导的方解石沉淀(MICP)处理。进行无凝结的压缩试验和碳酸钙含量试验以分别表征其机械性能和方解石量。应力 - 应变结果表明,纤维夹杂物将生物固态土壤从脆性变为韧性衰竭模式。具有最高拉伸强度的玄武岩纤维最有效地增加混合物的非束缚的压缩强度(UCS)。由于断裂伸长率较高,聚丙烯纤维优于其他两个纤维类型,用于在软化相期间能量吸收,导致较高的残余强度。扫描电子显微镜(SEM)照片揭示了在砂粒表面和纤维表面上的颗粒间触点的方解石沉淀的空间分布,纤维表面主要有助于颗粒和纤维的表面纹理的粗糙化,并增加内部摩擦和颗粒间键合。

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