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首页> 外文期刊>Journal of materials in civil engineering >Effect of the Glass Transition Temperature of Acrylic Polymers on Physical and Mechanical Properties of Kaolinite Clay and Sandy Soil
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Effect of the Glass Transition Temperature of Acrylic Polymers on Physical and Mechanical Properties of Kaolinite Clay and Sandy Soil

机译:丙烯酸聚合物玻璃化转变温度对高岭土粘土物理和力学性能的影响

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摘要

The physical and mechanical behavior of soil polymer composites tightly depends on the properties and structures of both soil and polymer. This study aims to investigate the effect of glass transition temperature as one of the most important characteristics of adhesive resins of acrylic polymers on the geotechnical behavior of soils that have not been fully covered by previous studies. To achieve that, three similar copolymers of methyl methacrylate-co-butyl acrylate with different glass-transition temperatures of 1°C, 33°C, and 51°C were synthesized, and two representative specimens of cohesive (kaolinite clay) and noncohesive (sand) soils were chosen to perform a full investigation of the consequential changes in the physical and mechanical behavior. A series of laboratory tests, including the Atterberg limits tests, the un-confined compressive strength tests, direct shear tests in soaked and unsoaked conditions, swelling tests, and odometer tests, were conducted on untreated and treated soils with synthesized polymers. The results showed a salient enhancement in the cohesion and the unconfined compressive strength value of both soils. However, the polymer with a glass-transition temperature near to ambient temperature led to a greater increase in the compressive and shear strength of stabilized soil among its peers. Samples treated with the polymer having the lowest glass transition temperature revealed a more compression index (i.e., obtained from odometer tests) and lower unconfined compressive strength. It is also observed that the swelling index and swelling pressure decreased marginally with increasing the glass transition temperature.
机译:土壤聚合物复合材料的物理和力学行为紧密取决于土壤和聚合物的性质和结构。本研究旨在探讨玻璃化转变温度作为丙烯酸类聚合物粘合剂树脂最重要特征之一的影响,以尚未完全由先前研究完全覆盖的土壤的岩土行为。为此,合成三种类似玻璃化碳酸甲酯 - 丙烯酸甲基丙烯酸甲基丙烯酸甲酯 - 丙烯酸丙烯酸甲酯,含有不同的玻璃化温度为1℃,33℃和51℃,以及两种粘性(高岭土粘土)和非粘性标本(选择土壤的土壤进行全面调查物理和力学行为的后果变化。一系列实验室测试,包括Atterberg限制试验,未经限制的抗压强度试验,在未处理的和处理合成聚合物的未处理和处理的土壤中进行浸渍和未烘烤条件下的直接剪切试验,溶胀试验和内脏试验。结果表明,凝聚力和两种土壤的非整齐压缩强度值突出增强。然而,具有近距离环境温度的玻璃化温度的聚合物导致其同行中稳定土壤的压缩和剪切强度升高。用具有最低玻璃化转变温度处理的聚合物处理的样品揭示了更高的压缩指数(即,从里程表试验获得)和较低的无凝固的抗压强度。还观察到,随着玻璃化转变温度的增加,膨胀指数和膨胀压力略微下降。

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