废牙刷纤维对高塑性粘土强度及冻融性能的影响

IF 0.7 Q4 MECHANICS Studia Geotechnica et Mechanica Pub Date : 2020-10-23 DOI:10.2478/sgem-2020-0006
Fatih Isik, R. K. Akbulut, A. S. Zaimoglu
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引用次数: 1

摘要

废旧材料在土木工程中的应用日益受到重视。消耗有限的自然资源和不断增加的废物处理成本促使研究人员对不同岩土工程应用的废物进行评估。在这方面,一些废物被用作加固土,以改善其工程性能。本文的主要目的是研究废旧聚丙烯纤维在高塑性细粒土中作为增强材料的可用性。为此,将废牙刷刷毛(WTB)作为聚丙烯纤维增强材料,按干总重的0.2%、0.4%、0.6%和0.8%的比例添加到细粒土中。评价了WTB对未加筋和加筋粘土的冻融特性和无侧限抗压强度的影响。结果表明,在高塑性粘土中掺入WTB可改善其抗冻融性能。不排水抗剪强度随WTB比的增大而增大。
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Influence of Waste Toothbrush Fiber on Strength and Freezing–Thawing Behavior in High Plasticity Clay
Abstract The use of waste materials in civil engineering applications has gained importance nowadays. Consuming limited natural resources and increasing waste disposal costs have led researchers to evaluate waste materials for different geotechnical applications. In this respect, some waste materials are used as reinforcement in soils to improve their engineering properties. The main objective of this paper was to investigate the usability of waste polypropylene fiber as a reinforcement material in high plasticity fine-grained soils. For this purpose, waste toothbrush bristle (WTB) was used as a polypropylene fiber reinforcement material and added to fine-grained soil at ratios of 0.2%, 0.4%, 0.6% and 0.8% by dry total weight. The effect of WTB on freezing–thawing behavior and unconfined compression strength of unreinforced and reinforced clayey soil was evaluated. The results indicated that addition of WTB to high plasticity clay improved its behavior against freezing–thawing. Also, undrained shear strength increases with respect to increment in WTB ratio.
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来源期刊
CiteScore
1.30
自引率
16.70%
发文量
20
审稿时长
16 weeks
期刊介绍: An international journal ‘Studia Geotechnica et Mechanica’ covers new developments in the broad areas of geomechanics as well as structural mechanics. The journal welcomes contributions dealing with original theoretical, numerical as well as experimental work. The following topics are of special interest: Constitutive relations for geomaterials (soils, rocks, concrete, etc.) Modeling of mechanical behaviour of heterogeneous materials at different scales Analysis of coupled thermo-hydro-chemo-mechanical problems Modeling of instabilities and localized deformation Experimental investigations of material properties at different scales Numerical algorithms: formulation and performance Application of numerical techniques to analysis of problems involving foundations, underground structures, slopes and embankment Risk and reliability analysis Analysis of concrete and masonry structures Modeling of case histories
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