利用玄武岩纤维和乳胶增强低淤泥混凝土梁的循环荷载性能

IF 2.9 4区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
S. Srividhya, R. Vidjeapriya, M. Neelamegam
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引用次数: 10

摘要

本文尝试研究玄武岩纤维和乳胶对次污泥基混凝土梁在循环荷载作用下性能的影响。两组4个几何形状相似的试件被浇铸以研究梁的挠曲行为。对极限承载能力、裂缝形态、耗能、刚度退化、延性等参数进行了分析研究。初步研究表明,在混凝土中掺入低浓度污泥会降低混凝土的耐久性。为了提高耐久性,将SBR胶乳添加到一组4个试件中。结果表明,与对照混凝土梁相比,添加玄武岩纤维和乳胶的低污泥基混凝土梁在极限承载力、刚度、耗能和延性方面均有显著提高。掺10%次污泥、0.25%玄武岩纤维、10% SBR胶乳的LHSBFC试件承载力比对照混凝土梁提高1.82%,刚度提高2.65%,延性提高21.84%,耗能提高16%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the performance of hyposludge concrete beams using basalt fiber and latex under cyclic loading
An attempt has been made to study the influence of basalt fiber and latex on the behaviour of hypo sludge based concrete beams under cyclic loading. Two sets of four geometrically similar specimens were cast to study the deflection behaviour of beams. The analysis and study of parameters such as ultimate load carrying capacity, crack pattern, energy dissipation, stiffness degradation and ductility were conducted in this investigation. A preliminary investigation showed that the durability properties decreased when hypo sludge was added to concrete. To enhance the durability, SBR latex was added to one set of four specimens. Results indicate that the addition of basalt fibers and latex to the hypo sludge based concrete beams showed significant improvement in ultimate load carrying capacity, stiffness, energy dissipation and ductility compared to the control concrete beams. The specimen (LHSBFC) with 10% hypo sludge, 0.25% Basalt fiber and 10% SBR latex showed an increase of 1.82% load carrying capacity, 2.65% stiffness, 21.84% ductility, 16% energy dissipation when compared to the control concrete beam.
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来源期刊
Computers and Concrete
Computers and Concrete 工程技术-材料科学:表征与测试
CiteScore
8.60
自引率
7.30%
发文量
0
审稿时长
13.5 months
期刊介绍: Computers and Concrete is An International Journal that focuses on the computer applications in be considered suitable for publication in the journal. The journal covers the topics related to computational mechanics of concrete and modeling of concrete structures including plasticity fracture mechanics creep thermo-mechanics dynamic effects reliability and safety concepts automated design procedures stochastic mechanics performance under extreme conditions.
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