Feasibility of concrete-filled fiber-reinforced plastic piles for deep foundation: a comprehensive review on geotechnical and structural characteristics

IF 5.5 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Haksung Lee, Man-Kwon Choi, Byung-Joo Kim
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Abstract

Traditional piles used for deep foundation, such as steel, concrete, and timber, are susceptible to corrosion and a reduction in structural capacity over time. This has led to the development of new materials like concrete-filled FRP piles (CFFP). CFFP is a composite pile filled with concrete and covered with a fiber-reinforced plastic (FRP) shell, providing non-corrosive reinforcement and protection to the concrete. As a result, CFFP is a highly promising candidate for implementation in various fields due to its structural advantages and necessity. Compared to traditional concrete piles, CFFP can be installed with less damage and a lower blow range due to its elastic modulus, damping ratio, and specific weight. The bearing capacity of a pile is influenced by various factors, including its stiffness, residual stress, and axial load resistance. Due to competitive pricing, glass fiber has been widely utilized, and there is a growing interest regarding carbon-fiber-reinforced concrete piles due to the excellent mechanical properties of carbon fiber. The remarkable stiffness and strength attributes of carbon fibers are evident in CFRP-confined piles, which present a notably wide range of load-bearing capacities, boasting an ultimate axial load capacity ranging from 500 to 4000 kN. Furthermore, CFFPs have been confirmed to have superior lateral load resistance compared to conventional piles, attributed to the reinforcement provided by FRP materials. Conventional piles face a challenge in that their structural characteristics deteriorate in the corrosive marine environment, with a projected lifespan of less than 20 years. In contrast, the service life of CFFPs is estimated to range from 50 to 75 years.

Abstract Image

Abstract Image

深基坑混凝土填充纤维增强塑料桩的可行性:岩土工程和结构特性综合评述
用于深基坑的传统桩基(如钢材、混凝土和木材)很容易受到腐蚀,并随着时间的推移而降低结构承载能力。因此,人们开发出了混凝土填充玻璃钢桩(CFFP)等新材料。CFFP 是一种填充混凝土的复合桩,外层包裹着纤维增强塑料 (FRP) 外壳,为混凝土提供非腐蚀性加固和保护。因此,由于其结构优势和必要性,CFFP 在各个领域的应用前景非常广阔。与传统的混凝土桩相比,CFFP 因其弹性模量、阻尼比和比重大,在安装时可减少损坏,降低打击范围。桩的承载能力受多种因素的影响,包括其刚度、残余应力和轴向抗载荷能力。由于价格具有竞争力,玻璃纤维已被广泛使用,而碳纤维具有优异的机械性能,因此人们对碳纤维加固混凝土桩的兴趣也越来越大。碳纤维的卓越刚度和强度特性在碳纤维加固混凝土桩中体现得淋漓尽致,其承载能力范围极广,极限轴向承载能力从 500 千牛到 4000 千牛不等。此外,与传统桩基相比,CFFPs 的抗侧向荷载能力更强,这归功于玻璃纤维增强塑料材料的加固作用。传统桩面临的一个挑战是,其结构特性会在腐蚀性海洋环境中恶化,预计使用寿命不到 20 年。相比之下,CFFPs 的使用寿命估计在 50 至 75 年之间。
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来源期刊
Carbon Letters
Carbon Letters CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
7.30
自引率
20.00%
发文量
118
期刊介绍: Carbon Letters aims to be a comprehensive journal with complete coverage of carbon materials and carbon-rich molecules. These materials range from, but are not limited to, diamond and graphite through chars, semicokes, mesophase substances, carbon fibers, carbon nanotubes, graphenes, carbon blacks, activated carbons, pyrolytic carbons, glass-like carbons, etc. Papers on the secondary production of new carbon and composite materials from the above mentioned various carbons are within the scope of the journal. Papers on organic substances, including coals, will be considered only if the research has close relation to the resulting carbon materials. Carbon Letters also seeks to keep abreast of new developments in their specialist fields and to unite in finding alternative energy solutions to current issues such as the greenhouse effect and the depletion of the ozone layer. The renewable energy basics, energy storage and conversion, solar energy, wind energy, water energy, nuclear energy, biomass energy, hydrogen production technology, and other clean energy technologies are also within the scope of the journal. Carbon Letters invites original reports of fundamental research in all branches of the theory and practice of carbon science and technology.
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