Experimental study and finite element analysis on interfacial mechanical behaviors of steel-UHPC composite structures in acidic environments

IF 7.4 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Youzhu Lin , Shuai Zhu , Xinya Mao , Ming Sun , Jiachuan Yan
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引用次数: 0

Abstract

Steel-concrete-steel (SCS) composite structures with ultra-high performance concrete (UHPC) are recognized for their durability and versatility, particularly in harsh environments such as acidic conditions. This study investigates the mechanical behavior at the steel-UHPC interface in SCS systems, focusing on the performance of studs as shear connectors under acidic exposure. Push-out tests were conducted to analyze mechanical performance and failure mechanisms at the interface. The results show that UHPC enhances mechanical performance by 65.4 %, improves ductility by 97.6 %, and significantly reduces crack propagation, offering greater resistance to acidic conditions compared to ordinary concrete. These findings highlight the critical role of UHPC in strengthening the interface and improving durability in aggressive environments. To extend the experimental findings, finite element (FE) analysis was used to develop theoretical models for interfacial shear capacity. A constitutive model integrating machine learning and elastoplastic damage mechanics was introduced to simulate the degradation of UHPC under acidic conditions with high accuracy. The FE model was validated using experimental data, providing detailed insights into the load transfer mechanisms at the interface. By combining experimental and theoretical approaches, this study develops a predictive model for interfacial shear capacity, offering practical guidance for designing durable and reliable SCS systems in demanding environments.
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来源期刊
Construction and Building Materials
Construction and Building Materials 工程技术-材料科学:综合
CiteScore
13.80
自引率
21.60%
发文量
3632
审稿时长
82 days
期刊介绍: Construction and Building Materials offers an international platform for sharing innovative and original research and development in the realm of construction and building materials, along with their practical applications in new projects and repair practices. The journal publishes a diverse array of pioneering research and application papers, detailing laboratory investigations and, to a limited extent, numerical analyses or reports on full-scale projects. Multi-part papers are discouraged. Additionally, Construction and Building Materials features comprehensive case studies and insightful review articles that contribute to new insights in the field. Our focus is on papers related to construction materials, excluding those on structural engineering, geotechnics, and unbound highway layers. Covered materials and technologies encompass cement, concrete reinforcement, bricks and mortars, additives, corrosion technology, ceramics, timber, steel, polymers, glass fibers, recycled materials, bamboo, rammed earth, non-conventional building materials, bituminous materials, and applications in railway materials.
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