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Research Article Issue
Bonding Performance Between Fiber Reinforced Polymer Bars and Full Coral Aggregate Seawater Sea–Sand Sulphoaluminate Cement Concrete
Journal of the Chinese Ceramic Society 2025, 53(8): 2328-2339
Published: 30 May 2025
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Introduction

In marine environments, the conventional steel reinforcement is prone to corrosion, leading to severe damage to concrete. Additionally, the deficiencies of ordinary concrete in terms of resistance to marine corrosion and impermeability significantly shorten the service life of marine concrete structures, which has attracted widespread attention. To enhance the durability of marine concrete, researchers are actively exploring new solutions. Among these, the use of FRP (Fiber Reinforced Polymer) reinforcement to replace traditional steel bars effectively addresses the issue of steel corrosion. Calcium sulfoaluminate (CSA) cement concrete, with its characteristics of early strength, high strength, corrosion resistance, and excellent impermeability, is particularly suitable for marine concrete structures that require high early-strength and durability. Based on this, the present study investigates the specific impact of different bond lengths of GFRP (Glass Fiber Reinforced Polymer) and BFRP (Basalt Fiber Reinforced Polymer) reinforcement on the bonding performance of the FRP-CSA full-coral aggregate concrete system.

Methods

This study investigated the influence of different bond lengths of FRP bars in full coral aggregate seawater sea-sand sulphoaluminate cement concrete (FCASS-CSAC) on the bond properties. This study used two different types of bars (GFRP and BFRP) and three different bond lengths (5 d, 7.5 d, 10 d, where d represents the diameter of the bars) to cross combine into 6 different types of specimens. All specimens were demolded after 24 h treatment and cured for 28 d in a standard curing chamber (temperature of (20±2) ℃, relative humidity of 95%). Subsequently, compressive strength tests and central pull-out tests were conducted to investigate the bond performance between FCASS-CSAC and FRP bars.

Results and discussion

When the bond length of BFRP and GFRP reinforcement bars is 5 d, the bond stress is generally higher than when the bond length is 7.5 d or 10 d. Specifically, for BFRP bars, the bond strength at a bond length of 5 d is approximately 30% and 60% higher than that at bond lengths of 7.5 d and 10 d, respectively. The bonding performance of BFRP and GFRP reinforcement bars was compared, and the results show that, in the absence of ribbed features, BFRP reinforcement typically exhibits superior bonding performance, with the bond strength generally about 40% higher than that of GFRP bars. This suggests that BFRP reinforcement has a potential advantage in providing stronger bond strength, which may be related to its material properties and the way it interacts with the matrix.

Conclusions

The main conclusions of this study are summarized as follows. The bonding performance of BFRP reinforcement with FCASS-CSAC is generally superior to that of GFRP reinforcement, with an overall bond strength about 40% higher. The bond strength of both types of reinforcement decreases as the bond length increases, with BFRP reinforcement showing a significantly higher bond strength at a bond length of 5 d compared to 7.5 d and 10 d. Based on the experimental results, an empirical formula for predicting bond strength was proposed. Furthermore, finite element simulation analysis was conducted, and the analysis results showed good agreement with the experimental findings.

Review Issue
Properties of Recycled Coarse Aggregate Concrete Modified by Silica Nanoparticles: A Short Review
Journal of the Chinese Ceramic Society 2023, 51(8): 2045-2053
Published: 05 May 2023
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Compared to the properties of ordinary concrete, the recycled coarse aggregate concrete exhibits the lower strength and poor durability due to many pores and micro-cracks inside the recycled coarse aggregates and the old mortar attached to the aggregate surface. However, the silica nanoparticles with a high pozzolanic activity, a crystalline nucleation effect and a filling effect plays an important role in the application of modified recycled coarse aggregate concrete. Recent work on the properties of recycled coarse aggregate concrete modified by silica nanoparticles was analyzed in terms of workability, mechanical properties, durability and interfacial structure, etc. The modification mechanism of silica nanoparticles to improve the performance of recycled coarse aggregate concrete was further discussed, thus providing some theoretical and technical supports for the application of silica nanoparticles in the performance improvement of recycled coarse aggregate concrete.

Research Article Issue
Chloride Ingress into Alkali-Activated Concrete Under Drying–Wetting Cycles
Journal of the Chinese Ceramic Society 2022, 50(6): 1607-1615
Published: 30 May 2022
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Alkali-activated concrete (AAC) prepared without cement with the performance of rapid hardening, high strength and good durability, is recognized as one of novel green building materials with a wide application potential. Chloride ingress into concrete to cause the process of steel corrosion is one of the main reasons to the durability failure of reinforced concrete structures, particularly exposed to marine cyclic drying–wetting zones. It is thus of great significance for the development of durability theory to conduct the chloride ingress resistance analysis of AAC under drying-wetting cycles. Compared with concrete C50, the effects of cyclic drying-wetting time ratio (i.e. 3.0:1.0, 11.0:1.0 and 85.4:1.0) and exposure time (i.e. 30, 90 and 180 d) on the chloride ingress properties of AAC were investigated via a designed automatic experimental set-up of cyclic drying–wetting test. A theoretical model of chloride ingress into AAC under drying-wetting cycles was proposed for numerical calculation. The results show that the chloride content within AAC is obviously less than that in concrete C50. This is because AAC has a smaller porosity and a denser pore microstructure rather than concrete C50, thus exhibiting a better resistance to chloride ingress. The surface chloride concentration and apparent chloride diffusion coefficient of AAC first increase and then decrease as the cyclic drying–wetting time ratio increases. It is indicated that the numerical data of chloride profiles calculated by the proposed model of chloride transport into unsaturated concrete under various conditions of the drying–wetting cycles are in reasonable agreement with the experimental results.

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