Xianfeng Wang
Shenzhen University
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Featured researches published by Xianfeng Wang.
Materials | 2013
Xianfeng Wang; Feng Xing; Ming Zhang; Ningxu Han; Zhiwei Qian
The recovery behavior for strength and impermeability of cementitious composites embedded with organic microcapsules was investigated in this study. Mortar specimens were formed by mixing the organic microcapsules and a catalyst with cement and sand. The mechanical behaviors of flexural and compression strength were tested. The results showed that strength could increase by up to nine percent with the addition of a small amount of microcapsules and then decrease with an increasing amount of microcapsules. An orthogonal test for investigating the strength recovery rate was designed and implemented for bending and compression using the factors of water/cement ratio, amount of microcapsules, and preloading rate. It is shown that the amount of microcapsules plays a key role in the strength recovery rate. Chloride ion permeability tests were also carried out to investigate the recovery rate and healing effect. The initial damage was obtained by subjecting the specimens to compression. Both the recovery rate and the healing effect were nearly proportional to the amount of microcapsules. The obtained cementitious composites can be seen as self-healing owing to their recovery behavior for both strength and permeability.
Scientific Reports | 2015
Wei Xiong; Jiaoning Tang; Guangming Zhu; Ningxu Han; Erik Schlangen; Biqin Dong; Xianfeng Wang; Feng Xing
Steel is prone to corrosion induced by chloride ions, which is a serious threat to reinforced concrete structures, especially in marine environments. In this work, we report a novel capsule-based self-recovery system that utilizes chloride ions as a trigger. These capsules, which are functionalized via a smart response to chloride ions, are fabricated using a silver alginate hydrogel that disintegrates upon contact with chloride ions, and thereby releases the activated core materials. The experimental results show that the smart capsules respond to a very low concentration of chloride ions (0.1u2009wt%). Therefore, we believe that this novel capsule-based self-recovery system will exhibit a promising prospect for self-healing or corrosion inhibition applications.
Materials | 2017
Xianfeng Wang; Peipei Sun; Ningxu Han; Feng Xing
Encapsulation of healing agents embedded in a material matrix has become one of the major approaches for achieving self-healing function in cementitious materials in recent years. A novel type of microcapsules based self-healing cementitious composite was developed in Guangdong Provincial Key Laboratory of Durability for Marine Civil Engineering, Shenzhen University. In this study, both macro performance and the microstructure of the composite are investigated. The macro performance was evaluated by employing the compressive strength and the dynamic modulus, whereas the microstructure was represented by the pore structure parameters such as porosity, cumulative-pore volume, and average-pore diameter, which are significantly correlated to the pore-size distribution and the compressive strength. The results showed that both the compressive strength and the dynamic modulus, as well as the pore structure parameters such as porosity, cumulative-pore volume, and average-pore diameter of the specimen decrease to some extent with the amount of microcapsules. However, the self-healing rate and the recovery rate of the specimen performance and the pore-structure parameters increase with the amount of microcapsules. The results should confirm the self-healing function of microcapsules in the cementitious composite from macroscopic and microscopic viewpoints.
Journal of Earthquake and Tsunami | 2013
Biqin Dong; Ningxu Han; Ming Zhang; Xianfeng Wang; Hongzhi Cui; Feng Xing
In the study, a novel microcapsule technology based self-healing system for concrete structures has been developed. Through situ-polymerization reaction, the microcapsule is formed by urea formaldehyde resin to pack the epoxy material, which is applied to cementitious composite to achieve self-healing effect. The experimental results revealed that the self-healing efficiency of the composite can be accessed from the recovery of the permeability and strength for the cracked cementitious specimens as the healing agent in the microcapsule acting on the cracks directly. Scanning electronic microscope (SEM/EDX) results show that the epoxy resin is released along with the cracking of the cementitious composite and prevent from cracks continued growth. Further studies show that the self-healing efficiency is affected by the pre-loading of composite, particle size of microcapsule, aging duration of healing agent and so on.
Construction and Building Materials | 2017
Xianfeng Wang; C. Fang; W.Q. Kuang; Dongxu Li; Ningxu Han; Feng Xing
Construction and Building Materials | 2017
Xianfeng Wang; C. Fang; W.Q. Kuang; Dongxu Li; Ningxu Han; Feng Xing
Construction and Building Materials | 2018
Xianfeng Wang; Y.J. Huang; G.Y. Wu; C. Fang; Dongxu Li; Ningxu Han; Feng Xing
Cement & Concrete Composites | 2018
Xianfeng Wang; Cheng Fang; Dawang Li; Ningxu Han; Feng Xing
Applied Mathematical Modelling | 2018
Dawang Li; Long-yuan Li; Xianfeng Wang; Feng Xing
Construction and Building Materials | 2017
Xianfeng Wang; C. Fang; W.Q. Kuang; Dongxu Li; Ningxu Han; Feng Xing