Luo Tao, Zhang Chi, Sun Chaowei, Zheng Xinchao, Ji Yanjun, Yuan Xiaosa
Shaanxi Key Laboratory of Safety and Durability of Concrete Structures, Xijing University, Xi'an, Shanxi 710123, China.
Materials (Basel). 2020 Mar 10;13(5):1260. doi: 10.3390/ma13051260.
The reuse of rubber in concrete results in two major opposing effects: an enhancement in durability and a reduction in mechanical strength. In order to strengthen the mechanical properties of rubber concrete, steel fibers were added in this research. The compressive strength, the four-point bending strength, the mass loss rate, and the relative dynamic elastic modulus of steel fiber reinforced rubber concrete, subjected to cyclic freezing and thawing, were tested. The effects of the content of steel fibers on the freeze-thaw resistance are discussed. The microstructure damage was captured and analyzed by Industrial Computed Tomography (ICT) scanning. Results show that the addition of 2.0% steel fibers can increase the compressive strength of rubber concrete by 26.6% if there is no freeze-thaw effect, but the strengthening effect disappears when subjected to cyclic freeze-thaw. The enhancement of steel fibers on the four-point bending strength is effective under cyclic freeze-thaw. The effect of steel fibers is positive on the mass loss rate but negative on the relative dynamic elastic modulus.
耐久性增强和机械强度降低。为了增强橡胶混凝土的力学性能,本研究中添加了钢纤维。对经历循环冻融的钢纤维增强橡胶混凝土的抗压强度、四点弯曲强度、质量损失率和相对动弹性模量进行了测试。讨论了钢纤维含量对抗冻融性的影响。通过工业计算机断层扫描(ICT)扫描捕捉并分析了微观结构损伤。结果表明,在没有冻融作用的情况下,添加2.0%的钢纤维可使橡胶混凝土的抗压强度提高26.6%,但在循环冻融作用下,增强效果消失。在循环冻融条件下,钢纤维对四点弯曲强度的增强作用是有效的。钢纤维对质量损失率的影响是积极的,但对相对动弹性模量的影响是消极的。