Zhang Yongping, Peng Shuai, Du Xiaoqing, Yu Zhenpeng, Wu Jie, Xie Xinghua, Hu Yanli
School of Mechanics and Engineering Science, Shanghai University, Shanghai 200444, China.
Agriculture, Rural and Technology Bureau of Ping'an District, Haidong 810600, China.
Materials (Basel). 2022 Jul 10;15(14):4810. doi: 10.3390/ma15144810.
Recycled concrete, which is formed by replacing coarse aggregates in ordinary concrete with recycled aggregates (RA), is of great significance for the secondary utilization of waste building resources. In civil engineering, concrete structures are sometimes subjected to a compression-shear multiaxial stress state. Therefore, research on the compression-shear multiaxial mechanical properties of recycled concrete plays an important role in engineering practice. To explore the effect of RA replacement rate on the compression-shear properties of recycled concrete, an experimental study was carried out using a compression-shear testing machine and considering five RA replacement rates and five axial compression ratios. Consequently, the failure modes and mechanical property parameters under different working conditions were obtained and were used to analyze the effects of RA replacement rate and axial compression ratio on the shear stress of recycled concrete. Eventually, the following conclusions were reached: With the growth of axial compression ratio, the shear cracks exhibit a developing trend along the oblique direction, and the friction traces on the shear surface are gradually deepened. As the replacement rate increases, the number of shear cracks is gradually increased, accompanied by increasing broken fragments falling off from the shear interface. Since the action of the axial compression ratio can effectively improve the mechanical bite force and friction on the shear interface of recycled concrete, as the axial compression ratio increases, the shear stress is gradually increased. On the other hand, due to the initial damage of RA and its weak adhesion with cement mortar, the shear stress is gradually reduced with the increase of RA replacement rate. Meanwhile, the increase in shear stress shows a gradually decreasing trend with the growth of axial compression ratio. Specifically, for the RA replacement rates of 0% and 100%, the shear stress increased by 4.06 times and 3.21 times, respectively, under the influence of the axial compression ratio. Under different axial compression ratios, the shear stress was reduced by 43~46%, due to the increase of RA replacement rate. In addition, based on the octahedral stress space and the principal stress space, a compression-shear multiaxial failure criterion and shear stress calculation model for recycled concrete were proposed, by considering the effect of the RA replacement rate. The outcomes of this research are of great significance for engineering applications and the development of recycled concrete.
再生混凝土是通过用再生骨料(RA)替代普通混凝土中的粗骨料而形成的,对废弃建筑资源的二次利用具有重要意义。在土木工程中,混凝土结构有时会承受压剪多轴应力状态。因此,研究再生混凝土的压剪多轴力学性能在工程实践中具有重要作用。为了探究再生骨料替代率对再生混凝土压剪性能的影响,使用压剪试验机进行了一项试验研究,考虑了五种再生骨料替代率和五种轴压比。从而获得了不同工况下的破坏模式和力学性能参数,并用于分析再生骨料替代率和轴压比对再生混凝土剪应力的影响。最终得出以下结论:随着轴压比的增加,剪切裂缝呈现沿斜向发展的趋势,剪切面上的摩擦痕迹逐渐加深。随着替代率的增加,剪切裂缝数量逐渐增多,同时从剪切界面脱落的破碎块也越来越多。由于轴压比的作用可以有效提高再生混凝土剪切界面的机械咬合力和摩擦力,随着轴压比的增加,剪应力逐渐增大。另一方面,由于再生骨料的初始损伤及其与水泥砂浆的粘结较弱,剪应力随着再生骨料替代率的增加而逐渐降低。同时,剪应力的增加随着轴压比的增大呈现逐渐减小的趋势。具体而言,对于再生骨料替代率为0%和100%的情况,在轴压比的影响下,剪应力分别增加了4.06倍和3.21倍。在不同轴压比下,由于再生骨料替代率的增加,剪应力降低了43%至46%。此外,基于八面体应力空间和主应力空间,考虑再生骨料替代率的影响,提出了再生混凝土的压剪多轴破坏准则和剪应力计算模型。本研究成果对工程应用和再生混凝土的发展具有重要意义。