Li Xiaohui, Li Lijuan, Zheng Yingming, Li Yanlong, Chen Zijiang, Xiao Jie, Yuan Min, Zhang Jian, Pan Zezhou, Xiong Zhe
School of Civil and Transportation Engineering, Guangdong University of Technology, Guangzhou 510006, China.
Guangzhou Building Development and Construction Co., Ltd., Guangzhou 510000, China.
Materials (Basel). 2023 Jun 30;16(13):4731. doi: 10.3390/ma16134731.
With the development of the automotive industry, a large amount of waste rubber is produced every year. The application and development of recycled rubber concrete (RRC) can effectively reduce 'black pollution' caused by waste rubber. However, the addition of recycled rubber particles can lead to a decrease in the compressive behavior of concrete. Previous research has demonstrated that by preventing crack growth, fiber addition can increase the strength and ductility of concrete. In this work, a total of 28 RRC mixes are designed, and the compressive behavior of RRC reinforced by steel fibers (SFs) and glass fibers (GFs) is investigated. The workability of fresh RRC can be negatively impacted by an increase in both fiber contents, with the GF content having a more notable effect. With the addition of fibers, the maximum increase rates for the compressive strength, elastic modulus, strain at peak stress, and compressive toughness were 27%, 8%, 45%, and 152%, respectively. A constitutive model is concurrently put forward to forecast the stress-strain curves of RRC with various fiber contents. These findings indicate that the maximum improvement in compressive behavior is achieved when the GF content was 0.4% and the SF content was 1.2%. The proposed constitutive model can be used to predict the stress-strain curve of hybrid fiber-reinforced recycled rubber concrete (HFRRRC).
随着汽车工业的发展,每年都会产生大量的废旧橡胶。再生橡胶混凝土(RRC)的应用与开发能够有效减少废旧橡胶造成的“黑色污染”。然而,添加再生橡胶颗粒会导致混凝土的抗压性能下降。先前的研究表明,通过阻止裂缝扩展,添加纤维可以提高混凝土的强度和延性。在本研究中,共设计了28种RRC混合料,并研究了钢纤维(SFs)和玻璃纤维(GFs)增强RRC的抗压性能。纤维含量的增加会对新拌RRC的工作性产生负面影响,其中GF含量的影响更为显著。添加纤维后,抗压强度、弹性模量、峰值应力应变和抗压韧性的最大增长率分别为27%、8%、45%和152%。同时提出了一个本构模型来预测不同纤维含量的RRC的应力应变曲线。这些结果表明,当GF含量为0.4%且SF含量为1.2%时,抗压性能得到最大改善。所提出的本构模型可用于预测混杂纤维增强再生橡胶混凝土(HFRRRC)的应力应变曲线。