Open Access
Issue
E3S Web Conf.
Volume 248, 2021
2021 3rd International Conference on Civil Architecture and Energy Science (CAES 2021)
Article Number 03039
Number of page(s) 5
Section Research on Civil Water Conservancy Engineering and Urban Architecture
DOI https://doi.org/10.1051/e3sconf/202124803039
Published online 12 April 2021
  1. Li Yan, Lin Chaodong. Study on Mechanical Properties of Industrial Recyclable Steel Fiber Reinforcement Concrete [J]. Sichuan Building Materials, 2018, 44 (3): 4–5. [Google Scholar]
  2. Yang Juan, Peng Gaifei, Shui Guoshuang. Mechanical properties of recycled steel fiber reinforced ultra-high performance concrete [J]. The composite material Journal of materials: 1–8. [Google Scholar]
  3. Zhang Yancong, Shen Junmin. Experimental Study on Mechanical Properties of Steel Fiber Reinforcement Concrete with Waste Tire [J]. China and Foreign Highway, 2018, 38 (5): 221–224. [Google Scholar]
  4. Gao Lingling. Experimental Study on the Bending Toughness of Steel Fiber Reinforcement Concrete with Waste Tire [J]. New building materials, [Google Scholar]
  5. Zeng Haibin. Research on Seismic Performance of Waste Steel Fiber Rubber Recycled Concrete Frame Joins [D]. Guangdong University of Technology, 2014. [Google Scholar]
  6. Chen Youde. Study on Mechanical Properties of Waste Steel Fiber Rubber Recycled Concrete Short Columns [D]. Guangdong University of Technology, 2013. [Google Scholar]
  7. Du Yuanfang, Wang Shiliang, Yu Binshan, et al. Study on the Influence of Hybrid Recycled Fiber on the Strength of Recycled Concrete [J]. Industrial Construction, 2013, (11):12–15. [Google Scholar]
  8. Li Yan, Lin Chaodong. Study on Mechanical Properties of Industrial Recyclable Steel Fiber Reinforcement Concrete [J]. Sichuan Building Materials, 2018, 44(3):4–5. [Google Scholar]
  9. Aiello M A, Leuzzi F, Centonze G, et al. Use of steel fibres recovered from waste tyres as reinforcement in concrete:pull-out behaviour, compressive and flexural strength[J]. Waste Manag, 2009, 29(6):.1960–70. [PubMed] [Google Scholar]
  10. Centonze G, Leone M, Aiello M A. Steel fibers from waste tires as reinforcement inconcrete:A mechanical characterization[J]. Construction and Building Materials, 2012, 36:46–57. [Google Scholar]
  11. Sengul O. Mechanical behavior of concretes containing waste steel fibers recovered from scrap tires[J] Construction and Building Materials, 2016, 122:649–658. [Google Scholar]
  12. Martinelli E, Caggiano A, Xargay H. An experimental study on the post-cracking behaviour of Hybrid Industrial/Recycled Steel Fibre-Reinforced Concrete[J]. Construction| and Building Materials, 2015, 94290–298. [Google Scholar]
  13. Sengul O. Mechanical behavior of concretes containing waste steel fibers recovered| from scrap tires[J] Construction and Building Materials, 2016, 122:649–658. [Google Scholar]
  14. Ahmadi M, Farzin S, Hassani A, et al. Mechanical properties of the concrete containing recycled fibers and aggregates[J] Construction and Building Materials, 2017, 144:392–398. [Google Scholar]
  15. Caggiano A, Folino P, Lima C, et al. On the mechanical response of Hybrid Fiber Reinforced Concrete with Recycled and Industrial Steel Fibers[J]. Construction and Building Materials, 2017, 147:286–295. 36:46-57. [Google Scholar]
  16. A-Musawi H, Figueiredo F P, Bermal S A, et al. Performance of rapid hardeningrecycled clean steel fibre materials[J]. Construction and Building Materials, 2019,195:483–496. [Google Scholar]
  17. Grzymski F, Musial M, Trapko T. Mechanical properties of fibre reinforced concrete with recycled fibres([] Construction and Building Materials, 2019, 198:323–331. [Google Scholar]
  18. WANG Baomin, LIU Wei. Research Progress of Cement Concrete Mixed with Waste Rubber Particles in Foreign Countries [J]. Concrete, 2010, (4): 54 + 103–56. [Google Scholar]
  19. Pan Dongping, Liu Feng, Li Lijuan, et al. Application and Research Overview of Rubber Concrete [J]. Rubber Industry, 2007, (3): 182–185. [Google Scholar]
  20. LI Yue, WANG Ling. Review on Research Progress of Rubber Aggregate Concrete [J]. Concrete, 2006, (04):91–93+95. (in Chinese)Experimental study on performance of cement concrete mixed with waste tire rubber powder [D]. Dalian University of Technology, 2010. [Google Scholar]
  21. Guo S, Dai Q, Si R, et al. Evaluation of properties and performance of rubber-modified concrete for recycling of waste scrap tire[J]. Journal of Cleaner Production, 2017,148:681–689. [Google Scholar]
  22. Onuaguluchi O, Banthia N. Scrap tire steel fiber as a substitute for commercial steel fiber in cement mortar: Engineering properties and cost-benefit analyses [J] ° Resources,Conservation and Recycling, 2018, 134:248–256. [Google Scholar]
  23. Mastali M, Dalvand A, Sattarifard A R, et al. Development of eco-efficient and cost-effective reinforced self- consolidation concretes with hybrid industrial/recycled steel fibers[J]. Construction and Building Materials, 2018, 166:214–226. [Google Scholar]
  24. Centonze G, Leone M, Aiello M A. Steel fibers from waste tires as reinforcement in concrete: A mechanical characterization[J]. Construction and Building Materials, 2012,36:46–57. [Google Scholar]
  25. Yang Chengjiao. Experimental study on mechanical properties and durability of hybrid fiber reinforced concrete [D]. Dalian University of Technology, 2007 [Google Scholar]

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