Compression-shear performance and failure criteria of seawater sea-sand engineered cementitious composites with polyethylene fibers
暂无分享,去创建一个
Jiangtao Yu | Kequan Yu | Y. Su | Qiao Liao
[1] Mi Li,et al. A review on high-strength engineered cementitious composites (HS-ECC): Design, mechanical property and structural application , 2022, Structures.
[2] Jiangtao Yu,et al. Shaking-Table Test on a Two-Story Timber-Framed Masonry Structure Retrofitted with Ultra-High Ductile Concrete , 2022, Journal of Structural Engineering.
[3] Xingzhou Chen,et al. Formation Mechanism and Stability Analysis of the Hejia Landslide , 2021, Advances in Materials Science and Engineering.
[4] F. Jiang,et al. Experimental study of reinforced UHDC-UHPC panels under close-in blast loading , 2021, Journal of Building Engineering.
[5] S. Luo,et al. Review of the Properties of Fiber-Reinforced Polymer-Reinforced Seawater–Sea Sand Concrete , 2021 .
[6] Zhigang Zhang,et al. Sustainable high strength, high ductility engineered cementitious composites (ECC) with substitution of cement by rice husk ash , 2021 .
[7] Kai Qian,et al. Experimental and modeling research on compression-shear behavior of carbon fiber reinforced coral concrete , 2021 .
[8] Jiangtao Yu,et al. Development of ultra-high ductility engineered cementitious composites as a novel and resilient fireproof coating , 2021 .
[9] Z. Deng,et al. Mechanical performance and failure criterion of coral concrete under combined compression-shear stresses , 2021 .
[10] Qiao Huang,et al. Experimental study and failure criterion analysis on combined compression-shear performance of rubber concrete (RC) with different rubber replacement ratio , 2021 .
[11] V. Li,et al. 3D-printable engineered cementitious composites (3DP-ECC): Fresh and hardened properties , 2021 .
[12] Lian-heng Zhao,et al. Variation Analysis of Uplift Bearing Characteristics of Strip Anchor Plate in Nonhomogeneous Materials , 2021 .
[13] Jianzhuang Xiao,et al. Mechanical properties of recycled aggregate concrete under compression-shear stress state , 2021, Construction and Building Materials.
[14] V. Li,et al. Seawater sea-sand engineered/strain-hardening cementitious composites (ECC/SHCC): Assessment and modeling of crack characteristics , 2021 .
[15] Jianzhuang Xiao,et al. Fresh and anisotropic-mechanical properties of 3D printable ultra-high ductile concrete with crumb rubber , 2021 .
[16] L. Xiao,et al. Combined compression-shear performance and failure criteria of internally cured concrete with super absorbent polymer , 2021 .
[17] Jiangtao Yu,et al. Prediction on the flexural deflection of ultra-high strength rebar reinforced ECC beams at service loads , 2021 .
[18] J. Dai,et al. High-strength seawater sea-sand Engineered Cementitious Composites (SS-ECC): Mechanical performance and probabilistic modeling , 2020 .
[19] Deju Zhu,et al. A review on durability of fiber reinforced polymer (FRP) bars reinforced seawater sea sand concrete , 2020 .
[20] S. Yin,et al. Crack development and calculation method for the flexural cracks in BFRP reinforced seawater sea-sand concrete (SWSSC) beams , 2020 .
[21] J. Dai,et al. Seawater sea-sand Engineered Cementitious Composites (SS-ECC) for marine and coastal applications , 2020 .
[22] F. Xing,et al. Use of nano-SiO2 to develop a high performance green lightweight engineered cementitious composites containing fly ash cenospheres , 2020 .
[23] Jiangtao Yu,et al. A theoretical model for the anti-fatigue design of steel reinforced ECC composite system under flexure , 2020 .
[24] S. Yin,et al. Bearing behavior and serviceability evaluation of seawater sea-sand concrete beams reinforced with BFRP bars , 2020 .
[25] Chuanlong Zhang,et al. Experimental Study and Failure Criterion Analysis on Combined Compression-Shear Performance of Self-Compacting Concrete , 2020, Materials.
[26] Jianzhuang Xiao,et al. Corrigendum to “Feasibility of using ultra-high ductility cementitious composites for concrete structures without steel rebar” [Eng. Struct. 170 (2018) 11–20] , 2019, Engineering Structures.
[27] Yu Jiangtao,et al. Feasibility of using seawater to produce ultra‐high ductile cementitious composite for construction without steel reinforcement , 2018, Structural Concrete.
[28] Xinghua Xie,et al. Experimental study and failure criterion analysis of plain concrete under combined compression-shear stress , 2018, Construction and Building Materials.
[29] Yao Ding,et al. Basic mechanical properties of ultra-high ductility cementitious composites: From 40 MPa to 120 MPa , 2018 .
[30] Antonio Nanni,et al. Use of sea-sand and seawater in concrete construction: Current status and future opportunities , 2017 .
[31] Mohamed Maalej,et al. Application of Engineered Cementitious Composites (ECC) in interior beam–column connections for enhanced seismic resistance , 2014 .
[32] Dong Yang,et al. Study on behaviour and strength of SFRC under combined action of compression and shear , 2011 .
[33] K. T. Chau,et al. Shear Strength Components of Concrete Under Direct Shearing , 2007 .
[34] Riadh Al-Mahaidi,et al. Behaviour of concrete under shear and normal stresses , 2003 .
[35] V. Li,et al. Crack bridging in fiber reinforced cementitious composites with slip-hardening interfaces , 1997 .
[36] V. Li,et al. Flexural/tensile-strength ratio in engineered cementitious composites , 1994 .
[37] V. Li,et al. Steady-state and multiple cracking of short random fiber composites , 1992 .
[38] Shuaib H. Ahmad,et al. Behavior of Normal and High-Strength Concrete Under Combined Compression-Shear Loading , 1988 .
[39] C. Bellamy. Strength of Concrete Under Combined Stress , 1961 .