Influence of protective coating on flexural behaviour of high strength self-compacting geopolymer concrete beams exposed to standard fire temperature
暂无分享,去创建一个
[1] T. Kiran,et al. Pull-Out behavior and microstructure characteristics of binary blended self-compacting geopolymer concrete subjected to elevated temperature , 2023, Alexandria Engineering Journal.
[2] N. Anand,et al. Behavioural studies on binary blended high strength self compacting geopolymer concrete exposed to standard fire temperature , 2023, Ain Shams Engineering Journal.
[3] N. Anand,et al. Engineering properties, sustainability performance and life cycle assessment of high strength self-compacting geopolymer concrete composites , 2023, Construction and Building Materials.
[4] Zike Wang,et al. Bond Performance between Frp Bars and Geopolymer Concrete after Elevated Temperature Exposure , 2023, SSRN Electronic Journal.
[5] Q. Shi,et al. Flexural toughness and its evaluation method of ultra-high performance concrete cured at room temperature , 2023, Journal of Building Engineering.
[6] Krishanu Roy,et al. Influence of Nano Composites on the Impact Resistance of Concrete at Elevated Temperatures , 2023, Fire.
[7] F. Ding,et al. Numerical analysis on mechanical behavior of steel‐concrete composite beams under fire , 2023, The Structural Design of Tall and Special Buildings.
[8] N. Anand,et al. Nanomaterials in geopolymer composites: A review , 2023, Developments in the Built Environment.
[9] Rayed Alyousef,et al. Promoting the green Construction: Scientometric review on the mechanical and structural performance of geopolymer concrete , 2023, Construction and Building Materials.
[10] F. Ding,et al. Numerical study on the fire behaviour of restrained steel-concrete composite beams , 2023, Journal of Building Engineering.
[11] T. Kiran,et al. Investigation of physical, chemical, mechanical, and microstructural properties of cement-less concrete – state-of-the-art review , 2023, Construction and Building Materials.
[12] U. J. Alengaram,et al. Promulgation of engineering and sustainable performances of self-compacting geopolymer concrete , 2023, Journal of Building Engineering.
[13] H. Kucukgoncu,et al. Comprehensive experimental analysis of the effects of elevated temperatures in geopolymer concretes with variable alkali activator ratios , 2023, Journal of Building Engineering.
[14] Zhenzhen Jiao,et al. Sulfate resistance of class C/class F fly ash geopolymers , 2023, Journal of Materials Research and Technology.
[15] Chengqing Wu,et al. Experimental investigation of heating–cooling effects on the mechanical properties of geopolymer-based high performance concrete heated to elevated temperatures , 2023, Structures.
[16] Xiangzhou Liang,et al. A state-of-the-art review: Shear performance of the concrete beams reinforced with FRP bars , 2023, Construction and Building Materials.
[17] S. Limkatanyu,et al. Use of Cement Mortar Incorporating Superabsorbent Polymer as a Passive Fire-Protective Layer , 2022, Polymers.
[18] L. Jin,et al. Effect of stirrup ratio on impact response of BFRP-reinforced concrete beams under different energy levels , 2022, International Journal of Impact Engineering.
[19] N. Anand,et al. Investigation on engineering properties and micro-structure characteristics of low strength and high strength geopolymer composites subjected to standard temperature exposure , 2022, Case Studies in Construction Materials.
[20] Balamurali Kanagaraj,et al. Performance evaluation on engineering properties of sodium silicate binder as a precursor material for the development of cement-free concrete , 2022, Developments in the Built Environment.
[21] G. Long,et al. Experimental investigation on flexural and compressive toughness of mortar and concrete with hybrid toughening materials , 2022, Structures.
[22] Balamurali Kanagaraj,et al. Performance evaluation of sodium silicate waste as a replacement for conventional sand in geopolymer concrete , 2022, Journal of Cleaner Production.
[23] U. J. Alengaram,et al. Performance evaluation on engineering properties and sustainability analysis of high strength geopolymer concrete , 2022, Journal of Building Engineering.
[24] Yongqiang Zhang,et al. Flexural bearing capacity and stiffness of stiffened hollow glulam beams: Experiments, finite element analysis and calculation theory , 2022, Construction and Building Materials.
[25] Daolin Xu,et al. Flexural wave attenuation by metamaterial beam with compliant quasi-zero-stiffness resonators , 2022, Mechanical Systems and Signal Processing.
[26] M. Z. Naser,et al. Failure mode classification and deformability evaluation for concrete beams reinforced with FRP bars , 2022, Composite Structures.
[27] E. Mohseni,et al. Flexural response of FRP-strengthened lightweight RC beams: hybrid bond efficiency of L‐shape ribbed bars and NSM technique , 2022, Archives of Civil and Mechanical Engineering.
[28] T. Kiran,et al. Development and strength assessment of eco-friendly geopolymer concrete made with natural and recycled aggregates , 2022, Construction Innovation.
[29] Q. Yu,et al. Thermal and fire resistance of Class F fly ash based geopolymers – A review , 2022, Construction and Building Materials.
[30] M. Amran,et al. Fire resistance of geopolymer concrete: A critical review , 2022, Construction and Building Materials.
[31] Mo Zhang,et al. Coating performance, durability and anti-corrosion mechanism of organic modified geopolymer composite for marine concrete protection , 2022, Cement and Concrete Composites.
[32] Ali S. Alqarni,et al. Flexural performance and ductility of RC beams made using natural LWA , 2022, Case Studies in Construction Materials.
[33] Bassam A. Tayeh,et al. Effect of elevated temperatures on mechanical properties of lightweight geopolymer concrete , 2021 .
[34] A. Tang,et al. Investigation on the flexural toughness evaluation method and surface cracks fractal characteristics of polypropylene fiber reinforced cement-based composites , 2021 .
[35] Jihui Zhao,et al. Chloride ion binding effect and corrosion resistance of geopolymer materials prepared with seawater and coral sand , 2021, Construction and Building Materials.
[36] Muhammad Izhar Shah,et al. Geopolymer concrete as sustainable material: A state of the art review , 2021, Construction and Building Materials.
[37] W. Oyawa,et al. Ductility performance of reinforced rubberised concrete beams incorporating burnt clay powder , 2021, Heliyon.
[38] Celso Pissinatti,et al. The influence of the reinforced concrete deformability in the design of slender columns , 2021 .
[39] N. Anand,et al. Influence of Various Design Parameters on Compressive Strength of Geopolymer Concrete: A Parametric study by Taguchi Method , 2021, International Journal of Engineering.
[40] Yan Wang,et al. Flexural toughness characteristics of basalt fiber reinforced shotcrete composites in high geothermal environment , 2021 .
[41] Xiu-li Du,et al. Bond-slip behavior between concrete and deformed rebar at elevated temperature: Mesoscale simulation and formulation , 2021, International Journal of Mechanical Sciences.
[42] T. Hasegawa,et al. Detection of beam-end fractures in steel members based on local stiffness calculated by strain response , 2021 .
[43] Muhammad Wasim,et al. A state-of-the-art review on the durability of geopolymer concrete for sustainable structures and infrastructure , 2021, Construction and Building Materials.
[44] D. V. Ribeiro,et al. Durability and service life analysis of metakaolin-based geopolymer concretes with respect to chloride penetration using chloride migration test and corrosion potential , 2021 .
[45] I. Türkmen,et al. Improving elevated temperature performance of geopolymer concrete utilizing nano-silica, micro-silica and styrene-butadiene latex , 2021 .
[46] A. Rezaeian,et al. Compressive stress-strain model and residual strength of self-compacting concrete containing recycled ceramic aggregate after exposure to fire , 2021 .
[47] V. Kodur,et al. Investigation on Bond strength of Self-Compacting Concrete Exposed to Elevated Temperature , 2021 .
[48] T. Charinpanitkul,et al. Hybrid effect of carbon nanotubes and polypropylene fibers on mechanical properties and fire resistance of cement mortar , 2021 .
[49] Sief aldeen Odaa,et al. Self-compacting concrete beams reinforced with steel fiber under flexural loads: A ductility index evaluation , 2021 .
[50] Mohamed H. Mussa,et al. Flexural ductility performance of hybrid-recycled aggregate reinforced concrete T-beam , 2021 .
[51] Chao Liu,et al. Study on long-term performance and flexural stiffness of recycled aggregate concrete beams , 2020 .
[52] Orhan Canpolat,et al. Assessment of geopolymer composites durability at one year age , 2020 .
[53] Y. Al-Salloum,et al. Bond strength between concrete substrate and metakaolin geopolymer repair mortars at ambient and elevated temperatures , 2020 .
[54] Jianqiao Ye,et al. A unified method for calculating the fire resistance of concrete-filled steel tube with fire protection under combined loading , 2020, Journal of Constructional Steel Research.
[55] V. Kodur,et al. Experimental behavior of ultra high performance fiber reinforced concrete beams under fire conditions , 2020 .
[56] A. Sadrmomtazi,et al. Residual strength and microstructure of fiber reinforced self-compacting concrete exposed to high temperatures , 2020 .
[57] Hongwei Lin,et al. Analytical model for the bond stress-slip relationship of deformed bars in normal strength concrete , 2019, Construction and Building Materials.
[58] Abdullah Zawawi Awang,et al. Structural and material performance of geopolymer concrete: A review , 2018, Construction and Building Materials.
[59] N. Abdel-Ghani,et al. Geopolymer synthesis by the alkali-activation of blastfurnace steel slag and its fire-resistance , 2018, HBRC Journal.
[60] P. Chindaprasirt,et al. Residual flexural behavior of fiber reinforced concrete after heating , 2018, Materials and Structures.
[61] B. Tahmouresi,et al. Effect of Fiber on Mechanical Properties and Toughness of Self-Compacting Concrete Exposed to High Temperatures , 2017 .
[62] Xi Chen,et al. Experimental research on hysteretic behaviors of corroded reinforced concrete columns with different maximum amounts of corrosion of rebar , 2016 .
[63] Hongwei Lin,et al. Effects of confinements on the bond strength between concrete and corroded steel bars , 2016 .
[64] Niyazi Özgür Bezgin,et al. An experimental evaluation to determine the required thickness of passive fire protection layer for high strength concrete tunnel segments , 2015 .
[65] Prabir Sarker,et al. Fire endurance of steel reinforced fly ash geopolymer concrete elements , 2015 .
[66] Mahyuddin Ramli,et al. An overview on the influence of various factors on the properties of geopolymer concrete derived from industrial by-products , 2015 .
[67] P. P. Nomikos,et al. Potassium based geopolymer for passive fire protection of concrete tunnels linings , 2014 .
[68] Zuhua Zhang,et al. The effects of phase changes on the bonding property of geopolymer to hydrated cement , 2013 .
[69] Kyung-Taek Koh,et al. The mechanical properties of fly ash-based geopolymer concrete with alkaline activators , 2013 .
[70] Tamer Dirikgil,et al. Experimental investigation of mechanical properties of hybrid fiber reinforced concrete samples and prediction of energy absorption capacity of beams by fuzzy-genetic model , 2013 .
[71] F. Collins,et al. Carbon dioxide equivalent (CO2-e) emissions: A comparison between geopolymer and OPC cement concrete , 2013 .
[72] N. Shafiq,et al. Effects of micro-structure characteristics of interfacial transition zone on the compressive strength of self-compacting geopolymer concrete , 2013 .
[73] H. A. Razak,et al. Assessment of effectiveness of CFRP repaired RC beams under different damage levels based on flexural stiffness , 2012 .
[74] Jay G. Sanjayan,et al. Relationship between inter-aggregate spacing and the optimum fiber length for spalling protection of concrete in fire , 2012 .
[75] A. Maghsoudi,et al. ACCEPTABLE LOWER BOUND OF THE DUCTILITY INDEX AND SERVICEABILITY STATE OF RC CONTINUOUS BEAMS STRENGTHENED WITH CFRP SHEETS , 2011 .
[76] Piti Sukontasukkul,et al. Post-crack (or post-peak) flexural response and toughness of fiber reinforced concrete after exposure to high temperature , 2010 .
[77] Jay G. Sanjayan,et al. Effect of elevated temperatures on geopolymer paste, mortar and concrete , 2010 .
[78] Ricardo Perera,et al. Identification of damage in RC beams using indexes based on local modal stiffness , 2008 .
[79] B. V. Rangan,et al. Fly ash-based geopolymer concrete: study of slender reinforced columns , 2007 .
[80] Xudong Shi,et al. Influence of Concrete Cover on Fire Resistance of Reinforced Concrete Flexural Members , 2004 .
[81] P. Chindaprasirt,et al. Self-compacting steel fibers reinforced geopolymer: Study on mechanical properties and durability against acid and chloride attacks , 2023, Case Studies in Construction Materials.
[82] Z. Xiang,et al. Detect the stiffness transition in beam structures by using the passive tap-scan method , 2023, Mechanical Systems and Signal Processing.
[83] X. Guan,et al. Chloride resistance of class C/class F fly ash-based geopolymer mortars with different strength grades , 2023, Case Studies in Construction Materials.
[84] N. Anand,et al. Influence of Elevated Temperature Exposure on the Interfacial Shear Strength Capacity of Binary Blended High Strength Self-Compacting Geopolymer Concrete , 2023, SSRN Electronic Journal.
[85] Wadhah M. Tawfeeq,et al. New empirical methods for predicting flexural capacity and stiffness of CFST beam , 2020 .
[86] George Mathew,et al. Flexural behaviour of geopolymer concrete beams exposed to elevated temperatures , 2018 .
[87] Fabio P. Figueiredo,et al. Fire Protection of Concrete Tunnel Linings with Waste Tyre Fibres , 2017 .
[88] Bernardino Chiaia,et al. Fiber volume fraction and ductility index of concrete beams , 2016 .
[89] Urmil V. Dave,et al. Parametric Studies on Compressive Strength of Geopolymer Concrete , 2013 .
[90] T. Song,et al. Fire performance of steel reinforced concrete (SRC) structures , 2013 .