Bulletin of the Chinese Ceramic Society, Volume. 42, Issue 10, 3421(2023)

Research Progress on Mechanical Properties of Economic and Environment-Friendly Engineered Cementitious Composites

LI Tong1... REN Qingxin2 and WANG Qinghe1 |Show fewer author(s)
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    References(70)

    [4] [4] O’HEGARTY R, KINNANE O, NEWELL J, et al. High performance, low carbon concrete for building cladding applications[J]. Journal of Building Engineering, 2021, 43: 102566.

    [5] [5] LUHAR S, CHAUDHARY S, LUHAR I. Development of rubberized geopolymer concrete: strength and durability studies[J]. Construction and Building Materials, 2019, 204: 740-753.

    [7] [7] LI V C, LEUNG C K Y. Steady-state and multiple cracking of short random fiber composites[J]. Journal of Engineering Mechanics, 1992, 118(11): 2246-2264.

    [8] [8] LI V C. On engineered cementitious composites (ECC): a review of the material and its applications[J]. Journal of Advanced Concrete Technology, 2003, 1(3): 215-230.

    [12] [12] AL-DAHAWI A, YILDIRIM G, OZTURK O, et al. Assessment of self-sensing capability of engineered cementitious composites within the elastic and plastic ranges of cyclic flexural loading[J]. Construction and Building Materials, 2017, 145: 1-10.

    [13] [13] LEPECH M D, LI V C. Water permeability of cracked cementitious composites[C]//Proceedings 11th International Conference on Fracture, 2005: 4539-4541.

    [14] [14] LI V C. Engineered cementitious composites (ECC): material, structural and durability performance[M]//Concrete Construction Engineering Handbook. Boca Raton: CRC Press, 2007: 24-28.

    [15] [15] SAHMARAN M, LI V C, ANDRADE C. Corrosion resistance performance of steel-reinforced engineered cementitious composite beams[J]. ACI Materials Journal, 2008, 105(3): 243-250.

    [16] [16] LIU H Z, ZHANG Q, LI V, et al. Durability study on engineered cementitious composites (ECC) under sulfate and chloride environment[J]. Construction and Building Materials, 2017, 133: 171-181.

    [17] [17] LI V C, HORIKOSHI T, OGAWA A, S, et al. Micromechanics-based durability study of polyvinyl alcohol-engineered cementitious composite[J]. ACI Materials Journal, 2004, 101(3): 242-248.

    [18] [18] HE S, QIU J S, LI J X, et al. Strain hardening ultra-high performance concrete (SHUHPC) incorporating CNF-coated polyethylene fibers[J]. Cement and Concrete Research, 2017, 98: 50-60.

    [19] [19] ZHANG Z G, YUVARAJ A, DI J, et al. Matrix design of light weight, high strength, high ductility ECC[J]. Construction and Building Materials, 2019, 210: 188-197.

    [20] [20] LI L Z, CAI Z W, YU K Q, et al. Performance-based design of all-grade strain hardening cementitious composites with compressive strengths from 40 MPa to 120 MPa[J]. Cement and Concrete Composites, 2019, 97: 202-217.

    [21] [21] CHOI J I, SONG K I, SONG J K, et al. Composite properties of high-strength polyethylene fiber-reinforced cement and cementless composites[J]. Composite Structures, 2016, 138: 116-121.

    [22] [22] RANADE R, LI V C, STULTS M D, et al. Rushing, composite properties of high-strength, high-ductility concrete[J]. ACI Materials Journal, 2013, 110: 413-422.

    [23] [23] YU J, LI H D, LEUNG C K Y, et al. Matrix design for waterproof engineered cementitious composites (ECCs)[J]. Construction and Building Materials, 2017, 139: 438-446.

    [24] [24] XU M F, SONG S, FENG L, et al. Development of basalt fiber engineered cementitious composites and its mechanical properties[J]. Construction and Building Materials, 2021, 266: 121173.

    [25] [25] WANG S, LI V C. Engineered cementitious composites with high-volume fly ash[J]. ACI Materials Journal, 2007, 104(3): 233-268.

    [26] [26] YANG E, YANG Y, LI V C. Use of high volumes of fly ash to improve ECC mechanical properties and material greenness[J]. ACI Materials Journal, 2007, 104(6): 620-628.

    [27] [27] XU H Y, SHAO Z M, WANG Z J, et al. Experimental study on mechanical properties of fiber reinforced concrete: effect of cellulose fiber, polyvinyl alcohol fiber and polyolefin fiber[J]. Construction and Building Materials, 2020, 261: 120610.

    [28] [28] LIU Q, TONG T, LIU S H, et al. Investigation of using hybrid recycled powder from demolished concrete solids and clay bricks as a pozzolanic supplement for cement[J]. Construction and Building Materials, 2014, 73: 754-763.

    [29] [29] SUN Z H, LIU F J, TONG T, et al. Hydration of concrete containing hybrid recycled demolition powders[J]. Journal of Materials in Civil Engineering, 2017, 29(7): 04017037.

    [30] [30] ZHANG D, JAWORSKA B, ZHU H, et al. Engineered cementitious composites (ECC) with limestone calcined clay cement (LC3)[J]. Cement and Concrete Composites, 2020, 114: 103766.

    [31] [31] FERREIRO S, HERFORT D, DAMTOFT J S. Effect of raw clay type, fineness, water-to-cement ratio and fly ash addition on workability and strength performance of calcined clay-limestone Portland cements[J]. Cement and Concrete Research, 2017, 101: 1-12.

    [32] [32] DHANDAPANI Y, SAKTHIVEL T, SANTHANAM M, et al. Mechanical properties and durability performance of concretes with limestone calcined clay cement (LC3)[J]. Cement and Concrete Research, 2018, 107: 136-151.

    [33] [33] NER M, ERDODU K, GNL A. Effect of components fineness on strength of blast furnace slag cement[J]. Cement and Concrete Research, 2003, 33(4): 463-469.

    [34] [34] SRIKANTH S, KRISHNA C B R, SRIKANTH T, et al. Effect of nano ground granulated blast furnace slag (GGBS) volume % on mechanical behaviour of high-performance sustainable concrete[J]. Journal of Nanomaterials, 2022, 2022: 1-5.

    [35] [35] CHEN Z T, YANG Y Z, YAO Y. Quasi-static and dynamic compressive mechanical properties of engineered cementitious composite incorporating ground granulated blast furnace slag[J]. Materials & Design, 2013, 44: 500-508.

    [36] [36] OHNO M, LI V C. An integrated design method of engineered geopolymer composite[J]. Cement and Concrete Composites, 2018, 88: 73-85.

    [37] [37] MANGAT P, LAMBERT P. Sustainability of alkali-activated cementitious materials and geopolymers[M]//Sustainability of Construction Materials. Amsterdam: Elsevier, 2016: 459-476.

    [38] [38] PUERTAS F, ALONSO M M, GISMERA S, et al. Rheology of cementitious materials: alkali-activated materials or geopolymers[C]//MATEC Web of Conferences, 2018, 149: 01002.

    [39] [39] NEUPANE K. Fly ash and GGBFS based powder-activated geopolymer binders: a viable sustainable alternative of Portland cement in concrete industry[J]. Mechanics of Materials, 2016, 103: 110-122.

    [40] [40] SHI C J, JIMNEZ A F, PALOMO A. New cements for the 21st century: the pursuit of an alternative to Portland cement[J]. Cement and Concrete Research, 2011, 41(7): 750-763.

    [41] [41] JUENGER M C G, WINNEFELD F, PROVIS J L, et al. Advances in alternative cementitious binders[J]. Cement and Concrete Research, 2011, 41(12): 1232-1243.

    [42] [42] NATH S K, MAITRA S, MUKHERJEE S, et al. Microstructural and morphological evolution of fly ash based geopolymers[J]. Construction and Building Materials, 2016, 111: 758-765.

    [43] [43] YAN H D, SUN W, CHEN H S. The effect of silica fume and steel fiber on the dynamic mechanical performance of high-strength concrete[J]. Cement and Concrete Research, 1999, 29(3): 423-426.

    [44] [44] LI V C, MISHRA D K, WU H C. Matrix design for pseudo-strain-hardening fibre reinforced cementitious composites[J]. Materials and Structures, 1995, 28(10): 586-595.

    [45] [45] LI V C. Integrated structures and materials design[J]. Materials and Structures, 2007, 40(4): 387-396.

    [46] [46] BENTUR A, IGARASHI S I, KOVLER K. Prevention of autogenous shrinkage in high-strength concrete by internal curing using wet lightweight aggregates[J]. Cement and Concrete Research, 2001, 31(11): 1587-1591.

    [47] [47] SAHMARAN M, LACHEMI M, HOSSAIN K M A, et al. Influence of aggregate type and size on ductility and mechanical properties of engineered cementitious composites[J]. ACI Materials Journal, 2009, 106(3): 308-316.

    [48] [48] GAO S L, WANG Z, WANG W C, et al. Effect of shrinkage-reducing admixture and expansive agent on mechanical properties and drying shrinkage of engineered cementitious composite (ECC)[J]. Construction and Building Materials, 2018, 179: 172-185.

    [49] [49] SOROUSHIAN P, NAGI M, HSU J. Optimization of the use of lightweight aggregates in carbon fiber reinforced cement[J]. ACI Materials Journal, 1992, 89(3): 267-276.

    [50] [50] MARTINS A C P, FRANCO DE CARVALHO J M, COSTA L C B, et al. Steel slags in cement-based composites: an ultimate review on characterization, applications and performance[J]. Construction and Building Materials, 2021, 291: 123265.

    [51] [51] ANDRADE H D, DE CARVALHO J M F, COSTA L C B, et al. Mechanical performance and resistance to carbonation of steel slag reinforced concrete[J]. Construction and Building Materials, 2021, 298: 123910.

    [52] [52] ADESINA A, DAS S. Performance of engineered cementitious composites incorporating crumb rubber as aggregate[J]. Construction and Building Materials, 2021, 274: 122033.

    [53] [53] LI Y Z, GUAN X C, ZHANG C C, et al. Development of high-strength and high-ductility ECC with saturated multiple cracking based on the flaw effect of coarse river sand[J]. Journal of Materials in Civil Engineering, 2020, 32(11): 04020317.

    [54] [54] LI Y Z, LI J X, YANG E, et al. Investigation of matrix cracking properties of engineered cementitious composites (ECCs) incorporating river sands[J]. Cement Concrete Composites, 2021, 123: 104204.

    [56] [56] SUBEDI S, ARCE G A, NOORVAND H, et al. Properties of engineered cementitious composites with raw sugarcane bagasse ash used as sand replacement[J]. Journal of Materials in Civil Engineering, 2021, 33(9): 4021231.

    [57] [57] ZHOU Y W, GONG G Q, HUANG Y J, et al. Feasibility of incorporating recycled fine aggregate in high performance green lightweight engineered cementitious composites[J]. Journal of Cleaner Production, 2021, 280: 124445.

    [58] [58] ADESINA A, DAS S. Sustainable utilization of recycled asphalt as aggregates in engineered cementitious composites[J]. Construction and Building Materials, 2021, 283: 122727.

    [59] [59] ADESINA A, DAS S. Mechanical performance of engineered cementitious composite incorporating glass as aggregates[J]. Journal of Cleaner Production, 2020, 260: 121113.

    [60] [60] HUANG X Y, RANADE R, NI W, et al. Development of green engineered cementitious composites using iron ore tailings as aggregates[J]. Construction and Building Materials, 2013, 44: 757-764.

    [61] [61] TURK K, DEMIRHAN S. The mechanical properties of engineered cementitious composites containing limestone powder replaced by microsilica sand[J]. Canadian Journal of Civil Engineering, 2013, 40(2): 151-157.

    [62] [62] HEIKAL M, EL-DIDAMONY H, MORSY M S. Limestone-filled pozzolanic cement[J]. Cement and Concrete Research, 2000, 30(11): 1827-1834.

    [64] [64] ZHENG C C, LOU C, DU G, et al. Mechanical properties of recycled concrete with demolished waste concrete aggregate and clay brick aggregate[J]. Results in Physics, 2018, 9: 1317-1322.

    [65] [65] BISHT K, RAMANA P V. Sustainable production of concrete containing discarded beverage glass as fine aggregate[J]. Construction and Building Materials, 2018, 177: 116-124.

    [66] [66] WEI D, ZHU P H, YAN X C, et al. Potential evaluation of waste recycled aggregate concrete for structural concrete aggregate from freeze-thaw environment[J]. Construction and Building Materials, 2022, 321: 126291.

    [67] [67] NEDELJKOVIC' M, LUKOVIC' M, VAN BREUGEL K, et al. Development and application of an environmentally friendly ductile alkali-activated composite[J]. Journal of Cleaner Production, 2018, 180: 524-538.

    [68] [68] REDON C, LI V C, WU C, et al. Measuring and modifying interface properties of PVA fibers in ECC matrix[J]. Journal of Materials in Civil Engineering, 2001, 13(6): 399-406.

    [70] [70] TURK K, DEMIRHAN S. Effect of limestone powder on the rheological, mechanical and durability properties of ECC[J]. European Journal of Environmental and Civil Engineering, 2017, 21(9): 1151-1170.

    [71] [71] LI V C. From micromechanics to structural engineering-the design of cementitous composites for civil engineering applications[J]. JSCE Journal of Structural Mechanics and Earthquake Engineering, 1993, 10(2): 37-48.

    [72] [72] YU K Q, DING Y, LIU J P, et al. Energy dissipation characteristics of all-grade polyethylene fiber-reinforced engineered cementitious composites (PE-ECC)[J]. Cement and Concrete Composites, 2020, 106: 103459.

    [74] [74] ZHANG M R, FANG C Q, ZHOU S S, et al. Modification of asphalt by dispersing waste polyethylene and carbon fibers in it[J]. New Carbon Materials, 2016, 31(4): 424-430.

    [75] [75] PUNITH V S, VEERARAGAVAN A. Characterization of OGFC mixtures containing reclaimed polyethylene fibers[J]. Journal of Materials in Civil Engineering, 2011, 23(3): 335-341.

    [76] [76] YU K Q, YU J T, DAI J G, et al. Development of ultra-high performance engineered cementitious composites using polyethylene (PE) fibers[J]. Construction and Building Materials, 2018, 158: 217-227.

    [77] [77] BRANSTON J, DAS S, KENNO S Y, et al. Mechanical behaviour of basalt fibre reinforced concrete[J]. Construction and Building Materials, 2016, 124: 878-886.

    [80] [80] FELEKOGLU B, TOSUN-FELEKOGLU K, RANADE R, et al. Influence of matrix flowability, fiber mixing procedure, and curing conditions on the mechanical performance of HTPP-ECC[J]. Composites Part B: Engineering, 2014, 60: 359-370.

    [81] [81] LIN J X, SONG Y, XIE Z H, et al. Static and dynamic mechanical behavior of engineered cementitious composites with PP and PVA fibers[J]. Journal of Building Engineering, 2020, 29: 101097.

    [82] [82] SONG N X, SONG M, ZHANG Y L, et al. Study on mechanical performance of ECC reinforced by polypropylene fiber mixed with manufactured sand and carbon black (CBMSPP-ECC) based on response surface method[J]. Advances in Materials Science and Engineering, 2022, 2022: 1-10.

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    LI Tong, REN Qingxin, WANG Qinghe. Research Progress on Mechanical Properties of Economic and Environment-Friendly Engineered Cementitious Composites[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(10): 3421

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    Paper Information

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    Received: Jun. 7, 2023

    Accepted: --

    Published Online: Oct. 29, 2023

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    CSTR:32186.14.

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