Journal of the Chinese Ceramic Society, Volume. 50, Issue 2, 492(2022)
Alternating Current Impedance Characteristics and Its Equivalent Circuit Model of High-Impedance and Ultra-High Performance Concrete
[2] [2] LI Chen, WU Mengxue, CHEN Qing, et al. Chemical and mineralogical alterations of concrete subjected to chemical attacks in complex underground tunnel environments during 20-36 years[J]. Cem Concr Compos, 2018, 86: 139-159
[5] [5] SHI C, WU Z, XIAO J, et al. A review on ultra-high performance concrete: Part I. Raw materials and mixture design [J]. Constr Build Mater, 2015, 101: 741-751.
[7] [7] REIGHTER D H. High humidity resistant electrical grade polymer concrete: US, US4130536 A[P]. 1978.
[8] [8] KUDER K, TINNEA J, TINNEA R, et al. High Electrical resistivity concrete mixture design using supplementary cementitious materials[C]//In Second International Conference on Sustainable Construction Materials and Technologies, At: Ancona, Italy, 2010.
[9] [9] TINNEA R, TINNEA J, KUDER K. High-early-strength, high-resistivity concrete for direct-current light rail[J]. J Mater Civ Eng, 2016, 29(4): 04016260.
[13] [13] XIAO L, LI Z. Early-age hydration of fresh concrete monitored by non-contact electrical resistivity measurement[J]. Cem Concr Res, 2008, 38(3): 312-319.
[14] [14] CHEN J, JIN X Y, TIAN Y, et al. Correlation of mechanical and microstructure development of early-age concrete by electrical resistivity measurement[J]. Appl Mech Mater, 2011, 121/126: 1818-1822.
[15] [15] RAJABIPOUR F, WEISS J. Electrical conductivity of drying cement paste[J]. Mater Struct, 2007, 40(10): 1143-1160.
[18] [18] FAN D, RUI Y, LIU K, et al. Optimized design of steel fibres reinforced ultra-high performance concrete (UHPC) composites: Towards to dense structure and efficient fibre application[J]. Constr Build Mater, 2020, 273: 121698.
[19] [19] ABDULKAREEM O M, FRAJ A B, BOUASKER M, et al. Effect of chemical and thermal activation on the microstructural and mechanical properties of more sustainable UHPC[J]. Constr Build Mater, 2018, 169: 567-577.
[22] [22] HE H, ZHU Y, ZHOU A. Electrochemical impedance spectroscopy (EIS) used to evaluate influence of different external pressures, curing ages and self-healing environments on the self-healing behavior of engineered cementitious composites (ECC)[J]. Constr Build Mater, 2018, 188: 153-160.
[23] [23] HU X, SHI C, LIU X, et al. A review on microstructural characterization of cement-based materials by AC impedance spectroscopy[J]. Cem Concr Compos, 2019, 100: 1-14.
[25] [25] LI Y, SUI C E, DING Q J. Study on the cracking process of cement-based materials by AC impedance method and ultrasonic method[J]. J Nondestruct Evaluation, 2012, 31(3): 284-291.
[26] [26] KURUMISAWA K, NAWA T. Electrical conductivity and chloride ingress in hardened cement paste[J]. J Adv Concr Technol, 2016, 14(3): 87-94.
[27] [27] XIE P, GU P, BEAUDOIN J J. Electrical percolation phenomena in cement composites containing conductive fibres[J]. J Mater Sci, 1996, 31(15): 4093-4097
[28] [28] TORRENTS J M, MASON T O, GARBOCZI E J. Impedance spectra of fiber-reinforced cement-based composites: A modeling approach[J]. Cem Concr Res, 2000, 30(4): 585-592.
[29] [29] MASON T O, CAMPO M A, HIXSON A D, et al. Impedance spectroscopy of fiber-reinforced cement composites[J]. Cem Concr Compos, 2002, 24(5): 457-465.
[30] [30] DONG S, HAN B, OU J, et al. Electrically conductive behaviors and mechanisms of short-cut super-fine stainless wire reinforced reactive powder concrete[J]. Cem Concr Compos, 2016: 48-65.
[31] [31] OHAMA Y. Polymer-based admiyures[J]. Cem Compos, 1998, 20: 189-212.
[32] [32] BERROCAL C G, HORNBOSTEL K, GEIKER M R, et al. Electrical resistivity measurements in steel fibre reinforced cementitious materials[J]. Cem Concr Compos, 2018, 89: 216-229.
[33] [33] CARUSO F, MANTELLATO S, PALACIOS M, et al. ICP-OES method for the characterization of cement pore solutions and their modification by polycarboxylate-based superplasticizers[J]. Cem Concr Res, 2017, 91: 52-60.
[34] [34] SURYANTO B, MCCARTER W J, STARRS G, et al. Electrochemical immittance spectroscopy applied to a hybrid PVA/steel fiber engineered cementitious composite[J]. Mater Design, 2016, 105: 179-189.
[35] [35] WOO L Y, WANSOM S, OZYURT N, et al. Characterizing fiber dispersion in cement composites using AC-Impedance Spectroscopy[J]. Cem Concr Compos, 2005, 27(6): 627-636.
[36] [36] BALBERG I, D A ZULAY, TOKER D, et al. Percolation and tunneling in composite materials[J]. Int J Modern Phys B, 2004, 18(15): 2091-2121.
[37] [37] SNYDER K A, FENG X, BD KEEN, et al. Estimating the electrical conductivity of cement paste pore solutions from OH-, K+ and Na+ concentrations[J]. Cem Concr Res, 2003, 33(6): 793-798.
[38] [38] SONG G. Equivalent circuit model for AC electrochemical impedance spectroscopy of concrete[J]. Cem Concr Res, 2000, 30(11): 1723-1730.
Get Citation
Copy Citation Text
HE Bei, CHEN Qing, HE Li, SONG Facheng, JIANG Zhengwu. Alternating Current Impedance Characteristics and Its Equivalent Circuit Model of High-Impedance and Ultra-High Performance Concrete[J]. Journal of the Chinese Ceramic Society, 2022, 50(2): 492
Category:
Received: Apr. 14, 2021
Accepted: --
Published Online: Nov. 23, 2022
The Author Email: Bei HE (beihe@tongji.edu.cn)
CSTR:32186.14.