Bulletin of the Chinese Ceramic Society, Volume. 42, Issue 5, 1529(2023)
Research Progress on Sulfuric Acid Corrosion of Concrete in Sewage Pipes
[1] [1] PARKER C. The corrosion of concrete[J]. Australian Journal of Experimental Biology and Medical Science, 1945, 23(2): 81-90.
[2] [2] VOLLERTSEN J, NIELSEN A H, JENSEN H S, et al. Corrosion of concrete sewers: the kinetics of hydrogen sulfide oxidation[J]. Science of the Total Environment, 2008, 394(1): 162-170.
[7] [7] SCRIVENER K, DE BELIE N. Bacteriogenic sulfuric acid attack of cementitious materials in sewage systems[M]//ALEXANDER M, BERTRON A, DE BELIE N. Performance of Cement-Based Materials in Aggressive Aqueous Environments. Dordrecht: Springer, 2013: 305-318.
[8] [8] O’CONNELL M, MCNALLY C, RICHARDSON M G. Biochemical attack on concrete in wastewater applications: a state of the art review[J]. Cement and Concrete Composites, 2010, 32(7): 479-485.
[9] [9] GUTIRREZ-PADILLA M G D, BIELEFELDT A, OVTCHINNIKOV S, et al. Biogenic sulfuric acid attack on different types of commercially produced concrete sewer pipes[J]. Cement and Concrete Research, 2010, 40(2): 293-301.
[10] [10] ALEXANDER M G, FOURIE C. Performance of sewer pipe concrete mixtures with Portland and calcium aluminate cements subject to mineral and biogenic acid attack[J]. Materials and Structures, 2011, 44(1): 313-330.
[12] [12] GRENGG C, MITTERMAYR F, BALDERMANN A, et al. Microbiologically induced concrete corrosion: a case study from a combined sewer network[J]. Cement and Concrete Research, 2015, 77: 16-25.
[13] [13] JENSEN H S. Hydrogen sulfide induced concrete corrosion of sewer networks[D]. South Yorkshire: The University of Sheffield, 2009.
[16] [16] MIN H G, SONG Z G. Investigation on the sulfuric acid corrosion mechanism for concrete in soaking environment[J]. Advances in Materials Science and Engineering, 2018, 2018: 1-10.
[22] [22] YUAN H F, DANGLA P, CHATELLIER P, et al. Degradation modelling of concrete submitted to sulfuric acid attack[J]. Cement and Concrete Research, 2013, 53: 267-277.
[23] [23] MAHDIKHANI M, BAMSHAD O, FALLAH SHIRVANI M. Mechanical properties and durability of concrete specimens containing nano silica in sulfuric acid rain condition[J]. Construction and Building Materials, 2018, 167: 929-935.
[26] [26] HUANG S, ZHAO X, SUN Y Q, et al. Pollution of hazardous substances in industrial construction and demolition wastes and their multi-path risk within an abandoned pesticide manufacturing plant[J]. Frontiers of Environmental Science & Engineering, 2017, 11(1): 12.
[27] [27] PARKER C D. The corrosion of concrete[J]. Australian Journal of Experimental Biology and Medical Science, 1945, 23(2): 91-98.
[28] [28] HOUSE M, WEISS W J. Review of microbially induced corrosion and comments on needs related to testing procedures[C]//Proceedings of the 4th International Conference on the Durability of Concrete Structures. Purdue University Libraries Scholarly Publishing Services, 2014.
[29] [29] HOUSE M. Using biological and physico-chemical test methods to assess the role of concrete mixture design in resistance to microbially induced corrosion[J]. Dissertations and Theses-Gradworks, 2013.
[30] [30] MAHAPATRA S, BANERJEE D. Fungal exopolysaccharide: production, composition and applications[J]. Microbiology Insights, 2013, 6: 1-16.
[32] [32] VINCKE E, BOON N, VERSTRAETE W. Analysis of the microbial communities on corroded concrete sewer pipes-a case study[J]. Applied Microbiology and Biotechnology, 2001, 57(5): 776-785.
[33] [33] STANASZEK-TOMAL E, FIERTAK M. Biological corrosion in the sewage system and the sewage treatment plant[J]. Procedia Engineering, 2016, 161: 116-120.
[40] [40] DUAN L, MA X X, LARSSEN T, et al. Response of surface water acidification in Upper Yangtze River to SO2 emissions abatement in China[J]. Environmental Science & Technology, 2011, 45(8): 3275-3281.
[41] [41] QIAO Y H, FENG J F, LIU X, et al. Surface water pH variations and trends in China from 2004 to 2014[J]. Environmental Monitoring and Assessment, 2016, 188(7): 443.
[46] [46] PEYRONNARD O, BLANC D, BENZAAZOUA M, et al. Study of mineralogy and leaching behavior of stabilized/solidified sludge using differential acid neutralization analysis[J]. Cement and Concrete Research, 2009, 39(6): 501-509.
[47] [47] CRAMMOND N. The occurrence of thaumasite in modern construction: a review[J]. Cement and Concrete Composites, 2002, 24(3/4): 393-402.
[48] [48] HAGELIA P, SIBBICK R G, CRAMMOND N J, et al. Thaumasite and secondary calcite in some Norwegian concretes[J]. Cement and Concrete Composites, 2003, 25(8): 1131-1140.
[50] [50] MONTENY J, VINCKE E, BEELDENS A, et al. Chemical, microbiological, and in situ test methods for biogenic sulfuric acid corrosion of concrete[J]. Cement and Concrete Research, 2000, 30(4): 623-634.
[51] [51] MEHTA P K, MONTEIRO P J M. Concrete: microstructure, properties, and materials[M]. 3rd ed. New York: McGraw-Hill, 2006.
[52] [52] JOSEPH A P, KELLER J, BUSTAMANTE H, et al. Surface neutralization and H2S oxidation at early stages of sewer corrosion: influence of temperature, relative humidity and H2S concentration[J]. Water Research, 2012, 46(13): 4235-4245.
[63] [63] DE BELIE N, MONTENY J, BEELDENS A, et al. Experimental research and prediction of the effect of chemical and biogenic sulfuric acid on different types of commercially produced concrete sewer pipes[J]. Cement and Concrete Research, 2004, 34(12): 2223-2236.
[65] [65] CHANG Z T, SONG X J, MUNN R, et al. Using limestone aggregates and different cements for enhancing resistance of concrete to sulphuric acid attack[J]. Cement and Concrete Research, 2005, 35(8): 1486-1494.
[66] [66] MAKHLOUFI Z, KADRI E H, BOUHICHA M, et al. Resistance of limestone mortars with quaternary binders to sulfuric acid solution[J]. Construction and Building Materials, 2012, 26(1): 497-504.
[68] [68] UCHIDA H, ENOKIDA T, TANAKA R, et al. Deterioration preventive for concrete or mortar and method for preventing deterioration of concrete or mortar: US6159281[P]. 2000-12-12.
[69] [69] ALUM A, RASHID A, MOBASHER B, et al. Cement-based biocide coatings for controlling algal growth in water distribution canals[J]. Cement and Concrete Composites, 2008, 30(9): 839-847.
[73] [73] YAMANAKA T, ASO I, TOGASHI S, et al. Corrosion by bacteria of concrete in sewerage systems and inhibitory effects of formates on their growth[J]. Water Research, 2002, 36(10): 2636-2642.
[75] [75] MERACHTSAKI D, FYTIANOS G, PAPASTERGIADIS E, et al. Properties and performance of novel Mg(OH)2-based coatings for corrosion mitigation in concrete sewer pipes[J]. Materials (Basel, Switzerland), 2020, 13(22): 5291.
[77] [77] ALMUSALLAM A A, KHAN F M, DULAIJAN S U, et al. Effectiveness of surface coatings in improving concrete durability[J]. Cement and Concrete Composites, 2003, 25(4/5): 473-481.
[78] [78] HAILE T, NAKHLA G, ALLOUCHE E, et al. Evaluation of the bactericidal characteristics of nano-copper oxide or functionalized zeolite coating for bio-corrosion control in concrete sewer pipes[J]. Corrosion Science, 2010, 52(1): 45-53.
[81] [81] YANG Y, JI T, LIN X J, et al. Biogenic sulfuric acid corrosion resistance of new artificial reef concrete[J]. Construction and Building Materials, 2018, 158: 33-41.
[85] [85] GE Z, SUN R J, ZHANG K, et al. Physical and mechanical properties of mortar using waste polyethylene terephthalate bottles[J]. Construction and Building Materials, 2013, 44: 81-86.
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ZHOU Jian, LIN Zhichao, XU Mingfeng, LI Hui, NIE Song. Research Progress on Sulfuric Acid Corrosion of Concrete in Sewage Pipes[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(5): 1529
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Received: Jan. 28, 2023
Accepted: --
Published Online: Aug. 13, 2023
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