INTERACTION BETWEEN MICROORGANISMS AND STONE BUILDING MATERIALS
Keywords:
building materials, microorganisms, biodeterioration, air quality, mould, biosensitivityAbstract
Microorganisms may interact with building materials in almost every aquatic or moist environment. As a result of these interactions one can observe material corrosion, aesthetic alterations in the appearance of buildings and degradation of indoor air quality. The review of the Russian and foreign literature on interaction between microorganisms and stone building materials is carried out. The main lines of research in this field are highlighted.
References
Карамова, Н.С. Методы исследования и оценки биоповреждений, вызываемых микроорга-низмами: учеб.-метод. пособие / Н.С. Карамова, Г.В. Надеева, Т.В. Багаева. – Казань: Казанский университет, 2014. – 36 с.
Bertron, A. Understanding interactions be-tween cementitios materials and microorganisms:
a key to sustainable and safe concrete structures in various contexts / A. Bertron // Mater. And Struct. – 2014. – Vol. 47. – P. 1787–1806.
Alexander, M.G. Performance of sewer pipe concrete mixtures with portland and calcium alumi-nate cements subject to mineral and biogenic acid attack / M.G. Alexander, C. Fourie // Mater. Struct. – 2011. – Vol. 44, no. 1. – P. 313–330.
A new test method to assess the bacterial dete-rioration of cementitious materials / C. Magniont,
M. Coutand, A. Bertron et al. // Cem. Concr. Res. – 2011. – Vol. 41, no. 4. – P. 429–438.
An innovative approach to reproduce the bio-deterioration of industrial cementitious products in
a sewer environment. Part I: test design / M. Peyre Lavigne, A. Bertron, L. Auer et al. // Cem. Concr. Res. – 2014.
Chemical, microbiological, and in situ test methods for biogenic sulfuric acid corrosion of con-crete / J. Monteny, E. Vincke, A. Beeldens et al. // Cem. Concr. Res. – 2000. – Vol. 30, no. 4. – P. 623–634.
Influence of the intrinsic characteristics of mortars on their biofouling by pigmented organisms: Comparison between laboratory and field-scale ex-periments / T.H. Tran, A. Govin, R. Guyonnet et al. // Int. Biodeterior. Biodegrad. – 2014. – Vol. 86. –
P. 334–342.
Accelerated laboratory test to study fungal biodeterioration of cementitious matrix / V. Wiktor,
F. De Leo, C. Urzì et al. // Int. Biodeterior. Bio¬degrad. – 2009. – Vol. 63, no. 8. – P. 1061–1065.
An innovative approach to reproduce the bio-deterioration of industrial cementitious products in
a sewer environment. Part II: validation on CAC and BFSC linings / M. Peyre Lavigne, A. Bertron, C. Bo-tanch et al. // Cem. Concr. Res. – 2014.
Васильева, Н.В. Микроорганизмы – конта-минанты и патогены – индукторы процессов ста-рения больничных зданий и помещений медицин-ского назначения, а также возбудители некото-рых заболеваний людей: учеб. пособие / Н.В. Васи-льева, Н.П. Елинов; под ред. Н.П. Елинова. – СПб.: КОСТА, 2009. – 224 с.
Mudarri, D. Public health and economic im-pact of dampness and mold / D. Mudarri, W.J. Fisk // Indoor Air. – 2007. – Vol. 17, no. 3. – P. 226–235.
A review of indoor microbial growth across building materials andsampling and analysis meth-ods / T. Verdier, M. Coutand, A. Bertron, C. Roques // Buil¬ding and environment. – 2014. – Vol. 80 – P. 136–149.
Фатыхова, Ю.Н. Роль структуры сооб-ществ хемолитотрофных микроорганизмов в раз-рушении строительных силикатных материалов: дис. … канд. биол. наук / Ю.Н. Фатыхова. – Томск, 2006. – 125 с.
Indoor fungal contamination of moisture-damaged and allergic patient housing analysed us-ing real-time PCR / A.-P. Bellanger, G. Reboux, S. Rous¬sel et al. // Lett. Appl. Microbiol. – 2009. – Vol. 49. – P. 260–266.
ГОСТ 9.053–75. Единая система защиты от коррозии и старения (ЕСЗКС). Материалы не-металлические и изделия с их применением. Метод испытаний на микробиологическую стойкость в природных условиях в атмосфере (с Изменением 1). – http://www.gostedu.ru/16657.html.
ГОСТ 9.049–91. Единая система защиты от коррозии и старения (ЕСЗКС). Материалы по-лимерные и их компоненты. Методы лаборатор-ных испытаний на стойкость к воздействию плес-невых грибов. – http://docs.cntd.ru/document/ 1200015007.
GGTM. P040. Method for Measuring Micro-bial Resistance from Various Sources (based on ASTM D6329). – http://greenguard.org/Libraries/ GG_Documents/GGTM_P040_Method_for_Measuring_ Microbi-al_Resistance_from_Various_Sources_071221. sflb.ashx.
Khan, B.A. Antibacterial properties of hemp and other natural fibre plants: a review / B.A. Khan, P. Warner, H. Wang // Bio Resources. – 2014. – Vol. 9, no. 2. – P. 3642–3659.
Pacheco-Torgal, F. Cementitious building materials reinforced with vegetable fibres: a review / F. Pacheco-Torgal, S. Jalali // Constr. Build. Mater. – 2011. – Vol. 25, no. 2. – P. 575–581.
Titanium dioxide based strategies to prevent algal fouling on cementitious materials / A. Maury-Ramirez, W. De Muynck, R. Stevens et al. // Cem. Concr. Compos. – 2013. – Vol. 36. – P. 93–100.
Сураева, Е.Н. Разработка сухих строи-тельных смесей с биоцидными свойствами: дис. ... канд. техн. наук / Е.Н. Сураева. – Саранск, 2015. – 170 с.
Родин, А.И. Разработка биоцидных це-ментов и композитов на их основе: дис. ... канд. техн. наук / А.И. Родин. – Саранск, 2013.–205 с.
Bioreceptivity evaluation of cementitious materials designed to stimulate biological growth /
S. Manso, W. De Muynck, I. Segura et al. // Sci. Total. Environ. – 2014. – Vol. 481. – P. 232–241.
Wiktor, V. Quantification of crack-healing
in novel bacteria-based self-healing concrete / V. Wik¬tor, H.M. Jonkers // Cem. Concr. Compos. – 2011. – Vol. 33, no. 7. – P. 763–770.
Belie, N.D. Microorganisms versus stony ma-terials: a love–hate relationship / N.D. Belie // Mater. Struct. – 2010. – Vol. 43, no. 9. – P. 1191–1202.
Decho, A.W. Overview of biopolymer-induced mineralization: What goes on in biofilms? / A.W. Decho // Ecol. Eng. – 2010. – Vol. 36, no. 2. –
P. 137–144.
Soleimani, S. Resistance of biofilm-covered mortars to microbiologically influenced deterioration simu-lated by sulfuric acid exposure / S. Soleimani





