Environmental Engineering Reference
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De Muynck W, Debrouwer D, De Belie N, Verstraete W (2008b) Bacterial carbonate precipitation
improves the durability of cementitious materials. Cem Concr Res 38(7):1005-1014
Ghosh P, Mandal S, Chattopadhyay BD, Pal S (2005) Use of microorganism to improve the
strength of cement mortar. Cem Concr Res 35(10):1980-1983
Ghosh
S,
Biswas
M,
Chattopadhyay
BD,
Mandal
S
(2009)
Microbial
activity
on
the
microstructure of bacteria modified mortar. Cement Concr Compos 31(2):93-98
Ha SK, Lee HK, Kang IS (2010) Shear behavior and performance of RC beams with polymer
mortar systems under cyclic loading. J Reinf Plast Compos 29(17):2604-2620
Haque MN, Al-Khaiat H, Kayali O (2004) Strength and durability of lightweight concrete.
Cement Concr Compos 26(4):307-314
Issa CA, Debs P (2007) Experimental study of epoxy repairing of cracks in concrete. Constr
Build Mater 21(1):157-163
Jonkers HM, Thijssen A, Muyzer G, Copuroglu O, Schlangen E (2010) Application of bacteria as
self-healing agent for the development of sustainable concrete. Ecol Eng 36(2):230-235
Kim HK, Park SJ, Han JI, Lee HK (2013) Microbially mediated calcium carbonate precipitation
on normal and lightweight concrete. Constr Build Mater 38:1073-1082
Kimura H, Matsumoto A, Hasegawa K, Ohtsuka K, Fukuda A (1998) Epoxy resin cured by
bisphenol A based benzoxazine. J Appl Polym Sci 68(12):1903-1910
Kolari M, Nuutinen J, Salkinoja-Salonen MS (2001) Mechanisms of biofilm formation in paper
machine
by
Bacillus
species:
the
role
of
Deinococcus
geothermalis.
J
Ind
Microbiol
Biotechnol 27(6):343-351
Lee HK, Cheong SH, Ha SK, Lee CG (2011) Behavior and performance of RC T-section deep
beams externally strengthened with CFRP sheets. Compos Struct 93:911-922
Maffini MV, Rubin BS, Sonnenschein C, Soto AM (2006) Endocrine disruptors and reproductive
health: the case of bisphenol-A. Mol Cell Endocrinol 254-255:179-186
Massie J, Roberts G, White PJ (1985) Selective isolation of Bacillus sphaericus from soil by use
of acetate as the only major source of carbon. Am Soc Microbiol 49(6):1478-1481
Mehta PK, Monteiro PJM (2006) Concrete: microstructure, properties, and materials, 3rd edn.
McGraw Hill, Maidenhead
Parks SL (2009) Kinetics of calcite precipitation by ureolytic bacteria under aerobic and
anaerobic conditions. Master degree thesis, Montana State University
Phutane SR, Renner JN, Nelson SL, Seames WS, Páca J, Sundstrom TJ, Kozliak EI (2007)
Removal of 2,4-dinitrotoluene from concrete using bioremediation, agar extraction, and
photocatalysis. Folia Microbiol 52(3):253-260
Qian C, Wang J, Wang R, Cheng L (2009) Corrosion protection of cement-based building materials
by surface deposition of CaCO 3 by Bacillus pasteurii. Mater Sci Eng C 29(4):1273-1280
Ramachandran
SK,
Ramakrishnan
V,
Bang
SS
(2001)
Remediation
of
concrete
using
microorganisms. ACI Mater J 98(1):3-9
Stocks-Fischer S, Galinat JK, Bang SS (1999) Microbiological precipitation of CaCO 3 . Soil Biol
Biochem 31(11):1563-1571
US Environmental protection agency (EPA) (1998) Bacillus sphaericus; exemption from the
requirement of a tolerance, http://www.epa.gov/fedrgstr/EPA-PEST/1998/September/Day-11/
p24469.htm
Van Tittelboom K, De Belie N, De Muynck W, Verstraete W (2010) Use of bacteria to repair
cracks in concrete. Cem Concr Res 40(1):157-166
Vaysburd AM (1996) Durability of lightweight concrete bridge in severe environments. Concr Int
18(7):33-38
Wiktor V, Jonkers HM (2011) Quantification of crack-healing in novel bacteria-based self-
healing concrete. Cement Concr Compos 33(7):763-770
Zhang MH, Gjørv OE (1990) Pozzolanic reactivity of lightweight aggregates. Cem Concr Res
20(6):884-890
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