Environmental Engineering Reference
In-Depth Information
Pacheco-Torgal F, Jalali S, Labrincha J, John VM (2012) Eco-efficient concrete using industrial
wastes: a review. Mater Sci Forum 730-732, 581-586. doi:58110.4028/ www.scientific.net/
MSF.730-732.581
Pacheco-Torgal F, Labrincha JA (2013a) Biotech cementitious materials: Some aspects of an
innovative
approach
for
concrete
with
enhanced
durability.
Constr
Build
Mater
40:1136-1141. doi: 10.1016/j.conbuildmat.2012.09.080
Pacheco-Torgal F, Labrincha JA (2013b) Biotechnologies and bioinspired materials for the
construction industry: an overview. Int J Sustain Eng. doi: 10.1080/19397038.2013.844741
Pacheco-Torgal F, Jalali S (2013) Eco-efficient construction and building materials. Springer,
London, p 247 doi: 10.1007/978-0-85729-892-8
Park JH, Yuu J, Jeon HY (2010) Green geosynthetics applications to sustainable environmental
fields from the viewpoint of degradability. In: Proceedings of the international symposium
and exhibition on geotechnical and geosynthetics engineering: challenges and opportunities
on climate change, Bangkok, pp. 43-50, 7-8 Dec (2010)
Parra RR, Medina VF, Conca JL (2009) The use of fixatives for response to a radiation dispersal
devise attack - a review of the current (2009) state-of-the-art. J Env Radioact 100:923-934
Pei R, Liu J, Wang S, Yang M (2013) Use of bacterial cell walls to improve the mechanical
performance of concrete. Cem Concr Compos 39:122-130. doi: 10.1016/j.cemconcomp.2013.
03.024
Plank J (2003) Applications of biopolymers in construction engineering. In: Steinbüchel A (ed)
Biopolymers, V.10. General aspects and special applications. Wiley, Weinheim
Plank J (2004) Application of biopolymers and other biotechnological products in building
material. Appl Microbiol Biotechnol 66:1-9
Portilho M, Matioli G, Zanin GM, de Moraes FF, Scamparini AR (2006) Production of insoluble
exopolysaccharide
Agrobacterium
sp.
(ATCC
31749
and
IFO
13140).
Appl
Biochem
Biotechnol 129-132:864-869
Ramachandran
SK,
Ramakrishnan
V,
Bang
SS
(2001)
Remediation
of
concrete
using
microorganisms. ACI Mater J 98:3-9
Ramesh BNG, Anitha N, Rani HKR (2010) Recent trends in biodegradable products from
biopolymers. Adv Biotechnol 9:30-34
Raut SH, Sarode DD, Lele SS (2014) Biocalcification using B. pasteurii for strengthening brick
masonry civil engineering structures. World J Microbiol Biotechnol 30:191-200. doi: 10.1007/
s11274-013-1439-5
Rebata-Landa V, Santamarina JC (2012) Mechanical effects of biogenic nitrogen gas bubbles in
soils. J Geotech Geoenv Eng 138:128-137
Reddy CS, Ghai R, Rashmi C, Kalia VC (2003) Polyhydroxyalkanoates: an overview. Bioresour
Technol 87:137-146
Reddy S, Rao M, Aparna P, Sasikala C (2010) Performance of standard grade bacterial (Bacillus
subtilis) concrete. Asian J Civ Eng (Build Hous) 11:43-55
Rodriguez-Navarro C, Rodriguez-Gallego M, Ben Chekroun K, Gonzalez-Muñoz MT (2003)
Conservation of ornamental stone by Myxococcus xanthus-induced carbonate biomineraliza-
tion. Appl Env Microbiol 69:2182-2193. doi: 10.1128/AEM.69.4.2182-2193.2003
Roeselers G, van Loosdrecht MCM (2010) Microbial phytase-induced calcium-phosphate
precipitation- a potential soil stabilization method. Folia Microbiol 55:621-624
Ross N, Villemur R, Deschenes L, Samson R (2001) Clogging of limestone fracture by
stimulating groundwater microbes. Water Res 35:2029-2037
Sarda D, Choonia HS, Sarode DD, Lele SS (2009) Biocalcification by Bacillus pasteurii urease:a
novel application. J Ind Microbiol Biotechnol 36:1111-1115
Sarayu K, Iyer NR, Murthy AR (2014) Exploration on the biotechnological aspect of the ureolytic
bacteria
for
the
production
of
the
cementitious
materials—a
review.
Appl
Biochem
Biotechnol. doi: 10.1007/s12010-013-0686-0
Sarikaya M (1994) An introduction to biomimetics: a structural viewpoint. Microsc Res Tech
37:360-375
Search WWH ::




Custom Search