HR: 0800h
AN: H21E-1397 [Abstracts]
TI: Effect Of Air-Water Interface On Microorganism Transport Under Unsaturated Conditions
AU: * Torkzaban, S
EM: Torkzaban@geo.uu.nl
AF: Utrecht University, Department of Earth Sciences, Utrecht, 3508 TA
Netherlands
AU: Hassanizadeh, S M
EM: Hassanizadeh@geo.uu.nl
AF: Utrecht University, Department of Earth Sciences, Utrecht, 3508 TA
Netherlands
AU: Schijven, J F
EM: Jack.Schijven@rivm.nl
AF: National Institute of Public Health and the Environment, Microbiological Laboratory for Health
Protection, Bilthoven, 3720 BA
Netherlands
AB:
Groundwater may become contaminated with pathogenic microorganisms from land application of treated wastewater, septic wells,
and effluent from septic tanks, and leaking sewage pipes. The unsaturated zone is of special importance since it often
represents the first line of natural defense against groundwater pollution. Moreover, many experimental studies have shown
that contaminant removal is more significant under lower saturation levels.
Interaction of microbial particles with the air-water interfaces (AWI) has been previously suggested to explain high removal
of pathogenic microorganisms during transport through unsaturated soil. The objective of this research was to explore the
effect of AWI on virus transport. The transport of bacteriophages MS2 and FiX174 in sand columns was studied under various
conditions, such as different pH, and saturation levels. Fitting of a transport model to the breakthrough curves was
performed to determine the adsorption parameters. FiX174 with isoelectric point of 6.7 exhibited high affinity to the
air-water interface by decreasing pH from 7.5 to 6.2. MS2 with isoelectric point of 3.5 has lower affinity to air-water
interfaces than FiX174, but has similar pH- dependence. These results show the importance of electrostatic interactions,
instead of hydrophobic, between the AWI and viruses. Adsorption to AWI is strongly pH dependent, increasing as pH decreases.
It was found that two-site kinetic model should be used for modeling of virus transport under unsaturated conditions
Moreover, by draining the unsaturated column, we found out that the attached viruses to AWI are viable, which is in contrast
with the literature where retained viruses to AWI are considered as inactivated.
DE: 1800 HYDROLOGY
DE: 1829 Groundwater hydrology
DE: 1831 Groundwater quality
DE: 1847 Modeling
DE: 1875 Vadose zone
SC: Hydrology [H]
MN: Fall Meeting 2005