Complex Behavior of Petroleum Hydrocarbons in Vadose Zone: A Holistic Analysis Using Unsaturated Soil Columns
暂无分享,去创建一个
[1] Seungha Lee,et al. Denitrification dynamics in unsaturated soils with different porous structures and water saturation degrees: A focus on the shift in microbial community structures. , 2022, Journal of hazardous materials.
[2] S. Yun,et al. Coupled effect of porous network and water content on the natural attenuation of diesel in unsaturated soils. , 2022, Chemosphere.
[3] A. Vetrova,et al. Current research on simultaneous oxidation of aliphatic and aromatic hydrocarbons by bacteria of genus Pseudomonas , 2022, Folia Microbiologica.
[4] Xiangtian Xu,et al. An evaluation of soil thermal conductivity models based on the porosity and degree of saturation and a proposal of a new improved model , 2021, International Communications in Heat and Mass Transfer.
[5] H. Jo,et al. Transient behavior of arsenic in vadose zone under alternating wet and dry conditions: A comparative soil column study. , 2021, Journal of hazardous materials.
[6] S. A. Abbasi,et al. Assessment of degradation potential of Pseudomonas species in bioremediating soils contaminated with petroleum hydrocarbons , 2021 .
[7] J. Šimůnek,et al. A Modified HYDRUS Model for Simulating PFAS Transport in the Vadose Zone , 2020, Water.
[8] D. Werner,et al. Microbial community responses to different volatile petroleum hydrocarbon class mixtures in an aerobic sandy soil. , 2020, Environmental pollution.
[9] Weihong Zhong,et al. Microbial diversity changes and enrichment of potential petroleum hydrocarbon degraders in crude oil-, diesel-, and gasoline-contaminated soil , 2020, 3 Biotech.
[10] Song-yu Liu,et al. Investigation of relative permeability, saturation and capillary pressure relations of NAPL-contaminated sands , 2019, Journal of Soils and Sediments.
[11] S. Fahimirad,et al. Biodegradation of high concentrations of petroleum compounds by using indigenous bacteria isolated from petroleum hydrocarbons-rich sludge: Effective scale-up from liquid medium to composting process. , 2019, Journal of environmental management.
[12] H. Heipieper,et al. Effect of bioaugmentation on long-term biodegradation of diesel/biodiesel blends in soil microcosms , 2019, Science of The Total Environment.
[13] Wulong Hu,et al. Impact of Pore Geometry and Water Saturation on Gas Effective Diffusion Coefficient in Soil , 2018, Applied Sciences.
[14] Ravi Naidu,et al. Bioavailability of weathered hydrocarbons in engine oil-contaminated soil: Impact of bioaugmentation mediated by Pseudomonas spp. on bioremediation. , 2018, The Science of the total environment.
[15] T. Fletcher,et al. Development of bioreactors for comparative study of natural attenuation, biostimulation, and bioaugmentation of petroleum-hydrocarbon contaminated soil. , 2018, Journal of hazardous materials.
[16] A. Westphal,et al. Effects of thermal energy storage on shallow aerobic aquifer systems: temporary increase in abundance and activity of sulfate-reducing and sulfur-oxidizing bacteria , 2017, Environmental Earth Sciences.
[17] V. Spada,et al. Assessment of three approaches of bioremediation (Natural Attenuation, Landfarming and Bioagumentation - Assistited Landfarming) for a petroleum hydrocarbons contaminated soil. , 2017, Chemosphere.
[18] Hung‐Suck Park,et al. Effect of process parameters on the bioremediation of diesel contaminated soil by mixed microbial consortia , 2016 .
[19] M. Weiler,et al. Travel times in the vadose zone: Variability in space and time , 2016 .
[20] Seungha Lee,et al. Identification of the microbes mediating Fe reduction in a deep saline aquifer and their influence during managed aquifer recharge. , 2016, The Science of the total environment.
[21] H. Horn,et al. Biodegradation of phenol, salicylic acid, benzenesulfonic acid, and iomeprol by Pseudomonas fluorescens in the capillary fringe. , 2015, Journal of contaminant hydrology.
[22] Anil Kumar Singh,et al. Bioremediation potential of native hydrocarbon degrading bacterial strains in crude oil contaminated soil under microcosm study , 2014 .
[23] Zohre Kurt,et al. Biodegradation of chlorobenzene, 1,2-dichlorobenzene, and 1,4-dichlorobenzene in the vadose zone. , 2013, Environmental science & technology.
[24] Y. Lei,et al. Fate and Transport of Petroleum Hydrocarbons in Vadose Zone: Compound-specific Natural Attenuation , 2013, Water, Air, & Soil Pollution.
[25] R. Baciocchi,et al. Role of natural attenuation in modeling the leaching of contaminants in the risk analysis framework. , 2013, Journal of environmental management.
[26] H. Smidt,et al. Impact of Long-Term Diesel Contamination on Soil Microbial Community Structure , 2012, Applied and Environmental Microbiology.
[27] Johan Arvidsson,et al. Persistent effects of subsoil compaction on pore size distribution and gas transport in a loamy soil , 2012 .
[28] A. Arun,et al. Aquabacterium limnoticum sp. nov., isolated from a freshwater spring. , 2012, International journal of systematic and evolutionary microbiology.
[29] S. Hamamoto,et al. Diffusivity of rocks: Gas diffusion measurements and correlation to porosity and pore size distribution , 2012 .
[30] Soyoung Park,et al. Effects of humic acid on phytodegradation of petroleum hydrocarbons in soil simultaneously contaminated with heavy metals. , 2011, Journal of environmental sciences.
[31] M. Rivett,et al. Review of unsaturated-zone transport and attenuation of volatile organic compound (VOC) plumes leached from shallow source zones. , 2011, Journal of contaminant hydrology.
[32] P. Falciglia,et al. Low-temperature thermal desorption of diesel polluted soil: influence of temperature and soil texture on contaminant removal kinetics. , 2011, Journal of hazardous materials.
[33] J. Gan,et al. Biodegradation of pyrene in sand, silt and clay fractions of sediment , 2010, Biodegradation.
[34] A. K. Haritash,et al. Biodegradation aspects of polycyclic aromatic hydrocarbons (PAHs): a review. , 2009, Journal of hazardous materials.
[35] G. Oudijk. Age Dating Heating-Oil Releases, Part 1. Heating-Oil Composition and Subsurface Weathering , 2009 .
[36] A. Serrano,et al. Natural attenuation of diesel aliphatic hydrocarbons in contaminated agricultural soil. , 2008, Environmental pollution.
[37] J. Zeyer,et al. Effect of water-table fluctuation on dissolution and biodegradation of a multi-component, light nonaqueous-phase liquid. , 2007, Journal of contaminant hydrology.
[38] E. Chang,et al. Effect of different application rates of organic fertilizer on soil enzyme activity and microbial population , 2007 .
[39] V. L. Cardoso,et al. Biodegradation of effluent contaminated with diesel fuel and gasoline. , 2007, Journal of hazardous materials.
[40] P. Schjønning,et al. Gas Transport Parameters in the Vadose Zone: Gas Diffusivity in Field and Lysimeter Soil Profiles , 2006 .
[41] A. L. Swindell,et al. Influence of diesel concentration on the fate of phenanthrene in soil. , 2006, Environmental pollution.
[42] T. Park,et al. Monitoring biodegradation of diesel fuel in bioventing processes using in situ respiration rate. , 2006, Water science and technology : a journal of the International Association on Water Pollution Research.
[43] J. Aislabie,et al. Bioremediation of hydrocarbon-contaminated polar soils , 2006, Extremophiles.
[44] S. F. D’souza,et al. Effect of oxygen transfer limitations in phenol biodegradation , 2005 .
[45] P. Jardine,et al. Using soil physical and chemical properties to estimate bulk density , 2005 .
[46] W. Verstraete,et al. Influence of the carbon/nitrogen/phosphorus ratio on polycyclic aromatic hydrocarbon degradation by Mycobacterium and Sphingomonas in soil , 2005, Applied Microbiology and Biotechnology.
[47] F. Beese,et al. Estimating water retention curves of forest soils from soil texture and bulk density , 2003 .
[48] R. Borja,et al. Aerobic biodegradation and detoxification of wastewaters from the olive oil industry , 2003 .
[49] Patrick Höhener,et al. Vapor phase transport and biodegradation of volatile fuel compounds in the unsaturated zone: a large scale lysimeter experiment. , 2002, Environmental science & technology.
[50] Jin‐Yong Lee,et al. Attenuation of Petroleum Hydrocarbons in Smear Zones: A Case Study , 2001 .
[51] C. Vaz,et al. Contribution of water content and bulk density to field soil penetration resistance as measured by a combined cone penetrometer–TDR probe , 2001 .
[52] P. Schjønning,et al. Tortuosity, diffusivity, and permeability in the soil liquid and gaseous phases , 2001 .
[53] L. Ma,et al. Comparison of Three Aqua Regia Digestion Methods for Twenty Florida Soils , 2001 .
[54] P. Bedient,et al. Modeling the Impact of Oxygen Reaeration on Natural Attenuation , 1999 .
[55] D. Lovley,et al. Anaerobic degradation of polycyclic aromatic hydrocarbons and alkanes in petroleum-contaminated marine harbor sediments , 1997, Applied and environmental microbiology.
[56] D. L. Widrig,et al. Biodegradation of no. 2 diesel fuel in the vadose zone: A soil column study , 1995 .
[57] John W. Doran,et al. Steady‐State Aerobic Microbial Activity as a Function of Soil Water Content , 1990 .
[58] M. Firestone,et al. Microbial biomass response to a rapid increase in water potential when dry soil is wetted , 1987 .
[59] W. P. Miller,et al. A micro‐pipette method for soil mechanical analysis , 1987 .
[60] J. M. Bremner. Determination of nitrogen in soil by the Kjeldahl method , 1960, The Journal of Agricultural Science.
[61] A. Walkley,et al. AN EXAMINATION OF THE DEGTJAREFF METHOD FOR DETERMINING SOIL ORGANIC MATTER, AND A PROPOSED MODIFICATION OF THE CHROMIC ACID TITRATION METHOD , 1934 .