Название | Global Approaches to Environmental Management on Military Training Ranges |
---|---|
Автор произведения | Tracey Temple |
Жанр | Биология |
Серия | |
Издательство | Биология |
Год выпуска | 0 |
isbn | 9780750316057 |
[22] Kaplan D L and Kaplan A M 1985 Technical Report: Degradation of nitroguanidine in soils (NATICK/TR-58/047), Natick, Massachusetts, USA
[23] Cholakis J M, Wong L C K, Van Goethem D L, Minor J and Short R 1980 Technical Report: Mammalian toxicological evaluation of RDX, Kansas City, USA
[24] Bannon D I and Williams L R 2015 Wildlife toxicity assessment for 1,3,5-trinitrohexahydro-1,3,5-triazine (RDX) ed M A Williams, G Reddy, J M Quinn and S M Johnson Wildlife Toxic Assessments Chemical of Military Concern (Amsterdam: Elsevier) pp 53–86
[25] Johnson M S and Reddy G 2015 Wildlife Toxicity Assessments for Chemicals of Military Concern 1st edn (Amsterdam: Elsevier)
[26] Chou C J S, Holler J, De Rosa C T and Chou S 1998 Minimal risk levels (MRL) for hazardous substances Environ. Toxicol. Occup. Med. 7 1–24
[27] Walsh M E, Taylor S, Hewitt A D, Walsh M R, Ramsey C A and Collins C M 2010 Field observations of the persistence of Comp B explosives residues in a salt Marsh impact area Chemosphere 78 467–73
[28] Monteil-Rivera F, Halasz A, Groom C, Zhao J-S, Thiboutot S, Ampleman G and Hawari J 2009 Fate and transport of explosives in the environment: a chemist’s view Ecotoxicology of Explosives ed G Sunahara, G Lutofo, R Kuperman and J Hawari (Boca Raton, FL: CRC Press, Taylor and Francis Group LLC) ch 2, pp 5–33
[29] Bordeleau G, Martel R, Ampleman G and Thiboutot S 2013 Photolysis of RDX and nitroglycerin in the context of military training ranges Chemosphere 93 14–9
[30] Mahbub P and Nesterenko P N 2016 Application of photo degradation for remediation of cyclic nitramine and nitroaromatic explosives RSC Adv. 6 77603–21
[31] Hawari J, Halasz A, Groom C, Deschamps S, Paquet L, Beaulieu C and Corriveau A 2002 Photodegradation of RDX in aqueous solution: a mechanistic probe for biodegradation with Rhodococcus sp Environ. Sci. Technol. 36 5117–23
[32] Bouchard D C, Williams M K and Surampalli R Y 1992 Nitrate contamination of groundwater: sources and potential health effects J. Am. Water Works Assoc. 84 85–90
[33] Balakrishnan V K, Halasz A and Hawari* J 2003 Alkaline hydrolysis of the cyclic nitramine explosives RDX, HMX, and CL-20: new insights into degradation pathways obtained by the observation of novel intermediates Environ. Sci. Technol. 37 1838–43
[34] Best E P H, Sprecher S L, Larson S L, Fredrickson H L and Bader D F 1999 Environmental behavior of explosives in groundwater from the Milan Army Ammunition Plant in aquatic and wetland plant treatments. Uptake and fate of TNT and RDX in plants Chemosphere 39 2057–72
[35] Fuller M E, Hatzinger P B, Condee C W and Togna A P 2007 Combined treatment of perchlorate and RDX in ground water using a fluidized bed reactor Groundw. Monit. Remediat. 27 59–64
[36] Pichtel J 2012 Distribution and fate of military explosives and propellants in soil: a review Appl. Environ. Soil Sci. 2012 1–33
[37] Taylor S, Lever J H, Fadden J, Perron N and Packer B 2009 Simulated rainfall-driven dissolution of TNT, Tritonal, Comp B and Octol particles Chemosphere 75 1074–81
[38] Lever J H, Taylor S, Perovich L, Bjella K and Packer B 2005 Dissolution of composition B detonation residuals Environ. Sci. Technol. 39 8803–11
[39] Sharma P, Mayes M A and Tang G 2013 Role of soil organic carbon and colloids in sorption and transport of TNT, RDX and HMX in training range soils Chemosphere 92 993–1000
[40] Hawari J, Halasz A, Sheremata T, Beaudet S, Groom C, Paquet L, Rhofir C, Ampleman G and Thiboutot S 2000 Characterization of metabolites during biodegradation of hexahydro-1, 3,5-trinitro-1,3,5-triazine (RDX) with municipal anaerobic sludge Appl. Environ. Microbiol. 66 2652–57
[41] Pennington J C and Brannon J M 2002 Environmental fate of explosives Thermochim. Acta 384 163–72
[42] Brannon J M and Pennington J C 2002 Technical Report: Environmental Fate and Transport Process Descriptors for Explosives (Vicksburg: US Army Engineer Research and Development Center)
[43] Sheremata T W et al 2001 The fate of the cyclic nitramine explosive RDX in natural soil Environ. Sci. Technol. 35 1037–40
[44] Halasz A, Manno D, Perreault N N, Sabbadin F, Bruce N C and Hawari J 2012 Biodegradation of RDX nitroso products MNX and TNX by cytochrome P450 XplA Environ. Sci. Technol. 46 7245–51
[45] Pennington J C 2006 Technical Report: Distribution and fate of energetics on DOD test and training ranges ERDC TR-06-12, Hanover, USA
[46] Jenkins T F, Ranney T A, Miyares P H, Collins N H and Hewitt A D 2000 Technical Report: Use of surface snow sampling to estimate the quantity of explosives residues resulting from land mine detonations, ERDC TR-00-12, Hanover, USA
[47] Gauthier C, Lefebvre R, Martel R, Ampleman G, Thiboutot S, Lewis J and Parent M 2003 Assessment of the impacts of live training on soil and groundwater at Canadian Forces Base Shilo, Manitoba 56th Can. Geol. Conf. 4th Jt. IAH-CNC/CGS Conf. (Winnipeg)
[48] Klapötke T M and Witkowski T G 2016 Covalent and ionic insensitive high-explosives Propellants Explos. Pyrotech. 41 470–83
[49] Ravi P, Badgujar D M, Gore G M, Tewari S P and Sikder A K 2011 Review on melt cast explosives Propellants Explos. Pyrotech. 36 393–403
[50] Walsh M R M E, Walsh M R M E, Ramsey C A, Thiboutot S, Ampleman G, Diaz E and Zufelt J E 2014 Energetic residues from the detonation of IMX-104 insensitive munitions Propellants Explos. Pyrotech. 39 243–50
[51] Taylor S, Dontsova K, Walsh M E M R and Walsh M E M R 2015 Outdoor dissolution of detonation residues of three insensitive munitions (IM) formulations Chemosphere 134 250–56
[52]