Книги з теми "Environmental sample analysis"

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1

Stevenson, D., and I. D. Wilson, eds. Sample Preparation for Biomedical and Environmental Analysis. Boston, MA: Springer US, 1994. http://dx.doi.org/10.1007/978-1-4899-1328-9.

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2

Moreda-Piñeiro, Antonio. Analytical chemistry of cadmium: Sample pre-treatment and determination methods. Hauppauge, N.Y: Nova Science Publishers, 2009.

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3

Johnson, C. I. Evaluation of split sample survey results for pulp and paper related chlorinated phenolic compounds. Vegreville, AB: Alberta Environmental Centre, 1993.

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4

Pustovaya, Larisa, and Besik Meshi. Methods and devices of environmental control. Environmental monitoring. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1058966.

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Анотація:
The textbook is designed to meet the need for a highly specialized set of professional knowledge necessary for the training of highly qualified personnel of environmental specialties. The presented material allows us to get an idea of the organization and effective implementation of environmental monitoring, the organization of industrial environmental control and management, the analysis of characteristics and changes of objects of economic activity using the necessary methods and means of such research. The basic principles of sampling and sample preparation, modern methods and means of environmental monitoring, the basics of metrological and laboratory-analytical support for environmental control are described. The training material is accompanied by up-to-date references to the current legislative framework of the Russian Federation. Meets the requirements of the federal state educational standards of higher education of the latest generation and the current bachelor's degree program in the areas of training "Technosphere Safety", "Biotechnical systems and Technologies". It can be useful and interesting for students, undergraduates, postgraduates, as well as teachers specializing in environmental safety.
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5

Tadeo, José L. Analysis of Pesticides in Food and Environmental Samples. Edited by Jose L. Tadeo. Second edition. | Boca Raton : Taylor & Francis, a CRC title, part of the Taylor & Francis imprint, a member of the Taylor & Francis Group, the academic division of T&F Informa, plc, 2019.: CRC Press, 2019. http://dx.doi.org/10.1201/9781351047081.

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6

Tadeo, Jose L. Analysis of Pesticides in Food and Environmental Samples. London: Taylor and Francis, 2008.

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7

Adams, Tamara Jo. Diazinon residues: Laboratory methods for analysis of environmental samples. Bellingham, Wash: Huxley College of Environmental Studies, Western Washington University, 1987.

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8

Selected methods of trace metal analysis: Biological and environmental samples. New York: Wiley, 1985.

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9

Instrumental element and multi-element analysis of plant samples: Methods and applications. Chichester: John Wiley, 1996.

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10

Martin, Paul. Routine analysis of naturally occurring radionuclides in environmental samples by alpha-particle spectrometry. Canberra: Australian Govt. Pub. Service, 1992.

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11

Committee, Canada Dioxin Quality Assurance Advisory. Internal quality assurance requirements for the analysis of dioxins in environmental samples. Ottawa: Environment Canada, 1992.

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12

Hewitt, Alan D. Storage and preservation of soil samples for volatile compound analysis. Hanover, N.H: U.S. Army Cold Regions Research and Engineering Laboratory, 1999.

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13

Severson, R. C. Partitioning of elements between two size sediment fractions in samples from nineteen areas of the western United States. [Denver, CO]: U.S. Geological Survey, 1991.

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14

Severson, R. C. Partitioning of elements between two size sediment fractions in samples from nineteen areas of the western United States. [Denver, CO]: U.S. Geological Survey, 1991.

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15

Severson, R. C. Partitioning of elements between two size sediment fractions in samples from nineteen areas of the western United States. [Denver, CO]: U.S. Geological Survey, 1991.

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16

Martin, Jeffrey D. Variability of pesticide detections and concentrations in field replicate water samples collected for the National Water-Quality Assessment Program, 1992-97. Indianapolis, Ind: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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17

Indian Bureau of Mines. Ore Dressing Division. Manual of procedure for chemical and instrumental analysis of ores, minerals, ore dressing products and environmental samples. Nagpur: Ore Dressing Division, Indian Bureau of Mines, Ministry of Mines, Government of India, 2012.

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18

Gaskill, Alvia. Evaluation of spark source mass spectrometry and plasma emission spectroscopy for comprehensive elemental analysis of environmental samples. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1987.

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19

Davis, Dale. Assessment of cranberry bog drainage pesticide contamination: Results from chemical analyses of surface water, tissue, and sediment samples collected in 1996. Olympia, Wash: Environmental Investigations and Laboratory Services Program, 1997.

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20

Davis, Dale. Assessment of cranberry bog drainage pesticide contamination: Results from chemical analyses of surface water, tissue, and sediment samples collected in 1996. Olympia, Wash: Environmental Investigations and Laboratory Services Program, 1997.

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21

Campbell, S. Chemical composition of precipitation and watershed samples collected at Deep Creek Lake, Garrett County, Maryland. Columbia, Md. (9200 Rumsey Rd., Columbia 21045): Martin Marietta Environmental Systems, Martin Marietta Corp., 1985.

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22

Martin, Jeffrey D. Variability of pesticide detections and concentrations in field replicate water samples collected for the National Water-Quality Assessment Program, 1992-97. Indianapolis, Ind: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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23

Grant, Clarence L. Comparison criteria for environmental chemical analyses of split samples sent to different laboratories: Corps of Engineers archived data. [Hanover, N.H.]: US Army Corps of Engineers, Cold Regions Research & Engineering Laboratory, 1996.

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24

Johnson, C. Ian. Broad spectrum analysis of municipal and industrial effluents discharged into the Peace, Athabasca and Slave River basins: Characterization of effluent samples, 1994. Edmonton: The Study, 1997.

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25

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. Cincinnati, OH: U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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26

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. Cincinnati, OH: U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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27

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. Cincinnati, OH: U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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28

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. Cincinnati, OH: U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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29

Edgell, Kenneth. USEPA method study 38 SW-846 method 3010 acid digestion of aqueous samples and extracts for total metals for analysis by flame atomic absorption spectroscopy. Cincinnati, OH: U.S. Environmental Protection Agency, Environmental Monitoring Systems Laboratory, 1989.

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30

Garbarino, John R. Methods of analysis by the U.S. Geological Survey National Water Quality Laboratory: Arsenic speciation in natural-water samples using laboratory and field methods. Denver, Colo: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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31

Garbarino, John R. Methods of analysis by the U.S. Geological Survey National Water Quality Laboratory: Arsenic speciation in natural-water samples using laboratory and field methods. Denver, Colo: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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32

FGBOU, VO. Digital analytics and financial security control of socially significant organizations. ru: INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1863937.

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Анотація:
The monograph is devoted to the formation of the concept of digital financial security analytics. The use of the digital environment and big data analysis tools in the system of monitoring sectoral risks and monitoring the activities of socially significant organizations from the position of the ESG strategy is disclosed. At the same time, financial security is considered as an aggregated result of the action of economic, environmental and social factors in a rapidly changing economy. It covers several key areas that make it possible to digitalize and improve the effectiveness of monitoring the activities of socially significant organizations in a complex: the development of the conceptual apparatus of socially significant business; analytical tools for assessing and forecasting financial security risks based on the concept of sustainable development; standardization of risk management. For students, postgraduates, teachers, as well as for the professional development of managerial personnel in business and government structures.
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33

Wilkinson, P. The determination of environmental levels of uranium and thorium series isotopes and ℗£℗đʺ́Cs in aquatic and terrestrial samples. Ottawa: Dept. of Fisheries and Oceans, 1985.

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34

Panny, Alice. Aldicarb residues in a coastal marine environment: Analysis of water and soil samples in Bellingham Bay, Washington, utilizing a new gas chromatographic method. Bellingham, Wash: Huxley College of Environmental Studies, Western Washington University, 1988.

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35

Bartos, Timothy T. Water quality and environmental isotopic analyses of ground-water samples collected from the Wasatch and Fort Union Formations in areas of coalbed methane development: Implications to recharge and ground-water flow, eastern Powder River basin, Wyoming. Cheyenne, Wyo: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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36

Payne, James R. Preassessment data report: Analyses of water samples collected in support of the M/V New Carissa oil spill natural resource damage assessment. Encinitas, CA: Payne Environmental Consultants, 1999.

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37

Payne, James R. Preassessment data report: Source characterization of oil, sediment, and tissue samples collected in support of the M/V New Carissa oil spill natural resource damage assessment. Encinitas, CA: Payne Environmental Consultants, 2000.

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38

Melching, Charles S. Differences in results of analyses of concurrent and split stream-water samples collected and analyzed by the U.S. Geological Survey and the Illinois Environmental Protection Agency, 1985-91. Urbana, Ill: U.S. Dept. of the Interior, U.S. Geological Survey, 1995.

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39

Melching, Charles S. Differences in results of analyses of concurrent and split stream-water samples collected and analyzed by the U.S. Geological Survey and the Illinois Environmental Protection Agency, 1985-91. Urbana, Ill: U.S. Dept. of the Interior, U.S. Geological Survey, 1995.

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40

Toussaint, John Patrick. Selective sample pretreatment for environmental analysis. 1996.

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41

Toussaint, John Patrick. Selective sample pretreatment for environmental analysis. 1996.

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42

Stevenson, D. Sample Preparation for Biomedical and Environmental Analysis. Springer, 2013.

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43

D, Stevenson, Wilson Ian D, and Chromatographic Society International Symposium on Sample Preparation for Biomedical and Environmental Analysis (1991 : University of Surrey)., eds. Sample preparation for biomedical and environmental analysis. New York: Plenum Press, 1994.

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44

Stevenson, D., and I. D. Wilson. Sample Preparation for Biomedical and Environmental Analysis. Springer, 2013.

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45

Damià, Barceló, ed. Sample handling and trace analysis of pollutants: Techniques, applications, and quality assurance. Amsterdam: Elsevier, 2000.

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46

Evaluation of PM₂.₅ speciation sampler performance and related sample collection and stability issues for U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, Emissions, Monitoring, and Analysis Division. Research Triangle Park, NC: U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, 2001.

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47

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Analysis of bulk samples. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.003.0018.

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Анотація:
Chapter 18 “Analysis of bulk samples” deals with the particular case of biodiversity surveys based on bulk samples. A bulk sample is an environmental sample containing mainly organisms from the taxonomic group under study, such as insect samples obtained from a Malaise trap, or eukaryote-enriched samples obtained from filtered or size-fractionated water samples. One important characteristic of bulk samples is that they usually provide good-quality DNA in high amounts. Chapter 18 presents several seminal studies based on bulk samples that aimed at monitoring arthropod, nematode, or marine metazoan diversity. The advantages and limitations of the classical barcoding COI marker versus metabarcoding markers for bulk sample analysis are also discussed. Finally, Chapter 18 reviews two alternative strategies to limit the taxonomic biases associated with the use of the COI marker (i.e., mitochondrial enrichment via differential centrifugation or capture, followed by extraction and shotgun sequencing).
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48

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Introduction to environmental DNA (eDNA). Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.003.0001.

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Анотація:
Chapter “Introduction to environmental DNA (eDNA)” defines the central concepts of this book. Environmental DNA (eDNA) corresponds to a mixture of genomic DNA from many different organisms found in an environmental sample such as water, soil, or feces. DNA metabarcoding can be defined as the simultaneous DNA-based identification of many taxa found in the same eDNA extract. It is usually based on the analysis of a metabarcode (i.e., a short and taxonomically informative DNA region). Metagenomics refers to the assembly and functional analysis of the different genomes found in an environmental sample, while metatranscriptomics examines gene expression and regulation at the sampling time based on the set of RNAs extracted from such a sample. Chapter also presents a brief history of eDNA, highlights the different steps of an eDNA study, and gives an overview of the different eDNA methods implemented in ecological research or biodiversity management.
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49

Basil, Coutant, Stetzer Shannon, and United States. Environmental Protection Agency. Emissions, Monitoring, and Analysis Division., eds. Evaluation of PM₂.₅ speciation sampler performance and related sample collection and stability issues for U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, Emissions, Monitoring, and Analysis Division. Research Triangle Park, NC: U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, 2001.

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50

Basil, Coutant, Stetzer Shannon, and United States. Environmental Protection Agency. Emissions, Monitoring, and Analysis Division, eds. Evaluation of PM₂.₅ speciation sampler performance and related sample collection and stability issues for U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, Emissions, Monitoring, and Analysis Division. Research Triangle Park, NC: U.S. Environmental Protection Agency, Office of Air Quality Planning and Standards, 2001.

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