Books on the topic 'Industrial emission'

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1

Ahmed, N. Real-time Pc-based acoustic emission monitoring fornon-invasiveon-line industrial processes diagnosis. Manchester: UMIST, 1994.

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2

Abbott, Tim. Aspects of the three-dimensional imaging of industrial subjects with positron emission tomography. Birmingham: University of Birmingham, 1987.

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3

Cowherd, Chatten. Size specific particulate emission factors for industrial and rural roads: Source category report. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1986.

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4

van Velzen, Daniel, ed. Sulphur Dioxide and Nitrogen Oxides in Industrial Waste Gases: Emission, Legislation and Abatement. Dordrecht: Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3624-2.

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5

Cowherd, Chatten. Size specific particulate emission factors for industrial and rural roads: Source category report. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1986.

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6

van, Velzen Daniel, ed. Sulphur dioxide and nitrogen oxides in industrial waste gases: Emission, legislation, and abatement. Dordrecht: Kluwer Academic, 1991.

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7

International, Conference of Nondestructive Evaluation for Advanced Materials and Monitoring Applications on the Basis of Acoustic Emission Technology (1986 Institute of Industrial Science University of Tokyo). International Conference of Nondestructive Evaluation for Advanced Materials and Monitoring Applications on the Basis of Acoustic Emission Technology: Seiken Symposium : proceedings : October 27, 28, 1986, Institute of Industrial Science, Tokyo. [Tokyo: Institute of Industrial Science, University of Tokyo, 1986.

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8

Żuchowicz-Wodnikowska, Iwonna. Emisja i propagacja hałasu przemysłowego w środowisku zewnętrznym =: Emission and propagation of industrial noise in the outdoor environment. Warszawa: Wydawnictwa Instytutu Techniki Budowlanej, 1998.

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9

Żuchowicz-Wodnikowska, Iwonna. Emisja i propagacja hałasu przemysłowego w środowisku zewnętrznym: Emission and propagation of industrial noise in the outdoor environment. 2nd ed. Warszawa: Wydawnictwa Instytutu Techniki Budowlanej, 2008.

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10

Lakshminarayana, Yenumula. Preliminary computer simulation and experimental results for gamma ray emission computed tomography imaging for industrial applications. Mumbai: Scientific Information Resource Division, Bhabha Atomic Research Centre, 2012.

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11

Someshwar, Arun V. A review of NOx emission control strategies for industrial boilers, Kraft recovery furnaces, and lime kilns. New York: National Council of the Paper Industry for Air and Stream Improvement, 1999.

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12

Theriault, Colette G. Metal profiles in sediments collected from Minnow Lake, Sudbury, following two decades of reduced industrial atmospheric emission. Sudbury, Ont: Laurentian University, Department of Biology, 1991.

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13

IEEE Electromagnetic Compatibility Society. Standards Committee. IEEE recommended practice for the measurement of radio frequency emission from industrial, scientific, and medical (ISM) equipment installed on user's premises. New York, NY: Institute of Electrical and Electronics Engineers, 1988.

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14

Lukanin, Alleksandr. Cleaning of gas and air emissions. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1070340.

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The monograph examines the currently existing industrial gas emissions in the chemical, petrochemical, microbiological, pharmaceutical and related industries, methods for calculating their quantity and methods for protecting the air basin from them. The materials are based on an in-depth analysis of methods for cleaning frequently occurring, most dangerous substances that enter the Earth's atmosphere with waste gases of large-scale production. Recommendations are given on methods for calculating gross emissions of harmful substances for a large number of specific industries. The subject of the monograph is related to the scientific areas "Technosphere safety" and "Engineering environmental protection", training profiles: engineering environmental protection of localities, engineering environmental protection of industrial enterprises and environmental protection and resource conservation. It will be of interest to engineering and technical staff, graduate students and teachers.
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15

Agency, OECD Nuclear Energy, Universidade de Lisboa. Centro de Fisica Nuclear., Instituto Tecnologico e. Nuclear, and NEA Nuclear Science Committee., eds. Proceedings of the Workshop on Ion and Slow Positron Beam Utilisation: Costa da Caparica, Portugal, 15-17 September 1998. Paris: Nuclear Energy Agency, Organisation for Economic Co-operation and Development, 1999.

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16

author, Zhou Dequn, and Zhou Peng 1978 author, eds. Xiao lü shi jiao xia de Zhongguo jie neng jian pai wen ti yan jiu: Study on the energy saving and emission reduction in China : an efficiency perspective. Shanghai Shi: Fu dan da xue chu ban she, 2013.

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17

INSEL96 Conference (1996 Università degli studi di Roma "La Sapienza"). Light emission from silicon: INSEL96 Conference, University of Rome 'La Sapienza', Rome, Italy, November 11-12, 1996. Edited by Ferrari Aldo, Commission of the European Communities. D.G. III., and Università degli studi di Roma "La Sapienza." Uetikon-Zuerich, Switzerland: Scitech Publications, 1997.

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18

Drosjack, S. Maryland industrial boilers emissions report. Annapolis, Md: Maryland Power Plant Research Program, 2005.

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19

Lukanin, Aleksandr. Environmental Engineering: Processes and gas emissions purification devices. ru: INFRA-M Academic Publishing LLC., 2017. http://dx.doi.org/10.12737/24376.

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The tutorial adequately considered the currently existing methods of protection of the air basin from industrial waste gases of chemical, petrochemical, microbiological, pharmaceutical and related industries. The material is based on a thorough analysis of the treatment methods commonly used, the most dangerous substances that enter the Earth´s atmosphere with the exhaust gases of large enterprises, also provides guidance on the use of gas-cleaning equipment emissions in the industry. Compliant with the Federal state educational standard of the latest generation of higher education. The book is intended for students of technical colleges enrolled in areas of training "Technosphere Safety" and "Environmental Engineering" (training profiles: "Environmental Engineering localities", "Engineering protection of the environment of industrial enterprises" and "Protection of the environment and resources"), as well as for engineering technical staff, graduate students and professors.
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20

Palazzolo, M. A. Control of industrial VOC emissions by catalytic incineration. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1985.

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21

Sheryl, Watkins, ed. Controlling volatile organic compound emissions from industrial wastewater. Park Ridge, N.J., U.S.A: Noyes Data Corp., 1990.

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22

Castaldini, Carlo. Dioxin emissions from industrial boilers burning hazardous materials. Cincinnati, OH: U.S. Environmental Protection Agency, Hazardous Waste Engineering Research Laboratory, 1986.

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23

Castaldini, Carlo. Dioxin emissions from industrial boilers burning hazardous materials. Cincinnati, OH: U.S. Environmental Protection Agency, Hazardous Waste Engineering Research Laboratory, 1986.

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24

Pauli, Gunter. First five years of action: The Zero Emissions Research and Initiatives (ZERI), 1994-1999. Windhoek, Namibia: University of Namibia, 1998.

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25

Hogan, T. Description of the industrial combustion emissions model (version 6.0). Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1988.

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26

Environment, Alberta Alberta, ed. Specified gas reporting: Alberta's 2004 industrial greenhouse gas emissions. Edmonton, AB: Alberta Environment, 2006.

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27

1932-, Van Basshuysen Richard, ed. Reduced emissions and fuel consumption in automobile engines. Wien: Springer-Verlag, 1995.

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28

UNU, World Congress on Zero Emissions (3rd 1997 Jakarta Indonesia). Proceedings of the Third Annual UNU World Congress on Zero Emissions: Jakarta, Indonesia, 31 July-2 August 1997. Windhoek, Namibia: University of Namibia, 1997.

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29

International Training Workshop on the Zero Emissions Research Initiative (ZERI) in Africa (1st 1997 Windhoek, Namibia). A new hope for sustainable development in Africa: Zero emissions and total productivity of raw materials. Edited by Mshigeni Keto E, University of Namibia, and United Nations University. Windhoek, Namibia: University of Namibia, 1998.

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30

Scheffel, Fritzi A. Toxic organic emissions from synfuels and related industrial wastewater treatment systems. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1987.

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31

Hesketh, Howard D., John T. Quigley, and Jr Frank L. Cross. Emission Control from Industrial Boilers. CRC, 1994.

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32

E, Hesketh Howard, Cross Frank L, and Quigley John T, eds. Emission control from industrial boilers. Lancaster, PA: Technomic Pub., 1995.

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33

Hesketh, Howard D., John T. Quigley, and Frank L. Cross Jr. Emission Control from Industrial Boilers. Taylor & Francis Group, 2014.

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34

Hesketh, Howard D., John T. Quigley, and Frank L. Cross Jr. Emission Control from Industrial Boilers. Taylor & Francis Group, 2014.

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35

Canadian Council of Ministers of the Environment., ed. National emission guideline for commercial/industrial boilers and heaters. Winnipeg, Man: Canadian Council of Ministers of the Environment, 1998.

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36

Mirkouei, Amin. Net-Negative Emission Targets: Essential Solutionsfor Key Industrial Sectors. Wiley & Sons, Limited, John, 2024.

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37

Evaluation of low-emission coal burner technology on industrial boilers: Project summary. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1989.

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38

A, Folsom Blair, and Air and Energy Engineering Research Laboratory., eds. Evaluation of low-emission coal burner technology on industrial boilers: Project summary. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1989.

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39

A, Folsom Blair, and Air and Energy Engineering Research Laboratory., eds. Evaluation of low-emission coal burner technology on industrial boilers: Project summary. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1989.

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40

A, Folsom Blair, and Air and Energy Engineering Research Laboratory, eds. Evaluation of low-emission coal burner technology on industrial boilers: Project summary. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1989.

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41

A, Folsom Blair, and Air and Energy Engineering Research Laboratory, eds. Evaluation of low-emission coal burner technology on industrial boilers: Project summary. Research Triangle Park, NC: U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1989.

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42

Velzen, Daniel van. Sulphur Dioxide and Nitrogen Oxides in Industrial Waste Gases: Emission, Legislation and Abatement. Springer Netherlands, 2012.

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43

Velzen, Daniel van. Sulphur Dioxide and Nitrogen Oxides in Industrial Waste Gases: Emission, Legislation and Abatement. Springer, 2012.

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44

Engineers, Society of Automotive, and International Fall Fuels & Lubricants Meeting & Exposition (1999 : Toronto, Ont.), eds. Non-thermal plasma for exhaust emission control--NOx, HC, and particulates. Warrendale, PA: Society of Automotive Engineers, 1999.

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45

Complementing document for Emission Scenario Document (ESD) on coating industry: Application of Paint Solvents for industrial coating. OECD, 2015. http://dx.doi.org/10.1787/dc9affb1-en.

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46

Non-Thermal Plasma for Exhaust Emission Control: Nox, Hc, and Particulates (S P (Society of Automotive Engineers)). Society of Automotive Engineers Inc, 1999.

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47

Wang, Sigen, Otto Zhou, and Sha Chang. Carbon-nanotube field emission electron and X-ray technology for medical research and clinical applications. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.19.

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This article describes carbon-nanotube based X-ray technologies for medical research and clinical applications, including an X-ray source, microfocus X-ray tube, microcomputed tomography scanner, stationary digital breast tomosynthesis, microradiotherapy system, and single-cell irradiation system. It first examines electron field emission from carbon nanotubes before discussing carbon-nanotube field emission electron and X-ray technologies in greater detail. It highlights the enormous promise of these systems in commercial and research application for the future in diagnostic medical imaging; in-vivo imaging of small-animal modelsfor pre-clinical cancer studies; security screening; industrial inspection; cancer radiotherapy of small-animal models for pre-clinical cancer studies; and basic cancer research using single-cell irradiation.
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48

Kamp, Jonathan Van Der. Social Cost-benefit Analysis of Air Pollution Control Measures - Advancing Environmental-economic Assessment Methods to Evaluate Industrial Point Emission Sources. Saint Philip Street Press, 2020.

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49

Kamp, Jonathan Van Der. Social Cost-benefit Analysis of Air Pollution Control Measures - Advancing Environmental-economic Assessment Methods to Evaluate Industrial Point Emission Sources. Saint Philip Street Press, 2020.

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50

Korppoo, Anna, Max Gutbrod, and Sergey Sitnikov. Russian Law on Climate Change. Edited by Kevin R. Gray, Richard Tarasofsky, and Cinnamon Carlarne. Oxford University Press, 2016. http://dx.doi.org/10.1093/law/9780199684601.003.0031.

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This chapter outlines Russian legislation relevant to climate change. Russia ratified the Kyoto Protocol in 2004. The main legal elements of institutional compliance under the Protocol included requirements to submit annual greenhouse gas (GHG) inventories, following the Intergovernmental Panel on Climate Change (IPCC) guidelines, and to establish a registry to keep track of domestic emissions and implementation of the Kyoto mechanisms. The Federal Service of Russia for Hydrometeorology and Environmental Monitoring (Roshydromet), together with the Institute of Global Climate and Ecology, were designated as the entities responsible for developing Russia’s GHG inventory. Russia’s compliance was driven by its opportunity to participate in the Kyoto mechanisms. These flexibility mechanisms—Joint Implementation (JI) and International Emissions Trading—allow industrial countries to trade emission allowances in order to direct climate mitigation investments into the most cost-effective measures available.
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