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Diesel motor exhaust gas. --- Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Emissions --- Exhaust gas
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Diesel motor exhaust gas --- -Diesel motor exhaust gas --- -Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Environment aspects --- -Handbooks, manuals, etc --- Environmental aspects --- Emissions --- Exhaust gas --- Diesel emissions --- Environmental aspects&delete& --- Handbooks, manuals, etc
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Diesel motor --- Diesel motor exhaust gas --- Combustion --- Simulation methods. --- Design. --- Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Compression ignition engines --- Diesel engine --- Oil engines --- Internal combustion engines --- Motors --- Emissions --- Exhaust gas
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Automobiles --- -Diesel motor exhaust gas --- Polycyclic compounds --- -Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Autos (Automobiles) --- Cars (Automobiles) --- Gasoline automobiles --- Motorcars (Automobiles) --- Motor vehicles --- Transportation, Automotive --- Motors (Diesel) --- -Exhaust gas --- Environmental aspects --- Emissions --- Exhaust gas --- Diesel motor exhaust gas --- -Motors (Diesel) --- Moteurs diesel --- Gaz d'échappement --- Environmental aspects. --- Gaz d'échappement. --- Gaz d'échappement.
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The use of diesel-powered equipment in underground mining operations provides many benefits to the industry. It also presents many challenges to the health and safety of workers as it is a significant source of submicrometer aerosols and noxious gases. This book was developed to assist the coal and metal/nonmetal underground mining industries in their efforts to reduce the exposure of workers to aerosols and gases from diesel-powered equipment. It includes information collected by researchers at the National Institute for Occupational Safety and Health/ Office of Mine Safety and Health Rese
Coal -- Environmental aspects. --- Coal washing. --- Coal. --- Coal washing --- Coal preparation --- Coal --- Caustobioliths --- Fossil fuels --- Cleaning --- Mining machinery --- Diesel motor exhaust gas --- Mine gases --- Gases in mines --- Gases, Asphyxiating and poisonous --- Mine atmospheres --- Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Machinery --- Safety measures. --- Health aspects. --- Emissions --- Exhaust gas
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Air --- Air Pollutants --- Vehicle Emissions --- Pollution --- Environmental aspects. --- adverse effects. --- adverse effects --- Atmosphere --- Traffic-Related Pollutants --- Transportation Emissions --- Vehicular Emissions --- Automobile Exhaust --- Diesel Exhaust --- Engine Exhaust --- Emissions, Transportation --- Emissions, Vehicle --- Emissions, Vehicular --- Exhaust, Automobile --- Exhaust, Diesel --- Exhaust, Engine --- Pollutants, Traffic-Related --- Traffic Related Pollutants --- Traffic-Related Pollution --- Vehicle Emission --- Vehicular Emission --- Emission, Vehicle --- Emission, Vehicular
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Interest in plasma as a tool in various technological processes has been growing for several decades. This is because of the special advantage of plasma, which is the immediate generation of chemically active radicals. There are also other advantages of plasma, which depend on its source, e.g., low or high temperature (dielectric barrier discharge vs. plasmatrons), large or small volume (electron beam chambers vs. microplasma), high or low homogeneity (low pressure RF plasma vs. corona discharge), etc. It is no wonder that plasma is used in so many areas, starting with the synthesis of ozone initiated by Werner von Siemens in 1857, through the activation of material surfaces and flow control by actuators and electrohydrodynamic pumps, to the latest applications related to medicine, environmental protection, and efforts to stop climate change. The objective of this book is to collect reports on the design and characterization of plasma methods which are or can be used in various types of technologies, especially those that solve contemporary problems regarding materials, energy, and the environment.
Technology: general issues --- plasma --- dielectric barrier discharges --- state-controlling method --- microwave plasma --- AMPCVD --- CNTs --- Lorentzian plasmas --- coulomb focusing --- bremsstrahlung --- dielectric barrier discharge --- NO oxidation --- diesel exhaust --- oxidation degree of NOX --- hydrogen plasma --- atmospheric pressure plasma --- selective etching --- polymer-metal mesh composite foil --- roll-to-roll processing --- microdischarge --- electrical discharge --- dusty plasma --- hydrocarbon --- carbon structures --- helical resonator --- radio frequency --- RF plasma source --- n/a
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Interest in plasma as a tool in various technological processes has been growing for several decades. This is because of the special advantage of plasma, which is the immediate generation of chemically active radicals. There are also other advantages of plasma, which depend on its source, e.g., low or high temperature (dielectric barrier discharge vs. plasmatrons), large or small volume (electron beam chambers vs. microplasma), high or low homogeneity (low pressure RF plasma vs. corona discharge), etc. It is no wonder that plasma is used in so many areas, starting with the synthesis of ozone initiated by Werner von Siemens in 1857, through the activation of material surfaces and flow control by actuators and electrohydrodynamic pumps, to the latest applications related to medicine, environmental protection, and efforts to stop climate change. The objective of this book is to collect reports on the design and characterization of plasma methods which are or can be used in various types of technologies, especially those that solve contemporary problems regarding materials, energy, and the environment.
plasma --- dielectric barrier discharges --- state-controlling method --- microwave plasma --- AMPCVD --- CNTs --- Lorentzian plasmas --- coulomb focusing --- bremsstrahlung --- dielectric barrier discharge --- NO oxidation --- diesel exhaust --- oxidation degree of NOX --- hydrogen plasma --- atmospheric pressure plasma --- selective etching --- polymer-metal mesh composite foil --- roll-to-roll processing --- microdischarge --- electrical discharge --- dusty plasma --- hydrocarbon --- carbon structures --- helical resonator --- radio frequency --- RF plasma source --- n/a
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The book presents a complete new methodology for the on-board measurements and modeling of gas concentrations in turbocharged diesel engines. It provides the readers with a comprehensive review of the state-of-art in NOx and lambda estimation and describes new important achievements accomplished by the author. These include: the online characterization of lambda and NOx sensors; the development of control-oriented models of lambda and NOx emissions; the design of computationally efficient updating algorithms; and, finally, the application and evaluation of the methods on-board. Because of its technically oriented approach and innovative findings on both control-oriented algorithms and virtual sensing and observation, this book offers a practice-oriented guide for students, researchers and professionals working in the field of control and information engineering.
Diesel motor exhaust gas. --- Diesel emissions --- Diesel exhaust emissions --- Diesel exhaust gas --- Diesel motor --- Diesel motor emissions --- Diesel particulate emissions --- Emissions, Diesel --- Exhaust emissions, Diesel --- Exhaust gas, Diesel --- Particulate emissions, Diesel --- Combustion gases --- Emissions --- Exhaust gas --- Environmental protection. --- Transportation. --- Engine Technology. --- Control and Systems Theory. --- Atmospheric Protection/Air Quality Control/Air Pollution. --- Environmental quality management --- Protection of environment --- Environmental sciences --- Applied ecology --- Environmental engineering --- Environmental policy --- Environmental quality --- Engines. --- Machinery. --- Control engineering. --- Air pollution. --- Air --- Air contaminants --- Air pollutants --- Air pollution --- Air pollution control --- Air toxics --- Airborne pollutants --- Atmosphere --- Contaminants, Air --- Control of air pollution --- Pollutants, Air --- Toxics, Air --- Pollution --- Air quality --- Atmospheric deposition --- Control engineering --- Control equipment --- Control theory --- Engineering instruments --- Automation --- Programmable controllers --- Machinery --- Machines --- Manufactures --- Power (Mechanics) --- Technology --- Mechanical engineering --- Motors --- Power transmission --- Public transportation --- Transport --- Transportation --- Transportation, Primitive --- Transportation companies --- Transportation industry --- Locomotion --- Commerce --- Communication and traffic --- Storage and moving trade --- Control --- Curious devices --- Economic aspects
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Interest in plasma as a tool in various technological processes has been growing for several decades. This is because of the special advantage of plasma, which is the immediate generation of chemically active radicals. There are also other advantages of plasma, which depend on its source, e.g., low or high temperature (dielectric barrier discharge vs. plasmatrons), large or small volume (electron beam chambers vs. microplasma), high or low homogeneity (low pressure RF plasma vs. corona discharge), etc. It is no wonder that plasma is used in so many areas, starting with the synthesis of ozone initiated by Werner von Siemens in 1857, through the activation of material surfaces and flow control by actuators and electrohydrodynamic pumps, to the latest applications related to medicine, environmental protection, and efforts to stop climate change. The objective of this book is to collect reports on the design and characterization of plasma methods which are or can be used in various types of technologies, especially those that solve contemporary problems regarding materials, energy, and the environment.
Technology: general issues --- plasma --- dielectric barrier discharges --- state-controlling method --- microwave plasma --- AMPCVD --- CNTs --- Lorentzian plasmas --- coulomb focusing --- bremsstrahlung --- dielectric barrier discharge --- NO oxidation --- diesel exhaust --- oxidation degree of NOX --- hydrogen plasma --- atmospheric pressure plasma --- selective etching --- polymer-metal mesh composite foil --- roll-to-roll processing --- microdischarge --- electrical discharge --- dusty plasma --- hydrocarbon --- carbon structures --- helical resonator --- radio frequency --- RF plasma source --- plasma --- dielectric barrier discharges --- state-controlling method --- microwave plasma --- AMPCVD --- CNTs --- Lorentzian plasmas --- coulomb focusing --- bremsstrahlung --- dielectric barrier discharge --- NO oxidation --- diesel exhaust --- oxidation degree of NOX --- hydrogen plasma --- atmospheric pressure plasma --- selective etching --- polymer-metal mesh composite foil --- roll-to-roll processing --- microdischarge --- electrical discharge --- dusty plasma --- hydrocarbon --- carbon structures --- helical resonator --- radio frequency --- RF plasma source
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