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1

Melander, Lars C. S. Reaction rates of isotopic molecules. R.E. Krieger Pub. Co., 1987.

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2

W, Wharton Christopher, ed. Enzyme kinetics. IRL Press, 1988.

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3

Chemical kinetics: The study of reaction rates in solution. Wiley-VCH, 1990.

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4

Connors, Kenneth A. Chemical kinetics: The study of reaction rates in solution. VCH, 1990.

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5

Gray, Peter. Chemical oscillations and instabilities: Non-linear chemical kinetics. Clarendon, 1994.

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6

1923-, Grunwald Ernest, ed. Rates and equilibria of organic reactions as treated by statistical, thermodynamic, and extrathermodynamic methods. Dover Publications, 1989.

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7

Purich, Daniel L. Handbook of biochemical kinetics. Academic, 1999.

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8

Joos, Nathaniel Ian. Surface oxygen exchange kinetics and oxygen diffusion rates in YSZ single crystals and mixed conducting oxides. National Library of Canada, 1999.

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9

Rhatigan, Jennifer L. Effects of gas-phase radiation and detailed kinetics on the burning and extension of a solid fuel. National Aeronautics and Space Administration, Johnson Space Center, 2001.

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10

Branch, M. C. Ignition and combustion of bulk metals at normal, elevated, and reduced gravity: Annual technical report, NASA grant no. NAG-3-1685. Center for Combustion Research, University of Colorado at Boulder, 1995.

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11

Sparks, Donald L., Ph. D., Suarez Donald L, and Soil Science Society of America. Division S-1., eds. Rates of soil chemical processes. Soil Science Society of America, 1991.

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12

Morawetz, Klaus. Properties of Non-Instant and Nonlocal Corrections. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797241.003.0014.

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The derived nonlocal and non-instant shifts are discussed with respect to various symmetries and gauges. The classical counterparts are derived and found in agreement with the expected phenomenological ones from chapter 3. The explicit forms of the hard-sphere like offsets and the delay time in terms of the scattering phase shifts are calculated and discussed on the example of nuclear collision. The numerical results reveal an interesting inside into the microscopic correlations developed in dependence on the scattering angle and scattering energy. The just-accomplished derivation of the nonlo
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13

Chemical Kinetics: The Study of Reaction rates in solution. Wiley, 1990.

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14

1924-, Stumm Werner, ed. Aquatic chemical kinetics: Reaction rates of processes in natural waters. Wiley, 1990.

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15

Stumm, Werner. Aquatic Chemical Kinetics: Reaction Rates of Processes in Natural Waters. Wiley-Interscience, 1990.

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16

L, Bowie George, Environmental Research Laboratory (Athens, Ga.), and Tetra Tech inc, eds. Rates, constants, and kinetics formulations in surface water quality modeling. 2nd ed. Environmental Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, 1985.

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17

L, Bowie George, Barnwell Thomas O, and United States. Environmental Protection Agency., eds. Rates, constants, and kinetics formulations in surface water quality modelling. 2nd ed. U. S. Environmental Protection Agency, 1985.

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18

F, Bernasconi Claude, ed. Investigation of rates and mechanisms of reactions. 4th ed. Wiley, 1986.

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19

1939-, Bernasconi Claude F., ed. Investigation of rates and mechanisms of reactions. 4th ed. Wiley, 1986.

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20

Wang, Yong. The effect of steam on the rates of solid state reactions. 1993.

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21

(Editor), Claude F. Bernasconi, and A. Weisberger (Editor), eds. Investigation of Rates and Mechanisms of Reactions, Part 1: General Considerations and Reactions at Conventional Rates (Techniques of Chemistry). Wiley-Interscience, 1986.

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22

Bascomb, Newell F. Purification and partial kinetic and physical characterization of two NADP-specific glutamate dehydrogenase isoenzymes and their protein precursors, and measurement of the patterns of accumulation and rates of degradation of their nonidentical subunits in synchronized cells of Chlorella cultured in different concentrations of ammonia. 1985.

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23

Sherwood, Dennis, and Paul Dalby. Chemical equilibrium and chemical kinetics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198782957.003.0014.

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Building on the previous chapter, this chapter examines gas phase chemical equilibrium, and the equilibrium constant. This chapter takes a rigorous, yet very clear, ‘first principles’ approach, expressing the total Gibbs free energy of a reaction mixture at any time as the sum of the instantaneous Gibbs free energies of each component, as expressed in terms of the extent-of-reaction. The equilibrium reaction mixture is then defined as the point at which the total system Gibbs free energy is a minimum, from which concepts such as the equilibrium constant emerge. The chapter also explores the te
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24

George C. Marshall Space Flight Center., ed. Trace chemical contaminant generation rates for spacecraft contamination control system design. National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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25

George C. Marshall Space Flight Center., ed. Trace chemical contaminant generation rates for spacecraft contamination control system design. National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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26

Taillefer, Raymond, and Frans J. Th Wackers. Kinetics of Conventional and New Cardiac Radiotracers. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199392094.003.0004.

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The kinetics of radiotracers, that is the mode of uptake, retention and release from the myocardium, are relevant for designing and implementing optimized nuclear cardiac imaging protocols. This chapter addresses the kinetics of commonly used radiotracers for imaging myocardial perfusion, sympathetic neuronal function and cardiac metabolism, both with SPECT and PET cardiac imaging. The optimal timing of imaging after injection either at stress or at rest is determined by rate of uptake in the heart and adjacent organs, as well as the residence time of radiotracers within the myocytes. The effi
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27

E, Buncel, and Lee C. C. 1924-, eds. Secondary and solvent isotope effects. Elsevier, 1987.

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28

Glucose kinetics at rest and during exercise in gluconeogenesis-inhibited rats. 1988.

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29

Glucose kinetics at rest and during exercise in gluconeogenesis-inhibited rats. 1988.

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30

Gray, Peter, and Stephen K. Scott. Chemical Oscillations and Instabilities: Non-linear Chemical Kinetics (International Series of Monographs on Chemistry, No 21). Oxford University Press, USA, 1994.

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31

N, Gupta Roop, and Langley Research Center, eds. A Review of reaction rates and thermodynamic and transport properties for an 11-species air model for chemical and thermal nonequilibrium calculations to 30 000 K. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1990.

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32

Sparks, Donald L. Rates of Soil Chemical Processes: Proceedings of a Symposium Sponsored by Divisions S-1, S-2, S-3, and S-9 of the Soil Science Society of America in (S S S a Special Publication). Soil Science Society of Amer, 1991.

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33

J, Decker Arthur, Blue James W, United States. National Aeronautics and Space Administration., and Lewis Research Center, eds. Results of an attempt to measure increased rates of the reaction ²D+²D[reaction direction symbol]³He+n in a nonelectrochemical cold fusion experiment. National Aeronautics and Space Administration, 1989.

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34

Wolf, E. L. Fusion in the Sun. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0004.

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Protons in the Sun’s core are a dense plasma allowing fusion events where two protons initially join to produce a deuteron. Eventually this leads to alpha particles, the mass-four nucleus of helium, releasing kinetic energy. Schrodinger’s equation allows particles to penetrate classically forbidden Coulomb barriers with small but important probabilities. The approximation known as Wentzel–Kramers–Brillouin (WKB) is used by Gamow to predict the rate of proton–proton fusion in the Sun, shown to be in agreement with measurements. A simplified formula is given for the power density due to fusion i
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35

Armstrong, Neil, and Joanne R. Welsman. Aerobic fitness. Oxford University Press, 2013. http://dx.doi.org/10.1093/med/9780199232482.003.0008.

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Maximal oxygen uptake ( V O 2 · max), the highest rate at which an individual can consume O2 during exercise, is widely recognized as the best single measure of adults’ aerobic fitness.1,2 Maximal V O 2 · ultimately limits an individual’s capacity to perform aerobic exercise but it does not describe fully all aspects of aerobic fitness. The transient kinetics of V O 2 · best reflect the integrated response of the O2 delivery system and the metabolic requirements of the exercising muscle to rapid changes in exercise intensity. Furthermore, V O 2 · max is not the best index of an individual’s ab
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36

Lyndon B. Johnson Space Center., ed. Effects of gas-phase radiation and detailed kinetics on the burning and extension of a solid fuel. National Aeronautics and Space Administration, Johnson Space Center, 2001.

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37

Effects of gas-phase radiation and detailed kinetics on the burning and extension of a solid fuel. National Aeronautics and Space Administration, Johnson Space Center, 2001.

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38

Lyndon B. Johnson Space Center., ed. Effects of gas-phase radiation and detailed kinetics on the burning and extension of a solid fuel. National Aeronautics and Space Administration, Johnson Space Center, 2001.

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39

Clarke, Andrew. Temperature and reaction rate. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199551668.003.0007.

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All other things being equal, physiological reaction rate increases roughly exponentially with temperature. Organisms that have adapted over evolutionary time to live at different temperatures can have enzyme variants that exhibit similar kinetics at the temperatures to which they have adapted to operate. Within species whose distribution covers a range of temperatures, there may be differential expression of enzyme variants with different kinetics across the distribution. Enzymes adapted to different optimum temperatures differ in their amino acid sequence and thermal stability. The Gibbs ene
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40

T, Schwab S., Harlowe W. W, and Langley Research Center, eds. Ignition delays, heats of combustion, and reaction rates of aluminum alkyl derivatives used as ignition and combustion enhancers for supersonic combustion. National Aeronautics and Space Administration, Langley Research Center, 1992.

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41

Purich, Daniel L., and R. Donald Allison. Handbook of Biochemical Kinetics: A Guide to Dynamic Processes in the Molecular Life Sciences. Academic Press, 2000.

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42

1898-, Weissberger Arnold, ed. Techniques of chemistry. 4th ed. Wiley, 1986.

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43

Billing, Gert D., ed. The Quantum Classical Theory. Oxford University Press, 2003. http://dx.doi.org/10.1093/oso/9780195146196.001.0001.

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Over a period of fifty years, the quantum-classical or semi-classical theories have been among the most popular for calculations of rates and cross sections for many dynamical processes: energy transfer, chemical reactions, photodissociation, surface dynamics, reactions in clusters and solutions, etc. These processes are important in the simulation of kinetics of processes in plasma chemistry, chemical reactors, chemical or gas lasers, atmospheric and interstellar chemistry, as well as various industrial processes. This book gives an overview of quantum-classical methods that are currently use
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44

G, Compton R., and Hamnett A, eds. New techniques for the study of electrodes and their reactions. Elsevier, 1989.

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45

Kalinichenko, Evgeny. Theory and methods for calculating the inertial-braking characteristics of a ship. «Scientific Route» OÜ, 2020. http://dx.doi.org/10.21303/978-617-7319-30-5.

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One of the most serious problems of modern navigation is the accident rate that occurs due to inept or belated maneuvering of ships. As a result of accidents in the world, more than 200 ships die every year and every fourth receives significant damage. Full-scale tests show that the stopping distance of large-tonnage ships turn out to be much less permissible, and shipbuilders are able to significantly reduce the astern power of such ships, making them cheaper at the expense of safety. The low accuracy of inertial-braking characteristics is mainly due to unqualified field tests. Analysis of gr
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46

Société française de chimie. Division de chimie physique. International Meeting. Chemical reactivity in liquids. Plenum, 1988.

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47

Chemical Reactivity in Liquids: Fundamental Aspects. Springer, 2012.

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48

Chemical Reactivity in Liquids: Fundamental Aspects. Springer, 1988.

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