Academic literature on the topic 'Macrokinetic model'

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Journal articles on the topic "Macrokinetic model"

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Gendugov, V. M., G. P. Glazunov, M. V. Evdokimova, and M. V. Shestakova. "Macrokinetic grounds for a soil microbial growth model." Moscow University Soil Science Bulletin 66, no. 2 (June 2011): 79–82. http://dx.doi.org/10.3103/s0147687411020049.

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Takors, R., W. Wiechert, and D. Weuster-Botz. "Experimental design for the identification of macrokinetic models and model discrimination." Biotechnology and Bioengineering 56, no. 5 (December 5, 1997): 564–76. http://dx.doi.org/10.1002/(sici)1097-0290(19971205)56:5<564::aid-bit10>3.0.co;2-c.

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Kriaučiūnas, K., and J. Kulys. "Macrokinetic Model of Catalase Electrode with Biphasic Enzyme Inhibition." Nonlinear Analysis: Modelling and Control 9, no. 3 (July 25, 2004): 241–46. http://dx.doi.org/10.15388/na.2004.9.3.15155.

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Macrokinetics of catalase based enzyme electrode was investigated in presence of enzyme inhibitor – hydroxylamine. The modeling of the electrode was performed using biphasic scheme of enzyme inhibition and external diffusion limitation. The maximal enzyme electrode sensitivity was indicated at transition from diffusion to kinetically controlled mode. The fitting of experimental data demonstrated that the enzyme electrode had 70% of maximal sensitivity
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Gendugov, V. M., and G. P. Glazunov. "Macrokinetic model of microbial growth on a multicomponent substrate." Moscow University Soil Science Bulletin 69, no. 3 (July 2014): 99–105. http://dx.doi.org/10.3103/s0147687414030028.

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Lu, M. G., M. J. Shim, and S. W. Kim. "The macrokinetic model of thermosetting polymers by phase-change theory." Materials Chemistry and Physics 56, no. 2 (October 1998): 193–97. http://dx.doi.org/10.1016/s0254-0584(98)00173-4.

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Ren, H. T., J. Q. Yuan, and K. H. Bellgardt. "Macrokinetic model for methylotrophic Pichia pastoris based on stoichiometric balance." Journal of Biotechnology 106, no. 1 (December 2003): 53–68. http://dx.doi.org/10.1016/j.jbiotec.2003.08.003.

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Bunev, V. A., A. A. Korzhavin, A. P. Senachin, and P. K. Senachin. "Fuel ignition delay in hydrogen diesel." Journal of Physics: Conference Series 2233, no. 1 (April 1, 2022): 012008. http://dx.doi.org/10.1088/1742-6596/2233/1/012008.

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Abstract A new mathematical model is considered for modeling the induction period of fuel self-ignition in a hydrogen diesel engine with high-pressure injection equipment. Reconstruction of the macrokinetic equation and numerical modeling of the process of self-ignition of fuel in a hydrogen diesel engine are carried out.
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Bi, Jingxiu, Feng Zhou, An-ping Zeng, and Jingqi Yuan. "A macrokinetic model for myeloma cell culture based on stoichiometric balance." Biotechnology and Applied Biochemistry 46, no. 2 (February 1, 2007): 85. http://dx.doi.org/10.1042/ba20060021.

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Bykov, V. I., S. M. Lomakin, S. B. Tsybenova, and S. D. Varfolomeev. "Macrokinetic model of pyrolysis of carbonaceous feedstock in a tubular reactor." Doklady Chemistry 467, no. 1 (March 2016): 76–78. http://dx.doi.org/10.1134/s0012500816030083.

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Streese, J., M. Schlegelmilch, K. Heining, and R. Stegmann. "A macrokinetic model for dimensioning of biofilters for VOC and odour treatment." Waste Management 25, no. 9 (January 2005): 965–74. http://dx.doi.org/10.1016/j.wasman.2005.07.009.

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Dissertations / Theses on the topic "Macrokinetic model"

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Bakharieva, Ganna, Serhii Petrov, and Tetiana Falalieieva. "Development of the mathematical model of the kinetics of the stationary process of bio-cleaning with substratic inhibition." Thesis, Scientific Route OU, 2018. http://repository.kpi.kharkov.ua/handle/KhPI-Press/46262.

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A scientifically sound method for calculating the parameters of bio-cleaning should contain as a basic a reliable mathematical description of the stationary process. The results of stationary laboratory experiments are presented in the coordinates “specific rate of destruction V – concentration ρ”. Statistical processing proves the presence of substrate inhibition for both gaseous and soluble and dissolved harmful substances in water. For an analytical description of the dependence of the biooxidation rate on the concentration of contaminants, a phenomenological approach is applied, taking into account in a simple form two obvious phenomena: the contact of a microorganism with a substrate molecule and the inhibitory effect of the medium on it. The numerical values of empirical dependency coefficients for the studied processes are calculated. A differential equation is proposed at the macro level that describes the kinetics of biochemical destruction. The concept of a macrokinetic mathematical model of bioremediation is defined as a system of two functions that quantitatively reflect the dependence of the specific oxidation rate of pollution on its concentration and concentration on time, as well as satisfying the relationship between the relationships of the same parameters in differential form. The dependence of concentration on time is defined both in the form of a numerical integration algorithm and in the form of an approximate formula. The adequacy and universality of the proposed model for the studied processes is proved. The advantage of the proposed model of substrate inhibition kinetics is the simplicity of the structure of the basic formula and the ease of determining empirical coefficients based on this. In addition to numerical integration for determining the time of destruction, an approximate analytical solution is found, which can be adequately used in the concentration range of the experimental study. Further research is aimed at developing methods for calculating non-stationary processes in biochemical purification plants of certain specific types.
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Paul, Uchenna Prince. "Microkinetic Model of Fischer-Tropsch Synthesis on Iron Catalysts." Diss., CLICK HERE for online access, 2008. http://contentdm.lib.byu.edu/ETD/image/etd2535.pdf.

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Book chapters on the topic "Macrokinetic model"

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Volkova, Vladislava Nikolaevna, and Viktor Leontievich Golovin. "Macrokinetic Model of Biochemical Oxidation." In Lecture Notes in Civil Engineering, 487–94. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-79983-0_44.

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Balashov, V. N., and M. I. Lebedeva. "Macrokinetic model of origin and development of a monomineralic bimetasomatic zone." In Progress in Metamorphic and Magmatic Petrology, 167–96. Cambridge University Press, 1991. http://dx.doi.org/10.1017/cbo9780511564444.010.

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"5 Models of macrokinetics." In Chemical Complexity via Simple Models, 281–332. De Gruyter, 2018. http://dx.doi.org/10.1515/9783110464948-005.

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