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Titlebook: Computer and Information Science Applications in Bioprocess Engineering; Antonio R. Moreira,Kimberlee K. Wallace Book 1996 Kluwer Academic

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书目名称Computer and Information Science Applications in Bioprocess Engineering
编辑Antonio R. Moreira,Kimberlee K. Wallace
视频videohttp://file.papertrans.cn/235/234369/234369.mp4
丛书名称NATO Science Series E:
图书封面Titlebook: Computer and Information Science Applications in Bioprocess Engineering;  Antonio R. Moreira,Kimberlee K. Wallace Book 1996 Kluwer Academic
描述Biotechnology has been labelled as one of the key technologiesof the last two decades of the 20th Century, offering boundlesssolutions to problems ranging from food and agricultural production topharmaceutical and medical applications, as well as environmental andbioremediation problems. Biological processes, however, are complexand the prevailing mechanisms are either unknown or poorly understood.This means that adequate techniques for data acquisition and analysis,leading to appropriate modeling and simulation packages that can besuperimposed on the engineering principles, need to be routine toolsfor future biotechnologists. The present volume presents a masterlysummary of the most recent work in the field, covering:instrumentation systems; enzyme technology; environmentalbiotechnology; food applications; and metabolic engineering.
出版日期Book 1996
关键词Analysis; Bioremediation; Biosensor; Fermentation; biotechnology; modeling; process engineering; simulation
版次1
doihttps://doi.org/10.1007/978-94-009-0177-3
isbn_softcover978-94-010-6564-1
isbn_ebook978-94-009-0177-3Series ISSN 0168-132X
issn_series 0168-132X
copyrightKluwer Academic Publishers 1996
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https://doi.org/10.1007/978-3-319-78599-8e membrane reactor. Simulations were carried out using a fourth-order Runge-Kutta integration method and with varying kinetic expressions. As in other reported cases, the dynamic of this reactor is mainly controlled by the kinetics of the reaction.
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Membrane Bioreactor with Immobilized Lipase: Modelling and Computational Considerationsses are employed to simplify the general mass balances to substrate and enzyme forms whereas the rate expressions are derived on the basis of reasonable mechanisms postulated for the enzyme-catalyzed reaction and the enzyme deactivation/rearrangement.
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