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Aprašymas
Chemical Reaction Engineering (CRE) lies at the heart of chemical and process engineering, providing the fundamental tools required to design, analyze, and optimize reactors in which chemical transformations occur. This textbook offers a comprehensive and rigorous treatment of CRE, seamlessly bridging fundamental theory with practical industrial applications. It guides the reader from first principles to the systematic modeling, design, and optimization of chemical reactors used in modern industry. The book progressively covers material and energy balances, ideal reactors (Batch, CSTR, PFR), reactor combinations and recycling strategies, thermal effects and non-isothermal operation, residence time distribution (RTD) and non-ideality models, before concluding with intensified reactors, micro-reactors, membrane reactors, reactive distillation, and advanced computational modeling (CFD).
The book serves as a primary textbook for university-level courses in Chemical Reaction Engineering, particularly at the senior undergraduate and graduate levels. Its structured pedagogical progression makes it ideal for formal instruction, while its emphasis on industrial relevance, non-ideality characterization, and practical modeling also renders it a valuable reference resource for professional chemical engineers practicing in industry. A Solutions Manual is available for adopting professors.
Chemical Reaction Engineering (CRE) lies at the heart of chemical and process engineering, providing the fundamental tools required to design, analyze, and optimize reactors in which chemical transformations occur. This textbook offers a comprehensive and rigorous treatment of CRE, seamlessly bridging fundamental theory with practical industrial applications. It guides the reader from first principles to the systematic modeling, design, and optimization of chemical reactors used in modern industry. The book progressively covers material and energy balances, ideal reactors (Batch, CSTR, PFR), reactor combinations and recycling strategies, thermal effects and non-isothermal operation, residence time distribution (RTD) and non-ideality models, before concluding with intensified reactors, micro-reactors, membrane reactors, reactive distillation, and advanced computational modeling (CFD).
The book serves as a primary textbook for university-level courses in Chemical Reaction Engineering, particularly at the senior undergraduate and graduate levels. Its structured pedagogical progression makes it ideal for formal instruction, while its emphasis on industrial relevance, non-ideality characterization, and practical modeling also renders it a valuable reference resource for professional chemical engineers practicing in industry. A Solutions Manual is available for adopting professors.
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