Energy optimization in process systems and fuel cells

Energy Optimization in Process Systems and Fuel Cells, Third Edition covers the optimization and integration of energy systems, with a particular focus on fuel cell technology. With rising energy prices, imminent energy shortages, and the increasing environmental impacts of energy production, energy...

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Bibliographic Details
Main Authors Sieniutycz, Stanislaw (Author), Jeżowski, Jacek (Author)
Format Electronic eBook
LanguageEnglish
Published Amsterdam, Netherlands : Elsevier, 2018.
EditionThird edition.
Subjects
Online AccessFull text
ISBN9780081025581
0081025580
9780081025574
0081025572
Physical Description1 online resource

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020 |a 9780081025581  |q (electronic bk.) 
020 |a 0081025580  |q (electronic bk.) 
020 |z 9780081025574  |q (print) 
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035 |a (OCoLC)1037096347  |z (OCoLC)1037272360  |z (OCoLC)1037614018  |z (OCoLC)1105195021  |z (OCoLC)1105567468 
100 1 |a Sieniutycz, Stanislaw,  |e author. 
245 1 0 |a Energy optimization in process systems and fuel cells /  |c Stanisław Sieniutycz, Jacek Jeżowski. 
250 |a Third edition. 
264 1 |a Amsterdam, Netherlands :  |b Elsevier,  |c 2018. 
300 |a 1 online resource 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
504 |a Includes bibliographical references and index. 
505 0 |a Front Cover; Energy Optimizationin Process Systemsand Fuel Cells; Copyright; Contents; Preface; Acknowledgements; Chapter 1: Brief review of static optimization methods; 1.1. Introduction: Significance of mathematical model; 1.2. Unconstrained problems; 1.3. Equality constraints and Lagrange multipliers; 1.4. Methods of mathematical programming; 1.5. Iterative search methods; 1.6. On some stochastic optimization techniques; 1.6.1. Introduction; 1.6.2. Adaptive random search optimization; 1.6.3. Genetic algorithms; 1.6.4. Simulating annealing; Acceptance criterion; Initial simplex generation 
505 8 |a 2.5.1. Continuous optimization problem2.5.2. Optimal performance functions and related HJB equations; 2.5.3. Optimal performance in terms of the forward DP algorithm; 2.5.4. Link with gauged integrals of performance; 2.5.5. Diversity of equivalent formulations; 2.5.6. Passage to the Hamilton-Jacobi equation; 2.6. Continuous maximum principle; 2.7. Calculus of variations; 2.8. Viscosity solutions and nonsmooth analyzes; 2.9. Stochastic control and stochastic maximum principle; Chapter 3: Energy limits for thermal engines and heat pumps at steady states 
505 8 |a 3.1. Introduction: Role of optimization in determining thermodynamic limits3.2. Classical problem of thermal engine driven by heat flux; 3.2.1. Maximum power in thermal engines; 3.2.2. Lagrange multipliers and endoreversible system; 3.2.3. Analysis of imperfect units in terms of efficiency control; 3.2.4. Introducing Carnot temperature controls; 3.2.5. Maximum power in terms of both Carnot temperatures; 3.2.6. Entropy production and flux-dependent efficiencies; 3.3. Towards work limits in sequential systems; 3.4. Energy utilization and heat-pumps; 3.5. Thermal separation processes 
505 8 |a 3.6. Steady chemical, electrochemical and other systems3.7. Limits in living systems; 3.8. Final remarks; Chapter 4: Hamiltonian optimization of imperfect cascades; 4.1. Basic properties of irreversible cascade operations with a work flux; 4.2. Description of imperfect units in terms of Carnot temperature control; 4.3. Single-stage formulae in a model of cascade operation; 4.4. Work optimization in cascade by discrete maximum principle; 4.5. Example; 4.6. Continuous imperfect system with two finite reservoirs; 4.7. Final remarks; Chapter 5: Maximum power from solar energy 
506 |a Plný text je dostupný pouze z IP adres počítačů Univerzity Tomáše Bati ve Zlíně nebo vzdáleným přístupem pro zaměstnance a studenty 
520 8 |a Energy Optimization in Process Systems and Fuel Cells, Third Edition covers the optimization and integration of energy systems, with a particular focus on fuel cell technology. With rising energy prices, imminent energy shortages, and the increasing environmental impacts of energy production, energy optimization and systems integration is critically important. The book applies thermodynamics, kinetics and economics to study the effect of equipment size, environmental parameters, and economic factors on optimal power production and heat integration. Author Stanislaw Sieniutycz, highly recognized for his expertise and teaching, shows how costs can be substantially reduced, particularly in utilities common in the chemical industry. This third edition contains substantial revisions and modifications, with new material on catalytic reactors, sorption systems, sorbent or catalyst regenerators, dryers, and more. Presents a unified approach to the optimization and integration of energy systemsIncludes a large number of examples treating dynamical systemsProvides exposition showing the power of thermodynamicsContains a large number of maximum power analyses and their extensions. 
590 |a Knovel  |b Knovel (All titles) 
650 0 |a Chemical process control. 
650 0 |a Mathematical optimization. 
650 0 |a Fuel cells. 
655 7 |a elektronické knihy  |7 fd186907  |2 czenas 
655 9 |a electronic books  |2 eczenas 
700 1 |a Jeżowski, Jacek,  |e author. 
776 0 8 |i Print version:  |z 0081025572  |z 9780081025574  |w (OCoLC)1022080137 
856 4 0 |u https://proxy.k.utb.cz/login?url=https://app.knovel.com/hotlink/toc/id:kpEOPSFC01/energy-optimization-in?kpromoter=marc  |y Full text