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Modeling and Simulation of Energy Systems

Modeling and Simulation of Energy Systems

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Energy Systems Engineering is one of the most exciting and fastest growing fields in engineering. Modeling and simulation plays a key role in Energy Systems Engineering because it is the primary basis on which energy system design, control, optimization, and analysis are based. This book contains a specially curated collection of recent research articles on the modeling and simulation of energy systems written by top experts around the world from universities and research labs, such as Massachusetts Institute of Technology, Yale University, Norwegian University of Science and Technology, National Energy Technology Laboratory of the US Department of Energy, University of Technology Sydney, McMaster University, Queens University, Purdue University, the University of Connecticut, Technical University of Denmark, the University of Toronto, Technische Universität Berlin, Texas A&M, the University of Pennsylvania, and many more. The key research themes covered include energy systems design, control systems, flexible operations, operational strategies, and systems analysis. The addressed areas of application include electric power generation, refrigeration cycles, natural gas liquefaction, shale gas treatment, concentrated solar power, waste-to-energy systems, micro-gas turbines, carbon dioxide capture systems, energy storage, petroleum refinery unit operations, Brayton cycles, to name but a few.

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Keywords

  • absorption refrigeration
  • analysis by synthesis
  • auto thermal reformer
  • battery degradation
  • binary cycle
  • Biodiesel
  • building blocks
  • circulating fluidized bed boiler
  • cogeneration
  • combined cycle
  • compressibility factor
  • compressor modeling
  • concentrating solar power
  • concentrating solar thermal
  • cost optimization
  • CSP
  • CST
  • Cycling
  • demand response
  • desalination
  • Diagnostics
  • diagnostics, gas path analysis, analysis by synthesis
  • Dieng
  • DMR liquefaction processes
  • double-effect system
  • dynamic modeling
  • dynamic optimization
  • dynamic simulation
  • Efficiency
  • energy
  • Energy Economics
  • Energy Efficiency
  • energy management
  • Energy Storage
  • energy systems
  • exergy loss
  • FCMP
  • friction factor
  • fuel cost minimization problem
  • gas path analysis
  • Geothermal Energy
  • H2O-LiBr working pair
  • hybrid Life Cycle Assessment
  • hybrid solar
  • hybrid system
  • Indonesia
  • industrial process heat
  • isentropic exponent
  • kriging
  • life cycle analysis
  • linearization
  • load-following
  • methyl-oleate
  • micro gas turbine
  • MINLP
  • mixture ratio
  • modeling
  • modeling and simulation
  • modelling
  • multi-loop control
  • multi-objective optimisation
  • multi-scale systems engineering
  • multiphase equilibrium
  • naphtha recovery unit
  • natural gas transportation
  • nonlinear mathematical programming
  • nonsmooth modeling
  • offshore wind
  • oil and gas
  • operations
  • optimal battery operation
  • Optimal Control
  • optimization
  • organic Rankine cycle
  • Organic Rankine Cycle (ORC)
  • palladium membrane hydrogen separation
  • parabolic trough
  • piecewise-linear function generation
  • polymer electrolyte membrane fuel cell (PEMFC)
  • post-combustion CO2 capture
  • power plants
  • Process control
  • process design
  • process integration
  • process simulation
  • process synthesis and design
  • process systems engineering
  • PTC
  • R123
  • R245fa
  • recompression cycle
  • refuse derived fuel
  • RK-ASPEN
  • second law efficiency
  • shale gas condensate
  • shale gas condensate-to-heavier liquids
  • simulation
  • smith predictor
  • solar energy
  • solar PV
  • statistical model
  • supercritical carbon dioxide
  • supercritical CO2
  • supercritical pulverized coal (SCPC)
  • superstructure
  • supervisory control
  • sustainable process design
  • technoeconomic analysis
  • thermal storage
  • time-delay
  • time-varying operation
  • top-down models
  • waste to energy
  • WHENS
  • Wind power
  • work and heat integration

Links

DOI: 10.3390/books978-3-03921-519-5

Editions

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