A Practical Tool to Generate Complex Energy System Configurations Based on the SYNTHSEP Methodology
Abstract
Traditional fossil
fuelled power plants are commonly based on steam Rankine cycle or Brayton Joule
cycle. Using water or air as working fluid is obviously the most obvious choice
for the wide availability of these substances in nature. However, the scarcity
of natural energy sources and the strong need of reducing environmental impact
have necessarily drawn the research to new energy systems configurations
operating with other working fluids, which are able to recover lower
temperature sources, such as Sun or industrial wasted heat. The variety of new
working fluids (refrigerants or organic fluids) widens the choice to a variety
of configurations that can be tailored to the specific source characteristics
and boundary constraints. It is not always easy or even possible to conceive the
best configuration for given specifications with the mere experience of a
common designer. To design a new system configuration, the designer normally
uses some “non-codified rules” deriving from his knowledge of basic
thermodynamics and energy engineering. This paper aims instead at showing a
practical tool that is based on a new methodology, named SYNTHSEP, to generate
new energy system configurations. This methodology starts from the simple
thermodynamic cycles operated by a given fluid made up of the four fundamental
processes (compression, heating, expansion and cooling) and uses a rigorous set
of codified rules to build the final system configuration. The paper presents
the basics of the new methodology and how it has been implemented in a practical
tool that simply requires the information about the elementary cycles and their
shared processes as input data.
Keywords
References
- Reference 1 prof. Christos Frangopoulos,National Technical University of Athens,Department of Naval Architecture and Marine Engineering,9, Heroon Polytechneiou, GR 157 73 Zografou, GREECE, caf@naval.ntua.gr
- Reference 2 prof. Yoshiharu Amano,Waseda University, Department of Applied Mechanics and Aerospace Engineering, School of Fundamental Science and Engineering, Faculty of Science and Engineering,Tokyo, Japan, yoshiha@waseda.jp
- Reference 3 prof. Francesco Fantozzi University of Perugia Department of Enginnering, francesco.fantozzi@unipg.it
Details
Primary Language
English
Subjects
Engineering
Journal Section
Research Article
Publication Date
March 2, 2019
Submission Date
January 1, 2019
Acceptance Date
March 2, 2019
Published in Issue
Year 2019 Volume: 22 Number: 1
Cited By
A novel extension of the SYNTHSEP methodology for the optimal synthesis and design of supercritical CO2 cycles in waste heat recovery applications
Energy Conversion and Management
https://doi.org/10.1016/j.enconman.2022.116535Optimum Choice of Energy System Configuration and Storages for a Proper Match between Energy Conversion and Demands
Energies
https://doi.org/10.3390/en12203957Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
Energies
https://doi.org/10.3390/en12030495DOMES: A general optimization method for the integrated design of energy conversion, storage and networks in multi-energy systems
Applied Energy
https://doi.org/10.1016/j.apenergy.2024.124702Performance enhancement of Kalina cycles with structure and parameter optimization by an improved SYNTHSEP method considering heat exchange network
International Communications in Heat and Mass Transfer
https://doi.org/10.1016/j.icheatmasstransfer.2026.111659