Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes

Optimal design of energy systems ultimately aims to develop a methodology to realize an energy system that utilizes available resources to generate maximum product with minimum components. For this aim, several researches attempt to decide the optimal system configuration as a problem of decomposing...

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Main Authors: Kosuke Seki, Keisuke Takeshita, Yoshiharu Amano
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/3/495
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spelling doaj-9dcc14707785480d90fed972bcade5292020-11-25T01:28:21ZengMDPI AGEnergies1996-10732019-02-0112349510.3390/en12030495en12030495Development of Complex Energy Systems with Absorption Technology by Combining Elementary ProcessesKosuke Seki0Keisuke Takeshita1Yoshiharu Amano2Department of Applied Mechanics, Waseda University, Tokyo 162-0044, JapanWaseda Research Institute for Science and Engineering, Tokyo 162-0044, JapanDepartment of Applied Mechanics, Waseda University, Tokyo 162-0044, JapanOptimal design of energy systems ultimately aims to develop a methodology to realize an energy system that utilizes available resources to generate maximum product with minimum components. For this aim, several researches attempt to decide the optimal system configuration as a problem of decomposing each energy system into primitive process elements. Then, they search the optimal combination sequentially from the minimum number of constituent elements. This paper proposes a bottom-up procedure to define and explore configurations by combining elementary processes for energy systems with absorption technology, which is widely applied as a heat driven technology and important for improving system’s energy efficiency and utilizing alternative energy resources. Two examples of application are presented to show the capability of the proposed methodology to find basic configurations that can generate the maximum product. The demonstration shows that the existing absorption systems, which would be calculated based on the experience of designers, could be derived by performing optimization with the synthesis methodology automatically under the simplified/idealized operating conditions. The proposed bottom-up methodology is significant for realizing an optimized absorption system. With this methodology, engineers will be able to predict all possible configurations and identify a simple yet feasible optimal system configuration.https://www.mdpi.com/1996-1073/12/3/495synthesis/design optimizationcycle configurationabsorption technologyabsorption refrigerator
collection DOAJ
language English
format Article
sources DOAJ
author Kosuke Seki
Keisuke Takeshita
Yoshiharu Amano
spellingShingle Kosuke Seki
Keisuke Takeshita
Yoshiharu Amano
Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
Energies
synthesis/design optimization
cycle configuration
absorption technology
absorption refrigerator
author_facet Kosuke Seki
Keisuke Takeshita
Yoshiharu Amano
author_sort Kosuke Seki
title Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
title_short Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
title_full Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
title_fullStr Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
title_full_unstemmed Development of Complex Energy Systems with Absorption Technology by Combining Elementary Processes
title_sort development of complex energy systems with absorption technology by combining elementary processes
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-02-01
description Optimal design of energy systems ultimately aims to develop a methodology to realize an energy system that utilizes available resources to generate maximum product with minimum components. For this aim, several researches attempt to decide the optimal system configuration as a problem of decomposing each energy system into primitive process elements. Then, they search the optimal combination sequentially from the minimum number of constituent elements. This paper proposes a bottom-up procedure to define and explore configurations by combining elementary processes for energy systems with absorption technology, which is widely applied as a heat driven technology and important for improving system’s energy efficiency and utilizing alternative energy resources. Two examples of application are presented to show the capability of the proposed methodology to find basic configurations that can generate the maximum product. The demonstration shows that the existing absorption systems, which would be calculated based on the experience of designers, could be derived by performing optimization with the synthesis methodology automatically under the simplified/idealized operating conditions. The proposed bottom-up methodology is significant for realizing an optimized absorption system. With this methodology, engineers will be able to predict all possible configurations and identify a simple yet feasible optimal system configuration.
topic synthesis/design optimization
cycle configuration
absorption technology
absorption refrigerator
url https://www.mdpi.com/1996-1073/12/3/495
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AT keisuketakeshita developmentofcomplexenergysystemswithabsorptiontechnologybycombiningelementaryprocesses
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