Please use this identifier to cite or link to this item: http://hdl.handle.net/11452/28873
Title: Thermodynamic investigation of low-temperature industrial waste-heat recovery in combined heat and power generation systems
Authors: Uludağ Üniversitesi/Mühendislik Fakültesi/Makine Mühendisliği Bölümü.
0000-0001-8022-1185
Etemoğlu, Akın Burak
ABE-9423-2020
8221881000
Keywords: Thermodynamics
Mechanics
Waste-heat recovery
Energy analysis
Exergy analysis
Organic rankine cycles
Low-grade heat
Working fluids
Exergy analysis
Textile-industry
Dry fluids
Conversion
Optimization
Design
Turkey
Benchmarking
Computer simulation
Energy management
Fluids
Power generation
Waste heat
Combined heat and power generation
Combined heat and power system
Economical profit
Energy analysis
Energy and exergy efficiency
Exergy analysis
Exergy destructions
Isopentane
Low temperatures
Organic fluid
Performance analysis
Performance evaluation
Performance indicators
Pressure and temperature
Process heater
Thermodynamic investigation
Turbine inlet pressure
Utilization factor
Waste-heat recovery
Water mass flow
Work output
Working fluid
Exergy
Issue Date: Mar-2013
Publisher: Pergamon-Elsevier Science
Citation: Etemoğlu, A. B. (2013). "Thermodynamic investigation of low-temperature industrial waste-heat recovery in combined heat and power generation systems". International Communications in Heat and Mass Transfer, 42, 82-88.
Abstract: Performance analysis of an industrial waste heat-based combined heat and power systems (WHCHP) completely uses energy and exergy efficiency parameters. The effect of waste water mass flow rate, pressure and temperature, organic fluid types on both energy and exergy efficiencies and economical profit of the system is investigated by a computer simulation. The first step of the analysis is the selection of the suitable working fluid. After that, in order to get the performance indicators, different scenarios are run by computer simulation for WHCHP. The most suitable working fluid is found out as isopentane. The work output and economical profit increase while exergy destruction decreases with increasing turbine inlet pressure. On the other hand, with the increase in the energy of the process heater, the work output decreases but exergy destruction and utilization factor increase. Finally, these results clearly show that performance evaluation of WHCHP based on energy analysis is not adequate and hence more meaningful evaluation should include exergy analysis.
URI: https://doi.org/10.1016/j.icheatmasstransfer.2012.12.011
http://hdl.handle.net/11452/28873
ISSN: 0735-1933
Appears in Collections:Scopus
Web of Science

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