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2018 | OriginalPaper | Chapter

A Parametric Performance Analysis of a Novel Geothermal Based Cogeneration System

Authors : Kiyan Parham, Mohsen Assadi

Published in: Sustainable Energy Technology and Policies

Publisher: Springer Singapore

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Abstract

This work is an attempt to propose and analyze a geothermal based multi-generation system. The proposed cogeneration system consists of different sections, namely: organic Rankine cycle, geothermal wells, absorption heat transformer, domestic water heater and proton exchange membrane electrolyzer. To assess the cycle’s performance, thermodynamic models were developed and a parametric study was carried out. For this purpose, energetic analysis are undertaken upon proposed system. Also, the effects of some important variables such geothermal water temperature, turbine inlet temperature and pressure on the several parameters such as energy efficiencies of the proposed system, water production, net electrical output power, hydrogen production, are investigated. It is shown that, by boosting geothermal water temperate, COP of the AHT increases and flow ratio decreases. Additionally, increasing absorber temperature leads to the reduction of energy utilization factor.

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Literature
1.
go back to reference Lam HL et al (2016) Green applied energy for sustainable development. Appl Energy 161:601–604CrossRef Lam HL et al (2016) Green applied energy for sustainable development. Appl Energy 161:601–604CrossRef
2.
go back to reference Zare V (2016) A comparative thermodynamic analysis of two tri-generation systems utilizing low-grade geothermal energy. Energy Convers Manag 118:264–274CrossRef Zare V (2016) A comparative thermodynamic analysis of two tri-generation systems utilizing low-grade geothermal energy. Energy Convers Manag 118:264–274CrossRef
3.
go back to reference Jradi M, Riffat S (2014) Tri-generation systems: energy policies, prime movers, cooling technologies, configurations and operation strategies. Renew Sustain Energy Rev 32:396–415CrossRef Jradi M, Riffat S (2014) Tri-generation systems: energy policies, prime movers, cooling technologies, configurations and operation strategies. Renew Sustain Energy Rev 32:396–415CrossRef
4.
go back to reference Bicer Y, Dincer I (2016) Analysis and performance evaluation of a renewable energy based multigeneration system. Energy 94:623–632CrossRef Bicer Y, Dincer I (2016) Analysis and performance evaluation of a renewable energy based multigeneration system. Energy 94:623–632CrossRef
5.
go back to reference El-Emam RS, Dincer I (2013) Exergy and exergoeconomic analyses and optimization of geothermal organic Rankine cycle. Appl Therm Eng 59(1–2):435–444CrossRef El-Emam RS, Dincer I (2013) Exergy and exergoeconomic analyses and optimization of geothermal organic Rankine cycle. Appl Therm Eng 59(1–2):435–444CrossRef
6.
go back to reference Calise F, Ferruzzi G, Vanoli L (2012) Transient simulation of polygeneration systems based on PEM fuel cells and solar heating and cooling technologies. Energy 41(1):18–30CrossRef Calise F, Ferruzzi G, Vanoli L (2012) Transient simulation of polygeneration systems based on PEM fuel cells and solar heating and cooling technologies. Energy 41(1):18–30CrossRef
7.
go back to reference Calise F et al (2016) Exergetic and exergoeconomic analysis of a novel hybrid solar-geothermal polygeneration system producing energy and water. Energy Convers Manag 115:200–220CrossRef Calise F et al (2016) Exergetic and exergoeconomic analysis of a novel hybrid solar-geothermal polygeneration system producing energy and water. Energy Convers Manag 115:200–220CrossRef
8.
go back to reference Suleman F, Dincer I, Agelin-Chaab M (2014) Development of an integrated renewable energy system for multigeneration. Energy 78:196–204CrossRef Suleman F, Dincer I, Agelin-Chaab M (2014) Development of an integrated renewable energy system for multigeneration. Energy 78:196–204CrossRef
9.
go back to reference Ratlamwala TAH, Dincer I, Gadalla MA (2012) Performance analysis of a novel integrated geothermal-based system for multi-generation applications. Appl Therm Eng 40:71–79CrossRef Ratlamwala TAH, Dincer I, Gadalla MA (2012) Performance analysis of a novel integrated geothermal-based system for multi-generation applications. Appl Therm Eng 40:71–79CrossRef
10.
go back to reference Tempesti D, Manfrida G, Fiaschi D (2012) Thermodynamic analysis of two micro CHP systems operating with geothermal and solar energy. Appl Energy 97:609–617CrossRef Tempesti D, Manfrida G, Fiaschi D (2012) Thermodynamic analysis of two micro CHP systems operating with geothermal and solar energy. Appl Energy 97:609–617CrossRef
11.
go back to reference Tempesti D, Fiaschi D (2013) Thermo-economic assessment of a micro CHP system fuelled by geothermal and solar energy. Energy 58:45–51CrossRef Tempesti D, Fiaschi D (2013) Thermo-economic assessment of a micro CHP system fuelled by geothermal and solar energy. Energy 58:45–51CrossRef
12.
go back to reference Malik M, Dincer I, Rosen MA (2015) Development and analysis of a new renewable energy-based multi-generation system. Energy 79(C):90–99 Malik M, Dincer I, Rosen MA (2015) Development and analysis of a new renewable energy-based multi-generation system. Energy 79(C):90–99
13.
go back to reference Parham K, Alimoradiyan H, Assadi M (2017) Energy, exergy and environmental analysis of a novel combined system producing power, water and hydrogen. Energy 134:882–892CrossRef Parham K, Alimoradiyan H, Assadi M (2017) Energy, exergy and environmental analysis of a novel combined system producing power, water and hydrogen. Energy 134:882–892CrossRef
14.
go back to reference Khamooshi M, Parham K, Atikol U (2013) Overview of ionic liquids used as working fluids in absorption cycles. Adv Mech Eng 5:620592CrossRef Khamooshi M, Parham K, Atikol U (2013) Overview of ionic liquids used as working fluids in absorption cycles. Adv Mech Eng 5:620592CrossRef
15.
go back to reference Parham K et al (2013) Evaluation and optimization of single stage absorption chiller using (LiCl + H2O) as the working pair. Adv Mech Eng 5:683157CrossRef Parham K et al (2013) Evaluation and optimization of single stage absorption chiller using (LiCl + H2O) as the working pair. Adv Mech Eng 5:683157CrossRef
16.
go back to reference Parham K et al (2014) Absorption heat transformers—a comprehensive review. Renew Sustain Energy Rev 34:430–452CrossRef Parham K et al (2014) Absorption heat transformers—a comprehensive review. Renew Sustain Energy Rev 34:430–452CrossRef
17.
go back to reference Ghasemi H et al (2013) Modeling and optimization of a binary geothermal power plant. Energy 50(1):412–428CrossRef Ghasemi H et al (2013) Modeling and optimization of a binary geothermal power plant. Energy 50(1):412–428CrossRef
18.
go back to reference Khamooshi M et al (2014) Thermodynamic analysis and optimization of a high temperature triple absorption heat transformer. Sci World J 2014 Khamooshi M et al (2014) Thermodynamic analysis and optimization of a high temperature triple absorption heat transformer. Sci World J 2014
19.
go back to reference Khamooshi M et al (2016) Applications of innovative configurations of double absorption heat transformers in water purification technology. Desalin Water Treat 57(18):8204–8216CrossRef Khamooshi M et al (2016) Applications of innovative configurations of double absorption heat transformers in water purification technology. Desalin Water Treat 57(18):8204–8216CrossRef
20.
go back to reference Hamidi A et al (2015) A parametric performance analysis of single and multi-effect distillation systems integrated with open-cycle absorption heat transformers. Desalination 371:37–45CrossRef Hamidi A et al (2015) A parametric performance analysis of single and multi-effect distillation systems integrated with open-cycle absorption heat transformers. Desalination 371:37–45CrossRef
21.
go back to reference Parham K et al (2016) Comparative assessment of different categories of absorption heat transformers in water desalination process. Desalination 396:17–29CrossRef Parham K et al (2016) Comparative assessment of different categories of absorption heat transformers in water desalination process. Desalination 396:17–29CrossRef
22.
go back to reference Akrami E et al (2017) Energetic and exergoeconomic assessment of a multi-generation energy system based on indirect use of geothermal energy. Energy 124:625–639CrossRef Akrami E et al (2017) Energetic and exergoeconomic assessment of a multi-generation energy system based on indirect use of geothermal energy. Energy 124:625–639CrossRef
23.
go back to reference Parham K, Yari M, Atikol U (2013) Alternative absorption heat transformer configurations integrated with water desalination system. Desalination 328:74–82CrossRef Parham K, Yari M, Atikol U (2013) Alternative absorption heat transformer configurations integrated with water desalination system. Desalination 328:74–82CrossRef
24.
go back to reference Gomri R (2009) Second law comparison of single effect and double effect vapour absorption refrigeration systems. Energy Convers Manag 50(5):1279–1287CrossRef Gomri R (2009) Second law comparison of single effect and double effect vapour absorption refrigeration systems. Energy Convers Manag 50(5):1279–1287CrossRef
25.
go back to reference Klein SA, Alvarado FL (2017) Engineering equation solver (EES), F Chart Software, WI Klein SA, Alvarado FL (2017) Engineering equation solver (EES), F Chart Software, WI
26.
go back to reference Zare V, Mahmoudi SMS, Yari M (2013) An exergoeconomic investigation of waste heat recovery from the gas turbine-modular helium reactor (GT-MHR) employing an ammonia–water power/cooling cycle. Energy 61(Supplement C):397–409 Zare V, Mahmoudi SMS, Yari M (2013) An exergoeconomic investigation of waste heat recovery from the gas turbine-modular helium reactor (GT-MHR) employing an ammonia–water power/cooling cycle. Energy 61(Supplement C):397–409
27.
go back to reference Puig-Arnavat M, Bruno JC, Coronas A (2014) Modeling of trigeneration configurations based on biomass gasification and comparison of performance. Appl Energy 114:845–856CrossRef Puig-Arnavat M, Bruno JC, Coronas A (2014) Modeling of trigeneration configurations based on biomass gasification and comparison of performance. Appl Energy 114:845–856CrossRef
28.
go back to reference Rivera W et al (2003) Single stage and double absorption heat transformers used to recover energy in a distillation column of butane and pentane. Int J Energy Res 27(14):1279–1292CrossRef Rivera W et al (2003) Single stage and double absorption heat transformers used to recover energy in a distillation column of butane and pentane. Int J Energy Res 27(14):1279–1292CrossRef
29.
go back to reference Horuz I, Kurt B (2010) Absorption heat transformers and an industrial application. Renew Energy 35(10):2175–2181CrossRef Horuz I, Kurt B (2010) Absorption heat transformers and an industrial application. Renew Energy 35(10):2175–2181CrossRef
30.
go back to reference Khamooshi M et al (2014) Simulation and optimization of novel configurations of triple absorption heat transformers integrated to a water desalination system. Desalination 348:39–48CrossRef Khamooshi M et al (2014) Simulation and optimization of novel configurations of triple absorption heat transformers integrated to a water desalination system. Desalination 348:39–48CrossRef
31.
go back to reference Zhang X, Hu D (2012) Performance analysis of the single-stage absorption heat transformer using a new working pair composed of ionic liquid and water. Appl Therm Eng 37:129–135CrossRef Zhang X, Hu D (2012) Performance analysis of the single-stage absorption heat transformer using a new working pair composed of ionic liquid and water. Appl Therm Eng 37:129–135CrossRef
32.
go back to reference Romero RJ, Rodríguez-Martínez A (2008) Optimal water purification using low grade waste heat in an absorption heat transformer. Desalination 220(1–3):506–513CrossRef Romero RJ, Rodríguez-Martínez A (2008) Optimal water purification using low grade waste heat in an absorption heat transformer. Desalination 220(1–3):506–513CrossRef
33.
go back to reference Gomri R (2010) Thermal seawater desalination: possibilities of using single effect and double effect absorption heat transformer systems. Desalination 253(1–3):112–118CrossRef Gomri R (2010) Thermal seawater desalination: possibilities of using single effect and double effect absorption heat transformer systems. Desalination 253(1–3):112–118CrossRef
Metadata
Title
A Parametric Performance Analysis of a Novel Geothermal Based Cogeneration System
Authors
Kiyan Parham
Mohsen Assadi
Copyright Year
2018
Publisher
Springer Singapore
DOI
https://doi.org/10.1007/978-981-10-8393-8_7