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1

Aygun, Hakan, Mehmet E. Cilgin, and Onder Turan. "Exergo-economic cost accounting for PW4000 turbofan engine and its components." MATEC Web of Conferences 314 (2020): 02003. http://dx.doi.org/10.1051/matecconf/202031402003.

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You The several series of PW4000 high bypass turbofan engine have used so far in many aircrafts. These commercial engines have played a crucial role on passenger and freight transportations. Namely, these engines are closely related to the environment impacts and security of energy supply. In this article, exergoeconomic analysis which is useful tool to investigate existing potential for improvement of the a system efficiency were carried out. The assesment, design and optimization of energy consuming systems are performed by means of these analyses. Therefore, thermo-economic costs were assig
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2

Vallis, Athanasios G., Theodoros C. Zannis, Evangelos V. Hristoforou, et al. "Design of Container Ship Main Engine Waste Heat Recovery Supercritical CO2 Cycles, Optimum Cycle Selection through Thermo-Economic Optimization with Genetic Algorithm and Its Exergo-Economic and Exergo-Environmental Analysis." Energies 15, no. 15 (2022): 5398. http://dx.doi.org/10.3390/en15155398.

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In the present study, energy and exergy analyses of a simple supercritical, a split supercritical and a cascade supercritical CO2 cycle are conducted. The bottoming cycles are coupled with the main two-stroke diesel engine of a 6800 TEU container ship. An economic analysis is carried out to calculate the total capital cost of these installations. The functional parameters of these cycles are optimized to minimize the electricity production cost (EPC) using a genetic algorithm. Exergo-economic and exergo-environmental analyses are conducted to calculate the cost of the exergetic streams and var
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3

Alibaba, Massomeh, Razieh Pourdarbani, Mohammad Hasan Khoshgoftar Manesh, Israel Herrera-Miranda, Iván Gallardo-Bernal, and José Luis Hernández-Hernández. "Conventional and Advanced Exergy-Based Analysis of Hybrid Geothermal–Solar Power Plant Based on ORC Cycle." Applied Sciences 10, no. 15 (2020): 5206. http://dx.doi.org/10.3390/app10155206.

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Today, as fossil fuels are depleted, renewable energy must be used to meet the needs of human beings. One of the renewable energy sources is undoubtedly the solar–geothermal power plant. In this paper, the conventional and advanced, exergo-environmental and exergo-economic analysis of a geothermal–solar hybrid power plant (SGHPP) based on an organic Rankin cycle (ORC) cycle is investigated. In this regard, at first, a conventional analysis was conducted on a standalone geothermal cycle (first mode), as well as a hybrid solar–geothermal cycle (second mode). The results of exergy destruction for
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4

Khan, Muhammad Alam Zaib, Abdul Wahab, Kamran Khan, Naveed Ahmad, and Muhammad Ali Kamran. "Energy, exergy, exergo-economic, enviro-economic, exergo-environmental, exergo-enviro-economic, sustainability and sensitivity (6E,2S) analysis on single slope solar still—An experimental study." PLOS ONE 18, no. 8 (2023): e0290250. http://dx.doi.org/10.1371/journal.pone.0290250.

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Tackling water scarcity is a significant challenge due to the rapid increase in the global population, which is raising concern for the supply of fresh water. high demand of fresh water leading to a failure in meeting the demand for fresh water. This study aims to investigate the feasibility of an efficient single-slope solar still with an aluminum-finned plate absorber and internal and external reflectors to address water scarcity. Energy, exergy, economic and environmental analyses (6E) were undertaken to deeply analyze its impact on the environment. The maximum energy and exergy efficiency
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5

WU, S. Y., Y. R. LI, and D. L. ZENG. "EXERGO-ECONOMIC PERFORMANCE EVALUATION ON LOW TEMPERATURE HEAT EXCHANGER." International Journal of Modern Physics B 19, no. 01n03 (2005): 517–19. http://dx.doi.org/10.1142/s0217979205028943.

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Based on the exergo-economic analysis of low temperature heat exchanger heat transfer and flow process, a new exergo-economic criterion which is defined as the net profit per unit heat flux for cryogenic exergy recovery low temperature heat exchangers is put forward. The application of criterion is illustrated by the evaluation of down-flow, counter-flow and cross-flow low temperature heat exchangers performance.
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6

Zuffi, Claudio, Pietro Ungar, Daniele Fiaschi, Giampaolo Manfrida, and Fausto Batini. "Qualtra Geothermal Power Plant: Life Cycle, Exergo-Economic, and Exergo-Environmental Preliminary Assessment." Sustainability 16, no. 11 (2024): 4622. http://dx.doi.org/10.3390/su16114622.

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Qualtra, an innovative 10 MW geothermal power plant proposal, employs a closed-loop design to mitigate emissions, ensuring no direct release into the atmosphere. A thorough assessment utilizing energy and exergy analysis, life cycle assessment (LCA), exergo-economic analysis, and exergo environmental analysis (EevA) was conducted. The LCA results, utilizing the ReCiPe 2016 midpoint methodology, encompass all the spectrum of environmental indicators provided. The technology implemented makes it possible to avoid direct atmospheric emissions from the Qualtra plant, so the environmental impact is
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7

Giusti, E., L. Ciappi, P. Ungar, et al. "Exergo-economic and exergo-environmental analysis of a binary geothermal power plant with solar boosting." Journal of Physics: Conference Series 2385, no. 1 (2022): 012124. http://dx.doi.org/10.1088/1742-6596/2385/1/012124.

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Abstract The exploitation of renewable energies is a solution to the energy, economic and environmental issues related to the massive use of fossil resources. Thus, investing in renewable technologies is essential to achieve the carbon-neutral scenario within 2050. In this framework, geothermal energy may have a key role. In particular, power plants with a closed binary cycle are suitable for harnessing geothermal resources with low and medium enthalpy levels. They are prone to be integrated with other renewable devices to increase the global power output. Geothermal fluid can be drawn constan
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8

Masud, Mahadi Hasan, Md Hasibul Hasan Himel, Mim Mashrur Ahmed, Sami Ahbab Chowdhury, and Peter Dabnichki. "Energy, exergy, exergo-economic and exergo-environmental analysis of waste heat-based convective dryer." Energy 312 (December 2024): 133632. http://dx.doi.org/10.1016/j.energy.2024.133632.

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9

Kallio, Sonja, and Monica Siroux. "Exergy and Exergy-Economic Approach to Evaluate Hybrid Renewable Energy Systems in Buildings." Energies 16, no. 3 (2023): 1029. http://dx.doi.org/10.3390/en16031029.

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Hybrid renewable energy systems (HRES) combine two or more renewable energy systems and are an interesting solution for decentralized renewable energy generation. The exergy and exergo-economic approach have proven to be useful methods to analyze hybrid renewable energy systems. The aim of this paper is to present a review of exergy and exergy-economic approaches to evaluate hybrid renewable energy systems in buildings. In the first part of the paper, the methodology of the exergy and exergo-economic analysis is introduced as well as the main performance indicators. The influence of the refere
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10

Valencia Ochoa, Guillermo, Jhan Piero Rojas, and Jorge Duarte Forero. "Advance Exergo-Economic Analysis of a Waste Heat Recovery System Using ORC for a Bottoming Natural Gas Engine." Energies 13, no. 1 (2020): 267. http://dx.doi.org/10.3390/en13010267.

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This manuscript presents an advanced exergo-economic analysis of a waste heat recovery system based on the organic Rankine cycle from the exhaust gases of an internal combustion engine. Different operating conditions were established in order to find the exergy destroyed values in the components and the desegregation of them, as well as the rate of fuel exergy, product exergy, and loss exergy. The component with the highest exergy destroyed values was heat exchanger 1, which is a shell and tube equipment with the highest mean temperature difference in the thermal cycle. However, the values of
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11

Talluri, Lorenzo, Giampaolo Manfrida, and Lorenzo Ciappi. "Exergo-economic assessment of OTEC power generation." E3S Web of Conferences 238 (2021): 01015. http://dx.doi.org/10.1051/e3sconf/202123801015.

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Ocean Thermal Energy Conversion is an important renewable energy technology aimed at harvesting the large energy resources connected to the temperature gradient between shallow and deep ocean waters, mainly in the tropical region. After the first small-size demonstrators, the current technology is focused on the use of Organic Rankine Cycles, which are suitable for operating with very low temperatures of the resource. With respect to other applications of binary cycles, a large fraction of the output power is consumed for harvesting the resource – that is, in the case of OTEC, for pumping the
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12

Fiaschi, Daniele, Giampaolo Manfrida, Karolina Petela, Federico Rossi, Adalgisa Sinicropi, and Lorenzo Talluri. "Exergo-Economic and Environmental Analysis of a Solar Integrated Thermo-Electric Storage." Energies 13, no. 13 (2020): 3484. http://dx.doi.org/10.3390/en13133484.

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Renewable energies are often subject to stochastic resources and daily cycles. Energy storage systems are consequently applied to provide a solution for the mismatch between power production possibility and its utilization period. In this study, a solar integrated thermo-electric energy storage (S-TEES) is analyzed both from an economic and environmental point of view. The analyzed power plant with energy storage includes three main cycles, a supercritical CO2 power cycle, a heat pump and a refrigeration cycle, indirectly connected by sensible heat storages. The hot reservoir is pressurized wa
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13

Le Goff, P., and J. M. Hornut. "Exergy Analysis and Exergo-Economic Optimization of Industrial Processes." Revue de l'Institut Français du Pétrole 53, no. 1 (1998): 99–102. http://dx.doi.org/10.2516/ogst:1998011.

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14

Lamas, Wendell de Queiróz. "Exergo-economic analysis of a typical wind power system." Energy 140 (December 2017): 1173–81. http://dx.doi.org/10.1016/j.energy.2017.09.020.

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15

Koşar, Ali. "Exergo-economic analysis of micro pin fin heat sinks." International Journal of Energy Research 35, no. 11 (2010): 1004–13. http://dx.doi.org/10.1002/er.1751.

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16

Saxena, Prakash, and K. S. Reddy. "Exergo-economic analysis of parabolic trough integrated cogeneration power plant." International Journal of Exergy 26, no. 1/2 (2018): 41. http://dx.doi.org/10.1504/ijex.2018.092502.

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17

Saxena, Prakash, and K. S. Reddy. "Exergo-economic analysis of parabolic trough integrated cogeneration power plant." International Journal of Exergy 26, no. 1/2 (2018): 41. http://dx.doi.org/10.1504/ijex.2018.10014023.

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18

Basta, Giuseppe, Nicoletta Meloni, Francesco Poli, Lorenzo Talluri, and Giampaolo Manfrida. "Energy, Exergy and Exergo-Economic Analysis of an OTEC Power Plant Utilizing Kalina Cycle." Global Journal of Energy Technology Research Updates 8 (December 28, 2021): 1–18. http://dx.doi.org/10.15377/2409-5818.2021.08.1.

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This study aims to analyse an Ocean Thermal Energy Conversion (OTEC) system through the use of a Kalina Cycle (KC), having a water-ammonia mixture as a working fluid. KC represents a technology capable of exploiting the thermal gap of ocean water. This system was then compared with OTEC systems, which exploit ammonia, R134A and butane-pentane mixture as working fluid. The comparison was carried on through energy analysis, exergetic analysis, and exergo-economic analysis using the EES (Engineering Equation Solver) software. For each case study, cost rates and auxiliary equations were evaluated
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19

Mevada, Dinesh, Hitesh Panchal, and Kishor Kumar Sadasivuni. "Investigation on evacuated tubes coupled solar still with condenser and fins: Experimental, exergo-economic and exergo-environment analysis." Case Studies in Thermal Engineering 27 (October 2021): 101217. http://dx.doi.org/10.1016/j.csite.2021.101217.

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20

Shoeibi, Shahin, Nader Rahbar, Ahad Abedini Esfahlani, and Hadi Kargarsharifabad. "A comprehensive review of Enviro-Exergo-economic analysis of solar stills." Renewable and Sustainable Energy Reviews 149 (October 2021): 111404. http://dx.doi.org/10.1016/j.rser.2021.111404.

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21

Mondal, P., and S. Ghosh. "Externally fired biomass gasification-based combined cycle plant: exergo-economic analysis." International Journal of Exergy 20, no. 4 (2016): 496. http://dx.doi.org/10.1504/ijex.2016.078097.

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22

Kazmi, Bilal, Syed Ali Ammar Taqvi, Farooq Ahmad, Hamad AlMohamadi, and Salman Raza Naqvi. "Exergo-environment and exergo-economic aspects of the blend of amines for carbon capture from natural gas." Journal of King Saud University – Science 37 (July 21, 2025): 912024. https://doi.org/10.25259/jksus_91_2024.

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In response to escalating concerns over climate change and rising CO2 emissions, this research investigates the efficiency, environmental impact, and economic feasibility of amine-based carbon capture processes from natural gas. The study focuses on optimizing solvent blends to enhance CO2 capture efficiency while minimizing energy consumption and operational costs. Various solvent combinations of primary, secondary, and tertiary amines use a ‘comprehensive process systems engineering’ approach. The exergy analysis of amine-based carbon capture from natural gas showed considerable solvent perf
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23

Alibaba, Massomeh, Razieh Pourdarbani, Mohammad Hasan Khoshgoftar Manesh, Guillermo Valencia Ochoa, and Jorge Duarte Forero. "Thermodynamic, exergo-economic and exergo-environmental analysis of hybrid geothermal-solar power plant based on ORC cycle using emergy concept." Heliyon 6, no. 4 (2020): e03758. http://dx.doi.org/10.1016/j.heliyon.2020.e03758.

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24

Siddiqui, F. R., M. A. I. El-Shaarawi, and S. A. M. Said. "Exergo-economic analysis of a solar driven hybrid storage absorption refrigeration cycle." Energy Conversion and Management 80 (April 2014): 165–72. http://dx.doi.org/10.1016/j.enconman.2014.01.029.

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25

Talluri, Lorenzo, Giampaolo Manfrida, and Daniele Fiaschi. "Thermoelectric energy storage with geothermal heat integration – Exergy and exergo-economic analysis." Energy Conversion and Management 199 (November 2019): 111883. http://dx.doi.org/10.1016/j.enconman.2019.111883.

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26

Haroon, Muhammad, Nadeem Ahmed Sheikh, Abubakr Ayub, et al. "Exergetic, Economic and Exergo-Environmental Analysis of Bottoming Power Cycles Operating with CO2-Based Binary Mixture." Energies 13, no. 19 (2020): 5080. http://dx.doi.org/10.3390/en13195080.

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This study focused on investigating the bottoming power cycles operating with CO2-based binary mixture, taking into account exergetic, economic and exergo-environmental impact indices. The main intent is to assess the benefits of employing a CO2-based mixture working fluid in closed Brayton bottoming power cycles in comparison with pure CO2 working fluid. Firstly, selection criteria for the choice of suitable additive compound for CO2-based binary mixture is delineated and the composition of the binary mixture is decided based on required cycle minimum temperature. The decided CO2-C7H8 binary
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27

Fiaschi, Daniele, Giampaolo Manfrida, Karolina Petela, and Lorenzo Talluri. "Thermo-Electric Energy Storage with Solar Heat Integration: Exergy and Exergo-Economic Analysis." Energies 12, no. 4 (2019): 648. http://dx.doi.org/10.3390/en12040648.

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A Thermo-Electric Energy Storage (TEES) system is proposed to provide peak-load support (1–2 daily hours of operation) for distributed users using small/medium-size photovoltaic systems (4 to 50 kWe). The purpose is to complement the PV with a reliable storage system that cancompensate the produc tivity/load mismatch, aiming at off-grid operation. The proposed TEES applies sensible heat storage, using insulated warm-water reservoirs at 120/160 °C, and cold storage at −10/−20 °C (water and ethylene glycol). The power cycle is a trans-critical CO2 unit including recuperation; in the storage mode
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28

Sahin, Ahmet Z., Abdullah Al-Sharafi, Bekir S. Yilbas, and Abdul Khaliq. "Overall performance assessment of a combined cycle power plant: An exergo-economic analysis." Energy Conversion and Management 116 (May 2016): 91–100. http://dx.doi.org/10.1016/j.enconman.2016.02.079.

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29

Du, Yawei, Xuefei Liang, Yan Liu, Lixin Xie, and Shaofeng Zhang. "Exergo-economic analysis and multi-objective optimization of seawater reverse osmosis desalination networks." Desalination 466 (September 2019): 1–15. http://dx.doi.org/10.1016/j.desal.2019.04.030.

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30

Aieneh, Koorosh, Sadegh Mehranfar, Mohammad Yazdi Sotoude, Shayan Sadeghi, and Amin Mahmoudzadeh Andwari. "Solar-Powered Combined Cooling, Heating, and Power Energy System with Phase-Change Material and Water Electrolysis: Thermo-Economic Assessment and Optimization." Energies 17, no. 13 (2024): 3309. http://dx.doi.org/10.3390/en17133309.

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A solar-powered combined cooling, heating, and power (CCHP) plant integrated with a water electrolysis unit is investigated in terms of energy, exergy, and exergo-economic (3E) assessments. A comprehensive parametric study and optimization is conducted following the thermodynamic and exergo-economic assessment of the proposed system to evaluate the key performance parameters of the system for efficiency and economic factors. This system employs a heliostat field and a receiver tower by taking advantage of thermal energy from the sun and produces a continuous energy supply with an integrated ph
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31

Pastushenko, A.S. "Fundamentals of line analysis and optimization to obtain seeds of melons." Engineering of nature management, no. 1(19) (March 22, 2021): 48–56. https://doi.org/10.5281/zenodo.6877381.

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The article presents results of trends analysis in models and types of equipment used for different selection production volumes of vegetable and melon crops seeds in the southern region of Ukraine. Existing equipment in Ukraine for seed selection of vegetable and melon crops is energy imperfect. Significant volumes of seeds are damaged or lost in the selection process. There are no adapted to the systems of complex mechanization methods for their analysis, synthesis and optimization in obtaining vegetable and melon crops seeds. Among all methods of analysis and technical systems optimization,
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32

Chen, Yuzhu, Dandan Zhao, Jinzhao Xu, Jun Wang, and Peter D. Lund. "Performance analysis and exergo-economic optimization of a solar-driven adjustable tri-generation system." Energy Conversion and Management 233 (April 2021): 113873. http://dx.doi.org/10.1016/j.enconman.2021.113873.

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33

Aygun, Hakan, and Onder Turan. "Exergo-economic analysis of off-design a target drone engine for reconnaissance mission flight." Energy 224 (June 2021): 120227. http://dx.doi.org/10.1016/j.energy.2021.120227.

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34

Seyfouri, Zeynab, Mehran Ameri, and Mozaffar Ali Mehrabian. "Exergo-economic analysis of a low-temperature geothermal-fed combined cooling and power system." Applied Thermal Engineering 145 (December 2018): 528–40. http://dx.doi.org/10.1016/j.applthermaleng.2018.09.072.

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35

Jamil, Muhammad Ahmad, Bilal Ahmed Qureshi, and Syed M. Zubair. "Exergo-economic analysis of a seawater reverse osmosis desalination plant with various retrofit options." Desalination 401 (January 2017): 88–98. http://dx.doi.org/10.1016/j.desal.2016.09.032.

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36

Lawal, Dahiru U., Syed M. Zubair, and Mohammad A. Antar. "Exergo-economic analysis of humidification-dehumidification (HDH) desalination systems driven by heat pump (HP)." Desalination 443 (October 2018): 11–25. http://dx.doi.org/10.1016/j.desal.2018.05.011.

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37

Singh, Rohit Kumar, Praveen Kumar Srivastava, Gopal Nath Tiwari, and Akhoury Sudhir Kumar Sinha. "Energy matrices, exergo-economic and enviro-economic analysis of an n-sPVT-FPC collector integrated with biogas plant." Solar Energy 273 (May 2024): 112537. http://dx.doi.org/10.1016/j.solener.2024.112537.

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38

Ochoa, Guillermo Valencia, Carlos Acevedo Peñaloza, and Jhan Piero Rojas. "Thermoeconomic Modelling and Parametric Study of a Simple ORC for the Recovery of Waste Heat in a 2 MW Gas Engine under Different Working Fluids." Applied Sciences 9, no. 21 (2019): 4526. http://dx.doi.org/10.3390/app9214526.

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This paper presents a thermo-economic analysis of a simple organic Rankine cycle (SORC) as a waste heat recovery (WHR) systems of a 2 MW stationary gas engine evaluating different working fluids. Initially, a systematic methodology was implemented to select three organic fluids according to environmental and safety criteria, as well as critical system operational conditions. Then, thermodynamic, exergy, and exergo-economic models of the system were developed under certain defined considerations, and a set of parametric studies are presented considering key variables of the system such as pump
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39

Baniasad Askari, Ighball, and Amin Shahsavar. "The exergo-economic analysis of two novel combined ejector heat pump/humidification-dehumidification desalination systems." Sustainable Energy Technologies and Assessments 53 (October 2022): 102561. http://dx.doi.org/10.1016/j.seta.2022.102561.

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40

Aydin, Hakan, Onder Turan, Adnan Midilli, and T. Hikmet Karakoc. "Exergetic and exergo-economic analysis of a turboprop engine: a case study for CT7-9C." International Journal of Exergy 11, no. 1 (2012): 69. http://dx.doi.org/10.1504/ijex.2012.049089.

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41

Ashouri, Milad, Mohammad H. Ahmadi, S. Mohsen Pourkiaei, et al. "Exergy and exergo-economic analysis and optimization of a solar double pressure organic Rankine cycle." Thermal Science and Engineering Progress 6 (June 2018): 72–86. http://dx.doi.org/10.1016/j.tsep.2017.10.002.

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42

Yue, Ting, and Noam Lior. "Exergo economic analysis of solar-assisted hybrid power generation systems integrated with thermochemical fuel conversion." Applied Energy 191 (April 2017): 204–22. http://dx.doi.org/10.1016/j.apenergy.2017.01.055.

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43

Wu, Shuang-Ying, Jing-Rui Jiu, Lan Xiao, You-Rong Li, Chao Liu, and Jin-Liang Xu. "Exergo-economic analysis of finned tube for waste heat recovery including phase change heat transfer." Journal of Mechanical Science and Technology 27, no. 11 (2013): 3513–23. http://dx.doi.org/10.1007/s12206-013-0877-1.

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44

Malik, F. Elmzughi, I. Dekam Elhadi, G. Almuzwghi Ali, and Seddig Khaled. "Exergoeconomic analysis and parametric investigation of a gas turbine power plant." i-manager's Journal on Power Systems Engineering 10, no. 1 (2022): 1. http://dx.doi.org/10.26634/jps.10.1.18827.

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Thermoeconomic models, combining the concept of cost in economics and the concept of exergy in thermodynamics, provide the ability to optimize complex power generation systems to achieve the best balance between thermodynamic efficiency and economic cost. In this paper, a parametric analysis was carried out based on the method of calculating the unit exergy cost, as well as exergo-economic studies and cost sensitivity studies on the exergy of the cycle of a gas turbine power plant. The mathematical models of mass, energy, effort, and economy were created and presented. Thermodynamic properties
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45

Gholamian, Ehsan, Pedram Hanafizadeh, and Pouria Ahmadi. "Exergo-economic analysis of a hybrid anode and cathode recycling SOFC/Stirling engine for aviation applications." International Journal of Sustainable Aviation 4, no. 1 (2018): 11. http://dx.doi.org/10.1504/ijsa.2018.092915.

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46

Gholamian, Ehsan, Pedram Hanafizadeh, and Pouria Ahmadi. "Exergo-economic analysis of a hybrid anode and cathode recycling SOFC/Stirling engine for aviation applications." International Journal of Sustainable Aviation 4, no. 1 (2018): 11. http://dx.doi.org/10.1504/ijsa.2018.10014058.

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47

Ghazizade-Ahsaee, Hossein, Mehran Ameri, and Ighball Baniasad Askari. "A comparative exergo-economic analysis of four configurations of carbon dioxide direct-expansion geothermal heat pump." Applied Thermal Engineering 163 (December 2019): 114347. http://dx.doi.org/10.1016/j.applthermaleng.2019.114347.

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48

Marami Milani, Samira, Rahim Khoshbakhti Saray, and Mohammad Najafi. "Exergo-economic analysis of different power-cycle configurations driven by heat recovery of a gas engine." Energy Conversion and Management 186 (April 2019): 103–19. http://dx.doi.org/10.1016/j.enconman.2019.02.030.

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49

Dubey, Manoj, and Dhananjay R. Mishra. "Thermo-exergo-economic analysis of double slope solar still augmented with ferrite ring magnets and GI sheet." DESALINATION AND WATER TREATMENT 198 (2020): 19–30. http://dx.doi.org/10.5004/dwt.2020.25947.

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50

Ayub, Iqra, Muhammad Salman Nasir, Yang Liu, et al. "Exergo-economic analysis for screening of metal hydride pairs for thermochemical energy storage for solar baking system." Thermal Science and Engineering Progress 30 (May 2022): 101271. http://dx.doi.org/10.1016/j.tsep.2022.101271.

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