To see the other types of publications on this topic, follow the link: POLYGENERATION SYSTEMS.

Journal articles on the topic 'POLYGENERATION SYSTEMS'

Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles

Select a source type:

Consult the top 50 journal articles for your research on the topic 'POLYGENERATION SYSTEMS.'

Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.

You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.

Browse journal articles on a wide variety of disciplines and organise your bibliography correctly.

1

Calise, Francesco, and Massimo Dentice D’Accadia. "Simulation of Polygeneration Systems." Energies 9, no. 11 (2016): 925. http://dx.doi.org/10.3390/en9110925.

Full text
APA, Harvard, Vancouver, ISO, and other styles
2

Calise, Francesco, Giulio de Notaristefani di Vastogirardi, Massimo Dentice d'Accadia, and Maria Vicidomini. "Simulation of polygeneration systems." Energy 163 (November 2018): 290–337. http://dx.doi.org/10.1016/j.energy.2018.08.052.

Full text
APA, Harvard, Vancouver, ISO, and other styles
3

Khoshgoftar Manesh, Mohammad Hasan, and Viviani Caroline Onishi. "Energy, Exergy, and Thermo-Economic Analysis of Renewable Energy-Driven Polygeneration Systems for Sustainable Desalination." Processes 9, no. 2 (2021): 210. http://dx.doi.org/10.3390/pr9020210.

Full text
Abstract:
Reliable production of freshwater and energy is vital for tackling two of the most critical issues the world is facing today: climate change and sustainable development. In this light, a comprehensive review is performed on the foremost renewable energy-driven polygeneration systems for freshwater production using thermal and membrane desalination. Thus, this review is designed to outline the latest developments on integrated polygeneration and desalination systems based on multi-stage flash (MSF), multi-effect distillation (MED), humidification-dehumidification (HDH), and reverse osmosis (RO)
APA, Harvard, Vancouver, ISO, and other styles
4

Ramadhani, Farah, M. A. Hussain, Hazlie Mokhlis, and Oon Erixno. "Solid Oxide Fuel Cell-Based Polygeneration Systems in Residential Applications: A Review of Technology, Energy Planning and Guidelines for Optimizing the Design." Processes 10, no. 10 (2022): 2126. http://dx.doi.org/10.3390/pr10102126.

Full text
Abstract:
Solid oxide fuel cells are an emerging energy conversion technology suitable for high-temperature power generation with proper auxiliary heat. Combining SOFCs and polygeneration has produced practical applications for modern energy system designs. Even though many researchers have reviewed these systems’ technologies, opportunities and challenges, reviews regarding the optimal strategy for designing and operating the systems are limited. Polygeneration is more complicated than any other energy generation type due to its ability to generate many types of energy from various prime movers. Moreov
APA, Harvard, Vancouver, ISO, and other styles
5

Wang, Lingmei, Zheng Li, and Weidou Ni. "Emergy evaluation of polygeneration systems." Frontiers of Energy and Power Engineering in China 1, no. 2 (2007): 223–27. http://dx.doi.org/10.1007/s00000-007-0030-x.

Full text
APA, Harvard, Vancouver, ISO, and other styles
6

Murugan, S., and Bohumil Horák. "Tri and polygeneration systems - A review." Renewable and Sustainable Energy Reviews 60 (July 2016): 1032–51. http://dx.doi.org/10.1016/j.rser.2016.01.127.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Dolotovsky, Igor, and Evgeni Larin. "Polygeneration technology and equipment for energy and water supply systems of oil and gas enterprises." Energy Safety and Energy Economy 6 (December 2021): 11–19. http://dx.doi.org/10.18635/2071-2219-2021-6-11-19.

Full text
Abstract:
A novel polygeneration technology and equipment concept has been suggested for energy and water supply systems of oil and gas enterprises. It was created in order to enhance opportunities of mutual integration of power and manufacturing systems using recuperation and recycling. As an example, we have described a system which incorporates modules for combined energy resource and water generation as well as wastewater and low pressure hydrocarbon gas recycling. Feasibility of polygeneration and mutual integration was assessed with use of a multi-criterion concidering efficiency and effectiveness
APA, Harvard, Vancouver, ISO, and other styles
8

Homa, Maksymilian, Anna Pałac, Maciej Żołądek, and Rafał Figaj. "Small-Scale Hybrid and Polygeneration Renewable Energy Systems: Energy Generation and Storage Technologies, Applications, and Analysis Methodology." Energies 15, no. 23 (2022): 9152. http://dx.doi.org/10.3390/en15239152.

Full text
Abstract:
The energy sector is nowadays facing new challenges, mainly in the form of a massive shifting towards renewable energy sources as an alternative to fossil fuels and a diffusion of the distributed generation paradigm, which involves the application of small-scale energy generation systems. In this scenario, systems adopting one or more renewable energy sources and capable of producing several forms of energy along with some useful substances, such as fresh water and hydrogen, are a particularly interesting solution. A hybrid polygeneration system based on renewable energy sources can overcome o
APA, Harvard, Vancouver, ISO, and other styles
9

Liu, Pei, Dimitrios I. Gerogiorgis, and Efstratios N. Pistikopoulos. "Modeling and optimization of polygeneration energy systems." Catalysis Today 127, no. 1-4 (2007): 347–59. http://dx.doi.org/10.1016/j.cattod.2007.05.024.

Full text
APA, Harvard, Vancouver, ISO, and other styles
10

Kasaeian, Alibakhsh, Evangelos Bellos, Armin Shamaeizadeh, and Christos Tzivanidis. "Solar-driven polygeneration systems: Recent progress and outlook." Applied Energy 264 (April 2020): 114764. http://dx.doi.org/10.1016/j.apenergy.2020.114764.

Full text
APA, Harvard, Vancouver, ISO, and other styles
11

Raggio, Martina, Carlo Alberto Niccolini Marmont Du Haut Champ, Tommaso Reboli, Paolo Silvestri, and Mario Luigi Ferrari. "Energy management and load profile optimisation of 10 kWh BESS integrated into a Smart Polygeneration Grid subnetwork." E3S Web of Conferences 414 (2023): 03008. http://dx.doi.org/10.1051/e3sconf/202341403008.

Full text
Abstract:
Smart Polygeneration Grids integrate different prime movers, such as traditional generators, renewable energy sources and energy storage systems to locally supply electrical and thermal power to achieve high conversion efficiencies and increase self-consumption. Integrating different energy systems poses some challenges on the plant Energy Management Systems (EMS), which must accommodate different operational requirements while following the electrical and thermal loads. Battery Energy Storage Systems (BESSs) can provide additional flexibility to the system. This paper intends to evaluate the
APA, Harvard, Vancouver, ISO, and other styles
12

Chen, Yang, Thomas A. Adams, and Paul I. Barton. "Optimal Design and Operation of Static Energy Polygeneration Systems." Industrial & Engineering Chemistry Research 50, no. 9 (2011): 5099–113. http://dx.doi.org/10.1021/ie101568v.

Full text
APA, Harvard, Vancouver, ISO, and other styles
13

Chen, Yang, Thomas A. Adams, and Paul I. Barton. "Optimal Design and Operation of Flexible Energy Polygeneration Systems." Industrial & Engineering Chemistry Research 50, no. 8 (2011): 4553–66. http://dx.doi.org/10.1021/ie1021267.

Full text
APA, Harvard, Vancouver, ISO, and other styles
14

Sy, Charlle L., Kathleen B. Aviso, Aristotle T. Ubando, and Raymond R. Tan. "Target-oriented robust optimization of polygeneration systems under uncertainty." Energy 116 (December 2016): 1334–47. http://dx.doi.org/10.1016/j.energy.2016.06.057.

Full text
APA, Harvard, Vancouver, ISO, and other styles
15

Narvaez, A., D. Chadwick, and L. Kershenbaum. "Small-medium scale polygeneration systems: Methanol and power production." Applied Energy 113 (January 2014): 1109–17. http://dx.doi.org/10.1016/j.apenergy.2013.08.065.

Full text
APA, Harvard, Vancouver, ISO, and other styles
16

Tan, Raymond R., Kathleen B. Aviso, Dominic C. Y. Foo, Jui-Yuan Lee, and Aristotle T. Ubando. "Optimal synthesis of negative emissions polygeneration systems with desalination." Energy 187 (November 2019): 115953. http://dx.doi.org/10.1016/j.energy.2019.115953.

Full text
APA, Harvard, Vancouver, ISO, and other styles
17

Rong, Aiying, and Yan Su. "Polygeneration systems in buildings: A survey on optimization approaches." Energy and Buildings 151 (September 2017): 439–54. http://dx.doi.org/10.1016/j.enbuild.2017.06.077.

Full text
APA, Harvard, Vancouver, ISO, and other styles
18

Hernández, J. A., D. Colorado, O. Cortés-Aburto, Y. El Hamzaoui, V. Velazquez, and B. Alonso. "Inverse neural network for optimal performance in polygeneration systems." Applied Thermal Engineering 50, no. 2 (2013): 1399–406. http://dx.doi.org/10.1016/j.applthermaleng.2011.12.041.

Full text
APA, Harvard, Vancouver, ISO, and other styles
19

Farhat, Karim, and Stefan Reichelstein. "Economic value of flexible hydrogen-based polygeneration energy systems." Applied Energy 164 (February 2016): 857–70. http://dx.doi.org/10.1016/j.apenergy.2015.12.008.

Full text
APA, Harvard, Vancouver, ISO, and other styles
20

Rokni, Marvin M. "Power to Hydrogen Through Polygeneration Systems Based on Solid Oxide Cell Systems." Energies 12, no. 24 (2019): 4793. http://dx.doi.org/10.3390/en12244793.

Full text
Abstract:
This study presents the design and analysis of a novel plant based on reversible solid oxide cells driven by wind turbines and integrated with district heating, absorption chillers and water distillation. The main goal is produce hydrogen from excess electricity generated by the wind turbines. The proposed design recovers the waste heat to generate cooling, freshwater and heating. The different plant designs proposed here make it possible to alter the production depending on the demand. Further, the study uses solar energy to generate steam and regulate the heat production for the district hea
APA, Harvard, Vancouver, ISO, and other styles
21

Bartolucci, Lorenzo, Enrico Bocci, Stefano Cordiner, et al. "Biomass Polygeneration System for the Thermal Conversion of Softwood Waste into Hydrogen and Drop-In Biofuels." Energies 16, no. 3 (2023): 1286. http://dx.doi.org/10.3390/en16031286.

Full text
Abstract:
In order to keep the +1.5 °C over-temperature, previously predicted with high confidence by IPPC Sixth Assessment, as minimal as feasible, it is more than vital to achieve a low-emission energy system. Polygeneration systems based on thermochemical processes involve biomass conversion in multi-output of bioenergy carriers and chemicals. Due to reduced energy input and input/output diversification, polygeneration energy systems are considered interesting pathways that can increase competitiveness of biomass-derived products. The proposed route of fast pyrolysis, sorption-enhanced biochar gasifi
APA, Harvard, Vancouver, ISO, and other styles
22

Zhang, Jianyun, Zhiwei Yang, Linwei Ma, and Weidou Ni. "Exergy Analysis of Coal-Based Series Polygeneration Systems for Methanol and Electricity Co-Production." Molecules 26, no. 21 (2021): 6673. http://dx.doi.org/10.3390/molecules26216673.

Full text
Abstract:
This paper quantifies the exergy losses of coal-based series polygeneration systems and evaluates the potential efficiency improvements that can be realized by applying advanced technologies for gasification, methanol synthesis, and combined cycle power generation. Exergy analysis identified exergy losses and their associated causes from chemical and physical processes. A new indicator was defined to evaluate the potential gain from minimizing exergy losses caused by physical processes—the degree of perfection of the system’s thermodynamic performance. The influences of a variety of advanced t
APA, Harvard, Vancouver, ISO, and other styles
23

Pantsyrnaya, T. V., V. A. Parabin, and A. V. Dyakov. "TRIGENERATION AS A WAY OF ENERGY EFFICIENCY IMPROVEMENT REVIEW ARTICLE." Strategic decisions and risk management, no. 6 (October 25, 2014): 82–87. http://dx.doi.org/10.17747/2078-8886-2013-6-82-87.

Full text
Abstract:
The overview of current scientific literature on one of the key aspects of the development of the energy sector is presented, it is the increase of the efficiency of energy systems. The ability of cogeneration and trigeneration systems to increase energy efficiency of power stations, supermarkets, shopping centers, airports, etc. was demonstrated. In addition, it was shown that these systems have a high potential for reducing greenhouse gas emissions. The examples of polygeneration systems and ways to optimize them by improving techno-economic parameters were also demonstrated.
APA, Harvard, Vancouver, ISO, and other styles
24

Hao, Yan Hong, and Jie Feng. "Exergoeconomic Analysis of Parallel Polygeneration System with CO-Riched Gas once through." Applied Mechanics and Materials 229-231 (November 2012): 2671–79. http://dx.doi.org/10.4028/www.scientific.net/amm.229-231.2671.

Full text
Abstract:
Polygeneration energy systems have been widely accepted because of their superiority over conventional stand-alone plants in energy efficiency and emissions control. Coal-based polygeneration system, especially producing methanol and electricity, will play an important role in Chinese sustainable developing energy system. Researches indicate that the parallel polygeneration system producing methanol and electricity with CO-riched gas once through (PCGOT) has higher comprehensive profitability and higher reliability, but the systemic and objective evaluation to PCGOT is lacking. In this paper,
APA, Harvard, Vancouver, ISO, and other styles
25

Cabral, Charlette, Viknesh Andiappan, Kathleen Aviso, and Raymond Tan. "Equipment size selection for optimizing polygeneration systems with reliability aspects." Energy 234 (November 2021): 121302. http://dx.doi.org/10.1016/j.energy.2021.121302.

Full text
APA, Harvard, Vancouver, ISO, and other styles
26

Giwa, Adewale, Ahmed Yusuf, Abdallah Dindi, and Hammed Abiodun Balogun. "Polygeneration in desalination by photovoltaic thermal systems: A comprehensive review." Renewable and Sustainable Energy Reviews 130 (September 2020): 109946. http://dx.doi.org/10.1016/j.rser.2020.109946.

Full text
APA, Harvard, Vancouver, ISO, and other styles
27

Wu, Handong, Lin Gao, Hongguang Jin, and Sheng Li. "Low-energy-penalty principles of CO2 capture in polygeneration systems." Applied Energy 203 (October 2017): 571–81. http://dx.doi.org/10.1016/j.apenergy.2017.06.012.

Full text
APA, Harvard, Vancouver, ISO, and other styles
28

Y, Rong A., Su Y, and Lahdelma R. "Review of optimization techniques of polygeneration systems for building applications." IOP Conference Series: Earth and Environmental Science 40 (August 2016): 012026. http://dx.doi.org/10.1088/1755-1315/40/1/012026.

Full text
APA, Harvard, Vancouver, ISO, and other styles
29

Wu, Wei, Rasa Supankanok, Walairat Chandra-Ambhorn, and Muhammad Ikhsan Taipabu. "Novel CO2-negative design of palm oil-based polygeneration systems." Renewable Energy 203 (February 2023): 622–33. http://dx.doi.org/10.1016/j.renene.2022.12.103.

Full text
APA, Harvard, Vancouver, ISO, and other styles
30

Liu, Pei, Efstratios N. Pistikopoulos, and Zheng Li. "A mixed-integer optimization approach for polygeneration energy systems design." Computers & Chemical Engineering 33, no. 3 (2009): 759–68. http://dx.doi.org/10.1016/j.compchemeng.2008.08.005.

Full text
APA, Harvard, Vancouver, ISO, and other styles
31

Collazos, Andrés, François Maréchal, and Conrad Gähler. "Predictive optimal management method for the control of polygeneration systems." Computers & Chemical Engineering 33, no. 10 (2009): 1584–92. http://dx.doi.org/10.1016/j.compchemeng.2009.05.009.

Full text
APA, Harvard, Vancouver, ISO, and other styles
32

Liu, Pei, Efstratios N. Pistikopoulos, and Zheng Li. "A multi-objective optimization approach to polygeneration energy systems design." AIChE Journal 56, no. 5 (2009): 1218–34. http://dx.doi.org/10.1002/aic.12058.

Full text
APA, Harvard, Vancouver, ISO, and other styles
33

Wu, Wei, Lei Zheng, Bin Shi, and Po-Chih Kuo. "Energy and exergy analysis of MSW-based IGCC power/polygeneration systems." Energy Conversion and Management 238 (June 2021): 114119. http://dx.doi.org/10.1016/j.enconman.2021.114119.

Full text
APA, Harvard, Vancouver, ISO, and other styles
34

Pina, Eduardo A., Miguel A. Lozano, José C. Ramos, and Luis M. Serra. "Tackling thermal integration in the synthesis of polygeneration systems for buildings." Applied Energy 269 (July 2020): 115115. http://dx.doi.org/10.1016/j.apenergy.2020.115115.

Full text
APA, Harvard, Vancouver, ISO, and other styles
35

Menon, Ramanunni P., Mario Paolone, and François Maréchal. "Study of optimal design of polygeneration systems in optimal control strategies." Energy 55 (June 2013): 134–41. http://dx.doi.org/10.1016/j.energy.2013.03.070.

Full text
APA, Harvard, Vancouver, ISO, and other styles
36

Chen, Yang, Xiang Li, Thomas A. Adams, and Paul I. Barton. "Decomposition strategy for the global optimization of flexible energy polygeneration systems." AIChE Journal 58, no. 10 (2011): 3080–95. http://dx.doi.org/10.1002/aic.13708.

Full text
APA, Harvard, Vancouver, ISO, and other styles
37

Hosan, Shahadat, Md Matiar Rahman, Shamal Chandra Karmaker, and Bidyut Baran Saha. "Energy subsidies and energy technology innovation: Policies for polygeneration systems diffusion." Energy 267 (March 2023): 126601. http://dx.doi.org/10.1016/j.energy.2022.126601.

Full text
APA, Harvard, Vancouver, ISO, and other styles
38

Pimentel, Jean, Ákos Orosz, Kathleen B. Aviso, Raymond R. Tan, and Ferenc Friedler. "Conceptual Design of a Negative Emissions Polygeneration Plant for Multiperiod Operations Using P-Graph." Processes 9, no. 2 (2021): 233. http://dx.doi.org/10.3390/pr9020233.

Full text
Abstract:
Reduction of CO2 emissions from industrial facilities is of utmost importance for sustainable development. Novel process systems with the capability to remove CO2 will be useful for carbon management in the future. It is well-known that major determinants of performance in process systems are established during the design stage. Thus, it is important to employ a systematic tool for process synthesis. This work approaches the design of polygeneration plants with negative emission technologies (NETs) by means of the graph-theoretic approach known as the P-graph framework. As a case study, a poly
APA, Harvard, Vancouver, ISO, and other styles
39

Gesteira, Luis Gabriel, and Javier Uche. "A Novel Polygeneration System Based on a Solar-Assisted Desiccant Cooling System for Residential Buildings: An Energy and Environmental Analysis." Sustainability 14, no. 6 (2022): 3449. http://dx.doi.org/10.3390/su14063449.

Full text
Abstract:
This work aims to design and dynamically simulate a polygeneration system that integrates a solar-assisted desiccant cooling system for residential applications as an alternative to vapor compression systems. The overall plant layout supplies electricity, space heating and cooling, domestic hot water, and freshwater for a single-family townhouse located in the city of Almería in Spain. The leading technologies used in the system are photovoltaic/thermal collectors, reverse osmosis, and desiccant air conditioning. The system model was developed and accurately simulated in the TRNSYS environment
APA, Harvard, Vancouver, ISO, and other styles
40

Kofler, René, and Lasse Røngaard Clausen. "Wheat straw based polygeneration systems integrating the electricity, heating and transport sector." Smart Energy 2 (May 2021): 100015. http://dx.doi.org/10.1016/j.segy.2021.100015.

Full text
APA, Harvard, Vancouver, ISO, and other styles
41

Ngan, Sue Lin, Bing Shen How, Sin Yong Teng, et al. "A hybrid approach to prioritize risk mitigation strategies for biomass polygeneration systems." Renewable and Sustainable Energy Reviews 121 (April 2020): 109679. http://dx.doi.org/10.1016/j.rser.2019.109679.

Full text
APA, Harvard, Vancouver, ISO, and other styles
42

Liu, Pei, Efstratios N. Pistikopoulos, and Zheng Li. "Decomposition Based Stochastic Programming Approach for Polygeneration Energy Systems Design under Uncertainty." Industrial & Engineering Chemistry Research 49, no. 7 (2010): 3295–305. http://dx.doi.org/10.1021/ie901490g.

Full text
APA, Harvard, Vancouver, ISO, and other styles
43

Menon, Ramanunni P., François Maréchal, and Mario Paolone. "Intra-day electro-thermal model predictive control for polygeneration systems in microgrids." Energy 104 (June 2016): 308–19. http://dx.doi.org/10.1016/j.energy.2016.03.081.

Full text
APA, Harvard, Vancouver, ISO, and other styles
44

Bianco, Giovanni, Barbara Bonvini, Stefano Bracco, Federico Delfino, Paola Laiolo, and Giorgio Piazza. "Key Performance Indicators for an Energy Community Based on Sustainable Technologies." Sustainability 13, no. 16 (2021): 8789. http://dx.doi.org/10.3390/su13168789.

Full text
Abstract:
As reported in the “Clean energy for all Europeans package” set by the EU, a sustainable transition from fossil fuels towards cleaner energy is necessary to improve the quality of life of citizens and the livability in cities. The exploitation of renewable sources, the improvement of energy performance in buildings and the need for cutting-edge national energy and climate plans represent important and urgent topics to be faced in order to implement the sustainability concept in urban areas. In addition, the spread of polygeneration microgrids and the recent development of energy communities en
APA, Harvard, Vancouver, ISO, and other styles
45

Bruno, J. C., and A. Coronas. "Distributed Generation of Energy Using Micro Gas Turbines. Polygeneration Systems and Fuel Flexibility." Renewable Energy and Power Quality Journal 1, no. 02 (2004): 9–16. http://dx.doi.org/10.24084/repqj02.001.

Full text
APA, Harvard, Vancouver, ISO, and other styles
46

Pinto, Edwin S., Luis M. Serra, and Ana Lázaro. "Evaluation of methods to select representative days for the optimization of polygeneration systems." Renewable Energy 151 (May 2020): 488–502. http://dx.doi.org/10.1016/j.renene.2019.11.048.

Full text
APA, Harvard, Vancouver, ISO, and other styles
47

Atienza-Márquez, Antonio, Dereje S. Ayou, Joan Carles Bruno, and Alberto Coronas. "Energy polygeneration systems based on LNG-regasification: Comprehensive overview and techno-economic feasibility." Thermal Science and Engineering Progress 20 (December 2020): 100677. http://dx.doi.org/10.1016/j.tsep.2020.100677.

Full text
APA, Harvard, Vancouver, ISO, and other styles
48

Salkuyeh, Yaser Khojasteh, and Thomas A. Adams. "A new power, methanol, and DME polygeneration process using integrated chemical looping systems." Energy Conversion and Management 88 (December 2014): 411–25. http://dx.doi.org/10.1016/j.enconman.2014.08.039.

Full text
APA, Harvard, Vancouver, ISO, and other styles
49

Narvaez, A., D. Chadwick, and L. Kershenbaum. "Performance of small-medium scale polygeneration systems for dimethyl ether and power production." Energy 188 (December 2019): 116058. http://dx.doi.org/10.1016/j.energy.2019.116058.

Full text
APA, Harvard, Vancouver, ISO, and other styles
50

Ryabov, G. A., O. M. Folomeev, D. A. Sankin, and D. A. Melnikov. "HYDRODYNAMICS OF INTERCONNECTED REACTORS FOR POLYGENERATION SYSTEMS AND CHEMICAL LOOPING COMBUSTION AND GASIFICATION." JP Journal of Heat and Mass Transfer 13, no. 1 (2015): 1–22. http://dx.doi.org/10.17654/hm013010001.

Full text
APA, Harvard, Vancouver, ISO, and other styles
We offer discounts on all premium plans for authors whose works are included in thematic literature selections. Contact us to get a unique promo code!