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Journal articles on the topic 'Thermal generation'

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1

Verma, Rahul, and Dr Deepika Chauhan. "Solar and Thermal Power Generation." International Journal of Trend in Scientific Research and Development Volume-2, Issue-3 (2018): 1071–74. http://dx.doi.org/10.31142/ijtsrd11190.

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2

Wang, Xi Bo, Ya Lin Lei, and Min Yao. "China's Thermal Power Generation Forecasting Based on Generalized Weng Model." Advanced Materials Research 960-961 (June 2014): 503–9. http://dx.doi.org/10.4028/www.scientific.net/amr.960-961.503.

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Since the 21st century, China's power industry has been developing very quickly, and the generated electrical energy has been growing rapidly. Although nuclear power, wind power, solar power generations have been increased, thermal power generation still accounts for more than 80% of the total generating capacity. Thermal power provides an important material basis for the development of the national economy. Therefore, the prediction research on China's thermal power generation trend is becoming a topic of great interest. The fuel of thermal power generation-coal, is an exhaustible resource. D
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3

Tiwari, Shubham, Bharti Dwivedi, and M. P. Dave. "Opportunities vis-à-vis threat to thermal genera-tion due to rising renewable energy penetration." International Journal of Engineering & Technology 7, no. 1 (2017): 33. http://dx.doi.org/10.14419/ijet.v7i1.8460.

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An effort has been made to access what happens to prevailing thermal generation plants if the generation from renewable energy resources is increased above 20% of total generation. A test case has been taken where generation system comprising of ten thermal generating units is in conjunction with a 500 MW Wind Energy generation plant, and a 500 MW Solar Energy generation plant. It has been found that on one hand the cost of generation gets significantly reduced whereas, on the other hand few thermal generators are compelled to remain with no generation at all. The study reveals the peak load s
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4

Huang, Yuecheng. "Solar Thermal Power Generation Technology Development." Applied and Computational Engineering 123, no. 1 (2025): 41–46. https://doi.org/10.54254/2755-2721/2025.19569.

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Fossil energy is running out faster and faster these days, and pollution in the environment is becoming a major issue. There are many opportunities for the growth of clean energy, particularly solar energy, under the "two-carbon" strategy. The production of solar electricity offers the benefits of plentiful resources as well as clean and environmental protection, which is becoming a crucial aspect of global energy consumption. In order to better understand the development of solar thermal power generation technology, this paper compares four different types of solar thermal power generation te
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5

Heberlein, J. V. R. "Generation of thermal and pseudo-thermal plasmas." Pure and Applied Chemistry 64, no. 5 (1992): 629–36. http://dx.doi.org/10.1351/pac199264050629.

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6

FUJITA, Yoshihiro. "Thermal Power Generation System." JOURNAL OF THE JAPAN WELDING SOCIETY 83, no. 1 (2014): 18–22. http://dx.doi.org/10.2207/jjws.83.18.

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7

Villaseca, F. Eugenio, and Behruz Fardanesh. "Fast Thermal Generation Rescheduling." IEEE Power Engineering Review PER-7, no. 2 (1987): 32. http://dx.doi.org/10.1109/mper.1987.5527536.

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8

Karni, Jacob. "SOLAR-THERMAL POWER GENERATION." Annual Review of Heat Transfer 15, no. 15 (2012): 37–92. http://dx.doi.org/10.1615/annualrevheattransfer.2012004925.

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9

Sukhatme, S. P. "Solar thermal power generation." Journal of Chemical Sciences 109, no. 6 (1997): 521–31. http://dx.doi.org/10.1007/bf02869211.

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10

Schlaich, Jörg. "Solar Thermal Electricity Generation." Structural Engineering International 4, no. 2 (1994): 76–81. http://dx.doi.org/10.2749/101686694780650896.

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11

Villaseca, F. Eugenio, and Behruz Fardanesh. "Fast Thermal Generation Rescheduling." IEEE Transactions on Power Systems 2, no. 1 (1987): 65–71. http://dx.doi.org/10.1109/tpwrs.1987.4335075.

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12

Gajjar, Dhaval G., Rinkesh M. Patel, Hema N. Patel, and Pravinkumar M. Patel. "Designing, characterization, and thermal behavior of triazine-based dendrimers." Journal of Polymer Engineering 35, no. 1 (2015): 41–52. http://dx.doi.org/10.1515/polyeng-2014-0123.

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Abstract Different generations of dendritic architecture with piperazine in core moiety and hydroxyl groups on the periphery were designed by divergent method. 1,4-biz(4,6-trichloro-1,3,5-triazin-2-yl)piperazine was synthesized as a core for dendrimer synthesis. Dendrimer was then grown to G3 from core compound using diethanolamine and cyanuric chloride as branching units. Dendrimer generations were characterized by infrared (IR) spectroscopy [Fourier transform IR (FTIR)], 1H-nuclear magnetic resonance (NMR), 13C-NMR, electrospray ionization-mass spectrometry (ESI-MS), and elemental analysis.
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13

KARAKURT, Sinan, and Umit GUNES. "A NEW APPROACH FOR EVALUATING THE RANKINE CYCLE THROUGH ENTROPY GENERATION." Journal of Thermal Engineering 5, no. 6 (2019): 141–48. http://dx.doi.org/10.18186/thermal.651508.

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14

Kielland, Ø. N., C. Bech, and S. Einum. "No evidence for thermal transgenerational plasticity in metabolism when minimizing the potential for confounding effects." Proceedings of the Royal Society B: Biological Sciences 284, no. 1846 (2017): 20162494. http://dx.doi.org/10.1098/rspb.2016.2494.

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Environmental change may cause phenotypic changes that are inherited across generations through transgenerational plasticity (TGP). If TGP is adaptive, offspring fitness increases with an increasing match between parent and offspring environment. Here we test for adaptive TGP in somatic growth and metabolic rate in response to temperature in the clonal zooplankton Daphnia pulex . Animals of the first focal generation experienced thermal transgenerational ‘mismatch’ (parental and offspring temperatures differed), whereas conditions of the next two generations matched the (grand)maternal thermal
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15

FERROUDJ, Nawal, and Hasan KÖTEN. "NUMERICAL SIMULATION OF PRANDTL NUMBER EFFECT ON ENTROPY GENERATION IN A SQUARE CAVITY." Journal of Thermal Engineering 7, no. 4 (2021): 1016–29. http://dx.doi.org/10.18186/thermal.931364.

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16

Wang, Rong, Zhihui Xie, Yong Yin, and Lingen Chen. "Constructal Design of Elliptical Cylinders with Heat Generating for Entropy Generation Minimization." Entropy 22, no. 6 (2020): 651. http://dx.doi.org/10.3390/e22060651.

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A heat dissipation model of discrete elliptical cylinders with heat generation on a thermal conduction pedestal cooled by forced convection is established. Constructal design is conducted numerically by taking the distributions of thermal conductivity and heat generating intensity as design variables, the dimensionless entropy generation rate (DEGR) as performance indicator. The optimal designs for discrete elliptical cylinders with heat generating are obtained respectively, i.e., there are optimal distributions of heat generating intensity with its fixed total amount of heat sources, and ther
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17

Loomis, Peter, Tom Jacobs, Samir Mathur, Engin Guven, Danny Hurtado, and Paul Christy. "Thermal Hydrolysis – The Next Generation." Proceedings of the Water Environment Federation 2016, no. 3 (2016): 903–14. http://dx.doi.org/10.2175/193864716821125826.

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18

Hermosilla, Gabriel, Diego-Ignacio Henriquez Tapia, Hector Allende-Cid, Gonzalo Farias Castro, and Esteban Vera. "Thermal Face Generation Using StyleGAN." IEEE Access 9 (2021): 80511–23. http://dx.doi.org/10.1109/access.2021.3085423.

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19

Elamin, Mohammed. "FUNDAMENTALS OF THERMAL POWER GENERATION." International Journal of Engineering Applied Sciences and Technology 5, no. 6 (2020): 111–15. http://dx.doi.org/10.33564/ijeast.2020.v05i06.015.

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20

OJI, AKIO. "History of Thermal Power Generation." Journal of the Institute of Electrical Engineers of Japan 121, no. 4 (2001): 262–65. http://dx.doi.org/10.1541/ieejjournal.121.262.

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21

Mills, Nick, Keith Panter, Paul Fountain, et al. "Second Generation Thermal Hydrolysis Processes." Proceedings of the Water Environment Federation 2014, no. 2 (2014): 1–13. http://dx.doi.org/10.2175/193864714816196925.

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22

Loomis, Peter, Tom Jacobs, Samir Mathur, Engin Guven, Danny Hurtado, and Paul Christy. "Thermal Hydrolysis – The Next Generation." Proceedings of the Water Environment Federation 2016, no. 8 (2016): 3235–45. http://dx.doi.org/10.2175/193864716819713880.

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23

Anshakov, A. S., S. I. Radko, and A. E. Urbakh. "Water vapor thermal plasma generation." Journal of Physics: Conference Series 1677 (November 2020): 012124. http://dx.doi.org/10.1088/1742-6596/1677/1/012124.

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24

Hu, Eric, YongPing Yang, Akira Nishimura, Ferdi Yilmaz, and Abbas Kouzani. "Solar thermal aided power generation." Applied Energy 87, no. 9 (2010): 2881–85. http://dx.doi.org/10.1016/j.apenergy.2009.10.025.

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25

Ferrari, David. "Solar thermal and electricity generation." Proceedings of the Royal Society of Victoria 126, no. 2 (2014): 30. http://dx.doi.org/10.1071/rs14030.

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We have available to us an abundant, free energy resource: the sun delivers more energy to the Earth in one hour than humanity uses in an entire year. However, solar power only accounts for about 0.7% of the world’s energy supply (US Energy Information Administration, 2013). Even in Victoria the solar resource is world class, with average annual irradiance on par with the sunniest parts of Europe. The north-west of the state has a solar resource as good as Arizona, California and Nevada, but in 2012 solar electricity only provided 1.1% of our electricity demand (Clean Energy Council 2013, Rene
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26

Rahul, Verma, and Deepika Chauhan Dr. "Solar and Thermal Power Generation." International Journal of Trend in Scientific Research and Development 2, no. 3 (2018): 1071–74. https://doi.org/10.31142/ijtsrd11190.

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Energy is the driving force for almost everything including the economy, society and technology all around the world. This makes energy generation an important and ever increasing responsibility.environmental problems. The burning of fossil resources factors the release of carbon dioxide CO2 that accumulates in the surroundings a greenhouse gas GHG which might alternate the steadiness of global local weather. In order that many study are interested for renewable power in their one of a kind forms thermal, photovoltaic, hydro, biomass and geothermal.Solar rays are an inexhaustible source of ene
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27

Biryukov, Aleksey, and Valery Garashchenko. "DIRECTIONS FOR IMPROVING THE ENERGY EFFICIENCY OF THERMAL ENERGY GENERATION SYSTEMS WITHIN THE FRAMEWORK OF THE RUSSIAN THERMAL POWER INDUSTRY." Energy Systems 8, no. 2 (2023): 17–27. http://dx.doi.org/10.34031/es.2023.2.002.

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The article discusses the directions of improving the energy efficiency of heat generation systems involved in solving heat supply problems in the Russian Federation. The thermal energy generation system is considered as a set of subsystems of heat generating equipment, movement of gaseous media, preparation and transfer of coolant, reduction and disposal of emissions. Each subsystem consists of corresponding elements. The energy efficiency measures under consideration are analyzed in accordance with the impact on the impact element, other elements of the subsystem, the heat supply system as a
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28

Dhamanda, Ashish, Arunesh Dutt Dehradun, and A. K. Bhardwaj Allahabad. "Automatic generation control of thermal generating unit using evolutionary controller." International Journal of Advanced Intelligence Paradigms 9, no. 5/6 (2017): 490. http://dx.doi.org/10.1504/ijaip.2017.088144.

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29

Dhamanda, Ashish, A. K. Bhardwaj Allahabad, and Arunesh Dutt Dehradun. "Automatic generation control of thermal generating unit using evolutionary controller." International Journal of Advanced Intelligence Paradigms 9, no. 5/6 (2017): 490. http://dx.doi.org/10.1504/ijaip.2017.10009224.

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30

Niimura, T., Y. Ueki, and R. Yokoyama. "Dynamic Generation Dispatch of Thermal Generating Units using Fuzzy Inference." IFAC Proceedings Volumes 23, no. 8 (1990): 61–66. http://dx.doi.org/10.1016/s1474-6670(17)51397-x.

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31

Egido, I., F. Fernandez-Bernal, L. Rouco, E. Porras, and A. Saiz-Chicharro. "Modeling of Thermal Generating Units for Automatic Generation Control Purposes." IEEE Transactions on Control Systems Technology 12, no. 1 (2004): 205–10. http://dx.doi.org/10.1109/tcst.2003.821959.

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32

Sui, Xin, Shengyang Lu, Hai He, et al. "Wind-Thermal-Nuclear-Storage Combined Time Division Power Dispatch Based on Numerical Characteristics of Net Load." Energies 13, no. 2 (2020): 364. http://dx.doi.org/10.3390/en13020364.

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In order to satisfy the strategic needs of energy sustainable development, renewable energy has developed rapidly and the power systems have been transformed to a new generation of power systems. In the renewable energy power generation technologies, the fastest developing wind power generation are highly intermittent and fluctuating. When high penetration of renewable power connects to the power grid and participates in the system dispatch, there will be more difficulties and challenges in the energy balance control. In this paper, a wind-thermal-nuclear-storage combined time division power d
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33

Devine, K. "Gas in Electricity Generation." Energy Exploration & Exploitation 13, no. 2-3 (1995): 149–57. http://dx.doi.org/10.1177/0144598795013002-305.

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Gas is New Zealand's major thermal fuel for electricity generation. This paper describes what influences the volumes of gas burnt by ECNZ, and forecasts future gas demands for electricity generation. It also reviews the uncertainties associated with these forecasts and likely competition in building new electricity generating stations and outlines the strategy now being formulated to accommodate them. Because ECNZ's generation system is hydro-based, relatively small rapid changes in hydrological conditions can significantly affect the amount of gas used. This situation will change over time wi
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34

Dhayalini, K., S. Sathiyamoorthy, and Asir Rajan C. Christober. "Hybrid Evolutionary Particle Swarm Optimization for the Coordination of Wind and Thermal Generation Dispatch." Applied Mechanics and Materials 573 (June 2014): 684–89. http://dx.doi.org/10.4028/www.scientific.net/amm.573.684.

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Development of better wind and thermal coordination dispatch is necessary to determine the optimal dispatch scheme that can integrate wind power reliably and efficiently. In this paper hybrid Evolutionary Programming (EP) and Particle Swarm Optimization (PSO) approach is utilized to coordinate the wind and thermal generation dispatch and to minimize the total production cost considering wind power generation and valve effect of thermal units. Numerical studies have been performed for three different test systems, i.e., six, thirteen and forty generating unit systems. The simulation results dem
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35

Ristyadi, Dwi, Xiong Zhao He, and Qiao Wang. "Response to thermal environment in Tetranychus ludeni (Acari: Tetranychidae)." Systematic and Applied Acarology 26, no. 5 (2021): 942–53. http://dx.doi.org/10.11158/saa.26.5.9.

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Tetranychus ludeni Zacher is a spider mite that has invaded all continents except Antarctica and become an economically important pest around the world. Understanding the plasticity of its life history traits as a response to temperatures provides critical information for its risk analysis and management. Here we tested its response to temperatures ranging from 15 to 30ºC over two generations. We found that there was no difference in the egg hatch rate and immature survival rate across temperatures in the first generation. However, the egg hatch rate was lower and immature survival rate was hi
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36

Alrashdi, Abdulwahed Muaybid A. "Entropy Generation in Peristaltic Transport of Hybrid Nanofluids with Thermal Conductivity Variations and Electromagnetic Effects." Entropy 25, no. 4 (2023): 659. http://dx.doi.org/10.3390/e25040659.

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Entropy generation in peristaltic transport of hybrid nanofluid possessing temperature-dependent thermal conductivity through a two-dimensional vertical channel is studied in this paper. The hybrid nanofluid consists of multi-walled carbon nanotubes mixed with zinc oxide suspended in engine oil. Flow is affected by a uniform external magnetic field, hence generating Lorentz force, Hall and heating effects. Given the vertical orientation of the channel, the analysis accounts for mixed convection. To study heat transfer in the current flow configuration, the model considers phenomena such as vis
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37

WANG, Yuan, Gaojia LI, and Wenhao YUE. "Prediction Model of Photo-thermal Power Generation Based on G (1,1) Optimization." MATEC Web of Conferences 246 (2018): 02057. http://dx.doi.org/10.1051/matecconf/201824602057.

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In this paper, the photo-thermal power generation model is obtained by studying the operation process of solar radiation , light and thermal power generation equipment. By solving the gray model parameters by particle swarm optimization, a prediction model of light and heat generation based on G (1,1) optimization is proposed. In the case of example analysis, the amount of electricity generated by the solar radiation in the past few years was based on the photo-thermal power generation model, and the light and thermal power generation prediction model is used to obtain the photo-thermal power
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38

Favas, T. K., and G. Jilani. "Effect of variable thermal conductivity on entropy generation in a plate with internal energy generation." MATEC Web of Conferences 144 (2018): 04001. http://dx.doi.org/10.1051/matecconf/201814404001.

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The current numerical investigation aims at analyzing the effect of variable thermal conductivity on local and global entropy generation rates in an energy generating plate dissipating heat by conjugate conduction-forced convection heat transfer. In order to fulfill this objective, the physical model of the plate dissipating heat into surrounding coolant is transformed into a mathematical model governing the temperature field in the plate as well as flow and thermal fields in the fluid. The resulting mathematical model, being a set of coupled and non linear partial differential equations, is s
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39

Liang, Jingkang, Xu Ji, Jingyang Han, and Yunfeng Wang. "Modeling and experimental investigation on a direct steam generation solar collector with flat plate thermal concentration." Energy Exploration & Exploitation 38, no. 5 (2020): 1879–92. http://dx.doi.org/10.1177/0144598720922681.

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Currently, steam generation using solar energy mostly relies on optical concentration, which is a costly system, to generate the high temperature needed for water evaporation. Here, the development of a low-cost and scalable approach based on thermal concentration for solar steam generation is reported. The system was demonstrated to be capable of generating 100–120°C steam under ambient air conditions without optical concentration. A solar thermal efficiency could be achieved up to 13% at an average solar irradiance of only 670 W m−2. The new solar steam generation system, with its simple str
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40

Tang, Xiaoxu, Zhao Hua, Jian Zhang, Qiang Fu, and Jie Tian. "A Study on Generation and Feasibility of Supercritical Multi-Thermal Fluid." Energies 15, no. 21 (2022): 8027. http://dx.doi.org/10.3390/en15218027.

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Supercritical multi-thermal fluid is an emerging and efficient heat carrier for thermal recovery of heavy oil, but the generation of supercritical multi-thermal fluid and its feasibility in thermal recovery are rarely discussed. In this paper, generation and flooding experiments of supercritical multi-thermal fluid were carried out, respectively, for the generation and feasibility of supercritical multi-thermal fluid. During the experiment, the temperature and pressure in the reactor and sand-pack were monitored and recorded, the fluid generated by the reaction was analyzed by chromatography,
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41

Rout, S. K. "EXPERIMENTAL INVESTIGATION AND PERFORMANCE OPTIMIZATION OF A CROSS FLOW HEAT EXCHANGER BY ENTROPY GENERATION MINIMIZATION APPROACH." Journal of Thermal Engineering 5, no. 2 (2019): 1–12. http://dx.doi.org/10.18186/thermal.519128.

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42

Brea, Aiara, Francisco J. García-Corbeira, Elisavet Tsiranidou, Gustavo C. Peláez, Lucía Díaz-Vilariño, and Joaquín Martínez. "Low-Cost Thermal Point Clouds of Indoor Environments." International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences XLVIII-4-2024 (October 21, 2024): 99–105. http://dx.doi.org/10.5194/isprs-archives-xlviii-4-2024-99-2024.

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Abstract. The integration of low-cost thermal sensors with Apple Smart Devices supports the generation of 3D point clouds that include temperature indicators. This generates a new perspective for the study of buildings, allowing for fast and reliable examination of physical building structures. To the best of our knowledge, this study is the first to demonstrate the use of affordable sensors for 3D thermal point cloud generation. The study involved capturing data from the LiDAR and thermal sensors, followed by an extrinsic calibration process to align the datasets. Subsequently, the point clou
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43

Budkin, G. V., and S. A. Tarasenko. "Thermal generation of shift electric current." New Journal of Physics 22, no. 1 (2020): 013005. http://dx.doi.org/10.1088/1367-2630/ab64af.

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44

Liu, Yudong, Fangqin Li, Jianxing Ren, Guizhou Ren, Honghong Shen, and Gang Liu. "Solar thermal power generation technology research." E3S Web of Conferences 136 (2019): 02016. http://dx.doi.org/10.1051/e3sconf/201913602016.

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China is a big consumer of energy resources. With the gradual decrease of non-renewable resources such as oil and coal, it is very important to adopt renewable energy for economic development. As a kind of abundant renewable energy, solar power has been widely used. This paper introduces the development status of solar power generation technology, mainly introduces solar photovoltaic power generation technology, briefly describes the principle of solar photovoltaic power generation, and compares and analyzes four kinds of solar photovoltaic power generation technology, among which photovoltaic
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45

Mills, A. P., J. Imazato, S. Saitoh, A. Uedono, Y. Kawashima, and K. Nagamine. "Generation of Thermal Muonium in Vacuum." Physical Review Letters 56, no. 14 (1986): 1463–66. http://dx.doi.org/10.1103/physrevlett.56.1463.

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46

Kennedy, Howard V. "Modeling second-generation thermal imaging systems." Optical Engineering 30, no. 11 (1991): 1771. http://dx.doi.org/10.1117/12.56000.

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47

Fardanesh, B., and F. E. Villaseca. "Two-step optimal thermal generation scheduling." Automatica 22, no. 3 (1986): 361–66. http://dx.doi.org/10.1016/0005-1098(86)90034-8.

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48

Lence, Barbara J., M. Imran Latheef, and Donald H. Burn. "Reservoir Management and Thermal Power Generation." Journal of Water Resources Planning and Management 118, no. 4 (1992): 388–405. http://dx.doi.org/10.1061/(asce)0733-9496(1992)118:4(388).

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49

Mayer, F. J., and J. R. Reitz. "Thermal energy generation in the earth." Nonlinear Processes in Geophysics 21, no. 2 (2014): 367–78. http://dx.doi.org/10.5194/npg-21-367-2014.

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Abstract. We show that a recently introduced class of electromagnetic composite particles can explain some discrepancies in observations involving heat and helium released from the earth. Energy release during the formation of the composites and subsequent nuclear reactions involving the composites are described that can quantitatively account for the discrepancies and are expected to have implications in other areas of geophysics – for example, a new picture of heat production and volcanism in the earth is presented.
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50

Zuyi Li and M. Shahidehpour. "Generation scheduling with thermal stress constraints." IEEE Transactions on Power Systems 18, no. 4 (2003): 1402–9. http://dx.doi.org/10.1109/tpwrs.2003.818698.

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