Academic literature on the topic 'Thermal power plants and nuclear power plants'

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Journal articles on the topic "Thermal power plants and nuclear power plants"

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Gordienko, V. A., S. N. Brykin, R. E. Kuzin, I. S. Serebryakov, M. V. Starkov, and T. N. Tairov. "Nuclear power pros and cons: A comparative analysis of radioactive emissions from nuclear power plants and thermal power plants." Moscow University Physics Bulletin 67, no. 1 (2012): 120–27. http://dx.doi.org/10.3103/s0027134912010055.

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Petrov, Petar, and Silviya Boycheva. "Opportunities and challenges of converting coal-fired power plants to nuclear power plants." IOP Conference Series: Earth and Environmental Science 1380, no. 1 (2024): 012021. http://dx.doi.org/10.1088/1755-1315/1380/1/012021.

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Abstract The constant increasing of world’s energy needs and meanwhile the adopted environmental protection policies in the last decade, have led to a reassessment of the sources and technologies used for production of thermal energy and electricity. The policy of carbon neutrality imposes the shut down and replacement of the most environmentally polluting power plants by 2050 which usually are Coal-Fired Power Plants (CPP). They could be replaced by Renewable Power Plants (RPP) or Nuclear Power Plants (NPP). The most promising is the conversion of CPP to NPP (C2N) using nuclear technologies a
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Lanshina, T. A., V. I. Slivyak, and S. V. Strelkova. "Russian electric power industry until 2035: On the way to full transition to renewable energy sources." Journal of the New Economic Association 56, no. 4 (2022): 223–29. http://dx.doi.org/10.31737/2221-2264-2022-56-4-14.

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This study presents two scenarios for the development of the Russian electric power industry for the period up to 2035 — the baseline and the energy transition scenario. The baseline scenario assumes that in the next 15 years the country will implement the policy envisaged by the key energy strategic documents. In the baseline scenario, the share of wind and solar generation will increase slightly — from 0.3% in 2020 to 2.2% in 2035, which will be signifi cantly lower than in the vast majority of the world major economies. The energy transition scenario assumes the abandonment of the construct
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Vardelle, Armelle. "Thermal Spray Coatings for Nuclear Plants." AM&P Technical Articles 174, no. 4 (2016): 46–47. http://dx.doi.org/10.31399/asm.amp.2016-04.p046.

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Wei, Xin Yu, Guo Liang Wei, and Xiao Wei Xiong. "Effects of Thermal Discharge from Nuclear Power Plant on Phytoplankton." Advanced Materials Research 986-987 (July 2014): 738–41. http://dx.doi.org/10.4028/www.scientific.net/amr.986-987.738.

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Elevated water temperatures are the major threats from thermal discharges of coastal power plants. The effects of thermal discharge from power plant on phytoplankton were reviewed. With increasing amount of nuclear power plants in China, The effects of thermal discharge from a nuclear power plant on phytoplankton were investigated. Several results and suggestions were proposed.
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Egorov, Alexandr, and Rashid Aminov. "Comparative assessment of system efficiency of hydrogen and thermal storage at NPPs." Energy Safety and Energy Economy 1 (February 2022): 25–31. http://dx.doi.org/10.18635/2071-2219-2022-1-25-31.

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The paper presents a comparative assessment of system efficiency of the novel approach to further development of nuclear power plants as an environmentally friendly energy source. A hydrogen-thermal storage system has been proposed to ensure a high capacity factor of nuclear power plants and/or controllability of two-circuit nuclear power plants with water coolant. Pumped storage power plants and gas turbine-based solutions have been ere compared. Important technical and economic indicators have been determined considering current nuclear and hydrocarbon fuel prices. The assessment performed s
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Moray, Neville, John Lee, Kim J. Vicente, Barclay G. Jones, and Jens Rasmussen. "A Direct Perception Interface for Nuclear Power Plants." Proceedings of the Human Factors and Ergonomics Society Annual Meeting 38, no. 9 (1994): 481–85. http://dx.doi.org/10.1177/154193129403800905.

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Following the suggestions of Beltracchi (1987) a direct perception interface for the thermal hydraulic systems of a pressurized water nuclear power reactor (PWR) was developed. It presents operators with an animated graphic of the Rankine heat cycle describing the functional relations of steam generation in a PWR. The ability of students of thermal and nuclear systems to recall system states, and detect and diagnose nine transients was compared to that of experienced nuclear power plant operators. The results were compared to a display representing traditional analog meters. The direct percept
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Fan, Kuang-Lung. "The Thermal Discharges From Nuclear Power Plants in Taiwan." Chemistry and Ecology 6, no. 1-4 (1992): 213–24. http://dx.doi.org/10.1080/02757549208035273.

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Balat, Mustafa, Havva Balat, and Neslihan Acici. "Thermal-Electricity Power Plants in Turkey." Energy Exploration & Exploitation 22, no. 5 (2004): 367–76. http://dx.doi.org/10.1260/0144598043026437.

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Lebedev, Vladimir, and Andrey Deev. "Heat Storage as a Way to Increase Energy Efficiency and Flexibility of NPP in Isolated Power System." Applied Sciences 13, no. 24 (2023): 13130. http://dx.doi.org/10.3390/app132413130.

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This paper considers a thermal accumulator using phase transition materials as a way to increase the energy efficiency and maneuverability of nuclear power plants. A low-power nuclear power plant is the object of this study. Such nuclear power plants have a great potential for widespread implementation as sources of thermal and electrical energy for facilities of mineral and raw material as well as fuel and energy complexes located in distant regions. The main principles of development of low-power nuclear power plants are revealed. So, in the development of low-power nuclear power plants, exp
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Dissertations / Theses on the topic "Thermal power plants and nuclear power plants"

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Edwards, Jacob N. "Thermal energy storage for nuclear power applications." Thesis, Kansas State University, 2017. http://hdl.handle.net/2097/36238.

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Master of Science<br>Department of Mechanical and Nuclear Engineering<br>Hitesh Bindra<br>Storing excess thermal energy in a storage media that can later be extracted during peak-load times is one of the better economical options for nuclear power in future. Thermal energy storage integration with light water-cooled and advanced nuclear power plants is analyzed to assess technical feasibility of different storage media options. Various choices are considered in this study; molten salts, synthetic heat transfer fluids, and packed beds of solid rocks or ceramics. In-depth quantitative assessment
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Rader, Jordan D. "Loss of normal feedwater ATWS for Vogtle Electric Generating Plant using RETRAN-02." Thesis, Atlanta, Ga. : Georgia Institute of Technology, 2009. http://hdl.handle.net/1853/31741.

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Thesis (M. S.)--Nuclear Engineering, Georgia Institute of Technology, 2010.<br>Committee Chair: Abdel-Khalik, Said I.; Committee Member: Ghiaasiaan, S. Mostafa; Committee Member: Hertel, Nolan E. Part of the SMARTech Electronic Thesis and Dissertation Collection.
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Dawson, Karen Margaret. "Advanced thermal hydraulic simulations for human reliability assessment of nuclear power plants." Thesis, Massachusetts Institute of Technology, 2017. http://hdl.handle.net/1721.1/112392.

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Thesis: S.M., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering, 2017.<br>This electronic version was submitted by the student author. The certified thesis is available in the Institute Archives and Special Collections.<br>Cataloged from student-submitted PDF version of thesis.<br>Includes bibliographical references (pages 101-102).<br>Human Risk Assessment (HRA) in the nuclear power industry has advanced in the last two decades. However, there is a lack of understanding of the magnitude of the effect of thermal hydraulic (TH) uncertainties upon the failure
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Otgonbaatar, Uuganbayar. "Methodology for characterization of representativeness uncertainty in performance indicator measurements of thermal and nuclear power plants." Thesis, Massachusetts Institute of Technology, 2016. http://hdl.handle.net/1721.1/107279.

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Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering, 2016.<br>This electronic version was submitted by the student author. The certified thesis is available in the Institute Archives and Special Collections.<br>Cataloged from student-submitted PDF version of thesis.<br>Includes bibliographical references (pages 327-331).<br>In this thesis, a general Methodology framework to characterize, assess and quantify the representativeness uncertainty in performance indicator measurements in thermal and nuclear plants is presented. The representativeness
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SAMPAIO, REGINA AUGUSTA CAMPOS. "AN ALTERNATIVE METHODOLOGY FOR THE SEISMIC STRUCTURAL ANALYSIS OF THERMO-NUCLEAR POWER PLANTS." PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO, 1999. http://www.maxwell.vrac.puc-rio.br/Busca_etds.php?strSecao=resultado&nrSeq=1265@1.

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CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO<br>Enfoca-se a análise sísmica de usinas termonucleares sob metodologia no domínio da frequência utilizando-se como modelo, o do prédio do reator da usina Angra 3 e como principal ferramenta o programa de análise de problemas com interação solo-estrutura, SASSI. São avaliadas alternativas para três fases distintas do projeto: geração de sismos artificiais, análise do sistema principal e desenvolvimento de espectros para análise do sistema secundário. Na geração de sismos artificiais, a introdução de critérios de compatibili
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Шевченко, Валентина Владимировна, Алла Викторовна Дон та Татьяна Геннадиевна Кононова. "Проблемы современной электроэнергетики, пути ее развития и оценка источников электроэнергии". Thesis, Accent Graphics Communications & Publishing, Canada, 2019. http://repository.kpi.kharkov.ua/handle/KhPI-Press/46945.

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Sumner, Tyler Scott. "A safety and dynamics analysis of the subcritical advanced burner reactor: SABR." Thesis, Atlanta, Ga. : Georgia Institute of Technology, 2008. http://hdl.handle.net/1853/24636.

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Oliveira, Heloisa Maria Santos. "Avaliação numérica do comportamento à fratura de um protótipo de vaso de pressão de reator PWR submetido a choque térmico pressurizado." CNEN - Centro de Desenvolvimento da Tecnologia Nuclear, Belo Horizonte, 2005. http://www.bdtd.cdtn.br//tde_busca/arquivo.php?codArquivo=41.

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Nenhuma<br>No circuito primário de uma usina nuclear do tipo PWR (Pressurized Water Reactor), o refrigerante do reator é mantido a uma temperatura interna por volta de 300 C e pressão interna da ordem de 15,0 MPa, durante operação normal. O Vaso de Pressão do Reator (VPR) contém os elementos combustíveis e é considerado o componente mais importante do circuito primário. A integridade do VPR deve ser assegurada durante toda a vida útil da usina, de forma a proteger os trabalhadores da usina e o público em geral dos danos decorrentes da liberação de material radioativo.Uma das condições de carre
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Pyy, Pekka. "Human reliability analysis methods for probabilistic safety assessment /." Espoo [Finland] : Technical Research Centre of Finland, 2000. http://www.vtt.fi/inf/pdf/publications/2000/P422.pdf.

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Cottam, P. J. "Innovation in solar thermal chimney power plants." Thesis, University College London (University of London), 2018. http://discovery.ucl.ac.uk/10045417/.

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This thesis analyses novel technology for renewable electricity generation: the solar thermal chimney (STC) power plant and the suspended chimney (SC) as a plant component. The STC consists of a solar collector, a tall chimney located at the centre of the collector, and turbines and generators at the base of the chimney. Air heated in the collector rises up the chimney under buoyancy and generates power in the turbines. STCs have the potential to generate large amounts of power, but research is required to improve their economic viability. A state-of-the-art STC model was developed, focussing
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Books on the topic "Thermal power plants and nuclear power plants"

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Skupinski, E. Safety of Thermal Water Reactors: Proceedings of a Seminar on the Results of the European Communities' Indirect Action Research Programme on Safety of Thermal Water Reactors, Held in Brussels, 1-3 October 1984. Springer Netherlands, 1985.

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Hämäläinen, A. Applying thermal hydraulics modeling in coupled processes of nuclear power plants. VTT Technical Research Centre of Finland, 2005.

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A, Kudrick J., and U.S. Nuclear Regulatory Commission. Division of Systems Safety and Analysis, eds. Evaluation of AP600 containment thermal-hydraulic performance. Division of Systems Safety and Analysis, Office of Nuclear Reactor Regulation, U.S. Nuclear Regulatory Commission, 1998.

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A, Kudrick J., and U.S. Nuclear Regulatory Commission. Division of Systems Safety and Analysis., eds. Evaluation of AP600 containment thermal-hydraulic performance. Division of Systems Safety and Analysis, Office of Nuclear Reactor Regulation, U.S. Nuclear Regulatory Commission, 1998.

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A, Kudrick J., and U.S. Nuclear Regulatory Commission. Division of Systems Safety and Analysis., eds. Evaluation of AP600 containment thermal-hydraulic performance. Division of Systems Safety and Analysis, Office of Nuclear Reactor Regulation, U.S. Nuclear Regulatory Commission, 1998.

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Rimkevicius, S. Modelling of thermal hydraulic transient processes in nuclear power plants: Ignalina compartments. Begell House, 2007.

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Drizhi͡us, M. R. Gidrotermicheskiĭ rezhim vodokhranilishch-okhladiteleĭ. Mokslas, 1985.

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U.S. Nuclear Regulatory Commission. Division of Systems Analysis and Regulatory Effectiveness., ed. Software quality assurance procedures for NRC thermal hydraulic codes. U.S. Nuclear Regulatory Commission, 2000.

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U.S. Nuclear Regulatory Commission. Division of Systems Analysis and Regulatory Effectiveness, ed. Software quality assurance procedures for NRC thermal hydraulic codes. U.S. Nuclear Regulatory Commission, 2000.

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U.S. Nuclear Regulatory Commission. Division of Systems Analysis and Regulatory Effectiveness., ed. Software quality assurance procedures for NRC thermal hydraulic codes. U.S. Nuclear Regulatory Commission, 2000.

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Book chapters on the topic "Thermal power plants and nuclear power plants"

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Zohuri, Bahman, and Nima Fathi. "Nuclear Power Plants." In Thermal-Hydraulic Analysis of Nuclear Reactors. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-17434-1_19.

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Zohuri, Bahman. "Nuclear Power Plants." In Thermal-Hydraulic Analysis of Nuclear Reactors. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-53829-7_20.

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Masterson, Robert E. "Natural Convection in Nuclear Power Plants." In Nuclear Reactor Thermal Hydraulics. CRC Press, 2019. http://dx.doi.org/10.1201/b22067-22.

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Masterson, Robert E. "Single-Phase Flow in Nuclear Power Plants." In Nuclear Reactor Thermal Hydraulics. CRC Press, 2019. http://dx.doi.org/10.1201/b22067-16.

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Masterson, Robert E. "Thermal Energy Production in Nuclear Power Plants." In Nuclear Reactor Thermal Hydraulics. CRC Press, 2019. http://dx.doi.org/10.1201/b22067-5.

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Masterson, Robert E. "Fundamentals of Two-Phase Flow in Nuclear Power Plants." In Nuclear Reactor Thermal Hydraulics. CRC Press, 2019. http://dx.doi.org/10.1201/b22067-23.

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Masterson, Robert E. "Fundamentals of Single-Phase Heat Transfer in Nuclear Power Plants." In Nuclear Reactor Thermal Hydraulics. CRC Press, 2019. http://dx.doi.org/10.1201/b22067-20.

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Shang, Chao-hao, You-sen Hu, Yuan-xiong Guo, Chang-ying Li, and Jun Chen. "The Main Reason of SG Thermal Power Imbalance Between Each Loop in CPR1000 Nuclear Power Plants." In Springer Proceedings in Physics. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-1023-6_22.

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AbstractThe SG thermal power imbalance between each loop exists in some CPR1000 nuclear power plants. In this paper, the authors trying to figure out the chief reasons of SG power imbalance between each loop by analyzing the measurement data from the Nuclear Power Plants. The main thermal parameters from the nuclear power plants are analyzed. By analyzing factors affecting the SG thermal power, the main factors affecting the SG thermal power are loop flowrate and hot leg temperature. The loop flowrate depends on the pump characteristic curve and the loop resistance coefficient. The hot leg tem
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Verma, Ajit Kumar, Srividya Ajit, and Hari Prasad Muruva. "Risk Management of Nuclear and Thermal Power Plants." In Risk Management of Non-Renewable Energy Systems. Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-16062-7_7.

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Zohuri, Bahman, and Patrick McDaniel. "Heat Transport System Thermal Hydraulics." In Combined Cycle Driven Efficiency for Next Generation Nuclear Power Plants. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-70551-4_4.

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Conference papers on the topic "Thermal power plants and nuclear power plants"

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Ivory, Jackson, Andrew Larsen, and Matthew Memmott. "Thermal Hydraulic Modeling of Molten Salt Microreactor Using RELAP5-3D." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44162.

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Hollrah, Brent, Ling Zou, and Rui Hu. "Primary System Thermal Hydraulic Analysis Methodology for the HC-HTGR." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44252.

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Lantgios, Iza, Logan Williams, and Daniel Mikkelson. "Assessment of the Thermal Extraction Capabilities of the HYBRID Modelica Models." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44245.

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Garcia, Samuel, Samuel Bays, and Ben Lindley. "Generic Sodium-Potassium-Cooled Thermal Microreactor Reference Design with Sizing-Burnup Tradeoff Study." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44230.

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Seo, Joong, Young Jo, Sung Kwon, and Eung Kim. "Preliminary Analysis on Thermal-Hydraulic Behavior of PBR Cores Using DEM-CFD Coupled Method." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44209.

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Kohler, Lauren, Darius Lisowski, and Alexander Heifetz. "Global Sensitivity Analysis of Distributed Fiber Optic Temperature Measurements in a Thermal Hydraulic System." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44174.

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Celik, Faruk, and In Bang. "Helium Gap Effects on Thermal Performance of Heat Pipe and Axial Flow Type Heat Exchanger." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44203.

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Moreno, M. A., N. A. Meehan, C. M. Perfetti, and N. R. Brown. "Comparison of Experimental Data with Thermal-Hydraulic Codes RELAP5-3D and TRACE for Power Transient Flow Boiling Scenarios." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44207.

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Che, Shuai, Adam Burak, and Xiaodong Sun. "Design and Thermal-Structural Analysis of a Supporting Structure for a Molten Salt Pump Shaft Seal Test Facility." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44267.

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Qin, Sunming, Zachary Welker, Robert Kile, and Gerhard Strydom. "Development of Data Reporting Standards for High-Temperature Gas-Cooled Reactor (HTGR) Nuclear Energy University Program (NEUP) Thermal-Fluid Experiments." In 2024 International Congress on Advances in Nuclear Power Plants (ICAPP). American Nuclear Society, 2024. http://dx.doi.org/10.13182/t130-44048.

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Reports on the topic "Thermal power plants and nuclear power plants"

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Determan, J. C., and C. E. Hendrix. Survey of thermal-hydraulic models of commercial nuclear power plants. Office of Scientific and Technical Information (OSTI), 1992. http://dx.doi.org/10.2172/6983550.

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Determan, J. C., and C. E. Hendrix. Survey of thermal-hydraulic models of commercial nuclear power plants. Office of Scientific and Technical Information (OSTI), 1992. http://dx.doi.org/10.2172/10128992.

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Knighton, Lane, Amey Shigrekar, Daniel Wendt, and Brian Murphy. Markets and Economics for Thermal Power Extraction from Nuclear Power Plants aiding the Decarbonization of Industrial Processes. Office of Scientific and Technical Information (OSTI), 2020. http://dx.doi.org/10.2172/1692372.

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Hayat, Muhammad Adnan, Shahid Hasan, and Amro Elshurafa. Strategic Priorities and Cost Considerations for Decarbonizing Electricity Generation Using CCS and Nuclear Energy. King Abdullah Petroleum Studies and Research Center, 2024. http://dx.doi.org/10.30573/ks--2024-dp27.

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This paper investigates the economics of deploying carbon capture and storage (CCS) on gas-fired power plants while covering its entire value chain, i.e., carbon capture, transport, and storage, and conducting a thorough sensitivity scenario analysis. Our analysis shows that adopting CCS translates into a carbon dioxide (CO2) capture cost ranging from $86 to $130 per tonne ($/tonne) for newly built and retrofit plants, depending on the natural gas price. The latter was found to be a significant parameter impacting costs. Transport and storage will result in an additional ~$24/tonne to the over
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Bailey, Jed. Inter-Fuel Competition in Electricity Generation. Inter-American Development Bank, 2012. http://dx.doi.org/10.18235/0009094.

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This study compares the levelized cost of electricity generated with fossil fuels (including coal, natural gas, fuel oil, and diesel) and renewable or carbon-free energy sources (including hydro, wind, solar, nuclear and geothermal). A meta-study of power generation technology capital costs determined the range of capital costs across the various technologies as well as the range of cost estimates for each individual technology from the various data sources that were examined. Applying these capital costs to a range of operating assumption (such as fuel price and plant utilization rate) result
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Griffith, George. Transitioning Coal Power Plants to Nuclear Power. Office of Scientific and Technical Information (OSTI), 2021. http://dx.doi.org/10.2172/1843924.

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Hudson, C. R., and V. S. White. Owners of nuclear power plants. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/402403.

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Reid, R. L. Owners of Nuclear Power Plants. Office of Scientific and Technical Information (OSTI), 2000. http://dx.doi.org/10.2172/814079.

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Skiba, James M., and Carolynn P. Scherer. Nuclear Security for Floating Nuclear Power Plants. Office of Scientific and Technical Information (OSTI), 2015. http://dx.doi.org/10.2172/1223744.

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Basher, H. Autonomous Control of Nuclear Power Plants. Office of Scientific and Technical Information (OSTI), 2003. http://dx.doi.org/10.2172/885601.

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