Academic literature on the topic 'Heat Fluid'

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Journal articles on the topic "Heat Fluid"

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Muhari, Muhammad. "PERENCANAAN PESAWAT ANGKAT CRAWLER CRANE DENGAN KAPASITAS ANGKAT 5,5 TON DAN TINGGI ANGKAT 25 M." JURNAL PERSEGI BULAT 1, no. 2 (2022): 27–37. http://dx.doi.org/10.36490/jurnalpersegibulat.v1i2.538.

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A heat exchanger is a device in which heat is transferred from a high-temperature fluid to a low-temperature fluid. Where the heat exchange that occurs in two types of different temperatures are not in contact, namely the heat transfer fields which are generally in the form of pipe walls or fins mounted on the pipe (fin) so that the two fluids will reach the same final temperature in the amount of heat. The displacement is estimated by equating the losses from the hotter fluid energy with obtaining a lower fluid energy, which is used for heat exchange in the form of the product itself, namely:
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Jumianto, Jumianto. "PERENCANAAN ALAT PENUKAR KALOR SHELL DAN TUBE PROSES PENYERAPAN RESIDU DAN PELEPASAN UAP DENGAN KAPASITAS 2.550.000 BTU/JAM." JURNAL PERSEGI BULAT 1, no. 2 (2022): 7–16. http://dx.doi.org/10.36490/jurnalpersegibulat.v1i2.470.

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A heat exchanger is a device in which heat is transferred from a high-temperature fluid to a low-temperature fluid. Where the heat exchange that occurs in two types of different temperatures are not in contact, namely the heat transfer fields which are generally in the form of pipe walls or fins mounted on the pipe (fin) so that the two fluids will reach the same final temperature in the amount of heat. The displacement is estimated by equating the losses from the hotter fluid energy with obtaining a lower fluid energy, which is used for heat exchange in the form of the product itself, namely:
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Shriram, Pathak, and Kaimkuriya Amit. "Heat Transfer Augmentation in Heat Exchanger using Nanofluid A Review." International Journal of Trend in Scientific Research and Development 2, no. 3 (2019): 1939–44. https://doi.org/10.31142/ijtsrd11421.

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Due to the limitation of fossil fuels, shortage of energy, optimization of energy consumption in various industrial processes becomes very important and challenging issue all over the world. A reduction in energy consumption is possible by enhancing the performance of heat exchanger and it is one of the most important devices related to energy and heat transfer. Nano fluid is a new engineering fluid which could improve the performance of heat exchanger. Nano fluids have greater potential for heat transfer enhancement and highly suited to application in practical heat transfer processes. Heat e
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Nitheesh, Krishnan M. C* B. Suresh Kumar. "REVIEW ON SHELL AND TUBE HEAT EXCHANGER USING NANOFLUIDS." INTERNATIONAL JOURNAL OF ENGINEERING SCIENCES & RESEARCH TECHNOLOGY 6, no. 5 (2017): 236–39. https://doi.org/10.5281/zenodo.573648.

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Different types of heat exchangers are extensively used in various industries to transfer the heat between cold and hot fluids. The key role of the heat exchanger is to transfer heat at maximum rate .Shell and Tube heat exchangers are having special importance in boilers, oil coolers, condensers, pre-heaters. Shell and Tube heat exchanger is one such heat exchanger, provides more area for heat transfer between two fluids in comparison with other type of heat exchanger. To intensify heat transfer with minimum pumping power innovative heat transfer fluids called Nano fluids have become the major
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Muthusamy, P., and Palanisamy Senthil Kumar. "Waste Heat Recovery Using Matrix Heat Exchanger from the Exhaust of an Automobile Engine for Heating Car’s Passenger Cabin." Advanced Materials Research 984-985 (July 2014): 1132–37. http://dx.doi.org/10.4028/www.scientific.net/amr.984-985.1132.

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The main objective of our work is to analysis the heat transfer rate for various fluids with different matrix heat exchanger (MHE) models and flow characteristic in matrix heat exchanger by using computational fluid dynamics (CFD) package with small car. The amount of heat carried by the cold fluid from hot fluid is mainly depends upon the mass flow rate of the working fluid. The heat transfer area per unit volume of tube is more. So, it increases the temperature of the cold fluid. Here, the hot and cold fluids are moving in the alternate tubes of heat exchanger in the counter flow direction.
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Kumar, Rakesh. "Review: Observation on CFD Analysis of ZnO and TiO2 Nanofluid with Oil and Ethylene Glycol in Square and Helical Coil Heat Exchanger." International Journal for Research in Applied Science and Engineering Technology 9, no. 12 (2021): 503–7. http://dx.doi.org/10.22214/ijraset.2021.39301.

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Abstract: Helically coiled heat exchangers are globally used in various industrial applications for their high heat transfer performance and compact size. Nanofluids can provide the excellent thermal performance in helical coil heat exchangers. Research studies on heat transfer enhancement have gained serious momentum during recent years and have been proposed many techniques by different research groups [1]. A fluid with higher thermal conductivity has been developed to increase the efficiency of heat exchangers. The dispersion of 1-100nm sized solid nanoparticles in the traditional heat tran
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Walsh, Christian, Rana Ronak, Rathod Hiren, Patel Dhiraj, and Patel Atul. "A Case Study on Basic of Heat Exchanger." Research and Applications of Thermal Engineering 6, no. 3 (2023): 31–36. https://doi.org/10.5281/zenodo.10319184.

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<i>Equipment that exchanges or transfers heat energy for various uses is called a heat exchanger. Heat exchangers are&nbsp;essential&nbsp;in the&nbsp;industrial sector because they&nbsp;recover heat between two process fluids.&nbsp;The most&nbsp;popular&nbsp;heat transfer devices are&nbsp;plate heat&nbsp;exchangers,&nbsp;shell and tube heat&nbsp;exchangers,&nbsp;and concentric tube (double&nbsp;pipe).The&nbsp;study&nbsp;of&nbsp;fluid flow&nbsp;and heat conduction by computer numerical calculation and graphical display is&nbsp;known as&nbsp;computational fluid dynamics, or&nbsp;CFD. The&nbsp;fu
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Joshi, Nikheel. "Simulation and Analysis of Double Pipe Heat Exchanger." International Journal for Research in Applied Science and Engineering Technology 9, no. VI (2021): 2388–94. http://dx.doi.org/10.22214/ijraset.2021.35554.

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A heat exchanger is a engineering device used for efficient heat transfer from one fluid to another at different temperatures and thermal in contact. Thermal properties of fluids play a significant role in various cooling and heating uses. Traditional fluids are of low thermal conductivity, so researchers are tried to enhance thermal conductivity by adding nano-particles. The model of double pipe heat exchanger was develop by using ANSYS workbench. Al2O3 mixed with water as a base fluid for analyzed their performance in double pipe heat exchanger. Al2O3 is a excellent material for heat transfe
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Li, Qiang, Qingchao Li, Fuling Wang, Jingjuan Wu, Yanling Wang, and Jiafeng Jin. "Effects of Geological and Fluid Characteristics on the Injection Filtration of Hydraulic Fracturing Fluid in the Wellbores of Shale Reservoirs: Numerical Analysis and Mechanism Determination." Processes 13, no. 6 (2025): 1747. https://doi.org/10.3390/pr13061747.

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To mitigate the influence of wellbore heat transfer on the physicochemical properties of water-based fracturing fluids in the high-temperature environments of low-permeability shale reservoirs, this study investigates the fluid filtration behavior of water-based fracturing fluids within the wellbore under such reservoir conditions. A wellbore heat-transfer model based on solid–liquid coupling was constructed in order to analyse the effects of different reservoir and wellbore factors on fluid properties (viscosity and filtration volume) in the water-based fracturing fluids. Concurrently, bounda
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Om, Prakash, and Kumar Pankaj. "CFD Analysis for Heat Transfer Enhancement Using Nano Fluids in Double Pipe Heat Exchanger." International Journal of Trend in Scientific Research and Development 4, no. 2 (2020): 316–22. https://doi.org/10.5281/zenodo.3843188.

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This work includes the effect of different working fluid on the performance of heat exchanger. For analysing the effect of different working fluid, it considered air, water and different nanofluids and measure the Nusselt number and friction factor for each case. It also analysed the effect of change in Reynolds number on the performance of heat exchanger for different working fluids. For analysing the effect of change in Reynolds number, it considered four different Reynolds numbers that is 10000, 12000, 14000 and 16000. For performing the numerical analysis ANSYS fluent was used. Through num
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Dissertations / Theses on the topic "Heat Fluid"

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Illingworth, Justin Barrett. "Fluid-solid heat transfer coupling." Thesis, University of Sussex, 2006. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.430954.

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This thesis documents the application of a computer code developed by the author which makes possible the coupling of heat transfer between fluid and solid thermal models. The code was written using FORTRAN and couples the commercial computational fluid dynamics (CFD) software FLUENT with the Rolls-Royce finite element analysis program, SC03. The thermal modelling of a solid domain bounded by a fluid typically uses heat transfer correlations to define the heat flux at those boundaries. Considerable engineering judgement is required to appropriately select and apply these correlations, so that
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Mouslim, Abderrazzak. "Tests of Fluid-to-Fluid Scaling Laws for Supercritical Heat Transfer." Thesis, Université d'Ottawa / University of Ottawa, 2019. http://hdl.handle.net/10393/38912.

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A comparison of available fluid-to-fluid scaling laws for scaling convective heat transfer at supercritical pressures showed that the ones suggested by Zahlan, Groeneveld and Tavoularis (ZGT) have some advantages. The applicability of the ZGT laws was tested for pairs of fluids including carbon dioxide, water or Refrigerant R134a. The conditions of previous measurements taken in the Supercritical University of Ottawa Loop with CO2 flowing vertically upwards in an electrically heated tube with 8 mm ID were scaled to equivalent conditions in R134a and new measurements of the heat transfer coeffi
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Giwa, Giwa Solomon Olanrewaju. "Investigation into thermal-fluid properties of hybrid ferrofluids as heat transfer fluids." Thesis, University of Pretoria, 2019. http://hdl.handle.net/2263/77818.

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Over two decades of extensive research on nanofluids have established them as a better cooling media than traditional fluids such as ethylene glycol (EG) and water. Recently, hybrid nanofluids have emerged as advanced thermal transport media with improved thermal and fluid properties relative to nanofluids. Experimentally, limited studies have been carried out on the thermo- and thermomagnetic convection heat transfer of nanofluids in cavities. However, there is a dearth of documentation on the thermo- and thermomagnetic convection of hybrid nanofluids in cavities in the public domain. In this
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Mala, Gh Mohiuddin. "Heat transfer and fluid flow in microchannels." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 1999. http://www.collectionscanada.ca/obj/s4/f2/dsk1/tape8/PQDD_0005/NQ39562.pdf.

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Engström, Olle. "Optimization of fluid-based heat-recovery systems." Thesis, KTH, Hållbara byggnader, 2019. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-257876.

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This report aims to investigate how fluid-based heat-recovery systems for ventilation can be optimized. A high proportion of existing systems operate at lower efficiency than possible, and thus do not reach their full potential in terms of energy savings. The aim of this report has been to find out why, to identify which parameters affect the efficiency of such systems, and to develop a general methodology for optimization. As a method for execution, a literature study and field experiments were chosen. The results from the literature study showed that dimensioned efficiency, fluid flow in the
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Fryer, P. J. "Modelling heat exchanger fouling." Thesis, University of Cambridge, 1985. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.377221.

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Prabhanjan, Devanahalli G. "Influence of coil characteristics on heat transfer to Newtonian fluids." Thesis, McGill University, 2000. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=36910.

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A water bath thermal Processor was designed and built to study the influence of helical coil characteristics on heat transfer to Newtonian fluids like water and base oil with three different viscosities. The system consisted of a thermally insulated water bath, an electric heater, pump to re-circulate water in the bath and for pumping the processing fluid through the coil, copper helical coils and a storage tank for the processing fluid.<br>Comparative study has shown that the outer and total heat transfer coefficients were significantly lower in natural than in forced convection water bath. H
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Beale, Steven Brydon. "Fluid flow and heat transfer in tube banks." Thesis, Imperial College London, 1992. http://hdl.handle.net/10044/1/8103.

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Tian, Jing. "Fluid flow and heat transfer in woven textiles." Thesis, University of Cambridge, 2005. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.615243.

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Kuan, Wai Keat. "Experimental study of flow boiling heat transfer and critical heat flux in microchannels /." Link to online version, 2006. https://ritdml.rit.edu/dspace/handle/1850/1887.

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Books on the topic "Heat Fluid"

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Lidia, Palese, ed. Stability criteria for fluid flows. World Scientific, 2009.

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Zhukauskas, A. A. Heat transfer in turbulent fluid flows. Edited by Shlanchi͡a︡uskas A and Karni J. Hemisphere Pub. Corp., 1987.

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Kraus, Allan D. Introduction to thermal and fluid engineering. Taylor & Francis, 2010.

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1947-, Garg Vijay K., ed. Applied computational fluid dynamics. Marcel Dekker, 1998.

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1936-, Anderson Dale A., and Pletcher Richard H, eds. Computational fluid mechanics and heat transfer. 2nd ed. Taylor & Francis, 1997.

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Anderson, Dale A., John C. Tannehill, Richard H. Pletcher, Munipalli Ramakanth, and Vijaya Shankar. Computational Fluid Mechanics and Heat Transfer. CRC Press, 2020. http://dx.doi.org/10.1201/9781351124027.

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Srinivasacharya, D., and K. Srinivas Reddy, eds. Numerical Heat Transfer and Fluid Flow. Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-1903-7.

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Awasthi, Mukesh Kumar, Ashwani Kumar, Nitesh Dutt, and Satyvir Singh. Computational Fluid Flow and Heat Transfer. CRC Press, 2024. http://dx.doi.org/10.1201/9781003465171.

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Georgescu, Adelina. Stability criteria for fluid flows. World Scientific, 2009.

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Çengel, Yunus A. Fundamentals of thermal-fluid sciences. McGraw-Hill, 2001.

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Book chapters on the topic "Heat Fluid"

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Nandagopal, PE, Nuggenhalli S. "Heat Exchangers." In Fluid and Thermal Sciences. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-93940-3_12.

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Husain, Afzal, and Kwang-Yong Kim. "Microchannel Heat Sinking: Analysis and Optimization." In Fluid Machinery and Fluid Mechanics. Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-540-89749-1_25.

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Nandagopal, PE, Nuggenhalli S. "Radiation Heat Transfer." In Fluid and Thermal Sciences. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-93940-3_11.

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Nandagopal, PE, Nuggenhalli S. "Heat Transfer Principles." In Fluid and Thermal Sciences. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-93940-3_8.

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Nandagopal, PE, Nuggenhalli S. "Convection Heat Transfer." In Fluid and Thermal Sciences. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-93940-3_10.

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Nandagopal, PE, Nuggenhalli S. "Conduction Heat Transfer." In Fluid and Thermal Sciences. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-93940-3_9.

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Lecheler, Stefan. "Example Double Tube Heat Exchanger." In Computational Fluid Dynamics. Springer Fachmedien Wiesbaden, 2022. http://dx.doi.org/10.1007/978-3-658-38453-1_9.

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Sharma, Atul. "Computational Heat Conduction." In Introduction to Computational Fluid Dynamics. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-72884-7_5.

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Sharma, Atul. "Computational Heat Advection." In Introduction to Computational Fluid Dynamics. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-72884-7_6.

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Sharma, Atul. "Computational Heat Convection." In Introduction to Computational Fluid Dynamics. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-72884-7_7.

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Conference papers on the topic "Heat Fluid"

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He, Jundi, Junjie Yan, Wei Wang, and Shuisheng He. "DIRECT NUMERICAL SIMULATION STUDY FOR FLUID-TO-FLUID SCALING FOR FLUIDS AT SUPERCRITICAL PRESSURE." In International Heat Transfer Conference 16. Begellhouse, 2018. http://dx.doi.org/10.1615/ihtc16.cov.023265.

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CLARK, W. "Fluid to fluid contact heat exchanger." In 4th Thermophysics and Heat Transfer Conference. American Institute of Aeronautics and Astronautics, 1986. http://dx.doi.org/10.2514/6.1986-1367.

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Keey, R. B. "FLUID-FLUID HEAT TRANSFER IN A PACKED COLUMN." In International Heat Transfer Conference 3. Begellhouse, 2019. http://dx.doi.org/10.1615/ihtc3.730.

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Furuya, M. "Experiments and volume-of-fluid (VOF) simulations of a three-fluid dam-break." In HEAT TRANSFER 2014, edited by Y. Oka, M. Satoh, S. Lo, and T. Arai. WIT Press, 2014. http://dx.doi.org/10.2495/ht140321.

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Vradis, George C. "Heat Transfer and Fluid Mechanics of Herschel-Bulkley Fluids." In ASME 1998 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1998. http://dx.doi.org/10.1115/imece1998-0452.

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Abstract A comprehensive review of the heat transfer phenomena related to the flow of purely viscous non-Newtonian fluids exhibiting a yield stress in some simple and complex geometries is presented. Both attached and separated flows of Bingham and Herschel-Bulkley fluids are discussed. The presence of a yield-stress is shown to significantly impact the heat transfer and flow characteristics, as compared to those in the case of a Newtonian fluid, in particular in the cases where separation of the flow would be expected.
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Ishii, Mamoru, G. Kocamustafaogullari, and Isao Kataoka. "PRESSURE AND FLUID TO FLUID SCALING LAWS FOR TWO-PHASE FLOW LOOP." In International Heat Transfer Conference 8. Begellhouse, 1986. http://dx.doi.org/10.1615/ihtc8.4580.

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Kawaji, M. "Boiling heat transfer during quenching under microgravity." In Fluid Dynamics Conference. American Institute of Aeronautics and Astronautics, 1996. http://dx.doi.org/10.2514/6.1996-2072.

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Prakash, Y., and Divakar Shetty. "Mono fluid heat exchanger system." In EMERGING TRENDS IN MECHANICAL ENGINEERING 2018. Author(s), 2019. http://dx.doi.org/10.1063/1.5092913.

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Suzuki, Koichi, Yukari KOYAMA, and Hiroshi Kawamura. "BURNOUT HEAT FLUX IN MICROGRAVITY." In Microgravity Fluid Physics & Heat Transfer. Begellhouse, 2023. http://dx.doi.org/10.1615/mfpht-1999.170.

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Shajiee, Shervin, and Kamran Mohseni. "Experimentation on Digitized Heat Transfer." In 39th AIAA Fluid Dynamics Conference. American Institute of Aeronautics and Astronautics, 2009. http://dx.doi.org/10.2514/6.2009-3580.

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Reports on the topic "Heat Fluid"

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Rodriguez, Salvador. Computational Fluid Dynamics and Heat Transfer Modeling of a Dimpled Heat Exchanger. Office of Scientific and Technical Information (OSTI), 2022. http://dx.doi.org/10.2172/1893993.

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Perez-Blanco, H., M. R. Patterson, and J. Braunstein. Ideal fluid properties for optimizing absorption heat pump performance. Office of Scientific and Technical Information (OSTI), 1987. http://dx.doi.org/10.2172/6611058.

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Wang, Ting. Fluid Mechanics and Heat Transfer in the Transitional Boundary Layer. Defense Technical Information Center, 1998. http://dx.doi.org/10.21236/ada338920.

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Juric, D., G. Tryggvason, and J. Han. Direct numerical simulations of fluid flow, heat transfer and phase changes. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/463676.

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Blackwell, B. F., R. J. Cochran, R. E. Hogan, P. A. Sackinger, and P. R. Schunk. Moving/deforming mesh techniques for computational fluid dynamics and heat transfer. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/419077.

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Abadie, Marc O., Elizabeth U. Finlayson, and Ashok J. Gadgil. Infiltration heat recovery in building walls: Computational fluid dynamics investigations results. Office of Scientific and Technical Information (OSTI), 2002. http://dx.doi.org/10.2172/803859.

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McLinden, Mark O. Working fluid selection for space-based two-phase heat transport systems. National Bureau of Standards, 1988. http://dx.doi.org/10.6028/nbs.ir.88-3812.

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Xinguo, Li. Improving Water Loop Heat Pump Performance by Using Low Temperature Geothermal Fluid. Office of Scientific and Technical Information (OSTI), 1995. http://dx.doi.org/10.2172/895959.

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Pruess, K. TOUGH2: A general-purpose numerical simulator for multiphase fluid and heat flow. Office of Scientific and Technical Information (OSTI), 1991. http://dx.doi.org/10.2172/5212064.

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Moridis, G. J. TOUGH Simulations of the Updegraff's Set of Fluid and Heat Flow Problems. Edited by Pruess. Office of Scientific and Technical Information (OSTI), 1992. http://dx.doi.org/10.2172/974174.

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