Academic literature on the topic 'Compression flows'
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Journal articles on the topic "Compression flows"
Ananin, S. I. "Structure of hydrogen compression plasma flows in a magnetoplasma compressor." Journal of Applied Mechanics and Technical Physics 32, no. 4 (1992): 465–71. http://dx.doi.org/10.1007/bf00851542.
Full textChen, Hao, Hui-Jun Tan, Qi-Fan Zhang, and Yue Zhang. "Buzz Flows in an External-Compression Inlet with Partially Isentropic Compression." AIAA Journal 55, no. 12 (December 2017): 4286–95. http://dx.doi.org/10.2514/1.j056066.
Full textHo, Yung-Han, Chih-Chun Chan, Wen-Hsiao Peng, Hsueh-Ming Hang, and Marek Domanski. "ANFIC: Image Compression Using Augmented Normalizing Flows." IEEE Open Journal of Circuits and Systems 2 (2021): 613–26. http://dx.doi.org/10.1109/ojcas.2021.3123201.
Full textRudy, David H., James L. Thomas, Ajay Kumar, Peter A. Gnoffo, and Sukumar R. Chakravarthy. "Computation of laminar hypersonic compression-corner flows." AIAA Journal 29, no. 7 (July 1991): 1108–13. http://dx.doi.org/10.2514/3.10710.
Full textAstashynski, V. M., E. A. Kostyukevich, A. M. Kuzmitski, A. A. Mishchuk, and P. N. Shoronov. "Interaction between oppositely directed compression plasma flows." Journal of Applied Spectroscopy 79, no. 4 (September 2012): 610–15. http://dx.doi.org/10.1007/s10812-012-9647-6.
Full textTang, Chuanbo, Xihua Sheng, Zhuoyuan Li, Haotian Zhang, Li Li, and Dong Liu. "Offline and Online Optical Flow Enhancement for Deep Video Compression." Proceedings of the AAAI Conference on Artificial Intelligence 38, no. 6 (March 24, 2024): 5118–26. http://dx.doi.org/10.1609/aaai.v38i6.28317.
Full textKang, Hyun-Su, Sung-Yeon Kim, and Youn-Jea Kim. "Wet Compression Study for an Aero-Thermodynamic Performance Analysis of a Centrifugal Compressor at Design and Off-Design Points." Processes 10, no. 5 (May 9, 2022): 936. http://dx.doi.org/10.3390/pr10050936.
Full textNeuschwander, T. B., B. R. Macias, A. R. Hargens, and Q. Zhang. "Mild External Compression of the Leg Increases Skin and Muscle Microvascular Blood Flow and Muscle Oxygenation during Simulated Venous Hypertension." ISRN Vascular Medicine 2012 (December 10, 2012): 1–6. http://dx.doi.org/10.5402/2012/930913.
Full textLea, C. J., and A. P. Watkins. "Differential stress modelling of turbulent flows in model reciprocating engines." Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 211, no. 1 (January 1, 1997): 59–77. http://dx.doi.org/10.1243/0954407971526227.
Full textGenbach, A. A., and D. Y. Bondartsev. "An Analysis of Heat Exchange Crisis in the Capillary Porous System for Cooling Parts of Heat and Power Units." Proceedings of Higher Educational Institutions. Маchine Building, no. 12 (717) (December 2019): 21–35. http://dx.doi.org/10.18698/0536-1044-2019-12-21-35.
Full textDissertations / Theses on the topic "Compression flows"
Petukhou, Yu A., V. V. Uglov, N. T. Kvasov, A. V. Punko, I. L. Doroshevich, V. M. Astashynski, and A. M. Kuzmitski. "Formation of silicon-based nanostructures by compression plasma flows." Thesis, Видавництво СумДУ, 2011. http://essuir.sumdu.edu.ua/handle/123456789/20860.
Full textSöder, Martin. "Numerical Investigation of Internal Combustion Engine Related Flows." Licentiate thesis, KTH, Strömningsfysik, 2013. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-124237.
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Aziz, Saduman. "Perfect Gas Navier-stokes Solutions Of Hypersonic Boundary Layer And Compression Corner Flows." Phd thesis, METU, 2005. http://etd.lib.metu.edu.tr/upload/12606661/index.pdf.
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Zidi, Koceila. "Écoulement d'une suspension de particules en compression." Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPAST197.
Full textThe study of particle suspensions is crucial due to their omnipresence in various industrial and natural domains. Understanding their behavior enables us to improve processes such as the manufacture of composite materials, water treatment and the study of sediments and soils. Over the past two decades, the rheology of particle suspensions has been extensively studied in simple shear flows. Experiments have shown that the effective viscosity of an isodense, non-Brownian suspension increases with the particle volume fraction. The question posed in my thesis is whether rheological laws can be used to describe the behavior of particle suspensions in more complex configurations such as compression flows. We have experimentally investigated the behavior of suspensions in two compression flow configurations. In the first configuration, the suspension is compressed between a moving disk approaching a vertical wall at an imposed velocity. Local pressure measurements were carried out, varying the volume fraction of the suspension and the compression velocity. A theoretical framework was established, enabling the radial pressure difference in the compression flow to be related to the effective viscosity of the suspension, and thus measured indirectly. We have shown that the effective viscosity deduced by this approach in compression flow is identical to that measured in a conventional simple shear configuration. In the second configuration, the suspension is compressed between a sphere sedimenting under its own weight towards a horizontal wall. Sedimentation velocity measurements of the sphere were carried out. The influence of suspension parameters, such as particle diameter and concentration, as well as geometric parameters, such as sphere radius and reservoir width, was investigated. In the region far from the wall, the fundamental principle of dynamics enabled us to predict the sedimentation velocity of the sphere and deduce the effective viscosity of the suspension, which corresponds to that of simple shear. We have shown that the suspension behaves like an effective Newtonian fluid. The approach dynamics of the sphere in the suspension deviate from those it would have in a Newtonian fluid. Close to the wall, lubrication theory is applied. This theory predicts that the sedimentation velocity of the sphere evolves linearly with distance from the horizontal wall, with zero velocity at contact with the wall. In the case of suspension, the sedimentation velocity of the sphere evolves non-linearly with distance from the wall. We also measured a non-zero impact velocity of the sphere with the wall. We have proposed an empirical relationship for the approach velocity that allows all the experimental data to be grouped on a single curve across the entire range of parameters studied
Stapleton, Brian J. "An investigation of in-cylinder flows in a direct injection compression ignition engine using particle image velocimetry." Thesis, Loughborough University, 2005. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.529505.
Full textSöder, Martin. "Creation and destruction of in-cylinder flows : Large eddy simulations of the intake and the compression strokes." Doctoral thesis, KTH, Strömningsfysik, 2015. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-164889.
Full textQC 20150420
Legrand, Nicolas. "Numerical and modeling methods for multi-level large eddy simulations of turbulent flows in complex geometries." Thesis, Normandie, 2017. http://www.theses.fr/2017NORMIR16/document.
Full textLarge-Eddy Simulation (LES) has become a major tool for the analysis of highly turbulent flows in complex geometries. However, due to the steadily increase of computational resources, the amount of data generated by well-resolved numerical simulations is such that it has become very challenging to manage them with traditional data processing tools. In Computational Fluid Dynamics (CFD), this emerging problematic leads to the same "Big Data" challenges as in the computer science field. Some techniques have already been developed such as data partitioning and ordering or parallel processing but still remain insufficient for modern numerical simulations. Hence, the objective of this work is to propose new processing formalisms to circumvent the data volume issue for the future 2020 exa-scale computing objectives. To this aim, a massively parallel co-processing method, suited for complex geometries, was developed in order to extract large-scale features in turbulent flows. The principle of the method is to introduce a series of coarser nested grids to reduce the amount of data while keeping the large scales of interest. Data is transferred from one grid level to another using high-order filters and accurate interpolation techniques. This method enabled to apply modal decomposition techniques to a billion-cell LES of a 3D turbulent turbine blade, thus demonstrating its effectiveness. The capability of performing calculations on several embedded grid levels was then used to devise the multi-resolution LES (MR-LES). The aim of the method is to evaluate the modeling and numerical errors during an LES by conducting the same simulation on two different mesh resolutions, simultaneously. This error estimation is highly valuable as it allows to generate optimal grids through the building of an objective grid quality measure. MR-LES intents to limit the computational cost of the simulation while minimizing the sub-grid scale modeling errors. This novel framework was applied successfully to the simulation of a turbulent flow around a 3D cylinder
Beevers, A. "Transition Modelling for Axial Compressor Flows." Thesis, Cranfield University, 2008. http://hdl.handle.net/1826/3479.
Full textSouth, Andrew Hartmut. "Low-flow compressor performance." Thesis, University of Cambridge, 1997. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.627299.
Full textGabrielsson, Gustav. "Tissue Compression Flossing - A systematic review." Thesis, Linnéuniversitetet, Institutionen för idrottsvetenskap (ID), 2021. http://urn.kb.se/resolve?urn=urn:nbn:se:lnu:diva-104249.
Full textBooks on the topic "Compression flows"
H, Anderson Bernhard, Shaw Robert J. 1946-, and United States. National Aeronautics and Space Administration., eds. Numerical simulation of supersonic compression corners and hypersonic inlet flows using the RPLUS2D code. [Washington, DC]: National Aeronautics and Space Administration, 1994.
Find full textCenter, Ames Research, ed. Steady secondary flows generated by periodic compression and expansion of an ideal gas in a pulse tube. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1999.
Find full textB, Roebuck, and National Physical Laboratory (Great Britain), eds. Measuring flow stress in hot axisymmetric compression tests. Teddington: NPL, 1997.
Find full textNeuhoff, F. Modifications to the inlet flow field of a transonic compressor rotor. Monterey, Calif: Naval Postgraduate School, 1985.
Find full textStalker, R. J. Thermodynamics and wave processes in high Mach number propulsive ducts. Washington: AIAA, 1989.
Find full text1936-, Kawamura Takaichi, Bencze Daniel P, and Ames Research Center, eds. Calculation of external-internal flow fields for mixed-compression inlets. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1987.
Find full text1936-, Kawamura Takaichi, Bencze Daniel P, and Ames Research Center, eds. Calculation of external-internal flow fields for mixed-compression inlets. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1987.
Find full textCenter, Ames Research, ed. Computations of unsteady multistage compressor flows in a workstation environment. Moffett Field, Calif: National Aeronautics and Space Administration, Ames Research Center, 1992.
Find full textS, Prahst P., and United States. National Aeronautics and Space Administration., eds. Inlet flow test calibration for a small axial compressor facility. [Washington, DC]: National Aeronautics and Space Administration, 1994.
Find full textUnited States. National Aeronautics and Space Administration., ed. Blockage development in a transonic, axial compressor rotor. [Washington, D.C: National Aeronautics and Space Administration, 1997.
Find full textBook chapters on the topic "Compression flows"
Zeman, O., and G. N. Coleman. "Compressible Turbulence Subjected to Shear and Rapid Compression." In Turbulent Shear Flows 8, 283–96. Berlin, Heidelberg: Springer Berlin Heidelberg, 1993. http://dx.doi.org/10.1007/978-3-642-77674-8_20.
Full textLeyland, P. "2D Hypersonic Viscous Flow over Compression Ramps." In Hypersonic Flows for Reentry Problems, 407–20. Berlin, Heidelberg: Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-77922-0_39.
Full textHaase, Werner. "Computational Results for Flows Over Compression Ramps." In Hypersonic Flows for Reentry Problems, 268–84. Berlin, Heidelberg: Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-76527-8_23.
Full textLeyland, Pénélope, Roland Richter, and Tristan Neve. "High Speed Flows Over Compression Ramps." In Proceedings of the Ninth GAMM-Conference on Numerical Methods in Fluid Mechanics, 223–36. Wiesbaden: Vieweg+Teubner Verlag, 1992. http://dx.doi.org/10.1007/978-3-663-13974-4_22.
Full textHaase, Werner. "Viscous, Hypersonic Flows Over Compression Ramps." In Proceedings of the Eighth GAMM-Conference on Numerical Methods in Fluid Mechanics, 189–200. Wiesbaden: Vieweg+Teubner Verlag, 1990. http://dx.doi.org/10.1007/978-3-663-13975-1_20.
Full textCaughan, Frances Mc. "Dynamic Modelling of Axial Flow Compression Systems." In Instabilities and Turbulence in Engineering Flows, 151–71. Dordrecht: Springer Netherlands, 1993. http://dx.doi.org/10.1007/978-94-011-1743-2_8.
Full textAlsalihi, Zuheyr, and Herman Deconinck. "Viscous, 2-D, Laminar Hypersonic Flows Over Compression Ramps." In Hypersonic Flows for Reentry Problems, 152–66. Berlin, Heidelberg: Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-76527-8_15.
Full textColeman, G. N., and N. N. Mansour. "Simulation and Modeling of Homogeneous Compressible Turbulence Under Isotropic Mean Compression." In Turbulent Shear Flows 8, 269–82. Berlin, Heidelberg: Springer Berlin Heidelberg, 1993. http://dx.doi.org/10.1007/978-3-642-77674-8_19.
Full textSrinivas, K. "Computation of Hypersonic Flow Past a Compression Corner by a Spatial Marching Scheme." In Hypersonic Flows for Reentry Problems, 338–47. Berlin, Heidelberg: Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-77922-0_34.
Full textHo, Yung-Han, Chih-Peng Chang, Peng-Yu Chen, Alessandro Gnutti, and Wen-Hsiao Peng. "CANF-VC: Conditional Augmented Normalizing Flows for Video Compression." In Lecture Notes in Computer Science, 207–23. Cham: Springer Nature Switzerland, 2022. http://dx.doi.org/10.1007/978-3-031-19787-1_12.
Full textConference papers on the topic "Compression flows"
Ravindran, S. S. "Artificial Compression POD Reduced Order Model for Control of MHD Flows." In 2024 American Control Conference (ACC), 3302–7. IEEE, 2024. http://dx.doi.org/10.23919/acc60939.2024.10644402.
Full textWang, Jia, and Xiaolin Wu. "Information Flows in Video Coding." In 2010 Data Compression Conference. IEEE, 2010. http://dx.doi.org/10.1109/dcc.2010.21.
Full textZheng, Qun, Yan Shao, and Yinyong Zhang. "Numerical Simulation of Aerodynamic Performances of Wet Compression Compressor Cascade." In ASME Turbo Expo 2006: Power for Land, Sea, and Air. ASMEDC, 2006. http://dx.doi.org/10.1115/gt2006-91125.
Full textCHAMPNEY, J. "Modeling of turbulence for compression corner flows and internal flows." In 25th Joint Propulsion Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1989. http://dx.doi.org/10.2514/6.1989-2344.
Full textDogrusoz, Saduman, Mehmet Kavsaoglu, and Unver Kaynak. "Numerical solution of hypersonic compression corner flows." In 10th AIAA/NAL-NASDA-ISAS International Space Planes and Hypersonic Systems and Technologies Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 2001. http://dx.doi.org/10.2514/6.2001-1750.
Full textSardari, Mohsen, Ahmad Beirami, and Faramarz Fekri. "Memory-assisted universal compression of network flows." In IEEE INFOCOM 2012 - IEEE Conference on Computer Communications. IEEE, 2012. http://dx.doi.org/10.1109/infcom.2012.6195842.
Full textGerin-Roze, J., Mark Elert, Michael D. Furnish, Ricky Chau, Neil Holmes, and Jeffrey Nguyen. "SELF-SIMILAR COMPRESSION FLOWS IN SPHERICAL GEOMETRY." In SHOCK COMPRESSION OF CONDENSED MATTER - 2007: Proceedings of the Conference of the American Physical Society Topical Group on Shock Compression of Condensed Matter. AIP, 2008. http://dx.doi.org/10.1063/1.2832992.
Full textWindsheimer, Marc, Fabian Brand, and André Kaup. "Multiscale Augmented Normalizing Flows for Image Compression." In ICASSP 2024 - 2024 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP). IEEE, 2024. http://dx.doi.org/10.1109/icassp48485.2024.10446147.
Full textHeuzé, Olivier, Mark Elert, Michael D. Furnish, William W. Anderson, William G. Proud, and William T. Butler. "ANALYTICAL SOLUTION FOR ISENTROPIC FLOWS IN SOLIDS." In SHOCK COMPRESSION OF CONDENSED MATTER 2009: Proceedings of the American Physical Society Topical Group on Shock Compression of Condensed Matter. AIP, 2009. http://dx.doi.org/10.1063/1.3295139.
Full textSun, Lanxin, Yijin Li, Qun Zheng, and Rakesh Bhargava. "The Effects of Wet Compression on the Separated Flow in a Compressor Stage." In ASME Turbo Expo 2008: Power for Land, Sea, and Air. ASMEDC, 2008. http://dx.doi.org/10.1115/gt2008-50920.
Full textReports on the topic "Compression flows"
Hawley and Thorson. PR-015-13606-R01 Ultrasonic Meter Performance in Liquid Transients. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), June 2014. http://dx.doi.org/10.55274/r0010846.
Full textGeorge and Hawley. PR-015-12600-R01 Ability of Ultrasonic Meters to Measure Accurately in Compressor-Induced Pulsating Flows. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), November 2013. http://dx.doi.org/10.55274/r0010808.
Full textCar, David, and Steven L. Puterbaugh. Fluid Mechanics of Compression System Flow Control. Fort Belvoir, VA: Defense Technical Information Center, July 2005. http://dx.doi.org/10.21236/ada444617.
Full textLagus, P. L., and B. S. Flanagan. PR-197-723-R01 Compressor Flow Measurements. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), August 1988. http://dx.doi.org/10.55274/r0011964.
Full textGeorge. PR-015-13603-R01 Meter Station Design Procedures to Minimize Pipe Flow-Induced Pulsation Error. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), October 2013. http://dx.doi.org/10.55274/r0010099.
Full textAlexeenko, A. A., S. F. Gimelshein, E. P. Muntz, and Andrew Ketsdever. Modeling of Thermal Transpiration Flows for Knudsen Compressor Optimization. Fort Belvoir, VA: Defense Technical Information Center, January 2005. http://dx.doi.org/10.21236/ada433782.
Full textLagus, P. L., and R. A. Grot. PR-221-9215-R01 Manufacture Pre-Production Gas Flow Measurement System. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), December 1995. http://dx.doi.org/10.55274/r0011966.
Full textShiva, B. G. GMC-93-T03 Regenerative Heat Transfer in Reciprocating Compressors. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), November 1993. http://dx.doi.org/10.55274/r0011944.
Full textLi, Baisong, and Bo Xu. PR-469-19604-Z01 Auto Diagnostic Method Development for Ultrasonic Flow Meter. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), February 2022. http://dx.doi.org/10.55274/r0012204.
Full textLagus, P. L., B. S. Flanagan, and C. F. Gilbert. PR-197-911-R01 Development of Compressor Performance and Efficiency Evaluation. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), October 1990. http://dx.doi.org/10.55274/r0012073.
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