Literatura científica selecionada sobre o tema "Continous blowing"
Crie uma referência precisa em APA, MLA, Chicago, Harvard, e outros estilos
Consulte a lista de atuais artigos, livros, teses, anais de congressos e outras fontes científicas relevantes para o tema "Continous blowing".
Ao lado de cada fonte na lista de referências, há um botão "Adicionar à bibliografia". Clique e geraremos automaticamente a citação bibliográfica do trabalho escolhido no estilo de citação de que você precisa: APA, MLA, Harvard, Chicago, Vancouver, etc.
Você também pode baixar o texto completo da publicação científica em formato .pdf e ler o resumo do trabalho online se estiver presente nos metadados.
Artigos de revistas sobre o assunto "Continous blowing"
McCulloch, John G. "The History of the Development of Melt Blowing Technology". International Nonwovens Journal os-8, n.º 1 (março de 1999): 1558925099OS—80. http://dx.doi.org/10.1177/1558925099os-800123.
Texto completo da fonteMargaris, P., e I. Gursul. "Wing tip vortex control using synthetic jets". Aeronautical Journal 110, n.º 1112 (outubro de 2006): 673–81. http://dx.doi.org/10.1017/s0001924000001536.
Texto completo da fonteYang, Chenghao, Elias J. G. Arcondoulis, Yannian Yang, Jing Guo, Reza Maryami, Chuanxing Bi e Yu Liu. "Active control of airfoil turbulent boundary layer noise with trailing-edge blowing". Journal of the Acoustical Society of America 153, n.º 4 (abril de 2023): 2115–30. http://dx.doi.org/10.1121/10.0017787.
Texto completo da fonteLi, Wenjie, Shibo Wang, Jianxin Xu, Jianhang Hu, Hua Wang, Yuling Zhai, Qingtai Xiao, Ge Deng e Dongbo Li. "Numerical Investigation of the Enhanced Stirring Characteristics of a Multi-Lance Top-Blowing Continuous Converting Furnace for Lance Arrangement and Variable-Velocity Blowing". Energies 16, n.º 5 (2 de março de 2023): 2412. http://dx.doi.org/10.3390/en16052412.
Texto completo da fonteMeijie, Z., G. Huazhi, H. Ao, Z. Hongxi e D. Chengji. "Numerical simulation and industrial practice of inclusion removal from molten steel by gas bottom-blowing in continuous casting tundish". Journal of Mining and Metallurgy, Section B: Metallurgy 47, n.º 2 (2011): 137–47. http://dx.doi.org/10.2298/jmmb110120006m.
Texto completo da fonteSugiura, Konosuke, e Tetsuo Ohata. "Large-scale characteristics of the distribution of blowing-snow sublimation". Annals of Glaciology 49 (2008): 11–16. http://dx.doi.org/10.3189/172756408787814960.
Texto completo da fonteAyuni, Farihah, Gina Selvia Rahayu, Nesty Ermin Nadhirah, Tegar Selaras Gustavisiana e Hisny Fajrussalam. "Perspektif Islam terhadap “Kaum Majusi” Modern". YASIN 3, n.º 3 (7 de maio de 2023): 342–51. http://dx.doi.org/10.58578/yasin.v3i3.1080.
Texto completo da fonteWang, Dazhi, Fang Gao, Lidong Xing, Jianhua Chu e Yanping Bao. "Continuous Prediction Model of Carbon Content in 120 t Converter Blowing Process". Metals 12, n.º 1 (14 de janeiro de 2022): 151. http://dx.doi.org/10.3390/met12010151.
Texto completo da fonteYoshinaga, Etsuo. "Blow Analytic Mappings and Functions". Canadian Mathematical Bulletin 36, n.º 4 (1 de dezembro de 1993): 497–506. http://dx.doi.org/10.4153/cmb-1993-065-1.
Texto completo da fonteZhang, M. J., H. Z. Gu, A. Huang, H. X. Zhu e C. J. Deng. "Physical and mathematical modeling of inclusion removal with gas bottom-blowing in continuous casting tundish". Journal of Mining and Metallurgy, Section B: Metallurgy 47, n.º 1 (2011): 37–44. http://dx.doi.org/10.2298/jmmb1101037z.
Texto completo da fonteTeses / dissertações sobre o assunto "Continous blowing"
Ammam, Tarek. "Development of innovative solutions for the control of the aerodynamic drag induced by cavity flows : Application to the reduction of railway energy consumtion". Electronic Thesis or Diss., Valenciennes, Université Polytechnique Hauts-de-France, 2024. http://www.theses.fr/2024UPHF0011.
Texto completo da fonteThis work concerns the analysis and control of the flow over cavities, which have the particularity of being laterally open and near a wall, with the aim of developing drag control solutions induced by bogie cavities of high-speed trains. To study this configuration, representative of railway cavities and known to be less sensitive to acoustic noise than cavities with smaller aspect ratios, experimental tests and numerical simulations (IDDES) were conducted. The motivations of our research focus on identifying the relationships between the flow and the aerodynamic loads applied on the cavity on one hand, and on the control of induced drag on the other hand. In this context, synchronized PIV-wall pressure tests were specifically conducted in addition to force measurements aimed at quantifying the contribution to drag (and thus to resistance to motion) of the cavity. These recent developments also allowed us to identify and parameterize a continuous blowing active control solution, based on reducing momentum at the cavity interface and underbody flow rate. The maximum associated drag reductions are around 20% for an empty cavity geometry and around 15% for a cavity including the bogie
TSAI, MAO-CHANG, e 蔡茂昌. "The Effect of Bottom Blowing Conditions on Floating Inclusion Behavior in the Vacuum Continuous Casting Process by Water Modeling". Thesis, 2007. http://ndltd.ncl.edu.tw/handle/10856600199584215391.
Texto completo da fonte義守大學
材料科學與工程學系碩士班
95
This research aims at enhancing the quality of melting metal solution in the vacuum continuous casting by using air blowing and floating inclusion to remove the nonmetallic impurity. Modify the air blowing in melting process by water model. Analyze the behavior of air bubbles to find the optimum parameters. In this experiment we made an Id112mm*H200mm acrylic water model. Confirm the similarity between the cold model and the hot model by the Buckingham theorem. Set the parameters of the water model experiment. Substitute copper melting by water and argon by air. Modify the real air blowing to float inclusion of hot model by water model. This research is divided into the static experiment and dynamic tests. (1)Static experiment:Without water entering from the water mold. Change the number of tuyeres (1~4) the tube, the liquid level (40, 80, 120mm), the air flow rate (1.0~2.5L/min) to analyze the influence of air bubble movement behavior by the tubes arrangement , the air bubble size, the air bubbles density of distribution. Estimate the optimum parameters combination. (2)Dynamic experiment:With water entering from the top of water mold and leaving from the bottom respectively. Modify the air blowing to float inclusion process whether the air bubble sink down to bottom and induce the flaw. (1) Result of static experiment: 1.With liquid level 80mm, four tuyeres, gas flowing rate below 1.5 L/min can make bubble size smaller and even. The air bubble flow field is stable and the turbulence of liquid surface may decrease. 2. With liquid level 80mm, 2 tuyeres, the gas flowing rate must be below 1.0 L/min. Converts in the actual casting system the optimum floating inclusion condition is:1. Melted fluid level is 80mm. The tuyere number is four. The argon flow rate must be below 6.67 L/min. 2. Melted fluid level is 80mm. The tuyere number is two. The argon flow rate must be below 4.44 L/min. (2) Result of dynamic test : The quantity of sinking air bubble is 0 %, that means that in the real casting process all air bubble float is upward. No air bubble will flow back to the flow channel.
Livros sobre o assunto "Continous blowing"
Godøy, Rolf Inge. Key-postures, trajectories and sonic shapes. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199351411.003.0002.
Texto completo da fonteHong, Yu. Forging Broadband for the Commanding-Heights Economy. University of Illinois Press, 2017. http://dx.doi.org/10.5406/illinois/9780252040917.003.0004.
Texto completo da fontePitts-Taylor, Victoria, ed. Cultural Encyclopedia of the Body. Greenwood, 2008. http://dx.doi.org/10.5040/9798400635014.
Texto completo da fonteCapítulos de livros sobre o assunto "Continous blowing"
Wang, Songsong, e Xueyi Guo. "Thermodynamic Modeling of Oxygen Bottom-Blowing Continuous Converting Process". In The Minerals, Metals & Materials Series, 573–83. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-95022-8_45.
Texto completo da fonteRen, Yong, Shuai Niu, WenCai Li e Xin Hong. "Experimental Research of Continuous Temperature Measurement for Molten Metal Bath through Bottom-Blowing Component". In EPD Congress 2014, 277–83. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2014. http://dx.doi.org/10.1002/9781118889664.ch32.
Texto completo da fonteKumar, A. R., K. M. Henderson e S. Schafrik. "Scale modeling, PIV, and LES of blowing type airflow in a deep cut continuous coal mining section". In Mine Ventilation, 65–74. London: CRC Press, 2021. http://dx.doi.org/10.1201/9781003188476-7.
Texto completo da fonteHartquist, T. W., J. E. Dyson e D. P. Ruffle. "Some Other Windy And Explosive Sources". In Blowing Bubbles In The Cosmos, 142–50. Oxford University PressNew York, NY, 2004. http://dx.doi.org/10.1093/oso/9780195130546.003.0011.
Texto completo da fonteSkowronski, Michael J., Michael R. Huspek e Camilla Righi. "Alternative Blowing Agent Solutions for Polyisocyanurate Continuous Laminate Metal Panels". In Polyurethanes Expo 2001, 97–106. CRC Press, 2020. http://dx.doi.org/10.1201/9780429332609-16.
Texto completo da fonte"Last Days with Chronic Obstructive Pulmonary Disease". In Respiratory Symptoms, editado por Margaret L. Campbell, 119—C14P40. Oxford University PressNew York, 2023. http://dx.doi.org/10.1093/med/9780190098896.003.0014.
Texto completo da fonteHyde, Peter, e Alex Mahalov. "Bowing Sand, Dust, and Dunes, Then and Now–A North American Perspective". In Deserts and Desertification. IntechOpen, 2022. http://dx.doi.org/10.5772/intechopen.98337.
Texto completo da fonteD'Agostino, Susan. "Abandon perfectionism, because of the Hairy Ball Theorem". In How to Free Your Inner Mathematician, 131–36. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198843597.003.0023.
Texto completo da fonteHalmi, Katherine A. "Eating disorders". In Pediatric Psychopharmacology: Principles and Practice, 592–604. Oxford University PressNew York, NY, 2002. http://dx.doi.org/10.1093/oso/9780195141733.003.0044.
Texto completo da fonte"Epilogue". In Fire Dreams, 210–24. Duke University Press, 2024. http://dx.doi.org/10.1215/9781478027690-007.
Texto completo da fonteTrabalhos de conferências sobre o assunto "Continous blowing"
Nonomura, Taku, Satoshi Sekimoto, Kengo Asada, Akira Oyama e Kozo Fujii. "Experimental Study of Blowing Direction Effects of DBD Plasma Actuator on Separation Control of Flow Around an Airfoil". In ASME-JSME-KSME 2011 Joint Fluids Engineering Conference. ASMEDC, 2011. http://dx.doi.org/10.1115/ajk2011-15010.
Texto completo da fonteKornilov, V. I., e E. A. Shkvar. "Turbulent boundary layer on a body of revolution under conditions of distributed air blowing". In ACTUAL PROBLEMS OF CONTINUUM MECHANICS: EXPERIMENT, THEORY, AND APPLICATIONS. AIP Publishing, 2023. http://dx.doi.org/10.1063/5.0132325.
Texto completo da fonteTadjfar, M., Saman Kasmaiee e S. Noori. "Continuous Blowing Jet Flow Control Optimization in Dynamic Stall of NACA0012 Airfoil". In ASME 2020 Fluids Engineering Division Summer Meeting collocated with the ASME 2020 Heat Transfer Summer Conference and the ASME 2020 18th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/fedsm2020-20149.
Texto completo da fonteOu, Shichuan, e Richard B. Rivir. "Shaped-Hole Film Cooling With Pulsed Secondary Flow". In ASME Turbo Expo 2006: Power for Land, Sea, and Air. ASMEDC, 2006. http://dx.doi.org/10.1115/gt2006-90272.
Texto completo da fonteHassan, O., e I. Hassan. "Experimental Flow Field Investigations Downstream a Film Cooling Scheme Over a Flat Plate Using the PIV Technique". In ASME 2013 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/imece2013-65650.
Texto completo da fonteRao, I. J. "Simulation of the Film Blowing Process Using a Continuum Model for Crystallization in Polymers". In ASME 2000 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2000. http://dx.doi.org/10.1115/imece2000-1993.
Texto completo da fonteShalash, Karim M., Lamyaa A. El-Gabry e Mohamed M. Abo El-Azm. "Investigation of a Novel Discrete Slot Film Cooling Scheme". In ASME Turbo Expo 2014: Turbine Technical Conference and Exposition. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/gt2014-26019.
Texto completo da fonteCoulthard, Sarah M., Ralph J. Volino e Karen A. Flack. "Effect of Jet Pulsing on Film Cooling: Part 2 — Heat Transfer Results". In ASME Turbo Expo 2006: Power for Land, Sea, and Air. ASMEDC, 2006. http://dx.doi.org/10.1115/gt2006-91274.
Texto completo da fonteCoulthard, Sarah M., Ralph J. Volino e Karen A. Flack. "Effect of Jet Pulsing on Film Cooling: Part 1— Effectiveness and Flowfield Temperature Results". In ASME Turbo Expo 2006: Power for Land, Sea, and Air. ASMEDC, 2006. http://dx.doi.org/10.1115/gt2006-91273.
Texto completo da fonteAsgari, Ehsan, e Mehran Tadjfar. "Comparison of Two Active Flow Control Mechanisms of Pure Blowing and Pure Suction on a Pitching NACA0012 Airfoil at Reynolds Number of 1 × 106". In ASME 2018 5th Joint US-European Fluids Engineering Division Summer Meeting. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/fedsm2018-83463.
Texto completo da fonte