Gotowa bibliografia na temat „Aerodynamic pressure”
Utwórz poprawne odniesienie w stylach APA, MLA, Chicago, Harvard i wielu innych
Zobacz listy aktualnych artykułów, książek, rozpraw, streszczeń i innych źródeł naukowych na temat „Aerodynamic pressure”.
Przycisk „Dodaj do bibliografii” jest dostępny obok każdej pracy w bibliografii. Użyj go – a my automatycznie utworzymy odniesienie bibliograficzne do wybranej pracy w stylu cytowania, którego potrzebujesz: APA, MLA, Harvard, Chicago, Vancouver itp.
Możesz również pobrać pełny tekst publikacji naukowej w formacie „.pdf” i przeczytać adnotację do pracy online, jeśli odpowiednie parametry są dostępne w metadanych.
Artykuły w czasopismach na temat "Aerodynamic pressure"
Xie, Dan, Min Xu, Honghua Dai i Tao Chen. "New Look at Nonlinear Aerodynamics in Analysis of Hypersonic Panel Flutter". Mathematical Problems in Engineering 2017 (2017): 1–13. http://dx.doi.org/10.1155/2017/6707092.
Pełny tekst źródłaZhang, Cheng Chun, Wen Qiang Wang, Lei Shi, Jing Wang i Lu Quan Ren. "Experimental and Numerical Study on Aerodynamic Noise Reduction of Cylindrical Rod with Bionic Wavy Surface". Applied Mechanics and Materials 461 (listopad 2013): 690–701. http://dx.doi.org/10.4028/www.scientific.net/amm.461.690.
Pełny tekst źródłaSun, Xiaoqi, i Han Xiao. "Numerical Modeling and Investigation on Aerodynamic Noise Characteristics of Pantographs in High-Speed Trains". Complexity 2018 (2018): 1–12. http://dx.doi.org/10.1155/2018/6932596.
Pełny tekst źródłaMordasov, M. M., A. P. Savenkov i K. E. Chechetov. "Aerodynamic measurement of surface pressure". Izmeritel`naya Tekhnika, nr 5 (2018): 50–55. http://dx.doi.org/10.32446/0368-1025it.2018-5-50-55.
Pełny tekst źródłaKozmar, Hrvoje, i Boris Laschka. "Pressure tap cavity for unsteady aerodynamic pressure measurements". Measurement 132 (styczeń 2019): 282–91. http://dx.doi.org/10.1016/j.measurement.2018.09.056.
Pełny tekst źródłaZhang, Ying Chao, Zhe Zhang, Shuang Hu Luo i Jian Hua Tian. "Aerodynamic Numerical Simulation in the Process of Car Styling". Applied Mechanics and Materials 16-19 (październik 2009): 862–65. http://dx.doi.org/10.4028/www.scientific.net/amm.16-19.862.
Pełny tekst źródłaBen Mosbah, A., R. M. Botez i T. M. Dao. "New methodology combining neural network and extended great deluge algorithms for the ATR-42 wing aerodynamics analysis". Aeronautical Journal 120, nr 1229 (27.05.2016): 1049–80. http://dx.doi.org/10.1017/aer.2016.46.
Pełny tekst źródłaMusa, Mohamad Nor, Samion Syahrullail i Fairuz Zainal Abidin. "Aerodynamic Analysis on Proton Preve by Experimental". Applied Mechanics and Materials 773-774 (lipiec 2015): 575–79. http://dx.doi.org/10.4028/www.scientific.net/amm.773-774.575.
Pełny tekst źródłaSchreck, S., i M. Robinson. "Boundary Layer State and Flow Field Structure Underlying Rotational Augmentation of Blade Aerodynamic Response". Journal of Solar Energy Engineering 125, nr 4 (1.11.2003): 448–56. http://dx.doi.org/10.1115/1.1624087.
Pełny tekst źródłaSun, Xiao-Ying, Tian-E. Li, Guo-Chang Lin i Yue Wu. "A study on the aerodynamic characteristics of a stratospheric airship in its entire flight envelope". Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering 232, nr 5 (2.08.2017): 902–21. http://dx.doi.org/10.1177/0954410017723358.
Pełny tekst źródłaRozprawy doktorskie na temat "Aerodynamic pressure"
Bamberger, Konrad [Verfasser]. "Aerodynamic Optimization of Low-Pressure Axial Fans / Konrad Bamberger". a : Shaker, 2015. http://d-nb.info/1080762191/34.
Pełny tekst źródłaRossetti, Alessandro <1977>. "Design and development of new pressure sensors for aerodynamic applications". Doctoral thesis, Alma Mater Studiorum - Università di Bologna, 2008. http://amsdottorato.unibo.it/787/.
Pełny tekst źródłaGrodek, Kristen Ashley. "The Effect of Sound Pressure Level Variation on Aerodynamic Measures". Miami University / OhioLINK, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=miami1239321162.
Pełny tekst źródłaHolmberg, Eva. "Aerodynamic measurements of normal voice". Doctoral thesis, Stockholms universitet, Institutionen för lingvistik, 1993. http://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-40215.
Pełny tekst źródłaHärtill 5 uppsatser.För att köpa boken skicka en beställning till exp@ling.su.se/ To order the book send an e-mail to exp@ling.su.se
Garrison, Courtney Rollins. "Repeatability of Aerodynamic Measurements of Voice". Miami University / OhioLINK, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=miami1239309229.
Pełny tekst źródłaYoon, Sungho. "Advanced aerodynamic design of the intermediate pressure turbine for aero-engines". Thesis, University of Cambridge, 2010. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.608551.
Pełny tekst źródłaWang, Yifei. "Experimental Study of Wheel-Vehicle Aerodynamic Interactions". Thesis, Chasseneuil-du-Poitou, Ecole nationale supérieure de mécanique et d'aérotechnique, 2019. http://www.theses.fr/2019ESMA0002/document.
Pełny tekst źródłaThe thesis aims to provide a better understanding of the wheel-vehicle interaction, via experimental investigations on a 2/5-th scale vehicle with an underbody diffuser and 2/5-th scale wheels equipped with Michelin tires. The vehicle geometry, based on ASMO model, was modified prior to the PhD work, in order to achieve a reasonable front wheel yaw angle, and a realistic wake balance with four rotating wheels. It is the baseline configuration in the scope of this work.The findings demonstrate that the well-balanced wake of the baseline configuration can be easily modified by different wheel states or tire modifications, especially at the rear axle. This results from a global effect of the underbody momentum modifications, i.e. a high wake sensitivity to the underbody flow. On the contrary, when the vehicle mean wake develops into a non-balanced topology, it is more robust towards underbody perturbations such as different wheel states or tire modifications. By eliminating four wheels or front wheels, the underbody momentum flux is vastly increased; by eliminating the underbody diffuser, which is a vehicle geometry modification, the underbody momentum flux is significantly reduced. In these two circumstances, one can observea robust downwash from the roof, independent of the wheel states or tire modifications. Besides, there is a more local effect of the wheels near wakes on the aerodynamic lift and drag of the vehicle. Low pressure regions in the underbody downstream the front wheels have an effect on vehicle lift. The rear wheels impose pressure conditions on the vehicle base, influencing the vehicle drag. Particularly, the merging of nonclosed mean wakes of the rear wheels with the vehicle wake can give rise to strong penalty in vehicle drag
Oram, C. E. "Aerodynamic surface pressure measurement in atmosphere and wind tunnel on a vertical axis wind turbine blade using pressure transducers". Thesis, Cranfield University, 1989. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.375937.
Pełny tekst źródłaJöcker, Markus. "Numerical Investigation of the Aerodynamic Vibration Excitation of High-Pressure Turbine Rotors". Doctoral thesis, KTH, Energy Technology, 2002. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-3416.
Pełny tekst źródłaThe design parameters axial gap and stator count of highpressure turbine stages are evaluated numerically towards theirinfluence on the unsteady aerodynamic excitation of rotorblades. Of particular interest is if and how unsteadyaerodynamic considerations in the design could reduce the riskofhigh cycle fatigue (HCF) failures of the turbine rotor.
A well-documented 2D/Q3D non-linear unsteady code (UNSFLO)is chosen to perform the stage flow analyses. The evaluatedresults are interpreted as aerodynamic excitation mechanisms onstream sheets neglecting 3D effects. Mesh studies andvalidations against measurements and 3D computations provideconfidence in the unsteady results. Three test cases areanalysed. First, a typical aero-engine high pressure turbinestage is studied at subsonic and transonic flow conditions,with four axial gaps (37% - 52% of cax,rotor) and two statorconfigurations (43 and 70 NGV). Operating conditions areaccording to the resonant conditions of the blades used inaccompanied experiments. Second, a subsonic high pressureturbine intended to drive the turbopump of a rocket engine isinvestigated. Four axial gap variations (10% - 29% ofcax,rotor) and three stator geometry variations are analysed toextend and generalise the findings made on the first study.Third, a transonic low pressure turbine rotor, known as theInternational Standard Configuration 11, has been modelled tocompute the unsteady flow due to blade vibration and comparedto available experimental data.
Excitation mechanisms due to shock, potential waves andwakes are described and related to the work found in the openliterature. The strength of shock excitation leads to increasedpressure excitation levels by a factor 2 to 3 compared tosubsonic cases. Potential excitations are of a typical wavetype in all cases, differences in the propagation direction ofthe waves and the wave reflection pattern in the rotor passagelead to modifications in the time and space resolved unsteadypressures on the blade surface. The significant influence ofoperating conditions, axial gap and stator size on the wavepropagation is discussed on chosen cases. The wake influence onthe rotorblade unsteady pressure is small in the presentevaluations, which is explicitly demonstrated on the turbopumpturbine by a parametric study of wake and potentialexcitations. A reduction in stator size (towards R≈1)reduces the potential excitation part so that wake andpotential excitation approach in their magnitude.
Potentials to reduce the risk of HCF excitation in transonicflow are the decrease of stator exit Mach number and themodification of temporal relations between shock and potentialexcitation events. A similar temporal tuning of wake excitationto shock excitation appears not efficient because of the smallwake excitation contribution. The increase of axial gap doesnot necessarily decrease the shock excitation strength neitherdoes the decrease of vane size because the shock excitation mayremain strong even behind a smaller stator. The evaluation ofthe aerodynamic excitation towards a HCF risk reduction shouldonly be done with regard to the excited mode shape, asdemonstrated with parametric studies of the mode shapeinfluence on excitability.
Keywords:Aeroelasticity, Aerodynamics, Stator-RotorInteraction, Excitation Mechanism, Unsteady Flow Computation,Forced Response, High Cycle Fatigue, Turbomachinery,Gas-Turbine, High-Pressure Turbine, Turbopump, CFD, Design
Sharifian, Seyed Ahmad. "Fibre optic pressure transducers for disturbance measurements in transient aerodynamic research facilities". University of Southern Queensland, Faculty of Engineering and Surveying, 2003. http://eprints.usq.edu.au/archive/00001509/.
Pełny tekst źródłaKsiążki na temat "Aerodynamic pressure"
Moshasrov, V. Luminescent pressure sensors in aerodynamic experiments. Zhukovsky, Russia : Central Aerohydrodynamic Institute (TsAGI): CWA 22 Corporation, 1998.
Znajdź pełny tekst źródłaNemec, Marian. Aerodynamic computations using the convective upstream split pressure scheme with local preconditioning. [Toronto]: Dept. of Aerospace Science and Engineering, University of Toronto, 1998.
Znajdź pełny tekst źródłaNemec, Marian. Aerodynamic computations using the convective upstream split pressure scheme with local preconditioning. Ottawa: National Library of Canada, 1998.
Znajdź pełny tekst źródłaSchuster, D. M. Aerodynamic measurements on a large splitter plate for the Langley Transonic Dynamics Tunnel. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 2001.
Znajdź pełny tekst źródłaEmre, Ilgin Hüseyin, red. Tall buildings: Structural systems and aerodynamic form. London: Routledge, Taylor & Francis Group, 2014.
Znajdź pełny tekst źródłaLabrujere, Th E. Correction for wall interference in a solid-wall wind tunnel using sparse measured boundary conditions. Amsterdam: National Aerospace Laboratory, 1989.
Znajdź pełny tekst źródłaWing, David J. Afterbody/nozzle pressure distributions of a twin-tail twin-enginer fighter with axisymmetric nozzles at Mach numbers from 0.6 to 1.2. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.
Znajdź pełny tekst źródłaMartin, Colin A. Surface pressure measurements on the wing of a wind tunnel model during steady rotation. Melbourne, Australia: Aeronautical Research Laboratory, 1991.
Znajdź pełny tekst źródłaGarry, Kevin P. A summary of the scale model wind tunnel measurements and full scale surface pressure tests on the Leyland T45 and DAF3300 vehicles used for the TRRL spray dispersion programme. Cranfield [U.K.]: College of Aeronautics, Cranfield Institute of Technology, 1987.
Znajdź pełny tekst źródłaGuerrera, Michael H. Laser anemometry and pressure measurements in the endwall region of an annular turbine cascade utilizing a pressurized aerodynamic window. Monterey, Calif: Naval Postgraduate School, 1996.
Znajdź pełny tekst źródłaCzęści książek na temat "Aerodynamic pressure"
Paluch, B. "Light transmission control technique and correlation with pressure loss characteristics of perforated panels for Hybrid Laminar Flow Applications". W Aerodynamic Drag Reduction Technologies, 71–78. Berlin, Heidelberg: Springer Berlin Heidelberg, 2001. http://dx.doi.org/10.1007/978-3-540-45359-8_9.
Pełny tekst źródłaEllis, J. E., S. A. Walsh i D. I. A. Poll. "Assessment of the eN Method as a Transition Prediction Tool for Zero Pressure Gradient Flows with and without Boundary Layer Suction". W Aerodynamic Drag Reduction Technologies, 323–32. Berlin, Heidelberg: Springer Berlin Heidelberg, 2001. http://dx.doi.org/10.1007/978-3-540-45359-8_34.
Pełny tekst źródłaHölscher, N., i H. J. Niemann. "Non-Parametric Identification of a Multiple Aerodynamic Pressure Admittance". W Notes on Numerical Fluid Mechanics (NNFM), 225–32. Wiesbaden: Vieweg+Teubner Verlag, 1993. http://dx.doi.org/10.1007/978-3-663-13986-7_30.
Pełny tekst źródłaHuang, Thomas T., i Ming-Shun Chang. "Computation of Velocity and Pressure Variation Across Axisymmetric Thick Turbulent Stern Flows". W Numerical and Physical Aspects of Aerodynamic Flows III, 341–59. New York, NY: Springer New York, 1986. http://dx.doi.org/10.1007/978-1-4612-4926-9_19.
Pełny tekst źródłaZharkova, G. M., A. I. Maksimov, A. A. Pavlov i V. M. Khachaturyan. "Pressure Visualization on Aerodynamic Surface by the Method of Luminescent Coating". W Flow Visualization VI, 617–22. Berlin, Heidelberg: Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-84824-7_109.
Pełny tekst źródłaUsherwood, James R. "The aerodynamic forces and pressure distribution of a revolving pigeon wing". W Animal Locomotion, 429–41. Berlin, Heidelberg: Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-11633-9_33.
Pełny tekst źródłaWu, Meng-ling, Yang-yong Zhu, Chun Tian i Wei-wei Fei. "Influence of Aerodynamic Braking on the Pressure Wave of a Crossing High-Speed Train". W China's High-Speed Rail Technology, 133–42. Singapore: Springer Singapore, 2017. http://dx.doi.org/10.1007/978-981-10-5610-9_8.
Pełny tekst źródłaNgouani, M. M. Siewe, Yong Kang Chen, R. Day i O. David-West. "Low-Speed Aerodynamic Analysis Using Four Different Turbulent Models of Solver of a Wind Turbine Shroud". W Springer Proceedings in Energy, 149–54. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-63916-7_19.
Pełny tekst źródłaRagni, Daniele. "Pressure measurements". W Experimental Aerodynamics, 109–42. Boca Raton : CRC Press, 2017.: CRC Press, 2017. http://dx.doi.org/10.1201/9781315371733-7.
Pełny tekst źródłaPatel, Krishnakumar V., i Prem R. Patel. "Numerical Analysis of the Pressure, Temperature, and Aerodynamic Forces on Hypersonic Blunt Hemispherical Shaped Body". W Recent Advances in Computational Mechanics and Simulations, 363–74. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-8315-5_31.
Pełny tekst źródłaStreszczenia konferencji na temat "Aerodynamic pressure"
CARVER, D., W. WARD i M. BYERS. "Continuous sweep pressure prediction technique". W 14th Aerodynamic Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1986. http://dx.doi.org/10.2514/6.1986-767.
Pełny tekst źródłaBirkenstock, David. "Increased Fuel Economy From Powered Aerodynamics and Aerodynamic Pressure Thrust". W 18th AIAA Lighter-Than-Air Systems Technology Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 2009. http://dx.doi.org/10.2514/6.2009-2864.
Pełny tekst źródłaSTAINBACK, P., R. MCGHEE, W. BEASLEY i H. MORGAN, JR. "The Langley Research Center's Low-Turbulence Pressure Tunnel". W 14th Aerodynamic Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1986. http://dx.doi.org/10.2514/6.1986-762.
Pełny tekst źródłaMORRIS, M., J. DONOVAN, J. KEGELMAN, S. SCHWAB, R. LEVY i R. CRITES. "Aerodynamic applications of pressure-sensitive paint". W 30th Aerospace Sciences Meeting and Exhibit. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1992. http://dx.doi.org/10.2514/6.1992-264.
Pełny tekst źródłaFUNG, Y. T., G. SETTLES i A. RAY. "Microprocessor control of high-speed wind tunnel stagnation pressure". W 15th Aerodynamic Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1988. http://dx.doi.org/10.2514/6.1988-2062.
Pełny tekst źródłaSMELTZER, D., i A. LEVIN. "Evaluation of an electronic scanner of pressure (ESOP) module". W 14th Aerodynamic Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1986. http://dx.doi.org/10.2514/6.1986-771.
Pełny tekst źródłaLarsen, Allan. "Horizontal Aerodynamic Derivatives in Bridge Flutter Analysis". W ASME 2014 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/pvp2014-28251.
Pełny tekst źródłaCHUNG, KUNG-MING, i FRANK LU. "Shock-tube calibration of a fast-response pressure transducer". W 16th Aerodynamic Ground Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1990. http://dx.doi.org/10.2514/6.1990-1399.
Pełny tekst źródłaZolotarev, Igor, Václav Vlček i Jan Kozánek. "Unsteady Aerodynamic Forces Measured on a Fluttering Profile". W ASME 2014 Pressure Vessels and Piping Conference. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/pvp2014-28567.
Pełny tekst źródłaKAYSER, L., W. CLAY i W. DAMICO, JR. "Surface pressure measurements on a 155mm projectile in free-flight at transonic speeds". W 14th Aerodynamic Testing Conference. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1986. http://dx.doi.org/10.2514/6.1986-785.
Pełny tekst źródła