Libri sul tema "Experimental Jetset"

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1

Jetset, Experimental. Full scale, false scale. Amsterdam: Roma Publications, 2019.

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2

Jetset, Experimental. Statement and counter-statement: Notes on Experimental Jetset. Volume 1. [Arnhem, Netherlands?]: Roma Publications, 2015.

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3

Robotti, Aurelio C. Experimental research on electric propulsion.: Experimental research on a plasma jet with vortex type stabilization for propulsion. Washington DC: National Aeronautics and Space Administration, 1985.

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4

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Computational and experimental assessment of jets in crossflow. Neuilly sur Seine, France: AGARD, 1993.

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5

Maĭer, Valeriĭ Vilʹgelʹmovich. Prostye opyty so strui͡a︡mi i zvukom. Moskva: "Nauka," Glav. red. fiziko-matematicheskoĭ lit-ry, 1985.

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6

Raman, Ganesh. Resonant interaction of a linear array of supersonic rectangular jets: An experimental study. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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7

K, Kuo Kenneth, e United States. National Aeronautics and Space Administration., a cura di. Combustion of lox with H(g) under subcritical, critical and supercritical conditions (task 1) ; and, Experimental observation of dense spray and mixing of impinging jets (task 2): Annual report. University Park, PA: Propulsion Engineering Research Center, Pennsylvania State University, 1992.

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8

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Computational and experimental assessment of jets in cross flow: Papers presented and discussions recorded at the Fluid Dynamics Panel Symposium held in Winchester, United Kingdom, from 19th-22nd April 1993. Neuilly-sur-Seine: AGARD, 1993.

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9

Advisory Group for Aerospace Research and Development. Fluid Dynamics Panel., a cura di. Computational and experimental assessment of jets in cross flow: Papers presented and discussions recorded at the Fluid Dynamics Panel Symposium held in Winchester, United Kingdom, from 19th-21st April 1993. Neuilly sur Seine: Agard, 1993.

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10

Loan, Löser. Experimental Jetset. Blurb, 2014.

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11

Superstructures: Experimental jetset. Amsterdam: Stichting Roma Publications, 2021.

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12

Byrd, Christopher. Experimental Jetset: Volume 7 of The Adventures of Byrdman. Createspace Independent Publishing Platform, 2016.

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13

La Jetée. British Film Institute, 2016.

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14

Hsiao, Entsung. An experimental/analytical investigation of buoyant jets in shallow water. 1990.

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15

Mashayek, Alireza. Experimental and numerical study of liquid jets in crossflow. 2006.

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16

Yin-Shing, Chong. A numerical and experimental investigation of rectangular abrasive jets for drilling operations. 1995.

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17

Experimental studies of shock-wave/wall-jet interaction in hypersonic flow. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1994.

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18

Forces Motion From Highspeed Jets To Windup Toys Student Journal. Master Books, 2008.

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19

National Aeronautics and Space Administration (NASA) Staff. Combustion of Lox with H2(sub G) under Subcritical, Critical, and Supercritical Conditions and Experimental Observation of Dense Spray and Mixing of Impinging Jets. Independently Published, 2018.

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20

Zeitlin, Vladimir. Instabilities in Cylindrical Geometry: Vortices and Laboratory Flows. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198804338.003.0011.

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Abstract (sommario):
Vortex solutions in cyclo-geostrophic equilibrium are described and their geostrophic and ageostrophic barotropic and baroclinic instabilities are studied along the lines of Chapter 10. Special attention is paid to centrifugal instability which, as the inertial instability of jets, is due to modes trapped in the anticyclonic shear in the vortex, and has asymmetric counterparts. Saturation of this instability is shown to exhibit some specific patterns. Instabilities of intense hurricane-like vortices are analysed and shown to be sensitive to fine details of the vortex profile. Nonlinear saturation of such instabilities exhibits typical secondary meso-vortex structures, and leads to intensification of the vortex. Special attention is paid to instabilities in laboratory flows in rotating cylindrical channels. Classification of these instabilities is given, and their nature, in terms of resonances between different wave modes, is established. Rigid-lid and free-surface configuration with topography are considered and compared with experiments.
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21

Wigmans, Richard. Performance of Calorimeter Systems. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786351.003.0007.

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Abstract (sommario):
The most important practical aspects of the performance of calorimeter systems are reviewed. Each aspect is illustrated with examples published in the scientific literature. One of the most important performance characteristics is the energy resolution, which is shown separately for electrons, hadrons and jets. The same distinction is also made for the position and angular resolutions that are achieved in practice. The time characteristics of the calorimeter signals, which are important for a variety of purposes (e.g. pile-up), depend on the signal generation mechanism (Cherenkov, scintillation). The e/h values of different types of calorimeters, as well as the effects of non-compensation in these devices (non-linearity, line shape, resolution), are reviewed. It is shown how calorimeter data can be used for particle identification purposes, and how the granularity affects the capability to recognize close doublets as such. The chapter ends with a brief review of the different tasks typically carried out by calorimeters in modern experiments.
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