motion tagging - définition. Qu'est-ce que motion tagging
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Qu'est-ce (qui) est motion tagging - définition

Hydroxyl tagging velocimetry (HTV).

motion tagging      
Painting graffiti on a moving subway car.
Paul was motion tagging when he was busted by the police.
Part-of-speech tagging         
THE PROCESS OF IDENTIFYING THE GRAMMATICAL TYPE OF WORDS IN A TEXT
Part of speech tagging; Part of speech tagger; POS tagging; Part-of-speech tag; Part-of-speech tags; Part-of-speech tagger; POS tagger; Pos-tagging; Part of Speech tagging; Unsupervised part-of-speech tagging; Grammatical tagging; Grammatical tag; Tag (grammar)
In corpus linguistics, part-of-speech tagging (POS tagging or PoS tagging or POST), also called grammatical tagging is the process of marking up a word in a text (corpus) as corresponding to a particular part of speech, based on both its definition and its context.
Renewability         
PARLIAMENTARY MOTION
Motion (democracy); Parliamentary motion; Privileged motion; Privilege Motion; Privilege Motion in Indian Parliament; Motion (parliamentary); Privilege motion; Subsidiary motion; Incidental motion; Previous notice; Incidental main motion; Main motion; Motion that brings a question again before the assembly; Motions that bring a question again before the assembly; Motions that bring a matter again before the assembly; Class (parliamentary procedure); Dilatory motions and tactics; Renewal (parliamentary procedure); Strategic use of motions; Strategic use of parliamentary procedure; Renewability; Dilatory; Dilatory motion; Bring back motions; Bring back motion; Privileged motions; House of Commons motion; Secondary motions; Dilatory tactics; Dilatory motions; Dilatory tactic; Dilatory tactics and motions; I move
·noun The quality or state of being renewable.

Wikipédia

Hydroxyl tagging velocimetry

Hydroxyl tagging velocimetry (HTV) is a velocimetry method used in humid air flows. The method is often used in high-speed combusting flows because the high velocity and temperature accentuate its advantages over similar methods. HTV uses a laser (often an argon-fluoride excimer laser operating at ~193 nm) to dissociate the water in the flow into H + OH. Before entering the flow optics are used to create a grid of laser beams. The water in the flow is dissociated only where beams of sufficient energy pass through the flow, thus creating a grid in the flow where the concentrations of hydroxyl (OH) are higher than in the surrounding flow. Another laser beam (at either ~248 nm or ~308 nm) in the form of a sheet is also passed through the flow in the same plane as the grid. This laser beam is tuned to a wavelength that causes the hydroxyl molecules to fluoresce in the UV spectrum. The fluorescence is then captured by a charge-coupled device (CCD) camera. Using electronic timing methods the picture of the grid can be captured at nearly the same instant that the grid is created.

By delaying the pulse of the fluorescence laser and the camera shot, an image of the grid that has now displaced downstream can be captured. Computer programs are then used to compare the two images and determine the displacement of the grid. By dividing the displacement by the known time delay the two dimensional velocity field (in the plane of the grid) can be determined. Flow ratios, however, are shown to affect the impingement locations, where increased air flow ratios can reduce the required combustor size by isolating reaction products solely within the secondary cavity.

Other molecular tagging velocimetry (MTV) methods have used ozone (O3), excited oxygen and nitric oxide as the tag instead of hydroxyl. In the case of ozone the method is known as ozone tagging velocimetry or OTV. OTV has been developed and tested in many room air temperature applications with very accurate test results. OTV consists of an initial "write" step, where a 193-nm pulsed excimer laser creates ozone grid lines via oxygen (O2) UV absorption, and a subsequent "read" step, where a 248-nm excimer laser photodissociates the formed O3 and fluoresces the vibrationally excited O2 product thus revealing the grid lines' displacement.