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Vortexes

Daizadeh I, Guo J-X and Stuchebrukhov A 1999 Vortex structure of the tunneling flow in long-range electron transfer reactions J. Chem. Phys. 110 8865-8... [Pg.2996]

The slow decay of the velocity autocorrelation function towards zero can be explained in terms of the of a hydrodynamic vortex. (Figure adapted from Alder B J and T E Wainwright 1970. Decay of the Velocity tation Function. Physical Review A 1 18-21.)... [Pg.394]

Mitsoulis, E., Valchopoulos, J. and Mirza, F. A., 1985. A numerical study of the effect of normal stresses and elongational viscosity on entry vortex growth and extrudate swell. Poly. Eng. Sci. 25, 677 -669. [Pg.139]

Traditionally, cyclone dimensions are multiples of outiet pipe diameter D. Typical barrel diameters are 2D but efficiency increases at constant up to a 3Z9 barrel diameter. Efficiency also improves as barrel and cone length are increased at constant up to the natural length of the vortex. At constant inlet velocity, efficiency increases as outiet diameter (and all ratioed dimensions in a family of cyclones) is decreased. Improved efficiency is attained at the... [Pg.396]

Other problems affecting cyclone efficiency are usually caused by abuse or poor maintenance. Problems may arise from temperature warpage, rough interior surfaces, overlapping plates and rough welds, or misalignment of parts, such as an uncentered (or cocked) vortex oudet in the barrel. [Pg.397]

Vortex precession meters feature no moving parts and a relatively high frequency digital output. They are used in the measurement of gas and Hquid flows, generally in pipe sizes 80 mm and smaller. [Pg.64]

Vortex-shedding flow meters typically provide 1% of flow rate accuracy over wide ranges on Hquid, gas, and steam service. Sizes are available from 25 to 200 mm. The advantages of no moving parts and linear digital output have resulted in wide usage in the measurement of steam, water, and other low viscosity Hquids. [Pg.64]

As the Reynolds number rises above about 40, the wake begins to display periodic instabiUties, and the standing eddies themselves begin to oscillate laterally and to shed some rotating fluid every half cycle. These still laminar vortices are convected downstream as a vortex street. The frequency at which they are shed is normally expressed as a dimensionless Strouhal number which, for Reynolds numbers in excess of 300, is roughly constant ... [Pg.91]

The periodic shedding produces lateral forces of the same period on the cylinder. Should the cylinder be weakly supported and have a natural frequency close to the shedding frequency, it oscillates strongly in concert with the vortex street. Such behavior is responsible for the singing of power lines, the oscillation of tall smokestacks, and, most spectacularly, for the coUapse in 1940 of the newly built Tacoma Narrows suspension bridge, in Washington state, under the influence of a steady 65 km/h wind. [Pg.91]

Thermochemical Liquefaction. Most of the research done since 1970 on the direct thermochemical Hquefaction of biomass has been concentrated on the use of various pyrolytic techniques for the production of Hquid fuels and fuel components (96,112,125,166,167). Some of the techniques investigated are entrained-flow pyrolysis, vacuum pyrolysis, rapid and flash pyrolysis, ultrafast pyrolysis in vortex reactors, fluid-bed pyrolysis, low temperature pyrolysis at long reaction times, and updraft fixed-bed pyrolysis. Other research has been done to develop low cost, upgrading methods to convert the complex mixtures formed on pyrolysis of biomass to high quaHty transportation fuels, and to study Hquefaction at high pressures via solvolysis, steam—water treatment, catalytic hydrotreatment, and noncatalytic and catalytic treatment in aqueous systems. [Pg.47]

Ultrafast pyrolysis in the vortex reactor is capable of pyrolyzing biomass at high heat-transfer rates on the reactor wall by ablation and has been... [Pg.47]

This procedure offers the possibiUty of remote noncontact velocity measurement, where no probes disturb the flow. It is thus compatible for use with hot or corrosive gases. Commercial laser velocimeters have become weU-developed measurement tools. Examples of laser velocimetry include remote measurement of wind velocity, measurement of vortex air flow near the wing tips of large aircraft, and in vivo measurement of the velocity of blood flow. [Pg.15]

Fig. 4. MHD generator geometries (a), linear (b), vortex and (c), disk having radial outflow. Fig. 4. MHD generator geometries (a), linear (b), vortex and (c), disk having radial outflow.
The product stream contains gases and soflds. The soflds are removed by using either cyclones, filters, or both in combination. Cyclones are devices used to separate soflds from fluids using vortex flow. The product gas stream must be cooled before being sent to the collection and refining system. The ALMA process uses cyclones as a primary separation technique with filters employed as a final separation step after the off-gas has been cooled and before it is sent to the collection and refining system (148). As in the fixed-bed process, the reactor off-gas must be incinerated to destroy unreacted butane and by-products before being vented to the atmosphere. [Pg.456]


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Abrikosov flux vortex lattice

Abrikosov vortex lattice

Abrikosov vortices

Aerodynamics of Vortex Apparatuses

Antarctic vortex

Axial vortex generator

Blade vortex generator

Blinking vortex flow

Boson-vortex duality

Bubble-vortex apparatus

Charge phase vortices

Compound vortex controlled

Computation of the Inner Vortex Cut-Point

Concentric cylinders Taylor vortices

Conic vortex generator

Cooling vortex

Couette-Taylor vortex

Couette-Taylor vortex flow reactor

Couette-Taylor vortex flow reactor continuous

Counter-rotating vortices

Cyclone Vortex flow pattern

Cyclones vortex radius

Cylindrical vortex generator

Dean vortex

Discrete-vortex simulation

Dynamic vortex

Extinction vortex

Fast pyrolysis, biomass vortex reactor

Flame propagation along vortex core

Flow measurement vortex shedding

Flow pattern turbulent vortex

Flowmeters vortex-shedding

Free surface vortex

Free vortex

Frequency of vortex shedding

Froude number, surface vortex

Gas entrainment via vortex

Glass bead vortexing

Hexagonal vortex lattice

Hill vortex

Hill’s vortex

Hydrodynamic vortex

Ideal vortex

Impeller surface vortex

Inner vortex

Inner vortex excitation

Inner vortex separation

Inner vortex spin velocity

Josephson vortices

Karman vortex street

Karman vortices

Kelvin-Helmholtz vortices

Laminar Taylor vortex

Laminar Taylor vortex flow

Magnetic fluids, vortex viscosity

Magnetic vortex

Mixing devices vortex mixer

Mixing vortex

Mixing vortex depth

Mixing vortex stretching

Models for the Natural Vortex Length

Natural vortex length

Near wall vortex generator

Oscillatory-vortex

P. vortex

PERIODIC VORTICES

Particle vortex

Polar vortex

Rankine vortex

Recirculation vortex

Reverse vortex flow

Rhombic vortex lattice

Rotational or vortex motion in a fluid

Secondary flow Dean vortices

Solid-fluid-vortex extraction

Spin vortex

Spiral Vortex Flow

Square vortex lattices

Stationary helical vortices

Stirrers vortex

Superconductor vortex lines

Superconductors vortex state

Superconductors, high vortex pinning

Surface vortex

Tangential-blade vortex generator

Taylor Vortex photocatalytic reactor

Taylor vortex

Taylor vortex flow

Taylor vortex reactor

Taylor-Couette vortex flow

The forced vortex

The free vortex

The vortex breaker

The vortex electric field of a solenoid

Transition of the vortex lattice

Turbulent vortex flow

Turbulent vortex rings

Twirled vortex generator

Ultrasonic vortex shedding

Various methods to prevent vortex formation

Vibration Vortex shedding

Von Karman vortex street

Vortex (Cyclone) Reactor

Vortex Diode

Vortex Finder Geometries

Vortex Flowmeters

Vortex Pair

Vortex Tube Outer Surface

Vortex activity

Vortex aeration

Vortex agitator

Vortex airflow

Vortex apparatus

Vortex atoms

Vortex balls

Vortex bed dryer

Vortex breakdown

Vortex breakers

Vortex bursting mechanism

Vortex cavitation

Vortex cavities

Vortex cooler

Vortex core

Vortex cross

Vortex depth

Vortex double

Vortex effect

Vortex end

Vortex field

Vortex filament

Vortex finder

Vortex finder design

Vortex finder diameter

Vortex finder length

Vortex finder wall area

Vortex flow

Vortex flow measurement

Vortex flowmeter

Vortex forced

Vortex formation

Vortex formation, instabilities

Vortex formation, prevention

Vortex generator characteristics

Vortex generator combined

Vortex generator hydraulic resistance

Vortex generators

Vortex glass phase

Vortex growth

Vortex high efficiency filter

Vortex incinerator

Vortex induced vibration

Vortex inner/outer

Vortex intensity

Vortex kinematics

Vortex lattice

Vortex lattice phase

Vortex length

Vortex line

Vortex liquid

Vortex meters

Vortex method

Vortex metre

Vortex mixer

Vortex model

Vortex motion

Vortex particle motion

Vortex phase

Vortex precession

Vortex pressure

Vortex reactor

Vortex reactor heating biomass

Vortex ring

Vortex shedding

Vortex shedding flow meter

Vortex shedding frequency

Vortex single-celled

Vortex stability

Vortex stabilizer

Vortex states

Vortex street

Vortex strength

Vortex stretching

Vortex suppression

Vortex threads

Vortex toroidal

Vortex tube

Vortex tube reactor

Vortex tube, heated

Vortex valves

Vortex viscosity

Vortex wavelength

Vortex, vapor

Vortex- antivortex pairs

Vortex-Stabilized Flames and Heat Release

Vortex-chemical

Vortex-electrostatic

Vortex-glass

Vortex-mechanical

Vortex-shedding meters

Vortex-sink flow

Vortex-type burners

Vortex-vacuum

Vortexed

Vortexing

Vortexing 776 INDEX

Vortexing, suppression

Vortices pinning

Vortices structure

Vorticity vortex stretching

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