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US3795367A - Fluid device using coanda effect - Google Patents

Fluid device using coanda effect
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US3795367A
US3795367AUS00348043AUS3795367DAUS3795367AUS 3795367 AUS3795367 AUS 3795367AUS 00348043 AUS00348043 AUS 00348043AUS 3795367D AUS3795367D AUS 3795367DAUS 3795367 AUS3795367 AUS 3795367A
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throat
slit
entrance
fluid
ratio
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US00348043A
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Z Mocarski
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S R C LABOR INC US
SRC LAB
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SRC LAB
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Abstract

A device using the Coanda effect by which a primary fluid of high velocity, small volume induces flow of a secondary fluid with the exhaust fluid being a combination of both fluids.

Description

[ Malnfi, 19741 iiniled Slams 1 191 Mocarski FLUID DEVICE USING 'COANDA EFFECT FOREIGN PATENTS OR APPLICATIONS Inventor: Zeno" R-mocal'skijaswnconn- 1,235,302 5/1960 France................... 239/DIG.7
[73] Assignee: S.R.C. Laboratories, Inc., Fairfield,
Conn.
Primary Examiner-Lloyd L. King [22] All)!" 1973 Attorney, Agent, or FirmErnest M. Junkins 21 Appl. No.: 348,043
Related US. Application Data [63] C ontinuation of Ser. No. 153,172, June 15, 1971,
ABSTRACT abandoned.
52 us. 239/265.17, 239/1310. 7 A device using the Coanda effect by which a P y 51 Im. B63h 25/46, B641: 15/10 fluid of high velocity, Small volume induces flow of a [58] Field of Search......1......v,.... 239/265.17, DIG. 7 Secondary fluid with the exhaust fluid being a combination of both fluids.
2 References Cited UNITED STATES PATENTS 5 Claims, 3 Drawing Figures 3,047,208 7/1962 Coanda.......................... 239/DIG. 7
DISC HARGE I NVENTO Z600 1F) Maaafls/(l PATENTEDNAR 5 [974 FLUID DEVICE USING COANDA EFFECT This is a continuation, of application Ser. No. 153,172 filed June 15, 1971, now abandoned.
In U.S. Pat. No. 2,052,869 granted Sept. 1,1936 to H. Coanda there is disclosed a principle of fluid flow now sometimes referred to as the Coanda effect. Basically the effect involves discharging a small volume of fluid under high velocity from a nozzle with there being a shaped surface adjacent the nozzle. The stream of fluid (herein called the primary fluid) tends to follow the shaped surface and as it does it induces surrounding fluid (secondary fluid) to flow with it. Thus, along the shaped surface there is discharged an exhaust consisting of a combination of both the primary and secondary fluids.
This effect has been known for many years and at least the discoverer thereof has secured many patents on devices utilizing the principle (for example those disclosed in US. Pat. Nos. 2,713,510,'2,920,448 and 3,047,208). However, insofar as the present Applicant is aware, devices utilizing this effect have not been found to have widespread commercial acceptance even though they would appear to be capable of functioning. One reason which perhaps could serve as a basis for a lack of wide acceptance is that the efficiency of heretofore constructed devices has been of such relatively low value that it renders the devices somewhat commercially impractical.
It is accordingly an object of the present invention to provide fluid devices utilizing the Coanda effect which are more efficient than heretofore known devices.
Another object of the present invention is to achieve the above object simply by altering the relative relationship of the parts and the shapes of the surfaces.
A further object of the present invention is to provide a fluid device utilizing the Coanda effect for inducing movement of one fluid by the discharging of another fluid which though attaining the above objects is extremely simple in construction and reliable in use.
One type of device which has been suggested using the Coanda effect is conveniently called a nozzle and it is used for moving a quantity of available air (secondary fluid) by use of a discharge of compressed air (primary fluid) thereinto. Such a device consists of a tubular member having an entrance open to the atmosphere or other source of secondary fluid and an exhaust with a portion therebetween having a restricted crosssectional area which forms a throat. The throat serves asa boundary between the exhaust and entrance and secondary fluid flows from the entrance through the throat to be discharged from the exhaust. Formed in the tube prior to the throat along the line of movement of the secondary fluid is an annular slit through which the primary fluid is ejected to cause the flow of the secondary fluid so that both fluids flow through the throat and the exhaust to be discharged as a jet containing both fluids in combination.
As the discharge involves both fluids and has velocity, one manner of measuring the efficiency of such a nozzle consists of determining the thrust which the discharged fluid has and comparing it to the thrust which the primary fluid is capable of causing. If the thrust of the primary fluid is considered to be 1 then the values of thrust reported in heretofore available literature of this type of device has been on the order of 1.23 to 1.4 and generally referred to as the thrust agumentation ratio. Thus the device augments the thrust of the primary fluid by a factor of .23 to .4 as the l in the ratio is that thrust which the primary fluid introduces in the system.
In similar devices constructedaccording to the present invention as hereinafter described, such nozzles have consistently achieved a thrust augmentation ratio of 1.8. This is an increase in the thrust augmentation ratio over the highest heretofore known or reported ratio of .4 and when compared to the latter, provides when just thrust increase is considered, an increase of more than 25 percent (.4 over 1.4). However, the ratio also indicates that the flow of secondary fluid has essentially doubled (from .4 to .8) and if the device is used as a pump for pumping secondary fluid, the efficiency has been increased by about percent.
The substantial increase in efficiency has been obtained by altering the relationship of the parts and the shapes of the surfaces from that heretofore known and suggested. Specifically the throat is made to be extremely thin, essentially just a line caused by the junction between adjacent boundaries of the entrance surface and the exhaust surface, the exhaust surface diverges outwardly from the throat as it recedes from the throat but in a shape which maintains laminar flow of both fluids, the entrance is shaped to diverge exceed ingly rapidly from the throat as it progresses therefrom and the primary fluid annular slit is positioned extremely adjacent the throat. These particular relationships have been found to all contribute to the substantial increase in efficiency of devices utilizing the Coanda effect for moving a secondary fluid by use of a primary fluid.
Other features and advantages will hereinafter appear.
In the drawing:
FIG. 1 is an axial section of a fluid device using the Coanda effect and is particularly referred to herein as a nozzle.
FIG. 2 is an enlarged detail of the annular slit through which the primary fluid is ejected.
FIG. 3 is a representation of a linear device in which the present invention is incorporated.
Referring to the drawing, one embodiment of a fluid device utilizing the present invention is shown in FIGS. 11 and 2 and generally is indicated by the reference numeral It). This device may conveniently be referred to as a nozzle as it is circular, having anentrance 11 and anexhaust 12 with fluid being discharged from the exhaust. The exhausted fluid is made up of the combination of a primary fluid and a secondary fluid. The secondary fluid surrounds theend 11a of the entrance 1] (as so indicated in FIG. 1) and the flow of the secondary fluid through the nozzle is caused by introducing the primary fluid into aninlet 13 and ejecting it through an annular slit 1141. The secondary fluid flow is indicated byarrows 15 while the primary fluid flow is indicated byarrows 16 and the fluids combine to produce a discharge at theend 12a of the exhaust.
Structurally the nozzle 10 is formed of just twoannular parts 17 and 18 with thepart 17 serving to define the portion of theentrance 11 that is prior to the slit while the part 118 defines the remainder of the entrance 111, and all theexhaust 12. Each of the parts may be made of rigid material such as metal.
Thepart 17 has the diametric cross-section shown and includes anannular flange 19 formed withthreads 20. Thepart 18 also has the diametric cross-sectional shape shown and is formed to provide anannular passageway 21 which communicates with theinlet 13. The interior of the inlet may be threaded to facilitate connection to a source of primary fluid. Additionally, thepart 18 hasthreads 22 which mate with thethreads 20 to effect unifying of two parts, and serve as a seal to prevent primary fluid escaping from thepassageway 21.
Referring to FIG. 2 there is shown an enlarged section of the shape of the adjacent portions of the twoparts 17 and 18 which define theslit 14. Particularly thepart 17 has a flat surface 17a while thepart 18 is formed to also provide asurface 18a which is also somewhat flat but has a small radius 18b (such as .030 inch) at its end between thesurface 18a and the interior of thepart 18. The two surfaces may be parallel and basically perpendicular to the axis of the nozzle or theremay be a slight angle to one, as for example, 5 degrees for the surface 17a but in any even the exiting of primary fluid through theslit 14 will be caused to follow the surface of thepart 18 in the direction of thearrow 16 by reason of the Coanda effect.
It will be understood that the width of the slit between thesurfaces 17a and 18a is one factor in setting the quantity of primary fluid that may flow, and typical values of the width range on the order of .002 to .010 inch for the specific embodiments hereinafter described. The extent of the width may be advantageously controlled by relative rotation between theparts 17 and 18 which provides linear movement along the axis of the nozzle through the cooperatingthreads 20 and 22.
The exterior shape of the nozzle is not particularly critical and, as shown, is generally cylindrical while the shape of the interior path through the nozzle has been found to be extremely critical in obtaining the substantial increase in efficiency of the present invention. The path includes athroat 23 which defines the smallest cross-sectional area of the path and serves as a boundary between theentrance 11 and theexhaust 12. Theexhaust 12 may have the frusto-conical shape 26 shown in solid lines when it is desired to maximize thrust; or a more bell shape as shown by the dottedline 26a when it is desired to provide for maximum flow or a shape such-as shown by the dotted line 26b when it is desired to more accurately control the direction of the discharged fluid. With all shapes the exhaust increases in area from the throat by diverging from the reference axis as it recedes from the throat in such a manner that it maintains laminar flow of the fluid and does not create turbulence.
Theentrance 11 has been found to be quite critical in its shape and it enlarges from thethroat 23 towards the entrance end 1121 with the increase being at an increasing rate as the entrance progresses from the throat. The sharp increase in the size of the entrance has been found to be essential to the present invention for reasons which are not yet completely understood but the shape of the entrance should be such as to enable the secondary fluid to have laminar flow and not turbulence upon entering the path.
Thethroat 23 is shown as a line caused by the abutting of the entrance 1] andexhaust 12 and it has been found that the length of the throat along the path should be minimum. Accordingly, the throat is essentially only a line which may be somewhat visually absent if the boundary between theentrance 11 and theexhaust 12 is caused to be radiused so as to elimininate a sharp intersection. It is also pointed out that theslit 14 must be quite close to the throat in order to achieve the substantial efficiency increase.
The nozzle portrayed in FIG. 1 is a scale drawing of a tested nozzle drawn four times actual size and hence the shapes shown are accurate representations of those which an existing nozzle has. In order to enable a person skilled in the art to practice the invention there is herein tabulated dimensions (in inches) for four nozzles which have been found to achieve the increased efficiency with model 00 being the model for the nozzle shown in FIG. 1 as it appears by testing to date to be The dimension A in the table is the throat diameter; B is the exhaust end (12a) diameter; C is the slit diameter; D is the entrance end (11a) diameter; E is the distance from the slit to the throat; F is the distance from theentrance end 11a to the throat and G the distance from the throat to theexhaust end 12a.
With respect to the above table it will be appreciated that certain ratios are useful in the design of the nozzle. One ratio is the distance from the entrance end to the throat divided by the distance from the slit to the throat (F divided by E) along the reference axis and this has been typically found to be about 3 and thus within a range of 2 to 4. It will also be understood that F and E may vary slightly as the width of theslit 14 is varied with the slit width being normally as small as possible to cause the primary fluid to be ejected with as large a velocity as possible and yet at a quantity which will maintain laminar flow and effect ejection of the necessary mass of primary fluid to induce the flow of the secondary fluid.
Another important ratio is the diameter of the slit 14 (C) as compared to the diameter of the throat (A). This has typically been found to be about 1.2 (C divided by A) which falls within a range of 1.1 to 1.3.
Another ratio which is also considered to be of importance in the present invention is the ratio between the throat diameter (A) and the entrance end diameter (D) with the entrance diameter being about 2.35 for the first nozzle and falling within the range of about 2.0 to 3.0 for the remaining nozzlesythus showing that the entrance diameter is substantially larger than the throat diameter but yet the entrance end area is only a short axial length from the throat.
As to the dimensions B and C which are those of theexhaust end 12a and the axial distance that the end is from the throat, they are not especially critical provided the exhaust is shaped to provide laminar flow. The length of the exhaust section is again variable depending upon whether it is desired to use the nozzle for volume flow, thrust or to control the direction of the discharged fluid.
Shown in FIG. 3 is a further embodiment of the present invention in which rather than providing a closed path for the fluids such as the nozzle 10, they follow theupper surface 30 of alinear section 31. The primary fluid may be directed through aslit 32 to induce flow of secondary fluid over thesurface 30 to thereby create lift or a vacuum above the section. The shape of the upper surface is identical with the shape of the entrance, exhaust and throat of the path through the nozzle and the above-noted ratios apply. However, the various distances instead of being diameters are distances (equal to radii) from areference plane 33 located above the section and corresponding to the axis of the path of the nozzle in FIG. ll. They are indicated in this embodiment by using the same letter with the addition of a prime thereto.
It will accordingly be appreciated that there has been disclosed a fluid device which utilizes the Coanda effect on a primary fluid to cause movement of a secondary fluid into which the primary fluid is ejected. The particular construction and relationship of the parts wherein the throat is made to have essentially no axial length, the entrance is made to very substantially increase from the throat and the primary inlet is placed close the throat together with having the exhaust extend from the throat outwardly in a shape which maintains laminar flow of the combined fluids enables the present invention to provide a substantial increase in efficiency over the heretofore known similar type devices.
Variations and modifications may be made within the scope of the claims and portions of the improvement may be used without others.
I claim:
1. A nozzle for effecting movement of a secondary fluid by a pressurized primary fluid comprising means forming a passageway having an entrance and an exhaust and an intermediate throat, said throat being the smallest cross-sectional area of the passageway nearest the entrance, a slit communicating with the passageway between the throat and the entrance, said throat'and slit each having a diameter and being axially spaced along the passageway, said entrance being open to the secondary fluid and a source of pressurized primary fluid being adapted to be connected to the slit whereby flow of primary fluid through the slit induces flow of secondary fluid into and through the passageway with both fluids being-discharged from the exhaust, the improvement comprising said slit being located closely adjacent said throat with the ratio of the throat diameter divided by the linear axial distance between the throat and slit being greater than essentially 3 and with the ratio of the throat diameter to slit diameter being less than 1.5.
2. The invention as defined in claim 1, in which the range of the ratio of the throat diameter to slit diameter is 1.1 to L3.
3. The invention as defined in claim 1 in which the angle of discharge between the slit and the axis of the passageway is greater than essentially 60 and is determined by the complement of the tangent of the angle of the ratio of the difference between the throat and slit radii divided by the linear axial distance between the throat and slit.
4. The invention as defined in claim 1 in which the entrance has an entrance end and in which the ratio of the linear axial distances from the throat to the entrance end and the throat to the slit is in the range of 2 to 4.
5. A fluid device for inducing movement of a secondary fluid by the use of an ejected primary fluid with the discharge being a combination of the two fluids comprising a first and a second surface, said surfaces being aligned and having one end common to define a throat, a common reference with said throat being the nearest part of the surfaces to the reference, the first surface forming an exhaust and diverging from the reference as it recedes from the throat and being shaped to effect laminar flow of fluid thereover, said second surface forming an entrance and diverging from the reference as it progresses from the throat in the opposite direction to the receding of the first surface and having its other end form an entrance end that is positioned in a supply of secondary fluid, a slit formed through the second surface and means adapted to connect the slit to a source of primary fluid under pressure so that a flow of primary fluid under pressure through the slit induces a flow of secondary fluid from the entrance along a path past the slit and throat and the first surface to have the combined fluids discharge from the first surface, the improvement comprising said throat having essentially no length along the path, the slit is just slightly further from the reference than the throat is from the reference and is located closely adjacent the throat with the ratio of twice the distance from the reference to the throat divided by the linear distance along the reference between the throat and slit being greater than essentially 3 and with the ratio of the distance from the reference to the slit divided by the distance from the reference to the throat being less than l.5.

Claims (5)

1. A nozzle for effecting movement of a secondary fluid by a pressurized primary fluid comprising means forming a passageway having aN entrance and an exhaust and an intermediate throat, said throat being the smallest cross-sectional area of the passageway nearest the entrance, a slit communicating with the passageway between the throat and the entrance, said throat and slit each having a diameter and being axially spaced along the passageway, said entrance being open to the secondary fluid and a source of pressurized primary fluid being adapted to be connected to the slit whereby flow of primary fluid through the slit induces flow of secondary fluid into and through the passageway with both fluids being discharged from the exhaust, the improvement comprising said slit being located closely adjacent said throat with the ratio of the throat diameter divided by the linear axial distance between the throat and slit being greater than essentially 3 and with the ratio of the throat diameter to slit diameter being less than 1.5.
5. A fluid device for inducing movement of a secondary fluid by the use of an ejected primary fluid with the discharge being a combination of the two fluids comprising a first and a second surface, said surfaces being aligned and having one end common to define a throat, a common reference with said throat being the nearest part of the surfaces to the reference, the first surface forming an exhaust and diverging from the reference as it recedes from the throat and being shaped to effect laminar flow of fluid thereover, said second surface forming an entrance and diverging from the reference as it progresses from the throat in the opposite direction to the receding of the first surface and having its other end form an entrance end that is positioned in a supply of secondary fluid, a slit formed through the second surface and means adapted to connect the slit to a source of primary fluid under pressure so that a flow of primary fluid under pressure through the slit induces a flow of secondary fluid from the entrance along a path past the slit and throat and the first surface to have the combined fluids discharge from the first surface, the improvement comprising said throat having essentially no length along the path, the slit is just slightly further from the reference than the throat is from the reference and is located closely adjacent the throat with the ratio of twice the distance from the reference to the throat divided by the linear distance along the reference between the throat and slit being greater than essentially 3 and with the ratio of the distance from the reference to the slit divided by the distance from the reference to the throat being less than 1.5.
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Cited By (138)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JPS5290806A (en)*1976-01-211977-07-30Vortec CorpMeans for amplifying flow rate
US4055870A (en)*1974-12-231977-11-01Yasuzi FurutsutsumiHand-operated apparatus for pneumatically removing dust
US4060001A (en)*1976-08-271977-11-29Phillips Petroleum CompanySampling probe and method of use
US4192461A (en)*1976-11-011980-03-11Arborg Ole J MPropelling nozzle for means of transport in air or water
EP0017437A1 (en)*1979-03-291980-10-15Sybron CorporationGas flow and sampling devices and gas monitoring system
JPS56151671U (en)*1981-03-091981-11-13
US4332529A (en)*1975-08-111982-06-01Morton AlperinJet diffuser ejector
US4385728A (en)*1981-01-301983-05-31Vortec CorporationFlow-amplifying nozzle
US4448354A (en)*1982-07-231984-05-15The United States Of America As Represented By The Secretary Of The Air ForceAxisymmetric thrust augmenting ejector with discrete primary air slot nozzles
EP0091758A3 (en)*1982-04-121984-07-25Morton AlperinMethod and apparatus for increasing the range of a wide-angle spray
US4492497A (en)*1981-03-261985-01-08The British Petroleum Company P.L.C.Apparatus and method for transferring solids
US4692106A (en)*1985-02-051987-09-08Reifenhauser Gmbh & Co. MaschinenfabrikApparatus for stretching the individual strands of a bundle of fibers or threads
US4721126A (en)*1985-09-091988-01-26Kiyoshi HoriiMethod of generating spiral fluid flow and the device therefor
FR2617273A1 (en)*1987-06-261988-12-30Passerat Jean LouisSnow gun for producing artificial snow
US4809412A (en)*1985-12-041989-03-07E. I. Du Pont De Nemours And CompanyApparatus for producing a novelty nub yarn
US4870728A (en)*1987-05-051989-10-03E. I. Du Pont De Nemours And CompanyApparatus for creating air turbulence
US5035110A (en)*1985-12-041991-07-30E. I. Du Pont De Nemours And CompanyNub yarn
US5347103A (en)*1993-08-311994-09-13Btu InternationalConvection furnace using shimmed gas amplifier
US5374163A (en)*1993-05-121994-12-20Jaikaran; AllanDown hole pump
US5407135A (en)*1993-11-161995-04-18Imperial Chemical Industries PlcHand-held air blower device
DE19538769A1 (en)*1995-10-181996-03-07Dieter SchulzUnderwater ram jet engine in open or pulsed configuration
WO1996020867A1 (en)1994-12-301996-07-11Grumman Aerospace CorporationFluidic control thrust vectoring nozzle
US5882789A (en)*1995-06-071999-03-16Pechiney RecherchePackaging material for forming an easy-opening reclosable packaging material and package
US5882749A (en)*1995-06-081999-03-16Pechiney RechercheEasy-opening reclosable package
FR2791949A1 (en)*1999-04-122000-10-13Jean CotonHydro-static propulser for marine vessel has double flow with secondary stage to accelerate water flow
DE20007137U1 (en)*2000-04-182001-08-23Schiller, Helmut, 64625 Bensheim Jet propulsion device for watercraft
US20030227955A1 (en)*2002-06-102003-12-11George EmanuelEfficient method and apparatus for generating singlet delta oxygen at an elevated pressure
US20040089281A1 (en)*2002-11-062004-05-13Robert MartinezPaintball gun with Coanda effect
US6983587B2 (en)2002-10-282006-01-10James ShumateMethod and apparatus for thrust augmentation for rocket nozzles
US20070110117A1 (en)*2002-06-102007-05-17George EmanuelEfficient Method and Apparatus for Generating Singlet Delta Oxygen at an Elevated Pressure
US20070164130A1 (en)*2005-10-132007-07-19Cool Clean Technologies, Inc.Nozzle device and method for forming cryogenic composite fluid spray
JP2008064100A (en)*2006-09-082008-03-21General Electric Co <Ge>Device for enhancing efficiency of energy extraction system
US20080315042A1 (en)*2007-06-202008-12-25General Electric CompanyThrust generator for a propulsion system
US20090060710A1 (en)*2007-09-042009-03-05Dyson Technology LimitedFan
US20100019079A1 (en)*2007-06-202010-01-28General Electric CompanyThrust generator for a rotary wing aircraft
WO2010046691A1 (en)2008-10-252010-04-29Dyson Technology LimitedA fan
US20100150699A1 (en)*2008-12-112010-06-17Dyson Technology LimitedFan
CN101825100A (en)*2009-03-042010-09-08戴森技术有限公司Fan assembly
US20100226763A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226751A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226752A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226801A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226771A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226754A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226787A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100225012A1 (en)*2009-03-042010-09-09Dyson Technology LimitedHumidifying apparatus
US20100226769A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226749A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226764A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan
US20100226758A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226750A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226753A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100254800A1 (en)*2008-09-232010-10-07Dyson Technology LimitedFan
US20110110805A1 (en)*2009-11-062011-05-12Dyson Technology LimitedFan
US20110236229A1 (en)*2010-03-232011-09-29Dyson Technology LimitedAccessory for a fan
GB2484502A (en)*2010-10-132012-04-18Dyson Technology LtdA fan assembly comprising a nozzle and means for creating an air flow through the nozzle.
GB2484503A (en)*2010-10-132012-04-18Dyson Technology LtdA fan assembly comprising a nozzle and means for creating an air flow through the nozzle.
GB2490000A (en)*2011-04-112012-10-17D C Norris & Company LtdApparatus for use in heating and mixing flowable food products
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CN101424279B (en)*2007-09-042014-05-28戴森技术有限公司Fan
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JP2014196748A (en)*2010-10-132014-10-16ダイソン テクノロジー リミテッドFan assembly
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US20150129040A1 (en)*2011-05-252015-05-14Siemens AktiengesellschaftApparatus for mixing a first stream and a second stream of a flow medium
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US20150252475A1 (en)*2014-03-102015-09-10Taiwan Semiconductor Manufacturing Co., Ltd.Cvd apparatus with gas delivery ring
US9151299B2 (en)2012-02-062015-10-06Dyson Technology LimitedFan
US9194596B2 (en)2010-12-232015-11-24Dyson Technology LimitedDucted ceiling mounted fan
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US9249809B2 (en)2012-02-062016-02-02Dyson Technology LimitedFan
USD749231S1 (en)2013-01-182016-02-09Dyson Technology LimitedHumidifier
US9283573B2 (en)2012-02-062016-03-15Dyson Technology LimitedFan assembly
US9328739B2 (en)2012-01-192016-05-03Dyson Technology LimitedFan
US9366449B2 (en)2012-03-062016-06-14Dyson Technology LimitedHumidifying apparatus
US9410711B2 (en)2013-09-262016-08-09Dyson Technology LimitedFan assembly
US9458853B2 (en)2011-07-272016-10-04Dyson Technology LimitedFan assembly
US9534610B2 (en)2011-07-152017-01-03Dyson Technology LimitedFan discharge duct having a scroll section
US9568006B2 (en)2012-05-162017-02-14Dyson Technology LimitedFan
US9568021B2 (en)2012-05-162017-02-14Dyson Technology LimitedFan
US9599356B2 (en)2014-07-292017-03-21Dyson Technology LimitedHumidifying apparatus
US9669588B2 (en)2014-09-042017-06-06H.B. Fuller CompanyDevices and methods for starting strip material in a substrate processing machine
US9732763B2 (en)2012-07-112017-08-15Dyson Technology LimitedFan assembly
US9745996B2 (en)2010-12-022017-08-29Dyson Technology LimitedFan
US9745981B2 (en)2011-11-112017-08-29Dyson Technology LimitedFan assembly
US9752789B2 (en)2012-03-062017-09-05Dyson Technology LimitedHumidifying apparatus
US9764512B2 (en)2014-09-042017-09-19H.B. Fuller CompanyDevices and methods for starting strip material in a substrate processing machine
US20170283080A1 (en)*2015-09-022017-10-05Jetoptera, Inc.Winglet ejector configurations
US9797612B2 (en)2013-01-292017-10-24Dyson Technology LimitedFan assembly
US9797411B2 (en)2010-12-232017-10-24Dyson Technology LimitedFan
US9797613B2 (en)2012-03-062017-10-24Dyson Technology LimitedHumidifying apparatus
US9797413B2 (en)2011-07-152017-10-24Dyson Technology LimitedBladeless ceiling fan
US9797414B2 (en)2013-07-092017-10-24Dyson Technology LimitedFan assembly
US9822778B2 (en)2012-04-192017-11-21Dyson Technology LimitedFan assembly
US9903602B2 (en)2014-07-292018-02-27Dyson Technology LimitedHumidifying apparatus
US20180058483A1 (en)*2016-08-252018-03-01Jetoptera, Inc.Variable geometry thruster
US9926804B2 (en)2010-11-022018-03-27Dyson Technology LimitedFan assembly
US9927136B2 (en)2012-03-062018-03-27Dyson Technology LimitedFan assembly
US9982677B2 (en)2014-07-292018-05-29Dyson Technology LimitedFan assembly
EP3379089A1 (en)*2017-03-202018-09-26Goodrich CorporationEvacuation assembly aspirator
US10094392B2 (en)2011-11-242018-10-09Dyson Technology LimitedFan assembly
US10145583B2 (en)2012-04-042018-12-04Dyson Technology LimitedHeating apparatus
US10207812B2 (en)2015-09-022019-02-19Jetoptera, Inc.Fluidic propulsive system and thrust and lift generator for aerial vehicles
US10408478B2 (en)2012-03-062019-09-10Dyson Technology LimitedHumidifying apparatus
US10428837B2 (en)2012-05-162019-10-01Dyson Technology LimitedFan
US10465928B2 (en)2012-03-062019-11-05Dyson Technology LimitedHumidifying apparatus
US10464668B2 (en)2015-09-022019-11-05Jetoptera, Inc.Configuration for vertical take-off and landing system for aerial vehicles
USD868627S1 (en)2018-04-272019-12-03Jetoptera, Inc.Flying car
US10612565B2 (en)2013-01-292020-04-07Dyson Technology LimitedFan assembly
US10653118B2 (en)2018-04-132020-05-19Peter B. LindgrenCoanda effect fish pump
US10661287B2 (en)2017-04-042020-05-26David P. JacksonPassive electrostatic CO2 composite spray applicator
EP3674559A1 (en)2018-12-242020-07-01LEONARDO S.p.A.Jet fan and vehicle comprising such a fan
CN111703563A (en)*2020-05-072020-09-25江苏大学 A bladeless submarine propulsion system
US20210372624A1 (en)*2018-12-142021-12-02General Electric CompanyRotating detonation propulsion system
EP4001803A1 (en)2020-11-202022-05-25Ingenierie de LoisirsSpray head for producing snow
US20220333624A1 (en)*2016-08-262022-10-20Jetoptera, Inc.Variable geometry thruster
US11491518B2 (en)*2016-11-292022-11-08Kyokutoh Co., Ltd.Air intake and blowout tool
DE112011105574B4 (en)*2011-08-302025-04-30Luoyang Northglass Technology Co., Ltd. Air amplifier having a function for amplifying an air flow

Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
FR1235302A (en)*1953-11-061960-07-08Sfericoanda Vacuum device
US3047208A (en)*1956-09-131962-07-31Sebac Nouvelle SaDevice for imparting movement to gases

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
FR1235302A (en)*1953-11-061960-07-08Sfericoanda Vacuum device
US3047208A (en)*1956-09-131962-07-31Sebac Nouvelle SaDevice for imparting movement to gases

Cited By (233)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4055870A (en)*1974-12-231977-11-01Yasuzi FurutsutsumiHand-operated apparatus for pneumatically removing dust
US4332529A (en)*1975-08-111982-06-01Morton AlperinJet diffuser ejector
JPS5290806A (en)*1976-01-211977-07-30Vortec CorpMeans for amplifying flow rate
US4060001A (en)*1976-08-271977-11-29Phillips Petroleum CompanySampling probe and method of use
US4192461A (en)*1976-11-011980-03-11Arborg Ole J MPropelling nozzle for means of transport in air or water
EP0017437A1 (en)*1979-03-291980-10-15Sybron CorporationGas flow and sampling devices and gas monitoring system
WO1980002197A1 (en)*1979-03-291980-10-16Sybron CorpImproved gas flow and gas sampling devices
US4385728A (en)*1981-01-301983-05-31Vortec CorporationFlow-amplifying nozzle
JPS56151671U (en)*1981-03-091981-11-13
US4492497A (en)*1981-03-261985-01-08The British Petroleum Company P.L.C.Apparatus and method for transferring solids
EP0091758A3 (en)*1982-04-121984-07-25Morton AlperinMethod and apparatus for increasing the range of a wide-angle spray
US4448354A (en)*1982-07-231984-05-15The United States Of America As Represented By The Secretary Of The Air ForceAxisymmetric thrust augmenting ejector with discrete primary air slot nozzles
US4692106A (en)*1985-02-051987-09-08Reifenhauser Gmbh & Co. MaschinenfabrikApparatus for stretching the individual strands of a bundle of fibers or threads
US4721126A (en)*1985-09-091988-01-26Kiyoshi HoriiMethod of generating spiral fluid flow and the device therefor
AU586498B2 (en)*1985-09-091989-07-13Kiyoshi HoriiMethod of generating spiral fluid flow and the device therefor
US5035110A (en)*1985-12-041991-07-30E. I. Du Pont De Nemours And CompanyNub yarn
US4809412A (en)*1985-12-041989-03-07E. I. Du Pont De Nemours And CompanyApparatus for producing a novelty nub yarn
US4870728A (en)*1987-05-051989-10-03E. I. Du Pont De Nemours And CompanyApparatus for creating air turbulence
FR2617273A1 (en)*1987-06-261988-12-30Passerat Jean LouisSnow gun for producing artificial snow
US5374163A (en)*1993-05-121994-12-20Jaikaran; AllanDown hole pump
US5347103A (en)*1993-08-311994-09-13Btu InternationalConvection furnace using shimmed gas amplifier
US5407135A (en)*1993-11-161995-04-18Imperial Chemical Industries PlcHand-held air blower device
WO1996020867A1 (en)1994-12-301996-07-11Grumman Aerospace CorporationFluidic control thrust vectoring nozzle
US5882789A (en)*1995-06-071999-03-16Pechiney RecherchePackaging material for forming an easy-opening reclosable packaging material and package
US5882749A (en)*1995-06-081999-03-16Pechiney RechercheEasy-opening reclosable package
DE19538769A1 (en)*1995-10-181996-03-07Dieter SchulzUnderwater ram jet engine in open or pulsed configuration
FR2791949A1 (en)*1999-04-122000-10-13Jean CotonHydro-static propulser for marine vessel has double flow with secondary stage to accelerate water flow
DE20007137U1 (en)*2000-04-182001-08-23Schiller, Helmut, 64625 Bensheim Jet propulsion device for watercraft
US20070110117A1 (en)*2002-06-102007-05-17George EmanuelEfficient Method and Apparatus for Generating Singlet Delta Oxygen at an Elevated Pressure
US20030227955A1 (en)*2002-06-102003-12-11George EmanuelEfficient method and apparatus for generating singlet delta oxygen at an elevated pressure
US7397836B2 (en)2002-06-102008-07-08Ksy CorporationEfficient method and apparatus for generating singlet delta oxygen at an elevated pressure
US7116696B2 (en)2002-06-102006-10-03Ksy CorporationEfficient method and apparatus for generating singlet delta oxygen at an elevated pressure
US6983587B2 (en)2002-10-282006-01-10James ShumateMethod and apparatus for thrust augmentation for rocket nozzles
US6863060B2 (en)2002-11-062005-03-08Robert MartinezPaintball gun with Coanda effect
US20040089281A1 (en)*2002-11-062004-05-13Robert MartinezPaintball gun with Coanda effect
US20070164130A1 (en)*2005-10-132007-07-19Cool Clean Technologies, Inc.Nozzle device and method for forming cryogenic composite fluid spray
US7389941B2 (en)2005-10-132008-06-24Cool Clean Technologies, Inc.Nozzle device and method for forming cryogenic composite fluid spray
JP2008064100A (en)*2006-09-082008-03-21General Electric Co <Ge>Device for enhancing efficiency of energy extraction system
US20100019079A1 (en)*2007-06-202010-01-28General Electric CompanyThrust generator for a rotary wing aircraft
US20080315042A1 (en)*2007-06-202008-12-25General Electric CompanyThrust generator for a propulsion system
CN101424279B (en)*2007-09-042014-05-28戴森技术有限公司Fan
US8308445B2 (en)2007-09-042012-11-13Dyson Technology LimitedFan
US20090060710A1 (en)*2007-09-042009-03-05Dyson Technology LimitedFan
US9249810B2 (en)2007-09-042016-02-02Dyson Technology LimitedFan
US8764412B2 (en)2007-09-042014-07-01Dyson Technology LimitedFan
US20110058935A1 (en)*2007-09-042011-03-10Dyson Technology LimitedFan
US20110223015A1 (en)*2007-09-042011-09-15Dyson Technology LimitedFan
US8403650B2 (en)*2007-09-042013-03-26Dyson Technology LimitedFan
US20090060711A1 (en)*2007-09-042009-03-05Dyson Technology LimitedFan
US20100254800A1 (en)*2008-09-232010-10-07Dyson Technology LimitedFan
US7931449B2 (en)2008-09-232011-04-26Dyson Technology LimitedFan
US20110164959A1 (en)*2008-09-232011-07-07Dyson Technology LimitedFan
US8348629B2 (en)2008-09-232013-01-08Dyston Technology LimitedFan
EP3130808A1 (en)*2008-10-252017-02-15Dyson Technology LimitedA fan
US9816531B2 (en)2008-10-252017-11-14Dyson Technology LimitedFan utilizing coanda surface
US10145388B2 (en)2008-10-252018-12-04Dyson Technology LimitedFan with a filter
CN102197227A (en)*2008-10-252011-09-21戴森技术有限公司A fan
WO2010046691A1 (en)2008-10-252010-04-29Dyson Technology LimitedA fan
KR101113034B1 (en)2008-12-112012-02-27다이슨 테크놀러지 리미티드A fan
US8092166B2 (en)2008-12-112012-01-10Dyson Technology LimitedFan
CN101749289B (en)*2008-12-112013-07-03戴森技术有限公司Fan
WO2010067088A1 (en)*2008-12-112010-06-17Dyson Technology LimitedA fan
US20100150699A1 (en)*2008-12-112010-06-17Dyson Technology LimitedFan
GB2466058B (en)*2008-12-112010-12-22Dyson Technology LtdFan nozzle with spacers
US20100226753A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8430624B2 (en)2009-03-042013-04-30Dyson Technology LimitedFan assembly
JP2010203447A (en)*2009-03-042010-09-16Dyson Technology LtdFan assembly
US7972111B2 (en)2009-03-042011-07-05Dyson Technology LimitedFan assembly
CN101825100B (en)*2009-03-042015-04-01戴森技术有限公司Fan assembly
US20100226750A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20110223014A1 (en)*2009-03-042011-09-15Dyson Technology LimitedFan assembly
US20100226758A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8052379B2 (en)2009-03-042011-11-08Dyson Technology LimitedFan assembly
AU2010219488B2 (en)*2009-03-042011-12-22Dyson Technology LimitedA fan assembly
US20100226764A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan
US20100226749A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US10221860B2 (en)2009-03-042019-03-05Dyson Technology LimitedFan assembly
US20100226769A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8197226B2 (en)*2009-03-042012-06-12Dyson Technology LimitedFan assembly
US8246317B2 (en)2009-03-042012-08-21Dyson Technology LimitedFan assembly
US10006657B2 (en)2009-03-042018-06-26Dyson Technology LimitedFan assembly
US20100225012A1 (en)*2009-03-042010-09-09Dyson Technology LimitedHumidifying apparatus
US20100226787A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8308432B2 (en)2009-03-042012-11-13Dyson Technology LimitedFan assembly
US8348597B2 (en)2009-03-042013-01-08Dyson Technology LimitedFan assembly
US8348596B2 (en)2009-03-042013-01-08Dyson Technology LimitedFan assembly
US20100226754A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US9599368B2 (en)*2009-03-042017-03-21Dyson Technology LimitedNozzle for bladeless fan assembly with heater
US8356804B2 (en)2009-03-042013-01-22Dyson Technology LimitedHumidifying apparatus
US20100226771A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8403640B2 (en)2009-03-042013-03-26Dyson Technology LimitedFan assembly
US20100226801A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8408869B2 (en)2009-03-042013-04-02Dyson Technology LimitedFan assembly
GB2468331B (en)*2009-03-042011-02-16Dyson Technology LtdA fan
US8469658B2 (en)2009-03-042013-06-25Dyson Technology LimitedFan
US8469660B2 (en)2009-03-042013-06-25Dyson Technology LimitedFan assembly
US8469655B2 (en)2009-03-042013-06-25Dyson Technology LimitedFan assembly
US20100226752A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US8529203B2 (en)2009-03-042013-09-10Dyson Technology LimitedFan assembly
US8613601B2 (en)2009-03-042013-12-24Dyson Technology LimitedFan assembly
US8684687B2 (en)2009-03-042014-04-01Dyson Technology LimitedFan assembly
US8708650B2 (en)2009-03-042014-04-29Dyson Technology LimitedFan assembly
US8714937B2 (en)2009-03-042014-05-06Dyson Technology LimitedFan assembly
US8721286B2 (en)2009-03-042014-05-13Dyson Technology LimitedFan assembly
US9513028B2 (en)2009-03-042016-12-06Dyson Technology LimitedFan assembly
US20100226751A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US20100226763A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
CN104389822A (en)*2009-03-042015-03-04戴森技术有限公司Fan assembly
US20150093098A1 (en)*2009-03-042015-04-02Dyson Technology LimitedFan assembly
US8932028B2 (en)2009-03-042015-01-13Dyson Technology LimitedFan assembly
CN101825100A (en)*2009-03-042010-09-08戴森技术有限公司Fan assembly
US8783663B2 (en)2009-03-042014-07-22Dyson Technology LimitedHumidifying apparatus
US8784049B2 (en)2009-03-042014-07-22Dyson Technology LimitedFan
US8784071B2 (en)2009-03-042014-07-22Dyson Technology LimitedFan assembly
US20100226797A1 (en)*2009-03-042010-09-09Dyson Technology LimitedFan assembly
US9127689B2 (en)2009-03-042015-09-08Dyson Technology LimitedFan assembly
US9004878B2 (en)2009-11-062015-04-14Dyson Technology LimitedFan having a magnetically attached remote control
US8454322B2 (en)2009-11-062013-06-04Dyson Technology LimitedFan having a magnetically attached remote control
US20110110805A1 (en)*2009-11-062011-05-12Dyson Technology LimitedFan
US8770946B2 (en)2010-03-232014-07-08Dyson Technology LimitedAccessory for a fan
US8882451B2 (en)2010-03-232014-11-11Dyson Technology LimitedFan
US20110236229A1 (en)*2010-03-232011-09-29Dyson Technology LimitedAccessory for a fan
US9011116B2 (en)2010-05-272015-04-21Dyson Technology LimitedDevice for blowing air by means of a nozzle assembly
US8873940B2 (en)2010-08-062014-10-28Dyson Technology LimitedFan assembly
US8366403B2 (en)2010-08-062013-02-05Dyson Technology LimitedFan assembly
US10344773B2 (en)2010-08-062019-07-09Dyson Technology LimitedFan assembly
US8734094B2 (en)2010-08-062014-05-27Dyson Technology LimitedFan assembly
US8894354B2 (en)2010-09-072014-11-25Dyson Technology LimitedFan
US9745988B2 (en)2010-09-072017-08-29Dyson Technology LimitedFan
US10100836B2 (en)2010-10-132018-10-16Dyson Technology LimitedFan assembly
GB2484502B (en)*2010-10-132018-05-09Dyson Technology LtdA fan assembly
GB2484503A (en)*2010-10-132012-04-18Dyson Technology LtdA fan assembly comprising a nozzle and means for creating an air flow through the nozzle.
GB2484502A (en)*2010-10-132012-04-18Dyson Technology LtdA fan assembly comprising a nozzle and means for creating an air flow through the nozzle.
JP2014196748A (en)*2010-10-132014-10-16ダイソン テクノロジー リミテッドFan assembly
US8967979B2 (en)2010-10-182015-03-03Dyson Technology LimitedFan assembly
US8967980B2 (en)2010-10-182015-03-03Dyson Technology LimitedFan assembly
US9926804B2 (en)2010-11-022018-03-27Dyson Technology LimitedFan assembly
US9745996B2 (en)2010-12-022017-08-29Dyson Technology LimitedFan
US9797411B2 (en)2010-12-232017-10-24Dyson Technology LimitedFan
US9004858B2 (en)2010-12-232015-04-14Dyson Technology LimitedFan
US9194596B2 (en)2010-12-232015-11-24Dyson Technology LimitedDucted ceiling mounted fan
GB2490000B (en)*2011-04-112016-06-22D C Norris & Company LtdApparatus and method for processing food
GB2523277A (en)*2011-04-112015-08-19D C Norris & Company LtdApparatus and method for processing food
GB2490022B (en)*2011-04-112016-06-22Dc Norris & Company LtdMethod and apparatus, particularly but not exclusively for processing flowable food products
GB2490022A (en)*2011-04-112012-10-17Dc Norris & Company LtdApparatus and method, particularly for processing flowable food products
GB2490000A (en)*2011-04-112012-10-17D C Norris & Company LtdApparatus for use in heating and mixing flowable food products
US20150129040A1 (en)*2011-05-252015-05-14Siemens AktiengesellschaftApparatus for mixing a first stream and a second stream of a flow medium
US20130017105A1 (en)*2011-07-152013-01-17Dyson Technology LimitedFan
US9062685B2 (en)*2011-07-152015-06-23Dyson Technology LimitedFan assembly with tangential air inlet
AU2012285536B2 (en)*2011-07-152015-11-05Dyson Technology LimitedA fan
US9534610B2 (en)2011-07-152017-01-03Dyson Technology LimitedFan discharge duct having a scroll section
US9797413B2 (en)2011-07-152017-10-24Dyson Technology LimitedBladeless ceiling fan
US9127855B2 (en)2011-07-272015-09-08Dyson Technology LimitedFan assembly
US9291361B2 (en)2011-07-272016-03-22Dyson Technology LimitedFan assembly
US9335064B2 (en)2011-07-272016-05-10Dyson Technology LimitedFan assembly
US10094581B2 (en)2011-07-272018-10-09Dyson Technology LimitedFan assembly
US9458853B2 (en)2011-07-272016-10-04Dyson Technology LimitedFan assembly
DE112011105574B4 (en)*2011-08-302025-04-30Luoyang Northglass Technology Co., Ltd. Air amplifier having a function for amplifying an air flow
US9745981B2 (en)2011-11-112017-08-29Dyson Technology LimitedFan assembly
US10094392B2 (en)2011-11-242018-10-09Dyson Technology LimitedFan assembly
US9328739B2 (en)2012-01-192016-05-03Dyson Technology LimitedFan
US9249809B2 (en)2012-02-062016-02-02Dyson Technology LimitedFan
US9283573B2 (en)2012-02-062016-03-15Dyson Technology LimitedFan assembly
US9151299B2 (en)2012-02-062015-10-06Dyson Technology LimitedFan
US9927136B2 (en)2012-03-062018-03-27Dyson Technology LimitedFan assembly
US9752789B2 (en)2012-03-062017-09-05Dyson Technology LimitedHumidifying apparatus
US10408478B2 (en)2012-03-062019-09-10Dyson Technology LimitedHumidifying apparatus
US9797613B2 (en)2012-03-062017-10-24Dyson Technology LimitedHumidifying apparatus
US9366449B2 (en)2012-03-062016-06-14Dyson Technology LimitedHumidifying apparatus
US10465928B2 (en)2012-03-062019-11-05Dyson Technology LimitedHumidifying apparatus
US10563875B2 (en)2012-03-062020-02-18Dyson Technology LimitedHumidifying apparatus
US10145583B2 (en)2012-04-042018-12-04Dyson Technology LimitedHeating apparatus
US9822778B2 (en)2012-04-192017-11-21Dyson Technology LimitedFan assembly
US10428837B2 (en)2012-05-162019-10-01Dyson Technology LimitedFan
US9568021B2 (en)2012-05-162017-02-14Dyson Technology LimitedFan
US9568006B2 (en)2012-05-162017-02-14Dyson Technology LimitedFan
US10309420B2 (en)2012-05-162019-06-04Dyson Technology LimitedFan
US9732763B2 (en)2012-07-112017-08-15Dyson Technology LimitedFan assembly
USD747450S1 (en)2013-01-182016-01-12Dyson Technology LimitedHumidifier
USD746966S1 (en)2013-01-182016-01-05Dyson Technology LimitedHumidifier
USD749231S1 (en)2013-01-182016-02-09Dyson Technology LimitedHumidifier
USD746425S1 (en)2013-01-182015-12-29Dyson Technology LimitedHumidifier
US10612565B2 (en)2013-01-292020-04-07Dyson Technology LimitedFan assembly
US9797612B2 (en)2013-01-292017-10-24Dyson Technology LimitedFan assembly
USD729925S1 (en)2013-03-072015-05-19Dyson Technology LimitedFan
USD729375S1 (en)2013-03-072015-05-12Dyson Technology LimitedFan
USD729376S1 (en)2013-03-072015-05-12Dyson Technology LimitedFan
USD729372S1 (en)2013-03-072015-05-12Dyson Technology LimitedFan
USD729373S1 (en)2013-03-072015-05-12Dyson Technology LimitedFan
USD729374S1 (en)2013-03-072015-05-12Dyson Technology LimitedFan
US20140255173A1 (en)*2013-03-112014-09-11Dyson Technology LimitedFan assembly
US9797414B2 (en)2013-07-092017-10-24Dyson Technology LimitedFan assembly
USD728770S1 (en)2013-08-012015-05-05Dyson Technology LimitedFan
USD728769S1 (en)2013-08-012015-05-05Dyson Technology LimitedFan
USD728092S1 (en)2013-08-012015-04-28Dyson Technology LimitedFan
US9410711B2 (en)2013-09-262016-08-09Dyson Technology LimitedFan assembly
USD747454S1 (en)2014-01-092016-01-12Dyson Technology LimitedFan
USD747453S1 (en)2014-01-092016-01-12Dyson Technology LimitedFan
US20150252475A1 (en)*2014-03-102015-09-10Taiwan Semiconductor Manufacturing Co., Ltd.Cvd apparatus with gas delivery ring
US9741575B2 (en)*2014-03-102017-08-22Taiwan Semiconductor Manufacturing Co., Ltd.CVD apparatus with gas delivery ring
US9982677B2 (en)2014-07-292018-05-29Dyson Technology LimitedFan assembly
US9599356B2 (en)2014-07-292017-03-21Dyson Technology LimitedHumidifying apparatus
US9903602B2 (en)2014-07-292018-02-27Dyson Technology LimitedHumidifying apparatus
US9764512B2 (en)2014-09-042017-09-19H.B. Fuller CompanyDevices and methods for starting strip material in a substrate processing machine
US9669588B2 (en)2014-09-042017-06-06H.B. Fuller CompanyDevices and methods for starting strip material in a substrate processing machine
US11053012B2 (en)*2015-09-022021-07-06Jetoptera, Inc.Winglet ejector configurations
US10800538B2 (en)2015-09-022020-10-13Jetoptera, Inc.Ejector and airfoil configurations
US10464668B2 (en)2015-09-022019-11-05Jetoptera, Inc.Configuration for vertical take-off and landing system for aerial vehicles
US10207812B2 (en)2015-09-022019-02-19Jetoptera, Inc.Fluidic propulsive system and thrust and lift generator for aerial vehicles
US20170283080A1 (en)*2015-09-022017-10-05Jetoptera, Inc.Winglet ejector configurations
EP4403760A2 (en)2015-09-022024-07-24Jetoptera, Inc.Fluidic propulsive system and thrust and lift generator for aerial vehicles
US20230009569A1 (en)*2016-08-252023-01-12Jetoptera, Inc.Variable geometry thruster
US20180058483A1 (en)*2016-08-252018-03-01Jetoptera, Inc.Variable geometry thruster
US20240117828A1 (en)*2016-08-252024-04-11Jetoptera, Inc.Variable geometry thruster
US11396896B2 (en)*2016-08-252022-07-26Jetoptera, Inc.Variable geometry thruster
US12000336B2 (en)*2016-08-262024-06-04Jetoptera, Inc.Variable geometry thruster
US20220333624A1 (en)*2016-08-262022-10-20Jetoptera, Inc.Variable geometry thruster
US11491518B2 (en)*2016-11-292022-11-08Kyokutoh Co., Ltd.Air intake and blowout tool
US10807726B2 (en)2017-03-202020-10-20Goodrich CorporationEvacuation assembly aspirator
EP3379089A1 (en)*2017-03-202018-09-26Goodrich CorporationEvacuation assembly aspirator
US10661287B2 (en)2017-04-042020-05-26David P. JacksonPassive electrostatic CO2 composite spray applicator
US10653118B2 (en)2018-04-132020-05-19Peter B. LindgrenCoanda effect fish pump
USD868627S1 (en)2018-04-272019-12-03Jetoptera, Inc.Flying car
US20210372624A1 (en)*2018-12-142021-12-02General Electric CompanyRotating detonation propulsion system
US11898757B2 (en)*2018-12-142024-02-13General Electric CompanyRotating detonation propulsion system
US11885353B2 (en)*2018-12-242024-01-30Leonardo S.P.A.Jet fan and vehicle comprising such a fan
US20220056917A1 (en)*2018-12-242022-02-24Leonardo S.P.A.Jet fan and vehicle comprising such a fan
WO2020136474A1 (en)2018-12-242020-07-02Leonardo S.P.A.Jet fan and vehicle comprising such a fan
EP3674559A1 (en)2018-12-242020-07-01LEONARDO S.p.A.Jet fan and vehicle comprising such a fan
CN111703563B (en)*2020-05-072022-03-22江苏大学 A bladeless submarine propulsion system
CN111703563A (en)*2020-05-072020-09-25江苏大学 A bladeless submarine propulsion system
FR3116449A1 (en)*2020-11-202022-05-27Ingenierie De Loisirs Spray head to produce snow
EP4001803A1 (en)2020-11-202022-05-25Ingenierie de LoisirsSpray head for producing snow

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