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EP 2 004 331 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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03.08.2011 Bulletin 2011/31 |
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Date of filing: 14.03.2007 |
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International Patent Classification (IPC):
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International application number: |
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PCT/GB2007/000871 |
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International publication number: |
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WO 2007/104967 (20.09.2007 Gazette 2007/38) |
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SPRAY GUN HEADS
SPRÜHPISTOLENKÖPFE
TETES DE PISTOLETS PULVERISATEURS
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC MT NL PL PT RO
SE SI SK TR |
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Priority: |
14.03.2006 GB 0605105
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Date of publication of application: |
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24.12.2008 Bulletin 2008/52 |
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Proprietor: BWI plc |
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Prescote, Merseyside L34 9JS (GB) |
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Inventor: |
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- LYON, Barry
Huyton
Merseyside L36 4QG (GB)
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Representative: Cawley, Aimee Elizabeth et al |
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Marks & Clerk LLP
Sussex House
83-85 Mosley Street Manchester
M2 3LG Manchester
M2 3LG (GB) |
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References cited: :
EP-A- 1 745 854 WO-A-2004/035222 US-A1- 2005 173 561
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WO-A-03/051524 DE-A1- 2 924 174 US-B1- 6 494 387
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] This invention relates to spray gun heads.
[0002] Multiple fluid atomiser spray guns are used for spaying fluid solutions in the food,
agricultural, pharmaceutical and similar industries. Such spray guns generally have
a spray delivery head that has a central nozzle for say a coating fluid, an orifice
for introducing atomising air to the fluid to produce a spray plume and additional
orifices for air to control the pattern of spray plume. Document
US6494387 discloses a spray head according to the preamble of claim 1.
[0003] In one known nozzle arrangement the atomising air orifice is an annulus surrounding
a projecting fluid delivery nozzle and control fluid orifices are provided either
side of the central nozzle in angled faces of the spray head, so that the central
nozzle is in a trough.
[0004] A drawback with this arrangement is that there is a tendency for droplets of the
fluid to fall back and adhere to surfaces of the nozzle body, which is known as bearding.
This droplet build up continues whilst spraying leading to a loss in nozzle performance
including blockage. Furthermore, the build up of droplets can solidify and break off
and fall into and contaminate the process. This results from the presence of low-pressure
zones adj acent to the outlet orifices due to the sudden geometrical enlargement,
through which the escaping air is emitted. These low-pressure zones generate recirculating
eddy currents in the air flow, which entrain fluid droplets and deliver them onto
the local external faces of the spray head adjacent to the orifices and annulus. Over
time these droplets stick to each other forming the undesirable build up mainly in
the nozzle region.
[0005] It has been proposed to make the face of a spray gun nozzle completely flat but this
does not prevent bearding.
[0006] An object of this invention is to provide a spray nozzle for a multiple fluid spray
gun, which at least reduces the effect of bearding.
[0007] According to the invention a spray head for a multiple fluid atomiser spray gun has
all the features of claim 1.
[0008] Preferable embodiments of the inventon are defined by the dependent claims.
[0009] Spray heads of the invention are preferably made of metal or of plastics material
may be served to a spray gun by means of a locking collar or nut.
[0010] This invention will now be further described, by way of example only, with reference
to the accompanying drawings, in which:
Figure 1 is a side view of a spray nozzle according to the invention;
Figure 2 is a plan view of the spray nozzle of Figure 1;
Figure 3 is a section on line AA of Figure 2;
Figure 4 shows the spray nozzle of Figure 1 from above the side;
Figure 5 is a sectional view of the spray nozzle of Figure 1 showing spray patterns;
Figure 6 is another side view of the spray nozzle of Figure 1;
Figure 7 is a view from below and one side of the spray nozzle of Figure 1; and
Figure 8 is an end view of the spray nozzle of Figure 1.
[0011] Referring to the accompanying drawings, a spray head 10 for a multiple fluid atomiser
spray gun has a body 12 having a circular base 14 for mounting on a spray gun apparatus
and sloping faces 16 leading to a narrow spray delivery face 18.
[0012] The body 12 has a central passage 20 for delivery of coating fluid to a delivery
nozzle 22 end part only and for delivery of atomising fluid though an annular orifice
24 surrounding the main fluid delivery nozzle. The nozzle 22 for the coating fluid
protrudes beyond the spray face 18, which enables interaction of air and fluid streams
beyond the spray face helping to inhibit atomised fluid droplets being picked up by
air currents in the vicinity of the face. At the tip of the nozzle 22 its outer edge
is chamfered at 23 to reduce a low pressure zone at the nozzle tip. Figure 5 of the
drawings shows the zone of low pressure at 25. By contrast a conventional nozzle has
a generally square tip, which creates a larger low pressure zone at the nozzle tip.
On opposite sides of the delivery nozzle are spray pattern controlling fluid delivery
orifices 26, 28, whose axes are inclined relative to the axis of the coating fluid
delivery nozzle 22. The orifices 26, 28 are served by bores 30, 32 respectively, which
are interconnected via an annular channel 34 in the base of the spray head. Annular
wall 36, which separates the passage 20 from the channel 34 serves to locate the spray
head relative to the spray gun apparatus. The spray head may be of metal or plastics
material.
[0013] Through the spray head a coating fluid is delivered via the nozzle 22 and air delivered
through the annular orifice 24 atomises the coating fluid to create a spray plume,
which is generally conical in shape (see particularly Figure 5). However, the spray
pattern controlling fluid orifices 26, 28 deliver air from either side of the coating
fluid spray plume to change the shape of the spray plume to being of generally oval
section in order to control the area of delivery of the coating fluid. Typically,
the coating fluid is applied to tablets in the pharmaceutical industry.
[0014] The spray delivery face 18 is shaped in the region of the delivery nozzle 22 and
the orifices 24, 26 and 28 in order to allow atomising air and spray pattern controlling
air to drive droplets of main fluid from the region to inhibit bearding.
[0015] The part of the face surrounding the annular orifice is dish shaped (38) and at opposite
ends of the dish the face 40 slopes down to the spray shaping fluid orifices at 26
and 28. Smooth transitions between the dish 38 at opposite ends and the respective
slopes 40 are shown at 42. The sides of the dish 38 and the sloping faces 40 are generally
at less than 90° to the axes of their respective orifices, so that the air from those
orifices tends to drive any droplets of the coating fluid from the delivery face in
the region of the nozzle and orifices.
[0016] More specifically, the spray face 18 of the spray head is so profiled in the region
of the main coating fluid nozzle, atomising fluid annulus and spray pattern controlling
orifices that the escaping air is provided with a gradual geometrical enlargement
as defined by the dish 38, slopes 40 and smooth transitions 42. The effect of the
gradual geometrical enlargement is a gradual air release (as opposed to a sudden release)
in that the air does not form recirculating eddy currents and thus little or no entrapment
of coating fluid droplets back onto the spray face occurs.
[0017] Figure 5 illustrates the atomising air plume 50 emitted from the annular orifice
24, the spray pattern controlling air plume 52 emitted from orifices 26 and 28 and
the zone of interaction between both air plumes 50 and 52 to provide a combined air
plume 54. The air streams shown as 50 and 52 keep the local external surfaces free
from droplets, which would otherwise stick to the surfaces and cause bearding.
[0018] Broken line 56 represents the typical shape of existing nozzle designs. Considering
the likely shape of the air plumes as they emerge from orifices 26 and 28 it is probable
that a low pressure zone is created in the region between these orifices and the annular
orifice, which generates recirculating eddy currents in the air-flow, which entrain
small droplets back onto the spray face adjacent to the orifices 24, 26 and 28. The
invention eliminates this low pressure zone with solid material as shown at 58, which
then through geometrical form provides a gradual geometrical enlargement which has
the effect of eliminating the recirculating eddy currents normally produced with a
face shown by the line 56.
[0019] Figure 8 shows the sloping faces 16, which provide a path for spray plume replenishing
air 60 to enter the vicinity of the orifices 24, 26 and 28 and replace air consumed
by the air plumes 50 and 52. On existing designs shallow angled faces illustrated
by line 62 do not allow replenishing air 60 to enter the vicinity of the atomising
and pattern air outlets akin to orifices 24, 26 and 28 creating low-pressure zones
that result in bearding.
1. A spray head (10) for a multiple fluid atomiser spray gun comprising a spray delivery
face (18) having a main fluid delivery nozzle (22) and an atomising fluid delivery
orifice (24) associated therewith, the spray delivery face (18) being shaped to cause
droplets of said main fluid to be driven away from the spray delivery face (18) by
atomising fluid from the atomising flu.d delivery orifice (24), wherein
the main fluid delivery nozzle (22) is surrounded by the annular atomising fluid delivery
orifice (24), characterised in that the spray delivery face surrounding this orifice is in the form of an elongate cavity
(38) having a continuous surface from which the main fluid delivery nozzle (22) projects.
2. A spray head (10) as claimed in claim 1, wherein the main fluid delivery nozzle (22)
projects beyond the annular orifice (24).
3. A spray head (10) as claimed in claim 1 or 2, wherein the spray delivery face (18)
outwardly of and adjacent to the atomising fluid delivery orifice (24) is at an angle
of less than 90° to the axis of the orifice.
4. A spray head (10) as claimed in any one of claims 1 to 3 having one or more orifices
(26, 28) for delivery of spray pattern controlling fluid to shape the atomised fluid
spray.
5. A spray head (10) as claimed in claim 4, wherein the spray delivery face (18) is shaped
to cause droplets of said main fluid to be driven away from the spray delivery face
in the region of the spray pattern controlling fluid delivery orifice or orifices
(26, 28).
6. A spray head (10) as claimed in claim 5, wherein the or each shaping fluid delivery
orifice (26, 28) has an axis at an angle to deliver its fluid across the main fluid
atomised spray.
7. A spray head (10) as claimed in claim 5 or 6, wherein the spray delivery face (18)
inwards of the or each shaping fluid orifice (26, 28) is at an angle of less than
90° to the axis of the orifice.
8. A spray head (10) as claimed in any one of claims 1 to 7 having it generally circular
base (14) and a pair of opposed sloping sides (16) towards to the spray delivery face
(18).
9. A spray head (10) as claimed in any one of claims 1 to 8, having a generally central
passage (20) leading to the main fluid delivery nozzle (22) and the associated atomising
fluid delivery nozzle (24).
10. A spray head (10) as claimed in any one of claims 4 to 9, wherein the or each spray
pattern controlling fluid delivery orifices (26, 28) is supplied through its own bore
(30, 32).
11. A spray head (10) as claimed in claim 10, wherein, where more than one spray pattern
controlling fluid delivery orifice (26, 28) is provided, their bores (30, 32) are
interconnected.
12. A spray head (10) as claimed in claim 11, wherein the bores (30, 32) are interconnected
by means of an annular passage (34).
13. A spray head (10) as claimed in any one of claims 1 to 12, wherein, at opposite ends
of the elongate cavity (38), the delivery face (18) slopes down to a spray pattern
controlling fluid delivery orifice (26, 28).
1. Sprühkopf (10) für eine Mehrfluidzerstäuber-Spritzpistole, der eine Sprühnebel-Abgabefläche
(18) umfasst, die eine Hauptfluid-Abgabedüse (22) und eine mit derselben verknüpfte
Zerstäubungsfluid-Abgabeöffnung (24) hat, wobei die Sprühnebel-Abgabefläche (18) so
geformt ist, dass sie bewirkt, dass Tröpfchen des Hauptfluids durch ein Zerstäubungsfluid
aus der Zerstäubungsfluid-Abgabeöffnung (24) von der Sprühnebel-Abgabefläche (18)
weggetrieben werden, wobei
die Hauptfluid-Abgabedüse (22) durch die ringförmige Zerstäubungsfluid-Abgabeöffnung
(24) umschlossen wird, dadurch gekennzeichnet, dass die Sprühnebel-Abgabefläche, welche diese Öffnung umschließt, die Form eines länglichen
Hohlraums (38) hat, der eine durchgehende Oberfläche hat, von der die Hauptfluid-Abgabedüse
(22) vorspringt.
2. Sprühkopf (10) nach Anspruch 1, wobei die Hauptfluid-Abgabedüse (22) über die ringförmige
Öffnung (24) hinaus vorspringt.
3. Sprühkopf (10) nach Anspruch 1 oder 2, wobei die Sprühnebel-Abgabefläche (18) von
der Zerstäubungsfluid-Abgabeöffnung (24) nach außen und angrenzend an dieselbe in
einem Winkel von weniger als 90° zu der Achse der Öffnung verläuft.
4. Sprühkopf (10) nach einem der Ansprüche 1 bis 3, der eine oder mehrere Öffnungen (26,
28) zur Abgabe eines Sprühmuster-Steuerungsfluids hat, um den zerstäubten Fluid-Sprühnebel
zu formen.
5. Sprühkopf (10) nach Anspruch 4, wobei die Sprühnebel-Abgabefläche (18) so geformt
ist, dass sie bewirkt, dass Tröpfchen des Hauptfluids in dem Bereich der Sprühmuster-Steuerungsfluid-Abgabeöffnung
oder -öffnungen (26, 28) von der Sprühnebel-Abgabefläche weggetrieben werden.
6. Sprühkopf (10) nach Anspruch 5, wobei die oder jede Sprühmuster-Steuerungsfluid-Abgabeöffnung
(26, 28) eine Achse in einem Winkel hat, um ihr Fluid durch den zerstäubten Hauptfluid-Sprühnebel
abzugeben.
7. Sprühkopf (10) nach Anspruch 5 oder 6, wobei die Sprühnebel-Abgabefläche (18) von
der oder jeder Sprühmuster-Steuerungsfluid-Abgabeöffnung (26, 28) nach innen in einem
Winkel von weniger als 90° zu der Achse der Öffnung verläuft.
8. Sprühkopf (10) nach einem der Ansprüche 1 bis 7, der eine im Allgemeinen kreisförmige
Basis (14) und ein Paar von entgegengesetzten abfallenden Seiten (16) zu der Sprühnebel-Abgabefläche
(18) hin hat.
9. Sprühkopf (10) nach einem der Ansprüche 1 bis 8, der einen im Allgemeinen mittigen
Durchgang (20) hat, der zu der Hauptfluid-Abgabedüse (22) und der Zerstäubungsfluid-Abgabeöffnung
(24) führt.
10. Sprühkopf (10) nach einem der Ansprüche 4 bis 9, wobei die oder jede Sprühmuster-Steuerungsfluid-Abgabeöffnung
(26, 28) durch ihre eigene Bohrung (30, 32) versorgt wird.
11. Sprühkopf (10) nach Anspruch 10, wobei, wenn mehr als eine Sprühmuster-Steuerungsfluid-Abgabeöffnung
(26, 28) bereitgestellt wird, deren Bohrungen (30, 32) miteinander verbunden sind.
12. Sprühkopf (10) nach Anspruch 11, wobei die Bohrungen (30, 32) mit Hilfe eines ringförmigen
Durchgangs (34) miteinander verbunden sind.
13. Sprühkopf (10) nach einem der Ansprüche 1 bis 12, wobei die Abgabefläche (18), an
entgegengesetzten Enden des länglichen Hohlraums (38), zu einer Sprühmuster-Steuerungsfluid-Abgabeöffnung
(26, 28) hinab abfällt.
1. Tête de pulvérisation (10) pour un pistolet pulvérisateur atomiseur de fluides multiples,
comprenant une face de distribution d'un fluide de pulvérisation (18), comportant
une buse de distribution d'un fluide principal (22) et un orifice de distribution
d'un fluide à atomisation (24) qui y est associé, la face de distribution du fluide
de pulvérisation (18) étant formée de sorte à entraîner des gouttelettes dudit fluide
principal à l'écart de la face de distribution du fluide de pulvérisation (18) en
atomisant le fluide à partir de l'orifice de distribution du fluide à atomisation
(24), dans lequel
la buse de distribution du fluide principal (22) est entourée par l'orifice annulaire
de distribution de fluide à atomisation (24), caractérisée en ce que la face de distribution du fluide de pulvérisation entourant cet orifice a la forme
d'une cavité allongée (38), comportant une surface continue à partir de laquelle déborde
la buse de distribution du fluide principal (22).
2. Tête de pulvérisation (10) selon la revendication 1, dans laquelle la buse de distribution
du fluide principal (22) déborde au-delà de l'orifice annulaire (24).
3. Tête de pulvérisation (10) selon les revendications 1 ou 2, dans laquelle la face
de distribution du fluide de pulvérisation (18), agencée vers l'extérieur de l'orifice
de distribution du fluide à atomisation (24) et adjacente à celui-ci, forme un angle
de moins de 90° par rapport à l'axe de l'orifice.
4. Tête de pulvérisation (10) selon l'une quelconque des revendications 1 à 3, comportant
un ou plusieurs orifices (26, 28) pour distribuer un fluide contrôlant le motif de
la pulvérisation, en vue de former la pulvérisation de fluide atomisé.
5. Tête de pulvérisation (10) selon la revendication 4, dans laquelle la face de distribution
du fluide de pulvérisation (18) est formée de sorte à entraîner des gouttelettes dudit
fluide principal à l'écart de la face de distribution du fluide de pulvérisation dans
la région de l'orifice ou des orifices de distribution contrôlant le motif de pulvérisation
(26, 28).
6. Tête de pulvérisation (10) selon la revendication 5, dans laquelle le ou chaque orifice
de distribution du fluide de formage (26, 28) comporte un axe pour distribuer son
fluide à travers la pulvérisation atomisée du fluide principal.
7. Tête de pulvérisation (10) selon les revendications 5 ou 6, dans laquelle la face
de distribution du fluide de pulvérisation (18), située vers l'intérieur de ou de
chaque orifice de formage du fluide (26, 28), forme un angle inférieur à 90° par rapport
à l'axe de l'orifice.
8. Tête de pulvérisation (10) selon l'une quelconque des revendications 1 à 7, comportant
une base généralement circulaire (14) et une paire de côtés inclinés opposés (16)
orientés vers la face de distribution du fluide de pulvérisation (18).
9. Tête de pulvérisation (10) selon l'une quelconque des revendications 1 à 8, comportant
un passage généralement central (20) menant vers la buse de distribution du fluide
principal (22) et la buse de distribution du fluide atomisé associée (24).
10. Tête de pulvérisation (10) selon l'une quelconque des revendications 4 à 9, dans laquelle
le ou chaque orifice de distribution du fluide contrôlant le motif de pulvérisation
(26, 28) est alimenté à travers son propre alésage (30, 32).
11. Tête de pulvérisation (10) selon la revendication 10, dans laquelle, en cas de présence
de plus d'un orifice de distribution du fluide contrôlant le motif pulvérisation (26,
28), les alésages correspondants (30, 32) sont interconnectés.
12. Tête de pulvérisation (10) selon la revendication 11, dans laquelle les alésages (30,
32) sont interconnectés par l'intermédiaire d'un passage annulaire (34).
13. Tête de pulvérisation (10) selon l'une quelconque des revendications 1 à 12, dans
laquelle, au niveau des extrémités opposées de la cavité allongée (38), la face de
distribution (18) est inclinée vers le bas vers un orifice de distribution d'un fluide
contrôlant le motif de pulvérisation (26, 28).


REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description