AN IMPROVED ASPIRATING SPRAY NOZZLE
20220266274 · 2022-08-25
Inventors
Cpc classification
B05B7/0068
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0425
PERFORMING OPERATIONS; TRANSPORTING
B05B15/65
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B7/00
PERFORMING OPERATIONS; TRANSPORTING
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
B05B15/65
PERFORMING OPERATIONS; TRANSPORTING
B05B7/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An aspirating spray nozzle including a cylindrical nozzle body, an integrated annular shroud and a nozzle cap. The cylindrical nozzle body has an externally threaded first end portion defining an inlet, a second end portion defining an outlet, and a middle portion. The integrated annular shroud encircles part of the nozzle body and has a base which is integrally joined to the middle portion by way of webbing means. The nozzle cap is adapted to be connected to the second end portion of the nozzle body.
Claims
1-18. (canceled)
19. An aspirating spray nozzle including: a cylindrical nozzle body having an externally threaded first end portion defining an inlet, a second end portion defining an outlet, and a middle portion; an integrated annular shroud having a tapering external wall which encircles at least part of the nozzle body and a base which is integrally joined to the middle portion by way of webbing means; and a nozzle cap adapted to be connected to the second end portion of the nozzle body.
20. The aspirating spray nozzle of claim 19, wherein the base includes an exterior periphery so shaped and configured as to facilitate manual or tool based engagement with the exterior periphery for turning of the rotatable spray nozzle.
21. The aspirating spray nozzle of claim 20, wherein the exterior periphery includes one or more flats which enable the shroud to be driven to rotate by a tool such as a wrench or spanner.
22. The aspirating spray nozzle of claim 20, wherein the exterior periphery is a hex which gives a good granularity of angles for the tool to approach from.
23. The aspirating spray nozzle of claim 19, wherein the webbing means include spokes, each spoke of the spokes having one end integrally connected to an interior of the base of the shroud and an opposite end to the middle portion of the nozzle body.
24. The aspirating spray nozzle of claim 23, wherein the spokes are evenly spaced apart around the middle portion which is cylindrical.
25. The aspirating spray nozzle of claim 23, wherein a side wall of each spoke of the spokes partially defines a vent being arc-shaped visible from a rear end of the spray nozzle.
26. The aspirating spray nozzle of claim 25, wherein the side wall has a flat elongate middle section flanked by radiused ends which merge with an interior of the base of the shroud and an exterior of the middle portion of the nozzle body, respectively.
27. The aspirating spray nozzle of claim 24, wherein three spokes of the spokes are provided in between the base of the shroud and the middle portion of the nozzle body thereby creating three vents around the nozzle body.
28. The aspirating spray nozzle of claim 23, wherein each spoke of the spokes is disposed slantingly with respect to a plane defined by the base of the shroud so as to maximise aerodynamics thereby generating a maximised Venturi effect when in use.
29. The aspirating spray nozzle of claim 23, wherein each spoke of the spokes has a cross section with a moderate width and a relatively long axial length.
30. The aspirating spray nozzle of claim 19, wherein the shroud is substantially frustoconically-shaped.
31. The aspirating spray nozzle of claim 19, wherein the shroud is substantially cylindrically-shaped.
32. The aspirating spray nozzle of claim 19, wherein the first externally threaded first end portion is threadably connected to a wall, a manifold, a pipe or another fitting.
33. The aspirating spray nozzle of claim 19, wherein the shroud has a front end.
34. The aspirating spray nozzle of claim 33, wherein the front end includes teeth with a chosen depth.
35. The aspirating spray nozzle of claim 34, wherein the teeth vary in depth.
36. The aspirating spray nozzle of claim 19, wherein a front end of the shroud has no teeth.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The invention may be better understood from the following non-limiting description of the preferred embodiments, in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION OF THE DRAWINGS
[0034] It should be noted that the aspirating spray nozzle of the present invention is designed to function within the Low Expansion category referred to above. To this end, the spray nozzle of the present invention is designed to provide additional aspiration assistance over and above what is typically referred to as “non-aspirated” Low Expansion foaming application. It should also be noted that the aspirating spray nozzle 10 is designed to generate a full conical spray plume (as opposed to the conventional solid stream jet).
[0035] Referring to
[0036] As best shown in
[0037] Referring to
[0038] As best shown in
[0039] Additionally, it will be appreciated that the relatively long axial length 54 aids in sucking in air for generation of the Venturi effect and contributes to making the desired flow laminar. Also, the relatively thick and long spokes 30 are designed to facilitate high strength whilst not impeding aspiration flow efficiency. In operation, there is a need for the aspirating spray nozzle 10 to be easily screwed on before use and screwed off for removal. The hex 34 provided on the outside of the shroud 14 allows an easily accessible tool such as a wrench or spanner to be applied to facilitate the aforementioned screwing on and off activities. In order to facilitate and sustain such activities driven by the tool, the structure and configuration of the connecting components, being the spokes 30, must facilitate a high torque transfer from the shroud 14 where the tool engagement occurs, through to the spokes 30. To this end, even though each of the spokes 30 has an adequate cross-sectional area, it relies more upon axial depth for strength rather than lateral width. This configuration enables maximised air flow efficiency between the spokes 30 by keeping the air flow restriction to a bare minimum. The prolonged length of the spokes 30 also facilitates air flow stabilisation and improve laminar flow into the aspirator. The geometry and distribution of the spokes 30 are also designed to ensure that the nozzle protection cap 16 can be accommodated with no impediment whilst still maintaining the overall compactness. It should also be noted that whilst maximising airflow, the spokes 30 are designed to complement attachment of an optional blow off protection cap foil (not shown).
[0040] It will be appreciated that the shroud 14 is substantially frustoconically-shaped having a tapering external wall 56. It is important to note that the nozzle body 12 is fully integrated with the shroud 14 (also commonly referred to as the aspirator) as one piece. Also, referring to
[0041] As shown in
[0042] Referring to
[0043] Turning now to
[0044] As illustrated in
[0045] In operation, the aspirating spray nozzle 10 of the present invention is designed to concurrently deliver the following:
1. it acts as a uniquely short range foam projecting device adapted to generate a medium or wide angle spray pattern or plume and disperse a foaming solution in an optimized density and coverage at a specific short distance. Such a nozzle is generally referred to as a full cone nozzle. Note that foaming nozzles typically function as long range dispersion devices operating at a safer distance from the fire;
2. it functions to assist in a first stage of mixing and aspirating via turbulent agitation and aeration of a liquid and surfactant foaming solution, which is achieved by the “mixing swirl” inside the nozzle 10 for generating a cavitation effect as a result of the full cone nozzle core;
3. it functions to facilitate a second stage mixing and aspirating via Venturi shroud aeration without impeding the desired pattern of dispersion;
4. It functions to facilitate a third stage mixing and aspirating via a plume interaction with the outer radial periphery of the shroud 14, the interaction being controlled by the teeth 64a (ie. the degree of castellation) about the exit from none to multiple of varying depths;
5. it accommodates an orifice protection device which preferably is in a foil style
6. it is extremely compact in order to function in the unique environment and circumstances as described above; and
7. it is in one piece possessing the desired strength and torque resistance so as to facilitate the spray nozzle 10 being screwed on and off easily via a simple tool without causing any damage to the outer shroud.
[0046] Now that preferred embodiments of the present invention have been described in some detail, it will be apparent to a skilled person in the art that the aspirating spray nozzle of the present invention may offer at least the following advantages: [0047] 1. it is compact; [0048] 2. it allows easy frontal access and tool engagement for attachment or removal of the spray nozzle; [0049] 3. it enables installation of the spray nozzle into areas otherwise unreachable; [0050] 4. it is able to incorporate the foil membrane technology; [0051] 5. it facilitates maximized airflow thereby enhancing the Venturi effect;
6. it enables the generation of a full conical spray plume (as opposed to the conventional solid stream jet); [0052] 7. it offers a high structural integrity thereby enabling the shroud to sustain a high torsional force.
[0053] Those skilled in the art will appreciate that the invention described herein is susceptible to variations and modifications other than those specifically described. For instance, the number, size and configuration of the shrouds and vents may be altered. Also, the exterior periphery of the base 28 of the shroud may take different forms and shapes so long as it enables tool engagement for effecting rotation of the spray nozzle. All such variations and modifications are to be considered within the scope and spirit of the present invention the nature of which is to be determined from the foregoing description.