Nozzle and spacing plate
11534638 · 2022-12-27
Assignee
Inventors
Cpc classification
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0892
PERFORMING OPERATIONS; TRANSPORTING
International classification
A62C99/00
HUMAN NECESSITIES
Abstract
A nozzle for atomizing and dispersing a discharge flow of a fluid, and a spacing plate for use in the nozzle is disclosed. The nozzle includes a bonnet, including an inlet port for receiving the fluid in the nozzle, and a first surface extending outward from the inlet port. The nozzle includes at least one deflector base, including a second surface arranged opposite to the first surface. At least one spacing plate is arranged between the first surface of the bonnet and the second surface of the deflector base. The spacing plate includes at least one gap extending through the spacing plate in its perpendicular direction (P) and extending from the outer periphery of the spacing plate to a distance (D) towards the inner section of the spacing plate. A discharge port is fluidly connected to the inlet port allowing the fluid to flow from the inlet port to surroundings of the nozzle. The discharge port is created between the first and the second surface and defined by the at least one gap of the spacing plate.
Claims
1. A nozzle for atomizing and dispersing a discharge flow of a fluid, the nozzle comprising: a bonnet comprising an inlet port for receiving said fluid in the nozzle, and a first surface extending outward from the inlet port; at least one deflector base comprising a second surface arranged opposite to the first surface, wherein at least one spacing plate is arranged between the first surface of the bonnet and the second surface of the at least one deflector base, conically configured about a longitudinal axis of the nozzle, the spacing plate comprising at least one gap extending completely through as an opening in the spacing plate in a direction (P) perpendicular to the second surface of the at least one deflector base and extending from the outer periphery of the spacing plate to a distance (D) towards the inner section of the spacing plate such that the at least one gap is open along at least a portion of a circumferential edge of the spacing plate; and a discharge port fluidly connected to the inlet port allowing said fluid to flow from the inlet port to surroundings of the nozzle, the discharge port being created between the first and the second surfaces and defined by the at least one gap of the spacing plate.
2. The nozzle as claimed in claim 1, wherein the basic shape of the spacing plate is round and the spacing plate comprises a coaxial aperture for receiving a central dowel arranged in the at least one deflector base for attaching to the bonnet.
3. The nozzle as claimed in claim 1, wherein the spacing plate comprises a plurality of the gaps.
4. The nozzle as claimed in claim 1, wherein said first and second surfaces are planar surfaces.
5. The nozzle as claimed in claim 1, wherein one of said first and second surfaces is a concave surface and another of said first and second surfaces is a convex surface.
6. The nozzle as claimed in claim 1, wherein one of said first and second surfaces is a concave surface and another of said first and second surfaces is a planar surface.
7. The nozzle as claimed in claim 5, wherein the concave and the convex surfaces are conical surfaces.
8. The nozzle as claimed in claim 7, wherein the spacing plate is arranged in a coning angle (α) in relation to the longitudinal axis (X) of the nozzle, the coning angle (α) being in a range of 0°-180°.
9. The nozzle as claimed in claim 5, wherein at least one of the first surface or second surface is arranged in contact with the spacing plate on an outer rim area of the spacing plate, and a cavity is arranged between an inner rim area of the spacing plate and at least one of the first surface or second surface, said cavity arranged to connect the discharge port to the inlet port.
10. The nozzle as claimed in claim 1, wherein the inlet port is arranged to open on the first surface coaxially with the centre of the first surface.
11. The nozzle as claimed in claim 1, wherein the nozzle comprises a connecting piece arranged between the spacing plate and the at least one deflector base, and at least one second spacing plate is arranged between the connecting piece and the at least one deflector base, the nozzle thus comprising at least one second discharge port defined by at least one second spacing plate gap.
12. The nozzle as claimed in claim 1, wherein the nozzle is a sprinkler nozzle of a fire suppression system.
13. The nozzle as claimed in claim 1, wherein the fluid is a liquid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Some embodiments illustrating the present disclosure are described in more detail in the attached drawings, in which
(2)
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(8) In the figures, some embodiments are shown simplified for the sake of clarity. Similar parts are marked with the same reference numbers in the figures.
DETAILED DESCRIPTION
(9)
(10) The nozzle 100 is a water spray or water mist nozzle, of a fire suppression system. According to an idea, the nozzle is a sprinkler nozzle. However, the claimed nozzle may be used for other purposes, too.
(11) The fluid to be atomizing and dispersing is water. However, the fluid may be other liquid, or gas, mixture of liquid and/or gas and/or solid particles.
(12) The nozzle 100 comprises a bonnet 1, comprising an inlet port 2 that receives the fluid to be atomized and dispersed. The inlet port 2 may be provided with e.g. a screw thread (not shown) by witch the nozzle 100 can be attached to a fluid piping system (not shown).
(13) The bonnet 1 further comprises a first surface 3 that is arranged at one end of said bonnet 1. An end of the inlet port 2 is situated on the first surface 3 such that the first surface 3 extends outward from said end of the inlet port 2. In the embodiment shown in
(14) The nozzle 100 further comprises a deflector base 4 that comprises a second surface 5. The second surface 5 is situated opposite to the first surface 3 in an assembled nozzle.
(15) In the embodiment shown ion
(16) The external thread 19 of the deflector base 4 comprises two parts separated by two cuts 20. The cuts 20 establish a part of flow channel connecting the inlet port 2 to discharge ports 10. The number of the cuts 20 may vary from one cut to three, four or even more cuts. The cut 20 shown in Figures is straight and planar. However the cut 20 may have alternative shapes, e.g. a v-shaped or u-shaped groove, etc.
(17) Between the first surface 3 and the second surface 5 there is arranged at least one spacing plate 6. The embodiment shown in
(18) The embodiment of the spacing plate 6 shown in
(19) The spacing plate 6 shown in
(20) The spacing plate 6 arranged between the first surface 3 and the second surface 5 keeps said surfaces 3, 5 apart from each other and creates eight discharge ports 10 which are slits or openings on the outer periphery 8 between said surfaces 3, 5. These discharge ports 10 allows the fluid to flow to surroundings of the nozzle 100.
(21) Embodiments of the spacing plate 6 will be described more detailed later in this description.
(22) The nozzle 100 may comprise means for controlling the flow of the fluid therethrough. For this purpose the embodiment shown in
(23) The bonnet 1, the deflector base 4 and the spacing plate 6 may be manufactured from any suitable material selected from metals, polymers and composites.
(24)
(25) The inlet port 2 is arranged to open on the first surface 3 coaxially with the centre of the first surface 3.
(26) In an embodiment, the spacing plate is manufactured as planar or two-dimensional piece of material. Then, the spacing plate 6 is arranged and pressed between the first surface 3 and the second surface 5. Consequently the spacing plate 6 bends and takes a three dimensional shape defined by the first and the second surfaces 3, 5.
(27) In the embodiment shown in
(28) In another embodiment, the second surface 5 has a sharper coning angle as the first surface 3, and thus the cavity 21 is arranged between the spacing plate 6 and the second surface 5. The cavity 21 may e.g. lower the flow resistance in the nozzle.
(29) The cavity 21 connects the inlet port 2 to the gaps 7 and the discharge ports 10.
(30) According to an aspect, the spacing plate 6 has a coning angle α in relation to the longitudinal axis X of the nozzle. 8. In an embodiment, the coning angle α is in range of 0°-180°. In an embodiment, the coning angle α in the rim area 22 is in range of 45°-90°, i.e. from perpendicular angle to biased 45° towards the deflector base 4. In another embodiment, the coning angle α in the rim area 22 is in range of 90°-135°, i.e. from perpendicular angle to biased 45° towards the bonnet 1. The coning angle α in relation to the longitudinal axis X of the nozzle in rim area 22 may often be 35°, 45°, 50°, 55° or 60°. The coning angle α in the rim area 22 in range of 90°±5° may be preferable, too.
(31) In an embodiment, the first and second surfaces 3, 5 are planar surfaces. This means that said surfaces as well as the spacing plate 6 are perpendicular to the longitudinal axis X.
(32) In an embodiment, one of said first and second surfaces 3, 5 is a concave surface and the other of said first and second surfaces 3, 5 is a planar surface.
(33) In the embodiment of the nozzle 100 shown in Figures, there is a circular groove 24 in the second surface 5. The groove 24 may promote distribution of fluid coming from the inlet port 2 and past the cuts 20 in the gaps 7.
(34) Furthermore, the shown embodiment of the nozzle 100 comprises at least one hole 25 that extends from the second surface 5 to a bottom surface of the deflector base 4. These holes serve as flowing channels for allowing some fluid to spray in direction of longitudinal axis X.
(35) The function of the nozzle 100 can be seen when comparing
(36)
(37) The basic shape of the spacing plate 6 is round and it comprises a coaxial aperture 11 for receiving a central dowel of the nozzle.
(38) In an embodiment, the spacing plate has a constant thickness. According to an idea, said thickness is in range of 0.01 mm-5 mm, preferably 0.1 mm-0.5 mm.
(39) According to an idea, embodiments for pure water or any other fluids having substantially similar viscosity, the thickness of the spacing plate may be in range of e.g. 0.01 mm-0.5 mm.
(40) According to an idea, embodiments for fluids having substantially higher viscosity, the thickness may be in range of e.g. 0.2 mm-5 mm.
(41) The material of the space plate 6 may be e.g. metal, such as steel, copper, aluminium, or plastic, such as polyolefin, polyamide, polyester, or composite, such as glass-fibre reinforced plastic. The space plate 6 may be manufactured by any method known per se, e.g. by cutting, e.g. laser cutting, stamping, die cutting, casting, moulding, 3D printing, etc.
(42) The embodiment shown in
(43) The gap 7 extends through the spacing plate 6 in its perpendicular direction P and extends from the outer periphery 8 of the spacing plate 6 to a distance D towards the inner section 9 of the spacing plate.
(44) According to an idea, the number of the gaps 7 may vary in range of one gap to tens of gaps. In an embodiment of the spacing plate 6, the gap(s) 7 may be arranged not evenly distributed, but there are sections of the outer periphery 8 that comprises more or denser arranged gaps than another section of the same outer periphery 8. In still another embodiment of the spacing plate 6, there are rather broad sections of the outer periphery 8 having no gaps at all. For instance, all the gaps 7 may be arranged in a section the length of which is 25% or 50% of the length of the outer periphery 8. Consequently, the discharge flow can be directed in certain sections of the surroundings.
(45) The gap 7 may narrow towards the outer periphery 8 as in embodiment shown in
(46) According to an idea, the cross-section of the discharge port 10, i.e. cross sectional area and shape, has an important effect on the amount of dispersed fluid, whereas the shape of the gap 7 mainly effects to the flow resistance and the dispersing pattern, i.e. how the dispersed fluid spreads in the surroundings of the nozzle.
(47)
(48) The invention is not limited solely to the embodiments described above, but instead many variations are possible within the scope of the inventive concept defined by the claims below. Within the scope of the inventive concept the attributes of different embodiments and applications can be used in conjunction with or replace the attributes of another embodiment or application.
(49) The drawings and the related description are only intended to illustrate the idea of the invention. The invention may vary in detail within the scope of the inventive idea defined in the following claims.
REFERENCE SYMBOLS
(50) 1 bonnet 2 inlet port 3 first surface 4 deflector base 5 second surface 6 spacing plate 7 gap 8 outer periphery 9 inner section 10 discharge port 11 coaxial aperture 12 central dowel 13 heat responsive unit or frangible heat element 14 connecting piece 15 frame arm arrangement 16 plug 17 plug shaft 18 seal 19 external thread 20 cut 21 cavity 22 outer rim area 23 inner rim area 24 groove 25 hole 100 nozzle D distance P perpendicular direction X longitudinal axis