GB2418611A - A fire extinguishing nozzle and system - Google Patents

A fire extinguishing nozzle and system Download PDF

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Publication number
GB2418611A
GB2418611A GB0524880A GB0524880A GB2418611A GB 2418611 A GB2418611 A GB 2418611A GB 0524880 A GB0524880 A GB 0524880A GB 0524880 A GB0524880 A GB 0524880A GB 2418611 A GB2418611 A GB 2418611A
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GB
United Kingdom
Prior art keywords
cavity
outlet
extinguishant
nozzle
central axis
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Granted
Application number
GB0524880A
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GB0524880D0 (en
GB2418611B (en
Inventor
Robert George Dunster
Simon James Davies
Robert James Lade
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Kidde IP Holdings Ltd
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Kidde IP Holdings Ltd
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Publication date
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Publication of GB0524880D0 publication Critical patent/GB0524880D0/en
Publication of GB2418611A publication Critical patent/GB2418611A/en
Application granted granted Critical
Publication of GB2418611B publication Critical patent/GB2418611B/en
Anticipated expiration legal-status Critical
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Classifications

    • AHUMAN NECESSITIES
    • A62LIFE-SAVING; FIRE-FIGHTING
    • A62CFIRE-FIGHTING
    • A62C31/00Delivery of fire-extinguishing material
    • A62C31/02Nozzles specially adapted for fire-extinguishing
    • AHUMAN NECESSITIES
    • A62LIFE-SAVING; FIRE-FIGHTING
    • A62CFIRE-FIGHTING
    • A62C31/00Delivery of fire-extinguishing material
    • A62C31/02Nozzles specially adapted for fire-extinguishing
    • A62C31/05Nozzles specially adapted for fire-extinguishing with two or more outlets

Abstract

A fixed fire extinguishing nozzle has a body 101 with a central cavity 103 from which a plurality of fluid outlets 109B extend. The outlets extend non-radially with respect to the central axis 135 of the cavity 103, i.e. at least a portion of each outlet is inclined with respect to any plane parallel to and passing through the central axis of the cavity which intersects the portion of the outlet. The extinguishant from the non-radial outlets 109B is thrown towards the walls of the chamber 139, along the paths 141. The jets of the fluid induce a rotational movement within the ambient fluid (for example, air) already present in the chamber, thus creating a vortex or rotational movement of the fluid within the chamber 139, in which the fire exists. The non-radial outlets may be at 45{ to the radius, Fig 5, or tangential (Fig 7) or in the form of a tube (Fig 12) with a radial portion (M) followed by a non-radial portion (O).

Description

FIRE EXTINGUISHANT DISCHARGE SYSTEM AND NOZZLE THEREFOR
This invention relates to a fire extinguishing system and a fire extinguishing spray nozzle.
A prior art extinguishing nozzle design is shown in Figures 1, 2 and 3, which will be discussed in more detail below. Such conventional nozzle designs have a plurality of fluid outlets which allow extinguishant to pass from the central cavity ofthe nozzle to a chamber in which a fire exists in order to extinguish the fire. Each of the outlets extends radially from the central axis of the cavity. While such arrangements have been found to be effective, their effectiveness is reduced when the fire lies behind an obstruction which is in the path of a radius extending from the central axis of the cavity.
The embodiments of the present invention, to be described in detail below, by way of example only, seek to provide improved extinguishing performance in such situations.
According to a first aspect of the present invention, there is provided a fire extinguishing system including a nozzle having a cavity, and at least one extinguishant outlet for discharging extinguishant from the cavity into a fluid-filled volume, which outlet is fixed in use, the arrangement being such that a rotational movement of the fluid, including the cxtinguishant, within the volume is induced.
According to a second aspect of the present invention, there is provided a fire extinguishing spray nozzle having a cavity and at least one outlet for discharging extinguishant from the cavity, at least a portion of the outlet being inclined with respect to any plane which is parallel to and passes through the central axis of the cavity and which intersects the portion of the or each outlet.
According to a third aspect of the present invention, there is provided a chamber containing fluid, such as air, having a fire extinguishing spray nozzle mounted therein, which nozzle is fixed in use, the arrangement being such that, in use, the extinguishant emitted from the nozzle and the fluid within the chamber turns angularly about the nozzle.
According to a fourth aspect of the present invention, there is provided a fire extinguishing system including means for supplying a pressurised extinguishant, a nozzle having a cavity for receiving the extinguishant and having at least one outlet for expelling the extinguishant, in use the arrangement being such that at the entrance to the or each outlet, the extinguishant travels generally radially with respect to the central axis of the cavity, and such that the configuration of the outlet deviates the path of the fire extinguishant from the radial direction so that when the extinguishant exits the outlet it travels in a non-radial direction.
According to a fifth aspect of the present invention, there is provided a method of fire extinguishing including emitting a plurality of jets extinguishant into a fluid-filled chamber from a fiend nozzle such that when the jets of extinguishant meet the walls of the chamber they induce a rotational movement in the fluid, including the extinguishant, within the chamber.
According to a sixth aspect ofthe present invention, there is provided a method of fire extinguishing including emitting a plurality of jets extinguishant into a fluid-filled chamber from a fixed nozzle such that rotational movement in the fluid, including the extinguishant, is induced within the chamber.
Fire extinguishing systems, fire extinguishing spray nozzles, the chamber having a fire extinguisher spray nozzle mounted therein and a method of fire extinguishing will now be described, by way of example, with reference to the accompanying diagrammatic drawings in which: Figure 1 shows a side elevation of a conventional fire extinguishant spray nozzle; Figure 2 shows a cross-section taken along the line A-A of Figure 1; Figure 3 shows the paths ofthe extinguishant jets expelled from the nozzle of Figures 1 and2; Figure 4 shows a longitudinal cross-section taken through a nozzle according to a first embodiment to the present invention; Figure 5 shows a eross-seetion taken along the line B-B of Figure 4; Figure 6 shows the paths and flow of extinguishant jets emitted from the nozzle of the first embodiment; Figure 7 shows a transverse eross-seetion through a nozzle illustrating a scheme for forming a non- radial outlet in accordance with the present invention; Figure 8 shows a longitudinal cross-section of a nozzle according to a second embodiment of the present invention; Figure 9 shows a cross-section taken along the line C-C of Figure 8; Figure 10 shows a longitudinal cross-section of a nozzle of a third embodiment of the present invention; Figure 1 I shows a cross-section taken along the line D-D of Figure 10; and Figure 12 shows a partial transverse cross-section through a nozzle having an alternative configuration of outlet nozzle in accordance with the present invention.
In general, like elements of different embodiments appearing in the Figures arc designated with reference numerals differing in value by l DO.
Figures l to 3 show the construction and operation of a prior art nozzle, which is described here to assist in the understanding of the present invention. The known nozzle has a generally cylindrical main body l formed of any suitable material, such as brass or another metal with the desired characteristics. The body has a cavity 3 formed in it with an open end 5. The upper portion 7 (in Figures l and 2) of the body l, in which the closed end of the cavity 3 is located, has a frusto-conical exterior surface in which six equi-spaced outlets 9A are located (only two of the outlets being shown in Figure l). The mid-portion l l of the body 1, at an upper region thereof, has six equi-spaced outlets 9B formed therein (only three of which can be seen in Figure 1). The lower region of the mid-portion l l has a hexagonal outer surface formed by six equally sized and spaced planar surfaces 13 which are configured to co-operate with a suitably sized spanner for allowing the nozzle to be mounted and dismounted to a pipe (not shown) providing a supply of extinguishant fluid, when such mounting is provided by co- operating screw threads (not shown). If such a screw thread is provided to the body l this may be provided at the base portion l S thereof.
The cavity 3 at the portion 17 nearest the open end 5 is cylindrical. The next portion 19 of the cavity 3 has a smaller diameter than the lower portion 17 at the point where the portions 17 and 19 meet, thereby forming a shoulder 21 which locates a washer- like member 23 comprising a circular orifice 25 and a snap ring 27. Thereafter, the cavity 3 tapers inwardly. Where the outlets 9B meet the cavity 3, at region 29, the rate of the inward taper of the cavity 3 increases. The upper portion 31 of the cavity 3 comprises a cylindrical portion from which the outlets 9A extend and terminates in a closed conical portion 33.
The outlets 9A, 9B are inclined with respect to a plane perpendicular to the central axis 35 of the cavity 3 so that, when deployed for example on the ceiling or floor of a room or other chamber, the extinguishant is not discharged on to the ceiling or floor.
Such outlets are said to have a "down-angle" when deployed on a ceiling. Where the outlets 9A, 9B meet the external wall of the body 1 an enlarged diameter portion 37 is optionally formed.
Figure 3 shows schematically the nozzle located centrally within a room or other chamber 39, where it is mounted on the ceiling and does not move in use. The extinguishant supplied under pressure from the supply pipe passes into the cavity 3 and through the nozzle orifice 25, "hereafter it is expelled through the outlets 9A, 9B.
Each of the outlets 9A, 9B causes the formation of a jet of extinguishant as the extinguishant passes therethrough. The paths that these jets of extinguishant from the nozzles 9B will follow within the chamber 39 are indicated by lines 41. The fluid within the jets disperses as the jets pass through the fluid already within the chamber 39 (such as air) but will follow a path generally indicated by the lines 41.
Although the prior art nozzle is effective, it has been found that there can be a delay in extinguishing a fire which has, for example, a source 43 at a location within the chamber 39 where an obstruction 45 lies in the path of a radius extending from the central axis 35 of the nozzle to the fire source 43.
The delay in extinguishing the fire source 43 is caused because it takes some time for the extinguishant which is dispensed from the nozzle along fixed radial paths 41 to disperse within the chamber 39 and reach the fire source 43.
Figures 4 and 5 show, respectively, a longitudinal and a transverse crosssection of the body 101 of a nozzle according to a first embodiment of the invention. The portion l 17 of the cavity 103 nearest the open end 105 of the nozzle is cylindrical and forms a shoulder 121 where it meets the middle portion l 19. The shoulder l 21 may locate a washer-like assembly (not shown) similar to the washer assembly 23 shown in Figure 2, or fluid restriction may be caused by providing the middle portion l l9 with an appropriate diameter. The middle portion 119 of the cavity l 03 is, in this example, cylindrical. The closed portion 133 of the cavity 3 is conical. The nozzles 109B are inclined by 15 to a plane 150 lying perpendicular to the central axis 135 ofthe cavity 3. In this embodiment, additional nozzles corresponding to the nozzles 9A ofthe prior art are not provided, although they could be provided if desired.
As can be seen in Figure 5, each outlet lO9B is inclined (in this example by 45 ) with respect to a plane 151 which is parallel to and extends through the central axis 135 of the cavity 3 and which intersects the outlet. This inclination is in addition to the 15 [ldown-ang]e[1 inclination provided with respect to the plane 150 shown in Figure 4. It should be understood that 15 "down-angle" inclination may be omitted if desired.
Whether or not the down-angle inclination is provided, the outlets 1 O9B are inclined with respect to any plane parallel to and passing through the central axis 135 of the cavity 103 which intersects the central axis 152 of the outlets.
In another words, the outlets I O9B extend non-radially with respect to the central axis of the chamber 3. The nozzles lO9B can extend tangentially from the interior surface 154 of the chamber 3.
Although the central portion I 19 from which the nozzles I O9B extend is shown as being of circular cross-section, it should be understood that other shapes for this portion of the chamber could be used. It should also be appreciated that non-radial outlets 109B could be combined in a single nozzle with radial outlets, for example, having a configuration as shown in Figures 1, 2 and 3. The diameters (bore size) of the outlets may be equal, or different outlets may have different diameters. The amount of deviation of the non-radial outlets from a radius of the nozzle can vary between outlets provided on a single nozzle, as can the presence or degree of down- angles. The nozzles may also be unevenly spaced.
Figure 6 shows a nozzle of the type illustrated in Figures 4 and 5 deployed in a room or chamber 139. However, for the sake of simplicity, only four outlets lO9B are shown. The paths 141 of jets of extinguishant from the nozzle are shown. In a similar manner to the prior art illustrated in Figure 3, the paths 141 of the extinguishant jets extend from the central region of the chamber 139 towards the walls of the chamber 139.
The inclination of the non-radial outlets lO9B (with respect to any plane parallel to and passing through the central axis 135 ofthe cavity 103 which intersects the central axis l 52 of the outlets) causes the extinguishant to apply a turning force to the nozzle as the extinguishant passes through the outlets lO9B. The nozzle is fixed, so this turning force does not rotate the nozzle about the central axis 135.
If the effect of the "down-angle" is ignored (for the sake of simplicity), there are two forces acting on each outlet 1 09B during a discharge of extinguishant. The first is a radial force (FRada). The FRada vector (shown in Figure 6) for each outlet 1 09B passes through the central vertical axis 135 of the nozzle and the centre ofthat outlet 109B.
The magnitude of this vector is determined by the mass flux of the extinguishant as it exits the outlet] O9B. The second force is the one responsible for applying a turning force to the nozzle. It is labelled FTa,lgenhal and acts perpendicularly to FRad,al. The resultant vector FResu'an corresponds to the flow path 141 of the extinguishant.
FTangetal = FResulant Sin() Where "O" represents the angle between the FRadjal and F Rcsulran vectors. The torque about an outlet lO9B is determined by the equation: Fry x D = Torque about nozzle Where "D" represents the distance from the central axis 135 of the nozzle to the exit of the outlet I O9B.
As mentioned above, the nozzle is fixed and is therefore prevented from tuning. The radial and tangential forces are however both still present. The extinguishant from the non-radial outlets 109B is thrown towards the walls of the chamber l 39, along the paths 141 shown in Figure 6, much like the conventional radial nozzle described with reference to Figures l and 2. However, the jets of the fluid induce a rotational movement within the ambient fluid (for example, air) already present in the chamber.
The force is additive and creates a vortex or rotational movement of the fluid within the chamber 139. The magnitude of this vortex depends on the force and angle of inclination of the combined jets of extinguishant from the nozzle, and the size and shape of the chamber 139. Structures within the chamber 139 will also affect the magnitude of rotation.
The extinguishant jets discharge with a linear motion from the nozzle outlets 1 09B to the walls ofthe chamber 139.
The overall effect ofthe nozzle ofthe first embodiment is to cause the fluid normally within the chamber 139, such as air, to rotate so that all the fluid within the chamber 139, including the extinguishant, swirls about the nozzle. This is highly advantageous in the event that the fire source is shielded from the nozzle by an obstruction in the manner illustrated in Figure 3. The continuous movement of the fluid in the first embodiment results in the extinguishant reaching the fire source more quickly than when the prior art form of nozzle is employed. The nozzle itself does not move during extinguishing. The absence of moving parts means that the nozzle is reliable, relatively cheap to manufacture and is less prone to wear.
An extinguishant that rotates or turns angularly within the chamber 139 provides an efficient means of filling the free volume ofthe chamber. The main benefit, however, is the ability to distribute the extinguishant homogenously within a cluttered volume, such as when the chamber includes many obstructions to the extinguishant. Altering the degree of inclination of an outlet to the radius of the nozzle changes the velocity of rotation for a given extinguishant discharge.
As mentioned above, the inclination of a non-radial nozzle causes the extinguishant to apply a turning force to the nozzle as the extinguishant passes through the outlet. If the nozzle is attached to an extinguishant supply pipe by a screw thread, the direction of inclination and the direction of the screw thread should be selected such that the turning force tends to tighten the nozzle onto the extinguishant supply pipe.
Testing of the nozzle has been carried out in a UL/FM approved 1 OOm3 test chamber.
First, and by way of comparison, a conventional nozzle having the form of that shown in Figures l and 2 was employed using nitrogen and water based extinguishant in an Argonite (RTM) extinguishing system. The mass of nitrogen required to extinguish I () Class B heptane can fires was 31.7kg (701bs) . Then, a nozzle according to the first embodiment of the invention, as shown in Figures 4 and 5, was used with non-radial holes of 30 , 45O,60O and 90 (tangential) with a 15 down angle. With the exception of the 90 variant, the 10 class B fires were successfully extinguished with 29 kg (64 lb) of nitrogen. This provided an 8.5% reduction in the mass of nitrogen used compared with a system using a conventional nozzle.
Figure 7 shows a nozzle having a radial outlet 9B and a non-radial outlet 209B. The non-radial outlet 209B extends tangentially from the interior surface 254 ofthe cavity 203. The non-radial outlet can be described as follows. The nozzle body 201 has an external diameter D and an internal diameter d. The outlet 209B has a radius R and a central axis 258. A radius 260 extending from the central axis 235 ofthe nozzle body 201 intersects the central axis 258 of the outlet 209B at a "pivot point" P. The angle A formed between the radius 260 extending from the central axis 235 of the chamber 203 through the pivot point P and the central axis 258 ofthe outlet 209B determines the angle of inclination of the non-radial outlet 209B. The outlet 209B can be provided with a down-angle if required.
Figures 8 and 9 show, respectively, a longitudinal and a transverse crosssection of a nozzle according to a second embodiment of the present invention. In the second embodiment the outlets 309B are configured similarly to the first embodiment.
However, rather than the extinguishant fluid being provided from an opening in the base of the nozzle, separate liquid 362 and gas 364 inlets are provided in the side wall of the nozzle body 301. A right angled pipe 366 extends from the liquid inlet 362 to expel liquid extinguishant at a point lying on the central axis 335 of the cavity 303.
lithe liquid and gas provided into the cavity 303 mix and produce extinguishant which is expelled via outlets 309B. An example of a suitable liquid is water and a suitable gas is nitrogen.
A further embodiment of the invention will now be described with reference to Figures 10 and 11. The nozzle of the third embodiment is in two parts. The outer body 468 comprises a cylindrical wall 470 having an integral end wall 471 comprising a frusto-conical portion 472, a cylindrical portion 474 and a further frusto-conical portion 476 within the end wall 471. These form a first cavity portion 433, corresponding to the cavity portion 133 of the Figure 4 embodiment, and a second cavity portion 419 which is cylindrical and has outlets 409B extending therefrom through the cylindrical portion 474 in a similar manner to the first embodiment shown in Figure 4. Like the embodiment of Figure 4, six equi- spaced outlets 409B are provided which have an inclination with respect to a radius of the central axis 435 of the cavity 403. However, in this embodiment, the outlets 409B do not have a down- angle.
In the frusto-conical portion 472 ofthe end wall 471 six equi-spaced outlets 480 are provided which extend parallel to the central axis 435 of the cavity 403. The outlets 480 are positioned such that a fluid jet emitted therefrom will impinge on a respective one of the fluid jets emitted from the non-radial outlet 409B in the cylindrical wall 474. The relative positioning and configuration of the respective outlets 409B and 480 is shown in Figure 11.
The inner body 482 comprises a generally cylindrical wall 484 which is externally threaded to engage an internal thread 486 formed at the lower end of the cylindrical wall 470 of the outer body. At its upper end (as viewed in Figure 10) the inner body 482 includes an O-ring 488 which makes a gas and water-tight seal against the inner face of the end wall 471 of the outer body.
In this way, the inner and outer bodies 482,468 define a central chamber 490 in communication with the outlets 409B and an annular chamber 492 in communication with the outlets 480.
Chamber 490 is connected to a connection port 494.
Chamber 492 is connected to a connection port 496 which is formed to extend radially through the wall 470 of the outer part 468 and thence through a bore 497.
Port 494 is internally threaded at 498 to enable it to be connected to a fluid supply pipe. Port 496 is internally threaded at 499 to enable it to be connected to a second fluid supply pipe.
In use, a suitable gas, such as air or nitrogen, is supplied through the fluid supply pipe connected to port 494 and exits under pressure in jets through outlets 409B.
Simultaneously, water is supplied through port 496 from a separate pipe connected to the port, and exits in waterjets through outlets 480. Because the exiting waterjets are angled to the exiting air jets and aligned with them, impingement takes place, resulting in the transfer of kinetic energy and producing shearing of the water jets so as to convert the water into a ratified spray of fine drops which are carried forward by the remaining kinetic energy of the emerging jets. The various parameters of the emerging jets can be controlled by appropriate adjustment ofthe applied pressures and by the mutual angle of impingement of the air and water jets and the size of the jets so as to produce the desired water spray characteristics (drop size distribution, spray angle, throw of spray and type of spray e.g. with a void within it). The applied water pressure may lie within a range of say, 4 to 12 bar g while the applied gas pressure may be 4 bar g or less, again producing a consistent spray quality.
No mixing or jet impingement takes place inside the nozzle. Pressure and flow variations of one fluid therefore have no effect on the pressureflow characteristics of the other. In addition, because the air and water are kept separate until their respective jets impinge outside the nozzle, there is no need to take any precaution to prevent the water supply from entering the air supply.
instead of supplying air or gas to the port 494 and water to the port 496, these may be reversed: that is, the gas can be supplied to port 496 and the water to port 494.
Alternatively, water can be supplied both to port 494 and to port 496.
As the jets of fluid from the outlets 4()9B and 480 meet, the resultant jet retains at least a portion of the angular momentum imparted by the non-radial outlets 409B in order that the resultant fluid jet has the same general characteristics as the fluid jets of the first and second embodiments, which rotate within the chamber.
Figure 12 shows an alternative arrangement of the nozzle that can be substituted for any of the nozzles lO9B of the first embodiment, nozzles 309B of the second embodiment and nozzles 409B of the third embodiment. It will be noted that in the first, second and third embodiments, the outlets are formed by making a linear, circular cross-section hole through the wall ofthe nozzle body 101,301,470. In these embodiments, the outlets extend between the inner and outer surfaces of the nozzle body 101,301,470. In the arrangement shown in Figure 12, however, the outlet is in the form of a tube extending from the nozzle body L. The tube comprises a first portion M which extends radially from the central axis N of the nozzle body L. The tube comprises a second section O which extends non-radially, and is inclined in the same manner as the outlets I O9B,309B,409B of the first, second and third embodiments. The tube sections M and O may be formed as an integral unit. The tube itself may be formed integrally with the nozzle body L, or it may be attached to the nozzle body 1 by co-operating screw threads or any other suitable means.
The outlet arrangement shown in Figure 12 will provide a similar effect to a nozzle formed between the inner and outer surfaces of the known outer walls of the nozzle body if the tube portion O is oriented in the same manner as the non-radial outlet between the inner and outer walls of the nozzle body.
This application is a divisional application of parent application GB 0227819.0. The claims of the parent application as originally filed are hereby incorporated by reference as subject-matter, but not presently claims, of this divisional application.
The right to claim the subject-matter of those claims in this divisional application is reserved.

Claims (19)

1. A fire extinguishing spray nozzle having a cavity and at least one outlet for discharging extinguishant from the cavity, at least a portion of the outlet being inclined with respect to any plane which is aligned with and passes through the central axis of the cavity and which intersects the portion of the or each outlet.
2. A nozzle according to claim 1, wherein a plane which lies parallel to the central axis of the cavity and extends along the central axis of at least a portion ofthe or each outlet is inclined with respect to the interior wall ofthe cavity at the region where the outlet meets the interior wall.
3. A nozzle according to claim 1 or 2, wherein the or each outlet extends tangentially from the interior wall of the cavity.
4. A nozzle according to any one of the preceding claims, in which the direction of flow of the extinguishant in the cavity towards the outlet is aligned with an axis of symmetry of the cavity and in which the axis of at least the distal portion of the outlet does not intersect that axis of symmetry.
5. A nozzle according to any one of the preceding claims, wherein the or each outlet includes a portion which extends radially with respect to the central axis of the cavity.
6. A nozzle according to any one of the preceding claims, wherein a plurality of outlets are provided, each having a portion with a different inclination with respect to a radius extending from the central axis of the cavity.
7. A nozzle according to any one of the preceding claims, wherein the or each outlet is inclined with respect to a plane perpendicular to the central axis ofthe cavity.
8. A nozzle according to any one of the preceding claims, including a source of fire extinguishant fluid, a nozzle body having a wall defining said cavity, an extinguishant inlet for receiving the extinguishant fluid into the cavity, and wherein the or each outlet is formed in the wall for discharging the extinguishant fluid from the cavity into afluid-filled volume.
9. A fire extinguishing system including means for supplying a pressurised extinguishant, a nozzle having a cavity for r ecciving the extinguishant and having at least one outlet for expelling the extinguishant, in use the arrangement being such that at the entrance to the or each outlet, the extinguishant travels generally radially with respect to the central axis of the cavity, and such that the configuration of the outlet deviates the path of the fire extinguishant from the radial direction so that when the extinguishant exits the outlet it travels in a non-radial direction.
10. A system according to claim 9, wherein at least a portion ofthe or each outlet is inclined with respect to any plane which is parallel to and passes through the central axis of the cavity and which intersects the portion of the or each outlet.
1 1. A system according to claim 9 or 10, wherein a plane which lies parallel to the central axis of the cavity and extends along the central axis of at least a portion of the or each outlet is inclined with respect to the interior wall of the cavity at the region where the outlet meets the interior wall.
12. A system according to claim 9,10 or 11, wherein the or each outlet extends tangentially from the interior wall of the cavity.
13. A system according to any one of claims 9 to 12, in which the direction of flow of the extinguishant in the cavity towards the outlet is aligned with an axis of symmetry of the cavity and in which the axis of at least the distal portion of the outlet does not intersect that axis of symmetry.
14. A system according to any one of claims 9 to 13, wherein the or each outlet includes a portion which extends radially with respect to the central axis of the cavity.
15. A system according to any one of claims 8 to 13, wherein a plurality of outlets are provided, each having a portion with a different inclination with respect to a radius extending from the central axis of the cavity.
16. A system according to any one of claims 9 to 15, wherein the or each outlet is inclined with respect to a plane perpendicular to the central axis of the cavity.
17. A fire extinguishing system according to any one of claims 9 to 16, including a source of fire extinguishant fluid, a nozzle body having a wall defining said cavity, an extinguishant inlet for receiving the extinguishant fluid into the cavity, and wherein the or each outlet is formed in the wall for discharging the extinguishant fluid from the cavity into a fluid-filled volume.
18. The nozzle of claim 8 or the system of claim 17, including a chamber comprising the fluid-filled volume.
19. A fire extinguishing spray nozzle substantially as hereinbefore described with reference to and/or substantially as illustrated in any one of or any combination of Figures 4 to 12 of the accompanying drawings.
GB0524880A 2002-11-28 2002-11-28 Fire extinguishant discharge system and nozzle therefor Expired - Fee Related GB2418611B (en)

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GB0227819A GB2395660B (en) 2002-11-28 2002-11-28 Fire extinguishant discharge method and apparatus

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101366997B (en) * 2008-06-30 2011-07-20 芜湖世纪凯旋消防设备有限公司 Fire-extinguishing agent nozzle of gas fire-extinguishing system

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE602006017143D1 (en) 2005-05-26 2010-11-11 Kidde Ip Holdings Ltd Extinguishing fires and suppressing explosions
RU2478409C1 (en) * 2012-03-20 2013-04-10 Олег Савельевич Кочетов Method of modular fire extinguishing
RU2634580C2 (en) * 2016-03-14 2017-10-31 Олег Савельевич Кочетов Liquid flow spreader

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB435757A (en) * 1933-11-03 1935-09-23 Pierre Jean Marchaut Improvements in or relating to fire extinguishing devices
WO1994025112A1 (en) * 1993-04-23 1994-11-10 Htc I Åmål Ab Nozzle holder
EP0671216A2 (en) * 1994-03-09 1995-09-13 Total Walther Feuerschutz GmbH Spray nozzle for generating a double conical spray
US5857623A (en) * 1996-09-04 1999-01-12 Miller; Raymond G. Device and method to provide stabilized delivery of pressurized liquid
JP2001276258A (en) * 2000-03-31 2001-10-09 Nohmi Bosai Ltd Water spraying head

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SU1276344A1 (en) * 1985-02-22 1986-12-15 Lopatin Ivan E Fire-hose barrel
US4911362A (en) * 1989-02-28 1990-03-27 David Delich Method and apparatus for making carbon dioxide snow
FI934617A0 (en) * 1993-10-19 1993-10-19 Suomen Pelastuskoulutus Oy SPRINKLERSYSTEM FOER SLAECKANDE AV BRAEND
DE4407779C2 (en) * 1994-03-09 1997-07-31 Total Feuerschutz Gmbh Spray nozzle for generating spray mists
DE4440681C2 (en) * 1994-11-15 1996-10-17 Awab Umformtechn Gmbh & Co Kg Spray nozzle, in particular for spraying water in fire protection systems

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB435757A (en) * 1933-11-03 1935-09-23 Pierre Jean Marchaut Improvements in or relating to fire extinguishing devices
WO1994025112A1 (en) * 1993-04-23 1994-11-10 Htc I Åmål Ab Nozzle holder
EP0671216A2 (en) * 1994-03-09 1995-09-13 Total Walther Feuerschutz GmbH Spray nozzle for generating a double conical spray
US5857623A (en) * 1996-09-04 1999-01-12 Miller; Raymond G. Device and method to provide stabilized delivery of pressurized liquid
JP2001276258A (en) * 2000-03-31 2001-10-09 Nohmi Bosai Ltd Water spraying head

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101366997B (en) * 2008-06-30 2011-07-20 芜湖世纪凯旋消防设备有限公司 Fire-extinguishing agent nozzle of gas fire-extinguishing system

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GB2395660A (en) 2004-06-02
GB0524880D0 (en) 2006-01-11
GB2418611B (en) 2006-09-06
GB0227819D0 (en) 2003-01-08

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