The present invention relates to a fire damper for impeding the spread of fire and smoke through a cavity in a wall or floor which has been formed for air flow, in particular HVAC air flow.
Combination smoke and fire dampers, for simplicity referred to herein as “fire dampers”, are used in buildings to aid in preventing the spread of fire and smoke in the event of a fire in the building. Fire dampers are a form of passive fire protection and are usually associated with an air distribution system, for example an air conditioning system. Walls, partitions or floors are adapted to include ducts, holes, or passageways to allow air to flow through. These are required to be equipped with a fire damper that meets the fire rating standard set by a relevant building code. The damper may be required to have an integrity rating equal or greater than that of the separating element or fire barrier that it penetrates. The damper is usually designed to shut or block the passage during a fire in order to prevent the spread of smoke and/or fire.
Fire dampers may be configured to impede the spread of fire and heat within building compartments whilst maintaining the integrity of the building element (most commonly a wall) through which the damper passes in use.
Fire dampers may comprise one or more blades that are configured to rotate to a closed configuration during a fire to prevent the spread of fire and/or smoke. When shut, the blades must not lock together as they need to have the ability to open again after the damper has closed. During a fire, the fire damper must prevent significant leakage of air between the two cavities on either side of the damper. However, the blades of some fire dampers may bend during a fire and cause gaps that will lead to an increase in leakage. The fire dampers of the prior art may therefore not meet future, more stringent, regulatory standards.
It is an object of the present invention to provide a fire damper for impeding the spread of fire and/or smoke in a building that addresses at least one of the aforementioned needs/problems.
It is an alternative object of the present invention to at least provide the public with a useful choice.
All references, including any patents or patent applications cited in this specification are hereby incorporated by reference. No admission is made that any reference constitutes prior art. The discussion of the references states what their authors assert, and the applicants reserve the right to challenge the accuracy and pertinency of the cited documents. It will be clearly understood that, although a number of prior art publications are referred to herein, this reference does not constitute an admission that any of these documents form part of the common general knowledge in the art, in New Zealand or in any other country.
Unless the context clearly requires otherwise, throughout the description and the claims, the words “comprise”, “comprising”, and the like, are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense, that is to say, in the sense of “including, but not limited to”.
Further aspects and advantages of the present invention will become apparent from the ensuing description which is given by way of example only.
In various forms of the technology there is provided a fire damper comprising a frame and a plurality of blades rotatably mounted to the frame such that each blade is rotatable about a respective rotational axis between an open rotational position and a closed rotational position, each blade comprising at least one substantially planar portion and a side edge portion which is curved away from a plane of the substantially planar portion, wherein a first curved side edge portion of a first of the blades is adapted to engage a second curved side edge portion of a second of the blades, adjacent the first, when the blades are in the closed position, wherein the first curved side edge portion curves in an opposite direction to the second curved side edge portion when the first and second blades are engaged.
According to a first aspect of the invention there is provided a fire damper comprising a frame and a plurality of blades rotatably mounted to the frame such that each blade is rotatable about a respective rotational axis between an open rotational position and a closed rotational position, each blade comprising at least one substantially planar portion and a side edge portion which is curved away from a plane of the substantially planar portion, wherein a first curved side edge portion of a first of the blades is adapted to engage a second curved side edge portion of a second of the blades, adjacent the first, when the blades are in the closed position, wherein the first curved side edge portion curves in an opposite direction to the second curved side edge portion when the first and second blades are engaged,
Preferably the curve is an arc.
Preferably the central angle is substantially 194°.
Preferably each curved side edge portion comprises a partial surface of revolution.
Preferably the axis of rotation of the centre of revolution is parallel to the rotational axis of the blade.
Preferably a ratio of the radius of the arc and the distance between the rotational axis of the blade and boundary between the planar portion and the side edge portion is substantially 1:12.
Preferably, the first blade is provided with a resiliently flexible sealing member adapted to abut a surface of the second blade when the blades are in the closed rotational position.
Preferably the angle of rotation between the open rotational position and the closed rotational position of the blades is at least 100°.
Preferably, the angle of rotation is between 100° and 120°.
Preferably, the angle of rotation is 111°.
Preferably, the first blade is provided with a bimetallic strip configured to bend and overlap both the first and second blades when the blades are in the closed rotational position.
According to a second aspect of the invention there is provided a fire damper comprising a frame and a plurality of blades rotatably mounted to the frame such that each blade is rotatable between an open rotational position and a closed rotational position, each blade comprising at least one substantially planar portion and a side edge portion which is curved away from a plane of the substantially planar portion, wherein a first curved side edge portion of a first of the blades is adapted to engage a second curved side edge portion of a second of the blades adjacent the first when the blades are in the closed position, wherein the first curved side edge portion curves in an opposite direction to the second curved side edge portion when the first and second blades are engaged,
Preferably, the sealing member is biased towards a rest position.
Preferably, the sealing member is deflected from the rest position to a sealing position when contacted by the second blade.
Preferably, the sealing member forms a smaller angle with respect to the planar portion of the first blade when in the sealing position than when in the rest position.
Preferably, the sealing member is attached to the first blade near a side edge of the blade.
Preferably, the sealing member is configured to contact the second curved side edge portion of the second blade when the blades are in the closed rotational position.
Preferably, the sealing member is formed from stainless steel.
Preferably, a layer covers the sealing member and is spot welded to the first blade.
According to a third aspect of the invention there is provided a fire damper comprising a frame and a plurality of blades rotatably mounted to the frame such that each blade is rotatable about a respective rotational axis between an open rotational position and a closed rotational position, each blade comprising a substantially planar portion and a side edge portion which is curved away from a plane of the substantially planar portion, wherein a first curved side edge portion of a first of the blades is adapted to engage a second curved side edge portion of a second of the blades adjacent the first when the blades are in the closed position, and wherein for at least one of the first and second blades the angle of rotation between the open rotational position and the closed rotational position is at least 100°.
Preferably, the angle of rotation is between 100° and 120°.
Preferably, the angle of rotation is 111°.
Preferably, the fire damper comprises a linkage system to convert a 90° rotation of a motor to the desired rotation of the blade.
According to a fourth aspect of the invention, there is provided a fire damper comprising a frame, the frame comprising a pair of opposed first sides and a pair of opposed second sides, the fire damper further comprising a plurality of blades rotatably mounted to the first sides of the frame and rotatable between an open rotational position and a closed rotational position,
According to a fifth aspect of the invention, there is provided a fire damper comprising a frame, the frame comprising a pair of opposed first sides and a pair of opposed second sides, the fire damper further comprising a plurality of blades rotatably mounted to the first sides of the frame and rotatable between an open rotational position and a closed rotational position,
Preferably, the cover is formed from stainless steel.
Preferably, the fire damper comprises a sealing means located on each of the first sides of the frame.
According to a sixth aspect of the invention, there is provided a fire damper comprising a frame, the frame comprising a pair of opposed first sides and a pair of opposed second sides, the fire damper further comprising a plurality of blades rotatably mounted to the first sides of the frame and rotatable between an open rotational position and a closed rotational position,
Preferably, the first edge is closer to an inlet of the fire damper than the second edge.
Preferably, the cover is formed from stainless steel.
Preferably, when the intumescent material expands the flexible cover deforms to a position which assists in preventing the movement of an adjacent blade from the closed position to the open position.
Preferably, the sealing means forms a seal with a longitudinal edge of an adjacent blade.
Preferably, the fire damper comprises a second sealing means on the opposite side of the frame which forms a seal with a longitudinal edge of an adjacent blade.
Preferably, the fire damper comprises biasing means which bias the blades towards the closed rotational position.
Preferably the biasing means comprises at least one spring.
According to a further aspect of the invention there is provided a method of manufacturing a frame for a fire damper comprising:
Preferably, the at least one first tab and/or the at least one second tab is rectangular in shape.
Preferably, the slots are substantially U-shape.
Preferably, the U-shaped slots form a resilient flap portion which flexes to assist insertion of the tabs into the slots.
Further aspects of the present invention will become apparent from the following description which is given by way of example only and with reference to the accompanying drawings in which:
Referring first to
The fire damper 100 comprises a sleeve 42 which houses a frame 1. The fire damper 100 further comprises a plurality of blades 2, only two of which are labelled in the figures. The plurality of blades 2 are rotatably mounted to the frame 1. Each of the blades 2 is mounted to the frame 1 such that each blade is rotatable about a respective rotational axis between an open rotational position, in which air can flow through the damper, and a closed rotational position, in which air, smoke and fire are substantially prevented from moving through the damper. In the embodiment shown the blades 2 comprise a main blade portion 3 connected to one or more supports 3a located along the respective rotational axis A1, A2 as labelled in
During a fire the blades 2 will rotate into the closed position to prevent the spread of smoke and fire through the damper. In the embodiment shown the supports 3a of the blades 2 are mounted to the first sides 4 of the frame 1 and are substantially parallel and spaced apart vertically. In other embodiments the blades 2 may be mounted in a different orientation.
In the embodiment shown the support 3a is formed from a metal bar which has a substantially hexagonal cross-section. In alternative embodiments the support 3a may have a different cross-sectional shape, for instance, circular, rectangular or square. The main blade portions 3 may be formed from a metal sheet. As best seen in
When the fire damper 100 is in the closed rotational position, the side edge portions of adjacent blades 2 may be configured to engage to form a seal that prevents smoke and fire from passing through the blades 2 of the fire damper 100. In the embodiment shown, the side edge portion of the blade 2 is curved away from a plane of the adjacent substantially planar portion 5. The side edge portion may be curved to form a hook-like portion, when viewed in transverse cross-section, as shown in
The side edge portion preferably comprises a partial surface of revolution, such that the curve 41 is an arc. The radius of curvature R1, i.e. the radius of the imaginary circle that would complete the curve of the hook-like portion, is in the range 5 mm-8 mm. In the embodiment shown the radius of curvature is 6.5 mm.
In one embodiment a ratio of the radius R1 of the arc and the distance L1 between the rotational axis A1 of the blade and boundary between the planar portion 5 and the side edge portion is between 1:10 and 1:15, preferably substantially 1:12.
As shown in
The fire damper 100 may also have a resiliently flexible sealing member 10 provided on at least one of the blades 2 and adapted to abut a surface of an adjacent blade when the blades 2 are in the closed rotational position. The sealing member 10 is configured to prevent any leakage of smoke or fire between adjacent blades. In the embodiment shown every second blade of the plurality of blades 2 is provided with a sealing member 10 adjacent each of the side edge portions. The sealing member 10 is located on the inner side of the hook-like portion and is configured to abut an outer surface of the hook-like portion on the bottom side edge of an adjacent blade, for example a blade located directly above it. The sealing member 10 may comprise a thin sheet of metal that is fixed on one side 11, as shown in
When the blades 2 of the fire damper 100 rotate from an open rotational position to a closed rotational position they rotate through an angle of rotation that is at least 100°. In some examples, the angle is between 100° and 120°. In the embodiment shown the angle of rotation of the blades 2 is 111°. This rotation engages the curved side edge portions 8, 9 of adjacent blades such that they interlock. As best seen in
In preferred embodiments, the fire damper 100 comprises a linking system 13, such as that shown in
In preferred embodiments, the fire damper 100 comprises a frame 1 comprising two pairs of opposed sides. The first pair of opposed sides may be lateral sides 4 of the frame 1. The second pair of opposed sides may be the top and bottom of the frame 1.
As shown in
As shown in
The first and second covers 17, 22 of the first and second sealing means 14, 20 provide a number of advantages. Exposure of the intumescent materials 15, 21 to the high velocity airflow can cause delamination of the intumescent materials 15, 21 and result in particles of the intumescent material 15, 21 entering the airflow. The covers 17, 22 contain the first and second intumescent materials 15, 21. This ensures that portions of the intumescent materials 15, 21 do not enter the air stream flowing through the fire damper 100. The covers 17, 22 also protect the intumescent materials 15, 21 and ensure that lint does not build up on the material. Damage to or build up of lint on the intumescent materials 15, 21 could negatively affect the function of the intumescent material. While the fire damper 100 above has been described by reference to embodiments which are provided with hook-like side edge portions 8,9, a flexible sealing member 10 and first and second sealing means 14, 20 in combination, other embodiments may combine any one or more of these features but not the others.
The fire damper 100 may comprise a number of metal components. Preferably the material of the fire damper is substantially fire resistant and maintains strength at high temperatures. In some embodiments the fire damper 100 and/or various components of the fire damper 100 comprise steel.
Referring to
With the cutouts and slots formed, the strip 29 is formed to have a non-planar profile, for example by roll forming. As shown in
The frame is formed by folding the strip at each corner forming portion. Each fold is generally aligned with the long edge of the isosceles trapezoid shape cutout 31. As the corner portion 30 is folded the tabs 32 of each corner forming portion insert into the corresponding U-shaped slots 33. As the tabs 32 are inserted into the slots 33 the resilient flap portions 34 may deflect outwardly to allow the tabs 32 to insert into the slots 33. The flap portions 34 revert to their original position after the tabs 32 are correctly inserted.
One end of the strip 29 also has at least one, more preferably two, cutout tabs 35 and the opposite end of the strip 29 has at least one, more preferably two, corresponding cutout U-shaped slots 36 or more preferably simple rectangular slots. After the three corner portions 30 are folded the end tabs 35 are inserted into the corresponding end U-shaped slots 36 (or rectangular slots) forming a right angle between the two adjacent sides. Once the ends of the strip 29 are engaged (and fastened together by folding the tabs 36 over and/or welding etc) a frame 1 ready for use is formed. Alternative embodiments may have protrusions and slots of different shapes. Different numbers of tabs and slots/flaps may also be used.
The strip 29 of sheet metal also has circular cut outs on two opposite sides, not shown, for the attachment of the plurality of blades 2. The shape of these cut outs corresponds with bearings to be mounted to the frame 1 for receiving the supports 3a.
Those skilled in the art will appreciate that the method described above allows a rigid rectangular frame to be created from a single sheet of steel with minimal fastening actions. The method may be used to manufacture a frame for use with any shape of blade. The damper, when completed, may be used with one or both of first and second sealing means 14, 20, or with no such sealing means.
Referring to
Reference to any prior art in this specification is not, and should not be taken as, an acknowledgement or any form of suggestion that prior art forms part of the common general knowledge in the field of endeavour in any country in the world.
The invention may also be said broadly to consist in the parts, elements and features referred to or indicated in the specification of the application, individually or collectively, in any or all combinations of two or more of said parts, elements or features.
Where in the foregoing description reference has been made to integers or components having known equivalents thereof, those integers are herein incorporated as if individually set forth.
It should be noted that various changes and modifications to the presently preferred embodiments described herein will be apparent to those skilled in the art. Such changes and modifications may be made without departing from the spirit and scope of the invention and without diminishing its attendant advantages. It is therefore intended that such changes and modifications be included within the present invention.
Aspects of the present invention have been described by way of example only and it should be appreciated that modifications and additions may be made thereto without departing from the scope thereof.
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