This application claims priority to Australian provisional patent application no. 2021902435 entitled ‘A roller assembly’ filed on 6 Aug. 2021.
The present invention generally relates a roller assembly for supporting a slidable panel and a suspension system comprising at least one said roller assembly.
Conventional roller assemblies for sliding panels have roller wheels within carriages that are located within a cavity of the panel. These assemblies will typically have two roller wheel carriages, with one located towards the lower front corner and one towards the lower rear corner of the sliding panel.
Other roller assemblies exist for low or slim line sliding panel systems which have rollers mounted in the sill of the door or window frame. One purpose of these systems is to reduce the outer frame size of the panel, for example to enable larger glass sections to maximize outdoor views and natural light. However, these systems have limited room in the sill and therefore the roller wheels are of smaller diameter than those commonly used in conventional panel mounted carriages. The reduced wheel size places a limit on the mass that each roller can bear. Thus, more than two rollers are required at spaced apart intervals in the sill in order to spread the weight of the panel between the rollers.
A problem with existing sliding door and window rollers is that for even load distribution between rollers within the panel, the load must be applied between only two equidistant positions. In a system with only two wheels, these points are usually the axles. When loads increase, additional wheels are required to support the increased load, which then requires additional mechanisms to ensure the load is still applied through the two equidistant positions. These additional mechanisms increase in complexity as door loads increase and quantity of wheels required increases. Increasing the complexity of the mechanism increases costs.
In sliding panels with multiple wheels not all the wheels will be evenly in contact with the rolling surface to the same degree, such that one or more of the wheels may receive a greater force from the panel than others. This problem can arise because the sill is often not perfectly level, for example through curvature in the sill or door/window frame. This problem can also be caused by the panel itself not having a perfectly straight edge, such as where the panel is assembled on an uneven surface. As a result, the weight of a panel may not be evenly distributed between the roller wheels. This can lead to performance issues, such as a sliding motion of the panel not being smooth or the panel being difficult to move. In some cases, this problem can lead to too high a percentage of the weight of the panel being received by a single wheel, which can lead to failure or buckling of the wheel such that the sliding panel will not function.
It is desirable for embodiments of the present invention to address at least partially one or more of the disadvantages of the methods or systems above. Further it is preferred that embodiments of the present invention provide a system and method which has improved performance for sliding door panels, particularly for heavier doors and windows and/or less ideal conditions such as uneven sills or panel edges. It is also preferred that embodiments of the present invention also produce a system which can accommodate a wide range of sliding doors and windows having different weights.
It is to be understood that, if any prior art publication is referred to herein, such reference does not constitute an admission that the publication forms a part of the common general knowledge in the art, in Australia or any other country.
According to an aspect of the present invention there is provided a roller assembly for a sliding panel, the roller assembly including at least one roller sub-assembly having at least one roller wheel, the roller sub-assembly comprising at least one pivotal arm and a roller wheel rotatably mounted to the arm, wherein one end of the arm is configured for pivotally attachment to the support to permit the arm and roller wheel to pivot relative to the support in a vertical plane and the opposite end of the arm has resilient suspension means configured to allow resilient pivotal movement of said opposite end relative to the support when a force is applied to the roller wheel.
The or each respective arm can comprise a pair of spaced-apart plate-like members and the or each roller wheel is rotatably mounted on an axis therebetween the plate-like members. Preferably the or each roller wheel is rotatably mounted intermediate the ends of its respective arm.
The roller assembly can further comprise an outer housing which contains a plurality of roller wheels. Preferably the roller sub-assembly can be one of a pair of sub-assemblies within the outer housing of the roller assembly.
In one embodiment, the support of each roller sub-assembly is configured to hold two roller wheels in edge-to-edge configuration, each roller wheel being carried by a respective arm. Preferably, the arms of the sub-assembly are configured to pivot relative to the support in a vertical plane about a common pivot point, the arms extending outwardly from the pivot point, and the suspension means being located at opposite end portions of the support.
In another embodiment, the support of the roller sub-assembly can be configured to hold four roller wheels in edge-to-edge configuration, each roller wheel being carried by a respective arm and having suspension means at the end portion of each said respective arm. Preferably, the suspension means is a spring. More preferably, the suspension means is a coil spring.
It will, however, be appreciated that the support of the or each roller assembly may be configured to hold any number of wheels, which may or may not be in edge-to-edge configuration.
In an embodiment, at least one of the roller sub-assemblies can be configured to be removable from the outer housing and/or replaceable.
According to a further aspect of the present invention there is provided a roller cartridge for mounting in a roller assembly for a sliding panel system, the roller cartridge including a pivotal arm and a roller wheel, wherein one end of the pivotal arm is configured to be pivotally mounted to a support of the roller assembly, and the opposite end of the arm is provided with suspension means, and wherein the roller cartridge is configured to be removable and/or replaceable from the roller assembly.
According to a yet further aspect of the present invention there is provided a sealing system for a slidable panel, the assembly comprising a linkage assembly which connects a handle and at least one roller assembly as described above, the sealing system being configured to be adjustable, by manipulation of the handle, such that the at least one roller assembly and the slidable panel supported thereby are movable between a first position where the slidable panel is in contact with sealing means thereby providing weatherproofing and a second position where the slidable panel is free of the sealing means and the panel is able to move freely relative to an outer frame.
The linkage assembly can be configured to as to provide a variable force when the roller assembly and supported panel is moved between the positions.
According to still yet another aspect of the present invention there is provided a sealing system for a sliding panel assembly as described above having at least a pair of roller assemblies as described above, wherein the each of the roller assemblies being spaced apart and mountable in the recess of a sill for supporting the slidable panel.
One or more embodiments of the present invention will hereinafter be described with reference to the accompanying Figures, in which:
Referring now to
In
The roller assemblies 6, 8, are exemplified in
The body of each of the roller assemblies 6, 8 includes an outer housing 20 which defines an internal volume which is sized to receive the roller sub-assemblies 14, 16, and which protects the sub-assemblies 14, 16 and further provides an aesthetic covering.
The master roller assembly 6, shown more particularly in
The slave roller assembly 8, shown more particularly in
The upper surface 21, of each housing 20 is provided with a pair of openings 121 through which attachment means 123 extend for securing the lower surface of the panel 4 to the roller assembly 6.
The linkage assembly 5 comprises a pair of connected upper and lower bell crank linkage arrangements 7, 9 at opposite end portions of a vertical rod member 11 extending therebetween as illustrated in
In the roller assemblies 6, 8 the roller sub-assemblies 14, 16 are mounted to an elongate inner member 130 which is movable within the outer housing 20. A first end 131 of the inner elongate member 130 of the master roller assembly 6 is connected to the lower bell crank linkage 9, and a second end 32 of the inner member 130 is connected to a first end of the linkage bar 10. The inner member 130 is connected to the outer housing 20 by pivoting swing arms 13. In the master roller assembly 6, the swing arms 13 are located at an intermediate location between the roller sub-assemblies 14 and 16 and at an end location at the second end of the inner member 30. In the slave roller assembly 8, the swing arms 13 are located at an intermediate location between the roller sub-assemblies 14 and 16 and at opposite end locations of the inner member 130. The pivoting swing arms 13 allow each inner member 130 to move in unison horizontally and vertically relative to the outer housing 20 upon pivotal movement of the lower bell crank linkage 9. As shown in the embodiments of
The pivotal arms 24 and suspension means 26 allow suspension of the roller wheel 18 relative to the outer housing 20 such that in use when the load of the slidable panel 4 rests on the roller assembly 6, 8, the roller wheel 18 recedes a pre-determined amount into the outer housing 20 compared to when the roller assembly 14, 16 is unloaded. The maximum pre-determined amount depends on the suspension means 26, such as the spring constant, the load in the form of the weight of the slidable panel 4 and the number of roller wheels 18 in the roller assembly 14, 16. This is particularly illustrated in
In one embodiment exemplified in
In another embodiment exemplified in
Referring to
It can be understood that these embodiments are presented by example only, and the sub-assemblies 14, 16 may carry any number of roller wheels 18 and where the arms 24 carrying the roller wheels 18 can be arranged with their own pivot points or with common pivots such that the arms 24 extend in the same direction or in opposing directions.
Each of the roller wheels 18 includes an outer wheel surface which is adapted to engage the recessed sill when in use. The side of each roller wheel 18 can include a central aperture 32 by which the pivotal arms 24, which can be formed of a pair of parallel spaced-apart elongate plate-like members, hold the wheel 18 therebetween by inwardly directed protrusions or an axle. Each roller wheel 18, as illustrated in
The support 22 of each roller-sub-assembly 14, 16 can be similarly formed to the pivotal arms 24 in that they have a pair of elongate plate-like members by which the pivotal arms 24 can be supported. The pivotal attachment of the arms 24 to the support 18 is exemplified in
In addition, each of the sub-assemblies 14, 16 described above may be configured so as to be removable from and attachable to the body of the roller assembly 6, 8. Therefore, the sub-assemblies 14, 16 may be in form of a cartridge. For instance, in the case of the embodiment illustrated in
The functionality of the removably attachable cartridge sub-assemblies 14, 16 allow easy replacement and maintenance of the sub-assemblies 16, 18. In addition, the removably attachable sub-assemblies 16, 18 allow the number of roller wheels 18 in the roller assembly 6, 8 to be modified as required. For instance, if heavier panels 4 are to be used, then the number of roller wheels 18 can be increased by the attachment of additional sub-assemblies 14, 16. Furthermore, the placement of the roller wheel sub-assemblies 14, 16 within the roller assembly 6, 8 can be modified so as to optimise the load distribution from the sliding panel 4 such that it is spread evenly across the roller assemblies 6, 8, and thus the roller wheels 18. Finally, a sub-assembly 14, 16 may be replaced by one with different specifications, i.e. different suspension means 26 such as different resilient means, stronger or weaker coil springs, or roller wheels with different bearings etc.
As shown in
In the claims which follow and in the preceding description of the invention, except where the context requires otherwise due to express language or necessary implication, the word “comprise” or variations such as “comprises” or “comprising” is used in an inclusive sense, i.e. to specify the presence of the stated features but not to preclude the presence or addition of further features in various embodiments of the invention.
Number | Date | Country | Kind |
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2021902435 | Aug 2021 | AU | national |