The present invention is directed to a draft shield for a weighing device, such as a balance, the draft shield having at least one wall that is coupled to a guide rail and suspended by a roller assembly that facilitates linear displacement of the wall.
Sensitive weighing devices, such as balances, typically have a high measurement resolution. Consequently, the weight readings produced by such weighing devices may be undesirably influenced by even small environmental factors that act on the object being weighed or on the load receiver of the device. Air movement is one such environmental factor. Because of this, such weighing devices commonly include a weighing compartment that is enclosed, or substantially enclosed, within what is commonly referred to as a draft shield.
A draft shield typically includes a rear wall, side walls, a front wall, and a top wall or cover. Frequently, a draft shield includes one or more walls, usually a side wall(s) and/or a top wall, that are displaceable to allow access into the weighing compartment. The front wall and back wall of the draft shield may be rigidly connected to the housing of the weighing device to lend structural support to the draft shield, although there are exceptions to this design. For example, the front wall may be displaceable. In any event, it is desirable that a draft shield seal as tightly as possible to prevent the intrusion of air drafts into the weighing compartment, while still allowing for easy access to the weighing compartment when necessary.
In order to make the weighing compartment of such a weighing device more easily accessible, various draft shield designs having liftable, slidable or otherwise displaceable access walls/doors have been created. For example, a known draft shield design locates one or both side walls in an upper and/or lower track that allows the side wall to slide within a groove that is cut or formed in the track. Other known draft shields may include a liftable (e.g., hinged) or slidable top wall or cover.
While these known draft shield designs may function to allow deliberate access to the weighing compartment of a weighing device, they are not without their drawbacks. For example, draft shields offering access through only a top wall may make use of the weighing device more difficult, as access to the load receiving surface of the weighing device through only the top of the draft shield is typically more restricted and the load receiving surface is generally located at the base of the draft shield. Access through only the top of a draft shield may be further restricted when another component such as, for example, a dosage-dispensing device, is located above the weighing compartment.
While draft shields offering passage into a weighing compartment through a side wall may improve access to the load receiving surface of the weighing device, these designs are not without their own problems. For example, known designs of this type generally result in direct sliding friction between the sliding wall of the draft shield and a track or similar component that is used to guide wall movement. This friction may prevent or inhibit a smooth movement of the sliding wall, and may also result in wear of the wall and/or track surfaces that are in contact. Additionally, because the track is typically affixed to the draft shield frame and there is no means of adjusting the position of the sliding wall with respect to the track, these known draft shield designs cannot account for manufacturing variances that may result in improper wall fit or movement.
The present invention is therefore directed to a draft shield for a weighing device, which draft shield offers improved access wall movement and may also allow for positional adjustment of the access wall to ensure that it seals and moves properly.
The present invention is directed to a draft shield for enclosing the weighing compartment of a weighing device such as a balance. A draft shield of the present invention will generally form an enclosure having a front wall, rear wall, top wall, and two side walls. One or both of the side walls are linearly displaceable to allow for access into the weighing compartment.
Unlike known draft shields, a displaceable side wall of a draft shield of the present invention is suspended from a top edge thereof. A guide rail is attached to the displaceable side wall along its top edge for this purpose, as well as for guiding the side wall during linear movement thereof. A roller assembly is attached to an associated mounting surface of the enclosure, such as a top wall of the draft shield or to some other suitable element thereof. When the displaceable side wall is properly installed to the draft shield, the guide rail is engaged with the roller assembly.
One embodiment of a roller assembly includes three rollers, which are arrange in a substantially triangular relationship. In one version of this roller assembly, two of the rollers are aligned in a plane that is substantially parallel with the top of the draft shield, while the third roller is spaced apart from and located substantially at the center point between the other two rollers. The spacing between the upper roller pair and the lower roller is of a dimension that will allow passage of the guide rail attached to the displaceable side wall, with the rollers in contact with respective upper and lower surfaces of the guide rail. Thus, the displaceable side wall is suspended from the roller assembly. When the displaceable side wall is moved linearly forward or rearward by a user, the guide rail rolls on the rollers of the roller assembly, which results in greatly reduced friction in comparison to known draft shield designs in which sliding friction takes place.
The roller assembly may be adjustable to permit changes to the orientation of the displaceable side wall. The degree of adjustability may vary, but generally the roller assembly is sufficiently adjustable to account for displaceable side wall alignment problems stemming from dimensional (e.g., manufacturing) variances of the enclosure, etc.
In one exemplary embodiment, the upper pair of rollers of the previously described roller assembly are rotatably mounted to respective support arms that extend upward from an upper roller mounting surface, such as a portion of a roller assembly mounting bracket. A free end of each support arm is coupled to the support arm mounting surface via an adjustment element (e.g., a screw). Rotation of the adjustment screw in one direction causes the free end of the support arm and the attached roller to move toward the support arm mounting surface, while rotation of the adjustment screw in the opposite direction has the reverse effect. Consequently, the spacing between the upper and lower rollers of the roller assembly may be adjusted, as well as the angle at which the guide rail passes through the rollers and the orientation of the attached side wall.
In addition to the features mentioned above, other aspects of the present invention will be readily apparent from the following descriptions of the drawings and exemplary embodiments, wherein like reference numerals across the several views refer to identical or equivalent features, and wherein:
As can be observed, the draft shield 5 includes a front wall 10, a rear wall 15, a top wall (or cover) 20, and a pair of opposed side walls 25, 30. In this embodiment, the top wall 20 includes a forward portion 20a that may be hinged or otherwise adapted to allow opening thereof, and a rearward portion 20b that also functions as a cover for roller assemblies 65 of the device. Together, these walls 10-30 comprise an enclosure that forms a protected weighing compartment 35 around the load receiving surface 40 of the weighing device W. The draft shield 5 may also include a number of horizontal and vertical frame members that support and retain the walls 10-30, as would be understood by one of skill in the art. In certain embodiments, these frame members may be independent elements. In this exemplary embodiment, integral portions 45, 50 of the front wall 10, rear wall 15 and top wall 20 fulfill this supporting function.
As described above, at least one of the side walls of a draft shield of the present invention is linearly displaceable to provide access to the weighing compartment 35. In this particular embodiment of the draft shield 5, both of the side walls 25, 30 are displaceable. To this end, the side walls 25, 30 of the draft shield 5 each include a guide rail 55 and are suspended from a roller assembly 65, which may be best observed in
As best shown in
The guide rail 55 may be of various design and construction. For example, a guide rail of the present invention may be of substantially square or rectangular cross-section as shown, but may be of other cross-sectional shapes as well. A guide rail of the present invention may be constructed from plastic, metal or other materials of sufficient strength. A guide rail of the present invention may also be provided with a retention element such as the flange 60 shown on the guide rail 55. Such a flange 60 helps to direct the side wall-guide rail assembly during movement and prevents the guide rail 55 from sliding transversely away from the rollers of a roller assembly through which the guide rail passes, as is described in more detail below.
In this exemplary embodiment, the guide rail 55 is also equipped with an upwardly-extending rib 140 that runs in the lengthwise direction of the guide rail along a top surface thereof. When the guide rail 55 is installed to the roller assembly 65, the rib 140 is engaged with a corresponding elongate receiving slot 145 located in an underside of the top wall sections 20a, 20b. When present, the rib 140 and receiving slot 145 arrangement may help to substantially seal the side wall 25 with the top wall 20.
As depicted in
In this exemplary embodiment, the third roller 80 is also preferably located on or near a vertically oriented centerline drawn between the upper rollers 70, 75, so that the three rollers form the substantially triangular arrangement described above. As should be apparent, the spacing between the upper roller pair 70, 75 and the lower roller 80 is preferably of a dimension that will allow passage of the guide rail 55 attached to the displaceable side wall 25, while simultaneously permitting contact between the rollers and the respective upper and lower surfaces 55a, 55b of the guide rail.
The rollers of a roller assembly of the present invention are preferably rotatably mounted to individual roller support arms, although it may also be possible for the upper rollers to share a support arm. In the particular exemplary embodiment described herein, the upper rollers 70, 75 of the roller assembly 65 are rotatably mounted to respective upper roller support arms 85, 90 that extend upward from an upper support arm mounting surface S1, which may be, for example, a surface of the roller assembly bracket B (as shown), a draft shield frame element 45 or a draft shield wall.
The support arms 85, 90 of
An alternative embodiment of a roller assembly 150 is illustrated in
The lower roller 80 of the roller assembly 65, 150 is rotatably mounted to a lower roller shaft 115 that is supported in the roller assembly bracket B. In this embodiment, the roller assembly bracket B is attached to a roller assembly mounting surface S2 that is formed along an abbreviated upper mounting surface 135 of the draft shield rear wall 15 (see
As shown in
While the upper roller support arms 85, 90 of the first exemplary roller assembly 65 have been described above as having a free leg 95, 100, one or both of the free legs may actually be adjustably coupled to the upper support arm mounting surface S1 to allow for positional adjustment of the side wall 25. More specifically, in this particular draft shield embodiment, the free leg 95, 100 of each upper support arm 85, 90 is coupled to the upper support arm mounting surface S1 via an adjustment element 120, which is fully shown in the partially transparent view of
Rotation of the adjustment element 120 in one direction causes the free leg 95, 100 of the upper support arm 85, 90 and the attached roller 70, 75 to move toward the upper support arm mounting surface S1 (and the lower roller 80), while rotation of the adjustment element in the opposite direction has the reverse effect. Movement of the free leg 95, 100 of the upper support arm 85, 90 away from the upper support arm mounting surface S1 may be produced by use of a resilient upper support arm material. Alternatively, movement of the free leg 95, 100 of the upper support arm 85, 90 away from the upper support arm mounting surface S1 may be produced by actual engagement of the adjustment element 120 with the upper support arm. For example, when the adjustment element 120 is a threaded fastener, the fastener may be placed in threaded engagement with the upper support arm 85, 90 rather than freely passing therethrough.
The inclusion of an adjustment element(s) allows the distance between the axial centerline of an associated upper roller to be adjusted relative to the axial centerline of the lower roller. For example, the spacing between the upper rollers 70, 75 and lower roller 80 of the roller assembly 65 of the exemplary draft shield 5 described herein may be adjusted using the adjustment elements 120, as may the angle of the side wall-guide rail assembly. Referring to
With the guide rail 55 residing between the rollers 70-80, it should be realized that the displaceable side wall 25 is suspended substantially vertically from the roller assembly 65, 150. As such, the side wall 25 is able to contact the side edges of the front wall 10 and rear wall 15 of the draft shield 5, or to produce a minimized gap with respect thereto.
While movement of a displaceable side wall of the draft shield 5 has been described above with respect to the left side wall 25, it should be realized that the right side wall 30 may be equipped with a like roller assembly such that both side walls may be opened to access the weighing compartment 35. The side walls 25, 30 may be equipped with handles 130 or similar elements to assist with movement thereof.
The exemplary draft shield shown and described herein includes displaceable side walls 25, 30 designed for manual movement by a user of the weighing device. However, as should be understood by one of skill in the art, a draft shield of the present invention may also be equipped with a variety of known actuator systems that are operable to move the displaceable side wall(s). Such actuator systems may include, without limitation, linear actuators, motor and belt systems, motor and gear systems, etc. In one such exemplary embodiment, the lower roller of the roller assembly may be driven to cause a linear movement of an associated side wall. In this case, the lower roller may be manufactured from, for example, plastic or a higher friction-producing material, or the roller may be coated with a friction-producing material to provide better grip with the guide rail.
Embodiments of the invention may be provided with a number of other features. For example, a guide element and/or a seal may be provided along the bottom of the moveable side wall(s) to assist with guided movement thereof and/or with the prevention of unwanted air infiltration into the weighing compartment. A seal may also be provided along the forward edge of the moveable side wall(s) or along the mating edge of the front wall to assist with sealing of the weighing compartment.
While certain embodiments of the present invention are described in detail above, the scope of the invention is not to be considered limited by such disclosure, and modifications are possible without departing from the spirit of the invention as evidenced by the following claims: