The present invention is directed to a fixture for supporting a workpiece. More particularly, the present invention is directed to a fixture capable of selectably supporting a number of dissimilar workpieces.
The need to support workpieces during work thereon is well understood in various manufacturing, industrial and other settings. Depending on the particular situation, it is also well understood that a variety of dissimilar workpieces may be processed in a single location. Consequently, it has been common practice to employ work stands or similar fixtures for supporting each workpiece to be processed.
As should be apparent, particularly in large-scale manufacturing operations that process large numbers of various workpieces on a regular basis, this known practice of using workpiece-specific support fixtures can be expensive as well as space and time consuming, and also typically requires a great deal of effort when switching from one workpiece to another.
For example, vehicle manufacturing facilities that produce a number of different vehicle models will also be required to produce and/or process a number of workpieces that are unique to each vehicle. One such commonly recognizable workpiece is a front and rear vehicle bumper fascia, although there are obviously a myriad of other components that are also exemplary of this issue. In the case of a bumper fascia, there may be a number of processing steps that occur after molding, including but not limited to, gate trimming, cleaning and/or other surface treatment, and coating (i.e., primer, paint, clear coat, etc.).
As should be apparent and as would certainly be understood by one of skill in the art, each bumper fascia typically must be supported in a desired position and orientation during each aforementioned process. In the case of a coating process, for example, bumper fascias may be placed on hand-coating fixtures but, more commonly, are located on conveyor-driven fixtures that transport the fascias through an automated coating application process.
When a number of vehicles are produced at the same facility, the typical result is that a number of dissimilar bumper fascias will need to be processed by the same coating system. In a large-scale vehicle manufacturing facility, this likely means that at least hundreds of model-specific bumper fascia support fixtures must be produced and used to support the bumper fascias of an associated vehicle model during a coating operation. This also means that each time fascias for a different vehicle model are coated, all the associated fascia support fixtures must be changed. Clearly, this is an expensive and time consuming method of workpiece support. Additionally, it should also be realized that each time a given support fixture is removed, stored and subsequently reinstalled, there is the possibility that the fixture will be damaged.
In light of the foregoing commentary, the benefits of avoiding or at least minimizing the number of separate workpiece support fixtures required to process a given group of workpieces should be apparent. A workpiece support fixture of the present invention and its method of use are so directed.
The present invention is directed to workpiece support fixtures that are capable of supporting a number of dissimilar workpieces. A workpiece support fixture of the present invention typically, but not necessarily, includes a frame having at least one vertical support member for supporting the fixture from the ground or by overhead suspension. To the vertical support member is connected a substantially vertically-oriented support frame having one or more rotatable workpiece tooling assemblies associated therewith.
The exact design of a given workpiece tooling assembly may depend on the specific workpieces to be supported thereby. Generally, however, a workpiece tooling assembly will include multiple tooling mounting faces. Each tooling mounting face of a workpiece tooling assembly includes a tooling mounting plate or similar tooling mounting structure, to which is attached support tooling for supporting a particular workpiece. A workpiece tooling assembly can be selectively rotated and locked into a support position that corresponds with a particular workpiece to be operated on.
A workpiece tooling assembly may be designed to support various numbers of different workpieces, such as for example 3-4 dissimilar workpieces. For example, a workpiece tooling assembly of the present invention may be provided with three separate but selectable tooling mounting faces, so as to support three different vehicle instrument panels. All that is required to switch support from one instrument panel to another is a simple rotation of the workpiece tooling assembly until the appropriate face and associated support tooling is properly oriented (e.g., facing the user). No actual changing of support tooling is required, as the support tooling remains with the associated face of the workpiece tooling assembly.
A single fixture of the present invention may also be equipped with multiple workpiece tooling assemblies. Further, when multiple workpiece tooling assemblies are present, there is no requirement that each workpiece tooling assembly be designed to support the same component, or set of components. For example, a fixture of the present invention may be designed with one or more pairs of workpiece tooling assemblies that respectively support one or more different instrument panels or other workpieces, or even a number of dissimilar workpieces, such as a combination of instrument panels and bumper fascias. In this manner, a variety of different workpieces may be supported on a single fixture.
As should be apparent, the use of a fixture of the present invention offers a considerable time savings in comparison to known techniques that require a complete, or substantially complete, changing of existing fixturing each time a new workpiece is to be processed. Similarly, the use of a fixture of the present invention may also offer a significant cost savings—especially in situations where a large number of dedicated fixtures are needed to accommodate manufacturing flow. This cost savings may be amplified when large numbers of several different support fixtures are required.
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:
One exemplary embodiment of a fixture for selectably holding dissimilar workpieces (“fixture”) 5 of the present invention is illustrated in
To the vertical support member 15 of this particular fixture 5 is connected a substantially horizontally-oriented support frame 20. As would be appreciated by one of skill in the art, the support frame 20 may be constructed from various materials such as metallic tubing, and angle materials. The materials used in this regard, as well as the specific method of construction and the size and shape of the support frame 20, may vary depending on the workpieces and/or application with which the fixture will be used.
The exemplary fixture 5 shown in
Each support section includes a pair of individual multi-sided, rotatable workpiece tooling assemblies 25-30, 35-40 that are supported by the framework 10. In this case, the rotatable workpiece tooling assemblies 25, 30, 35, 40 are rotatably supported on shafts 35 that extend from or through a pair of substantially horizontal and centrally located support arms 45. The support arms 45 of this design are connected to and supported by both the support frame 20 and the vertical support 15. Other fixtures of the present invention may utilize alternative rotatable workpiece tooling assembly support designs.
The pairs of rotatable workpiece tooling assemblies 25-30, 35-40 associated with each support section A, B cooperate to support a given workpiece, such as the front and rear vehicle bumper fascias 150, 155 illustrated in
Each rotatable workpiece tooling assembly 25, 30, 35, 40 of this embodiment includes three distinct tooling mounting sides (faces) 25a-25c, 30a-30c, 35-35c, 40a-40c. A lesser or greater number of tooling mounting faces are also possible in other embodiments. Each tooling mounting face a, b, c of the workpiece tooling assemblies 25, 30, 35, 40 of this embodiment is shown to include a tooling mounting plate P to which is attached support tooling 50a-50c, 55a-55c for supporting a particular bumper fascia. In lieu of a tooling plate, other support tooling connection elements may be provided, and the present invention is not limited to any particular support tooling connection technique.
As shown herein, the support tooling on the same tooling mounting face (e.g., the “a” face) of an associated pair of workpiece tooling assemblies 25-30, 35-40 is substantially identical but arranged in a mirrored orientation. In other embodiments of the present invention, the support tooling installed to each of an associated pair of workpiece tooling assemblies may be partially or wholly dissimilar and/or may lack the mirrored orientation depicted in
In order to permit the fixture 5 to support a number (three, in this case) of dissimilar bumper fascias, each workpiece tooling assembly 25, 30, 35, 40 can be selectively rotated and locked into a support position that corresponds with a particular bumper fascia to be operated on. As can be best understood from the exploded view of
Each workpiece tooling assembly 25, 30, 35, 40 may be provided with multiple locking positions that properly orient each face a, b, c thereof to support a different workpiece. To this end, the mounting tube 60 of each workpiece tooling assembly 25, 30, 35, 40 is associated with a spring-locking assembly 70 that maintains the associated workpiece tooling assembly in a selected locked position unless a deliberate unlocking force is applied thereto.
As shown in
Referring to
The spring retainer 105 follows the spring 95/travel limit tube 100 assembly into the mounting tube 60. Preferably, the spring retainer 105 has an exterior dimension (e.g., diameter) that approximates the inner dimension (e.g., diameter) of the mounting tube 60, while still allowing the spring retainer to be inserted into the mounting tube without excessive interference. Preferably, the spring retainer 105 also includes a central bore that allows a portion of the rotator bushing 110 to pass through the spring retainer and into the open distal end of the travel limit tube 100. The spring retainer 105 is thus rotatably mounted on the rotator bushing 110. In order to further facilitate rotation of the mounting tube 60 and the overall workpiece tooling assembly associated therewith, a bearing 135, a bushing or a similar rotation-facilitating component may be located on the shaft 35 so as to be received within the mounting tube 60 near its proximal end 60a once the mounting tube is installed to the shaft (see
Once the aforementioned components have been installed as described above, the spring 95/travel limit tube 100 assembly, spring retainer 105 and rotator bushing 110 are retained within the mounting tube 60 and on the shaft 35 by the snap ring 115. As shown, the snap ring 115 is received in a snap ring groove 130 located near a distal end 35b of the respective shaft 35. Installing the snap ring will require a compression of the spring 95 into the travel limit tube 100. Therefore, as mentioned above, when the mounting tube 60 and its spring-locking assembly 70 components are fully installed, the spring 95 will exert a proximally-directed biasing force on the mounting tube and associated workpiece tooling assembly.
Once the spring-locking assembly 70 has been installed, the open end of the mounting tube 60 may be optionally closed with the end cap 120. While not essential to the present invention, it should be realized that the use of the end cap 120 or a similar element may inhibit or prevent debris from entering the interior of an associated workpiece tooling assembly. To that end, an optional shield 135 may also be affixed to the shaft 35 at a location that will help prevent dust, debris, overspray, etc., from entering the mounting tube 60 at its proximal end 60a. Alternatively, such a shield could be attached to the mounting tube 60 itself.
With the spring-locking assembly 70 and mounting tube 60 installed to a shaft 35, as described above, an associated workpiece tooling assembly 25, 30, 35, 40 may be rotated to a new position by simply applying thereto an outward pulling force (i.e., a distally directed pulling force) that is sufficient to overcome the biasing force of the spring 95 and to withdraw the lock pin engaging element 85 from the lock pin 75. This allows the associated workpiece tooling assembly to be freely rotated to the desired position. Overall linear movement of the workpiece tooling assembly is limited by the length of the travel limit tube 100.
Once the desired face a, b, c of the workpiece tooling assembly has been rotated into a proper/desired support position, releasing the outward pulling force allows the spring 95 to return the workpiece tooling assembly in a proximal direction, thereby causing a corresponding one of the lock pin engaging element slots 90 to engage the lock pin 75 and to lock the workpiece tooling assembly in the selected rotational position. It should be understood in this regard, that the lock pin engaging element 85 should at least be provided with a slot 90 that corresponds in location to the desired locked position of each face of the associated workpiece tooling assembly. Additional slots may also be provided if it is desired to permit some variation in the locked position of one or more of the workpiece tooling assembly faces. In any event, this unlocking-rotation-relocking process can be quickly and easily repeated any time it is desired to support a different workpiece.
Another exemplary embodiment of a fixture for selectably holding dissimilar workpieces (“fixture”) 205 of the present invention is illustrated in
To the vertical support member 215 of this particular fixture 205 is connected a substantially vertically-oriented support frame 220—in contrast to the substantially horizontally-oriented support frame of the fixture of
The exemplary fixture 205 shown in
Each support section includes a pair of individual multi-sided, rotatable workpiece tooling assemblies 225-230, 235-240 that are supported by the framework 210. In this case, the rotatable workpiece tooling assemblies 225, 230, 235, 240 are rotatably supported on individual shafts 335 that extend vertically from or through a pair of substantially horizontally oriented support arms 245. The support arms 245 of this design are connected to and supported by the vertical support member 215. Other fixtures of the present invention may utilize alternative rotatable workpiece tooling assembly support designs.
The pairs of rotatable workpiece tooling assemblies 225-230, 235-240 associated with each support section A, B cooperate to support a given workpiece, such as the vehicle instrument panel foundations 250, 255 illustrated in
Each rotatable workpiece tooling assembly 225, 230, 235, 240 of this embodiment includes three distinct tooling mounting sides (faces) 225a-225c, 230a-230c, 235-235c, 240a-240c. A lesser or greater number of tooling mounting faces are also possible in other embodiments. Each tooling mounting face a′, b′, c′ of the workpiece tooling assemblies 225, 230, 235, 240 of this embodiment is shown to include a tooling mounting plate P′ to which is attached support tooling T for supporting an instrument panel foundation. In lieu of a tooling plate, other support tooling connection elements may be provided, and the present invention is not limited to any particular support tooling connection technique. Depending on the workpiece(s) to be supported by the fixture 205, the support tooling on the same tooling mounting face (e.g., the “a” face) of an associated pair of workpiece tooling assemblies 225-230, 235-240 may be substantially identical and may be arranged in a mirrored orientation as described above with respect to the fixture of
As described above with respect to the fixture of
Each workpiece tooling assembly 25, 30, 35, 40 of this particular embodiment again includes a hollow mounting tube 260 that surrounds a corresponding portion of a shaft 335. Bearings 345, bushings 310 and/or similar components may reside between the shaft 335 and the mounting tube 260 of each workpiece tooling assembly 225, 230, 235, 240 to facilitate selective rotation of the workpiece tooling assemblies about the shafts. In this particular embodiment, tooling mounting plate support ribs 265 extend from the mounting tube 260 to assist with the support and attachment of the workpiece tooling assembly tooling mounting plates P′.
Each workpiece tooling assembly 225, 230, 235, 240 may be provided with multiple locking positions that properly orient each face a′, b′, c′ thereof to support a different workpiece. To this end, the mounting tube 260 of each workpiece tooling assembly 225, 230, 235, 240 is associated with a releasable locking assembly. While the releasable locking assembly used in this embodiment may the same as or similar to the releasable locking assembly used with the fixture of
As shown in
The cam-locking assembly is also shown to include a pair of engaging cam elements 275, 280 that are respectively mounted to the fixed portion 335a and rotating portion 335b of the shaft 335. It can be seen that the cam elements 275, 280 have a cooperating cam profile and are located to reside in an engaged arrangement when the cam-locking assembly 270 is properly assembled.
Referring to
Referring now to
It should be apparent from
More specifically, with the cam-locking assembly 270 and mounting tube 260 installed to a shaft 335, as described above, an associated workpiece tooling assembly 225, 230, 235, 240 is held in a given rotational orientation by the spring-biased engagement of the cam elements 275, 280. However, when desired, the workpiece tooling assembly 225, 230, 235, 240 may be rotated to a new position by simply grasping and rotating the mounting tube 260 (or some element attached thereto) with a force sufficient to overcome the force of the spring 285 and to rotate the cam element 280. As shown, the cam elements 275, 280 are provided with a lobe profile that results in cam engagement at points that correspond to desired rotational positions of the workpiece tooling assembly faces a′, b′, c′. This allows a given workpiece tooling assembly to be maintained in an existing position, but also to be rotated to a desired new position. This deliberate rotation of the workpiece tooling assemblies can be quickly and easily repeated any time it is desired to support a different workpiece.
It should be understood that a fixture of the present invention may be designed to support various numbers of different workpieces. The number of workpieces that can be supported by a single fixture may be greater or less than the number of different workpieces that may be supported by the exemplary fixtures shown and described herein. Consequently, a workpiece tooling assembly of the present invention may be provided with various numbers of separate and selectable sides, so as to support a desired number of workpieces. The number of workpieces that can be supported by a single fixture of the present invention may depend on a number of factors including, for example, the size and/or shape of the workpieces to be supported, the size and/or shape of the associated tooling required to support each workpiece, the allowable size of the overall fixture, etc.
It should be further understood that a single fixture of the present invention may be equipped with various numbers of support sections and associated workpiece tooling assemblies. Thus, while the exemplary fixtures are shown and described herein as having two separate support sections, each having a pair of cooperating rotatable workpiece tooling assemblies, a fixture of the present invention may be provided with a greater or lesser number of support sections, each of which may have a greater or lesser number of rotatable workpiece tooling assemblies. For example, in a simplistic version of the present invention, a fixture may be constructed with only a single support section having only a single rotatable workpiece assembly with two or more faces.
When multiple support sections are present, the workpiece tooling assemblies associated therewith may be equipped with support tooling to simultaneously support dissimilar workpieces, such as the front and rear bumper fascias of
Regardless of the specific design of a fixture of the present invention, no actual changing of support tooling is required. Rather, all or substantially all support tooling remains with an associated face of the workpiece tooling assemblies. Consequently, when moving from one workpiece to another while using a fixture of the present invention, the only modification required is a simple rotation of a workpiece tooling assembly or assemblies.
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:
This application is a continuation-in-part of U.S. patent application Ser. No. 12/881,432, which was filed on Sep. 14, 2010 and is incorporated by reference herein.
Number | Name | Date | Kind |
---|---|---|---|
4445678 | George | May 1984 | A |
5191706 | Cosden | Mar 1993 | A |
5398375 | Niederquell | Mar 1995 | A |
5720817 | Taylor | Feb 1998 | A |
5725205 | O'Berg | Mar 1998 | A |
5879021 | Papendick | Mar 1999 | A |
6101702 | Claycomb et al. | Aug 2000 | A |
6173947 | Johnson | Jan 2001 | B1 |
6185802 | Gruber et al. | Feb 2001 | B1 |
6409128 | Deshler | Jun 2002 | B1 |
6837934 | Patrykus | Jan 2005 | B1 |
7146705 | Ahti et al. | Dec 2006 | B2 |
7448606 | Johnson | Nov 2008 | B1 |
7988137 | Johnson | Aug 2011 | B2 |
8690137 | Cahill | Apr 2014 | B2 |
20070022950 | Livingston | Feb 2007 | A1 |
20070266938 | Wolfer | Nov 2007 | A1 |
20080134970 | Straccia et al. | Jun 2008 | A1 |
20080138532 | Straccia et al. | Jun 2008 | A1 |
20090184217 | Sprout | Jul 2009 | A1 |
20100186664 | Ansorge | Jul 2010 | A1 |
20120061894 | Cahill | Mar 2012 | A1 |
20130026691 | Cahill | Jan 2013 | A1 |
Number | Date | Country |
---|---|---|
20219107 | Jun 2003 | DE |
2002-292319 | Oct 2002 | JP |
2003-38992 | Feb 2003 | JP |
Number | Date | Country | |
---|---|---|---|
20130026691 A1 | Jan 2013 | US |
Number | Date | Country | |
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Parent | 12881432 | Sep 2010 | US |
Child | 13563653 | US |