This document discloses a method and apparatus for feeding swageable collars to a presentation position on a swaging tool in such a fashion that the collars may be serially swaged. onto the shanks of pre-located lockbolts in a convenient and efficient fashion.
A well-known mechanical fastening system involves the use of lockbolts each having a head and a grooved shank designed to receive a swageable collar which, after being placed on the shank, is deformed into substantially permanent association with the lockbolt shank. The finished lockbolt has fastening characteristics similar to conventional rivets.
The process for installing lockbolts begins with placing the lockbolts in preformed holes in the parts to be joined; the shanks of the lockbolts are exposed awaiting the placement of collars thereon and the swaging of those collars into permanent association with the lockbolt shank by a manually operated tool.
The operator of the tool places a collar on each lockbolt and thereafter triggers the tool to swage; i.e., deform, the collar into permanent association with a grooved portion of the lockbolt shank. The tool also typically breaks off a portion of the shank known as a “pintail.”
Collar feeders can be separate from the swaging tool; for example, expired U.S. Pat. No. 5,697,521 assigned to Huck International shows a hand-held collar dispenser with spring bias clips 44 feeding collars one at a time to a presentation or “ready” position. Another collar feeder is described is U.S. Pat. No. 9,511,416 assigned to Gage Bilt, Inc. of Clinton Township Mich., the Applicant in the present application.
According to the apparatus aspect of the subject matter disclosed herein, a collar feeder device is constructed separate from, but easily attached to, the nose assembly of a swaging tool such as the model GB731 available from Gage Bilt Inc. of Clinton Township, Mich. The collar feeder device comprises four main components: a rear stationary body, a lower assembly, a front movable body, and an actuator assembly. The rear body is configured with a male internal tab that can be lined up on a female slot located on the barrel-like nose assembly of the swaging tool, allowing the device to be set radially while also allowing the device to stop on the shoulder of the barrel that controls how far the device goes onto the barrel (
The term “presentation position”, as used herein, refers to the ready position of a collar at the front of the feeder device and in alignment with the operating axis of the swaging tool whereby an operator can slide the collar onto the exposed shank of a pre-positioned lockbolt. The terms “loading position” refer to the position of collars being fed into the device for serial application to lockbolt shanks prior to being raised to the presentation position.
As further described herein, with respect to an illustrative embodiment of the invention, the actuator assembly is located on the front of the front movable body 100 assembly and includes a pair of parallel spring arms providing a resilient “collapse” function that produces the pivotal motion between the front movable body and lower assemblies.
In operation, the operator places the actuator in contact with a work surface adjacent the exposed shank of a lockbolt and with a collar in alignment with the lockbolt shank but not yet swaged. The operator thereafter pushes the tool forward such that the front of the actuator assembly contacts the surface of the workpiece in which a collarless lockbolt has been placed for final attachment. This forward push compresses springs in the aforementioned actuating arms, releasing a collar onto the lockbolt. The operator then pulls the trigger on the tool to swage the now in-place collar. This resilient compression action also causes the actuating arms to bottom out inside the front movable body 100 thus causing the front movable body and the lower body to remain stationary while the barrel of the nose assembly and the rear stationary body are drawn forward swaging the collar by the use of secondary springs 30. When the operator withdraws the tool, the lower assembly springs 32 re-extend; the lower assembly then pivots back up and a gripper mounted on the lower assembly picks up the next collar from the supply and places it in the presentation position.
The feeder device is adapted to be connected to a collar supply device such as an air-driven tube loaded with serially-arranged co-axial collars. In brief, movement between the front movable body and lower feeder assemblies, caused by steps performed by the tool operator, transfers collars one at a time between the outlet of the supply tube and a presentation position on the front movable body assembly. As the operator places a collar on a lockbolt, activates the tool to swage the collar and withdraws the tool from the finished lockbolt, the feeder automatically places the next collar in the presentation position.
The inventive subject matter disclosed herein has both apparatus and method aspects, both of which are described below with reference to the accompanying drawings, showing an operative embodiment of the apparatus invention in detail. The drawings are to scale unless otherwise indicated.
Referring to the Figures, the collar feeder device 10 is shown both individually and as mounted on the nose assembly 12 of a Gage Bilt Model GB731 swaging tool 14. The feeder device 10 comprises a rear stationary body assembly 16 configured to be removably mounted on the nose assembly 12 of the swaging tool 14, and a lower assembly 18 connected to receive collars serially from a collar magazine tube 44. The assembly 16 is partially split by a longitudinal slot to allow mounting the device on the nose assembly. Screws 15 tightens the two sides to secure device 10 in place on the nose assembly 12. The lower assembly 18 has a “dog leg” shape so as to straddle the front moveable assembly 100 and rear stationary assembly 16. The lower assembly members 18A and 18B are connected to the rear stationary assembly 16 at the rearward end by means of a pivot pin 20 which receives one of the screws 15 and allows the lower assembly to move angularly about the axis of pivot pin 20 between a raised “presentation” position shown in
The arms 18A and 18B are each configured with diagonal slots 22 which receive the shanks of shoulder bolts 24 threaded into slidable elements 34 in the front movable body assembly 100 to cause the pivotal motion between the front movable body 100 and rear stationary body 16 and 18 respectively as hereinafter described.
As shown in
The lower assembly carries a number of components including a gripper 36 with left and right arms connected to the lower assembly by screws 35 and held in a closed or gripping position by means of a spring 38 that fits into blind holes on the bottom of the gripper elements as shown in
The lower assembly 18 also carries a metal stop plate 40 which is screwed onto the forward distal ends of the parallel legs in front of the gripper 36.
The device 10 is connected to receive collars from an attached tubular magazine 44 which may be in the form of a flexible hose. The collars are driven toward the locator stop plate 40 by air pressure from a source (not shown) so that the collars continue to arrive into the loading position against stop plate 40 one at a time.
The tool has a trigger 49 which the operator uses to trigger the swaging operation once the lockbolt in the presentation position has been appropriately placed on the shank of a lockbolt and the tool and feeder assembly are urged toward a work surface as described above. Details of the power tool are omitted herein but can be seen in full in the product brochure available at http://gagebilt.com/installtools/manuals/GB731-MANUAL.pdf. The nose assembly details are described in the document available at http://www.gagebilt.com/noseassembly/data_sheets/LGP06-2480-45.pdf. The contents of these websites are incorporated herein by reference.
Turning now to
The side view of
As shown in
As shown in
As shown in
Summarizing the apparatus, the feeder 10 is mounted on a nose assembly capable of swaging collars on lockbolts, and the front movable body assembly is connected to an air-driven collar supply. Springs 30, 32 urge the actuation members 28A-28B away from the body of the front movable body assembly 100 and the shoulder bolts 24 reside in the lower ends of slots 22 as shown in
Summarizing the method of operation of the feeder device 10, the device is attached to the nose assembly of a swaging tool and to a supply of serially-arranged swageable collars. A collar is brought to the presentation position in axial alignment with the nose assembly anvil and steered by the operator onto a lockbolt shank. The operator pushes the device 10 against the workpiece surface to compress the primary springs 32 in the upper assembly 100 and drop the lower assembly 18 down. This opens the gripper to release one collar onto the lockbolt and make ready to receive the next collar from magazine 44. The operator presses the trigger on the tool 14 to swage the collar that has been placed on a lockbolt shank. This action fully compresses the springs 30, 32 and opens the gripper. The operator then withdraws the tool and feeder device, allowing the primary and secondary springs to expand, raising the lower assembly legs and bringing a new collar up to the presentation position. The operator can perform these steps with one hand.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiments but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims, which scope is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and methods of use as is permitted under the law. For example, the device can also operate with one set of springs which are fully compressed by the operator, thus eliminating the two-stage compression function described above.