The invention relates to a hinge for a packaging or cargo box or the like.
The outer configuration of such a hinge is known from the publication DE 203 08 234 U1, in particular, from
Such a hinge that is designated overall with 10 has a first hinge leaf 11 and a smaller second hinge leaf 12. The latter can be inserted into a holder 20. The holder 20 is not of further interest here. It is shown and described in detail in the publication DE 203 08 234 U1 mentioned above. The second hinge leaf 12 has a first bearing bushing 15a and a second bearing bushing 15b between which a bearing bushing 15c of the first hinge leaf 11 can rotate about a common hinge axis 22. An axle tube 13 can be locked in rotation with the bearing bushing 15c of the first hinge leaf 11, in the shown case by not-shown external teeth on the periphery of the axle tube 13 that engages with a positive fit in internal teeth of the bearing bushing 15c. In the bearing bushings 15a and 15b of the second hinge leaf 12, the axle tube 13 can be supported so that it can rotate. The axle tube 13 can be locked in rotation with the first bearing bushing 15a of the second hinge leaf 12 by a disk-shaped torque converter support 14a and a cylinder pin 14b. A torsion spring 18 is arranged in the axle tube 13 and attached with one end to the axle tube. According to the diagram in
When the cover (not shown) of a cargo box is closed, wherein this cover is mounted on the first hinge leaf 11, the hinge leaf 11 is moved by the movement of the cover from the position shown with dash-dot lines in
When such hinges are used for cargo boxes in airplanes, the hinge weight is a very important criterion. The assembly costs of such a hinge, however, are criteria that are no less important for this or any other application. The weight of the hinge is in direct relationship to the number of its individual parts. The assembly costs are similarly based on the number of individual parts to be assembled and also on whether the assembly is simple or complicated. With respect to both criteria, the known hinge described above appears to need improvements. The known hinge must be made freely accessible from two sides for the assembly in the hinge axis. This limits not only the installation possibilities of the hinge, but also makes the assembly complicated and also increases the number of parts that are absolutely required. The production of adhesive connections makes at least one additional processing step necessary.
In this way, in the case of the assembly, not only is the setting of the correct biasing of the torsion spring 18 difficult, but the mounting of the sleeve 17 is also difficult. The damper 16 is bonded in the sleeve 17. The sleeve 17 must be brought into a suitable position beforehand, so that the catch pins 16b can also be inserted in the correct position in corresponding catch openings in the end face of the axle tube 13. Therefore, the assembly is typically performed so that the sleeve 17 is set on the second bearing bushing 15b and a dummy is inserted into the sleeve instead of the damper 16. When the sleeve 17 and the dummy have the correct position, the sleeve 17 is bonded with the second bearing bushing 15b. Then the dummy is removed again and replaced by the damper 16 that is now inserted in the correct position in the sleeve 17 and can be fixed therein. Only then can the cover 24 be bonded.
The assembly can be made more difficult in that the boreholes in the bearing bushings 15a and 15b are not round. The hinge 10 is typically made from a fiberglass-containing plastic and is made through injection molding. Injection-molded parts made from plastic, however, tend to contract on one side, which expresses itself in that the boreholes of the bearing bushings 15a and 15b are not round, but are, instead, oval. If this is discovered during assembly, then the bearing boreholes of the bearing bushings 15a and 15b are preferably refinished.
The objective of the invention is to improve the construction of a hinge of the type noted above so that it is made from fewer individual parts and can be assembled more easily.
This objective is met in the case of a hinge of the type noted above with the features of the invention.
Because, in the case of the hinge according to the invention, the damper, the axle tube containing the torsion spring, and the torque converter support are inserted one after the other in a cylindrical hollow space formed by the three bearing bushings together from an outer opening of the second bearing bushing and the torque converter support is blocked from turning and shifting in the axial direction in the second bearing bushing by a securing device, the assembly is already simpler, because all of the individual parts noted above are inserted in the sequence indicated above from one and the same side of the hinge into the bearing bushings and the securing against rotation and axial displacement is realized on the same side. This has the additional advantage that the other side of the hinge in the axial direction does not need to be accessible. The hinge according to the invention also requires fewer individual parts, because the torque converter support on the insertion side of the axle tube is attached on the hinge and thus also offers additional possibilities for simplifying the rotation locking. The hinge according to the invention further requires no sleeve bonded on the second bearing bushing of the second hinge leaf for holding the damper, because this is held by the second bearing bushing. Thus, not only is the cover eliminated that is required in the known hinge for closing the sleeve, but the tedious setting of the damper is also eliminated, because this is inserted first and the other elements are then adapted to the position of the damper. The necessary spring biasing is then set only at the completion of the assembly process, wherein the position of the damper in the first bearing bushing 65a of the second hinge leaf is automatically taken into account.
Advantageous configurations of the invention form the subject matter of the subordinate claims.
In one construction of the hinge according to the invention, if the securing device includes a securing element that engages via at least one opening in the second bearing bushing in a peripheral groove of a retaining ring that is locked in rotation with the torque converter support, then the entirety of the hinge elements held in the cylindrical hollow space formed by the three bearing bushings together can be secured against axial displacement with a single securing element.
In another construction of the hinge according to the invention, if the securing device is a spring clip that engages via two openings in the second bearing bushing in the peripheral groove of the retaining ring, then the securing can be produced more easily by hand than with a cylindrical pin, because the spring clip can be inserted into the peripheral groove in any rotational position of the retaining ring.
In another construction of the hinge according to the invention, for the rotational locking between the torque converter support and the retaining ring, if the torque converter support has a cylinder peg with external teeth, wherein this peg engages in an opening of the retaining ring with internal teeth, and the retaining ring has an outer periphery with external teeth that engage in internal teeth in the second bearing bushing of the second hinge leaf, then the necessary biasing can be set on the assembly formed from the axle tube and the torsion spring in a simpler way and the assembly can then be locked against rotation. The setting of the required biasing can be performed in an especially simple and especially very precise way, because the retaining ring can be pushed onto the peg in any rotational position of the cylinder peg 54d. The relative mismatched position between these elements can equal, namely, at most one tooth width, while the corresponding step in the known hinge equals at least one half revolution or 180°.
In another construction of the hinge according to the invention, if the first and the second bearing bushing project past the second hinge leaf approximately equally as far in the axial direction, then a symmetric configuration of the hinge is produced, without a sleeve having to be bonded onto one of the bearing bushings.
In another construction of the hinge according to the invention, if the first bearing bushing of the second hinge leaf is closed on its side facing away from the second bearing bushing, then the second hinge leaf can be completely produced in one injection-molding process, without an additional cover having to be bonded onto one of the bearing bushings at a later time.
In another construction of the hinge according to the invention, if the damper has a radial damping vane that can rotate in a chamber of a damper housing filled with viscous damping material, wherein the damper housing is connected with a positive fit to the first bearing bushing of the second hinge leaf, then the hinge movement can be damped in a simple manner.
An embodiment of the invention will be described in more detail below with reference to the drawings. Shown are:
The known hinge shown in
A torsion spring 58 is arranged in the axle tube 53 and mounted with one end (not visible in
As a securing device against rotation and axial displacement of the axle tube 53 that is inserted in a cylindrical hollow space formed by the three bearing bushings 65a-65c together, a retaining ring 68 is allocated to the torque converter support 54a. For a rotationally locked connection between the torque converter support 54a and the retaining ring 68, a cylinder peg 54d is formed on the torque converter support, wherein this peg has external teeth and engages in an opening 68a of the retaining ring 68 with internal teeth, and the retaining ring 68 has an outer periphery 68b that has external teeth and that engages in internal teeth 69 in the second bearing bushing 65b of the second hinge leaf 52.
The first and the second bearing bushing 65a, 65b project past the second hinge leaf 52 approximately equally as far in the axial direction, as is to be seen in
The first bearing bushing 65a of the second hinge leaf 52 is closed on its side facing away from the second bearing bushing 65b, as is to be seen in
The damper 56 has the same construction as the known damper 16 and has accordingly a radial damping vane that can rotate via the catch pins 56b and that can rotate in a chamber of the damper housing 56a filled with viscous damping material, wherein the damper housing is connected to the first bearing bushing 65a of the second hinge leaf 52 with a positive fit, as already explained above.
The already mentioned securing device that prevents rotation and axial displacement of the axle tube 53 that is inserted into the cylindrical hollow space formed by the three bearing bushings 65a-65c together comprises, as a securing element, a spring clip 72 that engages via two openings 70 in the second bearing bushing 65b in a peripheral groove 68b of the retaining ring 68.
For assembling the hinge 50, the two bearing bushings 66a, 66b are inserted into the first or second bearing bushing 65a, 65b, so that they assume the position shown in
Through the spring biasing, a stop bumper 76 (
The assembly of the hinge 50 that is described above is very simple, because all that is required is to insert the elements shown in
Number | Date | Country | Kind |
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20 2007 014 471.7 | Oct 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/063059 | 9/30/2008 | WO | 00 | 2/18/2010 |