The present application claims the benefit of priority of International Patent Application No. PCT/EP2007/000485, filed on Jan. 20, 2007, which application claims priority of German Patent Application No. 10 2006 012 148.1, filed Mar. 16, 2006. The entire text of the priority application is incorporated herein by reference in its entirety.
The disclosure relates to a conveyance means of the type used as an accumulator or dynamic storage device between work station, for example, and also to a chain link and a conveyance device.
A conveyance means, a chain link, and a conveyance device of this type are known from WO 2005/073113. The known conveyor chain is used in a conveyance device for the dynamic storage of objects. For this purpose, a conveyance means which is designed as a conveyor chain is guided in a guideway between a feed station and a delivery station in an endless way. The conveyor chain acts as pull strand in one area, and as a return strand in another area, where the length of the pull strand and of the return strand is variable, and can be adjusted depending on the quantity of objects to be conveyed or stored. To vary the length of the pull strand and of the return strand, a sliding carriage is provided, which runs on mutually parallel sections of the guideway. The sliding carriage contains in each case a curved deflection member for the pull strand and for the return strand, so that, as a result of the shifting of the sliding carriage along the guideway areas, the portion of the conveyor chain that acts as pull strand can be increased or decreased, compared to the portion of the return strand. The conveyor chain is supported by track rollers on the guideway. However, in the transition from the guideway to the sliding carriage it is necessary for at least some of the track roller to be rendered inoperative temporarily to separate the track rollers from the guideway, and to guide them either onto the sliding carriage, or from the sliding carriage back onto the guideway. In the known conveyor chain, this is achieved by constructing at least one track roller so it can be swiveled, where the swiveling occurs with the help of a swivel mechanism. With the swivel mechanism of the known conveyor chain, this occurs via a pawl which is prestressed with a torsion spring. The pawl acts together with a cross bolt, which is arranged parallel to the rotation axle and connected to the track roller. The pawl is designed so that it stops the track roller in its engaged position with the guideway, when the pawl is engaged with the cross bolt. The pawl is connected to an actuation finger, which can be moved by a control surface associated with the sliding carriage so that the pawl is moved against the force of the spring out of its engagement with the cross bolt, and thus releases the track roller for swiveling. The swivel position of the track roller is then defined by a grooved curve on the sliding carriage. As soon as the track roller needs to be again in its normal conveyance position, it is swiveled back by the grooved curve, and then the pawl is moved again into engagement with the cross bolt, and the track roller is stopped. The pawl thus must abut in the pull strand and in the return strand against the cross bolt during each pass of the sliding carriage, causing, on the one hand, unnecessary noises, and, on the other hand, an increase in wear. In addition, two control curves are necessary, one for the pawls and one for swivelling the rollers.
The disclosure is thus based on the problem of providing a conveyor chain of the mentioned type with an improved and simplified swivel mechanism.
By using a knee lever, the swivel mechanism can be simplified decisively. The knee lever can be connected directly to the roller lever of the track roller, and, accordingly, it does not have to abut against across bolt or other construction elements to swivel the track roller. In addition, only one control curve for the knee lever is required.
Thus, a knee lever continues to offer the decisive advantage that, to stop the track roller in a certain position, lever members of the knee lever only need to be stopped in a certain position relative to each other. This can occur by means of spring elements of the greatest variety, self inhibition, magnetic elements, or similar devices.
Embodiment examples of the disclosure are explained in greater detail below with reference to the drawing. In the drawing:
The invention is described below in reference to a conveyance device F with a dynamic storage device V1, but it can be used in all cases where it is necessary or appears desirable to swivel a track roller of a conveyance means in a controlled way.
In the represented embodiment example according to
To achieve this, the sliding carriage 5, as shown in
The sliding carriage 5 is moved along the parallel areas 2a, 2b as a result of a difference in the speeds of the drive stations 3 and 4. To shorten the pull strand of the conveyance means 1, the sliding carriage 5 is moved through the conveyance means 1 as a result of an appropriate difference in the speeds of the drive stations 3 and 4 in the direction to wards the feed station E and the delivery station A. To shorten the return strand, the sliding carriage 5 is moved away from the feed station E and the delivery station A due to an appropriate difference in the speeds of the drive stations 3 and 4.
The conveyance means 1 is supported, as shown in
In the represented embodiment example, the conveyance means consists of a plurality of chain link-like structures 8, which are interconnected one after the other by articulations, and which each carry track rollers 7 and a hold device 9 for the objects G. The chain links 8 must be such that they cannot move by themselves, thus they may also present a design which would lead to an unstable position of the rollers on the guideway if the individual chain links 8 do not support each other mutually. Such a chain link 8 is represented in greater detail, for example, in
At least one of the roller levers, in the represented embodiment example roller lever 12a, is attached rotatably to the support 10 via a rotation axle 12′ in such a way that it can form with the support 10 an angle that is different from 90°. The other roller lever 12b is fixed in a 90° position with respect to the support 10 to the latter. However, as needed, the roller levers 12 can be connected at other angles or in another way to the support 10.
To move the swivelable roller lever 12a in an angular position that deviates from the roller lever 12b with respect to the support 10, a spring-loaded swivel mechanism 13 is provided. The swivel mechanism 13 contains a knee lever 14, which contains a first and second lever member 14a, 14b, which are connected via an articulation 15 to each other in a way which allows swiveling. The first lever member 14a is connected to the swivelable roller lever 12a via an articulation 6 in such a way that, if the lever element 14a is moved, the roller lever 12a can be swiveled about its axle 12′. For this purpose, the first lever element 14a engages, at a separation from the axle 12′, on the roller lever 12a. The second lever element 14b is attached in a way which allows swiveling to the support 10 about an axle 16 formed by a bearing pin or similar part. A first abutment 17a and a second abutment 17b, as well as an articulation point 18 in the form of an attachment pin or similar part, are firmly attached to the second lever element 14b, and they can be swiveled with the latter element about the bearing pin 16. The articulation point 18 serves to attach a spring element, here a tension spring 19, which is firmly applied with its other end to an articulation point 20 on the support 10. The articulation point 18 presents a separation with respect to the rotation axle 16, and it is arranged in such a way that a straight connection between the articulation points 18 and 20 does not pass through the rotation axle 16 in the two end positions according to
Moreover, an actuation element 21, in the form of an actuation pin or a similar part, which protrudes over the support 10, is firmly connected to the second lever element 14b of the knee lever 14.
The knee lever 14 and the arrangement of the articulation points 18, 20 of the tension spring 19 is constructed in such a way that the two roller levers 12a, 12b are located in a parallel position with the same orientation if the two lever members 14a, 14b assume a relative position with respect to each other forming a large, obtuse angle which, however, is preferably different from 180° (
The scissor position of the two roller levers 12a, 12b shown in
The swiveling of the lever element 14b and thus of the roller lever 12a on the support 10 is effected by the actuation element 21 coming in contact with a control surface 22 (
In contrast to the described and drawn embodiment examples, the attachment devices for the objects can be of any appropriate shape. Magnets can be used instead of spring elements to stop the position of the swivelable roller lever and/or as actuation elements to swivel the roller lever. The roller levers can also be designed as a one-sided lever, and provided with one track roller or with a set or track rollers. The actuation element does not necessarily have to engage on one of the lever members, rather, it can engage also on the articulation, for example. Moreover, the disclosure can be applied not only with conveyor chains, but also with other conveyance means, for example, with self-driven vehicles. Using an appropriate elastic design of the lever members, it is possible to omit additional spring elements. The abutments used to define the end position of the knee lever can also be attached to the swivelable roller lever. The lever member which is attached to the chain link can also turn over in one direction like a crank.
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10 2006 012 148 | Mar 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2007/000485 | 1/20/2007 | WO | 00 | 7/29/2010 |
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WO2007/104377 | 9/20/2007 | WO | A |
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