The present invention relates to a method and a device for aligning the overlapping ends of metal strips in accordance with the preambles of claim 1 and of claim 6.
In manufacturing photovoltaic solar cells, individual photovoltaic solar cells are connected in series. For this purpose, the solar cells are furnished with, for example, two parallel, longitudinally aligned metal strips that use conductive adhesive beads, which constitute both electrical poles and are connected at one end to metal contact strips whose free ends form the connection contacts. These metal strips are attached in accordance with DE 10 2007 016 386 A1 with the interposition of an insulation strip, whereby the free end of one metal strip is bent back and the end of the other metal strip is placed over the aforementioned bent-back end (DE 10 2007 016 386 A1). Then these free ends must be aligned in order to be able to thread them through a transparent element covering the solar cells.
The objective of the present invention is to create a method and a device for aligning the overlapping ends of metal strips of the type mentioned above, so as to make possible a rapid and simple aligning process that is also mechanically automated.
To achieve this objective, the features cited in claim 1 are provided with regard to a method of the aforementioned type, and the features cited in claim 6 are provided with regard to a device of the aforementioned type.
The measures according to the present invention ensure that the free ends of both metal strips can be aligned one after the other simply and automatically. In this context, a free end is aligned against a contact element so that the aligned free end attains a predetermined and always identical position.
Advantageous embodiments of the method can be derived from the features of one or more of claims 2 to 5. On the one hand, a simplification of the method is achieved in that the free end of one metal strip is pressed against the back of the first contact element, and the free end of the other metal step is pressed against the back of the trailing aligning element. After the release of the aligned free ends, they can easily spring back, adopting their essentially precise vertical position, which can then be detected by a sensor arrangement.
Advantageous embodiments of the contact element of the device can be derived from the features of one or more of claims 7 to 9. In this context, the first contact element is provided with the aligning edge and the appropriately inclined rear contact surface for the aligned free end of one metal strip. The slope of the rear contact surface may be adjusted.
Advantageous embodiments of the second contact element can be derived from the features of claim 10 and/or 11.
The two aligning elements in accordance with the features of one or more of claims 12 to 20, on the one hand, are movable in linear fashion and, on the other hand, can pivot in order to align the free ends so as to place them on the relevant contact element in opposition to the force of a spring, so that it becomes simple to grasp and align the free ends.
Further details of the invention may be derived from the following description, in which the invention is described and discussed in greater detail on the basis of the exemplary embodiment depicted in the drawing. In the drawing:
Device 10, depicted in
Device 10 as depicted in
Aligning elements 22, 23 are supported so that they can pivot about axes 28, 29 at the lower free ends of lever arms 26, 27, respectively, which can move along a horizontal guide bar 30 in accordance with double arrow C. Guide bar 30 at its fixed end has a limit stop 24, which can be horizontally adjusted, for example as an adjusting screw, for lever arm 26, which leads in direction C1, and it has a second limit stop 25, which also can be adjusted horizontally and which additionally is arranged on base plate 20 so as to be offset horizontally and vertically, for lever arm 27, which trails in direction C1.
Aligning elements 22 and 23 are each influenced by an actuator 32, 33, whereby each actuator 32, 33 is driven so that it can move back and forth in accordance with double arrow C over a separate guide element, for example a guide spindle 34, 35, respectively. Actuators 32, 33 may be driven independently of each other. The driven motion of both actuators 32, 33 is transmitted in both directions C1, C2 to lever arms 26, 27 via aligning elements 22, 23, respectively.
Aligning elements 22, 23 are constructed essentially identically, i.e., they are configured so as to be roughly parallelogram-shaped and their pivot axes 28, 29 are situated close to their lower aligning edge 36, 37. Their pivot motion in the direction of double arrow D is guided and limited by a longitudinal hole 38, 39, whose central point is pivot axis 28, 29 and through which a bolt 40, 41 that is attached to lever arm 26, 27, respectively, is inserted. Actuator 32, 33 engages at its fork-shaped free end 44, 45 with an actuator pin 42 of aligning element 32, 33 that is facing away from pivot axis 28, 29. Aligning element 32, 33 is also provided with a contact pin 43 that is arranged so as also to be facing away from pivot axis 28, 29, at which a long end, or leg 48, of a leg spring 46, 47 makes contact in a pre-stressed manner, whose other long end, or leg 49, contacts a contact pin in a pre-stressed manner on the other side of a leg-spring attachment 50 on lever arm 26, 27.
First contact element 21, which has an aligning, i.e., bending edge 51, whose surfaces 52, 53, which constitute it, form an acute angle with each other, is supported so that it can be adjusted in pivoting fashion about an axis 54 on base plate 20, whereby a circular longitudinal hole 55 that is facing away from axis 54 is provided, whose central point is axis 54 and through which a guide bolt 56 is inserted.
In the following, on the basis of
According to
Actuator 32 moves first aligning element 22 in the direction of arrow C1, whereby aligning edge 36 of first aligning element 22 engages underneath free end 15 of contact strip 13 and aligns free end 15 about the aligning/bending edge of first contact element 21, whereby free end 15 moves along the front side of first aligning element 22. As soon as aligning edge 36 of leading first aligning element 22 approaches contact surface 53 of first contact element 21 and simultaneously lever arm 26 contacts end limit stop 24, first aligning element 22 pivots due to the further motion of actuator 32 about its pivot axis 28 in the direction of arrow D1 until the front side of first aligning element 22, with first end 15 acting as an intermediate layer, makes contact against rear surface 53 of first contact element 21. This state is depicted in
Then, trailing second aligning element 23 at second lever arm 27 is moved by actuator 33 in the direction of arrow C1, whereby lower surface 59 of second aligning element 23 is situated close to the upper side of strip part 16. As a result, aligning edge 37, which here is rounded, of second aligning element 23 can engage beneath bent-back free end 14 of contact strip 12, and it can align free end 14. In the slanted position depicted in
Then second aligning element 23 is first moved back into its initial position in the direction of arrow C2, as is depicted in
Then base plate 20 is moved upwards in the direction of arrow A1, so that aligned free ends 14, 15 of both contact strips 12, 13 are released both from the rear of first aligning element 22 as well as from the space between the front side of first aligning element 22 and rear side 53 of first contact element 21. In this context, depending on the type and thickness of the metal, both free ends 14, 15 spring back into their essentially perpendicular position with respect to strip parts 16, 17 of contact strips 12, 13. In this initial position of base plate 20, pulled upwards, aligned free ends 14, 15 reach the area of sensor arrangement 60 as a result of the fact that solar cell 11 is moved perpendicularly to the sheet plane, and that both free ends 14, 15 reach spaces 64, 65 of sensor arrangement 60, which can determine whether the free ends have attained their predetermined aligned position.
In accordance with the state depicted in
During this, solar cell 11 having aligned free ends 14, 15 of contact 12, 13 can be transported from device 10.
Number | Date | Country | Kind |
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10 2008 063 506.5 | Dec 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/005373 | 7/24/2009 | WO | 00 | 6/8/2011 |