Feed device for guiding and feeding single-piece ties

The feeding device addresses the challenge of orienting single-piece ties with functional heads by using a hose unit with a predetermined bend and rotatable funnel element, ensuring precise alignment for automatic bundling tools.

JP7799671B2Active Publication Date: 2026-01-15HELLERMANN TYTON GMBH & CO KG
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Patent Information

Application Number
JP2023206880
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-12-08
Filing Date
2023-12-07
Publication Date
2026-01-15
Estimated Expiration
2043-12-07

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    Figure 0007799671000003
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Abstract

To provide an automatic bundling tool and a robotic device equipped with the bundling tool.SOLUTION: The feeding device for guiding and supplying a single piece bundling tool has a hose unit. A hose unit (2) is designed to guide each single piece bundling tool into the hose by an air stream toward the outlet end of the hose unit and from the outlet end of the hose unit to the funnel unit. The funnel unit is designed to receive each single piece bundling tool that is guided through the hose unit. The hose unit has a structurally predetermined bend in the end region. The funnel element of the funnel unit is rotatable against the hose unit with the rotation axis as the center by the drive element of the funnel unit. The funnel element has a slit in the end region, the slit being formed to receive the band of each single piece bundling tool.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present disclosure relates to a feeding device for guiding and supplying one-piece ties, the feeding device including a hose unit configured to guide each one-piece tie into the hose by air flow along the hose unit toward an outlet end of the hose unit and then in an outlet direction out of the outlet end of the hose unit to a funnel unit, the feeding device further including a funnel unit disposed on the hose unit at the outlet end of the hose unit and configured to receive each one-piece tie guided through the hose unit to the funnel unit. [Background technology]

[0002] It is a known process to feed cable ties, which are specialized versions of the more commonly established single-piece ties, from a cable tie reservoir to a cable tie installation tool via a hose. Thus, each (untied) cable tie is expelled by air pressure or airflow through the hose with the cable tie band in front and then received by a funnel. From the funnel, the cable tie is transferred to, for example, an automatic bundling tool. To achieve efficient transport via the hose, the cross-sectional shape of the inside of the hose is typically adapted to the cross-sectional shape of the cable tie at its thickest point. In known systems, a corresponding automatic tool, such as an automatic bundling tool or an automatic bundling robot, that installs the cable tie can be coupled to the cable tie reservoir in variable positions and orientations with a high degree of spatial freedom. However, existing approaches are limited to conventional cable ties with a cable tie band and a simple cable tie head that is essentially cubic in shape. Summary of the Invention [Problem to be solved by the invention]

[0003] Therefore, the technical problem to be solved by the present invention can be considered to be that of enabling an automatic bundling tool and / or a robotic device equipped with a bundling tool to be used in variable positions and orientations with a high degree of freedom that is not limited to the use of conventional cable ties. Specifically, this task can include feeding a single-piece tie as a cable tie extended by a functional head, specifically an untied single-piece tie, to the automatic bundling tool and / or the robotic device equipped with a bundling tool. [Means for solving the problem]

[0004] This technical problem to be solved is solved by the subject matter of the independent claims. Advantageous embodiments are evident from the dependent claims, the description and the drawings.

[0005] One aspect relates to a feeding device for guiding and feeding single-piece ties. The single-piece ties can be individually guided and / or fed, for example, to an automatic bundling tool for bundling bundled goods with each single-piece tie, specifically to a slider unit of the automatic bundling tool. Herein, a single-piece tie represents the general concept of a conventional cable tie. Like a conventional cable tie, a single-piece tie has a band with a band tip disposed at one end and a head (portion) disposed at the other end. Like a conventional cable tie, when the single-piece tie is used as intended, the tip of the band is guided around the bundle material through a window in the head and locked into the head to bundle the bundled goods. Thus, the single-piece tie has a head with additional functionality, and thus the head may be referred to as a functional head. This additional function specifically includes a fastening function for fastening the functional head and therefore the one-piece tie (and therefore indirectly further bundled goods) to other objects other than the bundled goods to be bundled. For example, the functional head can be designed as a mushroom-shaped head for anchoring the one-piece tie in a through-hole in a metal sheet. However, this is only one exemplary possibility of many functions to which the functional head can be adapted.

[0006] The feeding device includes a hose unit designed so that an air flow guides each one-piece tie, with its band tip and thus the band leading, along the hose unit toward the outlet end of the hose unit into the hose interior, and then toward the outlet end of the hose unit to the funnel unit. Thus, as is known in the prior art for conventional cable ties, air pressure is used to expel each one-piece tie through the hose unit and thus allow for highly flexible guidance of the one-piece tie to the tool that installs it. Thus, a funnel unit is arranged at the outlet end of the hose unit and designed to receive each one-piece tie guided and fed through the hose unit. For this purpose, the funnel unit can have corresponding funnel elements, for example, funnel surfaces that converge toward the outlet and guide the band tip of the one-piece tie and thus the band into position.

[0007] The hose unit has a structurally and therefore well-established predetermined bend in the end region surrounding the outlet end. This bend thus has well-established, predetermined characteristics, such as a (bend) angle and / or a (bend) radius and / or a (bend) length, due to the design of the feeding device. In this way, the structurally predetermined bend differs from the random bend of the hose unit that would typically be expected in everyday use when the position and / or orientation of a bundling tool that feeds a single-piece tie through the hose unit is changed with a high degree of freedom. Therefore, the structurally predetermined bend may be invariant or substantially invariant, i.e., invariant within a predetermined range. Thus, the structurally predetermined bend may be predetermined to have corresponding fixed values ​​for the aforementioned characteristics, such as angle and / or radius and / or length, or to have corresponding numerical ranges for angle and / or radius and / or length, and these numerical values ​​or numerical ranges may be predetermined, for example, by the elasticity of the hose unit in the end region predetermined for the hose unit, or even by a suitable support structure.

[0008] The funnel unit comprises a funnel element, which is arranged rotatably relative to the outlet end of the hose unit around a rotation axis extending along the outlet direction (and thus substantially parallel or parallel to the outlet direction) by a drive element of the funnel unit. The funnel element has a slit in its end region located far from the outlet end of the hose unit in the outlet direction, the slit being designed to receive the band of each one-piece tie in one of (specifically, strictly) two (or essentially two) orientations. These two orientations are realized in that, when the tie is received in the slit, each one-piece tie can no longer rotate around the main extension axis of the cable tie, which corresponds to the longitudinal direction of the tie, without rotating the funnel element. These two orientations are therefore predetermined except for a certain deviation determined by the gap of the band in the slit. For example, in a first of two orientations, the band is positioned with its smooth back surface against one side of the slit and its surface with the detent structure against the other side of the slit. In a second of these two orientations, the opposite is true. If the slit is too wide, the band passing through it may tilt about its longitudinal axis. The slit can be adapted accordingly to the thickness of the band of the one-piece tie, and the feeding device is configured and / or specified for this band thickness, to achieve a well-defined and sufficiently accurate orientation of the band, and thus the one-piece tie, for each application. The slit can be defined by the funnel surfaces, sometimes referred to as funnel walls, of the funnel elements converging in the exit direction.

[0009] This has the advantage that, regardless of the length of the hose unit or the path of each hose unit, i.e., regardless of the position and / or orientation of the tool to be supplied with the one-piece tie, each one-piece tie is always received accurately in one of two predetermined orientations in the funnel element, and these two orientations can be automatically converted into a single orientation by rotating the funnel element about the rotation axis. In this way, the one-piece tie of each type of one-piece tie for which the feeding device is designated can be fed automatically and reliably, i.e., with high process safety, to the tool to be supplied with the one-piece tie, thereby increasing the degree of freedom in the tool to be loaded with the one-piece tie. Therefore, depending on the shape of the functional head of the one-piece tie, the feeding device can also be suitable for several different types of one-piece tie, all of which have the same cross-section at the thickest point of the cable tie, i.e., the functional head, in particular, circular cross-sections of the same or substantially the same diameter. Ideally, the thickness of each band, even for different types, is the same and thus adapted to the slit, thereby preventing twisting of the one-piece tie within the slit. The previously described solution takes advantage of the fact that the bands of cable ties, and more generally of one-piece ties, have a rectangular cross section. In this case, the longer side of the band in the cross section is assigned as the band's width, and the shorter side of the band in the cross section is assigned as the band's thickness. Therefore, the band deforms more easily in the thickness direction than laterally in the width direction. As a result, the band, and thus the one-piece tie, aligns in one of two directions when passing through a bend inside the hose, i.e., the thickness direction extends in the plane of the bend, which can be correspondingly called the bend plane. Thus, for example, the smooth back surface of the band faces either outward or inward within the bend.

[0010] The converging funnel surfaces or funnel walls of the funnel elements can be designed as molded-fit stop surfaces for the one-piece ties. In this case, the (three-dimensional) contour of each funnel wall is adapted to the (three-dimensional) shape of the (functional) head of the corresponding one-piece ties, so that when the heads impact and the one-piece ties stop, the one-piece ties come into two-dimensional contact / support with at least one of the funnel walls. Thus, mechanical contact between the one-piece ties and the funnel walls upon impact occurs at the contact surface (as opposed to the contact line or contact point described below). This minimizes the size of the cavity between each funnel wall and the one-piece ties.

[0011] In contrast to two-dimensional contact / support, mechanical contact occurs at each contact point and / or contact line when the head collides with / is decelerated by a funnel wall that does not conform to the contour / shape of the one-piece tie head. Point or line contact due to impact can result in deformation of the one-piece tie, depending on the speed and / or stiffness of the one-piece tie, which in turn causes the one-piece tie to move in the opposite direction to the exit direction due to a corresponding restoring force. As a disadvantage, the one-piece tie is not positioned in a clearly defined position, which creates problems in subsequent process steps. Therefore, the one-piece tie can be supplied to a very precisely defined position by the shaped-fit stop surface. Specifically, the contours of the (opposing) funnel walls can be identical and, for example, symmetrical with respect to the slot and / or the axis of rotation. This is advantageous because the functional heads are often asymmetric, so that two-dimensional contact is achieved upon impact, regardless of the orientation of the one-piece tie within the funnel element (always on at least one funnel wall). This finding already ensures that deformation of the one-piece tie upon impact is sufficiently reduced.

[0012] Thus, in another embodiment, it is provided that the slits are oriented transversely, i.e. substantially perpendicularly, to the bending plane, i.e. perpendicularly or perpendicularly to a predetermined deviation of, for example, at most 1°, at most 3° or 5° to the bending plane. This has the advantage that the width is greater than the thickness, which makes the flexibility of the band in the thickness direction significantly higher than in the width direction of the band, thereby allowing the one-piece binding to be received particularly reliably by the funnel element.

[0013] In another embodiment, a gripper unit is provided that is designed to grip and feed each single-piece tie with a band received by a slit. In particular, the single-piece tie can be fed by the gripper unit of the feeding device to an automatic bundling tool, for example, to a slide unit of the automatic bundling tool for bundling the bundled goods with each single-piece tie. This has the advantage that the gripper unit and the funnel unit, and therefore the single-piece tie, can be particularly well adapted to each other in terms of the orientation of the single-piece tie when used as intended, and therefore each single-piece tie can be particularly reliably and accurately fed to the tool to which it is to be loaded.

[0014] In another embodiment, a sensor unit and a control unit coupled to the sensor unit and the funnel unit are further provided. The sensor unit is designed to detect the orientation of each one-piece binder when the band of one-piece binders is received in the slit. Specifically, the detected orientation is one of exactly two possible orientations specified by the slit. The control unit is designed to move the funnel element, and thus each received one-piece binder, to a predetermined rotational position in response to, i.e., depending on, the orientation of each one-piece binder detected by the sensor unit. Specifically, the predetermined rotational position can be predetermined for the gripper unit when gripping the one-piece binder. Preferably, the predetermined rotational position is selected so that the funnel element is either rotated by 180 degrees by the drive element to reach the predetermined rotational position and therefore the predetermined orientation of the one-piece binder, or the funnel element is not rotated, i.e., remains in an unchanged position. If a predetermined orientation to be achieved for the one-piece binder, which is the orientation that the supplied one-piece binder should assume, requires it, the control unit can be configured to rotate the funnel element by either X degrees or X+180 degrees after receiving the one-piece binder. The sensor unit can be or comprise, for example, an optoelectronic sensor and / or a camera, which detects each orientation of the one-piece binder collected by the funnel unit based on the shape of the functional head. This has the advantage that the one-piece binders guided and supplied by the feeding device can be automatically brought into the correct or predetermined orientation in a particularly simple and reliable manner.

[0015] In another embodiment, the slit of the funnel element merges at one or both ends into an opening oriented transversely to the outlet direction on one or two sides of the funnel element. In this case, the opening can be adapted to the shape, especially the size, of the functional head of the one-piece tie. This has the advantage that the one-piece tie can be fed to the tool to be loaded in a particularly simple manner, for example, without opening or closing the funnel unit. Furthermore, the orientation of the one-piece tie in the slit can be more easily detected.

[0016] In yet another embodiment, a further multi-part funnel element is arranged behind the slot of the first funnel element when viewed in the outlet direction. When the associated one-piece tie is housed in the first funnel element, it is at least partially housed within the second funnel element. The second multi-part funnel element extends in the outlet direction over a large portion of the length of the band of the one-piece tie, for example, over 50%, preferably over 65%, particularly preferably over 80%.

[0017] The other multi-part funnel element can change from a closed configuration to an open configuration and back, and can have joints between the various funnel element parts for this purpose, for example. In the closed configuration, the additional funnel element completely surrounds the outer periphery of the band of the one-piece tie. This reduces the likelihood that the one-piece tie will fall off the previous funnel element when the previous funnel element rotates about its axis of rotation. In the open configuration, the outer periphery of the other funnel element has a gap through which the one-piece tie can be moved laterally out of the other funnel element in a direction transverse to the axis of rotation.

[0018] In another embodiment, the end region of the structurally predetermined bend along the hose unit extends over at most three times, preferably at most two times, the length of the one-piece tie that is fed via the feeding device during intended use. If the feeding device is specified for various types of one-piece tie, it is possible to select, for example, the shortest length as a reference. This has the advantage that, on the one hand, the flexibility of the tube unit is maintained and, on the other hand, re-twisting of the one-piece tie around its longitudinal axis within the tube unit after alignment is prevented, thereby particularly reliably achieving one of the two orientations of the one-piece tie within the slit.

[0019] In another embodiment, it can be realized that the structurally predetermined bend radius (bending radius) is at least 20 mm, which ensures that the hose unit and the one-piece tie are not damaged when the orientation is adjusted, and also increases security and flexibility.

[0020] In another embodiment, the designed bend angle (bending angle) is at least 45 degrees, preferably at least 60 degrees, particularly preferably at least 80 degrees, and / or at most 135 degrees, preferably at most 120 degrees, particularly preferably at most 100 degrees. In this case, an angle of 90 degrees ± 5 degrees has proven to be ideal. The orientation of the single-piece tie works particularly well within the aforementioned range of values.

[0021] In another embodiment, the hose unit is at least partially, i.e. partially or entirely, made of metal at the bend. In particular, the inner wall of the hose unit, located inside the hose on the outer side of the bend, is entirely or partially made of metal. This has the advantage of reducing wear on the hose unit, which is also advantageous for the reliability and accuracy of the orientation of the one-piece tie in the funnel element.

[0022] In another embodiment, the hose interior has a circular cross section, and in particular, the functional head of the one-piece tie, which is guided through the feeding device during intended use, can have a circular cross section at its largest diameter point. In particular, the largest diameter point can be an intermediate or plate portion of the functional head, which is located closer to the band and has a window, and which separates a second head portion of the functional head, which has another fastening element. This has the advantage that reliable orientation of the one-piece tie can be achieved for several different types of one-piece tie, each having a different functional head, in particular a different second head portion, but the same plate portion.

[0023] Another aspect relates to an automatic bundling tool and / or a robotic device comprising the automatic bundling tool, the automatic bundling tool and / or the robotic device comprising the automatic bundling tool comprising a feeding device according to one of the previously described embodiments coupled to the automatic bundling tool and / or the robotic device by a mechanical and / or electrical interface and / or comprising a mechanical and / or electrical interface for coupling to the feeding device according to one of the previously described embodiments.

[0024] Another aspect relates to a method for guiding and feeding one-piece ties. One method step is a first guiding step, in which each one-piece tie is guided along a hose unit within the hose interior of the hose unit by an air flow toward the outlet end of the hose unit. A further process step is a second guiding step, in which each one-piece tie is guided through an end region of the hose unit having a structurally predetermined bend. The next process step after the first two process steps is a third guiding step, in which each one-piece tie is guided in the outlet direction out of the outlet end of the hose unit to a funnel unit. This is followed by a further process step of receiving each one-piece tie by the funnel unit. The band of each one-piece tie is received by a slit in a funnel element of the funnel unit. This is followed by a method step of verifying the orientation of each one-piece tie received by the slit, followed by a further method step of rotating each one-piece tie received by the slit about an axis of rotation extending along the direction of release to the predetermined (first) position as a desired position, at least if this verification step indicates that the one-piece tie has an undesired (second) orientation, i.e., if this is necessary to align each one-piece tie in the desired (first) orientation as a predetermined position, depending on the result of the verification step. Finally, the final step of the process is to supply each one-piece tie in the desired (first) orientation as specified. The first orientation and the second orientation can be the two orientations introduced above.

[0025] Therefore, the advantages and advantageous embodiments of the method correspond to the advantages and advantageous embodiments of the delivery device.

[0026] The features and feature combinations described above, including the general part of this description, as well as features and feature combinations disclosed only in the description of the figures or drawings, may be used alone or in the combinations described, and may even be used with other features or without some of the features of the disclosure without departing from the scope of this disclosure. Consequently, embodiments not explicitly shown or described in the figures, but which may be created by a separate combination of the individual features disclosed in the figures, also form part of this disclosure. Thus, embodiments and feature combinations that do not include all features of the originally explicitly set forth independent claims should also be considered disclosed. Furthermore, embodiments and feature combinations that differ from or fall outside the scope of the feature combinations described by relying on the claims are considered disclosed.

[0027] Exemplary embodiments will now be described in more detail with reference to schematic drawings. [Brief explanation of the drawings]

[0028] [Figure 1] 1 illustrates an exemplary embodiment of a single piece tie. [Figure 2] 2 is a cross-sectional view of a structurally predetermined bend in an exemplary hose unit having the one-piece tie of FIG. 1. [Figure 3] 2 is a perspective view of an exemplary embodiment of a feeding device for the one-piece tie shown in FIG. 1. [Figure 4] FIG. 4 is a cross-sectional view of the delivery device of FIG. 3. [Figure 5] FIG. 10 is a perspective view of another exemplary embodiment of a delivery device. DETAILED DESCRIPTION OF THE INVENTION

[0029] In the drawings, equivalent or functionally equivalent elements have the same reference numbers.

[0030] FIG. 1 shows an exemplary embodiment of a single-piece tie. The single-piece tie 1 includes a band 1a having a band tip 1b at one end and a functional head 1c at the other end. The cable-like band 1a defines a length direction L of the cable tie along its main extension direction, a thickness direction D extending perpendicular to the length direction L, and a width direction B extending perpendicular to the length direction L and the thickness direction D. Because the thickness is smaller than the width, the band 1a has greater flexibility in the thickness direction D than in the width direction B. This behavior of the band 1a is known from conventional cable ties and is known to cause problems in automatic guiding and feeding. This is because cable ties and single-piece ties 1, particularly untied cables or single-piece ties 1 such as those shown in the embodiment, often have a bent shape in practice.

[0031] The maximum diameter position of the one-piece tie 1 is formed in the illustrated example by a plate section 1c* of the functional head 1c. In this position, the one-piece tie 1 has a circular cross section oriented perpendicular to the longitudinal direction L. The plate section 1c* separates a first head section 1c' facing the band 1a from a second head section 1c" facing away from the band. The first head section 1c' has a window 1d through which the band 1a is guided when the one-piece tie 1 is used as intended to bundle goods. The second head section 1c" is designed to fasten the functional head 1c and thus the one-piece tie 1, or in the case of the intended use, the corresponding bundle goods, to further objects different from the bundle goods and the one-piece tie 1, and can be designed in various ways depending on the field of application.

[0032] FIG. 2 shows a cross-section through an exemplary hose unit having a bend. The hose unit 2 is designed to guide the one-piece tie 1 into the hose interior 2a by air flow along the hose unit 2 toward the outlet end 2b of the hose unit 2 and then out of the outlet end 2b of the hose unit 2 in an outlet direction A, which in this case corresponds to the positive x-direction. In this case, the hose unit 2 has a structurally predetermined bend 2d in the end region 2c with the outlet end 2b. The end region 2c extends along the hose unit 2 over a length at most three times that of the one-piece tie 1, in this case approximately the length of the one-piece tie 1, and thus in the illustrated case, over a length at most twice that of the one-piece tie 1. The radius r of the structurally predetermined bend 2d is at least 20 mm. In the illustrated example, the angle α of the structurally predetermined bend is specified to be 90 degrees. In principle, angles between 45 and 135 degrees are possible.

[0033] In this case, the structurally predetermined bend 2d in the end region 2c of the hose unit 2 has the effect that the one-piece tie 1, transported by air pressure through the hose interior 2a, automatically rotates into one of two orientations because the band 1a of the one-piece tie 1 has significantly greater flexibility in the thickness direction D than in the width direction B. Therefore, as further shown in FIG. 2, the one-piece tie 1 is automatically rotated during transport through the bend 2d so that the thickness direction D lies in the bending plane E of the bend 2d, which corresponds to the plane of the drawing or the xy-plane. The width direction B therefore extends in the z-direction, perpendicular to the bending plane and the xy-plane. This orientation of the one-piece tie 1 is achieved independently of any initial or intermediate rotation of the one-piece tie 1 in the section of the hose unit 2 located before the bend 2d.

[0034] 3 shows a perspective view of an exemplary embodiment of the feeding device. The feeding device 0 has a hose unit 2 that is designed to guide each one-piece tie 1 into the hose interior 2a (FIGS. 2, 4) by an air flow along the hose unit 2 toward the outlet end 2b of the hose unit 2 and then in the outlet direction A from the outlet end 2b of the hose unit 2 to the funnel unit 3. The funnel unit 3 of the feeding device 0 is therefore arranged on the hose unit 2 at the outlet end 2b of the hose unit 2 and is designed to receive each one-piece tie 1 guided through the hose unit 2. In the end region 2c with the outlet end 2b, the hose unit 2 has a structurally predetermined bend 2d. This bend extends in the xy plane in this specification.

[0035] The funnel unit 3 has a funnel element 3a. This funnel element 3a is arranged rotatably relative to the outlet end 2b of the hose unit 2 about a rotation axis R extending along the outlet direction A by a drive element 3g of the funnel unit 3, which in this case is designed as a rack drive element. Furthermore, the funnel element 3a has a slit 3c in an end region 3b located remote from the outlet end 2b of the hose unit 2 in the outlet direction A. This slit 3c is designed to receive the band 1a of each one-piece tie 1. When the one-piece tie 1 is loaded into or received by the funnel unit 3 in intended use, the slit 3c is oriented transversely to the bending plane E, in this case transversely to the xy-plane and thus in the z-direction. The main extension direction of the slit 3c therefore extends along the z-direction. Thus, the funnel unit 3 is configured to position the funnel element 3a in one of two orientations during receipt of the single-piece binder 1, namely, the orientation shown and an orientation rotated 180 degrees about a rotation axis relative to the orientation shown.

[0036] The illustrated embodiment also includes a gripper unit 4. The gripper unit 4 is designed to grip each one-piece tie 1, with the band 1a of the one-piece tie 1 being received by the slit 3c, and the gripper unit 4 is also designed to feed each one-piece tie 1 to the tool into which it is to be loaded, such as for example a bundling tool 10 (FIG. 5).

[0037] In Figure 4, the feeding device of Figure 3 is shown in cross section. Thus, only one rear opening 3e, located in the plane of the drawing, is visible on the side of the funnel element 3a where the slit 3c meets in the positive z-direction. Furthermore, two funnel surfaces 3d and 3d' are shown converging in the exit direction A. The ends of these funnel surfaces 3d and 3d' define the slit 3c, which guide the band tip 1b or band 1a of the one-piece binder 1 into the slit or gap 3c when the one-piece binder 1 is received in the funnel unit 3 during intended use. In the illustrated example, the funnel walls 3d and 3d' are not designed as mold-fit stop surfaces for the functional head 1c. As a result, a significant cavity exists between the funnel wall 3d and the functional head 1c. When the functional head 1c hits the funnel wall, the single-piece binder 1 is able to bend and enter this hollow space, and thus the position of the single-piece binder 1 in the funnel element 3a can change again due to the restoring force.

[0038] When the feeding device 0 is used as intended, untied one-piece ties 1 can be fed to the hose unit 2. Initially, i.e., before the one-piece ties 1 are transported through the structurally predetermined bend 2d, these one-piece ties 1 have an arbitrary orientation in the hose interior 2a in the sense of a stochastic rotation about their respective longitudinal axes relative to the hose unit 2. When passing through the bend 2d, the one-piece ties 1 are automatically rotated about their respective longitudinal axes as explained above, and reach the funnel unit 3 with their thickness direction now extending in the xy plane and therefore in one of two orientations.

[0039] In the illustrated example, functional head 1c is located closer to lower funnel surface 3d' than to upper funnel surface 3d. In this case, "upward" refers to the positive y-direction. However, alternatively, with slits 3c arranged in the same manner, one-piece binder 1 could be arranged so that functional head 1c is located closer to upper funnel surface 3d than to lower funnel surface 3d'. In intended use, each one-piece binder 1 has a certain probability of being in the downward orientation shown herein or the upward orientation not shown herein. For example, the respective probabilities may be 50%. For example, if the orientation of one-piece binder 1 shown in FIG. 4 is a suitable orientation for gripper unit 4, it may be advisable to keep funnel element 3a in the position shown. On the other hand, if the other of the two possible orientations, in which the functional head 1c is positioned closer to the upper funnel surface 3d, is the intended orientation for the gripper unit 4, a 180 degree rotation of the funnel element 3a and therefore of the single-piece binder 1 can be initiated, so that in both of these cases the intended orientation for the gripper unit 4 is reliably achieved by simple means.

[0040] 5 shows a perspective view of another exemplary embodiment of a feeding device. The feeding device 0 is mechanically, and in this case also electrically, coupled to an automatic bundling tool 10 for bundling bundled goods with respective single-piece binders 1, so that the single-piece binders 1 supplied by the feeding device 0 can be inserted into the bundling tool 10 using the gripper unit 4 and used in the bundling tool 10. In this respect, the illustrated feeding device 0 corresponds to the feeding device 0 shown in FIGS. 3 and 4, unless otherwise stated.

[0041] In contrast to the feeding device 0 shown in FIGS. 3 and 4, this variant has a sensor unit 5. Here, the sensor unit 5 of the feeding device 0 is designed to detect the orientation of each one-piece binder 1 when its band 1a is received in the slit 3c. In the illustrated example, this is achieved by a light barrier. A light beam 5a of this light barrier penetrates the lateral opening 3e of the funnel element 3a, thus enabling the orientation of the one-piece binder 1 to be confirmed. Detection or confirmation of the respective orientation by the sensor unit 5 allows the funnel element 3a to be rotated about the rotation axis R by a control unit coupled to the sensor unit 5 and the funnel element 3a in order to achieve the desired orientation of the one-piece binder 1 in the longitudinal direction L of the one-piece binder 1. This can be achieved, for example, by means of a drive element 3g designed as a rack drive element, which cooperates with another drive element 3f, designed here as a toothed drive element. 4 is in an orientation suitable for the gripper unit 4, the control unit does not orient the funnel element 3a differently, but leaves it in the position shown without moving it. On the other hand, if the other of the two possible orientations, in which the functional head 1c is located closer to the upper funnel surface 3d, is the orientation intended for the gripper unit 4, the control unit can automatically rotate the funnel element 3a and thus the one-piece binder 1 by 180 degrees, thereby ensuring that in both cases the orientation intended for the gripper unit 4 is achieved by simple means. [Explanation of symbols]

[0042] 0 Feeding Device 1 single piece tie 1a Bands, cable-like bands, binding devices 1b Band tip 1c Functional Head 1c* Plate Section 1c´ First head section 1c´´ Second head section 1d window 2 hose units 2a Inside the hose 2b Outlet end 2c end area, end section 2d bend 3 Funnel Unit 3a Funnel element 3b End area 3c Slit, gap 3D funnel surface, funnel wall 3d´ Funnel surface, funnel wall 3e Rear opening, side opening 3f Driving element 3g driving element 4 Gripper Unit 5 Sensor Unit 5a Ray 10. Bundling Tools

Claims

1. A feeding device (0) for guiding and feeding a single-piece tie (1), comprising: a hose unit (2) in which an air flow toward an outlet end (2b) of the hose unit (2) guides each one-piece tie (1) along the hose unit (2) into a hose interior (2a), and following this guidance, guides each one-piece tie (1) in an outlet direction (A) from the outlet end (2b) of the hose unit (2) to a funnel unit (3); the funnel unit (3) being arranged on the hose unit (2) at the outlet end (2b) of the hose unit (2) and receiving each of the single-piece ties (1) guided through the hose unit (2); A delivery device (0) comprising: The hose unit (2) has a structurally predetermined bend (2d) in an end region (2c) including the outlet end (2b); the funnel unit (3) has a funnel element (3a), the funnel element (3a) is arranged to be rotatable with respect to the outlet end (2b) of the hose unit (2) around a rotation axis (R) extending along the outlet direction (A) by a drive element (3g) of the funnel unit (3), the funnel element (3a) has a slit (3c) in an end region (3b) located farther from the outlet end (2b) of the hose unit (2) in the outlet direction (A), the slit (3c) being formed to receive the band (1a) of each one-piece tie (1); The height of the functional head of the single-piece binder is greater than the spacing of the slits; A delivery device (0) characterized by:

2. 2. A delivery device (0) according to claim 1, characterized in that the slits (3c) are oriented transversely to a bending plane (E) in which the predetermined bending portion (2d) extends.

3. 3. The feeding device (0) according to claim 1 or 2, characterized by a gripper unit (4) configured to grip and feed each of the single-piece binders (1) having the band (1a) received by the slit (3c), in particular to feed the same to an automatic bundling tool (10) for bundling bundled goods with the single-piece binders (1).

4. a sensor unit (5) for detecting the orientation of each of the one-piece ties (1) when the band (1a) of each of the one-piece ties (1) is received in the slit (3c), wherein the detected orientation is one of exactly two possible orientations; a control unit coupled to the sensor unit (5) and the funnel unit (3), the control unit being configured to move the funnel element (3 a) to a predetermined rotational position, specifically to a predetermined rotational position relative to the gripper unit (4), specifically to rotate the funnel element (3 a) by 180 degrees by the drive element, or not to rotate the funnel element (3 a), depending on the orientation of each of the single-piece binders (1) detected by the sensor unit; A delivery device (0) according to claim 3, characterized in that

5. 2. The delivery device (0) according to claim 1, characterized in that the slit (3c) merges at one or both ends into an opening (3e) oriented transversely to the outlet direction (A) on a side of the funnel element (3a).

6. 2. The delivery device (0) of claim 1, characterized in that the end region (2c) with the structurally predetermined bend (2d) extends along the hose unit (2) over a length of at most three times the length of the one-piece tie (1) guided through the delivery device (0) during intended use.

7. 2. The delivery device (0) according to claim 1, characterized in that the radius (r) of the structurally predetermined bend (2d) is at least 20 mm.

8. 2. The delivery device (0) according to claim 1, characterized in that the angle (α) of the structurally predetermined bend (2d) is between 45 and 135 degrees.

9. 2. The delivery device (0) according to claim 1, characterized in that the hose unit (2) is at least partially made of metal at the bend (2d), in particular at least partially made of metal in the hose interior (2a) on the outer side of the bend (2d).

10. 2. The delivery device (0) according to claim 1, characterized in that the hose interior (2a) has a circular cross section, in particular the functional head (1c) of the one-piece tie (1) guided through the delivery device (0) during intended use has a circular cross section at its largest diameter point.

11. An automatic bundling tool (10) or a robotic device comprising the automatic bundling tool (10), wherein the automatic bundling tool (10) is coupled to a feeding device (0) as described in claim 1.

12. A method for guiding and feeding a one-piece tie (1), comprising: a first guiding step of guiding each one-piece tie (1) along the hose unit (2) within the hose interior (2a) of the hose unit (2) toward the outlet end (2b) of the hose unit (2) by air flow; a second guiding step of guiding each of the single-piece ties (1) through an end region (2c) of the hose unit (2) having a structurally predetermined bend (2d); a third guiding step of guiding each of the single-piece ties (1) in an outlet direction (A) from the outlet end (2b) of the hose unit (2) to a funnel unit (3); receiving each one-piece binder (1) by the funnel unit (3), wherein the band (1a) of each one-piece binder (1) is received by a slit (3c) in the funnel element (3a) of the funnel unit (3), and the height of the functional head of the one-piece binder is greater than the spacing of the slits; confirming the orientation of each of the single-piece binders (1) received by the slits (3c); and rotating each of the one-piece ties (1) received by the slits (3c) around a rotation axis (R) extending along the exit direction (A) to the first orientation according to the result of the checking step, if at least the checking step indicates that the one-piece ties have a second orientation different from the first orientation. providing each of the single-piece ties (1) in the first orientation; A method comprising:

Citation Information

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