HEAD OF A TAG DEVICE

Abstract

A head of a tag device having a body, at least one row of negative-pressure through holes and at least one row of positive-pressure through holes. The body has a first surface and a second surface. The rows of negative and positive-pressure through holes are formed through the first and second surfaces of the body and arranged along a long-axis direction. Two negative and positive-pressure through holes at both ends of the corresponding row of negative and positive-pressure through holes are respectively close to the short sides of the body. Therefore, an effective labeling area is distributed between two short sides. The head of the tag device of the present invention provides a stable labeling operation for different products where different components are mounted and increases units per hour (UPH).

Claims

1. A head of a tag device, comprising: a body having a first surface, a second surface, two opposite long sides and two opposite short sides; at least one row of negative-pressure through holes formed through the first surface to the second surface of the body and arranged along a long-axis direction of the body, wherein two negative-pressure through holes at both ends of the row of negative-pressure through holes are respectively close to the short sides; and at least one row of positive-pressure through holes formed through the first surface to the second surface of the body and arranged along a long-axis direction of the body, wherein two positive-pressure through holes at both ends of the row of positive-pressure through holes are respectively close to the short sides.

2. The head of the tag device as claimed in claim 1, wherein the at least one row of negative-pressure through holes are arranged equidistantly along the long-axis direction; the at least one row of positive-pressure through holes are arranged equidistantly along the long-axis direction; an amount of the positive-pressure through holes in each row of positive-pressure through holes is larger than that of the negative-pressure through holes in each row of negative-pressure through holes; and the two positive-pressure through holes at both ends of the corresponding row of positive-pressure through holes are respectively closer to the short sides of the body than the negative-pressure through holes at both ends of the corresponding row of negative-pressure through holes.

3. The head of the tag device as claimed in claim 1, further comprising: a single row of negative-pressure through holes formed through a middle area of the body and arranged along the long-axis direction; and two rows of positive-pressure through holes respectively arranged on two sides of the single row of negative-pressure through holes and being respectively close to the long sides of the body.

4. The head of the tag device as claimed in claim 2, further comprising: a single row of negative-pressure through holes formed through a middle area of the body and arranged along the long-axis direction; and two rows of positive-pressure through holes respectively arranged on two sides of the single row of negative-pressure through holes and being respectively close to the long sides of the body.

5. The head of the tag device as claimed in claim 3, further comprising: a plurality of first connectors respectively mounted on the first surface of the body and respectively communicated with the corresponding negative-pressure through holes; and a plurality of second connectors respectively mounted on the first surface of the body and respectively communicated with the corresponding positive-pressure through holes.

6. The head of the tag device as claimed in claim 4, further comprising: a plurality of first connectors respectively mounted on the first surface of the body and respectively communicated with the corresponding negative-pressure through holes; and a plurality of second connectors respectively mounted on the first surface of the body and respectively communicated with the corresponding positive-pressure through holes.

7. The head of the tag device as claimed in claim 3, further comprising: at least one negative-pressure air pipe inserted into the corresponding first connector to communicate with the corresponding negative-pressure through hole; and at least one positive-pressure air pipe inserted into the corresponding second connector to communicate with the corresponding positive-pressure through hole.

8. The head of the tag device as claimed in claim 4, further comprising: at least one negative-pressure air pipe inserted into the corresponding first connector to communicate with the corresponding negative-pressure through hole; and at least one positive-pressure air pipe inserted into the corresponding second connector to communicate with the corresponding positive-pressure through hole.

9. A method of controlling a tag device having a head of the tag device as claimed in claim 7 and a carrier below the head of the tag device and comprising steps of: (a) placing a product having a component on the carrier, wherein the component faces toward the head of the tag device, and a length of the component is shorter than that of the head of the tag device; (b) inserting at least one negative-pressure air pipe into the first connector corresponding to the component and inserting at least one positive-pressure air pipe into the second connector corresponding to the component; (c) moving the head of the tag device to a label storage area and providing a suction on the second surface by the negative-pressure air pipe to suck and attach a label to the second surface; and (d) moving the head of the tag device to the component on the carrier and providing a positive-pressure airflow on the second surface by the positive-pressure air pipe to attach the label to the component.

10. The method of controlling the tag device as claimed in claim 9, wherein in the step (d), the positive-pressure air pipes are respectively inserted into all positive-pressure through holes of one row of positive-pressure through holes through the second connectors to provide an air knife on the second surface.

11. The method of controlling the tag device as claimed in claim 10, wherein the step (d) further comprises a step of: controlling the carrier to move relative to the head of the tag device along a long-axis direction; or controlling the carrier to move relative to the head of the tag device along a short-axis direction; or controlling the carrier to move relative to the head of the tag device along a long-axis direction and a short-axis direction.

12. The method of controlling tag device as claimed in claim 9, wherein in the step (d), the positive-pressure air pipes are respectively inserted into all positive-pressure through holes of the two rows of positive-pressure through holes through the second connectors to provide an airflow with a large area on the second surface.

13. The method of controlling the tag device as claimed in claim 12, wherein the step (d) further comprises a step of: controlling the carrier to move relative to the head of the tag device along a long-axis direction; or controlling the carrier to move relative to the head of the tag device along a short-axis direction; or controlling the carrier to move relative to the head of the tag device along a long-axis direction and a short-axis direction.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0017] FIG. 1A is a perspective view of a head of a tag device;

[0018] FIG. 1B is a bottom plan view of the head of the tag device;

[0019] FIG. 2 is a bottom perspective view of the head of the tag device;

[0020] FIG. 3A is an operational schematic view of the head of the tag device sucking a label to align a component;

[0021] FIG. 3B is an operational schematic view of the head of the tag device sucking a label to align another component;

[0022] FIG. 4A is an operational schematic view of the head of the tag device providing a positive-pressure airflow to a label on a component;

[0023] FIG. 4B is an operational schematic view of the head of the tag device providing a positive-pressure airflow to a label on another component;

[0024] FIG. 5 is an operational schematic view of the head of the tag device providing a positive-pressure airflow to a label on a component;

[0025] FIG. 6 is an operational schematic view of the head of the tag device providing a positive-pressure airflow to a label on another component;

[0026] FIG. 7A is a bottom perspective view of a conventional head of a tag device; and

[0027] FIG. 7B is a bottom perspective view of another conventional head of a tag device.

DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0028] The present invention provides a head of a tag device for different products. With an embodiment and drawings thereof, the features of the present invention are described in detail as follow.

[0029] With reference to FIGS. 1A, 1B and 2, the head 10 of the tag device of the present invention has a body 11, at least one row of negative-pressure through holes 20 and at least one row of positive-pressure through holes 30.

[0030] The body 11 has a first surface12, a second surface 13, two opposite long sides 14 and two opposite short sides 15. In one embodiment, the body 11 further has a connecting part 16 vertically extended from one of the short sides 15 and the connecting part 16 is used to connect the tag device (not shown).

[0031] The at least one row of negative-pressure through holes 20 has a plurality of negative-pressure through holes 21 formed through the first and second surfaces 11, 12 of the body 11 and arranged equidistantly according to a long-axis direction Y of the body 11. The two negative-pressure through holes at both ends of the row of negative-pressure through holes 20 are respectively close to the short sides 15 of the body. Therefore, the negative-pressure through holes 21 are evenly distributed on the body 11. In one embodiment, the body 11 of the head 10 has a single row of negative-pressure through holes 20 arranged in a middle position of the body 11 according to the long-axis direction Y, as shown in FIG. 2.

[0032] The row of positive-pressure through hole 30 has a plurality of positive-pressure through hole 31 formed through the first and second surfaces 12, 13 of the body 11 and arranged equidistantly according to a long-axis direction Y of the body 11. The two positive-pressure through holes at both ends of the row of positive-pressure through holes 30 are respectively close to the short sides 15 of the body. Therefore, the positive-pressure through holes 31 are evenly distributed on the body 11. In one embodiment, the body 11 of the head 10 has two rows of negative-pressure through holes 30 respectively arranged two sides of the row of negative-pressure through holes 20 and are respectively close to the long sides 14, as shown in FIG. 2. In one embodiment, an amount of the positive-pressure through holes 31 in each row of positive-pressure through holes 30 is larger than that of the negative-pressure through holes 21 in the row of negative-pressure through holes 20. The two positive-pressure through holes 31 at both ends of the at least one row of positive-pressure through holes 30 are respectively closer to the short sides 15 of the body 11 than the negative-pressure through holes 21 at both ends of the at least one row of negative-pressure through holes 20. Furthermore, the negative-pressure through holes 21 and the positive-pressure through holes 31 are arranged in a staggered manner.

[0033] With reference to FIGS. 1A and 4A, the body 11 of the head 10 further has a plurality of first connectors 40, a plurality of second connectors 50, at least one negative-pressure air pipe 41 and at least one positive-pressure air pipe 51. The first connectors 40 respectively align the negative-pressure through holes 21 and mounted on the first surface 12 to respectively communicate with the corresponding negative-pressure through holes 21. The negative-pressure air pipe 41 is inserted into the first connector 40, so a negative pressure suction is provided to the second surface 13 through the negative-pressure through holes 21. The second connectors 50 respectively align the positive-pressure through holes 31 and mounted on the first surface 12 to respectively communicate with the corresponding positive-pressure through holes 31. The positive-pressure air pipe 51 is inserted into the second connector 50, so a positive-pressure airflow is provided to the second surface 13 through the positive-pressure through holes 31.

[0034] A controlling method of the tag device having the head of the present invention is further described as follows. With reference to FIG. 3A, a product 70 is placed on a platform 60 of the tag device and the product 70 has one component 71 mounted thereon. The component 71 faces the head 10 and has a length short than that of the head 10. With further reference to FIGS. 1A and 4A, the negative-pressure air pipes 41 are inserted into the first connectors 40 on the negative-pressure through holes 21 corresponding to a position of the component 71. The positive-pressure air pipes 51 are also inserted into the second connectors 50 on the positive-pressure through holes 31 corresponding to the position of the component 71. The head 10 is moved to a position of a label 72 and the negative-pressure suction is provided on the second surface 13 by the negative pressure air pipe 41. With reference to FIG. 3A, the label 72 is sucked on the second surface 13 of the head 10 by the negative-pressure suction. The head 10 is moved to the position of the component 71 on the platform 60 and then the label 72 is attached to the component 71. With reference to FIGS. 1A and 4A, the positive-pressure airflow is provided to the second surface 13 of the head 10 by the positive-pressure air pipe 51 so the label 72 is attached to the component 71 by the positive-pressure airflow.

[0035] With reference to FIGS. 1A, 3B and 4B, the head 10 is used for another product 70 having two components 71 to be attached. The product 70 is placed on the platform 60 and the components 71 face to the head 10. Each component 71 has a length shorter than that of head 10. With reference to FIGS. 1A and 4B, the negative-pressure air pipes 41 are inserted into the first connectors 40 on the negative-pressure through holes 21 corresponding to the different positions of the components 71. The positive-pressure air pipes 51 are also inserted into the second connectors 50 on the positive-pressure through holes 31 corresponding to the different positions of the components 71. The head 10 is moved to a position of a label 72 and the negative-pressure suctions are provided on the second surface 13 by the negative pressure air pipe 41. With reference to FIG. 3B, the labels 72 are sucked on the second surface 13 of the head 10 by the negative-pressure suctions. The head 10 is moved to the positions of the components 71 on the platform 60 and then the labels 72 are respectively attached to the corresponding components 71. With reference to FIGS. 1A and 4B, the positive-pressure airflows are provided to the second surface 13 of the head 10 by the positive-pressure air pipes 51, so the labels 72 are attached to the components 71 by the positive-pressure airflows. As shown in FIG. 4B, the positive-pressure airflows help the label tightly attached to the components 71 with different heights.

[0036] To enhance the flatness of the label 72, as shown in FIG. 5, the positive-pressure air pipes 51 are respectively inserted into all of the second connectors 50 corresponding to the positive-pressure through holes 31, so the positive pressure airflow with a large area is provided on the entire second surface 13 to help the label 72 attached on the corresponding component evenly. Furthermore, the platform 60 of the tag device may be laterally moved along the long-axis direction Y or a short-axis direction X. When the positive pressure airflow is provided on the entire second surface 13, the platform is laterally moved backward or forward along the short-axis direction. Otherwise, as shown in FIG. 5, the carrier 60 is laterally moved backward or forward along the long-axis direction.

[0037] As shown in FIG. 6, when the positive-pressure air pipes 51 are inserted into the second connectors 50 corresponding to all of the positive-pressure through holes 31 of one row of positive-pressure through holes 30, the positive-pressure airflow is used as an air knife and the platform is laterally moved along long-axis direction Y or a short-axis direction X. In addition, a pressure of the positive-pressure airflow may be adjustable.

[0038] Based on the foregoing description, the at least one row of negative-pressure through holes and at least one row of positive-pressure through holes are formed through the body of the head along the long-axis direction of the body. The negative-pressure through holes at both ends of the at least one row of negative-pressure through holes are respectively close to the short sides of the body. The two positive-pressure through holes at both ends of the at least one row of positive-pressure through holes are respectively close to the short sides of the body. Therefore, the suction area of the head is expanded between the two long sides and the two short sides of the body to cover the entire second surface. Furthermore, according to different positions of the components on a different product or different positions of the components on the product, the negative-pressure air pipes and the positive-pressure air pipes are respectively inserted into the first connectors corresponding to the negative-pressure through holes and the second connectors corresponding to the positive-pressure through holes. The suction area of the second surface of the head is changeable for different products. The present invention does not require different customized heads of the tag device for different products, provides a good stability tag task and increases UPH.

[0039] Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with the details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.