The present invention relates to a roll shaft structure, and more particularly to a roll shaft structure for use in a thermal transfer printer.
Thermal transfer printers have been widely used in modern lives. The common thermal transfer printers include for example faxing machines or the POS (Point of Sale) printers at supermarkets or shops. The configurations of the thermal transfer printers are substantially identical to those of the ordinary printers except for the printing medium and the printing carriers. For example, the ordinary printers supply ink or toner onto papers. Whereas, a thermal transfer printer prints a thermal paper by melting a coating of a ribbon. Generally, for a thermal transfer printer, the ribbon is wound around a ribbon roll, and the thermal paper is wound around a thermal paper roll.
A process of installing the first thermal paper roll 15 in the paper supply mechanism 1 will be illustrated as follows. First of all, the first embedding part 131 of the first fixing frame 13 is inserted into a first side of the first thermal paper roll 15, and the second embedding part 141 of the second fixing frame 14 is inserted into a second side of the first thermal paper roll 15. As such, the first fixing frame 13, the second fixing frame 14 and the first thermal paper roll 15 are combined together. Then, the first fixing shaft 132 of the first fixing frame 13 is received in the first seam 111 of the first supporting element 11, and the second fixing shaft 142 of the second fixing frame 14 is received in the second seam 121 of the second supporting element 12. As such, the combination of the first fixing frame 13, the second fixing frame 14 and the first thermal paper roll 15 is installed in the paper supply mechanism 1. Meanwhile, the process of installing the first thermal paper roll 15 in the paper supply mechanism 1 is finished.
The operations of the conventional thermal transfer printer will be illustrated as follows. When the conventional thermal transfer printer is enabled, a thermal print head (TPH) will heat the coating of the ribbon. By heating the ribbon, the originally solid state of coating will be temporarily transformed into the liquid state and transferred to the first thermal paper. The coating is then cooled, and thus the coating is fixed onto the first thermal paper. After the first thermal paper is ejected out of the thermal transfer printer, the thermal transfer printing operation is finished.
Please refer to
The conventional thermal transfer printer, however, still has some drawbacks. For example, during operations of the conventional thermal transfer printer, the first thermal paper roll 15 is rotated with respect to the first fixing frame 13 and the second fixing frame 14. After a long use period, the first thermal paper roll 15 and first fixing frame 13 and the second fixing frame 14 will abrade each other. As such, the first embedding part 131 of the first fixing frame 13 and the second embedding part 141 of the second fixing frame 14 fail to be properly fitted with the first thermal paper roll 15. During operations of the conventional thermal transfer printer under this circumstance, the rotation of the first thermal paper roll 15 becomes unstable, and thus the printing quality is deteriorated.
On the other hand, there are many specifications for the inner diameters of the commercially available thermal paper rolls and ribbon rolls. For example, the common specifications for the roll inner diameters are 0.5 inch, 1 inch and 1.5 inch. In addition, the first embedding part 131 of the first fixing frame 13 and the second embedding part 141 of the second fixing frame 14 are only fitted to the dimensions of the first thermal paper roll 15 and the second thermal paper roll 17. In other words, the first fixing frame 13 and the second fixing frame 14 can be applied to no rolls other than the first thermal paper roll 15 and the second thermal paper roll 17. If the inner diameter of the roll is changed, the fixing frame complying with this inner diameter should be used.
It is an object of the present invention provides a roll shaft structure complying with various rolls of different inner diameters.
In accordance with an aspect of the present invention, there is provided a roll shaft structure for use in a thermal transfer printer to fix a first roll or a second roll. The first roll has a first roll inner diameter. The second roll has a second roll inner diameter. The second roll inner diameter is greater than the first roll inner diameter. The roll shaft structure includes a shaft body, a first ring, a supporting plate and a stopping part. The shaft body penetrates through the first roll or the second roll, and includes a first notch and a second notch. The first ring is sheathed around the shaft body and movable with respect to the shaft body, and has a first fixing part. When the first ring is moved to a position between the first notch and the second notch and then the first ring is rotated, the first fixing part is engaged with the second notch, so that the first ring is fixed on the shaft body. The supporting plate is arranged at a first end of the shaft body, and has a receiving part for receiving the first ring. The stopping part is arranged at a second end of the shaft body for stopping the first ring and avoiding detachment of the first ring from the shaft body. When the first roll is sheathed around the shaft body, the shaft body is contacted with a first inner wall of the first roll, so that the first roll is fixed on the shaft body. When the second roll is sheathed around the shaft body, the first ring is contacted with a second inner wall of the second roll, so that the second roll is fixed on the shaft body.
In an embodiment, the first notch further includes a first notch rib. When the first ring is moved to the position between the first notch and the second notch, the first ring is blocked by the first notch rib from being rotated in a first rotating direction but the first ring is permitted to rotate in a second rotating direction opposed to the first rotating direction, so that the first fixing part is engaged with the second notch and the first ring is fixed on the shaft body.
In an embodiment, the roll shaft structure further includes a second ring, which is sheathed around the shaft body and movable with respect to the shaft body and has a second fixing part. When the second ring is moved to the position between the first notch and the second notch and then the second ring is rotated in the second rotating direction, the second fixing part is engaged with the second notch, so that the second ring is fixed on the shaft body.
In an embodiment, when the second roll is sheathed around the shaft body, the first ring is contacted with the second inner wall of the second roll to fix the second roll on the shaft body, so that the shaft body is synchronously rotated with the second roll in the first rotating direction to prevent disengagement of the first fixing part from the second notch.
In an embodiment, the shaft body further includes a first guiding groove, and the first ring is movable with respect to the shaft body along the first guiding groove.
In an embodiment, the first ring further includes plural first ring ribs. When the second roll is sheathed around the shaft body, the first ring ribs are contacted with the second inner wall of the second roll, so that the second roll is fixed on the shaft body.
In an embodiment, the shaft body has a shaft body diameter, and the shaft body diameter is equal to the first roll inner diameter.
In an embodiment, the first ring has a ring diameter, and the ring diameter is equal to the second roll inner diameter.
In an embodiment, the first roll is a ribbon roll or a thermal paper roll.
In an embodiment, the second roll is a ribbon roll or a thermal paper roll.
The above objects and advantages of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
For obviating the drawbacks encountered from the prior art, the present invention provides a roll shaft structure.
Firstly, the configurations of the first ring 23 of the roll shaft structure 2 will be illustrated with reference to
After the first ring 23 is aligned with the first position between the first notch 201 and the second notch 202 and the second ring 24 is aligned with the second position between the another first notch 201 and the another second notch 202, the first ring 23 and the second ring 24 are rotated in a second rotating direction C2. As such, the first fixing part 231 of the first ring 23 is engaged with the second notch 202, and the second fixing part 241 of the second ring 24 is engaged with another second notch 202. Meanwhile, the first ring 23 and the second ring 24 are fixed on the shaft body 20.
Especially, when the first ring 23 is aligned with the first position between the first notch 201 and the second notch 202, the first fixing part 231 is blocked by the first notch rib 2011 of the first notch 201, so that the first ring 23 is only permitted to rotate in the second rotating direction C2 but fails to be rotated in a first rotating direction C1, which is opposed to the second rotating direction C2. Similarly, the second ring 24 is only permitted to rotate in the second rotating direction C2 but fails to be rotated in the first rotating direction C1.
In accordance with another key feature of the present invention, plural first notches 201 and plural second notches 202 are formed in the shaft body 20. According to the width W* of the second roll 4, the distance between the first ring 23 and the second ring 24 is adjustable. By adjusting the distance between the first ring 23 and the second ring 24, the first ring 23 is close to an end of the second roll 4, and the second ring 24 is close to the other end of the second roll 4. As such, the second roll 4 is fixed on the shaft body 20 and failed to be easily loosened.
In this embodiment, the first roll 3 and the second roll 4 are illustrated by referring to thermal paper rolls. Nevertheless, the roll shaft structure of the present invention is not limited to be applied to the thermal paper rolls. For example, the roll shaft structure of the present invention may be applied to a ribbon roll. That is, in some embodiments, the first roll and the second roll are ribbon rolls.
From the above description, the profiles of the roll shaft structure of the present invention are adjustable, so that various rolls with different inner diameters can be sheathed around the roll shaft structure. Moreover, depending on different widths of the rolls, the distance between the first ring and the second ring is adjusted to increase the stability of fixing the roll. In comparison with the prior art technology, the roll shaft structure of the present invention can be applied to various rolls with different inner diameters. Moreover, since the roll sheathed around the roll shaft structure is synchronously rotated with the roll shaft structure, the abrasion between the roll shaft structure and the roll will be eliminated. As a consequence, stable rotation of roll shaft structure and the roll can be maintained for a long use period, and the printing quality of the thermal transfer printer is enhanced.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
---|---|---|---|
99116250 A | May 2010 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
6095704 | Jaeger et al. | Aug 2000 | A |
6609677 | Seybold et al. | Aug 2003 | B2 |
6609678 | Seybold et al. | Aug 2003 | B2 |
6824091 | Inana | Nov 2004 | B2 |
6923397 | Inana et al. | Aug 2005 | B2 |
6923582 | Pomfret | Aug 2005 | B2 |
6997629 | Bungert et al. | Feb 2006 | B2 |
7011464 | Sekino | Mar 2006 | B2 |
7284725 | Inana | Oct 2007 | B2 |
7300220 | Bakker | Nov 2007 | B1 |
7350463 | Blanchard et al. | Apr 2008 | B2 |
7350992 | Ward | Apr 2008 | B2 |
7441971 | Pomfret | Oct 2008 | B2 |
7506834 | Lenkl | Mar 2009 | B2 |
7937915 | Kohn et al. | May 2011 | B2 |
20010006202 | Inana et al. | Jul 2001 | A1 |
20010042810 | Christensen et al. | Nov 2001 | A1 |
20030173451 | Inana | Sep 2003 | A1 |
20050249537 | Pomfret | Nov 2005 | A1 |
Number | Date | Country | |
---|---|---|---|
20110284680 A1 | Nov 2011 | US |