Thermal Transfer System
The thermal transfer system uses a second transfer device to apply a disturbance pattern on the inner ink ribbon, addressing the issue of confidential information leakage by obscuring identifiable patterns on the ink ribbon, thus enhancing security.
Patent Information
- Application Number
- JP2021167641
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-12
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2041-10-12
AI Technical Summary
There is a growing need to protect confidential information from leakage in thermal transfer systems, particularly in ink ribbons used for printing sensitive data, as the ink transfer process leaves identifiable patterns on the ribbon that can reveal sensitive information.
A thermal transfer system that includes a second transfer device to apply a disturbance pattern onto the support layer of an inner ink ribbon, using a heating head with controlled energy and pressure to disrupt the identifiable patterns on the outer ink ribbon, incorporating dense and sparse regions with block characters to obscure the original printed information.
Effectively prevents the leakage of confidential information by disrupting the identifiable patterns on the ink ribbon, ensuring the printed information remains secure even after the ink transfer process.
Smart Images

Figure 0007732319000001 
Figure 0007732319000002 
Figure 0007732319000003
Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates to thermal transfer systems. [Background technology]
[0002] Transfer systems that use ink ribbons to print images such as characters on a receiving material such as a card are widely used. An ink ribbon, for example, includes a ribbon (support layer) extending in a strip shape and an ink layer containing dyes or the like formed on the ribbon. In printing using an ink ribbon, ink is transferred to the receiving material in a pattern corresponding to the desired image to be printed. In this case, the ink ribbon after ink transfer contains areas where the ink has been removed by transfer to the receiving material, in a pattern corresponding to the printed image. Therefore, it is possible to identify the printed image from the ink ribbon after ink transfer. Therefore, when using an ink ribbon to print confidential information, such as ID information such as a name or address, on a receiving material, care must be taken when handling the ink ribbon after ink transfer.
[0003] To address this issue, for example, Patent Document 1 proposes a thermal transfer system in which a heating element is brought into contact with the outermost ink ribbon wound around a winding section of an ink ribbon that has been ink-transferred with a first pattern corresponding to ID information, and a disturbance pattern is transferred to the support layer of the ink ribbon located inside the ink ribbon. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-111866 Summary of the Invention [Problem to be solved by the invention]
[0005] In recent years, there has been a growing demand for the protection of personal information. Therefore, the present inventors have set themselves the task of providing a thermal transfer system that can more appropriately prevent the leakage of information that should be kept secret, and have conducted extensive research.
[0006] In view of the above, an object of the present disclosure is to provide a thermal transfer system that can appropriately prevent the leakage of confidential information. [Means for solving the problem]
[0007] The present disclosure relates to a transfer system that transfers ink to a recipient using an ink ribbon having a support layer and an ink layer, the system comprising: a feed section that feeds out the ink ribbon; a first transfer device that transfers the ink in the ink layer of the ink ribbon fed from the feed section to the recipient in a first pattern; a winding section that winds up the ink ribbon to which the first pattern has been transferred; and a second transfer device that transfers the ink in the ink layer of an outer ink ribbon, which is the ink ribbon located at the outermost periphery of the ink ribbons wound around the winding section, in a second pattern to the support layer of an inner ink ribbon, which is the ink ribbon adjacent to the inside of the outer ink ribbon, wherein the first pattern includes a plurality of first letters or a plurality of first numerals, and the second pattern includes a plurality of second letters or second numerals and a plurality of block characters, any of which includes a third letter or third numeral in white.
[0008] The present disclosure is a thermal transfer system, wherein the second letters or the second numbers of the second pattern form dense regions and sparse regions along the width direction of the ink ribbon, and the blocks of the second pattern are uniformly distributed along the width direction of the ink ribbon.
[0009] The present disclosure is a thermal transfer system, wherein the block body includes a single, open, third letter or third number.
[0010] The present disclosure is a thermal transfer system, wherein the shape of the third letter or number in the block letters approximates the shape of the first letter or number in the corresponding first pattern.
[0011] The present disclosure is a thermal transfer system in which the second transfer device has a heating head extending in the width direction of the ink ribbon, and the heating head transfers ink from the ink layer of the outer ink ribbon to the support layer of the inner ink ribbon using a rated maximum applied energy ratio and a head pressure in the range of 10 / 13 to 1 relative to the rated maximum head pressure.
[0012] The present disclosure relates to a thermal transfer system in which the second transfer device has a heating head extending in the width direction of the ink ribbon, one width end of the heating head is located at the end of the width direction of the ink ribbon, and the other width end of the heating head is located halfway in the width direction of the ink ribbon, and the head pressure of the heating head is smaller at the other end of the heating head than at one end and the center of the heating head. [Effects of the Invention]
[0013] According to the thermal transfer system of the present disclosure, it is possible to appropriately prevent the leakage of confidential information. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a front view showing a schematic diagram of a thermal transfer system according to the present embodiment. [Figure 2] 2 is an enlarged vertical cross-sectional view showing an area A of FIG. 1 on the ink ribbon on which a first pattern has been transferred by a first transfer device. [Figure 3] 3 is an enlarged front view showing a winding section and a second transfer device of the thermal transfer system of the present embodiment, and shows area B in FIG. 1. FIG. [Figure 4A] FIG. 4A is a diagram showing an example of a second pattern formed by a second transfer device. [Figure 4B] FIG. 4B is a diagram showing a second pattern of blocks. [Figure 5]FIG. 5 is a vertical cross-sectional view schematically showing the outer ink ribbon and the inner ink ribbon onto which the second pattern has been transferred by the second transfer device. [Figure 6] FIG. 6 is a plan view showing an ID card manufactured by the thermal transfer system of this embodiment. [Figure 7] 7(a) and (b) are diagrams showing a second pattern as a reference example, and FIGS. 7(c) and (d) are diagrams showing a second pattern according to this embodiment. [Figure 8A] FIG. 8A is a diagram showing a first letter or number of a first pattern and a block letter of a second pattern on the outer ink ribbon. [Figure 8B] FIG. 8B shows the block body transferred to the inner ink ribbon. [Figure 9] 9(a), (b), and (c) are diagrams showing the second pattern transferred from the outer ink ribbon to the inner ink ribbon. [Figure 10] FIG. 10 is a diagram showing ribbon wrinkles relative to the width direction position of the ink ribbon. [Figure 11A] FIG. 11A is a diagram showing the appearance of the inner ink ribbon relative to the head pressure and energy ratio of the second heater. [Figure 11B] FIG. 11B is a diagram showing the appearance of the outer ink ribbon relative to the head pressure and energy ratio of the second heater. [Figure 12A] FIG. 12A is a diagram showing the head pressure from the second heating element to the ink ribbon in a reference example. [Figure 12B] FIG. 12B is a diagram showing the head pressure from the second heating element to the ink ribbon according to the present embodiment. [Figure 13A] Figure 13A shows the relationship between the dense and sparse areas of the first letter or number on an ID card obtained by a thermal transfer system, the dense and sparse areas of the first letter or number in the first pattern on an ink ribbon, and the dense and sparse areas of the second letter or number in the second pattern. [Figure 13B] FIG. 13B is a diagram showing the relationship between the dense and sparse areas of the first character or first number in the first pattern on the ink ribbon and the dense and sparse areas of the second character or second number in the second pattern. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, one embodiment of the present disclosure (hereinafter referred to as "the present embodiment") will be described with reference to the drawings.
[0016] FIG. 1 is a front view schematically showing a thermal transfer system 10 of the present embodiment.
[0017] This thermal transfer system 10 is a system that transfers ink in a desired pattern to a transfer-receiving body 100 using an ink ribbon 20 having a support layer 21 and an ink layer 22 laminated on one surface of the support layer 21. The thermal transfer system 10 then transfers a plurality of first letters or numbers 100a corresponding to ID information, etc. (described later), and a facial image 100b onto the transfer-receiving body 100, thereby obtaining an ID card 100A such as a driver's license (see FIG. 6).
[0018] The thermal transfer system 10 includes, arranged in this order from upstream in the feeding direction of the ink ribbon 20, a feed-out section 11 that feeds out the ink ribbon 20, a plurality of feed-side guide rollers 13a that guide the ink ribbon 20, a plurality of take-up-side guide rollers 13b that guide the ink ribbon 20 and transfer the ink in the ink layer 22 of the ink ribbon 20 to the transfer recipient 100, a second transfer device 15 that transfers the ink in the ink layer 22 of the outer ink ribbon 20A (described later) to the inner ink ribbon 20B, and a take-up section 12. The thermal transfer system 10 also includes a control section 17 that controls the feed-out section 11, take-up section 12, first transfer device 14, and second transfer device 15.
[0019] Of these, the delivery section 11 rotates in the direction indicated by the arrow R1 in FIG. 1 to deliver the ink ribbon 20 downstream.
[0020] The plurality of delivery-side guide rollers 13a are arranged at intervals in the transport direction of the ink ribbon 20, and guide the ink ribbon 20 delivered from the delivery section 11 downstream.
[0021] The first transfer device 14 transfers the ink of the ink layer 22 of the ink ribbon 20 fed from the feed section 11 onto the transfer target 100 in a predetermined first pattern P1 including a plurality of first letters or first numbers 100a corresponding to ID information or the like.
[0022] The first transfer device 14 includes a first heating element 14a that heats the ink ribbon 20 and transfers the ink of the ink layer 22 to the transfer recipient 100, and a platen roller 14b that sandwiches the ink ribbon 20 and the transfer recipient 100 between itself and the first heating element 14a. The first heating element 14a is, for example, a heating head having a heating element that generates heat when energized. The first heating element 14a is disposed on the support layer 21 side of the ink ribbon 20. As described above, the first heating element 14a heats the ink of the ink layer 22 of the ink ribbon 20 in the first pattern P1, thereby transferring the ink of the ink layer 22 of the ink ribbon 20 to the transfer recipient 100 in the first pattern P1. The platen roller 14b is disposed opposite the first heating element 14a, with the ink ribbon 20 and the transfer recipient 100 being conveyed therebetween, and sandwiches the ink ribbon 20 and the transfer recipient 100 between itself and the first heating element 14a as described above.
[0023] The plurality of take-up side guide rollers 13b are arranged at intervals in the transport direction of the ink ribbon 20, and guide the ink ribbon 20 transported from the upstream side to the take-up section 12.
[0024] 1, and winds up the ink ribbon 20 onto which the first pattern P1 has been transferred by the first transfer device 14. The winding unit 12 is driven by, for example, a stepping motor.
[0025] As will be described later, the second transfer device 15 transfers the ink of the ink layer 22 of the ink ribbon 20 located at the outermost periphery of the ink ribbon 20 wound on the winding unit 12, in a second pattern P2 which is a disturbance pattern, to the support layer 21 of the ink ribbon 20 located inside the ink ribbon 20. This second pattern P2 will be described in detail later.
[0026] The control unit 17 outputs control signals to the drive units that drive the delivery unit 11, the winding unit 12, the first transfer device 14, and the second transfer device 15, for example, to control their operations.
[0027] Next, the ink ribbon 20 after the ink has been transferred with the first pattern P1 will be described. Figure 2 is an enlarged vertical cross-sectional view showing the ink ribbon 20 after the first pattern P1 has been transferred by the first transfer device 14 in region A of Figure 1.
[0028] In the ink ribbon 20 after ink transfer, the ink layer 22 consists of ink 22a that remains without being transferred to the transfer recipient 100, and ink-free portions 22b of the first pattern P1 that correspond to the ID information, etc., printed on the transfer recipient 100. Therefore, it is possible to identify the first letter or first number 100a that includes the ID information printed on the transfer recipient 100 based on the pattern of the ink-free portions 22b.
[0029] FIG. 3 is an enlarged front view schematically showing the winding unit 12 and the second transfer device 15 of the thermal transfer system 10 of this embodiment, and shows the area B in FIG.
[0030] 3, the ink ribbon 20 is wound around the winding section 12 so that the support layer 21 of the ink ribbon 20 is positioned outside the ink layer 22. In this specification, the ink ribbon 20 positioned at the outermost periphery of the ink ribbon 20 wound around the winding section 12 is referred to as the outer ink ribbon 20A, and the ink ribbon 20 wound around the winding section 12 on the inside of the outer ink ribbon 20A and adjacent to the outer ink ribbon 20A is referred to as the inner ink ribbon 20B.
[0031] While the winding unit 12 is winding the ink ribbon 20, the second transfer device 15 transfers the ink of the ink layer 22 of the outer ink ribbon 20A onto the support layer 21 of the inner ink ribbon 20B in the form of a disturbance pattern, that is, a second pattern P2.
[0032] The second transfer device 15 has a second heating element 15a and an elevating mechanism 152 that raises and lowers the second heating element 15a. The second heating element 15a is disposed near the winding unit 12 and is movable by an elevating mechanism 15b in the direction indicated by arrow R3 in Fig. 3, i.e., in the direction toward or away from the winding unit 12. The second heating element 15a moves toward the winding unit 12, heats the outer ink ribbon 20A from the support layer 21 side, and transfers the second pattern P2, which is a disturbance pattern, onto the support layer 21 of the inner ink ribbon 20B.
[0033] 4A and 4B are diagrams showing an example of the second pattern P2 and a block of the second pattern P2, respectively, by the second transfer device 15. Also, Fig. 5 is a vertical cross-sectional view schematically showing the outer ink ribbon 20A and the inner ink ribbon 20B onto which the second pattern P2 has been transferred by the second transfer device 15.
[0034] As a result of the transfer of the second pattern P2 by the second transfer device 15, the first pattern P1 and the second pattern P2 are mixed in the ink layer 22 of the outer ink ribbon 20A. Also, a pattern in which the first pattern P1 and the second pattern P2 are mixed is transferred to the support layer 21 of the inner ink ribbon 20B. As a result, the pattern of the ink-missing portion 22b made of the first pattern P1 corresponding to the ID information is destroyed to the extent that it becomes unrecognizable.
[0035] The second heating element 15a of the second transfer device 15 is, for example, composed of a heating head generally referred to as an end face head. The second heating element 15a may include multiple heating sections configured to be driven independently, or may have a single heating pattern. However, to effectively destroy the pattern of the ink-missing portion 22b, it is preferable that the second pattern P2 be changeable depending on the state of the first pattern P1. From this perspective, the second heating element 15a of this embodiment preferably includes multiple heating sections configured to be driven independently.
[0036] 5, before the outer ink ribbon 20A is peeled from the inner ink ribbon 20B, the ink transferred to the inner ink ribbon 20B by the second pattern P2 is in contact with the ink-depleted portions of the ink layer 22 of the outer ink ribbon 20A. In this state, there is a risk that the ink-depleted portions 22b corresponding to the first pattern P1 may be visible in the ink layer 22 of the outer ink ribbon 20A, just as in a state where there is no ink-depleted portion of the second pattern. For this reason, in this embodiment, a pattern that combines the first pattern P1 and the second pattern P2 is transferred to the support layer 21 of the inner ink ribbon 20B, thereby destroying the ink-depleted portions 22b consisting of the first pattern P1 corresponding to the ID information to the extent that they are unrecognizable.
[0037] Next, the first pattern P1 to be transferred onto the transfer receiving body 100 and the second pattern P2 as a disturbance pattern to be transferred onto the ink ribbon 20 in this embodiment will be described.
[0038] As described above, the first pattern P1 to be transferred onto the transferee 100 includes a plurality of first letters or numbers 100a. In contrast, the second pattern P2, which is a disturbance pattern, disturbs the first letters or numbers 100a and therefore includes a plurality of second letters or numbers 32 having an external shape similar to that of the first letters or numbers 100a (see FIG. 4A).
[0039] Furthermore, the second pattern P2 includes a plurality of second letters or numbers 32 as well as a plurality of block characters 33 arranged between the second letters or numbers 32 (see FIG. 4B).
[0040] In this embodiment, the block body 33 is a rectangular, solidly printed black character whose longitudinal direction is aligned with the width direction of the ink ribbon 20 (FIG. 4A). The block body 33 may have a square shape instead of a rectangular shape, or may have any other polygonal shape.
[0041] In any case, the block body 33 is made of solid black characters, and as long as it is a black character formed by solid printing over a certain area, its external shape does not matter.
[0042] Specifically, the block body 33 has a block body main body 33a and a third letter or number 33b formed in white inside the block body main body 33a (see FIG. 4B).
[0043] In this embodiment, the outline third letter or third number 33b may be a letter or a number. In this embodiment, each block 33 has a single third letter or third number 33b.
[0044] As described above, the second letter or second number 32 of the second pattern P2 has an external shape similar to that of the first letter or first number 100a that the second letter or second number 32 overlaps (corresponds to) so as to effectively disrupt the first pattern P1. Similarly, the third letter or third number 33b of the second pattern P2 has an external shape similar to that of the first letter or first number 100a that the third letter or third number 33b overlaps (corresponds to) so as to effectively disrupt the first pattern P1.
[0045] The ID card (driver's license, etc.) 100A obtained by the thermal transfer system of this embodiment has dense areas 105 of the first letter or first number 100a formed at the top and bottom, and a sparse area of the first letter or first number 100a formed in the center (see Figure 6).
[0046] Therefore, dense regions 25 of the first character or first number 100a of the first pattern P1 are formed on both sides in the width direction of the ink ribbon 20 that transfers the first character or first number 100a to the transfer recipient 100, and sparse regions 26 of the first character or first number 100a are formed in the center in the width direction of the ink ribbon 20. Then, a boundary 28 is formed between the dense region 25 and the sparse region 26 in the ink ribbon 20 (see FIGS. 13A and 13B).
[0047] 13A and 13B show the relationship between the dense regions 105 and sparse regions 106 of the first character or first number 100a on the ID card 100A obtained by the thermal transfer system, the dense regions 25 and sparse regions 26 of the first character or first number 100a in the first pattern P1 on the ink ribbon 20, and the dense regions 35 and sparse regions 36 of the second character or second number in the second pattern P2. In this embodiment, the second character or second number 32 in the second pattern P2 is also arranged to form the dense regions 35 and sparse regions 36 of the second character or second number along the width direction of the ink ribbon 20, corresponding to the dense regions 25 and sparse regions 26 of the first character or first number 100a in the first pattern P1 formed on the ink ribbon 20 (see FIGS. 7(c) and (d) and FIGS. 13A and 13B). In this case, as shown in FIG. 13A, the block bodies 33 of the second pattern P2 may also be arranged in greater numbers in the dense regions 35 and in fewer numbers in the sparse regions 36 along the width direction of the ink ribbon 20, in accordance with the dense regions 35 and sparse regions 36 of the second letter or second number of the second pattern P2.
[0048] 13B, the block bodies 33 of the second pattern P2 may be uniformly dispersed across the width of the ink ribbon 20, regardless of the dense and sparse regions of the first letter or number 100a of the first pattern P1. As will be described later, by uniformly dispersing the block bodies 33 of the second pattern P2 across the width of the ink ribbon 20, it is possible to apply energy uniformly from the second heating element 15a to the ink ribbon 20. This allows the ink ribbon 20 to be wound up flat and in a balanced manner without creating any convex shapes on the ink ribbon 20.
[0049] Next, the shape of the second pattern P2, which is the disturbance pattern in this embodiment, will be further described with reference to FIGS. 7(a) to 7(d) and 8A to 8B.
[0050] The second pattern P2 shown in Figure 7(a) consists of a second letter or second number 32. When the second pattern P2 consists of a second letter or second number 32, consider transferring the ink in the ink layer 22 of the outer ink ribbon 20A of the ink ribbon 20 in the second pattern P2 to the support layer 21 of the inner ink ribbon 20B, and then peeling the outer ink ribbon 20A from the wound ink ribbon 20. In this case, the first pattern P1 and the second pattern P2 coexist in the ink layer 22 of the outer ink ribbon 20A, effectively disrupting the first pattern P1.
[0051] On the other hand, after peeling off the outer ink ribbon 20A, the ink layer 22 of the inner ink ribbon 20B remaining on the wound ink ribbon 20 side has ink-free portions 22b of the first pattern P1 transferred by the first transfer device 14 formed therein, and at the same time, the support layer 21 of the inner ink ribbon 20B has the second pattern P2 transferred by the second transfer device 15 formed therein.
[0052] However, when the second pattern P2 consists of a second letter or a second number 32, the first pattern P1 of the inner ink ribbon 20B cannot be completely covered by the second pattern P2, and the disturbing effect of the second pattern P2 on the first pattern P1 is insufficient.
[0053] Next, the second pattern P2 shown in Figure 7(b) has block elements 33A that do not include the second letter or number 32 and the blank third letter or number 33b (i.e., solid block elements). When the second pattern P2 has block elements 33A that do not include the second letter or number 32 and the blank third letter or number 33b, consider transferring the ink in the ink layer 22 of the outer ink ribbon 20A of the ink ribbon 20 to the support layer 21 of the inner ink ribbon 20B in the second pattern P2, and then peeling the outer ink ribbon 20A from the wound ink ribbon 20. In this case, the first pattern P1 and the second pattern P2 coexist in the ink layer 22 of the outer ink ribbon 20A, but because the block elements 33A of the second pattern P2 consist of simple solid black characters, it is difficult for the block elements 33A to disrupt the first pattern P1.
[0054] Furthermore, after the outer ink ribbon 20A is peeled off, the ink layer 22 of the inner ink ribbon 20B remaining on the wound ink ribbon 20 side has ink-free portions 22b of the first pattern P1 transferred by the first transfer device 14 formed therein, and at the same time, the second pattern P2 transferred by the second transfer device 15 formed on the support layer 21 of the inner ink ribbon 20B.
[0055] Since the second pattern P2 has the block characters 33A that do not include the second letter or number 32 and the white third letter or number 33b, the block characters 33 of the second pattern P2 include solid black characters.
[0056] In this case, it is possible to cover a certain area of the first pattern P1 with the black characters of the block body 33A, but at the same time, the ink-missing portions 22b of the first pattern P1 remain in the black characters of the block body 33A. As a result, the ink-missing portions 22b of the first pattern P1 in the second pattern P2 transferred to the support layer 21 of the inner ink ribbon 20B can be seen from the block body 33A, reducing the disturbing effect of the second pattern P2.
[0057] 7(c) shows a second pattern P2 that includes a second letter or number 32 and block bodies 33 that include a block body main body 33a and a third letter or number 33b. When the second pattern P2 includes the second letter or number 32 and block bodies 33 that include a block body main body 33a and a third letter or number 33b, consider transferring the ink in the ink layer 22 of the outer ink ribbon 20A of the ink ribbon 20 to the support layer 21 of the inner ink ribbon 20B in the second pattern P2, and then peeling the outer ink ribbon 20A from the wound ink ribbon 20. In this case, the first pattern P1 and the second pattern P2 coexist in the ink layer 22 of the outer ink ribbon 20A, effectively disrupting the first pattern P1.
[0058] On the other hand, after peeling off the outer ink ribbon 20A, the ink layer 22 of the inner ink ribbon 20B remaining on the wound ink ribbon 20 side has ink-free portions 22b of the first pattern P1 transferred by the first transfer device 14 formed therein, and at the same time, the support layer 21 of the inner ink ribbon 20B has the second pattern P2 transferred by the second transfer device 15 formed therein.
[0059] Because the second pattern P2 has block bodies 33 including the second letter or number 32 and the blank third letter or number 33b, the block bodies 33 of the second pattern P2 also include the blank third letter or number 33b. While the ink-missing portions 22b of the first letter or number 100a constituting the first pattern P1 remain in the block bodies 33, the block bodies 33 also include the blank third letter or number 33b. As a result, the ink-missing portions 22b and the third letter or number 33b coexist, and the third letter or number 33b of the block bodies 33 effectively disrupts the first letter or number 100a constituting the first pattern P1.
[0060] When the second pattern P2 has block bodies 33 including a second letter or number 32 and a white-out third letter or number 33b as shown in Fig. 7(c), Fig. 8A shows the ink layer 22 of the outer ink ribbon 20A peeled from the wound ink ribbon 20. As shown in Fig. 8A, the first letter or number 100a constituting the first pattern P1 remaining in the ink layer 22 of the outer ink ribbon 20A is mixed with the third letter or number 33b of the block bodies 33 of the second pattern P2.
[0061] On the other hand, after peeling off the outer ink ribbon 20A, a block body 33 including a white third letter or third number 33b of the second pattern P2 is transferred to the support layer 21 of the inner ink ribbon 20B remaining on the wound-up ink ribbon 20 side (see Figure 8B).
[0062] As described above, the ink ribbon 20 that transfers the first character or first number 100a to the transfer target has dense areas 25 of the first character or first number 100a of the first pattern P1 formed on both sides of the width, and a sparse area 26 of the first character or first number 100a formed in the center of the width of the ink ribbon 20 (see Figure 7(c) and Figure 13A).
[0063] In this embodiment, as shown in Figure 7(c), the second letter or number 32 of the second pattern P2 is also arranged to form dense areas 35 and sparse areas 36 along the width direction of the ink ribbon 20, corresponding to the dense areas 25 and sparse areas 26 of the first letter or number 100a of the first pattern P1 formed on the ink ribbon 20.
[0064] Similarly, the blocks 33 of the second pattern P2 are arranged in the width direction of the ink ribbon 20 so as to form dense regions 35 and sparse regions 36.
[0065] The second pattern P2 shown in Figure 7(d) has a second letter or number 32 and block bodies 33 including block body bodies 33a and a third letter or number 33b in white. When the second pattern P2 has the second letter or number 32 and block bodies 33 including block body bodies 33a and a third letter or number 33b in white, consider transferring the ink in the ink layer 22 of the outer ink ribbon 20A of the ink ribbon 20 to the support layer 21 of the inner ink ribbon 20B in the second pattern P2, and then peeling the outer ink ribbon 20A from the wound ink ribbon 20. In this case, the first pattern P1 and the second pattern P2 coexist in the ink layer 22 of the outer ink ribbon 20A, effectively disrupting the first pattern P1.
[0066] On the other hand, after peeling off the outer ink ribbon 20A, the ink layer 22 of the inner ink ribbon 20B remaining on the wound ink ribbon 20 side has ink-free portions 22b of the first pattern P1 transferred by the first transfer device 14 formed therein, and at the same time, the support layer 21 of the inner ink ribbon 20B has the second pattern P2 transferred by the second transfer device 15 formed therein.
[0067] Because the second pattern P2 has block bodies 33 including the second letter or number 32 and the blank third letter or number 33b, the block bodies 33 of the second pattern P2 include the blank third letter or number 33b. While the ink-free portions 22b of the first letter or number 100a constituting the first pattern P1 remain in the block bodies 33, the block bodies 33 also include the blank third letter or number 33b. Therefore, the first letter or number 100a constituting the first pattern P1 can be effectively disrupted by the blank third letter or number 33b of the block bodies 33.
[0068] As described above, the ink ribbon 20 that transfers the first character or first number 100a to the transfer target has dense areas 25 of the first character or first number 100a of the first pattern P1 formed on both sides of the width, and a sparse area 26 of the first character or first number 100a formed in the center of the width of the ink ribbon 20.
[0069] In this embodiment, as shown in Figure 7(d), the second letter or number 32 of the second pattern P2 is also arranged to form dense areas 35 and sparse areas 36 along the width direction of the ink ribbon 20, corresponding to the dense areas 25 and sparse areas 26 of the first letter or number 100a of the first pattern P1 formed on the ink ribbon 20.
[0070] Similarly, the block bodies 33 of the second pattern P2 are uniformly dispersed along the width direction of the ink ribbon 20, regardless of the dense regions 25 and sparse regions 26 of the first letter or first number 100a of the first pattern P1 (see Figure 7(d) and Figure 13B).
[0071] In Figure 7(d), the block bodies 33 of the second pattern P2 consist of solid printed black characters, and the block bodies 33 are formed by applying large energy to the ink ribbon 20 from the second heating body (heating head) 15a of the second transfer device 15.
[0072] 7(d), by distributing the block bodies 33 of the second pattern P2 uniformly across the width of the ink ribbon 20, it is possible to apply energy uniformly from the second heater 15a to the ink ribbon 20. This allows the ink ribbon 20 to be wound up flat and in a balanced manner without creating any convex shapes on the ink ribbon 20, particularly on the boundaries 28 between the dense regions 25 and sparse regions 26 of the ink ribbon 20.
[0073] Specifically, as shown in FIG. 9(a), when energy is applied to the ink ribbon 20 from the second heater (heating head) 15a of the second transfer device 15, if more block elements 33 of the second pattern P2 are arranged in the dense region 35 of the ink ribbon 20 but fewer are arranged in the sparse region 36, the energy applied to the ink ribbon 20 from the second heater 15a becomes uneven. When the energy applied to the ink ribbon 20 becomes uneven in this way, some parts of the ink ribbon 20 stretch due to heating and some parts do not stretch due to not being heated. The resulting stretched and unstretched portions of the ink ribbon 20 form a convex shape on the ink ribbon 20, particularly at the boundary 28 between the dense region 25 and the sparse region 26 of the ink ribbon 20 (see FIG. 9(b)). This causes the second pattern P2 transferred from the outer ink ribbon 20A to the inner ink ribbon 20B to become slightly blurred.
[0074] In contrast, by arranging the block bodies 33 of the second pattern P2 uniformly across the width of the ink ribbon 20, there is no bias in the energy applied from the second heater 15a to the ink ribbon 20. This prevents the ink ribbon 20 from having a convex shape, particularly at the boundary 28 between the dense region 25 and the sparse region 26 of the ink ribbon 20, and allows the ink ribbon 20 to be wound up flat and in a balanced manner.
[0075] In this way, no convex shape is formed on the wound ink ribbon 20, and the second heating element 15a does not come into contact with the wound ink ribbon 20 on one side. This allows the second pattern P2 to be transferred onto the ink ribbon 20 clearly and sharply by the second heating element 15a.
[0076] 10 is a diagram showing the generation of ribbon wrinkles in the width direction of the ink ribbon 20. As shown in Fig. 10, by distributing the block bodies 33 of the second pattern P2 in the width direction of the ink ribbon 20, it is possible to flatten the convex shape that would occur if the block bodies 33 were not distributed.
[0077] Next, FIGS. 11A and 11B show the results of observing the appearance of the outer ink ribbon 20A peeled from the wound ink ribbon 20 and the inner ink ribbon 20B remaining on the wound ink ribbon 20 side.
[0078] As shown in Figure 11A, regarding the appearance of the inner ink ribbon 20B, when the energy ratio (Duty) from the second heating element (heating head) 15a is set to the rated maximum value of 47.2% and the head pressure of the second heating element 15a is set to the rated maximum value of 1300 g / head, and when the energy ratio (Duty) is set to the rated maximum value of 47.2% and the head pressure of the second heating element 15a is set to 1000 g / head, there is no uneven contact with the head at either the start (START) or end (END) of the ink ribbon, and ink can be transferred smoothly without energy shortages.
[0079] As shown in Figure 11B, with regard to the appearance of the outer ink ribbon 20A, when the energy ratio (Duty) from the second heating element (heating head) 15a is set to the rated maximum of 47.2% and the head pressure of the second heating element 15a is set to the rated maximum of 1300 g / head, when the energy ratio (Duty) is set to the rated maximum of 47.2% and the head pressure of the second heating element 15a is set to 1000 g / head, when the energy (Duty) is set to 44.5% and the head pressure is set to the rated maximum of 1300 g / head, and when the energy (Duty) is set to 41.5% and the head pressure is set to the rated maximum of 1300 g / head, ink can be transferred smoothly without uneven contact with the head at either the start (START) or end (END) of the ink ribbon and without energy shortages.
[0080] From the above, when the energy ratio (duty) of the second heating element (heating head) 15a is set to the rated maximum value of 47.2% and the head pressure of the second heating element 15a is set to the range of 10 / 13 to 1 relative to the rated maximum value of 1300 g / head, the second heating element 15a can properly transfer the second pattern P2 onto the ink ribbon 20. In this case, when the outer ink ribbon 20A is peeled from the wound ink ribbon 20 and this outer ink ribbon 20A and the inner ink ribbon 20B remaining on the wound ink ribbon 20 side are observed, the second pattern P2 can be properly transferred onto the ink ribbon 20 at both the start and end of the winding of the ink ribbon 20, and this allows the first pattern P1 to be reliably disturbed by the second pattern P2.
[0081] Next, the head pressure of the second heating element 15a against the ink ribbon 20 will be described with reference to FIGS. 12A and 12B.
[0082] When the wound ink ribbon 20 is heated by the second heating element (heating head) 15a to transfer the second pattern P2, one end 15a1 of the second heating element 15a is located at an end of the ink ribbon 20 in the width direction, and the other end 15a2 of the second heating element 15a is located midway in the width direction of the ink ribbon 20. In this case, if a force of 500 g is applied to the ink ribbon 20 from each of the one end 15a1 and the other end 15a2 of the second heating element 15a, and a force of 300 g is applied to the ink ribbon 20 from the central portion 15a3 of the second heating element 15a (see FIG. 12A), a large force will be applied to the swollen ink ribbon 20 from the other end 15a2 of the second heating element 15a, which is located midway along the ink ribbon 20, and it is possible that the ink ribbon 20 will be scratched or damaged.
[0083] In contrast, when a force of 500 g is applied to the ink ribbon 20 from one end 15a1 and the central portion 15a3 of the second heating element 15a, respectively, and a force of 300 g is applied to the ink ribbon 20 from the other end 15a2 of the second heating element 15a (see Figure 12B), no large force is applied to the swollen ink ribbon 20 from the other end 15a2 of the second heating element 15a, and the ink ribbon 20 is not scratched or damaged.
[0084] Next, the operation of this embodiment configured as described above will be described with reference to Figure 1. Here, the first transfer device 14 of the thermal transfer system 10 prints a first pattern P1 including ID information on the transfer recipient 100, and then the ink 22a of the ink layer 22 of the outer ink ribbon 20A, to which the ink has already been transferred, is transferred in a second pattern P2 onto the support layer 21 of the inner ink ribbon 20B by the second heating element 15a.
[0085] First, the transfer receiving material 100 is prepared, and then the transfer receiving material 100 is transported toward the first transfer device 14. Meanwhile, as shown in FIG. 1, the ink ribbon 20 is sent out from the sending section 11 toward the first transfer device 14.
[0086] When the transfer recipient 100 reaches between the first heating member 14a and the platen roller 14b of the first transfer device 14, the first heating member 14a presses the ink ribbon 20 against the transfer recipient 100 while heating it in a first pattern P1 corresponding to the ID information. This causes the ink 22a in the ink layer 22 of the ink ribbon 20 to be transferred onto the transfer recipient 100 in the first pattern P1 (first transfer step). This prints the ID information on the transfer recipient 100, and also forms ink-free portions 22b corresponding to the ID information in the ink layer 22 of the ink ribbon 20.
[0087] After passing through the first transfer device 14, the ink ribbon 20 on which the ink has been transferred is taken up by the take-up unit 12. Then, while the ink ribbon 20 on which the ink has been transferred is being taken up by the take-up unit 12, the outer ink ribbon 20A is heated in the second pattern P2 by the second heating element 15a (second transfer process).
[0088] In this case, the second heating element 15a is brought into contact with the outer ink ribbon 20A from the outside (support layer 21 side) of the outer ink ribbon 20A. At this time, the outer ink ribbon 20A is heated from the outside by the second heating element 15a. As a result, part of the ink 22a remaining in the ink layer 22 of the outer ink ribbon 20A is pressed against the support layer 21 of the inner ink ribbon 20B while being heated. As a result, part of the ink 22a remaining in the ink layer 22 of the outer ink ribbon 20A is transferred onto the support layer 21 of the inner ink ribbon 20B.
[0089] In this embodiment, the outer ink ribbon 20A is heated by the second heating element 15a, and the ink 22a remaining in the ink layer 22 of the outer ink ribbon 20A is transferred to the support layer 21 of the inner ink ribbon 20B in the second pattern P2. Possible second patterns P2 in this embodiment include the patterns shown in Figure 7(c) and Figure 7(d). The patterns shown in Figures 7(a) and 7(b) are second patterns for reference purposes, in contrast to the second pattern in this embodiment.
[0090] Hereinafter, the action of transferring the ink 22a of the ink layer 22 of the outer ink ribbon 20A onto the support layer 21 of the inner ink ribbon 20B in the second pattern P2 will be described using the pattern shown in FIG. 7(d) as an example of the second pattern P2.
[0091] The second pattern P2 shown in FIG. 7(d) has a second letter or number 32, and a block body 33 including a block body main body 33a and a third letter or number 33b in white.
[0092] The ink ribbon 20 is wound onto the winding section 12 while the ink 22a of the ink layer 22 of the outer ink ribbon 20A of the ink ribbon 20 is transferred to the support layer 21 of the inner ink ribbon 20B in the second pattern P2.
[0093] Next, the ink ribbon 20 wound by the winding unit 12 is removed from the winding unit 12.
[0094] When the outer ink ribbon 20A is peeled off from the wound ink ribbon 20, the first pattern P1 and the second pattern P2 are mixed in the ink layer 22 of the outer ink ribbon 20A, and the first pattern P1 can be effectively disturbed.
[0095] On the other hand, after peeling off the outer ink ribbon 20A, the ink layer 22 of the inner ink ribbon 20B remaining on the wound ink ribbon 20 side has ink-free portions 22b of the first pattern P1 transferred by the first transfer device 14 formed therein, and at the same time, the support layer 21 of the inner ink ribbon 20B has the second pattern P2 transferred by the second transfer device 15 formed therein.
[0096] In this case, because the second pattern P2 has block bodies 33 including the second letter or number 32 and the blank third letter or number 33b, the block bodies 33 of the second pattern P2 include the blank third letter or number 33b. While the ink-free portions 22b of the first letter or number 100a constituting the first pattern P1 remain in the block bodies 33, the block bodies 33 also include the blank third letter or number 33b. Therefore, the first letter or number 100a constituting the first pattern P1 can be effectively disrupted by the blank third letter or number 33b of the block bodies 33.
[0097] In this embodiment, the second letter or number 32 of the second pattern P2 is also arranged to form dense regions 35 and sparse regions 36 along the width direction of the ink ribbon 20, corresponding to the dense regions 25 and sparse regions 26 of the first letter or number 100a of the first pattern P1 formed on the ink ribbon 20 as shown in Figures 7(d) and 12B.
[0098] At the same time, the block bodies 33 of the second pattern P2 are uniformly dispersed and arranged along the width direction of the ink ribbon 20, regardless of the dense and sparse areas of the first letter or first number 100a of the first pattern P1.
[0099] In Figures 7(d) and 12B, the block bodies 33 of the second pattern P2 consist of solid printed black characters, and the block bodies 33 are formed by applying large energy to the ink ribbon 20 from the second heating body (heating head) 15a of the second transfer device 15.
[0100] 7(d) and 12B, by distributing the block bodies 33 of the second pattern P2 uniformly across the width of the ink ribbon 20, it is possible to apply energy uniformly from the second heater 15a to the ink ribbon 20. This allows the ink ribbon 20 to be wound up flat and in a balanced manner without creating a convex shape on the ink ribbon 20, particularly on the boundary 28 between the dense region 25 and the sparse region 26 of the ink ribbon 20.
[0101] As described above, according to this embodiment, when the outer ink ribbon 20A is peeled off from the ink ribbon 20 wound by the winding section 12, the first pattern P1 and the second pattern P2 are mixed in the ink layer 22 of the outer ink ribbon 20A, and the first pattern P1 can be effectively disturbed by the second pattern P2 on the outer ink ribbon 20A.
[0102] On the other hand, even in the inner ink ribbon 20B remaining on the wound ink ribbon 20 side after the outer ink ribbon 20A is peeled off, the first letter or first number 100a constituting the first pattern P1 can be effectively disturbed by the block body 33 including the second letter or second number 32 of the second pattern P2 and the blank third letter or third number 33b.
[0103] Furthermore, by distributing the block bodies 33 of the second pattern P2 uniformly across the width of the ink ribbon 20, it is possible to apply energy from the second heater 15a uniformly across the width of the ink ribbon 20. This prevents the ink ribbon 20 from having a convex shape, particularly at the boundary 28 between the dense region 25 and the sparse region 26 of the ink ribbon 20, and allows the ink ribbon 20 to be wound up flat and in a balanced manner.
[0104] Furthermore, since no convex shape is created on the ink ribbon 20, the second heating element 15a does not make uneven contact with the ink ribbon 20, and the outer ink ribbon 20A can be effectively heated by the second heating element 15a. As a result, the ink 22a of the ink layer 22 of the outer ink ribbon 20A can be reliably and clearly transferred in the second pattern P2 by the second heating element 15a to the support layer 21 side of the inner ink ribbon 20B.
[0105] Although an example of an embodiment of the present invention has been described above, the present disclosure is not limited to the above-described embodiment, and various modifications can be made within the scope of the claims. [Explanation of symbols]
[0106] 10 Thermal Transfer System 11 Transmission section 12 Winding section 13a Outlet guide roller 13b Winding side guide roller 14 First transcription device 14a 1st heating element 14b Platen roller 15 Second transcription device 15a Second heating element 15a1 One end 15a2 other end 15a3 central part 15b Lifting mechanism 17 Control Unit 20 Ink ribbon 21 Support layer 22 ink layer 22a Ink 22b Ink missing area 20A outer ink ribbon 20B inner ink ribbon 25 dense area 26 Coarse area 27 Boundary 32 Second letter or number 33 Block Letters 33A solid print block letters 33a Block body 33b Third letter or number 35 dense area 36 Coarse area 100 Transferred object 100a First letter or number 100b face image 105 Dense area 106 Coarse area P1 First pattern P2 2nd pattern
Claims
1. A thermal transfer system for transferring ink to a transfer target using an ink ribbon having a support layer and an ink layer, a delivery section that delivers the ink ribbon; a first transfer device that transfers ink from the ink layer of the ink ribbon sent out from the delivery unit onto the transfer target in a first pattern; a winding unit that winds up the ink ribbon onto which the first pattern has been transferred; a second transfer device that transfers, in a second pattern, ink from an ink layer of an outer ink ribbon, which is an ink ribbon positioned at the outermost periphery of the ink ribbons wound on the winding section, onto a support layer of an inner ink ribbon, which is an ink ribbon adjacent to the inner side of the outer ink ribbon; the first pattern includes a plurality of first letters or a plurality of first numbers; the second pattern includes a plurality of second letters or numbers and a plurality of block characters, and any of the block characters includes a third letter or number in white; the first letter or the first number constituting the first pattern and the third letter or the third number in block letters constituting the second pattern remaining in the ink layer of the outer ink ribbon are mixed in the ink layer; Thermal transfer system.
2. 2. The thermal transfer system of claim 1, wherein the second letters or the second numbers of the second pattern form dense regions and sparse regions along the width direction of the ink ribbon, and the blocks of the second pattern are uniformly distributed along the width direction of the ink ribbon.
3. 3. The thermal transfer system of claim 1, wherein the block includes a single, white third letter or number.
4. 4. The thermal transfer system according to claim 1, wherein the shape of the third letter or the third number in the block letters has an outer shape substantially similar to the shape of the first letter or the first number in the corresponding first pattern.
5. the second transfer device has a heating head extending in the width direction of the ink ribbon, 5. A thermal transfer system as described in any one of claims 1 to 4, wherein the heating head transfers the ink of the ink layer of the outer ink ribbon to the support layer of the inner ink ribbon using a rated maximum applied energy ratio and a head pressure in the range of 10 / 13 to 1 relative to the rated maximum head pressure.
6. the second transfer device has a heating head extending in the width direction of the ink ribbon, 5. A thermal transfer system according to claim 1, wherein one widthwise end of the heating head is located at an end of the ink ribbon in the widthwise direction, the other widthwise end of the heating head is located midway along the ink ribbon in the widthwise direction, and the head pressure of the heating head is smaller at the other end of the heating head than at the one end and the central portion of the heating head.
Citation Information
Patent Citations
Thermal transfer recorder
JP1985147372A
Thermal transfer system or thermal transfer method, and winding device or winding method
JP2011255564A
Printer
JP2012035569A
Thermal transfer system, thermal transfer method, winding device, and winding method
JP2013111866A
Printer
JP2015174244A