Transferred film and method for manufacturing the transferred film
The transparent film laminated over ink layers in a transferred film structure refracts light to minimize visibility of edge colors, addressing the issue of hidden ink layer observation in multi-color transferred films.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BROTHER KOGYO KK
- Filing Date
- 2022-08-05
- Publication Date
- 2026-07-23
AI Technical Summary
Existing transferred films with multiple ink layers of different colors suffer from the issue of edge colors of the hidden ink layers being observable due to the surface ink layer, leading to undesirable visibility effects.
A transferred film structure where a transparent film is laminated over a laminate of two ink layers of different colors, with the ink layers being transferred using an ink ribbon, allowing light refraction to minimize the visibility of edge colors when viewed from oblique or lateral directions.
The transparent film refracts light, effectively suppressing the observation of edge colors of the ink layers, ensuring clear visibility of the intended ink colors.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This disclosure relates to a transferred film having a transfer layer recorded on it, which includes at least two ink layers of different colors, and a method for producing the same. [Background technology]
[0002] Patent Document 1 discloses a transfer sheet printing apparatus comprising: a supply unit for a first sheet having a dissolving layer and a sealing layer laminated on a base sheet; a printing means for printing figures and / or characters on the surface of the sealing layer of the supplied first sheet; a supply unit for a second sheet having an adhesive layer and a release sheet laminated on a cover sheet; a peeling means for peeling the release sheet to which the adhesive layer is attached from the cover sheet of the supplied second sheet; and a bonding means for aligning the surface of the release sheet peeled off by the peeling means, on which the adhesive layer is formed, with the printed surface of the first sheet and bonding them together via the adhesive layer. [Prior art documents] [Patent Documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 11-170663 [Overview of the project] [Problems that the invention aims to solve]
[0004] One embodiment of the present disclosure provides a transferred film and a method for manufacturing the same, which can suppress the observation of edge colors of ink layers hidden by the surface ink layer in a transferred film on which a transfer layer comprising a laminate of at least two ink layers of different colors is recorded. [Means for solving the problem]
[0005] The transferred film according to an embodiment of the present disclosure is a transferred film in which a transparent film, a laminate of a first ink layer and a second ink layer having a color different from that of the first ink layer, and a base material layer are laminated in this order, and the first ink layer and the second ink layer are transfer layers transferred with an ink ribbon including the laminate of the first ink layer and the second ink layer.
Effect of the Invention
[0006] According to the transferred film according to an embodiment of the present disclosure, the laminate of the first ink layer and the second ink layer is covered with a transparent film. Thereby, the light incident on the laminate of the ink layers through the transparent film can be refracted by the transparent film. As a result, when observing the ink layer (surface-side ink layer) close to the transparent film among the laminates of the ink layers through the transparent film from an oblique direction or a lateral direction, it is possible to suppress the observation of the end color of the ink layer hidden by the surface-side ink layer.
Brief Description of the Drawings
[0007] [Figure 1] FIG. 1 is a diagram schematically showing the structure of a printing apparatus according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a block diagram showing the electrical configuration of the printing apparatus. [Figure 3] FIG. 3 is a schematic diagram for explaining the heating process and the cooling process of the printing apparatus. [Figure 4] FIGS. 4A and 4B are schematic diagrams for explaining the cooling process and the transfer process of the printing apparatus. [Figure 5A] FIG. 5A is a schematic cross-sectional view showing the layer configuration of a transferred tape according to an embodiment of the present disclosure. [Figure 5B] FIG. 5B is a schematic cross-sectional view showing the layer configuration of a transferred tape according to an embodiment of the present disclosure. [Figure 5C] FIG. 5C is a schematic cross-sectional view showing the layer configuration of a transferred tape according to an embodiment of the present disclosure. [Figure 6]Figures 6A and 6B show examples of print patterns produced by the printing device. [Figure 7] Figure 7 is a diagram illustrating the refraction of light in the transferred tape shown in Figure 5A. [Figure 8] Figure 8 is a diagram illustrating the refraction of light in the transferred tape shown in Figure 5B. [Figure 9] Figure 9 is a diagram illustrating the evaluation method for oblique observation. [Modes for carrying out the invention]
[0008] Next, embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. In the following detailed description, there are multiple components with ordinal names, but these ordinal numbers do not necessarily correspond to the ordinal numbers of the components described in the claims. [Overall configuration of printing device 1] Figure 1 is a schematic diagram showing the structure of a printing apparatus 1 according to one embodiment of the present disclosure.
[0009] Referring to Figure 1, the printing device 1 is a thermal transfer thermal printer that thermally transfers ink from an ink ribbon 3, an example of a thermal transfer recording medium, as characters onto a printer tape 2, an example of a printing medium. In this embodiment, the printer tape 2 is, for example, a transparent base film onto which the ink is directly transferred. Here, "transparent" of the printer tape 2 may be defined as having a degree of transparency such that the shape and color of the characters transferred to the printer tape 2 can be recognized from the opposite side of the transfer surface (printed surface).
[0010] The characters recorded on the printer tape 2 may include, for example, typical characters, symbols such as barcodes and QR codes (registered trademarks), numbers, figures, patterns, etc. The printing device 1 according to this embodiment can record characters of different colors (for example, two colors, black and red) on the printer tape 2.
[0011] The printing apparatus 1 mainly includes a housing 4, a tape cassette 5 housed inside the housing 4, a thermal head 6, a platen roller 7, a nip roller 71, and a control board 8.
[0012] The housing 4 may be a box-shaped member made of, for example, a plastic case. An outlet 9 for removing the printer tape 2 after printing is formed in the outer wall of the housing 4. A cutter (not shown) may be provided near the outlet 9. By cutting with the cutter, the printer tape 2 can be separated and removed into labels of the size required for each unit of use.
[0013] The tape cassette 5 may be a detachable cartridge attached to the housing 4. The tape cassette 5 may contain, in order from upstream to downstream in the tape transport direction D1 (from right to left in Figure 1), a printer tape roll 10 (or label tape roll), an ink ribbon roll 12, an ink ribbon release member 13, an ink ribbon winding roll 14, a lamination roller 72, and a lamination film roll 73. In this embodiment, the printer tape roll 10, ink ribbon roll 12, lamination roller 72, and lamination film roll 73 are of a type that are used while housed in the tape cassette 5, but they may also be of a type that are directly attached to the printing device 1 for use.
[0014] The printer tape roll 10 is made by winding the printer tape 2 into a cylindrical shape and is rotatably held in, for example, the tape cassette 5.
[0015] The ink ribbon roll 12 is made by winding the ink ribbon 3 into a cylindrical shape and is rotatably held in, for example, a tape cassette 5. A ribbon drive shaft 18 provided in the housing 4 is inserted into the ink ribbon winding roll 14. The rotational force R1 generated by driving the ribbon drive shaft 18 is transmitted to the ink ribbon winding roll 14, causing the ink ribbon winding roll 14 to rotate.
[0016] The ink ribbon release member 13 may be a guide member that changes the transport direction D2 of the ink ribbon 3. The ink ribbon release member 13 may have a shape that can contact the ink ribbon 3 while it is being transported, for example, a roller shape or a blade shape. The ink ribbon 3 is partially heat-pressed onto the printer tape 2 by the thermal head 6 and transported together with the printer tape 2 toward the outlet 9. The ink ribbon release member 13 contacts the ink ribbon 3 during transport and changes the transport direction D2 of the ink ribbon 3 at a sharp angle with respect to the transport direction D1 of the printer tape 2. As a result, the printer tape 2 and the ink ribbon 3 are pulled apart, and the ink ribbon 3 is peeled off from the printer tape 2.
[0017] The bonding roller 72 can, for example, have a bonding roller drive shaft 75, provided in the housing 4, into which it can be inserted. The rotational force R4 generated by the driving of the bonding roller drive shaft 75 is transmitted to the bonding roller 72, causing the bonding roller 72 to rotate. As shown in Figure 1, the bonding roller 72 is provided inside the tape cassette 5, and a portion of it is exposed in the transport path of the printer tape 2. This allows the printer tape 2 to be transported sandwiched between the bonding roller 72 and the nip roller 71 when the tape cassette 5 is installed.
[0018] The laminated film roll 73 is made by winding the laminated tape 76 into a cylindrical shape and is rotatably held in, for example, the tape cassette 5.
[0019] The thermal head 6 is positioned between the printer tape roll 10 and the ink ribbon roll 12 and the ink ribbon release member 13 in the transport direction D1 of the printer tape 2. The thermal head 6 includes a substrate 19 and a heating element 20 (e.g., a heating resistor) formed on the substrate 19. The Joule heat generated by energizing the heating element 20 is used for the thermal transfer of the ink from the ink ribbon 3.
[0020] For example, a platen drive shaft 21 provided in the housing 4 is inserted into the platen roller 7. The rotational force R2 generated by the drive of the platen drive shaft 21 is transmitted to the platen roller 7, causing the platen roller 7 to rotate.
[0021] The nip roller 71 has, for example, a nip roller drive shaft 74, which is provided in the housing 4, inserted into it. The rotational force R3 generated by the driving of the nip roller drive shaft 74 is transmitted to the nip roller 71, causing the nip roller 71 to rotate.
[0022] The control board 8 is an electronic device that performs electrical control of the printing device 1 and is installed inside the housing 4.
[0023] [Electrical configuration of printing device 1] Figure 2 is a block diagram showing the electrical configuration of the printing device 1.
[0024] Referring to Figure 2, the control board 8 of the printing apparatus 1 is provided with a control circuit 22. The control circuit 22 may include a CPU 23, ROM 24, memory 25, RAM 26, and an input / output I / F 27 (interface). These are electrically connected, for example, via a data bus (not shown).
[0025] ROM 24 stores various programs for driving the printing device 1 (for example, control programs that execute each process shown in Figures 3 and 4A,B). The CPU 23 controls the printing device 1 overall by executing signal processing according to the programs stored in ROM 24 while utilizing the temporary storage function of RAM 26. Memory 25 may be composed of, for example, a part of the storage area of ROM 24. Memory 25 may have a table pre-stored in it for displaying the remaining amount (consumption) of the ink ribbon 3 on the display unit (not shown) of the housing 4.
[0026] The input / output interface 27 is electrically connected to a first drive circuit 28 and a second drive circuit 29. The first drive circuit 28 controls the energization of the heating element 20 of the thermal head 6. The second drive circuit 29 controls the drive motor 30 that rotates the ink ribbon winding roll 14, platen roller 7, nip roller 71, and bonding roller 72 by outputting drive pulses.
[0027] [Flow of the printing process using printing device 1] Figure 3 is a schematic diagram illustrating the heating and cooling processes of the printing apparatus 1. Figures 4A and 4B are schematic diagrams illustrating the cooling and transfer processes of the printing apparatus 1. Figure 4B is an enlarged view of the main part of the transfer pattern as seen from the direction of arrow 4B in Figure 4A. The printing process by the printing apparatus 1 will be specifically explained with reference to Figures 1, 3, and 4A,B.
[0028] To print characters on the printer tape 2, the printer tape 2 is pulled out from the printer tape roll 10 by the rotational drive of the platen roller 7, and the ink ribbon 3 is pulled out from the ink ribbon roll 12 by the rotational drive of the ink ribbon winding roll 14. As a result, as shown in Figures 1 and 3, the printer tape 2 and the ink ribbon 3 are transported downstream in an overlapping state. On the printer tape 2, the side facing the ink ribbon 3 is the printing surface 31 (front), and the opposite side is the back surface 32. On the ink ribbon 3, the side facing the printer tape 2 is the adhesive surface 33 (front), and the opposite side is the back surface 34.
[0029] Referring to Figure 3, the ink ribbon 3 includes a base layer 35, a first ink layer 36, and a second ink layer 37. The first ink layer 36 and the second ink layer 37 are laminated in this order on the surface 38 of the base layer 35, which is an example of the first surface. The surface of the base layer 35 opposite to the surface 38 is the back surface 39 (the back surface 34 of the ink ribbon 3). The first ink layer 36 and the second ink layer 37 contain colorants of different colors. For example, the first ink layer 36 may contain a black colorant and the second ink layer 37 may contain a red colorant.
[0030] The ink ribbon 3 is transported toward the thermal head 6 with the second ink layer 37 and the printer tape 2 in contact. In the thermal head 6, a heating process is performed as shown in Figure 3. Specifically, by pressing the heating element 20, which is heated by the application of electricity, against the ink ribbon 3, this heat is transferred to the first ink layer 36 and the second ink layer 37 via the base layer 35. The laminate of the ink ribbon 3 and the printer tape 2 is sandwiched between the thermal head 6 and the platen roller 7, and is transported downstream while being heated by the thermal head 6.
[0031] The heating element 20 may be controlled to the same temperature overall, or it may be controlled to different temperatures in parts. For example, as shown in Figure 3, the first part 40 of the heating element 20 may be controlled to a relatively low first heating temperature, and the second part 41 of the heating element 20 may be controlled to a second heating temperature higher than the first heating temperature. The first heating temperature may be controlled by applying a relatively low first energy amount to the thermal head 6, and the second heating temperature may be controlled by applying a second energy amount relatively higher than the first energy amount to the thermal head 6.
[0032] The first heating temperature is, for example, 60°C to 120°C, preferably 70°C to 90°C. The second heating temperature is, for example, 80°C to 180°C, preferably 130°C to 150°C. The first and second energy amounts should be set according to the specifications of the printing apparatus 1 so that the thermal head 6 is heated to the first and second heating temperatures, respectively. For example, in a printing apparatus 1 where the applied energy amount can be directly set by a voltage value, a voltage value can be set, or in a printing apparatus 1 where the applied energy amount can be increased or decreased by adjusting the energy amount in multiple stages, the energy amount of the appropriate stage should be set.
[0033] As a result, the ink ribbon 3 may include a first portion 42 heated at a first heat-generating temperature and a second portion 43 heated at a second heat-generating temperature. In the first portion 42 and the second portion 43 of the ink ribbon 3, at least part or all of the first ink layer 36 and the second ink layer 37 melt or soften and adhere to the printer tape 2.
[0034] Referring to Figures 3 and 4A,B, a cooling process is performed in the section between the thermal head 6 and the ink ribbon release member 13. Specifically, the ink ribbon 3, which has been heat-pressed onto the printer tape 2 in the heating process, cools naturally in the section from the thermal head 6 to the ink ribbon release member 13, and its temperature decreases toward the operating environment temperature of the printing device 1.
[0035] Next, as shown in Figures 4A and 4B, the ink ribbon release member 13 selectively changes only the transport direction D2 of the ink ribbon 3, thereby applying an external force F1 to the base layer 35 and the second ink layer 37 in a direction away from each other. This separates the printer tape 2 and the ink ribbon 3, and the ink ribbon 3 is wound onto the ink ribbon winding roll 14. At this time, the first portion 42 and the second portion 43 of the ink ribbon 3, which have been heated by the thermal head 6, selectively remain on the printer tape 2, thereby performing the transfer process. For example, in the first portion 42, delamination may occur between the base layer 35 and the laminate including the first ink layer 36 and the second ink layer 37, and the laminate may be transferred. On the other hand, in the second portion 43, delamination may occur between the first ink layer 36 and the second ink layer 37, and the second ink layer 37 may be selectively transferred.
[0036] Subsequently, as shown in Figure 1, the laminating tape 76 is attached to the printer tape 2 on which the first ink layer 36 and the second ink layer 37 have been transferred. The transferred tape 55, formed by attaching the laminating tape 76 to the printer tape 2 and on which the characters are recorded, is removed from the output outlet 9 of the printing device 1. [Layer structure of transferred tape 55] Figures 5A and 5B are schematic cross-sectional views showing the layer structure of a transferred tape 55 according to one embodiment of the present disclosure. Figures 6A and 6B show an example of a printed pattern 44 by the printing apparatus 1.
[0037] Referring to Figures 5A and 5B, the transferred tape 55 can be broadly divided into two layer configurations depending on the type of printer tape 2. Figure 5A shows a transferred tape 55A that includes a printer tape 2 as a transparent base film (base tape), which is an example of a transparent film, and Figure 5B shows a transferred tape 55B that includes a printer tape 2 as an opaque base film (base tape). The layer configurations of the transferred tape 55A and the transferred tape 55B will be explained below. <Transferred Tape 55A> Referring to Figure 5A, the transferred tape 55A includes a printed material 56 containing a printer tape 2 on which a portion of the ink ribbon 3 has been transferred, and a laminated tape 76 bonded to the printed material 56. The laminated tape 76 may also be called a laminated film. Figure 5A shows a cross-section of the portion of the transferred tape 55A where the laminate of the first ink layer 36 and the second ink layer 37 has been transferred as the first transfer layer 57, and the cross-section of the portion of the transferred tape 55A where the second ink layer 37 has been selectively transferred as the second transfer layer is omitted.
[0038] In this embodiment, the transferred tape 55A is formed as a backing film that supports the first transfer layer 57. The printer tape 2 is formed as a transparent cover film that physically protects the first transfer layer 57 from the outside. Therefore, in the first transfer layer 57, the second ink layer 37 on the side closer to the printer tape 2 is the surface-side ink layer (observation-side ink layer). As indicated by the white arrow 59, a person can perceive the respective colors of the first ink layer 36 and the second ink layer 37 by the light that passes through the printer tape 2 and is reflected by the first ink layer 36 or the second ink layer 37.
[0039] A printed pattern 44 of different colors (for example, two colors recognized as black and red) is formed on the transferred tape 55A. The printed pattern 44 may have different colors for each independent character, as shown in Figure 6A, for example. In Figure 6A, when viewing the printed pattern 44 from the back side 32 of the printer tape 2, a red pattern 45 based on the second ink layer 37 may be recognized on the outermost surface of the letters "A" and "C", and a black pattern 46 based on the first ink layer 36 may be recognized on the outermost surface of "B". On the other hand, as shown in Figure 6B, the printed pattern 44 may have both a red pattern 45 and a black pattern 46 recognized for each part of each character.
[0040] Next, we will provide a more detailed explanation of the layer structure of the transferred tape 55A.
[0041] As described above, the transferred tape 55A is formed by bonding the printed material 56 and the adhesive tape 76.
[0042] The printed material 56 includes a printer tape 2 and a first transfer layer 57 selectively formed on the printing surface 31 of the printer tape 2. The first transfer layer 57 includes a second ink layer 37 and a first ink layer 36 that are sequentially laminated on the printing surface 31. (1) Printer tape 2 The printer tape 2 is not particularly limited as long as it is a transparent base film to which ink is directly transferred, and examples include resin films such as polyester, polyethylene, polypropylene, polyamide, polyimide, polycarbonate, polystyrene, and fluororesin. Of these, polyethylene terephthalate (PET) film, which is a type of polyester, is preferred from the viewpoint of mechanical strength, dimensional stability, heat treatment resistance, and cost. The printer tape 2 may be a single layer of any of the above resin films, or it may be a laminated film formed by laminating multiple of the above resin films.
[0043] The printer tape 2 may be formed from the various resin films described above, but the refractive index of the resin film may be selected based on that. For example, the refractive index of the printer tape 2 is 1.4 or higher, preferably 1.5 or higher, and more preferably 1.6 or higher. The refractive index may be measured, for example, by spectroscopic ellipsometry.
[0044] The thickness of the printer tape 2 can be arbitrarily set according to, for example, the specifications of the thermal transfer printer, the characteristics required of the printer tape 2, etc. For example, the thickness of the printer tape 2 is 1 μm or more, preferably 2 μm or more, and more preferably 5 μm or more. For example, the thickness of the printer tape 2 is 30 μm or less, preferably 15 μm or less, and more preferably 10 μm or less. For example, the thickness of the printer tape 2 is 1 μm or more and 30 μm or less, preferably 2 μm or more and 15 μm or less, and more preferably 5 μm or more and 10 μm or less.
[0045] If the thickness of the printer tape 2 is within this range, it is possible to impart appropriate flexibility to the transferred tape 55A while also achieving sufficient mechanical strength and elasticity. If the flexibility of the transferred tape 55A is important, the printer tape 2 may be thinner than the above range. This allows the transferred tape 55A to be properly adhered to complex curved surfaces. On the other hand, if the mechanical strength and elasticity of the transferred tape 55A are important, the printer tape 2 may be thicker than the above range. This suppresses the occurrence of wrinkles in the printer tape 2 during transport in the printing device 1 or when bonding the bonding tapes 76. Furthermore, it is preferable that the thickness of the printer tape 2 is greater than the thickness of the second ink layer 37, which will be described later.
[0046] The printer tape 2 may be an unstretched film that has not undergone stretching during the manufacturing process, or it may be a stretched film that has undergone stretching such as uniaxial stretching or biaxial stretching. Furthermore, the surface of the printer tape 2 (printing surface 31 and back surface 32) may be finished with a glossy finish, a matte finish, or other surface finishing processes. Additionally, a primer layer to improve printability on the printer tape 2, an overcoat layer to adjust friction, and a silicone-based release layer to protect the surface of the printer tape 2 before use may be formed separately. Conceptually, these layers may be part of the printer tape 2.
[0047] As a numerical value representing the transparency of the printer tape 2, for example, the total light transmittance measured in accordance with JIS K 7361 may be used. The total light transmittance of the printer tape 2 is, for example, 80% or more, and preferably 85% or more. The total light transmittance of the printer tape 2 can be measured, for example, using a haze meter. (2) First ink layer 36 The first ink layer 36 can be formed, for example, from any thermoplastic resin. Preferably, the first ink layer 36 is formed using an epoxy resin as the thermoplastic resin. The first ink layer 36 can be formed using an epoxy resin as the thermoplastic resin, without any curing agent added (removed).
[0048] Examples of epoxy resins include bisphenol A type epoxy resin, bisphenol F type epoxy resin, phenol novolac type epoxy resin, cresol novolac type epoxy resin, alicyclic epoxy resin, hydrogenated bisphenol A type epoxy resin, hydrogenated bisphenol AD type epoxy resin, aliphatic epoxy resins such as propylene glycol glycoxy ether and pentaerythritol polyglycidyl ether, epoxy resins obtained from aliphatic or aromatic amines and epichlorohydrin, epoxy resins obtained from aliphatic or aromatic carboxylic acids and epichlorohydrin, heterocyclic epoxy resins, spiroring-containing epoxy resins, epoxy-modified resins, and brominated epoxy resins. Specific examples of epoxy resins are not particularly limited, but examples include the following various epoxy resins. These epoxy resins can be used individually or in combination of two or more types.
[0049] Among the JER (registered trademark) series epoxy resins manufactured by Mitsubishi Chemical Corporation, the basic solid types are 1001 [softening point (ring and ball method): 64°C, number average molecular weight Mn: about 900], 1002 [softening point (ring and ball method): 78°C, number average molecular weight Mn: about 1200], 1003 [softening point (ring and ball method): 78°C, number average molecular weight Mn: about 1200], Softening point (ring and ball method): 89℃, number average molecular weight Mn: approx. 1300], 1055 [softening point (ring and ball method): 93℃, number average molecular weight Mn: approx. 160 0], 1004 [Softening point (ring and ball method): 97℃, number average molecular weight Mn: about 1650], 1004AF [Softening point (ring and ball method): 97℃, number average Molecular weight Mn: about 1650], 1007 [softening point (ring and ball method): 128℃, number average molecular weight Mn: about 2900], 1009 [softening point (ring and ball method) method): 144℃, number average molecular weight Mn: approximately 3800], 1010 [number average molecular weight Mn: approximately 5500], 1003F [softening point (ring and ball method): 96℃], 1004F [Softening point (ring and ball method): 103℃], 1005F, 1009F [Softening point (ring and ball method): 144℃], 1004FS [Softening point (ring and ball method): 100℃], 1006FS [Softening point (ring and ball method): 112℃], 1007FS [Softening point (ring and ball method): 124℃].
[0050] The softening point of the epoxy resin used in the first ink layer 36 is, for example, 95°C or higher, preferably 110°C or higher, and more preferably 125°C or higher. If the softening point is within this range, it is possible to suppress the occurrence of high adhesion between the first ink layer 36 and the substrate layer 35 (see Figures 3 and 4A,B) at relatively low temperatures during low-temperature transfer. Since the low-temperature transfer range of the first ink layer 36 can be sufficiently extended to the high-temperature side, it is possible to suppress color blurring even when continuous thermal transfer recording is performed.
[0051] The first ink layer 36 may contain an adhesive in addition to the epoxy resin. Examples of adhesives include rubber-based adhesives, acrylic-based adhesives, silicone-based adhesives, vinyl alkyl ether-based adhesives, polyvinyl alcohol-based adhesives, polyvinylpyrrolidone-based adhesives, polyacrylamide-based adhesives, and cellulose-based adhesives.
[0052] Considering the need to improve affinity and compatibility with epoxy resins, acrylic adhesives are preferred as the adhesive. Specific examples of acrylic adhesives are not particularly limited, but include the following various acrylic adhesives. These acrylic adhesives can be used individually or in combination of two or more.
[0053] Among the Olivine® BPS (solvent-based) series manufactured by Toyo Chem Co., Ltd., BPS1109 (non-volatile content: 39.5% by mass), BPS3156D (non-volatile content: 34% by mass), BPS4429-4 (non-volatile content: 45% by mass), BPS4849-40 (non-volatile content: 40% by mass), BPS5160 (non-volatile content: 33% by mass), BPS5213K (non-volatile content: 35% by mass), BPS5215K (non-volatile content: 39% by mass), BPS5227-1 (non-volatile content: 41.5% by mass), BPS5296 (non-volatile content: 37% by mass), BPS5330 (non-volatile content: 40% by mass), BPS5375 (non-volatile content: 45% by mass), BPS5448 (non-volatile content: 40% by mass), BPS5513 (non-volatile content: 44.5% by mass), BPS55 65K (non-volatile content: 45% by mass), BPS5669K (non-volatile content: 46% by mass), BPS5762K (non-volatile content: 45.5% by mass), BPS5896 (non-volatile content: 37% by mass), BPS5978 (non-volatile content: 35% by mass), BPS6074HTF (non-volatile content: 52% by mass), BPS6080TFK (non-volatile content: 45% by mass), BPS6130TF (non-volatile content) BPS6153K (non-volatile content: 45.5% by mass), BPS6163 (non-volatile content: 37% by mass), BPS6231 (non-volatile content: 56% by mass), BPS6421 (non-volatile content: 47% by mass), BPS6430 (non-volatile content: 33% by mass), BPS6574 (non-volatile content: 57% by mass), BPS8170 (non-volatile content: 36.5% by mass), BPS HS-1 (non-volatile content: 40% by mass).
[0054] Among the solvent-based adhesives (removable type) manufactured by Lion Specialty Chemicals Co., Ltd., the following are included: AS-325 (solid content concentration: 45% by mass), AS-375 (solid content concentration: 45% by mass), AS-409 (solid content concentration: 45% by mass), AS-417 (solid content concentration: 45% by mass), AS-425 (solid content concentration: 45% by mass), AS-455 (solid content concentration: 45% by mass), AS-665 (solid content concentration: 40% by mass), AS-1107 (solid content concentration: 43% by mass), and AS-4005 (solid content concentration: 45% by mass).
[0055] The acrylic adhesive used in the first ink layer 36 may be used in combination with a tackifier. This is because, for example, it can improve the sharpness of the first ink layer 36, suppress excess peeling, and improve the clarity of the recorded characters. Examples of tackifiers include ester gum, terpene phenol resin, rosin ester, etc. There are no particular limitations on specific examples of tackifiers, but examples include the following various tackifiers. These tackifiers can be used alone or in combination of two or more.
[0056] Among the terpene phenol resins of the YS Polystar series manufactured by Yasuhara Chemical Co., Ltd., U130 (softening point: 130±5℃), U115 (softening point: 115±5℃), T160 (softening point: 160±5℃), T145 (softening point: 145±5℃), T130 (softening point: 130±5℃), T115 (softening point: 115± 5℃), T100 (softening point: 100±5℃), T80 (softening point: 80±5℃), S145 (softening point: 145±5℃), G150 (softening point: 150±5℃) , G125 (softening point: 125±5℃), N125 (softening point: 125±5℃), K125 (softening point: 125±5℃), TH130 (softening point: 130±5℃).
[0057] Among the ester gums manufactured by Arakawa Chemical Co., Ltd., AA-G [softening point (ring and ball method): 82~88℃], AA-L [softening point (ring and ball method): 82~88℃], AA-V [softening point (ring and ball method): 82~95℃] , 105 [Softening point (ring and ball method): 100~110℃], AT [Viscosity: 20000~40000mPa·s], H [Softening point (ring and ball method): 68~75℃], HP [Softening point (ring and ball method): 80℃ or higher].
[0058] Among the rosin esters in the Pencel (registered trademark) series manufactured by Arakawa Chemical Industries, Ltd., GA-100 [softening point (ring-ball method): 100~110℃], AZ [softening point (ring-ball method): 95 ~105℃], C [Softening point (ring and ball method): 117~127℃], D-125 [Softening point (ring and ball method): 120~130℃], D-135 [Softening Point (ring and ball method): 130~140℃], D-160 [softening point (ring and ball method): 150~165℃], KK [softening point (ring and ball method): 165℃ or higher].
[0059] The softening point of the tackifier used in the first ink layer 36 is, for example, 60°C or higher, preferably 120°C or lower. If the softening point is within this range, the first ink layer 36 can be smoothly reverse-transferred to the substrate layer 48 during high-temperature transfer. Since the high-temperature transfer range of the first ink layer 36 can be sufficiently extended to the low-temperature side, color blurring can be suppressed.
[0060] The first ink layer 36 may contain any coloring agent. As the coloring agent, one or more different coloring agents can be used, depending on the color of the first ink layer 36. For example, the coloring agent may be a pigment or a dye. Considering the opacity of the substrate, a pigment is preferred as the coloring agent used in the first ink layer 36. In the transferred tape 55A, the black color of the first ink layer 36 is recognized by the light that passes through the transparent printer tape 2 and the second ink layer 37 and is reflected by the first ink layer 36. In other words, by suppressing the transmission of light through the first ink layer 36, the black color of the first ink layer 36 can be well recognized through the printer tape 2 and the second ink layer 37. For example, carbon black is preferred as the pigment for coloring the first ink layer 36 black. There are no particular limitations on specific examples of carbon black, but examples include the following various carbon blacks. These carbon blacks can be used alone or in combination of two or more types.
[0061] MA77 powder manufactured by Mitsubishi Chemical Corporation [LFF, DBP absorption capacity: 68cm] 3 / 100g], MA7 powder [LFF, DBP absorption: 66cm 3 / 100g], MA7 granules [LFF, DBP absorption amount: 65cm 3 / 100g], MA8 powder [LFF, DBP absorption: 57cm 3 / 100g], MA8 granules [LFF, DBP absorption amount: 51cm 3 / 100g], MA11 powder [LFF, DBP absorption: 64cm 3 / 100g], MA100 powder [LFF, DBP absorption: 100cm3 / 100 g, MA100 granular [LFF, DBP absorption: 95 cm 3 / 100 g, MA100R powder [LFF, DBP absorption: 100 cm 3 / 100 g, MA100R granular [LFF, DBP absorption: 95 cm 3 / 100 g, MA100S powder [LFF, DBP absorption: 100 cm 3 / 100 g, MA230 powder [LFF, DBP absorption: 113 cm 3 / 100 g, MA220 powder [LFF, DBP absorption: 93 cm 3 / 100 g, MA14 powder [LFF, DBP absorption: 73 cm 3 / 100 g).
[0062] #3030B manufactured by Mitsubishi Chemical Corporation (furnace method, DBP absorption: 130 cm 3 / 100 g), #3040B (furnace method, DBP absorption: 114 cm 3 / 100 g), #3050B (furnace method, DBP absorption: 175 cm 3 / 100 g), #3230B (furnace method, DBP absorption: 140 cm 3 / 100 g), #3350B (furnace method, DBP absorption: 164 cm 3 / 100 g), #3400B (furnace method, DBP absorption: 175 cm 3 / 100 g).
[0063] Among the Tokablack (registered trademark) series manufactured by Tokai Carbon Co., Ltd., #5500 (furnace method, DBP absorption: 155 cm 3 / 100 g), #4500 (furnace method, DBP absorption: 168 cm 3 / 100 g), #4400 (furnace method, DBP absorption: 135 cm 3 / 100 g), #4300 (furnace method, DBP absorption: 142 cm 3 / 100 g).
[0064] Among the PRINTEX (registered trademark) series manufactured by Orion Engineered Carbons, L (furnace method, DBP absorption capacity: 120cm) 3 ( / 100g), L6 (furnace method, DBP absorption: 126cm) 3 (100g).
[0065] Among the CONDUCTEX (registered trademark) series manufactured by Birla Carbon, the 975 (furnace method, 170cm) 3 ( / 100g), SC (furnace method, 115cm) 3 (100g).
[0066] Among the VULCAN (registered trademark) series manufactured by CABOT, the XC72 (furnace method, DBP absorption: 174 cm³) 3 ( / 100g), 9A32 (furnace method, DBP absorption: 114cm) 3 ( / 100g), of the company's BLACK PEARLS series, 3700 (furnace method, DBP absorption: 111cm 3 (100g).
[0067] Among the Denka Black (registered trademark) series manufactured by Denka Co., Ltd., Denka Black granular product (acetylene method, DBP absorption: 160 cm³) 3 ( / 100g), FX-35 (acetylene method, DBP absorption: 220cm) 3 ( / 100g), HS-100 (acetylene method, DBP absorption: 140cm) 3 (100g).
[0068] Among the KETJENBLACK (registered trademark) series manufactured by Lion Specialty Chemicals Co., Ltd., EC300J (gasification method, DBP absorption: 360 cm³) 3 ( / 100g), EC600DJ (gasification method, DBP absorption: 495cm³) 3 (100g).
[0069] The proportion of each component in the first ink layer 36 is not particularly limited. The proportion of acrylic adhesive to 100 parts by mass of epoxy resin is, for example, 30 parts by mass or more, preferably 40 parts by mass or more. The proportion of acrylic adhesive to 100 parts by mass of epoxy resin is, for example, 150 parts by mass or less, preferably 100 parts by mass or less. The proportion of acrylic adhesive to 100 parts by mass of epoxy resin is, for example, 30 parts by mass or more and 150 parts by mass or less, preferably 40 parts by mass or more and 100 parts by mass or less.
[0070] The ratio of tackifier to 100 parts by mass of epoxy resin is, for example, 3 parts by mass or more, preferably 5 parts by mass or more. The ratio of tackifier to 100 parts by mass of epoxy resin is, for example, 150 parts by mass or less, preferably 100 parts by mass or less. The ratio of tackifier to 100 parts by mass of epoxy resin is, for example, 3 parts by mass or more and 150 parts by mass or less, preferably 5 parts by mass or more and 100 parts by mass or less.
[0071] The ratio of a coloring agent such as carbon black to 100 parts by mass of epoxy resin is, for example, 100 parts by mass or more, preferably 130 parts by mass or more. The ratio of a coloring agent to 100 parts by mass of epoxy resin is, for example, 230 parts by mass or less, preferably 200 parts by mass or less. The ratio of a coloring agent to 100 parts by mass of epoxy resin is, for example, 100 parts by mass or more and 230 parts by mass or less, preferably 130 parts by mass or more and 200 parts by mass or less.
[0072] Furthermore, for components of the first ink layer 36 that are supplied in liquid form dissolved or dispersed in any solvent, the amount of each component should be adjusted so that the proportion of the active ingredient falls within the above range (the same applies hereinafter).
[0073] The first ink layer 36 can be formed, for example, by applying a coating material obtained by dissolving or dispersing each of the above components in any solvent directly onto the surface 38 of the base layer 35, or via any release layer, and then drying it. In this disclosure, the characters to be recorded on the printer tape 2 are color-coded, as shown in Figures 6A and 6B. For this color coding, considering the adjustment of the adhesion between the first ink layer 36 and the base layer 35 and each of the other layers, it is preferable that the first ink layer 36 be formed directly on the surface 38 of the base layer 35 without a release layer.
[0074] The thickness of the first ink layer 36 can be set arbitrarily, for example, according to the specifications of the thermal transfer printer. The thickness of the first ink layer 36 can be adjusted by the amount of ink applied to the first ink layer 36.
[0075] For example, the amount of the first ink layer 36 applied is 0.1 g / m², expressed as the amount of solids per unit area. 2 The above is preferable, and preferably 0.5 g / m 2 That concludes the explanation. For example, the amount of the first ink layer 36 applied is 3.0 g / m², expressed as the amount of solids per unit area. 2 The following, preferably 2.5 g / m² 2 The following applies. For example, the amount of the first ink layer 36 applied is 0.1 g / m², expressed as the amount of solids per unit area. 2 More than 3.0g / m 2 The following, preferably 0.5 g / m 2 More than 2.5g / m 2 The following applies:
[0076] The specific thickness of the first ink layer 36 (before printing) is, for example, 0.05 μm or more, preferably 0.5 μm or more. The thickness of the first ink layer 36 is, for example, 3.0 μm or less, preferably 2.5 μm or less. The thickness of the first ink layer 36 may also be, for example, 0.05 μm or more and 3.0 μm or less, preferably 0.5 μm or more and 2.5 μm or less. The thickness of the first ink layer 36 can be confirmed, for example, based on SEM (Scanning Electron Microscope) images, TEM (Transmission Electron Microscope) images, etc. of the ink ribbon 3. (3) Second ink layer 37 The second ink layer 37 can be formed from, for example, any thermoplastic resin. Examples of thermoplastic resins used for the second ink layer 37 include epoxy resin, polyester resin, and polyolefin resin. The thermoplastic resin can be appropriately selected depending on the material used to form the printer tape 2. If the first ink layer 36 is formed from epoxy resin, it is preferable that the second ink layer 37 is also formed from epoxy resin.
[0077] By forming the second ink layer 37 with epoxy resin, the adhesion force of the first ink layer 36 to the substrate layer 35 and the adhesion force of the second ink layer 37 to the printer tape 2 can be made to counteract each other. This allows for good separation of the first ink layer 36 to the substrate layer 35 side and the second ink layer 37 to the printer tape 2 side during high-temperature transfer. Since the high-temperature transfer range can be extended to the low-temperature side, the effect of suppressing color blurring can be further improved. Examples of epoxy resins include the various epoxy resins exemplified as the epoxy resin for the first ink layer 36. These epoxy resins can be used individually or in combination of two or more types.
[0078] The second ink layer 37 may contain wax in addition to thermoplastic resin. The inclusion of wax allows for good separation of the first ink layer 36 to the substrate layer 35 and the second ink layer 37 to the printer tape 2 during high-temperature transfer. Therefore, the high-temperature transfer range can be extended to the low-temperature side, further improving the effect of suppressing color blurring.
[0079] As the wax, any wax having affinity and compatibility with thermoplastic resins such as epoxy resins can be used. For example, natural waxes such as carnauba wax, paraffin wax, and microcrystalline wax, and synthetic waxes such as Fischer-Tropsch wax can be used. There are no particular limitations on specific examples of waxes, but for example, carnauba wax No. 1 flakes, No. 2 flakes, No. 3 flakes, No. 1 powder, and No. 2 powder (all with a melting point of 80-86°C) manufactured by Toyo Chem Co., Ltd., and paraffin waxes EMUSTAR-1155 (melting point: 69°C), EMUSTAR-0135 (melting point: 60°C), and EMUSTAR-0136 (manufactured by Nippon Seiro Co., Ltd.) can be used. Examples include microcrystalline waxes manufactured by Nippon Seiro Co., Ltd., such as EMUSTAR-0001 (melting point: 84°C) and EMUSTAR-042X (melting point: 84°C), and Fischer-Tropsch waxes manufactured by Nippon Seiro Co., Ltd., such as FNP-0090 (setting point: 90°C), SX80 (setting point: 83°C), FT-0165 (melting point: 73°C), and FT-0070 (melting point: 72°C). These waxes can be used individually or in combination of two or more types.
[0080] The second ink layer 37 may contain any colorant. As the colorant, one or more different colorants can be used, depending on the color of the second ink layer 37. For example, the colorant may be a pigment and a dye. In the transferred tape 55A, the black color of the first ink layer 36 is recognized by the light that passes through the transparent printer tape 2 and the second ink layer 37 and is reflected by the first ink layer 36. Therefore, from the viewpoint of ensuring transparency to the first ink layer 36, it is preferable that the second ink layer 37 contains a colorant that includes at least a dye. It is preferable that the second ink layer 37 contains only a dye as the colorant, but it may also contain a dye and a pigment in a smaller proportion than the dye.
[0081] As an indicator of transparency for the first ink layer 36, the total light transmittance measured in accordance with JIS K 7361 may be used. The total light transmittance of the second ink layer 37 is, for example, 16% or more, and preferably 16.5% or more.
[0082] For example, the dyes used to color the second ink layer 37 red include oil-soluble dyes, acid dyes, basic dyes, metal-containing dyes, and various salt-forming types of these dyes, as well as the following types of red dyes. These red dyes can be used individually or in combination of two or more types.
[0083] CI Basic Red 1, 12, 13; CI Acid Red 13, 14, 18, 27, 50, 52; CI Solvent Red 25, 27, 30, 35, 49, 83, 89, 100, 122, 138, 149, 150, 160, 179, 218, 230; CI Direct Red 20, 37, 39, 44; CI Disperse Red 5, 7, 13, 17.
[0084] For example, the following various red pigments can be used to color the second ink layer 37 red. These red pigments can be used individually or in combination of two or more.
[0085] CI Pigment Red 5, 7, 9, 12, 48(Ca), 48(Mn), 49, 52, 53, 53:1, 57(Ca), 57:1, 97, 112, 122, 123, 149, 168, 177, 178, 179, 184, 202, 206, 207, 209, 242, 254, 255.
[0086] Furthermore, the L value of the color difference of the reflected light from the second ink layer 37 having the exemplified composition is 20 or less, preferably 15 or less, more preferably 10 or less, and particularly preferably 5 or less. The L value may be, for example, the reflected density (L value) measured when a light beam is incident on the ink ribbon 3 from the side of the second ink layer 37 using a reflectance colorimeter. If the L value of the reflected light from the second ink layer 37 is within the above range, sufficient transparency to the first ink layer 36 can be ensured.
[0087] The proportion of each component in the second ink layer 37 is not particularly limited. The proportion of wax to 100 parts by mass of epoxy resin is, for example, 3 parts by mass or more, preferably 5 parts by mass or more. The proportion of wax to 100 parts by mass of epoxy resin is, for example, 11 parts by mass or less, preferably 9 parts by mass or less. The proportion of wax to 100 parts by mass of epoxy resin is, for example, 3 parts by mass or more and 11 parts by mass or less, preferably 5 parts by mass or more and 9 parts by mass or less.
[0088] The ratio of a coloring agent such as a red dye (total amount of coloring agent) to 100 parts by mass of epoxy resin is, for example, 70 parts by mass or more, preferably 80 parts by mass or more. The ratio of a coloring agent such as a red dye to 100 parts by mass of epoxy resin is, for example, 140 parts by mass or less, preferably 120 parts by mass or less. The ratio of a coloring agent such as a red dye to 100 parts by mass of epoxy resin is, for example, 70 parts by mass or more and 140 parts by mass or less, preferably 80 parts by mass or more and 120 parts by mass or less.
[0089] The second ink layer 37 can be formed, for example, by applying a coating material obtained by dissolving or dispersing each of the above components in any solvent onto the first ink layer 36 and then drying it.
[0090] The thickness of the second ink layer 37 can be arbitrarily set according to, for example, the specifications of the thermal transfer printer. The thickness of the second ink layer 37 can be adjusted by the amount of ink applied to the second ink layer 37. For example, the amount of ink applied to the second ink layer 37 can be expressed as 0.2 g / m² in terms of solid content per unit area. 2 The above is preferable, preferably 1.0 g / m 2 That concludes the explanation. For example, the amount of the second ink layer 37 applied is 7.0 g / m², expressed as the amount of solids per unit area. 2 The following, preferably 5.0 g / m² 2 The following applies: For example, the amount of the second ink layer 37 applied is 0.2 g / m², expressed as the amount of solids per unit area. 2 More than 7.0g / m 2 The following, preferably 1.0 g / m² 2 More than 5.0g / m 2 The following applies:
[0091] The specific thickness of the second ink layer 37 (before printing) is, for example, 0.05 μm or more, preferably 1.0 μm or more. The thickness of the second ink layer 37 is, for example, 7.0 μm or less, preferably 5.0 μm or less. The thickness of the second ink layer 37 may also be, for example, 0.05 μm or more and 7.0 μm or less, preferably 1.0 μm or more and 5.0 μm or less. The thickness of the second ink layer 37 can be confirmed, for example, based on SEM (Scanning Electron Microscope) images, TEM (Transmission Electron Microscope) images, etc. of the ink ribbon 3.
[0092] Although not explained here, a separation layer, an intermediate layer, or the like may be formed between the first ink layer 36 and the second ink layer 37 to assist in separating the first ink layer 36 and the second ink layer 37. This separation layer and intermediate layer may be made of, for example, a thermoplastic elastomer.
[0093] The adhesive tape 76 includes a base layer 61, a first adhesive layer 62, a second adhesive layer 63, and a release layer 64. The first adhesive layer 62 is formed on the adhesive surface 65 of the base layer 61, and the second adhesive layer 63 is formed on the release surface 66 opposite to the adhesive surface 65. The adhesive tape 76 is attached to the printed material 56 via the first adhesive layer 62. (4) Base material layer 61 Examples of the base layer 61 include resin films such as polysulfone, polystyrene, polyamide, polyimide, polycarbonate, polypropylene, polyester, and triacetate; thin papers such as condenser paper and glassine paper; and cellophane. Of these, polyester films such as polyethylene terephthalate (PET) and polyethylene naphthalate are preferred from the viewpoint of mechanical strength, dimensional stability, heat treatment resistance, and cost. The thickness of the base layer 61 can be arbitrarily set according to the specifications of the thermal transfer printer, for example. For example, the thickness of the base layer 61 is 1 μm or more, preferably 10 μm or more. For example, the thickness of the base layer 61 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the base layer 61 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less. (5) First adhesive layer 62 The first adhesive layer 62 is not particularly limited as long as it is an adhesive layer used for bonding films together, and examples include acrylic adhesives and rubber adhesives. The thickness of the first adhesive layer 62 is, for example, 1 μm or more, preferably 10 μm or more. For example, the thickness of the first adhesive layer 62 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the first adhesive layer 62 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less. (6) Second adhesive layer 63 The second adhesive layer 63 is not particularly limited as long as it is an adhesive layer used for bonding films together, and for example, the adhesive material used for the first adhesive layer 62 can be used. The thickness of the second adhesive layer 63 is, for example, 1 μm or more, preferably 10 μm or more. For example, the thickness of the second adhesive layer 63 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the second adhesive layer 63 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less. (7) Peeling layer 64 The release layer 64 is peeled off from the adhesive tape 76 when the transferred tape 55A is attached to the object, exposing the second adhesive layer 63. The transferred tape 55A can then be attached to the object via the exposed second adhesive layer 63. Examples of the release layer 64 include release paper coated with a release agent such as silicone.
[0094] As shown in Figure 5C, the bonding tape 76 does not necessarily have to include a base layer 61.
[0095] As shown in Figure 7, the transferred tape 55A having the above layer configuration has the second ink layer 37 covered with a transparent printer tape 2 (cover film). This allows the light 77 incident on the second ink layer 37 via the printer tape 2 to be refracted by the printer tape 2. As a result, when observing the second ink layer 37 (surface-side ink layer) via the printer tape 2 from an oblique or lateral direction, it is possible to suppress the observation of the edge color of the first ink layer 36 hidden by the second ink layer 37. <Transferred Tape 55B> Referring to Figure 5B, the transferred tape 55B includes a printer tape 2 on which a portion of the ink ribbon 3 has been transferred, and a laminating tape 76 bonded to the printer tape 2. The laminating tape 76 may also be called a laminating film. Figure 5B shows a cross-section of the portion of the transferred tape 55B where the laminate of the first ink layer 36 and the second ink layer 37 has been transferred as the first transfer layer 82, and the cross-section of the portion of the transferred tape 55B where the second ink layer 37 has been selectively transferred as the second transfer layer is omitted.
[0096] In this embodiment, the transferred tape 55B has a transparent cover film 83, which is an example of a transparent film, attached to the printer tape 2 via a first adhesive layer 84 and physically protects the first transfer layer 82 from the outside. Therefore, in the first transfer layer 82, the first ink layer 36 on the side closer to the cover film 83 is the surface-side ink layer (observation-side ink layer). A person can perceive the respective colors of the first ink layer 36 and the second ink layer 37 by the light that passes through the cover film 83 and is reflected by the first ink layer 36 or the second ink layer 37, as indicated by the white arrow 60.
[0097] Next, we will provide a more detailed explanation of the layer structure of the transferred tape 55B.
[0098] As described above, the transferred tape 55B is formed by bonding the printer tape 2 and the bonding tape 76.
[0099] The printer tape 2 is formed by a printed material 81, comprising a base layer 80, a first transfer layer 82, a second adhesive layer 85, and a release layer 86. (1) Base material layer 80 Examples of the base layer 80 include resin films such as polysulfone, polystyrene, polyamide, polyimide, polycarbonate, polypropylene, polyester, and triacetate, as well as thin papers such as condenser paper and glassine paper, and cellophane. Of these, polyester films such as polyethylene terephthalate (PET) and polyethylene naphthalate are preferred from the viewpoint of mechanical strength, dimensional stability, heat treatment resistance, and cost. The thickness of the base layer 80 can be arbitrarily set according to the specifications of the thermal transfer printer, for example. For example, the thickness of the base layer 80 is 1 μm or more, preferably 10 μm or more. For example, the thickness of the base layer 80 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the base layer 80 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less. (2) First transfer layer 82 The first transfer layer 82 includes a first ink layer 36 and a second ink layer 37, which are laminated in order from the transparent cover film 83 side. The materials of the first ink layer 36 and the second ink layer 37 are the same as those of the first ink layer 36 and the second ink layer 37 of the transferred tape 55A.
[0100] In the transferred tape 55B, the first ink layer 36 is positioned on the side of the cover film 83 that is more transparent than the second ink layer 37. Therefore, unlike the transferred tape 55A, which allows light to pass through the second ink layer 37 to recognize the black color of the first ink layer 36, the black color of the first ink layer 36 can be recognized without allowing light to pass through the second ink layer 37. Consequently, as mentioned above, from the viewpoint of ensuring transparency, it is not necessary to use dyes as a coloring agent for the second ink layer 37. In other words, in the transferred tape 55B, the second ink layer 37 may be colored only by pigments.
[0101] Although not explained here, a separation layer, an intermediate layer, or the like may be formed between the first ink layer 36 and the second ink layer 37 to assist in separating the first ink layer 36 and the second ink layer 37. This separation layer and intermediate layer may be made of, for example, a thermoplastic elastomer.
[0102] On the other hand, the transferred tape 55B differs from the transferred tape 55A in that the first ink layer 36 is the surface-side ink layer (observation-side ink layer). The surface-side ink layer of the transferred tape 55A is the second ink layer 37. Therefore, in the transferred tape 55B, it is preferable that the thickness of the first ink layer 36 is the same as the thickness of the second ink layer 37 of the transferred tape 55A. In other words, the thickness of the first ink layer 36 of the transferred tape 55B is, for example, 0.05 μm or more, and preferably 1.0 μm or more. The thickness of the second ink layer 37 is, for example, 7.0 μm or less, and preferably 5.0 μm or less. The thickness of the second ink layer 37 may be, for example, 0.05 μm or more and 7.0 μm or less, and preferably 1.0 μm or more and 5.0 μm or less. (3) Second adhesive layer 85 The second adhesive layer 85 is not particularly limited as long as it is an adhesive layer used for bonding films together, and examples include acrylic adhesives and rubber adhesives. The thickness of the second adhesive layer 85 is, for example, 1 μm or more, preferably 10 μm or more. For example, the thickness of the second adhesive layer 85 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the second adhesive layer 85 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less. (4) Peeling layer 86 The release layer 86 is peeled off from the printed material 81 when the transferred tape 55B is attached to the object, exposing the second adhesive layer 85. The transferred tape 55B can then be attached to the object via the exposed second adhesive layer 85. Examples of the release layer 86 include release paper coated with a release agent such as silicone.
[0103] The adhesive tape 76 includes a cover film 83 and a first adhesive layer 84. (5) Cover film 83 The cover film 83 can be made of the same material as the printer tape 2 of the transferred tape 55A. Therefore, the cover film 83 may be made of a material having the same refractive index as the printer tape 2 of the transferred tape 55A, and may also have the same thickness. Furthermore, the cover film 83 may be an unstretched film that has not undergone stretching during the manufacturing process, or it may be a stretched film that has undergone stretching such as uniaxial stretching and biaxial stretching. In addition, the surface of the cover film 83 may be finished with a glossy finish, a matte finish, or other surface finish. Furthermore, a release layer made of silicone or the like may be separately formed to protect the surface of the cover film 83 before use. Conceptually, these layers may be part of the cover film 83. (6) First adhesive layer 84 The first adhesive layer 84 is not particularly limited as long as it is an adhesive layer used for bonding films together, and examples include acrylic adhesives and rubber adhesives. The thickness of the first adhesive layer 84 is, for example, 1 μm or more, preferably 10 μm or more. For example, the thickness of the first adhesive layer 84 is 100 μm or less, preferably 50 μm or less. For example, the thickness of the first adhesive layer 84 is 1 μm or more and 100 μm or less, preferably 10 μm or more and 50 μm or less.
[0104] Furthermore, it is preferable that the total thickness of the first adhesive layer 84 and the cover film 83 is greater than the thickness of the first ink layer 36. In other words, the first adhesive layer 84 and the cover film 83 may be thinner than the first ink layer 36 individually, but their combined thickness should be greater than that of the first ink layer 36. Moreover, it is preferable that the total thickness of the first adhesive layer 84 and the cover film 83 is at least twice the thickness of the surface ink layer (first ink layer 36).
[0105] Furthermore, the first adhesive layer 84 is interposed between the transferred tape 55B and the first transfer layer 82, and is a layer through which light passes when observing the printed pattern 44. Therefore, it is preferable that the first adhesive layer 84 is transparent. The refractive index of the first adhesive layer 84 is, for example, 1.4 or higher, preferably 1.5 or higher, and more preferably 1.6 or higher. The refractive index may be, for example, the refractive index measured by spectroscopic ellipsometry.
[0106] As shown in Figure 8, the transferred tape 55B having the above layer configuration has the first ink layer 36 covered with a transparent cover film 83 and a first adhesive layer 84. This allows the light 87 incident on the first ink layer 36 through the cover film 83 to be refracted by the cover film 83 and the first adhesive layer 84. As a result, when observing the first ink layer 36 (surface side ink layer) through the cover film 83 from an oblique or lateral direction, it is possible to suppress the observation of the edge color of the second ink layer 37 hidden by the first ink layer 36.
[0107] The embodiments described herein are illustrative in all respects and should not be construed restrictively, and are intended to be modified in all respects.
[0108] The following features can be extracted from the description in this specification and drawings.
[0109] [Note 1-1] A transferred film is formed by laminating a transparent film, a laminate of a first ink layer and a second ink layer having a different color from the first ink layer, and a substrate layer in this order. A transferred film in which the first ink layer and the second ink layer are transfer layers transferred by an ink ribbon containing a laminate of the first ink layer and the second ink layer.
[0110] [Appendix 1-2] The transfer layer is formed by thermal fusion transfer, and the transferred film is as described in Appendix 1-1.
[0111] [Appendix 1-3] The laminate of the first ink layer and the second ink layer includes a surface-side ink layer close to the transparent film and a back-side ink layer on the opposite side. The transparent film is a transferred film as described in Appendix 1-1 or Appendix 1-2, which is thicker than the surface ink layer.
[0112] [Appendix 1-4] The transferred film described in any one of the appendices 1-1 to 1-3, wherein the refractive index of the transparent film, as measured by spectroscopic ellipsometry, is 1.4 or greater.
[0113] [Appendix 1-5] A printed material having the transparent film, the second ink layer, and the first ink layer laminated in that order, A transferred film according to any one of the appendices 1-1 to 1-4, comprising a first adhesive layer laminated on the printed material on the first ink layer side, and a lamination layer including the base material layer attached to the printed material via the first adhesive layer.
[0114] [Appendix 1-6] The transferred film according to Appendix 1-5, wherein the lamination layer further comprises a second adhesive layer laminated on the substrate layer on the opposite side of the first adhesive layer, and a release layer laminated on the substrate layer via the second adhesive layer.
[0115] [Appendix 1-7] The transparent film and the laminating layer including a first adhesive layer laminated on the surface of the transparent film, A transferred film according to any one of the appendices 1-1 to 1-4, comprising a printed material including a first ink layer attached to the transparent film via the first adhesive layer, a second ink layer sequentially laminated on the first ink layer, the substrate layer, and the second adhesive layer.
[0116] [Appendix 1-8] The printed material further comprises a release layer laminated on the substrate layer via the second adhesive layer, as described in Appendix 1-7, for the transferred film.
[0117] [Appendix 1-9] A pre-transferred tape formed in the shape of a tape, as described in any one of the appendices 1-1 to 1-8.
[0118] [Appendix 1-10] A step of forming a printed material having a transfer layer by transferring an ink ribbon, which includes a laminate of a first ink layer and a second ink layer having a different color from the first ink layer, onto the first surface of a transparent film having a first surface and a second surface, such that the second ink layer faces the first surface. A method for manufacturing a transferred film, comprising the step of laminating a lamination layer, which includes a first adhesive layer and a base layer, to a printed material by attaching the first adhesive layer to the transfer layer.
[0119] [Appendix 1-11] A step of forming a printed material having a transfer layer by transferring an ink ribbon, which includes a laminate of a first ink layer and a second ink layer having a different color from the first ink layer, to the first surface of a substrate layer having a first surface and a second surface, such that the second ink layer faces the first surface. A method for manufacturing a transferred film, comprising the step of laminating a laminating layer, which includes a first adhesive layer and a transparent film, to a printed material by attaching the first adhesive layer to the transfer layer. [Examples]
[0120] The present disclosure will be further explained below based on experimental examples, but the configuration of the present disclosure is not limited to these examples.
[0121] [Coating material for black colored layer (1)] Each component shown in Table 1 below was dissolved in a mixed solvent of toluene and methyl ethyl ketone (MEK) in a mass ratio of 1 / 4 to prepare a black colored coating material (1) with a solid content concentration of 22.5% by mass. The proportion of the active ingredient in the acrylic adhesive was 80 parts by mass per 100 parts by mass of epoxy resin.
[0122] [Table 1]
[0123] The components listed in the table are as follows:
[0124] Epoxy resin: JER1007 manufactured by Mitsubishi Chemical Corporation [Basic solid type, softening point (ring-sphere method): 128°C, number-average molecular weight Mn: approximately 2900] Acrylic adhesive: AS-665 manufactured by Lion Specialty Chemicals Co., Ltd. [Solid content concentration: 40% by mass] Tackifier: Terpene phenol resin, YS Polystar T80 manufactured by Yasuhara Chemical Co., Ltd. (softening point: 80±5℃) Carbon black: MA100 powder manufactured by Mitsubishi Chemical Corporation [LFF, DBP absorption capacity: 100cm] 3 / 100g] [Coating material for red colored layer (1)] Each component shown in Table 2 below was dissolved in a mixed solvent of toluene and methyl ethyl ketone (MEK) in a mass ratio of 1 / 4 to prepare a red colored coating material (1) with a solid content concentration of 28% by mass.
[0125] [Table 2]
[0126] The components listed in the table are as follows:
[0127] Epoxy resin: JER1004 manufactured by Mitsubishi Chemical Corporation [Basic solid type, softening point (ring-sphere method): 97°C, number-average molecular weight Mn: approximately 1650] Low melting point wax: Carnauba wax No. 2 powder manufactured by Toyo Chem Co., Ltd. (melting point: 80-86°C) Red coloring agent: VALIFAST RED1320 (CI BASIC RED 1 and onium salt of azo dye) manufactured by Orient Chemical Industry Co., Ltd. [Experimental Examples 1-9] (1) Manufacturing of ink ribbons (thermal transfer recording media) First, a PET film with a thickness of 4.5 μm was prepared as the base layer. Next, on the side of the base layer opposite to the surface where the transfer layer is formed (the back side), a silicone-based resin with a solid content of 0.1 g / m² per unit area was applied. 2 The back surface layer was formed. Next, the previously prepared black colored coating material (1) was applied to the surface of the base layer and dried until the solid content per unit area was 2.5 g / m². 2 A black colored layer was formed. The thickness of the black colored layer was 2.5 μm. Next, the red colored layer coating material (1) prepared earlier was applied on top of the black colored layer and dried, resulting in a solid content of 2.5 g / m² per unit area. 2 An ink ribbon was manufactured by forming a red-colored layer. The thickness of the red-colored layer was 2.5 μm. The composition of each layer of the ink ribbon obtained in Experimental Examples 1 to 9 is shown in Tables 4 to 6 below. In Experimental Example 2, the solid content per unit area was 7 g / m². 2A red-colored layer was formed, creating a red-colored layer with a thickness of 7 μm. (2) Manufacturing of transferred film <Experimental Example 1> The ink ribbon obtained above was wound into a roll and set in a thermal transfer printer [a prototype printer manufactured by Brother Industries, Ltd.]. The main specifications of the thermal transfer printer are as follows: <Resolution> 300dpi line thermal head <Resistance of heating element> 1830Ω <Transfer load> 30N / 2inch <Conveying speed> 20 mm / sec <Peeling distance> 110mm Next, under ambient temperature conditions of 25°C, the energy value applied to the thermal head of the thermal transfer printer was set to 100 (low temperature, black), as pre-configured. Then, a barcode was recorded on the surface of a transparent PET film (Lumirror® #6-S10, 6 μm thick, refractive index 1.66, manufactured by Toray Industries, Inc.) at a printing speed of 5 inches / sec. After recording, a laminated film with an adhesive layer (polyester film (white, glossy), FR1415-50PET, manufactured by Lintec Corporation) was laminated onto the base film to cover the barcode. As a result, a transferred film was obtained in which a laminate of the red and black colored layers formed as the transfer layer, with the red colored layer facing the base film side. In the transferred film, the base film functions as a cover film that covers the surface side of the transfer layer. The refractive index of the PET film was measured using a rotational compensator type high-speed spectroscopic ellipsometer M-2000® manufactured by JAWoollam Japan. The angle of incidence during measurement was set to 50° to 70°.
[0128] <Experimental Example 2> The transferred film was prepared in the same manner as in Experimental Example 1, except that an ink ribbon with a red colored layer thickness of 7 μm was used.
[0129] <Experimental Example 3> The transferred film was prepared in the same manner as in Experimental Example 1, except that a 25 μm thick PE film [L4102 Rix® film manufactured by Toyobo Co., Ltd., refractive index 1.53] was used as the transparent base film (cover film).
[0130] <Experimental Example 4> The transferred film was prepared in the same manner as in Experimental Example 1, except that a 25 μm thick PC film [PureAce® Grade D, refractive index 1.58, manufactured by Teijin Limited] was used as the transparent base film (cover film).
[0131] <Experimental Example 5> The transferred film was prepared in the same manner as in Experimental Example 1, except that a 14 μm thick biaxially oriented polystyrene film [OPS® film manufactured by Asahi Kasei Corporation, refractive index 1.47] was used as the transparent base film (cover film).
[0132] <Experimental Example 6> The transferred film was prepared in the same manner as in Experimental Example 1, except that a 20 μm thick PTFE film [Nitoflon® No. 920UL, refractive index 1.35, manufactured by Nitto Denko Corporation] was used as the transparent base film (cover film).
[0133] <Experimental Example 7> The ink ribbon obtained above was wound into a roll and set in a thermal transfer printer with the same specifications as above. Next, under ambient temperature of 25°C, the energy value applied to the thermal head, which was pre-set in the thermal transfer printer, was set to 100 (low temperature, black). Then, a barcode was recorded on the surface of a variable information printing label material [polyester film (white, glossy), FR1415-50 manufactured by Lintec Corporation] at a printing speed of 5 inches / sec. After recording, a laminated film consisting of a transparent PET film [Lumirror® #2-F51, 2 μm thick, refractive index 1.57, manufactured by Toray Industries, Inc.] with a 2 μm thick adhesive layer [QuickMaster® SPS-1090NT, refractive index 1.50, manufactured by DIC Corporation] was laminated onto the label material to cover the barcode. As a result, a transferred film was obtained in which a laminate of the red and black colored layers was formed as the transfer layer, with the black colored layer facing the base film side. In the transferred film, the laminated film functions as a cover film that covers the surface side of the transfer layer. The refractive index of the PET film was measured using a rotational compensator type high-speed spectroscopic ellipsometer M-2000 (registered trademark) manufactured by JAWoollam Japan. The incident angle during measurement was set to 50° to 70°.
[0134] <Experimental Example 8> The transferred film was prepared in the same manner as in Experimental Example 7, except that a 4.5 μm thick adhesive layer [DIC Corporation's QuickMaster® SPS-1090NT, refractive index 1.50] was used as the adhesive layer for the laminated film (cover film).
[0135] <Experimental Example 9> The transferred film was prepared in the same manner as in Experimental Example 7, except that the laminated film was not laminated to the label material. (2) Evaluation (2-1) Observation from an oblique angle As shown in Figure 9, the change in the color of the printed material, which could be visually confirmed, was observed by changing the angle θ with respect to the surface of the transferred film obtained in Experimental Examples 1-9 from 10° to 90° at the observation point. The evaluation criteria for oblique observation are as follows. The results are shown in Tables 3 and 4 below. ○: Even at an angle θ of 10°, it appears as if the color of the surface ink layer has been printed. △: When the angle θ is less than 45°, the edge color of the ink layer covered by the surface-side ink layer is visible. ×: The angle θ is less than 70°, and the edge color of the ink layer covered by the surface ink layer is visible.
[0136] [Table 3]
[0137] [Table 4]
[0138] A comparison of Experimental Examples 1-8 and Experimental Example 9 revealed that when a transparent cover film covering the surface ink layer is provided, edge color of the ink layer covered by the surface ink layer was not observed at an angle θ of 45° or greater. Furthermore, a comparison of Experimental Example 1 and Experimental Example 2 showed that even when a cover film is provided, a higher evaluation was obtained when the thickness of the cover film was greater than the thickness of the surface ink layer. On the other hand, the results of Experimental Example 8 showed that even if the thickness of the cover film is less than the thickness of the surface ink layer, the effect of suppressing edge color can be enhanced if the combined thickness of the cover film and the adhesive layer is more than twice the thickness of the surface ink layer.
[0139] Furthermore, the results from Experimental Examples 1 and 8, and Experimental Examples 3-6, showed that if the cover film is a PET film, the total thickness of the cover film and adhesive layer can be less than 10 μm while sufficiently suppressing edge color. Therefore, in Experimental Examples 1 and 8, the transferred film can be successfully applied to complex curved surfaces. [Explanation of symbols]
[0140] 2: Printer tape 3: Ink ribbon 35: Base material layer 36: First ink layer 37: Second ink layer 42 :1st part 43:Second part 44: Print Pattern 45: Red pattern 46: Black pattern 48: Base material layer 55: Pre-transferred tape 55A: Pre-transferred tape 55B: Pre-transferred tape 56: Printed matter 57: First transfer layer 61: Base material layer 62: 1st adhesive layer 63:Second adhesive layer 64: Exfoliation layer 76: Adhesive tape 80: Base material layer 81: Printed matter 82: First Transfer Layer 83: Cover film 84: 1st adhesive layer 85:Second adhesive layer 86: Exfoliation layer
Claims
1. A step of forming a printed material having a transfer layer by transferring an ink ribbon, which includes a laminate of a first ink layer and a second ink layer, onto the first surface of a transparent film having a first surface and a second surface, such that the second ink layer faces the first surface. The process includes a step of bonding a bonding layer, which comprises a first adhesive layer and a base layer, to the printed material by attaching the first adhesive layer to the transfer layer, The first ink layer and the second ink layer are, one of which is the surface-side ink layer closest to the transparent film, and the other is the back-side ink layer on the opposite side. The first ink layer and the second ink layer each contain a red coloring agent and a black coloring agent, The transparent film is thicker than the surface ink layer. A method for manufacturing a transferred film, wherein the refractive index of the transparent film, as measured by spectroscopic ellipsometry, is 1.4 or greater.
2. A step of forming a printed material having a transfer layer by transferring an ink ribbon, which includes a laminate of a first ink layer and a second ink layer, onto the first surface of a substrate layer having a first surface and a second surface, such that the second ink layer faces the first surface. The process includes a step of bonding a laminating layer, which includes a first adhesive layer and a transparent film, to the printed material by attaching the first adhesive layer to the transfer layer, The first ink layer and the second ink layer are, one of which is the surface-side ink layer closest to the transparent film, and the other is the back-side ink layer on the opposite side. The first ink layer and the second ink layer each contain a red coloring agent and a black coloring agent, The transparent film is thicker than the surface ink layer. A method for manufacturing a transferred film, wherein the refractive index of the transparent film, as measured by spectroscopic ellipsometry, is 1.4 or greater.