Adhesive tapes and electronic devices

The adhesive tape with a foam substrate addresses impact resistance, conformability, and re-peelability issues, ensuring efficient disassembly and recycling of electronic devices by maintaining strength and flexibility.

JP7846444B2Active Publication Date: 2026-04-15DIC CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-08
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Existing adhesive tapes used in electronic devices, particularly for securing components in portable electronic terminals, face challenges in maintaining impact resistance, conformability to uneven surfaces, and re-peelability, which are essential for efficient manufacturing, disassembly, and recycling of devices like organic EL displays.

Method used

An adhesive tape with a foam substrate having specific tensile strengths, compressive strengths, and densities, allowing it to be peeled off at a desired angle without tearing, ensuring excellent impact resistance, conformability, and re-peelability.

Benefits of technology

The adhesive tape effectively maintains impact resistance, conforms well to high stepped portions, and can be easily peeled off without leaving residue, enhancing manufacturing efficiency and recyclability of electronic devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an adhesive tape which, while maintaining excellent impact resistance, has good followability for a high step part of an adherend and has repeeling performance which enables easy removal thereof by peeling when dismantling an article such as an electronic device and the like.SOLUTION: An adhesive tape 10 comprises, on one surface or both surfaces of a foam substrate 1, an adhesive layer 2a and / or an adhesive layer 2b directly or via another layer, where tensile strength of the foam substrate in its flow direction is 650 N / cm2 or more, 25% compression strength of the foam substrate is 1000 kPa or less, and a density of the foam substrate is 0.35 g / cm3 to 0.90 g / cm3.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an adhesive tape and electronic device that can be used to fix components of electronic devices such as portable electronic terminals. [Background technology]

[0002] Adhesive tape is widely used, for example, in securing components of electronic devices. Specifically, adhesive tape is used to secure protective panels of image display units to the casing of small electronic devices such as portable electronic terminals, cameras, and personal computers, and to secure rigid components such as exterior parts and batteries to these small electronic devices.

[0003] As such adhesive tapes, thin tapes with excellent conformability to the adherend have been known, for example, adhesive tapes having adhesive layers on both sides of a flexible foam base material (see, for example, Patent Document 1). In recent years, especially from a design perspective, curved surfaces and panels with complex shapes are increasingly used, and adhesive tapes are desired to have even higher conformability to uneven surfaces and high steps. Furthermore, as electronic devices, particularly televisions and smartphones, are becoming increasingly waterproof, adhesive tapes used to fix components have long been required to have even better conformability to stepped areas of housings and circuit boards, as well as high adhesive strength, in order to prevent water ingress.

[0004] Furthermore, given the diverse range of uses for electronic devices such as portable electronic terminals, adhesive tapes used with these devices are required to have a level of impact resistance that prevents parts from falling off or peeling off, even if, for example, the aforementioned portable electronic terminal is dropped. From this perspective of impact resistance, tapes with adhesive layers on both sides of a foam base material have been used. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2010-260880 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] Incidentally, in the case of portable electronic devices, etc., in order to improve the yield during manufacturing, it is sometimes necessary to remove double-sided adhesive tape or parts that have failed to bond from work-in-progress (rework), or to separate, disassemble, or take apart the casing or parts in order to repair, refurbish, or reuse finished products, and adhesive tape needs to be easily disassembled. Furthermore, in recent years, the use of organic EL (electroluminescent) information display devices has been progressing in order to achieve higher resolution information displays. However, because such organic EL displays are expensive, there is a need to reuse them when repairing electronic devices. Therefore, the adhesive tape used for organic EL displays must not only firmly bond the components that make up the organic EL display device together, but also be easily peeled off and removed without leaving any adhesive residue on the components that make up the organic EL display device.

[0007] In particular, in information display devices where numerous components are arranged, the angle in which adhesive tape can be peeled off is limited. Therefore, adhesive tape is required to be able to be peeled off by stretching it at a relatively small angle, such as 0° to 90° relative to the surface it is adhered to. Thus, in addition to conformability and impact resistance, adhesive tape used to fix electronic devices and information display devices is required to have re-peelability, which allows the tape to be easily peeled off and removed during disassembly without damaging the components of the information display device or electronic device, and to release the adhesive fixation between components via the tape.

[0008] However, with foam-based double-sided adhesive tapes, if the foam base material tears due to interlayer fracture or other reasons when stretched, the tape tends to remain on the surface of the component and is difficult to remove. This reduces the efficiency of the work involved in removing the double-sided adhesive tape from the housing or component and then reapplying new double-sided adhesive tape, as well as the yield of the housing, component, and product, and the recycling rate.

[0009] On the other hand, in order to stretch and peel off adhesive tape, it is generally effective to increase its strength so that it does not tear during the process. However, adhesive tapes using a high-strength foam base material do not conform well to uneven surfaces of the adherend and have the problem of being prone to water infiltration from the outside.

[0010] With the increasing size and thinning of mobile electronic devices, and the application of organic EL information display devices to these devices, the application area of ​​adhesive tape is decreasing, and adhesive tapes are becoming narrower. In this context, there is a need for adhesive tapes that maintain excellent impact resistance, have good conformability to high steps on the adherend, and have re-peelability that allows for easy removal of organic EL information display devices when disassembling electronic devices.

[0011] The present invention aims to provide an adhesive tape that maintains excellent impact resistance, has good conformability to high stepped portions of the adherend, and has re-peelability that allows it to be easily peeled off when dismantling articles such as electronic devices. [Means for solving the problem]

[0012] The means for solving the above problems are as follows: The present invention relates to an adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, wherein the tensile strength of the foam substrate in the flow direction is 650 N / cm². 2 The above-mentioned foam substrate has a 25% compressive strength of 1000 kPa or less, and a density of 0.35 g / cm³. 3 More than 0.90g / cm 3 The following adhesive tape is provided.

[0013] Furthermore, the present invention relates to an adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, wherein the tensile strength of the foam substrate in the stretching direction of the adhesive tape is 650 N / cm². 2 The above-mentioned foam substrate has a 25% compressive strength of 1000 kPa or less, and a density of 0.35 g / cm³.3 Above 0.90 g / cm 3 Provide an adhesive tape that is as follows.

[0014] In the adhesive tape of the present invention, the tensile strength in the width direction of the foam base material is preferably 450 N / cm 2 or more. Also, in the adhesive tape of the present invention, the tensile strength of the foam base material in the direction perpendicular to the stretching direction of the adhesive tape is preferably 450 N / cm 2 or more.

[0015] In the adhesive tape of the present invention, in the flow direction of the foam base material, the tensile stress at a strain amount of 100% based on the stress-strain curve is preferably 450 N / cm 2 or less. Also, in the stretching direction of the adhesive tape of the present invention, the tensile stress at a strain amount of 100% based on the stress-strain curve of the foam base material is preferably 450 N / cm 2 or less.

[0016] In the adhesive tape of the present invention, it is preferable that the adhesive layer contains filler particles. At this time, the content of the filler particles contained in the adhesive layer is preferably less than 20 parts by mass with respect to 100 parts by weight of the adhesive resin.

[0017] In the adhesive tape of the present invention, the thickness of the foam base material is preferably within the range of 50 μm to 500 μm.

[0018] In the adhesive tape of the present invention, it is preferable that the foam base material contains an elastomer resin as a main component.

[0019] In the adhesive tape of the present invention, the adhesive layer preferably has a tensile stress at a strain amount of 100% based on the stress-strain curve of 25 N / cm 2 or less.

[0020] In the adhesive tape of the present invention, it is preferably used for joining members constituting an electronic device. [Effects of the Invention]

[0021] According to the present invention, it is possible to provide an adhesive tape that maintains excellent impact resistance, has good conformability to high stepped portions of the adherend, and has re-peelability that allows for easy peeling and removal when disassembling electronic equipment, etc. [Brief explanation of the drawing]

[0022] [Figure 1] This is a schematic cross-sectional view showing an example of the adhesive tape of the present invention. [Figure 2] This is a schematic diagram of the test specimen used in the impact resistance test, viewed from above. [Figure 3] This is a schematic diagram showing the state of the test piece used for impact resistance testing after it has been attached to an acrylic plate, viewed from above. [Figure 4] This is a schematic diagram showing the test method for impact resistance testing. [Figure 5] This is a schematic plan view of the acrylic plate with adhesive tape used to create the test specimen for the step-following performance evaluation test. [Figure 6] This is a schematic plan view of the stepped acrylic plate used to create the test specimen for the step-following performance evaluation test. [Figure 7] This is a schematic cross-sectional view of the test specimen used in the step-following performance evaluation test. [Modes for carrying out the invention]

[0023] I. Adhesive tape The adhesive tape of the present invention is an adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, wherein the tensile strength of the foam substrate in the flow direction is 650 N / cm². 2 The above-mentioned foam substrate has a 25% compressive strength of 1000 kPa or less, and a density of 0.35 g / cm³. 3 More than 0.90g / cm 3 The following applies:

[0024] In other words, the adhesive tape of the present invention is an adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, wherein the tensile strength of the foam substrate in the stretching direction of the adhesive tape is 650 N / cm². 2 The above-mentioned foam substrate has a 25% compressive strength of 1000 kPa or less, and a density of 0.35 g / cm³. 3 More than 0.90g / cm 3 The following applies:

[0025] Figure 1 is a schematic cross-sectional view showing an example of the adhesive tape of the present invention. In the adhesive tape 10 of the present invention illustrated in Figure 1, an adhesive layer 2a is disposed on one surface of a foam substrate 1, and an adhesive layer 2b is disposed on the other surface of the foam substrate 1, and the foam substrate 1 has at least predetermined physical properties.

[0026] The adhesive tape of the present invention has an adhesive layer on one or both sides of a foam layer that satisfies predetermined physical properties, thereby maintaining excellent impact resistance while exhibiting good conformability to high stepped areas of the adherend. Furthermore, the adhesive tape of the present invention exhibits re-peelability, allowing for easy removal without tearing or leaving adhesive residue on the adherend surface when disassembling articles such as electronic devices, by stretching it to a desired angle relative to the adherend surface.

[0027] Herein, the adhesive tape of the present invention is an adhesive tape that can be peeled off by stretching (stretchable peelable tape), which can be removed from an object by stretching one end by pulling it at a desired angle relative to the surface to be adhered, thereby reducing the adhesive area with the object.Therefore, according to the adhesive tape of the present invention, in an article in which a pair of members are joined via the adhesive tape, by pulling one end of the adhesive tape at a desired angle relative to the surface to be adhered, the adhesive tape stretches and deforms, allowing the adhesive tape to be peeled off from one or both members.As a result, the pair of members can be peeled off again.

[0028] The tensile angle (sometimes referred to as the angle in the stretching direction) when stretching the adhesive tape of the present invention that has been bonded to an adherend can be, for example, 0° to 180° with respect to the bonded surface (adhesion surface) of the adherend, but it is preferable that the tensile angle is in the horizontal to vertical direction with respect to the adhesion surface of the adherend, i.e., 0° to 90°, and more preferably 0° to 45°. The tensile angle when stretching the adhesive tape refers to the angle made when pulling the other end of a pair of ends of the adhesive tape with respect to the bonded surface of the adherend to which the adhesive tape has been bonded, while one end of the pair of ends of the adhesive tape is fixed to the bonded surface. When the adhesive tape of the present invention has adhesive layers on both sides of a foam base material and members are bonded to both sides of the adhesive tape, the tensile angle is the angle made by the adhesive surface of the adhesive tape that is in contact with the reference surface when stretching the adhesive tape, with respect to the reference surface, using the bonded surface of the member bonded to one side of the adhesive tape as the reference surface. The pair of ends of the adhesive tape can be appropriately determined depending on its shape, etc., and if the adhesive tape is rectangular, it is preferable that the ends be located in the longitudinal direction (length direction).

[0029] 1. Foamed substrate The foam substrate in the present invention has at least the tensile strength in the flow direction, the 25% compressive strength, and the density all within predetermined ranges.

[0030] Furthermore, the foam substrate in the present invention, in other words, has a tensile strength in the stretching direction of the adhesive tape, a 25% compressive strength, and a density that are all within a predetermined range.

[0031] (1) Physical properties / properties The foam substrate in the present invention has a tensile strength in the flow direction of 650 N / cm². 2 This concludes the explanation. By setting the tensile strength of the foam substrate in the flow direction to the above range, it is possible to ensure that the foam substrate and adhesive tape do not tear when the adhesive tape of the present invention is stretched and peeled off again.

[0032] The tensile strength of the foam substrate in the flow direction is 650 N / cm². 2 Anything above that is fine, but especially 700 N / cm².2 The above is preferable. Furthermore, there is no particular upper limit to the tensile strength in the flow direction of the foam substrate, but 3,500 N / cm is a reasonable value for a typical foam substrate. 2 The following is preferable, and from the viewpoint of improving flexibility and impact resistance, 1,500 N / cm² is preferable. 2 The following is preferred: 1,480 N / cm 2 The following is more preferable: More specifically, a preferred range for the tensile strength in the flow direction of the foam substrate is 650 N / cm². 2 More than 1,500N / cm 2 The following is preferred: 700 N / cm 2 More than 1,500N / cm 2 The following is more preferable: By keeping the tensile strength of the foam substrate in the flow direction within the above range, sufficient strength can be ensured so that the foam substrate and adhesive tape do not tear when the adhesive tape of the present invention is stretched and re-peeled, and the flexibility necessary for conforming to stepped portions can be ensured.

[0033] Furthermore, the tensile strength in the width direction of the foam substrate is not particularly limited, but is 450 N / cm². 2 Preferably, it is 470 N / cm². 2 More than 1,200N / cm 2 The following is more preferable: 500 N / cm 2 More than 1,000N / cm 2 The following is even more preferable: By setting the tensile strength in the width direction of the foam substrate within this range, sufficient strength can be ensured to prevent the adhesive tape from tearing when it is peeled off again, and the flexibility necessary for conforming to stepped surfaces can be ensured.

[0034] In this invention, in particular, by having the flow direction of the foam substrate correspond to the stretching direction of the adhesive tape, a significant effect can be achieved in which the foam substrate and adhesive tape can be made to have sufficient strength to prevent tearing when the adhesive tape of the present invention is stretched and re-peeled off. The tensile strength of the foam substrate in the stretching direction of the adhesive tape is sometimes referred to as the tensile strength of the foam substrate in the stretching direction. In this case, the direction perpendicular to the stretching direction of the adhesive tape may correspond to the width direction of the foam substrate. When the adhesive tape is rectangular, it is preferable that the stretching direction is the same as the longitudinal direction of the adhesive tape.

[0035] In other words, in the present invention, the tensile strength of the foam substrate in the stretching direction of the adhesive tape (tensile strength of the foam substrate in the stretching direction) is 650 N / cm 2 Anything above that is acceptable, especially 700 N / cm². 2 The above is preferable. On the other hand, there is no particular upper limit to the tensile strength of the foam substrate in the stretching direction, but a general foam substrate can achieve 3,500 N / cm². 2 The following is preferable, and from the viewpoint of improving flexibility and impact resistance, 1,500 N / cm² is preferable. 2 The following is preferred: 1,480 N / cm 2 The following is more preferable: More specifically, a preferred range for the tensile strength of the upper foam substrate in the stretching direction is 650 N / cm. 2 More than 1,500N / cm 2 The following is preferred: 700 N / cm 2 More than 1,500N / cm 2 The following is more preferable: By keeping the tensile strength of the foam substrate in the stretching direction within the above range, sufficient strength can be ensured so that the foam substrate and adhesive tape do not tear easily when the adhesive tape of the present invention is stretched and re-peeled, while also ensuring the flexibility necessary for conforming to stepped portions.

[0036] Furthermore, the tensile strength of the foam substrate in the direction perpendicular to the stretching direction of the adhesive tape is not particularly limited, but is 450 N / cm². 2 Preferably, it is 470 N / cm². 2More than 1,200N / cm 2 The following is more preferable: 500 N / cm 2 More than 1,000N / cm 2 It is even more preferable that the adhesive tape has sufficient strength to prevent tearing during re-peeling, and that it has the flexibility necessary to conform to stepped surfaces.

[0037] The tensile strength in each direction of the foam substrate can be adjusted by appropriately selecting the foam material used as the foam substrate, as well as by methods such as stretching during the manufacturing process of the foam substrate.

[0038] The foam substrate in the present invention has a 25% compressive strength of 1,000 kPa or less. Having the 25% compressive strength of the foam substrate within this range allows the adhesive tape of the present invention to have good conformability to the adherend and excellent waterproofing. The 25% compressive strength of the foam substrate should be 1,000 kPa or less, preferably 800 kPa or less, and more preferably 500 kPa or less. Furthermore, the lower limit of the 25% compressive strength of the foam substrate is not particularly limited as long as it is a size that allows the adhesive tape of the present invention to achieve both conformability and re-peelability due to stretching. It is preferably 30 kPa or more, more preferably 50 kPa or more, more preferably 90 kPa or more, and even more preferably 100 kPa or more. More specifically, a preferred range for the 25% compressive strength of the foam substrate is 30 kPa or more and 1000 kPa or less, more preferably 50 kPa or more and 800 kPa or less, and even more preferably 100 kPa or more and 500 kPa or less. By setting the 25% compressive strength of the foam substrate to the above preferred range, the adhesive tape of the present invention can conform more easily to adherends, especially those with uneven shapes or rough surfaces, and can exhibit high adhesive strength and waterproofing properties.

[0039] The 25% compressive strength of the foam substrate was measured in accordance with JIS K6767. Specifically, a sample cut into 25 mm squares was attached to a stainless steel plate with a larger surface area than the sample, and the strength was measured when the sample was compressed to 25% of its initial thickness at a speed of 0.5 mm / min using a 7 mm diameter stainless steel probe under conditions of 23°C and 50% RH.

[0040] The density of the foam substrate in this invention is 0.35 g / cm³. 3 More than 0.90g / cm 3 The following is true: By keeping the density of the foam substrate within the above range, the adhesive tape of the present invention can exhibit high impact resistance, and strength can be ensured so that the foam and adhesive tape do not tear easily when peeled off by stretching. As a result, the adhesive tape of the present invention can be sufficiently stretched, and good re-peelability can be obtained with less adhesive residue on the adhered surface. Furthermore, by keeping the density of the foam substrate within the above range, the high flexibility necessary for re-peelability by stretching and conformability to stepped surfaces can be achieved.

[0041] The density of the above foam substrate is 0.90 g / cm³. 3 The following is acceptable, but preferably 0.80 g / cm² is preferable because it allows for a balance between higher impact resistance, re-peelability upon stretching, and the flexibility necessary for conforming to the surface. 3 The following is possible, preferably 0.70 g / cm³ 3 More preferably, 0.60 g / cm³ 3 The following applies. Furthermore, the density of the above foam substrate is 0.35 g / cm³. 3 The above would suffice, but 0.40 g / cm² is preferable because it allows for a balance between higher impact resistance, re-peelability after stretching, and the flexibility necessary for conforming to the surface. 3 The above is preferable, 0.45 g / cm³ 3 The above is even more preferable, 0.50 g / cm³ 3 The above is preferable.

[0042] Note that the density of the foam substrate refers to the apparent density measured in accordance with JIS K6767, and is calculated by cutting the foam into a 4cm x 5cm rectangle and measuring approximately 15cm. 3Prepare a quantity and measure its mass. The value is calculated based on the above-mentioned mass and volume.

[0043] The elongation at break of the foam substrate, i.e., the tensile elongation at the time of cutting in the tensile test, is not particularly limited, but the elongation at break in the flow direction of the foam substrate can be, for example, 200% or more, preferably 300% or more, more preferably 400% or more, even more preferably 500% or more, and particularly preferably 600% or more. Furthermore, the elongation at break in the flow direction of the foam substrate can be 3000% or less, preferably 2500% or less, even more preferably 2000% or less, even more preferably 1500% or less, and particularly preferably 1200% or less. More specifically, a preferred range for the elongation at break in the flow direction of the foam substrate is preferably 200% or more and 1500% or less, more preferably 300% or more and 1200% or less, and even more preferably 500% or more and 1200% or less. By keeping the elongation at break in the flow direction within the above range, deterioration of processability and reduction in application workability of the adhesive tape can be suppressed even with a foamed, flexible substrate. Furthermore, it is possible to suppress excessive stress when peeling the adhesive tape from the adherend, and to suppress excessive stretching distance, enabling re-peel-off work in a small space.

[0044] Furthermore, the elongation at break in the width direction of the foam substrate can be, for example, 200% or more, preferably 300% or more, more preferably 400% or more, even more preferably 500% or more, and particularly preferably 600% or more. Also, the elongation at break in the width direction of the foam substrate can be 3000% or less, preferably 2500% or less, even more preferably 2000% or less, even more preferably 1500% or less, and particularly preferably 1200% or less. More specifically, a preferred range for the elongation at break in the width direction of the foam substrate is 200% to 1500%, more preferably 300% to 1200%, and even more preferably 500% to 1200%. By having the elongation at break in the width direction within the above range, deterioration of the processability of the adhesive tape and a decrease in application workability can be suppressed even with a foamed, flexible substrate. Furthermore, it can suppress the stress that occurs when peeling the adhesive tape from the adherend, and it can also prevent the stretching distance from becoming too long, making it possible to work in a small space.

[0045] As described above, in the present invention, the effects of the present invention can be particularly pronounced when the flow direction of the foam substrate corresponds to the stretching direction of the adhesive tape. Therefore, the elongation at break of the foam substrate in the stretching direction of the adhesive tape can be 200% or more, preferably 300% or more, more preferably 400% or more, even more preferably 500% or more, and particularly preferably 600% or more. On the other hand, the elongation at break of the foam substrate in the stretching direction of the adhesive tape can be 3000% or less, preferably 2500% or less, even more preferably 2000% or less, even more preferably 1500% or less, and particularly preferably 1200% or less. More specifically, the elongation at break of the foam substrate in the stretching direction of the adhesive tape is preferably 200% or more and 1,500% or less, more preferably 300% or more and 1,200% or less, and even more preferably 500% or more and 1,200% or less. By keeping the dimensions within the above range, it is possible to suppress deterioration of the processability and reduction in application workability of the adhesive tape, even with a foamed, flexible substrate. Furthermore, it is possible to suppress the excessive stress when peeling the adhesive tape from the adherend, and to prevent the stretching distance from becoming too long, enabling re-peeling work in a small space.

[0046] Furthermore, the elongation at break of the foam substrate in a direction perpendicular to the stretching direction of the adhesive tape can be, for example, 200% or more, preferably 300% or more, more preferably 400% or more, even more preferably 500% or more, and particularly preferably 600% or more. On the other hand, the elongation at break of the foam substrate in a direction perpendicular to the stretching direction of the adhesive tape can be 3000% or less, preferably 2500% or less, even more preferably 2000% or less, even more preferably 1500% or less, and particularly preferably 1200% or less. More specifically, the elongation at break of the foam substrate in a direction perpendicular to the stretching direction of the adhesive tape is preferably 200% or more and 1500% or less, more preferably 300% or more and 1200% or less, and even more preferably 500% or more and 1200% or less. Within the above range, even with a foamed, flexible substrate, deterioration of the processability of the adhesive tape and a decrease in application workability can be suppressed. Furthermore, the stress when peeling the adhesive tape from the adherend can be suppressed, and the stretching distance can be prevented from becoming too long, making it possible to work in a small space.

[0047] The tensile strength and elongation at break of the foam substrate in each direction were measured in accordance with JIS K6767. Specifically, test specimens of the foam substrate cut to a width of 1 cm with a gauge spacing of 2 cm were measured using a Tensilon tensile testing machine at 23°C and 50% RH under measurement conditions of a tensile speed of 300 mm / min. The maximum strength measured was defined as the tensile strength. The elongation at break was defined as the elongation rate measured when the specimen broke using the tensile measurement method described above. The tensile strength and elongation at break in the flow direction of the foam substrate were measured using test specimens cut so that the gauge spacing was in the flow direction of the foam substrate, and the flow direction of the foam substrate was the tensile direction. The tensile strength and elongation at break in the width direction of the foam substrate were measured using test specimens cut so that the gauge spacing was in the width direction of the foam substrate, and the width direction of the foam substrate was the tensile direction.

[0048] The tensile stress of the foam substrate in the present invention at 100% strain based on the stress-strain curve in the flow direction is not particularly limited as long as it is stretchable, for example, 500 N / cm. 2 The following can be used, among others, 450 N / cm 2 Preferably, it is 150 N / cm². 2 It is even more preferable that the following conditions apply: 100 N / cm 2 The following is more preferable. Similarly, the tensile stress at 100% strain based on the stress-strain curve in the stretching direction of the adhesive tape is not particularly limited as long as it is stretchable, for example, 500 N / cm 2 The following can be used, among others, 450 N / cm 2 Preferably, it is 150 N / cm². 2 It is even more preferable that the following conditions apply: 100 N / cm 2 The following is more preferable: By setting the tensile stress at 100% strain based on the stress-strain curve of the foam substrate within this range, the resistance at the beginning of stretching (initial stretching) is reduced, and the re-peelability can be further improved.

[0049] More specifically, the tensile strength of the foam substrate in the flow direction is 650 N / cm². 2 More preferably, 700 N / cm 2 Furthermore, the tensile stress at 100% strain, based on the stress-strain curve in the flow direction, is 450 N / cm. 2 More preferably, 150 N / cm 2 More preferably, 100 N / cm 2 The following conditions ensure sufficient strength to prevent tearing of the foam substrate and adhesive tape when the adhesive tape of the present invention is stretched and re-peeled, while also reducing the initial stretching resistance and further improving re-peelability. The same applies to the tensile strength of the foam substrate and the tensile stress at 100% strain based on the stress-strain curve in the stretching direction of the adhesive tape.

[0050] The lower limit of the tensile stress at 100% strain, based on the stress-strain curve of the foam substrate in the flow direction and / or the stretching direction of the adhesive tape, is not particularly limited as long as the foam substrate has sufficient strength to prevent tearing in the initial stages of stretching, for example, 10 N / cm². 2 It can be set to the above, in particular 20 N / cm 2 Preferably, it is 30 N / cm 2 It is even more preferable that the load is 40 N / cm² or higher. 2 The above is preferable.

[0051] The tensile stress at 100% strain based on the stress-strain curve of the foam substrate refers to the stress at 100% strain in the stress-strain curve (so-called SS curve) measured by tensile testing a test specimen made of foam substrate with a gauge spacing of 2 cm and a width of 1 cm using a tensile testing machine at a tensile speed of 300 mm / min in a measurement environment of 23°C and 50% humidity. The tensile stress based on the strength-strain curve at 100% strain in the flow direction of the foam substrate was measured using a test specimen cut so that the flow direction of the foam substrate is in the direction of the gauge markings on the test specimen.

[0052] In the present invention, the foam substrate is preferably 50 μm or more, more preferably 100 μm or more, and even more preferably 150 μm or more, in order to achieve a balance between impact resistance, conformability, and the strength of the tape when stretched and re-peeled. Furthermore, the upper limit of the thickness of the foam substrate is not particularly limited, but can be set according to the application to which the adhesive tape is applied and the size of the article. Specifically, the thickness of the foam substrate is preferably in the range of 50 μm to 500 μm, more preferably in the range of 100 μm to 400 μm, and most preferably in the range of 150 μm to 300 μm. By setting the thickness of the foam substrate within the above range, the adhesive tape exhibits good conformability and impact resistance, can be stretched without tearing when stretched and peeled, and can be easily peeled off from the adherend. In addition, it is possible to suppress the increase in thickness of articles to which the adhesive tape is applied, especially electronic devices that have a high demand for miniaturization, and improve the design and portability of electronic devices.

[0053] The thickness of the foam substrate is the average value of five thickness measurements taken at 100 mm intervals along its length, and can be measured using, for example, a Dial Thickness Gauge Type G (manufactured by Ozaki Seisakusho Co., Ltd.).

[0054] The various properties of the foam substrate described above (density, compressive strength, tensile strength, elongation at break, etc.) can be appropriately adjusted depending on the materials used to form the foam substrate, the foam structure, the degree of stretching during the manufacturing of the foam substrate, etc.

[0055] The foam substrate in the present invention is not particularly limited as long as it possesses the above-mentioned properties, and may have an open-cell structure or a closed-cell structure, but a closed-cell structure is preferred because it can exhibit higher impact resistance. Furthermore, the foam substrate may have a single-layer structure or a multilayer structure of two or more layers.

[0056] The foam substrate described above may be subjected to surface treatments such as corona treatment, flame treatment, plasma treatment, hot air treatment, ozone / ultraviolet treatment, or application of an easy-adhesion treatment agent in order to improve adhesion with the adhesive layer or other layers. The surface treatment is performed so that the wetting index using a wetting reagent is 36 mN / m or higher, preferably 40 mN / m or higher, and more preferably 50 mN / m or higher, in order to obtain good adhesion with the adhesive. The foam substrate with improved adhesion may be laminated with the adhesive layer in a continuous process. Alternatively, the foam substrate with improved adhesion may be wound up and stored, and then laminated with the adhesive layer in a separate process at a later date. When the foam substrate is wound up, it is preferable to wind it up together with interleaving paper such as paper, polyethylene, polypropylene, or polyester film to prevent the blocking phenomenon between foam substrates with improved adhesion, and polypropylene film or polyester film with a thickness of 25 μm or less is preferred.

[0057] (2) Composition The resin constituting the foam substrate is not particularly limited as long as it can produce a foam substrate capable of achieving the above physical properties. Examples include polyolefin resins, polyurethane resins, rubber resins such as natural rubber and elastomers, and acrylic resins. In particular, the foam substrate is preferably composed mainly of polyolefin resins or rubber resins, and more preferably of polyolefin resins or thermoplastic elastomer resins. By using these resins as the main components, it becomes easier to ensure the flexibility and mechanical strength of the foam substrate, enabling high conformability and high impact resistance throughout the adhesive tape, and allowing for re-peelability without tearing when the tape is stretched. The main component in the foam substrate refers to the resin component that is most abundant in the total amount of resin constituting the foam substrate. Specifically, it refers to a resin component that is present in an amount of 50% by mass or more, preferably 80% by mass or more, 90% by mass or more, or 95% by mass or more of the total amount of resin.

[0058] <Polyolefin resins> A preferred embodiment of the foam substrate in the present invention is a polyolefin resin foam mainly composed of a polyolefin resin, due to its excellent conformability to irregularities on the surface of the adherend and its buffering and absorption properties. The polyolefin resin constituting the polyolefin foam is a thermoplastic resin, and its type is not particularly limited, but examples include polyethylene resin, polypropylene resin, ethylene-propylene copolymer resin, and ethylene-vinyl acetate copolymer. Among these, polyethylene resin is preferred because it is easy to manufacture with a uniform thickness and easy to impart suitable flexibility. In particular, the polyethylene resin content in the polyolefin resin is preferably 40% by mass or more, more preferably 50% by mass or more, even more preferably 60% by mass or more, and especially preferably 100% by mass.

[0059] As for the polyethylene resin mentioned above, polyethylene resins obtained using a metallocene compound containing a tetravalent transition metal as a polymerization catalyst are preferable because they have a narrow molecular weight distribution, and in the case of copolymers, copolymer components are introduced in almost equal proportions to all molecular weight components, allowing for uniform crosslinking of polyolefin foams. Therefore, since the foam sheet is uniformly crosslinked, it is easy to uniformly stretch the foam sheet as needed, and it is easier to make the thickness of the resulting polyolefin resin foam uniform overall, which is preferable.

[0060] The above-mentioned polyolefin resin may contain polyolefin resins other than polyethylene resins obtained using a metallocene compound containing a tetravalent transition metal as a polymerization catalyst. Examples of such polyolefin resins include polyethylene resins other than those mentioned above, polypropylene resins, and the like. Furthermore, polyolefin resins may be used alone or in combination of two or more types.

[0061] Examples of such polyethylene resins include linear low-density polyethylene, low-density polyethylene, medium-density polyethylene, high-density polyethylene, ethylene-α-olefin copolymers containing 50% by mass or more of ethylene, and ethylene-vinyl acetate copolymers containing 50% by mass or more of ethylene. These may be used alone or in combination of two or more. Examples of α-olefins constituting the ethylene-α-olefin copolymers include propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, and 1-octene.

[0062] Furthermore, the polypropylene resin mentioned above is not particularly limited, and examples include polypropylene and propylene-α-olefin copolymers containing 50% by mass or more of propylene. These may be used alone or in combination of two or more. Examples of α-olefins constituting the propylene-α-olefin copolymer include ethylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, and 1-octene.

[0063] <Rubber-based resin> A preferred embodiment of the foam substrate in the present invention is a rubber-based resin foam mainly composed of a rubber-based resin. The rubber-based resin constituting the rubber-based resin foam is not particularly limited and includes natural rubber, thermoplastic elastomer resin, thermosetting elastomer resin, etc. These rubber-based resins may be used individually or in combination of two or more.

[0064] In particular, the foam substrate described above is preferably composed mainly of elastomer resin. Furthermore, it is more preferable that the main component be a thermoplastic elastomer resin.

[0065] Thermoplastic elastomer resins can be either non-crosslinked or crosslinked. From the viewpoint of effectively enhancing cushioning properties, non-crosslinked elastomers are preferred.

[0066] Furthermore, the thermoplastic elastomer resin may be a hydrogenated thermoplastic elastomer obtained by hydrogenating the polymer constituting the thermoplastic elastomer. Specific examples of hydrogenated thermoplastic elastomers include hydrogenated styrene-based thermoplastic elastomers such as SEBC, which will be described later, and hydrogenated olefin-based thermoplastic elastomers such as CEBC.

[0067] The thermoplastic elastomer resin is not particularly limited as long as it can form a foam substrate that satisfies the desired physical properties, but examples include olefin-based thermoplastic elastomers, acrylic-based thermoplastic elastomers, urethane-based thermoplastic elastomers, styrene-based thermoplastic elastomers, silicone-based thermoplastic elastomers, ester-based thermoplastic elastomers, vinyl chloride-based thermoplastic elastomers, and amide-based thermoplastic elastomers. Among these, olefin-based thermoplastic elastomers or styrene-based thermoplastic elastomers are preferred, and olefin-based thermoplastic elastomers are more preferred because they are particularly excellent in terms of conformability to unevenness on the adherend surface and buffer absorption.

[0068] (Olefin-based thermoplastic elastomer resin) Olefin-based thermoplastic elastomer resins have a polyolefin in the hard segment and a rubber component and / or amorphous polyethylene in the soft segment. Furthermore, olefin-based thermoplastic elastomers may be simple blends of polyolefin and rubber components, dynamically crosslinked types in which partial or complete crosslinking is introduced to the rubber component by methods such as dynamic vulcanization, or polymerized types.

[0069] Examples of polyolefins constituting the hard segment of an olefin-based thermoplastic elastomer resin include homopolymers of α-olefins having 1 to 4 carbon atoms or copolymers of two or more α-olefins, specifically thermoplastic crystalline polyolefins such as polypropylene and polyethylene. Examples of rubber components constituting the soft segment include fully vulcanized or partially vulcanized rubber. Examples include butyl rubber, halobutyl rubber, ethylene-propylene rubber (EPM), ethylene-propylene-diene rubber (EPDM), ethylene-vinyl acetate copolymer, polybutene, polyisobutylene, chlorinated polyethylene, acrylonitrile-butadiene rubber, NBR, and natural rubber. Among these, ethylene-propylene rubber (EPM) and ethylene-propylene-diene rubber (EPDM) are preferred.

[0070] Furthermore, the olefin-based thermoplastic elastomer resin may also be a block copolymer. Examples of olefin-based thermoplastic elastomer resin block copolymers include those having crystalline blocks and soft segment blocks, such as crystalline olefin block-ethylene-butylene copolymer-crystalline olefin block copolymer (CEBC). In CEBC, the olefin crystals constituting the crystalline block are preferably crystalline ethylene.

[0071] (Styrene-based thermoplastic elastomer) Examples of the styrene-based thermoplastic elastomers mentioned above include block copolymers having polymer or copolymer blocks of styrene and polymer or copolymer blocks of conjugated diene compounds, and hydrogenated versions thereof. Examples of conjugated diene compounds include isoprene and butadiene.

[0072] Furthermore, the styrene-based thermoplastic elastomer may or may not be hydrogenated. If hydrogenation is performed, it can be carried out by known methods.

[0073] More specifically, the above-mentioned styrene-based thermoplastic elastomers include styrene-isoprene block copolymer (SI), styrene-isoprene-styrene block copolymer (SIS), styrene-butadiene block copolymer (SBR), styrene-butadiene-styrene block copolymer (SBS), styrene-ethylene / butylene-styrene block copolymer (SEBS), styrene-ethylene / propylene-styrene block copolymer (SEPS), styrene-ethylene / butylene block copolymer (SEB), styrene-ethylene / propylene block copolymer (SEP), styrene-ethylene / butylene-crystalline olefin block copolymer (SEBC), and styrene-isobutylene-styrene block copolymer (SIBS).

[0074] (Other resin components) When the resin constituting the foam substrate is a mixture of a thermoplastic elastomer resin as the main component and other resin components, the other resin components can be appropriately selected considering compatibility with the elastomer, and examples include polyolefin resin, polystyrene resin, polyethylene terephthalate resin, nylon resin, etc. Examples of polyolefin resins include polyethylene resin, polypropylene resin, ethylene-vinyl acetate copolymer, etc., and among these, polyethylene resin is preferred.

[0075] <Optional ingredients> The foam substrate in the present invention contains at least a resin, but may optionally contain colorants, plasticizers, antioxidants, foaming aids such as zinc oxide, bubble nucleation modifiers, heat stabilizers, flame retardants such as aluminum hydroxide and magnesium hydroxide, antistatic agents, hollow balloons / beads made of glass or plastic, fillers such as metal powders and metal compounds, conductive fillers, and thermally conductive fillers, as long as they do not impair its physical properties. These optional components will be explained in the section on the method of manufacturing the foam substrate, which will be described later.

[0076] (3) Method for manufacturing foam substrate The foam substrate in the present invention can be manufactured using known foam manufacturing methods and is not particularly limited, but in one embodiment, it can be manufactured by a method having at least a foam resin sheet forming step of forming a foam resin sheet by molding a foamable resin composition containing at least a resin component and a foaming agent into a sheet shape, and a foaming step of foaming the foam resin sheet to form a foam substrate.

[0077] The foaming resin composition comprises at least a resin and a blowing agent. The resin is the same as the resin of the foam substrate described above. For example, one example of a foaming resin composition for producing a polyolefin foam is a composition that contains at least 40% by mass of a polyolefin resin obtained using a metallocene compound containing a tetravalent transition metal as a polymerization catalyst, and a thermal decomposition type blowing agent.

[0078] As the blowing agent, a pyrolysis-type blowing agent used in the production of resin foams can be used. For example, organic blowing agents such as azo compounds, nitroso compounds, hydrazine derivatives, and semicarbazide compounds, and inorganic blowing agents such as ammonium acid, sodium carbonate, ammonium bicarbonate, sodium bicarbonate, ammonium nitrite, sodium borohydride, and anhydrous monosodium citrate can be used. The amount of blowing agent added to the foaming resin composition can be appropriately determined according to the foaming ratio of the foam substrate. For example, 1 to 40 parts by mass is preferred, and 1 to 30 parts by mass is more preferred, per 100 parts by mass of resin.

[0079] The foamed resin composition preferably contains a coloring agent depending on the design, light-shielding and concealing properties, light reflectivity, and light resistance required for the foamed substrate and the adhesive tape using it. For example, when light-shielding and concealing properties are required, the foamed resin composition preferably contains a black coloring agent. Examples of black coloring agents that can be used include carbon black, graphite, copper oxide, manganese dioxide, aniline black, perylene black, titanium black, cyanine black, activated carbon, ferrite, magnetite, chromium oxide, iron oxide, molybdenum disulfide, chromium complexes, complex oxide-based black dyes, and anthraquinone-based organic black dyes. Among these, carbon black is preferred from the viewpoint of cost, availability, insulation properties, and heat resistance to withstand the temperatures of the extrusion and heat foaming processes of the foamed polyolefin resin composition.

[0080] Furthermore, if aesthetic appeal, light reflectivity, lightfastness, etc., are required, it is preferable that the foamed resin composition contains a white coloring agent. Examples of white coloring agents that can be used include inorganic white coloring agents such as titanium dioxide, zinc oxide, aluminum oxide, silicon dioxide, magnesium oxide, zirconium oxide, calcium oxide, tin oxide, barium oxide, cesium oxide, yttrium oxide, magnesium carbonate, calcium carbonate, barium carbonate, zinc carbonate, aluminum hydroxide, magnesium hydroxide, calcium hydroxide, zinc hydroxide, aluminum silicate, calcium silicate, barium sulfate, calcium sulfate, barium stearate, zinc oxide, talc, silica, alumina, clay, kaolin, titanium phosphate, mica, gypsum, white carbon, diatomaceous earth, bentonite, lithopone, zeolite, and sericite, as well as organic white coloring agents such as silicone resin particles, acrylic resin particles, urethane resin particles, and melamine resin particles. Among these, aluminum oxide and zinc oxide are preferred from the viewpoint of cost, availability, color tone, and heat resistance to withstand the temperatures of the extrusion and heat foaming processes for foamed polyolefin resin compositions.

[0081] Furthermore, the foaming resin composition may contain other components as needed, within the limits that do not impair the physical properties of the foam substrate, such as plasticizers, antioxidants, foaming aids such as zinc oxide, bubble nucleation modifiers, heat stabilizers, flame retardants such as aluminum hydroxide and magnesium hydroxide, antistatic agents, fillers such as hollow balloons / beads made of glass or plastic, metal powders, metal compounds, conductive fillers, and thermally conductive fillers.

[0082] The content of colorants and other components is preferably 0.1% to 10% by mass, and more preferably 1% to 7% by mass, relative to the resin, in order to maintain the appropriate conformability, cushioning, and stretchability of the foam substrate.

[0083] Furthermore, when incorporating the above-mentioned colorants, thermal decomposition foaming agents, foaming aids, etc., into a foamed resin composition, it is preferable to pre-masterbatch the foamed resin composition or a thermoplastic resin with high compatibility with the foamed resin composition before supplying it to the extruder, in order to prevent uneven coloring, partial over-foaming, or under-foaming.

[0084] A foamed resin sheet is obtained by molding a foamed resin composition into a sheet and is equivalent to a precursor of a foamed substrate. In the foamed resin sheet formation process, a method for producing a foamed resin sheet is, for example, to supply a foamed resin composition to an extruder, melt and knead it, and then extrude it from the extruder into a sheet.

[0085] There are no particular restrictions on the method for foaming the foamable resin sheet in the foaming process, and it can be appropriately selected depending on the purpose. Examples include heating with hot air, heating with infrared rays, salt baths, and oil baths, and these may be used in combination. Among these, heating with hot air and heating with infrared rays are preferred because they result in less difference in the appearance of the foam surface between the front and back sides.

[0086] A method for manufacturing a foamed substrate may include a crosslinking step between the foamed resin sheet formation step and the foaming step, in which the foamed resin sheet is crosslinked. In particular, when manufacturing an olefin-based foam, it is preferable that the foamed polyolefin resin sheet is crosslinked.

[0087] In the crosslinking process, there are no particular limitations on the method for crosslinking the foamed resin sheet, but examples include irradiating the foamed resin sheet with ionizing radiation, or pre-mixing an organic peroxide into the foamed resin composition before forming the foamed resin sheet, and then heating the resulting foamed resin sheet to decompose the organic peroxide. These methods may be used in combination.

[0088] Examples of ionizing radiation include electron beams, alpha rays, beta rays, and gamma rays. The dose of ionizing radiation is adjusted as appropriate so that the gel fraction of the foam substrate falls within the preferred range described above, but a range of 5 kGy to 200 kGy is preferred. Furthermore, in order to form a uniform cross-linked structure and, as a result, a relatively uniform foam structure, it is preferable to irradiate both sides of the foamed resin sheet with ionizing radiation, and it is preferable to make the irradiation dose the same on both sides.

[0089] Examples of organic peroxides that can be incorporated into foaming resin compositions include 1,1-bis(t-butylperoxy)3,3,5-trimethylcyclohexane, 1,1-bis(t-butylperoxy)cyclohexane, 2,2-bis(t-butylperoxy)octane, n-butyl-4,4-bis(t-butylperoxy)valerate, di-t-butylperoxide, t-butylcumylperoxide, dicumylperoxide, and α,α'-bis(t-butylperoxy-m-isopropyl)ben Examples include zehn, 2,5-dimethyl-2,5-di(t-butylperoxy)hexane, 2,5-dimethyl-2,5-di(t-butylperoxy)hexyn-3, benzoyl peroxide, cumyl peroxyneodecanate, t-butylperoxybenzoate, 2,5-dimethyl-2,5-di(benzoylperoxy)hexane, t-butylperoxyisopropyl carbonate, and t-butylperoxyallyl carbonate, which may be used individually or in combination of two or more. The amount of organic peroxide added is preferably 0.01 parts by mass or more and 5 parts by mass or less, and more preferably 0.1 parts by mass or more and 3 parts by mass or less, per 100 parts by mass of resin contained in the foaming resin composition.

[0090] The method for manufacturing a foamed substrate may include a stretching step in which the foamed substrate is melted or softened after the foaming step and stretched in either the flow direction or the width direction, or both, or in either the flow direction or the width direction, of the foamed resin sheet simultaneously with the foaming step. The stretching step may be performed as needed and may be performed multiple times.

[0091] The stretching process described above may be performed after foaming is complete, or it may be performed while the foamable resin sheet is being foamed. When the stretching process is performed after the foaming process, the foamed substrate obtained in the foaming process may be stretched while maintaining the molten state it was in during foaming, without cooling it, or the foamed substrate may be cooled, and then the foamed sheet may be heated again to melt or soften before the foamed substrate is stretched.

[0092] Here, the molten state of the foam substrate refers to the state in which the foam substrate is heated to a temperature above the melting point of the resin constituting the foam substrate. Furthermore, the softening of the foam substrate refers to the state in which the foam substrate is heated to a temperature above the softening point of the resin constituting the foam substrate but below the melting point. By stretching the foam substrate, the bubbles in the foam substrate are stretched and deformed in a predetermined direction, and a foam can be manufactured in which the aspect ratio of the bubbles is within a predetermined range.

[0093] Furthermore, the foam substrate may be stretched in the direction of flow or width of the elongated foamed resin sheet, or it may be stretched in both the flow and width directions. When stretching the foam substrate in both the flow and width directions, it may be stretched simultaneously in both directions, or it may be stretched in each direction separately.

[0094] Methods for stretching the foam substrate in the flow direction include, for example, a method in which the speed at which the long foam sheet is wound up while being cooled after foaming (winding speed) is faster than the speed at which the long foam sheet is supplied to the foaming process (supply speed) to stretch the foam substrate in the flow direction, and a method in which the speed at which the foam substrate is wound up (winding speed) is faster than the speed at which the obtained foam substrate is supplied to the stretching process (supply speed) to stretch the foam substrate in the flow direction. In the former method, since the foam sheet expands in the flow direction due to its own foaming, when stretching the foam substrate in the flow direction, it is necessary to adjust the supply speed and winding speed of the foam substrate so that the foam substrate is stretched in the flow direction by more than the amount of expansion of the foam sheet due to foaming.

[0095] Furthermore, a preferred method for stretching the foam substrate in the width direction is to grip both ends of the foam substrate in the width direction with a pair of gripping members and gradually move this pair of gripping members apart from each other to stretch the foam substrate in the width direction. Note that since the foamed resin sheet expands in the width direction due to its own foaming, when stretching the foam substrate in the width direction, it is necessary to take into account the expansion in the width direction due to the foaming of the foamed resin sheet and adjust so that the foam substrate is stretched in the width direction by more than that expansion.

[0096] The stretching ratio in the flow direction of the foam substrate is preferably 1.1 times or more and 2.0 times or less, and more preferably 1.2 times or more and 1.5 times or less. Furthermore, the stretching ratio in the width direction of the foam substrate is preferably 1.2 times or more and 4.5 times or less, and more preferably 1.5 times or more and 3.5 times or less.

[0097] 2. Adhesive layer As the adhesive tape of the present invention, one can be used that has an adhesive layer directly or via another layer on one or both sides of the foam substrate described above.

[0098] (1) Composition The adhesive that can be used to form the above-mentioned adhesive layer is not particularly limited as long as it contains at least an adhesive resin as its main component, but for example, an acrylic adhesive in which (meth)acrylic copolymer is the main component of the adhesive resin, a urethane adhesive in which urethane polymer is the main component of the adhesive resin, a rubber adhesive in which rubber polymer is the main component of the adhesive resin, a silicone adhesive in which silicone polymer is the main component of the adhesive resin, and so on can be used. In particular, it is preferable to select one or more adhesives from acrylic adhesives, urethane adhesives, and rubber adhesives.

[0099] The main component of the adhesive resin refers to the resin component that is present in the largest quantity in the adhesive resin, specifically, the resin component that is present in the adhesive resin in an amount of 80% or more, preferably 90% or more, more preferably 95% or more, and more preferably 99% or more.

[0100] <Acrylic adhesive> Acrylic adhesives contain at least an adhesive resin whose main component is a (meth)acrylic copolymer. The above acrylic adhesives may contain other components such as tackifying resins, crosslinking agents, and fillers as needed. (Meth)acrylic means acrylic or methacrylic. (Meth)acrylate means acrylate or methacrylate.

[0101] In acrylic adhesives, the (meth)acrylic copolymer used as the main component of the adhesive resin is not particularly limited, but examples include (meth)acrylic random copolymers and (meth)acrylic block copolymers. The (meth)acrylic random copolymers and (meth)acrylic block copolymers may be used independently or in combination.

[0102] ((meth)acrylic random copolymer) In acrylic adhesives, one embodiment of the (meth)acrylic copolymer used as the main component of the adhesive resin is a (meth)acrylic random copolymer (hereinafter referred to as (meth)acrylic copolymer (A)). Acrylic adhesives may contain one or more (meth)acrylic random copolymers as the adhesive resin.

[0103] (Meth)acrylic copolymer (A) is obtained by polymerizing monomer components containing (meth)acrylic monomers. Examples of (meth)acrylic monomers that can be used in the production of (meth)acrylic copolymer (A) include methyl (meth)acrylate, ethyl (meth)acrylate, n-butyl (meth)acrylate, isobutyl (meth)acrylate, t-butyl (meth)acrylate, n-hexyl (meth)acrylate, n-octyl (meth)acrylate, isooctyl (meth)acrylate, isononyl (meth)acrylate, cyclohexyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, and other (meth)acrylates having alkyl groups with 1 to 12 carbon atoms.

[0104] In particular, as the (meth)acrylic monomer, it is preferable to use a (meth)acrylate having an alkyl group having 4 to 12 carbon atoms, and it is even more preferable to use a (meth)acrylate having an alkyl group having 4 to 8 carbon atoms. Using either or both of n-butyl acrylate and 2-ethylhexyl acrylate is especially preferable for achieving both excellent adhesive strength and excellent conformability.

[0105] The (meth)acrylate having an alkyl group with 1 to 12 carbon atoms is preferably used in an amount of 60% by mass or more, more preferably in the range of 80% to 98.5% by mass, and even more preferably in the range of 90% to 98.5% by mass, based on the total amount of monomers used in the production of the (meth)acrylic copolymer (A).

[0106] Furthermore, when producing the (meth)acrylic copolymer (A) described above, a highly polar vinyl monomer can be used as the monomer. As the highly polar vinyl monomer, one or more types of vinyl monomers having hydroxyl groups, vinyl monomers having carboxyl groups, vinyl monomers having amide groups, etc., can be used.

[0107] As monomers having a hydroxyl group, for example, (meth)acrylates having a hydroxyl group such as 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, and 6-hydroxyhexyl (meth)acrylate can be used.

[0108] Examples of vinyl monomers having a carboxyl group include acrylic acid, methacrylic acid, itaconic acid, maleic acid, (meth)acrylic acid dimer, crotonic acid, ethylene oxide-modified succinic acid acrylate, etc., with acrylic acid being the preferred choice.

[0109] Examples of monomers having an amide group include N-vinylpyrrolidone, N-vinylcaprolactam, acryloylmorpholine, acrylamide, and N,N-dimethylacrylamide.

[0110] In addition to those mentioned above, vinyl acetate, ethylene oxide-modified succinic acid acrylate, 2-acrylamido-2-methylpropanesulfonic acid, and others can also be used as the highly polar vinyl monomers.

[0111] The above-mentioned highly polar vinyl monomer is preferably used in an amount of 1.5% to 20% by mass, more preferably in an amount of 1.5% to 10% by mass, and even more preferably in an amount of 2% to 8% by mass, relative to the total amount of monomer used in the production of the above-mentioned (meth)acrylic copolymer (A).

[0112] When using an adhesive containing a crosslinking agent described later, it is preferable to use a (meth)acrylic copolymer (A) having a functional group that reacts with the functional group of the crosslinking agent. Examples of functional groups that the (meth)acrylic copolymer (A) may have include hydroxyl groups. These hydroxyl groups can be introduced into the (meth)acrylic copolymer (A), for example, by using a vinyl monomer having hydroxyl groups as the monomer. The vinyl monomer having hydroxyl groups is preferably used in an amount of 0.01% to 1.0% by mass, and more preferably in an amount of 0.03% to 0.3% by mass, relative to the total amount of monomer used in the production of the (meth)acrylic copolymer (A).

[0113] As for the (meth)acrylic copolymer (A) mentioned above, using one with a weight-average molecular weight of 400,000 to 3,000,000 is preferable in obtaining a double-sided adhesive tape that maintains excellent impact resistance while also having re-peelability that allows for easy removal during dismantling, etc. Using one with a weight-average molecular weight of 700,000 to 2,500,000 is even preferable because it further improves both impact resistance and re-peelability.

[0114] The weight-average molecular weight is measured by gel permeation chromatography (GPC) and refers to the value calculated by converting it to standard polystyrene. Specifically, the above weight-average molecular weight can be measured using a GPC instrument (HLC-8320GPC) manufactured by Tosoh Corporation under the following conditions. Sample concentration: 0.5% by mass (tetrahydrofuran solution) Sample injection volume: 100 μL Eluent: Tetrahydrofuran Flow rate: 1.0mL / min Measurement temperature: 40℃ This column: TSKgel GMHHR-H (20) x 2 Guard column: TSKgel HXL-H Detector: Differential refractometer Weight-average molecular weight of standard polystyrene: 10,000 to 20,000,000 (manufactured by Tosoh Corporation)

[0115] The above (meth)acrylic copolymer (A) can be produced by polymerizing the above monomer by methods such as solution polymerization, bulk polymerization, suspension polymerization, and emulsion polymerization. Adopting solution polymerization is preferable for improving the production efficiency of the (meth)acrylic copolymer (A). Examples of the solution polymerization method include mixing and stirring the above monomer, a known polymerization initiator, and an organic solvent at a temperature of preferably 40°C to 90°C to carry out radical polymerization. The (meth)acrylic copolymer (A) obtained by the above method may be dissolved or dispersed in the organic solvent, for example, if produced by solution polymerization.

[0116] ((meth)acrylic block copolymer) In acrylic adhesives, another embodiment of the (meth)acrylic copolymer used as the main component of the adhesive resin is a (meth)acrylic block copolymer (hereinafter referred to as (meth)acrylic copolymer (B)). Acrylic adhesives may contain one or more (meth)acrylic block copolymers as the adhesive resin.

[0117] The (meth)acrylic copolymer (B) may contain two or more polymer blocks mainly composed of (meth)acrylic acid ester units, and may be a (meth)acrylic diblock copolymer or a (meth)acrylic triblock copolymer. In particular, it is preferable that it contains at least a (meth)acrylic triblock copolymer.

[0118] The above (meth)acrylic triblock copolymer is not particularly limited, but examples include those having a structure represented by the general formula (-[A1]-[B]-[A2]-). Here, A1 and A2 represent alkyl methacrylate polymer blocks, and B represents alkyl acrylate polymer block. A1 and A2 are independent of each other and may be the same alkyl methacrylate monomer block or alkyl methacrylate monomer blocks having different chemical structures.

[0119] Examples of alkyl methacrylate monomers constituting the alkyl methacrylate monomer block mentioned above include methyl methacrylate, ethyl methacrylate, n-propyl methacrylate, isopropyl methacrylate, isobutyl methacrylate, sec-butyl methacrylate, t-butyl methacrylate, 2-ethylhexyl methacrylate, isobolonyl methacrylate, cyclohexyl methacrylate, 2-cyanoethyl methacrylate, and phenyl methacrylate. These methacrylate monomers may be used individually or in combination of two or more.

[0120] Examples of alkyl acrylate monomers constituting the alkyl acrylate polymer block mentioned above include methyl acrylate, ethyl acrylate, n-propyl acrylate, isopropyl acrylate, n-butyl acrylate, isobutyl acrylate, sec-butyl acrylate, n-tetradecyl acrylate, t-butyl acrylate, and 2-ethylhexyl acrylate. These acrylate monomers may be used individually or in combination of two or more.

[0121] Alkyl methacrylate polymer blocks and alkyl acrylate polymer blocks may contain other components (constituent units) such as acrylic acid monomers, methacrylate monomers, or olefins such as ethyl and propylene, or lactones such as ε-caprolactone and palerolactone.

[0122] The above (meth)acrylic triblock copolymer may be modified, if necessary, with functional groups such as hydroxyl groups, carboxyl groups, acid anhydride groups, amino groups, or trimethoxysilyl groups in the molecular side chains or at the molecular main chain ends.

[0123] Examples of the (meth)acrylic diblock copolymers mentioned above include those having a structure represented by the general formula (-[A]-[B]-). Polymer blocks A and B constituting the (meth)acrylic diblock copolymer are the same as polymer block A1 or A2 and polymer block B in the (meth)acrylic triblock copolymer.

[0124] The weight-average molecular weight Mw of the (meth)acrylic copolymer (B) is preferably 50,000 to 300,000, more preferably 100,000 to 250,000, and even more preferably 130,000 to 230,000. A weight-average molecular weight Mw of the (meth)acrylic copolymer (B) within the above range is preferable from the viewpoint of re-peelability due to elongation. The preferred range for the weight-average molecular weight Mw of the (meth)acrylic triblock copolymer is the same as the above range. The weight-average molecular weight Mw of the (meth)acrylic copolymer (B) can be measured using the same method as described above for measuring the weight-average molecular weight Mw of the (meth)acrylic copolymer (A).

[0125] The method for producing the (meth)acrylic copolymer (B) is not particularly limited and can be appropriately selected from conventionally known production methods. For example, it can be produced using a method of sequentially polymerizing block copolymers by anionic living polymerization, cationic living polymerization, or known methods using organometallic complexes.

[0126] (Adhesive-forming resin) For acrylic adhesives, it is preferable to use one that contains a tackifying resin, as this provides both excellent adhesion to the adherend or foam substrate and excellent conformability, and further facilitates the stretching and peeling of the adhesive tape.

[0127] Examples of tackifying resins that can be used include rosin-based tackifying resins, polymerized rosin-based tackifying resins, polymerized rosin ester-based tackifying resins, rosin phenol-based tackifying resins, stabilized rosin ester-based tackifying resins, disproportionated rosin ester-based tackifying resins, hydrogenated rosin ester-based tackifying resins, terpene-based tackifying resins, terpene phenol-based tackifying resins, petroleum resin-based tackifying resins, (meth)acrylate resin-based tackifying resins, etc. When an emulsion-type adhesive is used as the adhesive, it is preferable to also use an emulsion-type tackifying resin as the tackifying resin.

[0128] As the tackifying resin mentioned above, it is preferable to use one or more types in combination from the following: disproportionate rosin ester tackifying resins, polymerized rosin ester tackifying resins, rosin phenol tackifying resins, hydrogenated rosin ester tackifying resins, (meth)acrylate resins, terpene phenol resins, and petroleum resins.

[0129] As the tackifying resin mentioned above, it is preferable to use one with a softening point in the range of 30°C to 180°C, and more preferably one in the range of 70°C to 140°C, in order to achieve both excellent adhesion to the adherend or foam substrate (B) and excellent followability. When using the (meth)acrylate tackifying resin mentioned above, it is preferable to use one with a glass transition temperature of 30°C to 200°C, and more preferably one in the range of 50°C to 160°C.

[0130] The tackifying resin is preferably used in an amount of 5 to 65 parts by mass, and more preferably in an amount of 8 to 55 parts by mass, per 100 parts by mass of the acrylic copolymer, in order to achieve both excellent adhesion to the adherend or foam and excellent conformability.

[0131] (Crosslinking agent) Acrylic adhesives preferably use a crosslinking agent to ensure excellent adhesion to the adherend or foam substrate. Examples of crosslinking agents that can be used include isocyanate-based crosslinking agents, epoxy-based crosslinking agents, metal chelate-based crosslinking agents, and aziridine-based crosslinking agents. In particular, it is preferable to use either or both isocyanate-based crosslinking agents and epoxy-based crosslinking agents, which have high reactivity with acrylic copolymers, and it is more preferable to use an isocyanate-based crosslinking agent.

[0132] Examples of the above-mentioned isocyanate-based crosslinking agents include tolylene diisocyanate, naphthylene-1,5-diisocyanate, hexamethylene diisocyanate, diphenylmethane diisocyanate, xylylene diisocyanate, and trimethylolpropane-modified tolylene diisocyanate, with tolylene diisocyanate and trimethylolpropane-modified tolylene diisocyanate being preferred.

[0133] It is preferable to select and use an amount of the above-mentioned crosslinking agent such that the gel fraction of the adhesive layer relative to toluene is 40 to 80%, more preferably an amount such that the gel fraction is 30% to 70% by mass, and even more preferably an amount such that the gel fraction is 35% to 65% by mass, in order to obtain an adhesive tape that achieves excellent adhesion to the adherend or foam substrate, excellent conformability, and strength of the adhesive layer when stretched and peeled off.

[0134] The gel fraction of the adhesive layer refers to the value measured by the method shown below. First, an adhesive was applied to the release surface of a release liner so that the thickness after drying was 50 μm. This was dried at 100°C for 3 minutes, and then aged at 40°C for 2 days to form an adhesive layer. The adhesive layer was then cut into 50 mm x 50 mm squares to form test specimens. After measuring the mass (G1) of the test specimens, they were immersed in toluene at 23°C for 24 hours. The mixture of the immersed specimens and toluene was filtered using a 300-mesh wire mesh to extract the insoluble components in toluene, and the mass (G2) of the insoluble components dried at 110°C for 1 hour was measured. The gel fraction was calculated based on the masses (G1) and (G2) and the following formula. Gel fraction (mass %) = (G2 / G1) × 100

[0135] <Rubber-based adhesive> The rubber-based adhesive contains at least an adhesive resin mainly composed of rubber and / or elastomer. The rubber-based adhesive may optionally contain other components such as tackifying resins, crosslinking agents, and fillers. As a preferred embodiment of the main component of the adhesive resin, a block copolymer of a polyaromatic vinyl compound and a conjugated diene compound can be suitably used, and in particular, styrene-based resins such as styrene-isoprene-styrene copolymer, styrene-butadiene-styrene copolymer, styrene-ethylene-butylene copolymer, and styrene-ethylene-propylene copolymer can be used.

[0136] As the styrene-based resin, styrene-isoprene copolymer and / or styrene-isoprene-styrene copolymer and / or a mixture of styrene-isoprene copolymer and styrene-isoprene-styrene copolymer can be used. The styrene-based resin composed of these components provides the adhesive tape of the present invention with excellent adhesive properties and holding power.

[0137] The above-mentioned styrene-based resin preferably contains the structural unit represented by the following chemical formula (1) in an amount of 10% to 80% by mass, more preferably 12% to 60% by mass, even more preferably 15% to 40% by mass, and even more preferably 17% to 35% by mass, based on the total mass of the styrene-isoprene copolymer and the styrene-isoprene-styrene copolymer. This allows for excellent adhesion.

[0138] [ka]

[0139] The styrene-based resin used may contain two or more copolymers with different structures, and may also contain a combination of styrene-isoprene copolymer and styrene-isoprene-styrene copolymer.

[0140] The styrene-based resin used is preferably one that contains the styrene-isoprene copolymer in an amount of 0% to 80% by mass relative to the total mass of the styrene-isoprene copolymer and the styrene-isoprene-styrene copolymer, more preferably in an amount of 0% to 77% by mass, even more preferably in an amount of 0% to 75% by mass, and even more preferably in an amount of 0% to 70% by mass. By using the above range, the adhesive tape of the present invention can achieve both excellent adhesive performance and heat durability.

[0141] Furthermore, the styrene-isoprene copolymer preferably has a weight-average molecular weight (GPC) measured in terms of standard polystyrene using gel permeation chromatography (GPC), more preferably in the range of 10,000 to 800,000, more preferably in the range of 30,000 to 500,000, and even more preferably in the range of 50,000 to 300,000, measured using gel permeation chromatography (GPC) on a standard polystyrene basis.

[0142] Rubber-based adhesives may contain tackifying resins in addition to the rubber-based resins described above. Examples of tackifying resins include petroleum resins such as tackifying resins that can be contained in the acrylic-based adhesives described above, C5 petroleum resins, C5 / C9 petroleum resins, and alicyclic petroleum resins. Among these, the above petroleum resins are particularly compatible with the polyisoprene structure that constitutes the styrene-based resin, and as a result, it is possible to enhance the initial adhesive strength of the adhesive tape. The preferred range for the content of tackifying resin in the rubber-based adhesive can be the same as the range for the content of tackifying resin in the acrylic-based adhesives described above.

[0143] <Filler particles> The adhesive layer and the adhesive forming it preferably contain one or more types of filler particles. When the adhesive layer contains filler particles, the filler particles are exposed from the adhesive layer when the adhesive tape is stretched, which reduces the contact area between the adhesive layer and the adherend. Therefore, even when the stretching direction of the adhesive tape is at a relatively large angle with respect to the bonding surface of the adherend (sometimes referred to as the "adhesive surface"), for example, perpendicular (sometimes referred to as the "90° direction"), or when stretched at a high speed, the adhesive tape can be peeled off more easily and quickly.

[0144] The form of the filler particles described above is not particularly limited and can be appropriately selected within a range that does not impair the effects of the present invention. Examples include hollow particles, solid particles, core-shell type particles, balloons, beads, and the like.

[0145] There are no particular restrictions on the shape of the filler particles; they can be appropriately selected according to the purpose, and may be regular or irregular in shape. Specific examples of filler particle shapes include polygonal, cubic, elliptical, spherical, needle-shaped, plate-shaped, and flaky shapes. These filler particles may be used individually or in combination of two or more types. Furthermore, these fillers may be aggregated. Among these, elliptical, spherical, and polygonal shapes are preferred for the filler particles. When the filler particles are elliptical, spherical, or polygonal, they slide well against the adherend when the adhesive tape is stretched, allowing the adhesive tape to be peeled off more easily and quickly. Spherical shapes are particularly preferred.

[0146] The above-mentioned filler particles may be inorganic or organic fillers. These filler particles may be used individually or in combination of two or more types.

[0147] Materials that constitute the inorganic filler include metals, metal hydroxides, metal oxides, silicates, carbon, silica, and glass. Examples of metals that can be used include aluminum, magnesium, zirconium, calcium, barium, tin, nickel, titanium, copper, silver, and gold. Examples of metal hydroxides that can be used include aluminum hydroxide, magnesium hydroxide, zirconium hydroxide, calcium hydroxide, and barium hydroxide. Examples of metal oxides that can be used include silicon dioxide, magnesium oxide, zinc oxide, titanium dioxide, zirconium oxide, iron oxide, aluminum oxide, and calcium oxide. Examples of silicates that can be used include talc and mica.

[0148] Examples of materials for the above-mentioned organic fillers include polyolefin resins, polyester resins, polystyrene resins, polyurethane resins, silicone resins, rubber resins, urea-formaldehyde resins, styrene / methacrylic acid copolymers, fluorine resins, acrylic resins, polycarbonate resins, polyamide resins, epoxy resins, and thermosetting resins. Among these, silicone fillers formed from silicone resins and / or silicone rubber are preferred.

[0149] Specifically, the above-mentioned silicone-based fillers can be silicone rubber particles formed by three-dimensionally crosslinking linear organopolysiloxanes (see Japanese Patent Publication No. 63-77942, Japanese Patent Publication No. 3-93834, and Japanese Patent Publication No. 04-198324), powdered silicone rubber (see U.S. Patent No. 3,843,601, Japanese Patent Publication No. 62-270660, and Japanese Patent Publication No. 59-96,122), etc. Furthermore, the surface of the silicone rubber particles obtained by the above method can be (R'SiO 3 / 2 Silicone composite particles with a structure (core-shell structure) coated with a silicone resin, which is a polyorganosilsesquioxane cured product having a three-dimensional network crosslinked structure represented by )n (where R' represents a substituted or unsubstituted monovalent hydrocarbon group), can also be used (see Japanese Patent Publication No. 7-196815).

[0150] In particular, it is preferable that the adhesive layer contains core-shell type silicone composite particles, in which the core is a silicone rubber particle and the shell covering the core is silicone resin. This is because the inclusion of core-shell type silicone composite particles in the adhesive layer makes it possible to more effectively achieve both impact resistance from the silicone rubber particles and reworkability from the silicone resin. As such silicone particles, Toray Dow Corning Silicone Co., Ltd. sells products such as Trefil E-500, Trefil E-600, Trefil E-601, and Trefil E-850 under the above product names, and Shin-Etsu Chemical Co., Ltd. sells products such as KMP-600, KMP-601, KMP-602, and KMP-605.

[0151] Alternatively, acrylic-modified silicone particles can be used as another silicone-based filler. Examples of acrylic-modified silicone particles include emulsion graft polymers of a polyorganosiloxane represented by the following general formula (C), an acrylic acid-based ester monomer and / or a methacrylic acid-based ester monomer, and a functional group-containing monomer copolymerizable therewith. Commercially available acrylic-modified silicone particles such as Charline R-170S and Charline R-200 (both manufactured by Nisshin Chemical Industry Co., Ltd.) can be used.

[0152] [ka]

[0153] (In the above general formula (C), R1 and R2 each independently represent a substituted or unsubstituted C1-C20 alkyl group or a C6-C20 allyl group, X1, X2, X3, X4, X5, and X6 each independently represent a substituted or unsubstituted C1-C20 alkyl group, a C6-C20 allyl group, a C1-C20 alkoxy group, or a hydroxyl group, and Y1 and Y2 each independently represent a group represented by X1 or -[O-Si(X7)(X8)]c-X9) X7, X8, and X9 each independently represent a substituted or unsubstituted C1-C20 alkyl group, a C6-C20 allyl group, a C1-C20 alkoxy group, or a hydroxyl group; at least two groups in X1, X2, X3, X4, X5, X6, X7, X8, and X9, as well as Y1 and Y2, are hydroxyl groups; and a, b, and c each independently satisfy the following conditions: 0 ≤ a ≤ 1,000, 100 ≤ b ≤ 10,000, and 1 ≤ c ≤ 1,000.

[0154] It is preferable to use filler particles with an average particle size of 0.01 μm to 70 μm, more preferably 0.05 μm to 50 μm, even more preferably 0.1 μm to 30 μm, and even more preferably 0.5 μm to 15 μm. Furthermore, it is preferable that the particle size of the filler particles is smaller than the thickness of the adhesive. By setting the average particle size of the filler particles within the above range, it is possible to achieve both superior adhesive performance and excellent re-peelability.

[0155] Note that the average particle size refers to the volume-average particle size, which can be measured, for example, using a measuring instrument (Microtrac) that employs laser diffraction scattering.

[0156] The adhesive layer may or may not contain the filler particles, but it is preferable that the adhesive layer contains filler particles, as the filler particles exposed from the surface of the adhesive layer when the adhesive tape is stretched and peeled off make it easier for the adhesive layer to peel off from the adherend, thereby improving re-peelability. When the adhesive layer contains filler particles, the amount of filler particles can be set as appropriate, but it is preferable that the amount be less than 25 parts by mass per 100 parts by weight of the adhesive resin in order to obtain even better re-peelability. More specifically, the amount of filler particles in the adhesive layer is preferably more than 0 parts by mass and less than 25 parts by mass per 100 parts by weight of the adhesive resin, more preferably more than 0 parts by mass and 20 parts by mass or less, more preferably 1 part by mass or more and 18 parts by mass or less, and even more preferably 2 parts by mass or more and 15 parts by mass or less. By setting the amount of filler particles in the adhesive layer within the above range, it is possible to achieve both better adhesive performance and excellent re-peelability by stretching the adhesive surface at a desired elongation angle.

[0157] <Other additives> The adhesive layer and the adhesive forming it may contain, as other components, additives such as plasticizers, softeners, antioxidants, flame retardants, colorants such as pigments and dyes, leveling agents, thickeners, water repellents, and defoamers.

[0158] (2) Properties and physical characteristics The adhesive layer in this invention has a tensile stress of 3 N / cm at 100% strain based on the stress-strain curve. 2 More than 70N / cm 2 Preferably, it is 5 N / cm 2 More than 60N / cm 2 It is even more preferable that the following conditions apply: 8 N / cm 2 More than 50N / cm 2 The following is more preferable: The tensile stress at 100% strain, based on the stress-strain curve of the adhesive layer, is within the above range, which ensures sufficient strength to prevent the adhesive layer from tearing during re-peeling, and also ensures the flexibility necessary for conforming to stepped surfaces.

[0159] The tensile stress at 100% strain based on the stress-strain curve of the adhesive layer is a physical property originating from the adhesive constituting the adhesive layer. In other words, the tensile stress at 100% strain based on the stress-strain curve of the adhesive layer refers to the tensile stress at 100% strain based on the stress-strain curve of the adhesive forming the adhesive layer. The tensile stress at 100% strain based on the stress-strain curve of the adhesive layer refers to the tensile stress when the strain is 100% in the stress-strain curve (so-called SS curve) measured by pulling a test specimen consisting of an adhesive layer with a thickness of approximately 400 μm, gauge spacing of 2 cm, and width of 1 cm, obtained by laminating adhesive layers of 50 μm thickness, using a tensile testing machine at a tensile speed of 300 mm / min in a measurement environment of temperature 23°C and humidity 50%.

[0160] The breaking strength of the adhesive layer is not particularly limited, but is preferably 0.3 MPa to 3.5 MPa, more preferably 0.4 MPa to 2.5 MPa, and more preferably 0.5 MPa to 1.5 MPa. By setting the breaking strength of the adhesive layer within the above range, when combined with the foam substrate described above, it is possible to suppress the tearing of the adhesive tape when stretching and peeling it off, and the load required to stretch the adhesive tape does not become excessive, making it easier to peel off and re-peel it. In addition, when stretching and peeling off the adhesive tape, it is less likely that adhesive residue will be left behind due to cohesive failure of the adhesive layer, and sufficient adhesiveness can be obtained.

[0161] The tensile strength of the adhesive layer described above refers to the stress value measured when the adhesive layer was punched out in a dumbbell shape with a gauge length of 20 mm and a width of 10 mm, and pulled lengthwise at a tensile speed of 300 mm / min using a Tensilon tensile testing machine (model: RTF1210, manufactured by A&D Co., Ltd.) under measurement conditions of 23°C and 50% RH, and then fractured.

[0162] The elongation at break of the adhesive layer described above is not particularly limited, but is preferably 500% to 5000%, more preferably 700% to 4000%, and even more preferably 900% to 3800%. By having the elongation at break of the adhesive layer within the above preferred range, it is possible to achieve both suitable adhesion and re-peelability (ease of removal) when combined with the foam substrate described above.

[0163] The elongation at break of the adhesive layer described above refers to the tensile elongation measured when the adhesive layer is punched out in a dumbbell shape with a gauge length of 20 mm and a width of 10 mm, and pulled lengthwise at a tensile speed of 300 mm / min using a Tensilon tensile testing machine (model: RTF1210, manufactured by A&D Co., Ltd.) under measurement conditions of 23°C and 50% RH, and then broken.

[0164] The adhesive layer described above preferably exhibits a peak value of loss tangent (tanδ) at a frequency of 1 Hz at a temperature of -40°C to 20°C, more preferably -30°C to 15°C, and even more preferably -20°C to 10°C. By setting the peak value of the loss tangent of the adhesive layer within this range, it becomes easier to impart good adhesion to the adherend at room temperature.

[0165] The loss tangent (tanδ) of the adhesive layer at a frequency of 1 Hz is determined from the storage modulus (G') and loss modulus (G") obtained by dynamic viscoelasticity measurement by temperature dispersion using the formula tanδ = G'' / G'. In the dynamic viscoelasticity measurement, a viscoelasticity tester (manufactured by T.A. Instruments Japan, product name: ARES G2) is used to sandwich a test specimen of an adhesive layer formed to a thickness of approximately 2 mm between parallel discs with a diameter of 8 mm, which are the measurement parts of the tester, and measure the storage modulus (G') and loss modulus (G") from -50°C to 150°C at a frequency of 1 Hz.

[0166] In the present invention, the thickness of the adhesive layer is preferably 5 μm to 100 μm, more preferably 15 μm to 80 μm, and particularly preferably 25 μm to 75 μm, in order to achieve both excellent adhesion to the adherend or foam substrate and excellent conformability.

[0167] The thickness of the adhesive layer refers to the average of 25 thicknesses measured at five points in the width direction of the adhesive tape, each cut at 100 mm intervals along the length and at 100 mm intervals along the width direction, using a TH-104 paper / film thickness measuring instrument (manufactured by Tester Sangyo Co., Ltd.).

[0168] 3. Adhesive tape The adhesive tape of the present invention may have other layers in addition to the foam and adhesive layer as needed. Examples of these other layers include a laminate layer such as a polyester film, a light-shielding layer, a light-reflecting layer, and a heat-conducting layer such as a metal layer, which provide dimensional stability, good tensile strength, and re-peelability of the adhesive tape.

[0169] The adhesive tape of the present invention may have a release sheet laminated on the surface of its adhesive layer. As the release sheet, for example, films, paper, nonwoven fabrics, cloths, foamed sheets, metal substrates obtained using synthetic resins such as polyethylene, polypropylene, and polyester, or laminates thereof, can be used, and at least one side of these laminates can be subjected to a release treatment such as a silicone-based treatment, a long-chain alkyl-based treatment, or a fluorine-based treatment.

[0170] The adhesive tape of the present invention is preferably 400 μm or less in thickness, as this contributes to the thinning of electronic devices; more preferably 100 μm to 350 μm; even more preferably 150 μm to 300 μm; and most preferably 200 μm to 350 μm, as this allows the foam to be less likely to tear when peeled off during re-peeling, while also providing good conformability to stepped surfaces. The thickness of the adhesive tape does not include the thickness of the release liner mentioned above.

[0171] The adhesive tape of the present invention has a strength value of 30 N / cm² when measured by pressing it into a 1 mm wide frame shape. 2 Preferably, it is 40 N / cm 2 Preferably, it is 50 N / cm 2The above is the most preferable. By increasing the adhesive strength using this method, the necessary adhesive strength for fixing the components and ensuring waterproofing can be secured.

[0172] The adhesive strength of the adhesive tape pressed into a 1mm wide frame shape can be measured by the following measurement methods (1) to (3). Detailed diagrams of the measurement methods (1) to (3) can be found in Figures 1 to 3 of International Publication No. 2018 / 230323. (1) At 23℃, a 2mm thick, 20mm square acrylic plate (Mitsubishi Rayon Co., Ltd. Acrylite MR200 "trademark name", hue: transparent, the same applies hereinafter) is cut out in the shape of a window frame with an outer diameter of 15mm square and a width of 1mm and attached to it. (2) Next, attach the acrylic plate with adhesive tape prepared in (1) to a rectangular SUS plate measuring 30 x 60 mm with a thickness of 2 mm and a hole in the center of which has a diameter of 10 mm, so that the center of the acrylic plate and the center of the SUS plate coincide. After applying pressure with a 2 kg roller for one back-and-forth motion, leave it to stand at 23°C for 1 hour to prepare the test specimen. (3) The acrylic plate is pressed at 10 mm / min using a tensile testing machine equipped with an 8 mm diameter stainless steel probe, which is inserted through a hole in the SUS plate from the SUS side of the test specimen, and the strength at which the acrylic plate peels off is measured.

[0173] The adhesive tape of the present invention preferably has a 180° peel adhesive strength of 5N / 20mm or more, more preferably in the range of 10N / 20mm to 50N / 20mm, and even more preferably in the range of 10N / 20mm to 45N / 20mm. When the peel adhesive strength is within the above preferred range, the adhesive tape has appropriate adhesive strength without causing peeling or shifting from the adherend, and can be easily peeled off when the adhesive tape is stretched at a desired tensile angle from the adherend surface and re-peeled.

[0174] The 180° peel adhesive strength of the above adhesive tape refers to the value measured in accordance with JIS Z 0237.

[0175] The adhesive tape of the present invention can be manufactured, for example, by a direct method in which the adhesive is directly applied to the foam and dried, or by a transfer method in which an adhesive layer is formed by applying the adhesive to a release sheet and drying it, and then bonding it to the foam. When an acrylic adhesive is used as the adhesive for forming the adhesive layer, it is preferable to allow the foam, which has been laminated with adhesive layers on one or both sides by the direct method or the transfer method, to mature for about 2 to 7 days in an environment of preferably 20°C to 50°C, more preferably 23°C to 45°C, in order to achieve both excellent adhesion to the adherend or foam substrate and excellent conformability.

[0176] 4.Applications The adhesive tape of the present invention is particularly suitable for applications requiring adhesive fixing to areas with uneven surfaces or large steps, and where it is required that the adhered member not be damaged when peeled off. For example, it is preferably used for joining components that make up electronic devices. It is also preferable that it is used for joining components that make up electronic devices and that the bond between the components can be released by stretching.

[0177] II. Goods The article of the present invention is an article using the adhesive tape described in section "I. Adhesive Tape" above. The adhesive tape is used by being attached to the components that make up the article, and is particularly suitable for fixing components that have uneven surfaces or large steps and require easy disassembly.

[0178] Components with the aforementioned irregularities and large steps are often used as components in items such as car navigation systems, smartphones and other electronic devices, automobiles, building materials, office automation equipment (OA equipment), and home appliances.

[0179] In particular, the article of the present invention is preferably an electronic device that uses the adhesive tape described in section "I. Adhesive Tape" above. Specifically, the components constituting the electronic device include two or more casings constituting an electronic terminal, a protective panel for an information display unit, an image display module, a touch panel component, and so on. It is preferable that the electronic device uses the adhesive tape of the present invention to fix the above components.

[0180] Articles such as electronic terminals on which two or more casings, protective panels for information display units, image display modules, or touch panel components are fixed using the adhesive tape described in section "I. Adhesive Tape" above have excellent adhesive strength, can be re-peeled off during disassembly, and have excellent waterproofing properties.

[0181] This disclosure is not limited to the embodiments described above. The embodiments described above are illustrative, and any configuration that is substantially identical to the technical idea described in the claims of this disclosure and achieves similar effects is included within the technical scope of this disclosure. [Examples]

[0182] The present invention will be described in more detail below with reference to examples and comparative examples, but the present invention is not limited in any way to the following examples.

[0183] [1] Preparation of adhesive resin solution The adhesive resin solution was prepared according to the following method.

[0184] <Preparation Example 1-1: Adhesive Resin Solution (a-1)> In a reaction vessel equipped with a stirrer, reflux condenser, nitrogen inlet tube, thermometer, and dropping funnel, 75.94 parts by mass of n-butyl acrylate, 5 parts by mass of 2-ethylhexyl acrylate, 15 parts by mass of cyclohexyl acrylate, 4 parts by mass of acrylic acid, 0.06 parts by mass of 4-hydroxybutyl acrylate, and 200 parts by mass of ethyl acetate were charged, and the mixture was heated to 65°C while stirring and blowing in nitrogen. Mixture (1) was obtained. Next, 4 parts by mass (2.5% by mass solids) of 2,2'-azobisisobutyronitrile solution, which had been previously dissolved in ethyl acetate, was added to mixture (1), and the mixture was held at 65°C for 10 hours under stirring to obtain mixture (2). Next, mixture (2) was diluted with 98 parts by mass of ethyl acetate and filtered through a 200-mesh wire mesh to obtain an acrylic copolymer solution (1) with a weight-average molecular weight of 1.6 million (polystyrene equivalent).

[0185] Next, 100 parts by mass of the above acrylic copolymer solution (1) was mixed and stirred with 5 parts by mass of polymerized rosin ester tackifying resin (D-125, Arakawa Chemical Industries, Ltd.) and 15 parts by mass of petroleum-based tackifying resin (FTR® 6125, manufactured by Mitsui Chemicals, Inc.), and then ethyl acetate was added to obtain an adhesive resin solution (a-1) with a solid content of 31% by mass.

[0186] <Adjustment Example 1-2: Adhesive Resin Solution (a-2)> In a reaction vessel equipped with a stirrer, reflux condenser, thermometer, dropping funnel, and nitrogen gas inlet, 96.4 parts by mass of n-butyl acrylate, 3.5 parts by mass of acrylic acid, 0.1 parts by mass of 2-hydroxyethyl acrylate, and 0.1 parts by mass of 2,2'-azobisisobutyronitrile as a polymerization initiator were dissolved in a solvent consisting of 100 parts by mass of ethyl acetate, and polymerized at 70°C for 12 hours to obtain an acrylic copolymer with a weight-average molecular weight of 800,000 (polystyrene equivalent). Next, to 100 parts by mass of the acrylic copolymer, 10 parts by mass of Pencel D135 (pentaerythritol ester of polymerized rosin) manufactured by Arakawa Chemical Co., Ltd. and 10 parts by mass of Super Ester A100 (glycerin ester of disproportionated rosin) manufactured by Arakawa Chemical Co., Ltd. were added, and ethyl acetate was added and mixed uniformly to obtain an adhesive resin solution (a-2) with a non-volatile content of 35%.

[0187] [2] Preparation of adhesive The adhesive was prepared according to the following method.

[0188] <Preparation Example 2-1: Adhesive (A-1)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 4 parts by mass of KMP-601 (volume average particle size: 12 μm) manufactured by Shin-Etsu Chemical Co., Ltd. were added as silicone particles. Subsequently, 1.0 part by mass of Barnock D-40 (manufactured by DIC Corporation; trimethylolpropane adduct of tolylene diisocyanate, isocyanate group content 7% by mass, non-volatile content 40% by mass) was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1). After stirring and mixing until homogeneous, ethyl acetate was added to obtain adhesive (A-1) with a solid content of 30% by mass.

[0189] <Preparation Example 2-2: Adhesive (A-2)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 10 parts by mass of KMP-601 manufactured by Shin-Etsu Chemical Co., Ltd. were added as silicone particles. Subsequently, 1.0 part by mass of Barnock D-40 was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1), and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-2) with a solid content of 30% by mass.

[0190] <Preparation Example 2-3: Adhesive (A-3)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 10 parts by mass of KMP-600 (volume average particle size: 5 μm) manufactured by Shin-Etsu Chemical Co., Ltd. was added as silicone particles. Subsequently, 1.0 part by mass of Barnock D-40 was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1), and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-3) with a solid content of 30% by mass.

[0191] <Preparation Example 2-4: Adhesive (A-4)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 8 parts by mass of KMP-602 (volume average particle size: 30 μm) manufactured by Shin-Etsu Chemical Co., Ltd. were added as silicone particles. Subsequently, 1.0 part by mass of Barnock D-40 was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1), and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-4) with a solid content of 30% by mass.

[0192] <Preparation Example 2-5: Adhesive (A-5)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 20 parts by mass of KMP-600 manufactured by Shin-Etsu Chemical Co., Ltd. were added as silicone particles. Subsequently, 1.0 part by mass of Barnock D-40 was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1), and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-5) with a solid content of 30% by mass.

[0193] <Preparation Example 2-6: Adhesive (A-6)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-1), 1.0 part by mass of Barnock D-40 was added as a crosslinking agent, and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-6) with a solid content of 30% by mass.

[0194] <Preparation Example 2-7: Adhesive (A-7)> To 100 parts by mass of the solid content of the above adhesive resin solution (a-2), 6 parts by mass of KMP-601 manufactured by Shin-Etsu Chemical Co., Ltd. were added as silicone particles. Subsequently, 1.1 parts by mass of Barnock D-40 was added as a crosslinking agent based on 100 parts by mass of the above adhesive resin solution (a-1), and after stirring and mixing until homogeneous, ethyl acetate was added to obtain an adhesive (A-7) with a solid content of 30% by mass.

[0195] [3] Making adhesive tape [Example 1] The adhesive (A-1) was applied to the surface of the release liner using a bar coater so that the thickness of the adhesive layer after drying was 35 μm, and the adhesive layer was prepared by drying at 80°C for 3 minutes.

[0196] Next, the adhesive layer is placed on a foam substrate (B-1) [an elastomer foam substrate with an average thickness of 230 μm (density 0.51 g / cm³)]. 3 , flow direction tensile strength 704 N / cm 3 , tensile strength in the width direction: 535 N / cm 3, 25% compression strength of 142 kPa, elongation at break of 661%, tensile stress at 100% strain based on the stress-strain curve of 75 N / cm 2 ) The surface was corona-treated to adjust the wetting index to 50 mN / m, and the adhesive tape was prepared by laminating it on both sides and curing it at 40 °C for 48 hours.

[0197] [Example 2] On the surface of the release liner, the above adhesive (A-2) was applied using a bar coater so that the thickness of the dried adhesive layer would be 50 μm, and the adhesive layer was prepared by drying at 80 °C for 3 minutes.

[0198] Next, the above adhesive layer was laminated on both sides of a foam base material (B-2) [a polyolefin-based foam base material with an average thickness of 200 μm (density 0.49 g / cm 3 , tensile strength in the flow direction of 1475 N / cm 3 , tensile strength in the width direction of 931 N / cm 3 , 25% compression strength of 466 kPa, elongation at break of 516%, tensile stress at 100% strain based on the stress-strain curve of 477 N / cm 2 ) The surface was corona-treated to adjust the wetting index to 50 mN / m, and the adhesive tape was prepared by laminating it on both sides and curing it at 40 °C for 48 hours.

[0199] [Example 3] An adhesive tape was obtained in the same manner as in Example 2, except that adhesive (A-3) was used instead of adhesive (A-2).

[0200] [Example 4] An adhesive tape was obtained in the same manner as in Example 2, except that adhesive (A-4) was used instead of adhesive (A-2).

[0201] [Example 5] An adhesive tape was obtained in the same manner as in Example 2, except that adhesive (A-5) was used instead of adhesive (A-2).

[0202] [Example 6] An adhesive tape was obtained in the same manner as in Example 2, except that adhesive (A-6) was used instead of adhesive (A-2).

[0203] [Example 7] An adhesive tape was obtained in the same manner as in Example 1, except that adhesive (A-3) was used instead of adhesive (A-2).

[0204] [Comparative Example 1] The adhesive (A-6) was applied to the surface of the release liner using a bar coater so that the thickness of the adhesive layer after drying was 50 μm, and the adhesive layer was prepared by drying at 80°C for 3 minutes.

[0205] Next, the adhesive layer is placed on a foam substrate (B-3) [an elastomer foam substrate with an average thickness of 200 μm (density 0.39 g / cm³)]. 3 , flow direction tensile strength 617 N / cm 3 , widthwise tensile strength 402 N / cm 3 25% compressive strength 96kPa, elongation at break 643%, tensile stress at 100% strain based on stress-strain curve 155N / cm 2 The surface of the material () was treated with corona to adjust the wetting index to 50 mN / m, and then adhesive tape was applied to both sides of the material and cured for 48 hours in a 40°C environment to produce adhesive tape.

[0206] [Comparative Example 2] The adhesive (A-2) was applied to the surface of the release liner using a bar coater so that the thickness of the adhesive layer after drying was 55 μm, and the adhesive layer was prepared by drying at 80°C for 3 minutes.

[0207] Next, the adhesive layer was applied to both sides of the base material (B-4) [a resin composition (1) (a mixture of a styrene-isoprene copolymer and a styrene-isoprene-styrene copolymer, 25% by mass of the styrene-derived structural unit represented by chemical formula (1), and the proportion of the styrene-isoprene copolymer in the total amount of the resin composition (1) being 17% by mass)] and cured in an environment at 40°C for 48 hours to produce an adhesive tape. The base material was produced by heat pressing (pressure 0.5 MPa, press plate temperature 130°C, press time 2 minutes) and had an average thickness of 200 μm (density 0.97 g / cm 3 , tensile strength in the flow direction 1568 N / cm 3 , tensile strength in the width direction 1236 N / cm 3 , 25% compressive strength 1191 kPa, elongation at break 1083%, tensile stress at a strain of 100% based on the stress-strain curve 102 N / cm 2 )].

[0208]

Chemical formula

[0209] <Physical properties of the foam base material> The density, tensile strength in the flow direction and width direction, 25% compressive strength, elongation at break, and tensile stress at a strain of 100% based on the stress-strain curve of the foam base materials used in the examples and comparative examples were measured by the same method as described above.

[0210] The tensile stress, tensile strength, and elongation at break at a strain of 100% based on the stress-strain curve of the adhesive layer were measured by the same method as described above. Also, the average particle size of the filler particles in the adhesive layer was measured by measuring the volume average particle size using a measuring instrument (Microtrac) that uses the laser diffraction scattering method.

[0211] <Thickness of the adhesive layer> The thickness of the adhesive layer refers to the average of 25 thicknesses measured at five points in the width direction of the double-sided adhesive tape, each cut at 100 mm intervals along the length and at 100 mm intervals along the width direction, using a TH-104 paper / film thickness measuring instrument (manufactured by Tester Sangyo Co., Ltd.).

[0212] <Thickness of foam substrate> The thickness of the foam substrate is the average value of five measurements taken at 100 mm intervals along the length using a G-type dial thickness gauge manufactured by Ozaki Seisakusho Co., Ltd.

[0213] <Total thickness of adhesive tape> The total thickness of the adhesive tapes obtained in the examples and comparative examples is the average value of the thickness measured at five points at 100 mm intervals along the length using a dial thickness gauge G-type manufactured by Ozaki Seisakusho Co., Ltd., with the release liner removed.

[0214] <Method for evaluating impact resistance> Two pieces of adhesive tape 11, cut to 20 mm in length and 2 mm in width, were attached parallel to a 2 mm thick, 25 mm x 50 mm outer diameter polycarbonate sheet 12 with a 40 mm gap between them (see Figure 2). Then, these were attached to the center of a 2 mm thick, 50 mm x 50 mm outer diameter acrylic sheet 13 (manufactured by Mitsubishi Rayon Co., Ltd., product name: Acrylite L, color: transparent) (see Figure 3). These were subjected to a load of 50 N / cm². 2 The specimens were prepared by applying pressure for 10 seconds and then letting them stand at 23°C for 24 hours.

[0215] Next, a metal support 15 was placed on the base of a DuPont impact tester (manufactured by Tester Industries Co., Ltd.). A 300g weight 14 was attached to the polycarbonate plate 12 side of the test specimen with tape 16 (see Figure 4). The impact pin was dropped from a height of 30cm with the acrylic plate 13 side of the test specimen facing downwards, five times at 10-second intervals. After the drops, the test specimen was visually inspected, and if no peeling of the adhesive tape 11 or destruction of the test specimen was observed, the impact pin was dropped again from a position 10cm higher (40cm), five times at 10-second intervals. This test was repeated, and the drop height of the impact pin at which peeling of the adhesive tape or destruction of the test specimen was observed was measured and evaluated according to the following criteria.

[0216] (Evaluation Criteria) ◎: The impact point fell from a height of 80 cm or more. ○: The drop height of the impact point was between 50cm and less than 80cm. ×: The drop height of the impact point was less than 50 cm.

[0217] <Method for evaluating step-following ability> Using the adhesive tape obtained above, a frame-shaped sample with outer dimensions of 64 mm x 43 mm and a width of 1 mm was created and attached to an acrylic plate with a thickness of 2 mm and outer dimensions of 65 mm x 45 mm to obtain an acrylic plate with adhesive tape (see Figure 5). Next, two single-sided adhesive tapes (for creating steps) made of polyethylene terephthalate (PET) substrate, with a thickness of 20 μm, a width of 5 mm, and a length of 45 mm, were attached parallel to each other in the vertical direction at 1 cm intervals to the center of another acrylic plate with a thickness of 2 mm and outer dimensions of 65 mm x 45 mm to create an acrylic plate with steps (see Figure 6). After placing the acrylic plate with adhesive tape on the adhesive tape portion of the acrylic plate with steps at 23°C, a test specimen was created by applying pressure with a 2 kg roller for one back-and-forth motion from the edge (see Figure 7). The obtained test specimen was fixed with a double clip and left to stand in water at a depth of 1 m for 30 minutes (compliant with JISC0920 IPX7). After the above-mentioned period of standing, the test specimens were visually observed and evaluated according to the following evaluation criteria.

[0218] (Evaluation Criteria) ○: Water did not penetrate into the interior (the central part of the test piece) surrounded by the frame-shaped test tape that constitutes the above test piece. ×: Water had penetrated into the interior (the central part of the test piece) surrounded by the frame-shaped test tape that constitutes the above test piece.

[0219] <Rework (re-peeling) property> The above adhesive tape with a width of 5 mm and a length of 60 mm was pasted onto a clean and smooth-surfaced aluminum plate with a gripping part of 5 mm width and 10 mm length protruding, and then onto a clean and smooth-surfaced glass plate on the opposite side, and the one pressurized at 50 °C and 5 atm for 20 minutes was used as a test piece. After leaving it for 1 day in an atmosphere of 23 °C and 50% RH after pasting, the gripping part of the adhesive tape was stretched by hand at a speed of approximately 300 mm / min in the direction of a 45° tensile angle from the horizontal direction of the adhesive tape to the glass side in an atmosphere of 23 °C and 50% RH. Among 3 test times, the breakage of the adhesive tape and the degree of residue of the adhesive on the adherend after peeling of the adhesive tape were visually evaluated according to the following criteria. Note that the length direction of the test piece corresponded to the flow direction and the stretching direction of the foam base material.

[0220] (Evaluation criteria) ◎: It could be peeled off cleanly all 3 times. ○: It could be peeled off cleanly 2 times, but the tape broke 1 time. For the 1 time it broke, the area of the remaining adhesive tape without stretching was 1 / 5 or less of the initial pasted area. △: It could be peeled off cleanly 2 times, but the tape broke 1 time. For the 1 time it broke, the area of the remaining adhesive tape without stretching was more than 1 / 5 of the initial pasted area. ×: The adhesive tape could not be peeled off. Or, the tape broke 2 or more times.

[0221] The physical properties of each foam base material used, the details of the adhesive tapes of each example and comparative example, and the evaluation results are shown in the following table.

[0222]

Table 1

[0223]

Table 2

[0224]

Table 3

Explanation of Symbols

[0225] 10…Adhesive tape 1…Foam substrate 2a, 2b…Adhesive layer

Claims

1. An adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, The foam substrate contains elastomer resin as its main component, The tensile strength of the foam substrate in the flow direction is 650 N / cm 2 That's all. In the flow direction of the foam substrate, the tensile stress at 100% strain, based on the stress-strain curve, is 450 N / cm. 2 The following: The 25% compressive strength of the foam substrate is 1000 kPa or less. The density of the aforementioned foam substrate is 0.35 g / cm³ 3 0.90g / cm or more 3 An adhesive tape characterized by the following:

2. An adhesive tape having an adhesive layer on one or both sides of a foam substrate, either directly or via another layer, The foam substrate contains elastomer resin as its main component, The tensile strength of the foam substrate in the stretching direction of the adhesive tape is 650 N / cm 2 That's all. In the stretching direction of the adhesive tape, the tensile stress at 100% strain, based on the stress-strain curve of the foam substrate, is 450 N / cm. 2 The following: The stretching direction of the adhesive tape is the flow direction of the foam substrate. The 25% compressive strength of the foam substrate is 1000 kPa or less. The density of the aforementioned foam substrate is 0.35 g / cm³ 3 0.90g / cm or more 3 An adhesive tape characterized by the following:

3. The tensile strength in the width direction of the foam base material is 450 N / cm 2 The adhesive tape according to claim 1, characterized in that it is 450 N / cm or more.

4. The tensile strength of the foam substrate in the direction perpendicular to the stretching direction of the adhesive tape is 450 N / cm². 2 The adhesive tape according to claim 2, characterized in that it is as described above.

5. The adhesive tape according to any one of claims 1 to 4, characterized in that the adhesive layer contains filler particles.

6. The adhesive tape according to claim 5, characterized in that the amount of filler particles contained in the adhesive layer is less than 20 parts by mass per 100 parts by weight of the adhesive resin.

7. The adhesive tape according to any one of claims 1 to 6, characterized in that the thickness of the foam substrate is in the range of 50 μm to 500 μm.

8. The adhesive layer has a tensile stress of 25 N / cm at 100% strain, based on the stress-strain curve. 2 The adhesive tape according to any one of claims 1 to 7, characterized in that it is as follows:

9. An adhesive tape according to any one of claims 1 to 8, used for joining components that constitute an electronic device.

10. An electronic device using the adhesive tape described in any one of claims 1 to 9.

Citation Information

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