Abstract:
A method for fabricating an electronic device or component such as an anisotropic conductive film comprising: distributing a plurality of conductive particles into an array of microcavities formed on a surface of a continuous carrier belt, rotating the belt carrying the conductive particles while conveying a surface of an adhesive layer into contact with the surface of the rotating belt, transferring the conductive particles from the microcavities on the belt to the adhesive layer in predefined locations in the adhesive layer corresponding to the array of microcavities on the belt, and separating the adhesive layer from the surface of the belt. In one embodiment, the position of the microcavities is varied in a controlled manner.
Abstract:
The invention relates to the use of an adhesive tape to adhesively bond printing plates, during which the impairment of the adhesive bonds by air bubble inclusions between the adhesive tape and a substrate should be reduced. This is achieved by using an adhesive tape comprising at least one adhesive layer, wherein the adhesive layer has at least one groove that does not extend to one of the edges of the adhesive layer, and the portion of the entire groove volume of the adhesive layer that is associated with such grooves is more than 50%.
Abstract:
A label for application to a surface having at least one compound curve is provided. The label comprises a heat shrinkable film having an inner surface and outer surface and a layer of pressure sensitive adhesive on the inner surface of the heat shrinkable film.
Abstract:
An anisotropic conductive film includes: an insulation region having a planer shape and containing an insulating filler at a first content rate; and a plurality of conductive particle holding regions arranged in the insulation region, the conductive particle holding regions holding conductive particles and containing the insulating filler at a second content rate lower than the first content rate, the conductive particle holding regions being arranged discretely in a planar direction of the insulation region. A method of making conductive connection between a first terminal arranged on a first member and a second terminal arranged on a second member includes: preliminarily tacking the anisotropic conductive film to the first member; holding the first and second members such that the first and second terminals face to each other across the preliminarily tacked anisotropic conductive film; pressing the first and second members to each other; and heating the anisotropic conductive film.
Abstract:
An adhesive tape making equipment, includes a coating roll, a spraying member, and a plurality of transporting rolls. A first adhesive is coated on the coating roll. A second adhesive is placed in the spraying member. An adhesive force of the first adhesive is higher than an adhesive force of the second adhesive. The coating roll and the spraying member are located between the plurality of transporting rolls. A method of making the adhesive tape is further provided.
Abstract:
According to one embodiment, a self-adhesive insulation product is provided. The self-adhesive insulation product includes an elongated fibrous insulation blanket having a length, a width, a thickness, and a first major surface and a second major surface which each extend for the length and width of the fibrous insulation blanket. The self-adhesive insulation product also includes a coating of an adhesive applied to the first major surface of the fibrous insulation blanket. The adhesive includes an emulsion of a polymer material and water with the water evaporated so that the adhesive forms a dry layer atop the first major surface. The adhesive is nonbondable or nonadherable to other objects when in the dry state and is bondable or adherable to other objects upon the subsequent application of water.
Abstract:
An electroconductive tape (10) is characterized in that an adhesive film (3) composed of an adhesive is provided only on the open space between threads of an electroconductive mesh fabric having a metallic coating on the surface, the metallic coating being exposed and not covered by the adhesive film (3) on both surfaces of the electroconductive mesh fabric; thermoplastic synthetic fiber monofilament thread is included in part of the threads of the electroconductive mesh fabric; a value M that is obtained by an Equation (1): M=[(B1+B2)−C]/(B1+B2) is within a range of 0.05 to 0.45 (where B1 is the average diameter of the monofilament in the thickness direction of the electroconductive tape at places other than at the crossing points, B2 is the average diameter of the thread that crosses the monofilament in the thickness direction of the electroconductive tape at places other than at the crossing points, and C is the thickness of the electroconductive tape at the crossing points where the monofilament crosses other thread).
Abstract:
A swelling tape for filling a gap, a method of manufacturing the swelling tape for filling a gap, a method of filling a gap, an electrode assembly and a secondary battery are provided. For example, the swelling tape can be applied inside a gap in which a fluid exists so as to fill the gap by becoming a 3D form, and can be useful at anchoring a subject in which the gap is formed, as necessary.
Abstract:
A screen protection device includes: a tempered glass sheet comprising a first surface and a second surface; a non-transparent layer positioned on the first surface and defining a transparent area for the screen protection device; and a sticking layer positioned on at least a portion of the non-transparent layer and surrounding the transparent area. An air layer is formed between a display screen of a hand-held electronic device and the transparent area, and one or more bidirectional air tunnels are formed between the sticking layer and the upper surface. When the transparent area is pressed to approach to or to contact with the display screen, air flows from the air layer to an outside space via the one or more air tunnels. Afterward, air flows from the outside space to the air layer via the one or more air tunnels when the transparent area is not pressed.
Abstract:
The invention relates to an adherable material composite having a large-area extent, a composite face, which extends in a first direction and in a second direction running substantially perpendicular to the first direction, and having a composite thickness extending in a third direction which runs substantially perpendicular to the composite face, wherein the material composite is formed from a first composite region and at least a second composite region which adjoins the first composite region at least in certain portions, and wherein the second composite region has adhesive properties, such that the material composite is adherable, in particular redetachably adherable, to a surface of a body by way of the composite face.