Abstract:
A portable thermoshapable fabric composite heating device kit mainly comprises a portable heating device and a thermoshapable fabric composite; wherein the portable heating device includes a first box body and a second box body disposed above or inside the first box body. A heating space formed between the bottoms of the two box body bodies is used to accommodate a heating pack. The thermoshapable fabric composite can be accommodated within a receiving space of the second box body. After water is added into the first box body to flood the heating pack, and a lid is placed to cover the top, the heat-generating material in the heating pack contacts the water to generate water vapor during an exothermic reaction. The water vapor enters the receiving space, in which the thermoshapable fabric composite is stored, through the multiple pores at the bottom of the second box body. The generated thermal energy will heat the thermoshapable fabric composite without the need for open flame or electricity. That is, the thermoshapable fabric composite can be heated and softened, so that the thermoshapable fabric composite can be used in the field without reliance on external elements, such as conventional heating or electricity, in order to achieve the purpose of providing first aid such as bandaging and fixation, and to prevent secondary injuries.
Abstract:
A twistable light emitting diode display module including a twistable substrate, an electrode pattern layer, an insulating layer, a circuit layer, and a plurality of light emitting diode devices. The electrode pattern layer is disposed on the twistable substrate. The insulating layer is disposed on the electrode pattern layer, where an edge of the insulating layer has an opening, located at an edge of the twistable substrate and exposing a part of the electrode pattern layer. The circuit layer is disposed on the insulating layer and on sidewalls of the opening, and is connected to the electrode pattern layer. The plurality of light emitting diode devices are disposed on the circuit layer and are electrically connected to the circuit layer respectively, wherein each of the plurality of light emitting diode devices includes a driving circuit.
Abstract:
A twistable light emitting diode display module including a twistable substrate, an electrode pattern layer, an insulating layer, a circuit layer, and a plurality of light emitting diode devices. The electrode pattern layer is disposed on the twistable substrate. The insulating layer is disposed on the electrode pattern layer, where an edge of the insulating layer has an opening, located at an edge of the twistable substrate and exposing a part of the electrode pattern layer. The circuit layer is disposed on the insulating layer and on sidewalls of the opening, and is connected to the electrode pattern layer. The plurality of light emitting diode devices are disposed on the circuit layer and are electrically connected to the circuit layer respectively, wherein each of the plurality of light emitting diode devices includes a driving circuit.
Abstract:
The invention provides a shape memory spacer fabric composite, being a spacer fabric coated with a shape memory polymer layer, wherein the spacer fabric comprises a first outer layer, a second outer layer and an intermediate spacing layer connecting the first outer layer and the second outer layer; the shape memory polymer layer is made from at least one block or random copolymer selected from the group consisting of the following: polyesters, polyurethanes, polyamides, polyols; the copolymer has at least one phase transition temperature in a range of 40˜80° C.
Abstract:
An embedded smart module including a twistable substrate, an electrode layer, a circuit layer, an insulating layer, an electronic component and a sensing component is provided. The electrode layer is disposed on the twistable substrate. The circuit layer is disposed in the electrode layer and exposed at the surface of the electrode layer. The insulating layer is disposed between the electrode layer and the circuit layer. The electronic component is disposed on the electrode layer and the circuit layer and electrically connected with the electrode layer and the circuit layer. The sensing component is disposed on the electrode layer and the circuit layer and electrically connected with the electrode layer and the circuit layer.
Abstract:
A twistable electronic device module including a twistable substrate, an electrode pattern layer, an insulating layer, a circuit layer, a plurality of circuit boards and a plurality of electronic devices is provided. The electrode pattern layer is disposed on the twistable substrate. The insulating layer is disposed on the electrode pattern layer. The edge of the insulating layer has an opening located at the edge of the twistable substrate and exposing a part of the electrode pattern layer. The circuit layer is disposed on the insulating layer and on the sidewall of the opening, and is connected with the electrode pattern layer. The plurality of circuit boards are disposed on the circuit layer, and each is electrically connected to the circuit layer. The plurality of electronic devices are disposed on the plurality of circuit boards, and each is electrically connected to a corresponding one of the plurality of circuit boards
Abstract:
The present invention provides a magnetorheological fluid composition and method for forming the same. The magnetorheological fluid composition comprises a carrier fluid and a nano-magnetic-responsive composite dispersed uniformly in the carrier fluid. The nano-magnetic-responsive composite is formed by having carbonyl iron microparticles react with a grafting agent to form a modified carbonyl iron nanoparticles and blending the modified carbonyl iron nanoparticles with acid-treated graphene or carbon nanotubes.
Abstract:
An embedded smart module including a twistable substrate, an electrode layer, a circuit layer, an insulating layer, an electronic component and a sensing component is provided. The electrode layer is disposed on the twistable substrate. The circuit layer is disposed in the electrode layer and exposed at the surface of the electrode layer. The insulating layer is disposed between the electrode layer and the circuit layer. The electronic component is disposed on the electrode layer and the circuit layer and electrically connected with the electrode layer and the circuit layer. The sensing component is disposed on the electrode layer and the circuit layer and electrically connected with the electrode layer and the circuit layer.
Abstract:
A twistable electronic device module including a twistable substrate, an electrode pattern layer, an insulating layer, a circuit layer, a plurality of circuit boards and a plurality of electronic devices is provided. The electrode pattern layer is disposed on the twistable substrate. The insulating layer is disposed on the electrode pattern layer. The edge of the insulating layer has an opening located at the edge of the twistable substrate and exposing a part of the electrode pattern layer. The circuit layer is disposed on the insulating layer and on the sidewall of the opening, and is connected with the electrode pattern layer. The plurality of circuit boards are disposed on the circuit layer, and each is electrically connected to the circuit layer. The plurality of electronic devices are disposed on the plurality of circuit boards, and each is electrically connected to a corresponding one of the plurality of circuit boards.
Abstract:
The present invention provides a fabric having a multiple layered circuit thereon integrating with electronic devices. The fabric comprises: a base layer; a plurality of conductive circuit layers; at least one connecting layer having electrically-conductive via-hole(s) and electrically-insulated area covering the area without the via-hole(s) and electrically connecting two conductive circuit layers through the via-hole(s) but electrically insulating the rest of the two conductive circuit layers; one or more than one electrical devices mounted to the conductive circuit layer and connected to circuits on the conductive circuit layer through anisotropic conductive film (ACF); and a water-proof layer disposed on the conductive circuit layer which is the farthest away from the base layer and covering the electrical device(s).