B29C35/12

METHOD AND APPARATUS FOR PRODUCING THREE-DIMENSIONAL EMBLEM MADE OF THERMOPLASTIC SYNTHETIC RESIN
20210331420 · 2021-10-28 ·

A method wherein a bulky three-dimensional emblem can be made of a thermoplastic synthetic resin containing a vapor-deposited-metal laminated film. An apparatus for producing a three-dimensional emblem made of a thermoplastic synthetic resin includes a slide jig in which an electrode flat plate die and an electrode projecting die are slidable in a horizontal plane, an electrode recessed die capable of approaching and separating from the slide jig in a vertical direction and at a position where it can oppose the electrode flat plate die and the electrode projecting die, and a high-frequency oscillator that performs high-frequency dielectric heating by continuously generating a high-frequency voltage across the opposing dies, wherein recesses form in a surface of the electrode flat plate die opposing the electrode recessed die, and during high-frequency dielectric heating, a portion of the lower layer material enters the recess and is held on the electrode flat plate die.

METHOD AND APPARATUS FOR PRODUCING THREE-DIMENSIONAL EMBLEM MADE OF THERMOPLASTIC SYNTHETIC RESIN
20210331420 · 2021-10-28 ·

A method wherein a bulky three-dimensional emblem can be made of a thermoplastic synthetic resin containing a vapor-deposited-metal laminated film. An apparatus for producing a three-dimensional emblem made of a thermoplastic synthetic resin includes a slide jig in which an electrode flat plate die and an electrode projecting die are slidable in a horizontal plane, an electrode recessed die capable of approaching and separating from the slide jig in a vertical direction and at a position where it can oppose the electrode flat plate die and the electrode projecting die, and a high-frequency oscillator that performs high-frequency dielectric heating by continuously generating a high-frequency voltage across the opposing dies, wherein recesses form in a surface of the electrode flat plate die opposing the electrode recessed die, and during high-frequency dielectric heating, a portion of the lower layer material enters the recess and is held on the electrode flat plate die.

POLYMER COMPOSITE MATERIAL HAVING ORIENTED ELECTRICALLY AND THERMALLY CONDUCTIVE PATHWAYS
20210323255 · 2021-10-21 · ·

A method of forming a polyolefin-perovskite nanomaterial composite which contains oriented electrically and thermally conductive pathways. The method involves milling a polyolefin with particles of a perovskite nanomaterial, molding to forma composite plate, and subjecting the composite plate to an AC voltage. The AC voltage forms oriented electrically and thermally conductive pathways by partial dielectric breakdown of the composite. The presence of the oriented electrically and thermally conductive pathways gives the polyolefin-perovskite nanomaterial electrical and thermal conductivity and dielectric permittivity higher than the polyolefin alone.

Method and systems for applying stretch films/plastic films at a controlled temperature
11110645 · 2021-09-07 · ·

A system for controlling the temperature of a film before and/or during application, the system including: a heat source for heating a film; and stretch rollers; wherein the heat source heats the film from an ambient temperature to a temperature from about 2° C. to about 40° C. above the ambient temperature, wherein the film is heated prior to or simultaneous to being stretched by the stretch rollers, and wherein the ambient temperature is below 15° C. The preheating system may be used to enhance binding and sealing properties of stretch films used for wrapping palletized products in a reduced temperature environment. Other embodiments of the preheating film system, and methods for its use, are described herein.

Method of forming electrically and thermally conductive polyolefin-perovskite nanomaterial composites having increased dielectric permittivity and breakdown-induced electrical and thermal conduction pathways

A method of forming a polyolefin-perovskite nanomaterial composite which contains oriented electrically and thermally conductive pathways. The method involves milling a polyolefin with particles of a perovskite nanomaterial, molding to forma composite plate, and subjecting the composite plate to an AC voltage. The AC voltage forms oriented electrically and thermally conductive pathways by partial dielectric breakdown of the composite. The presence of the oriented electrically and thermally conductive pathways gives the polyolefin-perovskite nanomaterial electrical and thermal conductivity and dielectric permittivity higher than the polyolefin alone.

METHOD OF FORMING ELECTRICALLY AND THERMALLY CONDUCTIVE POLYOLEFIN-PEROVSKITE NANOMATERIAL COMPOSITES HAVING INCREASED DIELECTRIC PERMITTIVITY AND BREAKDOWN-INDUCED ELECTRICAL AND THERMAL CONDUCTION PATHWAYS
20210301111 · 2021-09-30 · ·

A method of forming a polyolefin-perovskite nanomaterial composite which contains oriented electrically and thermally conductive pathways. The method involves milling a polyolefin with particles of a perovskite nanomaterial, molding to form a composite plate, and subjecting the composite plate to an AC voltage. The AC voltage forms oriented electrically and thermally conductive pathways by partial dielectric breakdown of the composite. The presence of the oriented electrically and thermally conductive pathways gives the polyolefin-perovskite nanomaterial electrical and thermal conductivity and dielectric permittivity higher than the polyolefin alone.

Method and systems for applying stretch films/plastic films at a controlled temperature and/or transfer of electrostatic charge
10987853 · 2021-04-27 · ·

A system for controlling the temperature of a film before and/or during application, the system including: a heat source for heating a film; and stretch rollers; wherein the heat source heats the film from an ambient temperature to a temperature from about 2° C. to about 40° C. above the ambient temperature, wherein the film is heated prior to or simultaneous to being stretched by the stretch rollers, and wherein the ambient temperature is below 15° C. A system for improving the application of film by transfer of electrostatic charge is also described. The preheating system and/or electrostatic charge system may be used to enhance binding and sealing properties of stretch films used for wrapping palletized products in a reduced temperature environment. Other embodiments of the preheating film system and electrostatic charge system, and methods for their use, are described herein.

MOULDING TRAY FOR MANUFACTURING SLABS MADE OF AGGLOMERATE MATERIAL, METHOD FOR REALIZING SUCH MOULDING TRAY AND METHOD FOR MANUFACTURING SLABS MADE OF AGGLOMERATE MATERIAL
20230405870 · 2023-12-21 ·

Moulding tray (1) for manufacturing slabs of agglomerate material from a mix, comprising a base portion (2) and a rim portion (4) designed to define a cavity (6) for containing the mix. The rim portion (4) is made of elastomeric material and the base portion (2) comprises at least one surface layer (8A) made of elastomeric material and at least one fabric layer (10A). The elastomeric material of the rim portion (4) and the elastomeric material of the at least one layer (8A) of the base portion (2) comprise a filler containing silicon (Si), preferably silica. The invention also relates to a method for realizing the moulding tray (1) and a method for manufacturing slabs of agglomerate material which uses such a moulding tray (1).

Method for Repairing Composite Materials Via Dielectric Barrier Discharge

Provided herein is a method for repairing a composite material, a layup manufacturing process of a composite and a system for manufacturing a 3-dimensional composite part. The method, process and system all utilize a dielectric barrier discharge applicator to generate a plasma to cure an epoxy material to bond a patch to a composite material or to bond two or more layers of composite material together in a 3-dimensional shape to form a composite part.

Method for Repairing Composite Materials Via Dielectric Barrier Discharge

Provided herein is a method for repairing a composite material, a layup manufacturing process of a composite and a system for manufacturing a 3-dimensional composite part. The method, process and system all utilize a dielectric barrier discharge applicator to generate a plasma to cure an epoxy material to bond a patch to a composite material or to bond two or more layers of composite material together in a 3-dimensional shape to form a composite part.