B32B2037/246

Gas turbine engine component including a compliant layer

A blade for a gas turbine engine comprises a blade portion having a first end and a second end and an engagement portion including a first surface coupled to the second end of the blade portion and a second surface coupled to the second end of the blade portion, the first and second surfaces arranged to extend divergently away from one another. The engagement portion is adapted for coupling to a wheel included in a gas turbine engine wheel.

Nanomaterial assisted bonding method to produce curved surfaces

A method of fabricating a curved surface bonding technique using low melting temperature nanoparticles or nanofilms/nanoparticles of reactive metals as eutectic compounds. The ability of nanomaterials to melt at low temperature lowers the bonding temperature and reduces/eliminates the residual stresses generated in bulk material during the bonding process of two materials with different coefficients of thermal expansion. The nanoscale materials will then be integrated and the new bond will assume properties of the bulk material, including its higher melting temperature.

TEXTILES AND GARMENTS HAVING THERMOREFLECTIVE MATERIAL
20190350284 · 2019-11-21 ·

Aspects herein are directed to a textile or comprising at least one compressed portion, at least one uncompressed portion, and a deposit of thermo-reflective material on at least the compressed portion. Other aspects herein are directed to a method of manufacturing a textile or garment having a deposit of thermo-reflective material.

LAYERED AND SCROLLED NANOCOMPOSITES WITH ALIGNED SEMI-INFINITE GRAPHENE INCLUSIONS AT THE PLATELET LIMIT

A composite can include alternating layers of a first layer including a 2D material and a second layer including a polymer matrix. Fabrication methods can take a thin layer of molecular thickness and construct large composite stacks that scale exponentially with the number of processing steps. An analogous shear scrolling method can create Archimedean scroll fibers from single layers with similar scaling. These methods can produce materials that demonstrate the .fwdarw. limit while combining electrical and optical properties minimal volume fraction of the filler.

RELEASE SYSTEM FOR ELECTROCHEMICAL CELLS

Electrochemical cells, and more specifically, release systems for the fabrication of electrochemical cells are described. In particular, release layer arrangements, assemblies, methods and compositions that facilitate the fabrication of electrochemical cell components, such as electrodes, are presented. In some embodiments, methods of fabricating an electrode involve the use of a release layer to separate portions of the electrode from a carrier substrate on which the electrode was fabricated. For example, an intermediate electrode assembly may include, in sequence, an electroactive material layer, a current collector layer, a release layer, and a carrier substrate. The carrier substrate can facilitate handling of the electrode during fabrication and/or assembly, but may be released from the electrode prior to commercial use.

DEPOSITION MASK PACKAGE AND DEPOSITION MASK PACKAGING METHOD

A deposition mask package according to the present embodiment includes a receiving portion, a lid portion that faces the receiving portion, a deposition mask that is arranged between the receiving portion and the lid portion and has an effective region in which a plurality of through-holes is formed. The receiving portion has a first opposing surface facing the lid portion and a concave portion provided on the first opposing surface. The concave portion is covered by a first flexible film. The effective region of the deposition mask is arranged on the concave portion with the first flexible film interposed therebetween.

NANOMATERIAL ASSISTED BONDING METHOD TO PRODUCE CURVED SURFACES
20190217592 · 2019-07-18 ·

A method of fabricating a curved surface bonding technique using low melting temperature nanoparticles or nanofilms/nanoparticles of reactive metals as eutectic compounds. The ability of nanomaterials to melt at low temperature lowers the bonding temperature and reduces/eliminates the residual stresses generated in bulk material during the bonding process of two materials with different coefficients of thermal expansion. The nanoscale materials will then be integrated and the new bond will assume properties of the bulk material, including its higher melting temperature.

Release system for electrochemical cells

Electrochemical cells, and more specifically, release systems for the fabrication of electrochemical cells are described. In particular, release layer arrangements, assemblies, methods and compositions that facilitate the fabrication of electrochemical cell components, such as electrodes, are presented. In some embodiments, methods of fabricating an electrode involve the use of a release layer to separate portions of the electrode from a carrier substrate on which the electrode was fabricated. For example, an intermediate electrode assembly may include, in sequence, an electroactive material layer, a current collector layer, a release layer, and a carrier substrate. The carrier substrate can facilitate handling of the electrode during fabrication and/or assembly, but may be released from the electrode prior to commercial use.

ARTICLES OF CONTROLLABLY BONDED SHEETS AND METHODS FOR MAKING SAME
20190184686 · 2019-06-20 ·

Described herein are articles and methods of making articles, for example glass articles, comprising a thin sheet and a carrier, wherein the thin sheet and carrier are bonded together using a modification (coating) layer, for example an aromatic polymer coating layer, and associated deposition methods and inert gas treatments that may be applied on the thin sheet, the carrier, or both, to control van der Waals, hydrogen and covalent bonding between the thin sheet and the carrier. The modification layer bonds the thin sheet and carrier together with sufficient bond strength to prevent delamination of the thin sheet and the carrier during high temperature processing while preventing a permanent bond during high temperature processing.

METHODS FOR PRODUCING PAPER CONTAINERS FOR LIQUID, AND PAPER CONTAINERS FOR LIQUID
20190176455 · 2019-06-13 · ·

A method for producing a paper container and a paper container for liquid. A method for producing a paper container for liquid according to an aspect includes a bonding step of bonding a first surface of a substrate and a vapor deposition surface of a barrier laminate film layer via a first adhesive resin layer without applying a corona treatment to the vapor deposition surface of the barrier laminate film layer, a lamination step of laminating at least a second adhesive resin layer on a surface of the barrier laminate film layer on a side opposite to the vapor deposition surface, and a forming step of forming a laminate into a box shape after the bonding step and the lamination step, the laminate including at least the substrate, the first adhesive resin layer, the barrier laminate film layer, and the second adhesive resin layer.