B32B39/00

DEVICE FOR APPLICATION OF COMPOSITE MATERIALS

A device for the placement of material on a surface includes a housing, a motor coupled to the housing, and a driving component coupled to the housing and powered by the motor. The device further includes at least one guide chute defining a guide channel with the driving component. The device further includes a layup roller coupled to the housing adjacent the guide channel. The layup roller includes a roller surface and the guide channel is configured to discharge a quantity of material to the roller surface. The layup roller is configured to deposit the material onto the surface.

DEVICE FOR APPLICATION OF COMPOSITE MATERIALS

A device for the placement of material on a surface includes a housing, a motor coupled to the housing, and a driving component coupled to the housing and powered by the motor. The device further includes at least one guide chute defining a guide channel with the driving component. The device further includes a layup roller coupled to the housing adjacent the guide channel. The layup roller includes a roller surface and the guide channel is configured to discharge a quantity of material to the roller surface. The layup roller is configured to deposit the material onto the surface.

PROCESS FOR THE COATING OF ROLL PRODUCT
20170246848 · 2017-08-31 · ·

The invention relates to a process for the production of multilayer composites and to a production plant (12, 60) for this purpose. The multilayer composites comprise at least one substrate web (64, 66), at least one bonding layer, and at least one polyurethane layer which has capillaries which extend through the entire thickness of the at least one polyurethane layer. First, at least one polyurethane layer is produced in a matrix (15), with passage through at least one coating unit (26, 30) and through a plurality of heating units (24, 28, 32). The matrices (15) thus treated are then introduced (76) into an input point (74) of a transfer section (60) for substrate web (64, 66). A structured side (78) of the matrix (15) is applied onto the substrate web (64, 66) passing continuously through the transfer section (60). Treatment of a composite made of the matrix (15) and of the substrate web (64, 66) takes place in a heatable press device (82) with transfer of the at least one polyurethane layer from the matrix to the upper side of the substrate web (64, 66). Finally, the matrix (15) is removed from the substrate web (64, 66), and transferred to a treatment section (12), and the substrate web (64, 66) is wound up at a wind-up unit (100) after removal of the matrix.

PROCESS FOR THE COATING OF ROLL PRODUCT
20170246848 · 2017-08-31 · ·

The invention relates to a process for the production of multilayer composites and to a production plant (12, 60) for this purpose. The multilayer composites comprise at least one substrate web (64, 66), at least one bonding layer, and at least one polyurethane layer which has capillaries which extend through the entire thickness of the at least one polyurethane layer. First, at least one polyurethane layer is produced in a matrix (15), with passage through at least one coating unit (26, 30) and through a plurality of heating units (24, 28, 32). The matrices (15) thus treated are then introduced (76) into an input point (74) of a transfer section (60) for substrate web (64, 66). A structured side (78) of the matrix (15) is applied onto the substrate web (64, 66) passing continuously through the transfer section (60). Treatment of a composite made of the matrix (15) and of the substrate web (64, 66) takes place in a heatable press device (82) with transfer of the at least one polyurethane layer from the matrix to the upper side of the substrate web (64, 66). Finally, the matrix (15) is removed from the substrate web (64, 66), and transferred to a treatment section (12), and the substrate web (64, 66) is wound up at a wind-up unit (100) after removal of the matrix.

Bonding apparatus and bonding process method

According to one embodiment, a bonding apparatus for processing a retained substrate includes a main body unit, a nozzle, a gas supply unit, and a substrate support unit. The nozzle opens on a face of the main body unit on a side that a first substrate is retained. The gas supply unit is configured to supply gas to the nozzle, to apply suction to the first substrate and to separate the substrate from the face of the main body unit. The substrate support unit is configured to support a peripheral edge portion of a second substrate provided in opposition to the first substrate with a predetermined gap.

Process for in-line extrusion coatings onto roofing shingles during manufacturing and roofing shingles made by the process
11426756 · 2022-08-30 · ·

A process for in-line extrusion of polymeric coatings onto roofing shingles during manufacturing includes moving a web of shingle substrate material in a downstream direction and extruding a liquefied coating of polymeric material onto at least one surface of the moving web to form a thin film. The liquefied coating may be a molten polymeric material that forms a thin film on a back surface of the shingle material to prevent sticking and eliminate the need for a traditional back dusting with material such as powdered stone. The polymeric film further may be applied to the substrate material in lieu of a saturation coating of asphalt, thus reducing cost and weight while providing a comparable moisture barrier and a lighter more flexible shingle.

Apparatus for separating wafer from carrier

An apparatus for separating a wafer from a carrier includes a platform having an upper surface, a tape feeding unit, a first robot arm, and a controller coupled to the platform. The controller is configured to mount a wafer frame, by using the tape feeding unit, on a wafer of a wafer assembly on the upper surface of the platform. The wafer assembly includes the wafer, a carrier, and a layer of wax between the wafer and the carrier. The controller is also configured to heat the upper surface of the platform to a predetermined temperature and separate, by the first robot arm, the wafer and the wafer frame mounted thereon from the carrier.

Apparatus for separating wafer from carrier

An apparatus for separating a wafer from a carrier includes a platform having an upper surface, a tape feeding unit, a first robot arm, and a controller coupled to the platform. The controller is configured to mount a wafer frame, by using the tape feeding unit, on a wafer of a wafer assembly on the upper surface of the platform. The wafer assembly includes the wafer, a carrier, and a layer of wax between the wafer and the carrier. The controller is also configured to heat the upper surface of the platform to a predetermined temperature and separate, by the first robot arm, the wafer and the wafer frame mounted thereon from the carrier.

Laminated fuel cell assembly
09728789 · 2017-08-08 · ·

The disclosure, in some aspects, relates to a method and apparatus for assembling a laminated fuel cell, in which an assembly head comprising one or more punches is used for dividing portions from sheet material and for transferring the portions to an electrode plate for lamination. Embodiments disclosed include a method of assembling a laminated fuel cell, the method comprising the steps of: providing a first sheet material (202b) to a first die (205); translating an assembly head (204) to a first location adjacent the first die, the assembly head comprising a first punch (501) having a surface (507) configured to engage with the first die; engaging the first punch with the first die to divide a portion from the first sheet material; adhering the first sheet portion to the surface of the first punch; translating the assembly head with the first sheet material portion to an assembly station (203) comprising an electrode plate (701); and applying the first sheet material portion to a surface of the electrode plate.

Laminated fuel cell assembly
09728789 · 2017-08-08 · ·

The disclosure, in some aspects, relates to a method and apparatus for assembling a laminated fuel cell, in which an assembly head comprising one or more punches is used for dividing portions from sheet material and for transferring the portions to an electrode plate for lamination. Embodiments disclosed include a method of assembling a laminated fuel cell, the method comprising the steps of: providing a first sheet material (202b) to a first die (205); translating an assembly head (204) to a first location adjacent the first die, the assembly head comprising a first punch (501) having a surface (507) configured to engage with the first die; engaging the first punch with the first die to divide a portion from the first sheet material; adhering the first sheet portion to the surface of the first punch; translating the assembly head with the first sheet material portion to an assembly station (203) comprising an electrode plate (701); and applying the first sheet material portion to a surface of the electrode plate.