B29B13/08

Oral Care Implement or Head Plate Therefor and Method of Forming the Same
20200047381 · 2020-02-13 · ·

A method of forming an oral care implement, a method of forming a head plate for an oral care implement, and an oral care implement or head plate formed therefrom. The head plate may have micro-sized or fine features. The method may include providing an amount of a first solid material upstream of a first mold cavity; prior to the first solid material entering the first mold cavity, applying ultrasonic energy to the first solid material to melt the first solid material into a first molten material; flowing the first molten material into the first mold cavity; allowing the first molten material to harden within the first mold cavity to form a head plate comprising micro-sized features; forming a body from a second material, the body including a handle portion and a head portion; and coupling the head plate to the head portion of the body.

APPARATUS AND METHOD FOR HEATING PIPES MADE OF THERMOPLASTIC MATERIAL
20200039113 · 2020-02-06 ·

Described is an apparatus for heating end portions of pipes made of thermoplastic material, comprising an internal heating element, designed to be inserted at least partially inside an end portion of a pipe made of thermoplastic material for heating an inner cylindrical surface of the portion, the heating element comprising at least one infra-red ray radiation unit which has an operating zone designed to face at least partially the inner cylindrical surface, the operating zone extending longitudinally along a predetermined direction, parallel to a central axis of the pipe to be heated.

APPARATUS AND METHOD FOR HEATING PIPES MADE OF THERMOPLASTIC MATERIAL
20200039113 · 2020-02-06 ·

Described is an apparatus for heating end portions of pipes made of thermoplastic material, comprising an internal heating element, designed to be inserted at least partially inside an end portion of a pipe made of thermoplastic material for heating an inner cylindrical surface of the portion, the heating element comprising at least one infra-red ray radiation unit which has an operating zone designed to face at least partially the inner cylindrical surface, the operating zone extending longitudinally along a predetermined direction, parallel to a central axis of the pipe to be heated.

RESIN COMPOSITION FOR A POLARIZER PROTECTIVE FILM, A POLARIZER PROTECTIVE FILM, A POLARIZING PLATE INCLUDING THE SAME, AND A PREPARATION METHOD OF A POLARIZING PLATE
20200033510 · 2020-01-30 · ·

The present invention relates to a resin composition for a polarizer protective film, a polarizer protective film, a polarizing plate including the same, and a preparation method of a polarizing plate, and, more specifically, to a resin composition for a polarizer protective film and a polarizer protective film exhibiting high hardness and excellent properties, a polarizing plate including the same, and a preparation method of a polarizing plate. According to the polarizing plate of the present invention, it can be usefully utilized in various fields because of its excellent hardness, flexibility, and optical properties.

BLENDED FIBER MAT FORMATION FOR STRUCTURAL APPLICATIONS

A process and system are provided for introducing a blend of chopped and dispersed fibers on an automated production line amenable for inclusion in molding compositions as a blended fiber mat for structural applications. The blend of fibers are simultaneously supplied to an automated cutting machine illustratively including a rotary blade chopper disposed above a vortex supporting chamber. The blend of chopped fibers and binder form a chopped mat. The chopped mat has a veil mat placed on either side, and is consolidated with the veil mat using heated rollers maintained at the softening temperature of thermoplastic binder, with consolidated mats being amenable to being stored in rolls or as flat sheets. A charge pattern is made using the consolidated mat, and the charge pattern can be compression molded in a mold maintained at a temperature lower than the melting point of the thermoplastic fibers.

BLENDED FIBER MAT FORMATION FOR STRUCTURAL APPLICATIONS

A process and system are provided for introducing a blend of chopped and dispersed fibers on an automated production line amenable for inclusion in molding compositions as a blended fiber mat for structural applications. The blend of fibers are simultaneously supplied to an automated cutting machine illustratively including a rotary blade chopper disposed above a vortex supporting chamber. The blend of chopped fibers and binder form a chopped mat. The chopped mat has a veil mat placed on either side, and is consolidated with the veil mat using heated rollers maintained at the softening temperature of thermoplastic binder, with consolidated mats being amenable to being stored in rolls or as flat sheets. A charge pattern is made using the consolidated mat, and the charge pattern can be compression molded in a mold maintained at a temperature lower than the melting point of the thermoplastic fibers.

Method of manufacturing a bladder element with an etched feature and article having a bladder element with an etched feature
10517352 · 2019-12-31 · ·

A method of manufacturing an article comprises etching an etched feature on a surface of a first polymeric sheet, and forming a fluid-filled bladder element from the first polymeric sheet, with the fluid-filled bladder element having a sealable internal cavity that retains fluid. The method includes assembling the bladder element in the article so that a first portion of the bladder element having the etched feature is exposed to view, and a second portion of the bladder element is blocked from view by the article. An article includes the bladder element with the etched feature.

Method of manufacturing a bladder element with an etched feature and article having a bladder element with an etched feature
10517352 · 2019-12-31 · ·

A method of manufacturing an article comprises etching an etched feature on a surface of a first polymeric sheet, and forming a fluid-filled bladder element from the first polymeric sheet, with the fluid-filled bladder element having a sealable internal cavity that retains fluid. The method includes assembling the bladder element in the article so that a first portion of the bladder element having the etched feature is exposed to view, and a second portion of the bladder element is blocked from view by the article. An article includes the bladder element with the etched feature.

SYSTEMS AND METHODS FOR IMPROVED DISPENSING, LAYERING, AND DEPOSITION OF CROSS-LINKABLE HYDROGELS

Systems and methods for the dispensing of liquid, and automated layering of liquid hydrogel patterns are disclosed. In some embodiments, the systems and methods described herein may utilize a bioprinter having a brush that is configured to pattern a collagen layer. In some embodiments, the bioprinter may be used to make layered bioprinted materials. In some embodiments, the systems and methods described herein may include a bioprinter having an atomizer needle that is configured to dispense liquid in an automated way. In some embodiments, the disclosed systems and methods may provide modified surfaces upon which materials may be printed using a three-dimensional (3D) bioprinter. In one embodiment, a modified surface may be formed of polydimethylsiloxane (PDMS), silicones and the like.

SYSTEMS AND METHODS FOR IMPROVED DISPENSING, LAYERING, AND DEPOSITION OF CROSS-LINKABLE HYDROGELS

Systems and methods for the dispensing of liquid, and automated layering of liquid hydrogel patterns are disclosed. In some embodiments, the systems and methods described herein may utilize a bioprinter having a brush that is configured to pattern a collagen layer. In some embodiments, the bioprinter may be used to make layered bioprinted materials. In some embodiments, the systems and methods described herein may include a bioprinter having an atomizer needle that is configured to dispense liquid in an automated way. In some embodiments, the disclosed systems and methods may provide modified surfaces upon which materials may be printed using a three-dimensional (3D) bioprinter. In one embodiment, a modified surface may be formed of polydimethylsiloxane (PDMS), silicones and the like.