B22F9/06

METHOD FOR MANUFACTURING A LEAD-FREE OR LOW LEAD CONTENT BRASS BILLET AND BILLET THUS OBTAINED
20220331861 · 2022-10-20 · ·

A method for obtaining a lead-free or low lead content brass billet subjects a mixture of lead-free or low lead content brass chips and graphite powder to extrusion, either direct or inverted. The method obtains lead-free or low lead content brass billets.

METHOD FOR MANUFACTURING A LEAD-FREE OR LOW LEAD CONTENT BRASS BILLET AND BILLET THUS OBTAINED
20220331861 · 2022-10-20 · ·

A method for obtaining a lead-free or low lead content brass billet subjects a mixture of lead-free or low lead content brass chips and graphite powder to extrusion, either direct or inverted. The method obtains lead-free or low lead content brass billets.

METHOD FOR PRODUCING NANOPARTICLES AND THE NANOPARTICLES PRODUCED THEREFROM

Disclosed herein is a method comprising disposing a container containing a metal and/or ferromagnetic solid and abrasive particles in a static magnetic field; where the container is surrounded by an induction coil; activating the induction coil with an electrical current, to heat up the metallic or ferromagnetic solid to form a fluid; generating sonic energy to produce acoustic cavitation and abrasion between the abrasive particles and the container; and producing nanoparticles that comprise elements from the container, the metal and/or the ferromagnetic solid and the abrasive particles. Disclosed herein too is a composition comprising first metal or a first ceramic; and particles comprising carbides and/or nitrides dispersed therein. Disclosed herein too is a composition comprising nanoparticles comprising chromium carbide, iron carbide, nickel carbide, γ-Fe and magnesium nitride.

METHOD FOR PRODUCING NANOPARTICLES AND THE NANOPARTICLES PRODUCED THEREFROM

Disclosed herein is a method comprising disposing a container containing a metal and/or ferromagnetic solid and abrasive particles in a static magnetic field; where the container is surrounded by an induction coil; activating the induction coil with an electrical current, to heat up the metallic or ferromagnetic solid to form a fluid; generating sonic energy to produce acoustic cavitation and abrasion between the abrasive particles and the container; and producing nanoparticles that comprise elements from the container, the metal and/or the ferromagnetic solid and the abrasive particles. Disclosed herein too is a composition comprising first metal or a first ceramic; and particles comprising carbides and/or nitrides dispersed therein. Disclosed herein too is a composition comprising nanoparticles comprising chromium carbide, iron carbide, nickel carbide, γ-Fe and magnesium nitride.

Porous materials via freeze-casting of metal salt solutions

Disclosed here is a method for making a nanoporous material, comprising aerosolizing a solution comprising at least one metal salt and at least one solvent to obtain an aerosol, freezing the aerosol to obtain a frozen aerosol, and drying the frozen aerosol to obtain a nanoporous metal compound material. Further, the nanoporous metal compound material can be reduced to obtain a nanoporous metal material.

Porous materials via freeze-casting of metal salt solutions

Disclosed here is a method for making a nanoporous material, comprising aerosolizing a solution comprising at least one metal salt and at least one solvent to obtain an aerosol, freezing the aerosol to obtain a frozen aerosol, and drying the frozen aerosol to obtain a nanoporous metal compound material. Further, the nanoporous metal compound material can be reduced to obtain a nanoporous metal material.

SYSTEM AND METHOD FOR MANUFACTURE OF UNDERCOOLED METALLIC CORE-SHELL PARTICLES
20220212250 · 2022-07-07 ·

A system and method are presented for producing metallic core-shell particles. The system includes the housing having a hollow interior configured to receive and hold a molten metal input, a carrier fluid, and one or more reagents. The system also includes a shearing assembly positioned within the hollow interior of the housing. The shearing assembly is configured to, when the molten metal input, carrier fluid, and one or more reagents are held withing hollow interior and sealed within housing, shear the molten metal input into particles of an effective size so that a shell created on a surface of the particles via reaction with the one or more reagents prevents a core of the particles from solidifying when the particles are cooled to a temperature below a freezing temperature of the molten metal input.

SYSTEM AND METHOD FOR MANUFACTURE OF UNDERCOOLED METALLIC CORE-SHELL PARTICLES
20220212250 · 2022-07-07 ·

A system and method are presented for producing metallic core-shell particles. The system includes the housing having a hollow interior configured to receive and hold a molten metal input, a carrier fluid, and one or more reagents. The system also includes a shearing assembly positioned within the hollow interior of the housing. The shearing assembly is configured to, when the molten metal input, carrier fluid, and one or more reagents are held withing hollow interior and sealed within housing, shear the molten metal input into particles of an effective size so that a shell created on a surface of the particles via reaction with the one or more reagents prevents a core of the particles from solidifying when the particles are cooled to a temperature below a freezing temperature of the molten metal input.

LIQUID METAL-BASED POWDER MATERIALS INCLUDING OXIDE, COMPOSITES INCLUDING SAME, AND METHODS OF FORMING SAME
20220097138 · 2022-03-31 ·

Liquid metal-based powder materials may include oxides. More specifically, the liquid metal-based powder materials may include a plurality of particles formed from a combination of a liquid metal and a dopant material. Each of the plurality of particles may have a predetermined size and having a composition that includes oxide. More specifically, each of the plurality of particles may include a core portion including the combination of the liquid metal and the dopant material, and oxide. Additionally, each of the plurality of particles may also include an outer portion surrounding the core portion. The outer portion may be formed as an oxide film. Furthermore, each of the plurality of particles may also include a plurality of supplemental nanoparticles formed within the core portion, and included in the combination of liquid metal, dopant material, and oxide.

LIQUID METAL-BASED POWDER MATERIALS INCLUDING OXIDE, COMPOSITES INCLUDING SAME, AND METHODS OF FORMING SAME
20220097138 · 2022-03-31 ·

Liquid metal-based powder materials may include oxides. More specifically, the liquid metal-based powder materials may include a plurality of particles formed from a combination of a liquid metal and a dopant material. Each of the plurality of particles may have a predetermined size and having a composition that includes oxide. More specifically, each of the plurality of particles may include a core portion including the combination of the liquid metal and the dopant material, and oxide. Additionally, each of the plurality of particles may also include an outer portion surrounding the core portion. The outer portion may be formed as an oxide film. Furthermore, each of the plurality of particles may also include a plurality of supplemental nanoparticles formed within the core portion, and included in the combination of liquid metal, dopant material, and oxide.