IP Library Granted Patent US 12,510,297
Granted Patent B2
US 12,510,297 · App. 18/128,438 · Granted Dec 30, 2025

Load lock system and method for manufacturing metal alloys and metal powder

Inventors: Matthew Charles (Cloverdale, CA); Christopher Paul Eonta (Los Gatos, CA); Paul Meese (Healdsburg, CA); Jonathan Nuttall (Santa Rosa, CA)
Assignee: Continuum Powders Corporation
F27B3/22B22F9/082F27B3/18F27B3/19F27B3/28B22F2009/0844B22F2009/0848B22F2009/0896
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Quick Facts
Patent No.
US 12,510,297
App. No.
18/128,438
Granted
Dec 30, 2025
Kind
B2
Abstract

A load lock system for manufacturing a metal alloy using a feed material includes a process chamber having a controlled atmosphere, a feed chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to contain a quantity of the feed material, and a collection chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to collect the metal alloy manufactured in the process chamber. The system also includes a gate valve between the process chamber and the feed chamber configured to either allow passage of the feed material between the chambers, or to seal the process chamber from the feed chamber. The system also includes a discharge valve between the process chamber and the collection chamber configured to either allow passage of the metal alloy between the chambers, or to seal the process chamber from the collection chamber.

Claims (38)

1 . A load lock system for manufacturing a metal alloy using a feed material comprising:

a process chamber having a controlled atmosphere;

a metallurgical system in the process chamber configured to perform a metallurgical process to form the metal alloy;

a feed chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to contain a quantity of the feed material;

a feed mechanism configured to transport the feed material from the feed chamber into the process chamber;

a collection chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to collect the metal alloy manufactured in the process chamber by the metallurgical system;

a gate valve between the process chamber and the feed chamber configured to either allow passage of the feed material from the feed chamber to the process chamber, or to seal the process chamber from the feed chamber;

a discharge valve between the process chamber and the collection chamber configured to either allow passage of the metal alloy between the process chamber and the collection chamber, or to seal the process chamber from the collection chamber; and

a first vacuum pump and a first gas supply in flow communication with the feed chamber configured to form a first controlled atmosphere in the feed chamber and a second vacuum pump and a second gas supply in flow communication with the collection chamber configured to form a second controlled atmosphere in the collection chamber.

2 . The load lock system of claim 1 wherein the metal alloy comprises a metal powder and the metallurgical system comprises a mixing melting cold hearth system for melting the feed material into a molten metal and an atomization system for atomizing the molten metal into a metal powder.

3 . The load lock system of claim 1 further comprising a central processing unit (CPU) in signal communication with the gate valve and the discharge valve having one or more automated programs configured to control the gate valve and the discharge valve and to control the first controlled atmosphere in the feed chamber and the second controlled atmosphere in the collection chamber.

4 . A load lock system for manufacturing a metal powder using a feed material comprising:

a process chamber having a controlled atmosphere;

a metallurgical system in the process chamber comprising a mixing melting cold hearth system for melting the feed material into a molten metal and an atomization system for atomizing the molten metal into the metal powder;

a feed chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to contain a quantity of the feed material;

a feed mechanism configured to transport the feed material from the feed chamber into the process chamber;

a collection chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to collect the metal powder manufactured in the process chamber by the metallurgical system;

a gate valve between the process chamber and the feed chamber configured to either allow passage of the feed material between the feed chamber and the process chamber, or to seal the process chamber from the feed chamber;

a discharge valve between the process chamber and the collection chamber configured to either allow passage of the metal powder between the process chamber and the collection chamber, or to seal the process chamber from the collection chamber; and

a first vacuum pump and a first gas supply in flow communication with the feed chamber configured to form a first controlled atmosphere in the feed chamber and a second vacuum pump and a second gas supply in flow communication with the collection chamber configured to form a second controlled atmosphere in the collection chamber.

5 . The load lock system of claim 4 wherein the collection vessel comprises a removable vessel for containing a selected quantity of the metal powder.

6 . The load lock system of claim 4 wherein the collection chamber includes a weight measuring device for ascertaining a weight of the metal powder in the collection chamber.

7 . The load lock system of claim 4 further comprising a central processing unit (CPU) in signal communication with the gate valve and the discharge valve having one or more automated programs configured to control the gate valve and the discharge valve and to control the first controlled atmosphere in the feed chamber and the second controlled atmosphere in the collection chamber.

8 . The load lock system of claim 4 wherein the mixing melting cold hearth system comprises a mixing melting cold hearth and an external heat source.

9 . The load lock system of claim 4 wherein the feed mechanism comprises a component selected from the group consisting of hydraulic cylinders, pneumatic cylinders, actuators, belt chains, tracks, conveyors, and motive devices.

10 . A load lock system for manufacturing a metal powder using a feed material comprising:

a process chamber having a controlled atmosphere;

a metallurgical system in the process chamber comprising a mixing melting cold hearth system for melting the feed material into a molten metal and an atomization system for atomizing the molten metal into the metal powder;

a feed chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to contain a quantity of the feed material;

a feed mechanism configured to transport the feed material from the feed chamber into the process chamber;

a collection chamber in flow communication with the process chamber having controlled atmosphere capabilities configured to collect the metal powder manufactured in the process chamber by the metallurgical system;

a gate valve between the process chamber and the feed chamber configured to either allow passage of the feed material between the feed chamber and the process chamber, or to seal the process chamber from the feed chamber; and

a discharge valve between the process chamber and the collection chamber configured to either allow passage of the metal powder between the process chamber and the collection chamber, or to seal the process chamber from the collection chamber, the discharge valve comprising:

a body having an interior chamber in flow communication an inlet opening on the body for collecting the metal powder and an outlet opening on the body for discharging the metal powder into the collection chamber;

a rotary actuator mounted to the outside of the body and connected to a rotatable shaft mounted through a vacuum seal into the interior chamber; and

a sealing plate connected to the rotatable shaft and movable to either seal or close the inlet opening or to unseal or open the inlet opening, the sealing plate having an elastomeric sealing ring that mates with a sealing flange on the inlet opening;

the actuator configured to rotate the shaft in a first direction and press the sealing ring against the sealing flange sealing the inlet opening,

the actuator configured to rotate the shaft in a second direction opening the inlet opening and allowing the metal powder to fall from the inlet opening through the interior chamber to the outlet opening.

Assignments (2)
CHANGE OF NAME Recorded May 1, 2024
From: MOLYWORKS MATERIALS CORPORATION
To: CONTINUUM POWDERS CORPORATION
Reel/Frame 067277/0947 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2023
From: CHARLES, MATTHEW; EONTA, CHRISTOPHER PAUL; MEESE, PAUL; NUTTALL, JONATHAN
To: MOLYWORKS MATERIALS CORPORATION
Reel/Frame 063181/0966 →
Continuity (2)
Continuation In Part 17516776 · Nov 2, 2021
Related Publication 20230235959A1 · Jul 27, 2023
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