B23K9/32

SYSTEMS AND METHODS TO PROVIDE INTERFACES FOR CONTROL OF WELDING-TYPE SYSTEMS

An example welding-type power supply includes: power conversion circuitry configured to convert input power to welding-type power; a user interface configured to receive two or more inputs associated with corresponding qualitative characteristics of a welding arc created by the welding-type power, wherein the two or more inputs are defined within corresponding ranges of the respective qualitative characteristics; and control circuitry configured to: in response to a change in a first one of the two or more inputs, determine a corresponding change in a second one of the two or more inputs based on a relationship between the first and second ones of the two or more inputs; determine two or more welding-type parameters based on the two or more inputs; and control the power conversion circuitry based on the determined welding-type parameters.

SYSTEMS AND METHODS TO PROVIDE INTERFACES FOR CONTROL OF WELDING-TYPE SYSTEMS

An example welding-type power supply includes: power conversion circuitry configured to convert input power to welding-type power; a user interface configured to receive two or more inputs associated with corresponding qualitative characteristics of a welding arc created by the welding-type power, wherein the two or more inputs are defined within corresponding ranges of the respective qualitative characteristics; and control circuitry configured to: in response to a change in a first one of the two or more inputs, determine a corresponding change in a second one of the two or more inputs based on a relationship between the first and second ones of the two or more inputs; determine two or more welding-type parameters based on the two or more inputs; and control the power conversion circuitry based on the determined welding-type parameters.

SPRAY CONTAINMENT SYSTEMS AND WELDING GUN NOZZLE CLEANING SYSTEMS INCLUDING SPRAY CONTAINMENT SYSTEMS

An anti-spatter spray containment system includes: an enclosure having a nozzle insertion orifice on a first side and a drain orifice on a second side of the enclosure; a spray nozzle configured to spray fluid toward a nozzle inserted into the nozzle insertion orifice, wherein the enclosure is configured to funnel the fluid in a direction toward the second side; and a baffle configured to block at least a first portion of sprayed fluid from the spray nozzle from exiting the enclosure via the nozzle insertion orifice, the first side configured to block at least a second portion of the sprayed fluid from the spray nozzle that is not blocked by the baffle.

METHODS AND SYSTEMS FOR LIQUID DIVERSION FOR A WELDING DEVICE
20230063226 · 2023-03-02 ·

An example liquid diversion system for a welding device incorporating one or more geometric features in a receptacle cover, employing a hinge cover (e.g., a surface mounted bezel), and/or a liquid diverter behind the hinge cover is provided. For example, the disclosed liquid diversion system employs receptacle covers having one or more sloped surfaces, a hinge cover with an indentation, and a liquid diverter with a sloped extension, each configured to divert flowing liquid away from the welding device

Encrypted communication between components of welding and cutting systems
11664971 · 2023-05-30 · ·

Apparatus and methods associated with the authentication of a welding or cutting torch with a power supply are provided. According to some implementations, the authentication includes encryption/decryption techniques initiated by the physical or virtual closure of one or more of a trigger switch and a parts-in-place switch. The delivery of high voltage welding or cutting power from the power supply to the torch being enabled only upon a successful authentication of the torch with the power supply.

EXTRACTOR WITH SEGMENTED POSITIVE PRESSURE AIRFLOW SYSTEM

An extractor system includes a negative pressure gas stream source, a negative pressure conduit, a positive pressure gas stream source, a plurality of positive pressure gas stream manifolds, and an operator interface. The negative pressure conduit is conveys the negative pressure gas stream from a work area. A first end of the negative pressure conduit is coupled to the negative pressure gas stream source, such that the negative pressure gas stream flows from the work area through a second end of the negative pressure conduit and toward the first end of the negative pressure conduit. The positive pressure gas stream manifolds are disposed about the negative pressure conduit at the second end of the negative pressure conduit, and fluidly coupled to the positive pressure gas stream source. The positive pressure gas stream is directed through the plurality of positive pressure gas stream manifolds. The operator interface allows a user to control the positive pressure gas stream through each of the plurality of positive pressure gas stream manifolds.

TELE-MANUFACTURING SYSTEM
20230112463 · 2023-04-13 ·

A tele-manufacturing system comprising a manufacturing environment containing equipment used for a manufacturing process; a plurality of sensors positioned within the manufacturing environment in proximity to the manufacturing equipment, wherein each sensor is configured to gather data from the manufacturing environment; at least one digitizer in communication with the sensors for receiving data from sensors and converting the data into one or more three-dimensional digital maps or point clouds; at least one processor in communication with the at least one digitizer, wherein the processor includes software for receiving and analyzing the digital maps or point clouds; and at least one manual controller in communication with the processor, wherein the manual controller receives motion input from a user, wherein the software on the processor mathematically transforms the motion input into corresponding motion commands that are sent to the manufacturing equipment by the processor, and wherein the manufacturing equipment, which is physically remote from the at least one controller, executes the motion commands in real-time during the manufacturing process.

Ruggedized casing for a portable welding system

A portable welding system casing includes front, rear, top and bottom portions. First and second side members can each have a plurality of fastening lug portions. The first and second side members may each have a recess so that the recess of the first side member receives a first perimeter edge of the front, rear, top and bottom portions and the recess of the second side member receives a second perimeter edge of the front, rear, top and bottom portions. A plurality of handle members can be coupled between associated fastening lug portions of the first and second side member. First and second foot members coupled to respective surfaces of the front, rear and bottom portions. The resulting casing has improved structural strength and rigidity.

Ruggedized casing for a portable welding system

A portable welding system casing includes front, rear, top and bottom portions. First and second side members can each have a plurality of fastening lug portions. The first and second side members may each have a recess so that the recess of the first side member receives a first perimeter edge of the front, rear, top and bottom portions and the recess of the second side member receives a second perimeter edge of the front, rear, top and bottom portions. A plurality of handle members can be coupled between associated fastening lug portions of the first and second side member. First and second foot members coupled to respective surfaces of the front, rear and bottom portions. The resulting casing has improved structural strength and rigidity.

Systems, Methods, and Apparatus to Control Weld Current in a Preheating System
20230075751 · 2023-03-09 ·

Systems, methods, and apparatus to control weld current in a preheating system are disclosed. An example preheating power supply includes power conversion circuitry configured to output welding-type power via a first output power connector and a second output power connector, and a bypass path prevention circuit configured to prevent less than a threshold voltage applied to the first output power connector and the second output power connector from a different power supply from causing current to flow between the first output power connector and the second output power connector.