H05H1/28

ADJUSTABLE LENGTH CONSUMABLES FOR A LIQUID-COOLED PLASMA ARC TORCH

A torch tip is provided for a liquid-cooled plasma arc cutting torch. The torch tip includes an electrode with an elongated electrode body having a distal end and a proximal end extending along a longitudinal axis. The electrode body includes at least one interior threaded connection at the proximal end for engaging a liquid-cooled electrode holder. The electrode holder comprises a liquid coolant channel that does not extend into the electrode body. The electrode body has (i) a length extending along the longitudinal axis and (ii) a diameter associated with a widest portion of the electrode body along the longitudinal axis between the proximal and distal ends, where a ratio of the length to the diameter of the electrode body is greater than about 5.

Wide Area Shield for use in a Plasma Cutting Torch.
20200305267 · 2020-09-24 ·

A wide area shield for use in a plasma cutting torch. The wide area shield has a projected surface that covers at least 75% of the distal end of the plasma cutting torch when viewed in a plane perpendicular to the central axis of the torch. The wide area shield is actively cooled by at least two separate cooling flows. One possible cooling flow is liquid and contacts at least 25% of the total surface area of the wide area shield. A second possible cooling flow is gaseous and contacts at least 6% of the total surface area of the wide area shield. The increased projected area is achieved by increasing the axial length of the shield and increasing the shielding surface of the wide area shield which also allows for a thicker cross-sectional area of the wide area shield as measured perpendicularly from the shielding surfaces.

Wide Area Shield for use in a Plasma Cutting Torch.
20200305267 · 2020-09-24 ·

A wide area shield for use in a plasma cutting torch. The wide area shield has a projected surface that covers at least 75% of the distal end of the plasma cutting torch when viewed in a plane perpendicular to the central axis of the torch. The wide area shield is actively cooled by at least two separate cooling flows. One possible cooling flow is liquid and contacts at least 25% of the total surface area of the wide area shield. A second possible cooling flow is gaseous and contacts at least 6% of the total surface area of the wide area shield. The increased projected area is achieved by increasing the axial length of the shield and increasing the shielding surface of the wide area shield which also allows for a thicker cross-sectional area of the wide area shield as measured perpendicularly from the shielding surfaces.

Connector in a Plasma Arc Torch System
20200281066 · 2020-09-03 ·

A lead connector is provided for connecting a plasma torch lead of a plasma arc torch to a power supply of a plasma cutting system. The lead connector includes a base portion, a central conduit disposed in the base portion, where the central conduit is configured to carry a gas and a torch current to the plasma arc torch, and multiple pins disposed radially about a center of the central conduit. The pins are located at a radius of between about 0.4 inches and about 0.65 inches from the center of the central conduit on a radial plane of the base portion. The pins include one or more pilot carrying pins and one or more control signal pins located from about 27 degrees to about 64 degrees and from about 120 degrees to about 170 degrees, respectively, about the center of the central conduit on the radial plane.

Connector in a Plasma Arc Torch System
20200281066 · 2020-09-03 ·

A lead connector is provided for connecting a plasma torch lead of a plasma arc torch to a power supply of a plasma cutting system. The lead connector includes a base portion, a central conduit disposed in the base portion, where the central conduit is configured to carry a gas and a torch current to the plasma arc torch, and multiple pins disposed radially about a center of the central conduit. The pins are located at a radius of between about 0.4 inches and about 0.65 inches from the center of the central conduit on a radial plane of the base portion. The pins include one or more pilot carrying pins and one or more control signal pins located from about 27 degrees to about 64 degrees and from about 120 degrees to about 170 degrees, respectively, about the center of the central conduit on the radial plane.

Devices for gas cooling plasma arc torches and related systems and methods
10716199 · 2020-07-14 · ·

In some aspects, methods for providing a uniform shield gas flow for an air-cooled plasma arc torch can include supplying a shield gas to a shield gas flow channel defined by an exterior surface of a nozzle and an interior surface of a shield; flowing the shield gas along the shield gas flow channel; reversing the flow of the shield gas along the shield gas flow channel using a recombination region, the recombination region comprising at least one flow reversing member; and flowing the shield gas from the mixing region to an exit orifice of the shield, thereby producing a substantially uniform shield gas flow at the exit orifice.

Devices for gas cooling plasma arc torches and related systems and methods
10716199 · 2020-07-14 · ·

In some aspects, methods for providing a uniform shield gas flow for an air-cooled plasma arc torch can include supplying a shield gas to a shield gas flow channel defined by an exterior surface of a nozzle and an interior surface of a shield; flowing the shield gas along the shield gas flow channel; reversing the flow of the shield gas along the shield gas flow channel using a recombination region, the recombination region comprising at least one flow reversing member; and flowing the shield gas from the mixing region to an exit orifice of the shield, thereby producing a substantially uniform shield gas flow at the exit orifice.

Plasma arc cutting system, including retaining caps, and other consumables, and related operational methods
10716200 · 2020-07-14 · ·

A liquid cooled shield assembly for a plasma arc torch includes an inner cap and a shield. The inner cap includes a substantially hollow body having a proximal end and a distal end that define a longitudinal axis, the distal end including an annular portion about the longitudinal axis. The inner cap also includes a liquid passage defined, at least in part, by an interior surface of the body, the liquid passage including a first set of ports in the annular portion, the first set of ports extending between an interior portion of the body and an exterior portion of the body to convey a liquid therethrough. The shield at least partially surrounds the inner cap and has a liquid impingement region on an interior surface of the shield adjacent to the first set of ports, the liquid impingement region for receiving the cooling liquid.

Plasma arc cutting system, including retaining caps, and other consumables, and related operational methods
10716200 · 2020-07-14 · ·

A liquid cooled shield assembly for a plasma arc torch includes an inner cap and a shield. The inner cap includes a substantially hollow body having a proximal end and a distal end that define a longitudinal axis, the distal end including an annular portion about the longitudinal axis. The inner cap also includes a liquid passage defined, at least in part, by an interior surface of the body, the liquid passage including a first set of ports in the annular portion, the first set of ports extending between an interior portion of the body and an exterior portion of the body to convey a liquid therethrough. The shield at least partially surrounds the inner cap and has a liquid impingement region on an interior surface of the shield adjacent to the first set of ports, the liquid impingement region for receiving the cooling liquid.

Fluid-cooled contact tip assembly for metal welding
10709006 · 2020-07-07 · ·

Provided is a fluid-cooled contact tip assembly that can be used in methods and systems for manufacturing objects by solid freeform fabrication, especially titanium and titanium alloy objects, where the deposition rate is increased by increasing the flow rate of electric charge through the metal wire.