Consumable component parts for a plasma torch
RE049153 · 2022-07-26
Assignee
Inventors
- Jon W. Lindsay (Grantham, NH, US)
- Brent R. Bartlett (Bradford, VT, US)
- Aaron D. Brandt (Grantham, NH, US)
- Zheng Duan (Hanover, NH, US)
- Stephen M. Liebold (Grantham, NH, US)
Cpc classification
International classification
Abstract
A component for a plasma arc torch includes a body portion, a tapered surface on the body portion, the tapered surface including a compressible member that provides a disengagement force relative to the body portion, and an axially disposed surface on the body portion for coupling a mating surface on an adjacent structure of the torch. The component can be a nozzle and/or an electrode.
Claims
1. A method for engagement of a replaceable consumable component with a first component in a plasma arc torch, the replaceable consumable component and the first component being maintained .Iadd.in contact .Iaddend.in the plasma torch by a retaining cap, .Iadd.wherein .Iaddend.the first component .Iadd.is a torch body .Iaddend.having a tapered surface and an axially disposed surface on a body portion of the first component, the method comprising: providing a compressible member, wherein the tapered surface on the body portion of the first component is dimensioned to engage the compressible member; slideably engaging the first component with the replaceable consumable component, the replaceable consumable component including a body and a mating surface for engaging the axially disposed surface of the first component, the compressible member disposed between the tapered surface of the first component and a second surface of the replaceable consumable component; and biasing the compressible member between the tapered surface of the first component and the second surface of the replaceable consumable component to establish a disengagement force relative to the body portion of the first component such that, after the retaining cap is removed, the replaceable consumable component freely disengages from the plasma arc torch without the use of tools after an operation of the torch.
2. The method of claim 1, wherein the replaceable consumable component is one of a nozzle, a shield, a swirl ring, .Iadd.or .Iaddend.an electrode.[., or a portion of a body of the plasma arc torch.]..
3. The method of claim 1, wherein the compressible member radially aligns the body portion with a central axis of the torch.
4. The method of claim 1, wherein the tapered surface on the body portion has a clearance in the range of 0.00001 to 0.002 inches (0.000254 to 0.0508 mm) with respect to the surface of the replaceable consumable component.
5. The method of claim 1, wherein the compressible member provides a seal between the body portion and the replaceable consumable component.
6. The method of claim 1, wherein the compressible member is an O-ring.
7. The method of claim 1, wherein the tapered surface includes a feature for receiving the compressible member.
8. The method of claim 7, wherein the feature on the tapered surface is a recess defined by the body portion.
9. The method of claim 1, wherein the axially disposed surface of the first component and the mating surface of the replaceable consumable component are electrically coupled.
10. The method of claim 1, wherein the axially disposed surface axially aligns the body portion in an axial position relative to the mating surface of the replaceable consumable component.
11. A method for aligning a first component in a plasma torch assembly, the first component having an axial stop and a tapered surface for engaging a compressible member, the first component being maintained .Iadd.in contact .Iaddend.in the plasma torch assembly by a retaining cap, .Iadd.wherein the first component is a torch body, .Iaddend.the method comprising: slideably engaging the axial stop of the first component to a second component of the plasma torch assembly to position the second component relative to the first component in an axial direction; and biasing the compressible member against the tapered surface of the first component to radially align the first component to the second component, wherein the components are dimensioned such that, after the retaining cap is removed, the components freely disengage, without the use of tools, after an operation of the plasma torch assembly.
12. A method for aligning a first component and a second component of a plasma torch assembly, having a compressible member disposed between the two components and a retaining cap for maintaining the first and second components .Iadd.in contact .Iaddend.in the plasma torch assembly, the method comprising: axially aligning the first component to the second component by a rigid primary datum; radially aligning the first component to the second component by a flexible secondary datum, such that the compressible member radially aligns the first component and the second component and axially biases the first component in an unassembled direction relative to the second component, the first component dimensioned such that the bias in the unassembled direction enables the first component to freely disengage from the plasma torch assembly, after the retaining cap is removed, without the use of tools, after an operation of the plasma torch assembly.
13. The method of claim 1 wherein the biasing of the compressible member establishes a compression vector having both an axial component and a radial component, the radial component of the compression vector configured to radially align the consumable component within the body of the torch, and the axial component of the compression vector configured to provide the disengagement force.
14. The method of claim 12 wherein the bias in the unassembled direction enables the first component to freely disengage relative to the second component, after the retaining cap is removed, without the use of tools following an operation of the plasma torch assembly.
15. A method for engagement of a replaceable consumable component within a plasma arc torch having a first component and a retaining cap, the first component .Iadd.including a torch body .Iaddend.having a tapered surface and an axially disposed surface, the retaining cap coupling the replaceable consumable component and the first component within the plasma torch, the method comprising: providing a compressible member that, when biased, provides an axial disengagement force, wherein the tapered surface on the first component is dimensioned to engage the compressible member; slideably engaging the first component with the replaceable consumable component, wherein the compressible member is disposed between the tapered surface of the first component and a surface of the replaceable consumable component; and biasing the compressible member between the tapered surface of the first component and the surface of the replaceable consumable component to establish the axial disengagement force relative to the replaceable consumable component such that, when the retaining cap is removed, the axial disengagement force causes the replaceable consumable component to freely disengage from the plasma arc torch without the use of tools.
16. The method of claim 15 further comprising providing a compressible member that, when biased, provides a radial disengagement force that serves to align the replaceable consumable component and the first component radially.
17. The method of claim 15 wherein the replaceable consumable component is one of a nozzle, a shield, a swirl ring, .Iadd.or .Iaddend.an electrode.[., or a portion of a body of the plasma arc torch.]..
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing and other objects, features and advantages of the invention will be apparent from the following more particular description of preferred embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention.
(2)
(3)
(4)
(5)
(6) .Iadd.FIG. 3C is a simplified schematic diagram of another embodiment of a tool-free plasma arc torch;.Iaddend.
(7)
(8)
DETAILED DESCRIPTION
(9)
(10) A torch body 120 configured for hand cutting is connected to the power supply 110 by a lead 122. The power supply 110 is enclosed by a housing 112. The lead 122 is connected to the power supply 110 by a strain relief system 124. The lead 122 provides the torch body 120 with a plasma gas from a gas source (not shown) and electrical power from the power supply 110 to ignite and sustain a plasma arc. In one embodiment, air is used as the plasma gas, but other gases can be used to improve cut quality on metals such as stainless steel and aluminum. A clamp 130 connects to a workpiece 250 (
(11)
(12) The torch body 120 supports an electrode 210 having an insert 212 in its lower end and a nozzle 220 spaced from the electrode 210. The nozzle 220 has a central orifice that defines the exit orifice 200. A swirl ring 230 is mounted to the torch body 120. In one embodiment, the swirl ring 230 has a set of radially offset (or canted) gas distribution holes 232 that impart a tangential velocity component to the plasma gas flow causing it to swirl. This swirl creates a vortex that constricts the arc and stabilizes the position of the arc on the insert.
(13) Referring to
(14)
(15) Moreover, a torch assembly, as shown in
(16) As shown in
(17) As shown, the first torch component (308) and a second, torch component (370) are aligned by a primary datum and a secondary datum with a compressible member (376) disposed between the two components (308, 370). The primary datum is an axial stop (318) in the first component (308), such that when assembled, the primary datum of the first component (308) abuts a corresponding feature or axial stop (378) in the second component (370). The axial stop may be a lip or edge in the first component (308) that engages a similar lip or edge in the second component (370) to establish the relative position of the two components along a longitudinal axis. The axial stop may be a hard or rigid axial stop such as created by a metal-to-metal contact.
(18) The secondary datum may be established by a tapered surface (314) in the first component (308) that aligns the first component (308) and the second component (370) in the radial direction through the compressible member (376). In one embodiment, the compressible member (376) sits on the tapered surface (314) of the first component (308) and, when assembled, is compressed between the first component (308) and the second component (370). During compression of the compression member (376), a compression vector is created having both an axial component (A) and a radial component (B).
(19) The radial component (B) serves to align the first component (308) and the second component (370) radially. The axial component (A) serves to bias the first component (308) and the second component (370) in an unassembled direction such that the two components (308, 370) freely disengage when the torch body (300) is being disassembled. The compression of the compressible member may also serve as a fluid seal between the first component (308) and second component (370). Because the secondary datum is positioned at the location of the contact of the compressible member, the secondary datum may be flexible. It should also be noted that the secondary datum may still allow for contact at a single point, between the first component (308) and the second component (370) and still perform the aligning and biasing functions. Through the use of two datums, the first component (308) and the second component (370) are aligned in a manner that allows for ready disengagement and assembly.
(20) .Iadd.In FIG. 3C, a slidable nozzle 370a is maintained in an assembled position through the use of the retention cap 392 that holds the nozzle to an anode block 308a of the torch body 300. The anode block 308a includes a tapered alignment surface 314a. The nozzle includes a feature (e.g. a recess) 374a dimensioned to receive a compressible member 376. In this embodiment, the compressible member 376 sits within the recess 374a formed on the tapered surface 372a. When assembled, the compressible member 376 is compressed between the tapered surface 314a of the anode block 308a and the tapered surface 372a of the nozzle 370..Iaddend.
(21)
(22) The electrode 330 includes a tapered surface 332 for aligning with the first tapered alignment surface 310 of the working end 400 of the plasma arc torch. The tapered surface 322 includes a feature (e.g. a recess) 334 or is dimensioned to receive a compressible member 336. The compressible member 336, such as an O-ring, provides the following functions: 1) a seal between the electrode 330 and the plasma chamber to contain and separate process gases and torch coolant; 2) a radial stop creating a radial alignment force for flexibly aligning the electrode 330 in the radial direction; and 3) an axial disengagement force between the working end 400 and the electrode 330 for biasing the electrode 330 in an unassembled direction. In some embodiments, the tapered surface 332 has an axial extent of less than about 0.5 inches (1.27 cm) and, in some embodiments, less than about 0.25 inches (0.635 cm). The electrode 330 further includes an axial stop 338 for aligning the electrode 330 with the axial stop 316 of the cathode block 304. In some embodiments, the axial stops 316, 338 are rigidly coupled. Further, axial-to-axial stop 316, 338 allows for conduction of electrical current and thermal energy needed to operate the torch. It should be understood that electrically coupling of the electrode 330 to the cathode block 304 can be accomplished in other manner known in the art.
(23) During installation, as the electrode 330 is installed in the working end 400 of the plasma arc torch, the tapered surface 332 is guided by the first tapered alignment surface 310 until the compressible member 336 comes to rest against first tapered alignment surface 310. The lead-in 322 on the first tapered alignment surface 310 prevents the compressible member or O-ring 336 from being damaged. As shown, in one embodiment a nominal clearance of 0.002 inches is provided between the taper surface 332 and the first tapered alignment surface 310 to prevent binding during installation.
(24) In some embodiments, a swirl ring 350 can be disposed between the electrode 330 and the nozzle 370. The swirl ring 350 controls the fluid flow patterns on the plasma chamber front between the electrode 330 and the nozzle 370. The swirl ring 350 includes at least one feature (e.g. a recess) 354 or is dimensioned to receive a respective compressible member 356 for aligning with the second tapered alignment surface 312 of the working end 400 of the plasma arc torch. The compressible member 356, such as an O-ring, provides the following functions: 1) a seal between the swirl ring 350 and the plasma chamber to contain and separate process gases and torch coolant; 2) a radial stop creating a radial alignment force for flexibly aligning the swirl ring 350 in the radial direction; and 3) an axial disengagement force between the working end 400 and the swirl ring 350 for biasing the swirl ring 350 in an unassembled direction. In some embodiments, a spring element 358 is disposed between the electrode 330 and the swirl ring 350 to provide an engagement force of the electrode 330 and the cathode block 304 during installation. It should be understood that the spring element 358 can be disposed between the swirl ring 350 and the nozzle 370, integrated with the swirl ring 350, or provided in any configuration that provides engagement force of the electrode 330 to the cathode block 304.
(25) During installation, as the swirl ring 350 is installed in the working end 400 of the plasma arc torch, the compressible member 356 comes to rest against second tapered alignment surface 312. It should be understood a non-integrated spring element 358 can be installed before or after the installation of the swirl ring 350 or in replacement of the swirl ring 350.
(26) The nozzle 370 includes a tapered surface 372 for aligning with the third tapered alignment surface 314 of the working end 400 of the plasma arc torch. The tapered surface 372 includes a feature (e.g. a recess) 374 or is dimensioned to receive a compressible member 376. The compressible member 376, such as an O-ring, provides the following functions: 1) a seal between the nozzle 370 and the plasma chamber to contain and separate process gases and torch coolant; 2) a radial stop creating a radial alignment force for flexibly aligning the nozzle 370 in the radial direction; and 3) an axial disengagement force between the working end 400 and the nozzle 370 for biasing the nozzle 370 in an unassembled direction. In some embodiments, the tapered surface 372 has an axial extent of less than about 0.5 inches (1.27 cm). The nozzle 370 further includes an axial stop 378 for aligning the nozzle 370 with the axial stop 318 of the anode block 308. In some embodiments, the axial stops 318, 378 are rigidly coupled. Further, axial-to-axial stop 318, 378 allows for conduction of electrical current and thermal energy needed to operate the torch. It should be understood that electrically coupling of the nozzle 370 to the anode block 308 can be accomplished in other manner known in the art.
(27) During installation, as the nozzle 370 is installed in the working end 400 of the plasma arc torch, the tapered surface 372 is guided by the third tapered alignment surface 314 until the compressible member 376 comes to rest against third tapered alignment surface 314. The lead-in 326 on the third tapered alignment surface 314 prevents the compressible member or O-ring 376 from being damaged. As shown, in one embodiment a nominal clearance of 0.002 inches is provided between the taper surface 372 and the third tapered alignment surface 314 to prevent binding during installation.
(28) A hand-threaded retaining cap 392 may be employed to couple the consumables components to the torch body. The retaining cap 392 causes a force to be placed on the nozzle 370, the swirl ring 350, and the electrode 330 (through the spring element 358) that causes the longitudinal axis of these components to align with the torch axis 302. The force further seats these components with their respective counterparts of the working end 400 of the torch (e.g. the cathode block 304, the torch insulator 306, and the anode block 308).
(29) The shield 390 is typically the outermost component of the working end 400 of the torch. In some embodiments, the shield 390 may be threadedly attached to the torch working end 400 or attached in a press-on configuration. In other embodiments, shield 390 may be connected to the torch body by retain cap 392. In such embodiments, the shield 390 may likewise include a tapered surface 372 for aligning with adjacent components. The tapered surface 372 may also include a feature (e.g. a recess) 374 to receive a compressible member 356. In some embodiments, the shield 390 may serve to function as the retaining cap thereby providing the necessary force to seat the consumable components.
(30) During torch operation, the electrode 330, the swirl ring 350, the nozzle 370, and the shield 390 are subjected to harsh conditions, including high temperatures and other physical stresses. Consequently, these components degrade over time and eventually must be replaced, typically in the field. Prior techniques required the use of specialized tools to remove these components. In the above embodiment, the retaining cap 392 need only be removed by hand thereby allowing the axial component of the compression force on compressible members to assist in ejecting these components from the torch.
(31)
(32) In the embodiment .Iadd.of FIG. 5.Iaddend., the electrode 330 is threadedly attached to the cathode block 304 eliminating the need for the spring element 358 .[.(
(33) The electrode 330 of
(34) In some embodiments, the swirl ring 350 may also include a threaded surface that engages a cooperating threaded surface on the torch insulator 306. In general, however, the swirl ring 350 is simply captured in the working end 400 of the torch by the retention cap. In either configuration, it is desirable to center the swirl ring 350 about the electrode 330 so as to provide a concentric uniform annular plasma chamber to provide uniform gas flow therein and facilitate torch operation.
(35)
(36) From the foregoing, it will be appreciated that the working end provides a simple and effective way to ensure the proper alignment of consumable components in the working end of a plasma arc torch. The problems of securing the critical alignments while operating under harsh field conditions, compounded by the need to replace components as they deteriorate from use, are largely eliminated. This avoids the unacceptable production errors affecting workpieces caused by improperly aligned apparatus and facilitates quick and easy replacement of the consumable components.
(37) While this invention has been particularly shown and described with references to preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.