Claims
- 1. A gas stabilized plasma generating system characterized by precision controlling of plasma conditions, comprising:
- a plasma gun including a hollow cylindrical anode member, a generally tubular intermediate member formed of electrically conducting material electrically isolated from and juxtaposed coaxially with the anode member to form a plasma-forming gas passage through the intermediate member and the anode member, and an axially movable rod-shaped cathode member with an anterior cathode tip located coaxially in spaced relationship with the anode member operable to maintain a plasma generating arc in plasma-forming gas between the cathode tip and the anode member to produce a plasma stream, the cathode member being located generally in the plasma-forming gas passage such that the cathode tip is movable coaxially within the intermediate member,
- primary gas means including a primary gas inlet for introducing plasma-forming gas into the plasma-forming gas passage rearwardly of the cathode tip;
- secondary gas means for introducing plasma-forming gas into the plasma-forming gas passage at a location proximate the anode member;
- means for connecting a source of arc power between the anode member and the cathode member; voltage determining means for measuring the arc voltage between the cathode member and the anode member; and
- positioning means for continually adjusting the axial position of the cathode tip relative to the anode member so as to maintain a predetermined arc voltage;
- wherein the intermediate member is formed of a plurality of electrically conductive tubular segments and insulating means for spacing the segments, the segments being juxtaposed coaxially and held electrically isolated from each other by the insulating means, and the intermediate member being formed substantially with an absence or additional gas introduction into the plasma-forming gas passage.
- 2. A plasma generating system according to claim 1 wherein a forward annular chamber is formed between the intermediate member and the anode member, and the secondary gas means introduces plasma-forming gas with a vortical flow at the circumference of the forward annular chamber.
- 3. A plasma generating system according to claim 2 wherein the secondary gas means includes a plurality of tangential orifices having axes substantially tangential to a circle of diameter equal to that of the bore of the anode member at the average location where the arc strikes the anode member.
- 4. A plasma generating system according to claim 1 wherein the positioning means includes means for positioning the cathode tip sufficiently close to the anode member for the arc to be initiated in the presence of a high frequency starting voltage, and further includes means for retracting the cathode member after arc initiation to position the cathode tip relative to the anode member so as to establish the pre-determined arc voltage.
- 5. A plasma generating system according to Claim 1 wherein the plasma gun further includes a forward segment comprising the anode member and the insulating means comprises a plurality of insulating rings, one such ring being interposed between each pair of adjacent segments and an annular slot being formed between the adjacent segments, each slot being bounded outwardly by the corresponding insulating ring.
- 6. A plasma generating system according to Claim 5 wherein the width of the slot between segments is between about 0.5 mm and 3 mm.
- 7. A plasma generating system according to claim 5 wherein, in each of said slots formed between adjacent segments, one such segment has an annular shoulder thereon encircling the continuous gas passage and the adjacent segment has a corresponding shoulder depression therein cooperating with the annular shoulder to form a radial meander in the slot such that arc radiation is blocked from impinging directly on the corresponding insulating ring.
- 8. A plasma generating system according to claim 1 wherein the segments are three, four or five in number.
- 9. A plasma generating system according to claim 1 wherein each segment has a cylindrical inner surface with a posterior edge and an anterior edge rounded with a radius between about 1 mm and 3 mm, and the anode member has a posterior bore edge rounded with a radius between about 3 mm and 5 mm.
- 10. A plasma generating system according to Claim 1 wherein:
- the plasma gun further includes a forward segment comprising the anode member, and includes retaining means for retaining the segments and the insulating means in coaxial relationship;
- the insulating means comprises a plurality of resilient spacing means, each spacing means being juxtaposed between adjacent segments for spacing the segments, the spacing means being held in compression by the retaining means; and
- the insulating means further comprises a plurality of ceramic barrier rings each being juxtaposed between adjacent segments radially inward of a corresponding spacing means.
- 11. A plasma generating system according to Claim 10 wherein each spacing means comprises a spacing ring formed of resilient material supporting the barrier ring.
- 12. A plasma generating system according to claim 11 wherein the spacing ring adjacent the forward segment has a radially inward surface with a first step therein, and the corresponding barrier ring has a radially outward surface with a second step therein meshed with the first step so as to provide a path length sufficient to resist electrical breakdown between the adjacent segments in the presence of a high frequency starting voltage.
- 13. A plasma generating system according to claim 10 wherein an annular slot is formed between the adjacent segments, each slot being bounded outwardly by the corresponding barrier ring.
- 14. A plasma generating system according to Claim 10 wherein a space is formed between adjacent segments with the barrier ring having a width sufficiently less than the space to compensate for thermal expansion of the segments and sufficiently large to block the spacing means from radiation from the arc.
- 15. A plasma generating system accordrng to Claim 1 wherein the positioning means is electrically connected to the voltage determining means and responsive thereto such that a change in the aro voltage is detected by the volt-age determining means and the axial position of the cathode tip is correspondingly adjusted to maintain the predetermined arc voltage.
- 16. A plasma generating system according to Claim 15 wherein the plasma gun further comprises a support rod having an anterior end with the cathode member attached coaxially thereto and a rearwardly located tubular support member with the support rod slidably mounted therein, and the positioning means includes drive means for providing axial movement of the support rod in the support member.
- 17. A plasma generating system according to Claim 16 wherein the drive means comprises a reversible electric mctor coupled to actuate the support rod in axial movement.
- 18. A plasma generating system according to Claim 16 wherein the plasma gun further comprises a closed cylinder extending rearwardly from the support member, and a piston attached concentrically to the support rod and slidably positioned in the closed cylinder thereby forming in the cylinder an anterior chamber and a posterior chamber, and fluid sealing means interposed between the piston and the cylinder, and the plasma system further comprises anterior supply means for supplying fluid under pressure to the anterior chamber and posterior supply means for supplying fluid under pressure to the posterior chamber, such that selective supply of fluid to the anterior chamber or the posterior chamber provides adjustment of the axial position of the cathode tip relative to the anode member.
- 19. A plasma generating system according to Claim 18 wherein the anterior supply means comprises a pressurized fluid source and a first supply valve connected between the fluid source and the anterior chamber, the posterior supply means comprises the fluid source and a second supply valve connected between the fluid source and the posterior chamber, and the plasma system further comprises a first venting valve connected to the anterior chamber and a second venting valve connected to the posterior chamber, the first and second venting valves being respectively cooperative with the second and first supply valves such that the first venting valve is open to release fliid from the anterior chamber when the second supply valve is open to pass pressurized fluid into the posterior chamber and the second venting valve is open to release fluid from the posterior chamber when the first supply valve is open to pass pressurized fluid into the anterior chamber, the first and second supply valve further being electrically connected to the voltage determining means and responsive thereto such that a change in the arc voltage is detected by the voltage determining means and the first or second supply valve is opened such as to adjust the axial position of the cathode tip to maintain the predetermined arc voltage.
- 20. A plasma generating system according to claim 1 further comprising a nozzle member and powder feeding means therein for introducing powder into the plasma generated by the arc.
- 21. A plasma generating system according to claim 20 wherein the nozzle member has an inner wall forming a nozzle bore portion of the continuous gas passage, and the powder feeding means includes a feeding assembly mounted in the nozzle bore, the feeding assembly comprising a cylindrical central member and a mounting arm attached between the central member and the nozzle wall to hold the central member substantially in the axial center of the nozzle bore forming an annular flow path for the plasma between the central member and the nozzle wall, the central member and the mounting arm each having a coolant duct therein for circulating liquid coolant sufficiently to prevent rapid deterioration of the central member and the mounting arm in the presence of the plasma, the central member further having an axial powder port therein for introducing powder forwardly into the plasma, and the mounting arm further having a powder duct therein connected to the powder port for conveying powder to the powder port.
- 22. A plasma generating system according to claim 20 wherein the anode member comprises the nozzle member, and the nozzle member has therein a radially directed powder feed port for injecting powder into the gas passage, the nozzle bore portion having a posterior bore edge rounded with a radius between about 3 mm and 5 mm.
- 23. A plasma generating system characterized by precision controlling of plasma conditions, comprising:
- a plasma gun including:
- a hollow cylindrical anode member;
- a hollow cylindrical intermediate member electrically isolated from and juxtaposed coaxially with the anode member to form a plasma-forming gas passage through the intermediate member and the anode member, the intermediate member comprising a plurality of electrically conductive segments including a forward segment adjacent the anode member, and further comprising insulating means for spacing the segments, the segments being juxtaposed coaxially and held electrically isolated from each other and the anode member by the insulating means, an annular slot being formed between the adjacent segments and between the forward egment and the anode member, the slot being bounded outwardly by the insulating means, and each slot having a radial meander therein such that arc radiation is inhibited form impinging on the insulating means;
- an axially movable rod-shaped cathode member with an anterior cathode tip, the cathode member being located generally in the plasma-forming gas passage coaxially in spaced relationship with the anode nozzle operable to maintain a plasma generating arc between the cathode tip and the anode member;
- a cylindrical rear body member positioned rearwardly adjacent the intermediate member and having a cylindrical cavity therein forming an annular manifold axiallay adjacent the posterior end of the continuous gas passage, the rear body member including a primary gas inlet for introducing plasma-forming gas into the annular manifold;
- a secondary gas means for introducing plasma-folding gas into the plasma-forming gas passage at a location between the primary gas inlet and the anode member, including a forward annular chamber in the intermediate member of substantially larger diameter than that of the continuous passage and a plurality of tangential orifices in the intermediate member for introducing plasma-forming gas with a vortical flow at the circumference of the forward annular region;
- a tubular support member mounted rearwardly adjacent the rear body member; and
- a support rod slidably mounted in the tubular support member and having an anterior end with the cathode member attached coaxially thereto, with a drive means coupled to actuate the support rod in axial movement;
- the plasma generating system further comprising;
- primary gas means including a primary gas inlet for introducing plasma-forming gas into the plasma-forming gas passage rearwardly of the cathode tip;
- a source of arc power connected between the anode member and the cathode member; and
- voltage determining means for measuring the arc voltage between the cathode member and the anode member, the drive means being electrically connected to the voltage determining means and responsive thereto such that a change in the arc voltage is detected by the voltage determining means and the axial position of the cathode tip is correspondingly adjusted to maintain the predetermined arc voltage;
- wherein the intermediate member is formed substantially with an absence of additional gas introduction into the plasma-forming gas passage.
- 24. A plasma generating system according to claim 23 wherein:
- the plasma gun further includes retaining means for retaining the segments and the insulating means in coaxial relationship
- the insulating means comprises a plurality of spacing rings formed of resilient material, each spacing ring being juxtaposed between adjacent segments for spacing the segments, the spacing ring being held in compression by the retaining means; and
- the insulating means further comprises a plurality of ceramic barrier rings each being 3uxtaposed between adjacent segments radially inward of a corresponding spacing ring;
- each slot being bounded outwardly by the corresponding barrier ring;
- a space being formed between adjacent segments with the barrier ring having a width sufficiently less than the space to compensate for thermal expansion of the segments and sufficiently large to block the spacing means from radiation from the arc; and
- the spacing ring adjacent the forward segment having a radially inward surface with a first step therein, and the corresponding barrier ring having a radially outward surface with a second step therein meshed with the first step so as to provide a path length sufficient to resist electrical breakdown between the adjacent segments in the presence of a high frequency starting voltage.
- 25. A method for generating a precision controlled plasma in a plasma gun having a hollow cylindrical anode member, a hollow cylindrical intermediate member formed of electrically conducting material electrically isolated from and juxtaposed coaxially with the anode member to form a plasma-forming gas passage through the intermediate member and the anode member, an axially movable rod-shaed cathode member having an anterior cathode tip and being located generally in the plasma-forming gas passage coaxially in spaced relationship with the anode member operable to maintain a plasma generating arc between the cathode tip and the anode member, priamry gas means including a primary gas inlet for introducing plasma-forming gas into the plasma-forming gas passage rearwardly of the cathode tip, and secondary gas means for introducing plasma-forming gas into the plasma-forming gas passage at a location proximate the anode member, the intermediate member being formed of a plurality of electrically conductive tubular segments and insulating means or spacing the segments, the segments being juxtaposed coaxially and held electrically isolated form each other by the insulating means, and the intermediate member being formed substantially with an absence of additional gas introduction into the plasma-forming gas passage, the method comprising:
- introducing primary plasma-forming gas into the plasma-forming gas passage rearwardly of the cathode tip, introducing secondary plasma-forming gas into the plasma-forming gas passage at a location proximate the anode member, applying an arc voltage between the anode member and the cathode member to generate an arc therebetween, measuring the actual arc voltage and comparing the same with a predetermined arc voltage, and contnually adjusting the axial position of the cathode tip relative to the anode member so as to maintain the actual arc voltage substantially equal to the predetermined arc voltage.
- 26. A method according to claim 25 further comprising, in sequence, positioning the cathode tip sufficiently close to the anode member for the arc to be initiated in the presence of a high frequency starting voltage, applying the high frequency starting voltage between the cathode tip and the anode member, and retracting the cathode member after arc. initiation to position the cathode tip relative to the anode member so as to establish the predetermined arc voltage.
Parent Case Info
This application is a continuation-in-part of U.S. patent application Ser. No. 874,209 filed June 13, 1986 now abandoned. This invention relates to a plasma gun including an axially adjustable cathode and to a method of adjusting the cathode to maintain a predetermined arc voltage for plasma generation.
US Referenced Citations (9)
Continuation in Parts (1)
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Number |
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874209 |
Jun 1986 |
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