Claims
- 1. A method of depositing a material on a substrate, the method comprising the steps of:
a) providing a plasma spray torch having electrodes; b) providing a first gas into said plasma spray torch, said first gas having a first gas flow rate; c) providing a controllable power supply for providing a current across said electrodes for generating a plasma in said first flow of gas; d) providing a powder material; e) providing a second gas for carrying said powder material and directing said second gas carrying said powder material into said plasma; f) heating said powder material in said plasma and accelerating particles of said powder material from said spray torch with said first gas; g) measuring a temperature of said particles; h) measuring a spatial distribution of said particles or measuring a parameter characteristic of said spatial distribution of said particles; and i) adjusting current from said controllable power supply and adjusting said first gas flow rate or said second gas flow rate to obtain a preset temperature of said particles and a preset spatial distribution or a preset parameter characteristic of said spatial distribution of said particles.
- 2. A method of spraying a material as recited in claim 1, wherein said parameter characteristic of said spatial distribution comprises centroid position.
- 3. A method of spraying a material as recited in claim 1, wherein said parameter characteristic of said spatial distribution comprises a peak of said distribution or a width of said distribution.
- 4. A method of spraying a material as recited in claim 1, further comprising the step of measuring velocity of particles at a specified distance from the torch, adjusting said controllable power supply to adjust said current, and adjusting said first gas flow rate or said second gas flow rate to obtain a preset velocity, temperature, and spatial distribution or a parameter characteristic of said spatial distribution.
- 5. A method of spraying a material as recited in claim 1, wherein in said adjusting step (i), said adjusting is based on a second spatial distribution of particles having a temperature above a specified value or on a second parameter characteristic of a spatial distribution for particles having a temperature above a specified value.
- 6. A method of spraying a material as recited in claim 5, wherein said specified value of temperature is about equal to melting temperature of said material.
- 7. A method of spraying a material as recited in claim 5, further comprising the step of measuring mass flux of said particles having a temperature above a specified value at a specified distance from said spray torch.
- 8. A method of spraying a material as recited in claim 7, further comprising the step of adjusting feed rate of said powder, adjusting standoff distance, or adjusting current to obtain a desired measurement of said mass flux of particles above said melting temperature at said specified distance from said spray torch.
- 9. A method of spraying a material as recited in claim 8, further comprising the step of measuring velocity of sprayed particles at a specified distance from the torch and adjusting current or flow rate of said first gas or flow rate of said second gas to obtain a preset velocity.
- 10. A method of spraying a material as recited in claim 1, further comprising the step of measuring mass flux of particles having a temperature below a specified value at a specified distance from said spray torch.
- 11. A method of spraying a material as recited in claim 10, further comprising the step of adjusting feed rate of said powder or standoff distance to obtain a preset measurement of mass flux of particles having a temperature below said specified value at said specified distance from said spray torch.
- 12. A method of spraying a material as recited in claim 11, further comprising the step of obtaining a preset velocity, temperature, spatial distribution or parameter characteristic of spatial distribution, and mass flux of particles having said temperature below said specified value.
- 13. A method of spraying a material as recited in claim 1, further comprising the steps of experimentally measuring input vs. output relations, choosing to control those input parameters that provide substantial gain to adjust each output parameter; and choose a pairing of output sensor data to input parameter based on that choice.
- 14. A method of spraying a material as recited in claim 1, further comprising the step of providing feedback of sensor data to a controller of input variables, wherein interaction between feedback from multiple sensors does not create system instability.
- 15. A system, comprising a sensor, an automatic controller, an actuator, and an input variable, said sensor for measuring a spatial distribution of particles or for detecting a spatial parameter characteristic of said spatial distribution of particles, said input variable being one that effects said spatial distribution of particles, said automatic controller for receiving said spatial distribution or said spatial parameter data from said sensor and directing said actuator, said actuator for adjusting said input variable as directed by said automatic controller based on said spatial data.
- 16. A system as recited in claim 15, wherein said system comprises a deposition system.
- 17. A system as recited in claim 16, wherein said deposition system comprises a spray deposition system.
- 18. A system as recited in claim 15, wherein said sensor is for measuring a spatial distribution of moving particles or for detecting a spatial parameter characteristic of said spatial distribution of said moving particles.
- 19. A system as recited in claim 15, wherein said particles comprise powder particles.
- 20. A system as recited in claim 15, wherein said input variable comprises current, a gas flow rate, a powder feed rate, a wire feed rate, a liquid feed rate, or a suspension feed rate.
- 21. A system as recited in claim 15, wherein said automatic controller comprises a processor, control logic, and filtering algorithms.
- 22. A system as recited in claim 15, wherein said sensor is set to obtain sensor data only from particles having a preset characteristic or said automatic controller is set to analyse sensor data only for particles having said preset characteristic.
- 23. A system as recited in claim 15, wherein said preset characteristic comprises temperature.
- 24. A system as recited in claim 15, wherein said temperature is about equal to melting point of said particles.
- 25. A system as recited in claim 15, further comprising a second sensor, a second actuator, and a second input variable, said second sensor for measuring temperature of particles, said automatic controller for receiving said temperature measurement from said sensor and directing said actuator, said actuator for adjusting said input variable as directed by said automatic controller based on said temperature measurement.
- 26. A system as recited in claim 25, further comprising a third sensor, a third actuator, and a third input variable, said third sensor for measuring velocity of particles, said automatic controller for receiving said velocity measurement from said sensor and directing said actuator, said actuator for adjusting said input variable as directed by said automatic controller based on said velocity measurement.
- 27. A system as recited in claim 15, further comprising the step of measuring mass flux of particles having a temperature below a specified value at a specified distance from said spray torch.
- 28. A system as recited in claim 15, further comprising the step of adjusting feed rate or standoff distance to obtain a preset measurement of mass flux of particles having a temperature below said specified value at said specified distance from said spray torch.
- 29. A system as recited in claim 28, further comprising the step of obtaining a preset velocity, temperature, spatial distribution or parameter characteristic of spatial distribution, and mass flux of particles having said temperature below said specified value.
- 30. A system as recited in claim 15, further comprising the steps of experimentally measuring input vs. output relations, choosing to control those input parameters that provide substantial gain to adjust each output parameter; and choose a pairing of output sensor data to input parameter based on that choice.
- 31. A system as recited in claim 15, further comprising the step of providing feedback of sensor data to a controller of input variables, wherein interaction between feedback from multiple sensors does not create system instability.
- 32. A system for depositing a material on a substrate, comprising:
a spray torch having electrodes; a first gas for injecting into said spray torch, said first gas having a first gas flow rate; a controllable power supply for providing a current across said electrodes; a controllable device for feeding a material into a region adjacent said electrodes, wherein said material is heated in said region and particles of said material are accelerated from said spray torch with said first gas; a first sensor for measuring a temperature of said sprayed particles; a second sensor for measuring a spatial distribution of said sprayed particles or measuring a parameter characteristic of said spatial distribution of said sprayed particles; a current actuator for adjusting current from said controllable power supply; a first actuator for adjusting said first gas flow rate; a second actuator for adjusting said controllable device for feeding said material; and a controller to receive data from said first sensor and said second sensor and to direct operation of said first actuator and of said second actuator to obtain a preset temperature and a preset spatial distribution or a preset parameter characteristic of said spatial distribution of said sprayed particles.
- 33. A system as recited in claim 32, wherein said controllable device for injecting a material includes a holder for holding particles of a material, wherein said controllable device further includes a second gas for carrying said particles into said region.
- 34. A system as recited in claim 33, wherein said second actuator is for controlling flow of particles of said material into said second gas, wherein the system further comprises a third actuator for adjusting flow of said second gas.
- 35. A system as recited in claim 34, wherein said first gas is ionized in said region adjacent said electrodes to form a plasma and wherein said particles of said material are heated in said plasma.
- 36. A system, comprising a sensor and a controller for controlling an actuator, said sensor for detecting a spatial distribution of particles, wherein said spatial distribution of particles has a densest portion, wherein said sensor is set to receive data from a plurality of positions within said spatial distribution and to automatically locate and receive sensor data from said densest portion, wherein said controller is set to control said actuator based solely on said data from said densest portion.
- 37. A system as recited in claim 36, wherein said densest portion comprises a centroid of said spatial distribution.
- 38. A system as recited in claim 36, wherein said densest portion comprises a peak of said spatial distribution.
- 39. A system as recited in claim 36, wherein said sensor comprises a camera for detecting location of highest intensity optical emission.
- 40. A method of spraying a coating on a substrate comprising the steps of:
a) spraying a material with a spray tool to provide a spatial distribution of sprayed particles; b) measuring said spatial distribution of sprayed particles or measuring a parameter of said spatial distribution of sprayed particles; and c) providing automatic closed loop control over said spatial distribution of sprayed particles.
- 41. A method as recited in claim 40, wherein said spray tool comprises a plasma spray tool.
- 42. A method as recited in claim 40, wherein said parameter comprises centroid position.
- 43. A method as recited in claim 40, wherein said parameter comprises peak of said spatial distribution position or width of said spatial distribution.
- 44. A method as recited in claim 40, further comprising the step of measuring temperature or velocity of sprayed particles and providing automatic closed loop control over said temperature or velocity of sprayed particles.
- 45. A method as recited in claim 40, further comprising the step of measuring temperature and velocity of sprayed particles and providing automatic closed loop control over said temperature and said velocity of sprayed particles.
- 46. A method as recited in claim 40, wherein said spray tool has a plurality of adjustable input parameters, wherein said closed loop control comprises automatically adjusting said input parameters to achieve a preset spatial distribution or a preset parameter of said spatial distribution.
- 47. A method as recited in claim 40, further comprising the step of spraying a production part, wherein said spraying, measuring, and providing closed loop control steps are provided at a separate location from the step of spraying the production part.
- 48. A method of spraying a material as recited in claim 1, further comprising the step of providing a second powder material and adjusting feedrates of said power material and said second powder material to provide a graded composition.
- 49. A method of spraying a coating on a substrate comprising the steps of:
a) spraying a material with a spray tool; b) measuring an output parameter of said spray tool; c) providing automatic closed loop control over said output parameter; and d) setting set points of said output paramter to achieve a desired coating porosity.
- 50. A method of spraying a material as recited in claim 1, wherein said output paramter comprises temperature, velocity, or spatial distribution of sprayed particles.
- 51. A method of spraying a material as recited in claim 1, wherein step (b) comprises measuring a plurality of said output parameters and said step (c) comprises providing automatic closed loop control over each of said plurality of output parameters and said step (c) comprises setting set points of each of said output paramter to achieve a desired coating porosity.
RELATED APPLICATIONS
[0001] This application claims priority of provisional application No. 60/376,135 filed Apr. 29, 2002, incorporated herein by reference.
Government Interests
[0002] This invention was made with Government support under contract number DMI-9713957 awarded by the National Science Foundation. The Government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60376135 |
Apr 2002 |
US |