Nova Patents
EP2005108A2

Measurement system and method

Abstract

A measurement system for and method of measuring thicknesses of coatings as applied to objects and a coating system and method for. coating objects, in particular three-dimensional objects, with coatings, in particular thermal barrier coatings (TBCs), and a monitoring system for and method of monitoring a state of a thermal barrier coating (TBC) as applied to an object which is exposed to a high-temperature environment, and a TBC for use with the same.

Term

Term ended

Projected expiry passed 24 August 2026, 0.1 years ago.

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152 claims: 60 independent, 92 dependent

  1. 1
    Claims of equivalent WO 2007023292 A2 CLAIMS 1. A measurement system for measuring thicknesses of coatings as applied to objects, the system comprising:a support unit for supporting an object which includes a coating and a luminescent material beneath the coating;a detector unit including a detector for detecting a luminescence signal from the luminescent material, wherein an intensity of the luminescence signal represents the thickness of the coating;and a determination unit for determining the thickness of the coating from the intensity of the luminescence signal as detected by the detector of the detector unit.
  2. 9
    The system of any of claims 1 to 8, wherein the luminescent material is provided in a luminescent coating.
  3. 13
    A method of measuring thicknesses of coatings as applied to objects, the method comprising the steps of:supporting an object which includes a coating and a luminescent material beneath the coating;detecting a luminescence signal from the luminescent material, wherein an intensity of the luminescence signal represents the thickness of the coating;and determining the thickness of the coating from the intensity of the luminescence signal as detected by the detector of the detector unit.
  4. 21
    The method of any of claims 13 to 20, wherein the luminescent material is provided in a luminescent coating.
  5. 25
    A coating system for coating objects, the system comprising:a support unit for supporting an object to be coated;an applicator unit including an applicator for applying a coating material to a surface of the object to form a coating on the object;a detector unit including a detector for detecting a luminescence signal from the surface of the object, wherein an intensity of the luminescence signal represents a thickness of the applied coating;and a determination unit for determining the thickness of the coating from the intensity of the luminescence signal as detected by the detector of the detector unit.
  6. 28
    The system of any of claims 25 to 27, wherein the object is moved relative to the applicator of the applicator unit and the detector of the detector unit in coating the object.
  7. 32
    The system of any of claims 29 to 31, wherein the detector of the detector unit is held stationary in a fixed position in relation to the object.
  8. 37
    The system of any of claims 25 to 36, wherein the luminescent material is provided in a luminescent coating.
  9. 42
    A method of coating objects, the method comprising the steps of:supporting an object to be coated;applying a coating material to a surface of the object to form a coating on the object;detecting a luminescence signal from the surface of the object, wherein an intensity of the luminescence signal represents a thickness of the coating;and determining the thickness of the coating from the intensity of the detected luminescence signal.
  10. 45
    The method of any of claims 42 to 44, wherein the coating material is applied by an applicator and the luminescence signal is detected by a detector, and the object is moved relative to the applicator and the detector in coating the object.
  11. 49
    The method of any of claims 46 to 48, wherein the detector is held stationary in a fixed position in relation to the object.
  12. 53
    The method of claims 51 and 52, wherein the applicator and the detector are moved in unison in relation to the object.
  13. 54
    The method of any of claims 42 to 53, wherein the luminescent material is provided in a luminescent coating.
  14. 59
    A monitoring system for monitoring a state of a thermal barrier coating comprising a first, lower luminescent coating on a surface of an object and a second, upper structural coating on the lower coating, the system comprising:a detector unit including a detector for detecting a luminescence signal from the luminescent coating, wherein the detected luminescence signal is representative of a temperature of the luminescent coating;and a monitoring unit for monitoring the detected luminescence signal for at least one characteristic which is representative of a location of raised or reduced temperature in the luminescent coating, and providing a control indication on detecting the at least one characteristic.
  15. 63
    The system of any of claims 59 to 62, wherein the luminescent coating has a thickness of up to about 50 μm.
  16. 66
    The system of any of claims 59 to 65, wherein the luminescent coating comprises a pyrochlore host phase which is doped with at least one luminescent dopant.
  17. 67
    The system of any of claims 59 to 65, wherein the luminescent coating comprises a zirconia-based host phase which is doped with at least one luminescent dopant.
  18. 70
    The system of any of claims 66 to 69, wherein the luminescent coating comprises a second, discrete phase.
  19. 72
    The system of any of claims 59 to 65, wherein the luminescent coating comprises a YAG-based host phase, and preferably one of Y2AI 5 O12 or Y 3 AI x Fe 5 -XOi 2 , and at least one luminescent dopant.
  20. 73
    The system of any of claims 59 to 65, wherein the luminescent coating comprises a YAP-based host phase, and preferably YAIO 3 , and at least one luminescent dopant.
  21. 74
    The system of any of claims 59 to 65, wherein the luminescent coating comprises an yttria host phase and at least one luminescent dopant.
  22. 75
    The system of any of claims 66 to 74, wherein the at least one luminescent dopant comprises at least one element selected from the lanthanide series.
  23. 76
    The system of any of claims 59 to 75, wherein the structural coating is a thicker coating than the luminescent coating.
  24. 80
    The system of any of claims 76 to 79, wherein the ratio of the thicknesses of the structural coating and the luminescent coating is at least about 2:1.
  25. 83
    The system of any of claims 59 to 82, wherein the structural coating comprises a pyrochlore.
  26. 84
    The system of any of claims 59 to 82, wherein the structural coating comprises a zirconia-based phase.
  27. 87
    The system of any of claims 59 to 86, where configured to monitor the thermal barrier coating for generation of blisters at the interface of the thermal barrier coating and the object, preferably in a high temperature operative environment.
  28. 88
    A method of monitoring a state of a thermal barrier coating comprising a first, lower luminescent coating on a surface of an object and a second, upper structural coating on the lower coating, the method comprising the steps of:detecting a luminescence signal from the luminescent coating, wherein the detected luminescence signal is representative of a temperature of the luminescent coating;and monitoring the detected luminescence signal for at least one characteristic which is representative of a location of raised or reduced temperature in the luminescent coating.
  29. 92
    The method of any of claims 88 to 91, wherein the luminescent coating has a thickness of up to about 50 μm.
  30. 95
    The method of any of claims 88 to 94, wherein the luminescent coating comprises a pyrochlore host phase which is doped with at least one luminescent dopant.
  31. 96
    The method of any of claims 88 to 94, wherein the luminescent coating comprises a zirconia-based host phase which is doped with at least one luminescent dopant.
  32. 99
    The method of any of claims 95 to 98, wherein the luminescent coating comprises a second, discrete phase.
  33. 101
    The method of any of claims 88 to 94, wherein the luminescent coating comprises a YAG-based host phase, and preferably one of Y 2 AI 5 Oi 2 or Y 3 AlχFe 5-x Oi 2 , and at least one luminescent dopant.
  34. 102
    The method of any of claims 88 to 94, wherein the luminescent coating comprises a YAP-based host phase, and preferably YAIO 3 , and at least one luminescent dopant.
  35. 103
    The method of any of claims 88 to 94, wherein the luminescent coating comprises an yttria host phase and at least one luminescent dopant.
  36. 104
    The method of any of claims 95 to 103, wherein the at least one luminescent dopant comprises at least one element selected from the lanthanide series.
  37. 105
    The method of any of claims 88 to 104, wherein the structural coating is a thicker coating than the luminescent coating.
  38. 109
    The method of any of claims 105 to 108, wherein the ratio of the thicknesses of the structural coating and the luminescent coating is at least about 2:1.
  39. 112
    The method of any of claims 88 to 111, wherein the structural coating comprises a pyrochlore.
  40. 113
    The method of any of claims 88 to 112, wherein the structural coating comprises a zirconia-based phase.
  41. 116
    The method of any of claims 88 to 115, where configured to monitor the thermal barrier coating for generation of blisters at the interface of the thermal barrier coating and the object, preferably in a high temperature operative environment.
  42. 117
    An object coated with a thermal barrier coating comprising a first, lower luminescent coating on a surface of the object and a second, upper main coating on the lower coating, wherein the main coating has a thickness substantially greater than that of the luminescent coating.
  43. 121
    The object of any of claims 117 to 120, wherein the luminescent coating comprises a pyrochlore host phase which is doped with at least one luminescent dopant.
  44. 122
    The object of any of claims 117 to 120, wherein the luminescent coating comprises a zirconia-based host phase which is doped with at least one luminescent dopant.
  45. 125
    The object of any of claims 121 to 124, wherein the luminescent coating comprises a second, discrete phase.
  46. 127
    The object of any of claims 117 to 120, wherein the luminescent coating comprises a YAG-based host phase, and preferably one of Y 2 AI 5 Oi 2 or Y3Al x Fe 5 - x Oi2, and at least one luminescent dopant.
  47. 128
    The object of any of claims 117 to 120, wherein the luminescent coating comprises a YAP-based host phase, and preferably YAIO 3 , and at least one luminescent dopant.
  48. 129
    The object of any of claims 117 to 120, wherein the luminescent coating ' comprises an yttria host phase and at least one luminescent dopant.
  49. 130
    The object of any of claims 121 to 129, wherein the at least one luminescent dopant comprises at least one element selected from the lanthanide series.
  50. 131
    The object of any of claims 117 to 130, wherein the main coating has a thickness of at least about 25 μm.
  51. 134
    The object of any of claims 117 to 133, wherein the ratio of the thicknesses of the main coating and the luminescent coating is at least about 2:1.
  52. 137
    The object of any of claims 117 to 136, wherein the main coating comprises a pyrochlore.
  53. 138
    The object of any of claims 117 to 136, wherein the main coating comprises a zirconia-based phase.
  54. 141
    A system for measuring the temperature of objects which are coated with a thermal barrier coating which includes a luminescent material, the system comprising:a luminescence detector unit for detecting a luminescence signal from the object;a pyrometer unit for detecting a radiation signal from the object;and a control unit for determining a reference temperature from the luminescence signal and a temperature of the object by calibrating the radiation signal with reference to the reference temperature.
  55. 144
    The system of any of claims 141 to 143, wherein the luminescence signal is a luminescence signal from a reference region of the object.
  56. 145
    The system of any of claims 141 to 144, wherein the radiation signal comprises an infra-red signal.
  57. 146
    The system of any of claims 141 to 145, wherein the radiation signal is an image which is captured from the object. ,
  58. 147
    A method of measuring the temperature of an object which is coated with a thermal barrier coating which includes a luminescent material, the method comprising the steps of:detecting a luminescence signal from the object;detecting a radiation signal from the object;determining a reference temperature from the luminescence signal;and determining a temperature of the object by calibrating the radiation signal with reference to the reference temperature.
  59. 150
    The method of any of claims 147 to 149, wherein the luminescence signal is a luminescence signal from a reference region of the object.
  60. 151
    The method of any of claims 147 to 150, wherein the radiation signal comprises an infra-red signal.
  61. 152
    The method of any of claims 147 to 151, wherein the radiation signal is an image which is captured from the object.
Independent claims61