Claims
- 1. A heater for use on an optical gas sensor, comprising:
a heating element that is substantially transparent to at least one wavelength of electromagnetic radiation to be used in an optical sensing technique for measurement of at least one gaseous or vaporized material, said heating element configured to be positioned at least partially in an optical path through the optical gas sensor.
- 2. The heater of claim 1, wherein the optical gas sensor comprises an infrared sensor.
- 3. The heater of claim 1, wherein the optical gas sensor comprises a luminescence quenching sensor.
- 4. The heater of claim 1, wherein said gaseous or vaporized material comprises at least one of O2, CO2, N2O and an anesthetic agent.
- 5. The heater of claim 1, wherein said heating element comprises an elongate member.
- 6. The heater of claim 5, wherein said elongate member has a substantially nonlinear configuration.
- 7. The heater of claim 6, wherein said substantially nonlinear configuration comprises a serpentine configuration.
- 8. The heater of claim 5, wherein said elongate member is substantially linear.
- 9. The heater of claim 1, wherein said heating element comprises at least one of a conductive metal oxide, candium sulfide and zinc oxyfluoride.
- 10. The heater of claim 9, wherein said conductive metal oxide comprises at least one of tin oxide, indium tin oxide, antimony tin oxide, zinc oxide and indium zinc oxide.
- 11. The heater of claim 1, further comprising a temperature-conducting element.
- 12. The heater of claim 11, wherein said temperature-conducting element is in at least thermal communication with said heating element.
- 13. The heater of claim 11, wherein said temperature-conducting element comprises an elongate member.
- 14. The heater of claim 13, wherein said elongate member has a substantially nonlinear configuration.
- 15. The heater of claim 14, wherein said substantially nonlinear configuration comprises a serpentine configuration.
- 16. The heater of claim 13, wherein said elongate member is substantially linear.
- 17. The heater of claim 13, wherein a configuration of said elongate member of said temperature-conducting element substantially approximates a configuration of said heating element.
- 18. The heater of claim 11, further comprising a temperature-measuring component in communication with said temperature-conducting element.
- 19. The heater of claim 18, wherein said temperature-measuring component comprises a thermocouple or a temperature-sensing semiconductor device.
- 20. The heater of claim 1, further comprising a temperature-control element in communication with said heating element.
- 21. A heater for use on an optical gas sensor including at least one window comprising:
a heating element over at least a portion of the at least one window, said heating element having a configuration that provides a substantially unobstructed optical pathway through the at least one window.
- 22. The heater of claim 21, wherein said configuration of said heating element substantially approximates an outer periphery of the at least one window and has smaller dimensions than said outer periphery, and wherein said substantially unobstructed optical pathway is through a center of said heating element.
- 23. The heater of claim 21, wherein said heating element comprises at least a first element portion and a second element portion, wherein said first and second element portions are in at least thermal communication with each other.
- 24. The heater of claim 23, wherein said first element portion and said second element portion are substantially L-shaped.
- 25. The heater of claim 23, wherein said first element portion and said second element portion are substantially C-shaped.
- 26. The heater of claim 21, wherein said heating element comprises a plurality of element portions.
- 27. The heater of claim 26, wherein each said element portion substantially approximates a dimension of a corresponding portion of an outer periphery of the at least one window.
- 28. The heater of claim 21, further comprising a temperature-conducting element.
- 29. The heater of claim 28, wherein said temperature-conducting element is in at least thermal communication with said heating element.
- 30. The heater of claim 28, wherein said heating element comprises a plurality of heating element portions forming a first configuration and said temperature-conducting element comprises a plurality of temperature-conducting element portions forming a second configuration, and wherein said second configuration substantially approximates said first configuration.
- 31. The heater of claim 28, further comprising a temperature-measuring component in communication with said temperature-conducting element.
- 32. The heater of claim 31, wherein said temperature-measuring component is a thermocouple or a temperature-sensing semiconductor device.
- 33. The heater of claim 21, further comprising a temperature-control element in communication with said heating element.
- 34. An optical gas sensor, comprising:
a body defining a sample flow path therethrough; at least one window in said body; and a heating element over at least a portion of said at least one window.
- 35. The optical gas sensor of claim 34, wherein said heating element is substantially transparent to at least one wavelength of electromagnetic radiation to be used in an optical sensing technique that facilitates measurement of at least one gaseous or vaporized material.
- 36. The optical gas sensor of claim 34, wherein said heating element comprises an elongate member.
- 37. The optical gas sensor of claim 34, wherein said elongate member comprises a flexible, substantially transparent member.
- 38. The optical gas sensor of claim 34, further comprising a temperature-conducting element over at least a portion of said at least one window.
- 39. The optical gas sensor of claim 38, wherein said temperature-conducting element comprises an elongate member.
- 40. The optical gas sensor of claim 39, wherein said elongate member comprises a flexible, substantially transparent member.
- 41. The optical gas sensor of claim 39, wherein said elongate member of said temperature-conducting element substantially approximates a configuration of said heating element.
- 42. The optical gas sensor of claim 34, wherein said heating element is coupled to a transducer, said transducer being positioned in proximity to said at least one window upon assembly of said transducer with said body.
- 43. The optical gas sensor of claim 42, wherein said heating element is substantially aligned with at least a portion of said at least one window upon assembly of said transducer with said body.
- 44. The optical gas sensor of claim 43, wherein said heating element at least partially conforms to a shape of a surface of at least said portion of said at least one window upon assembly of said transducer with said body.
- 45. The optical gas sensor of claim 34, wherein said heating element has a configuration that permits a substantially unobstructed optical pathway through said at least one window.
- 46. The optical gas sensor of claim 45, wherein said configuration of said heating element substantially approximates a configuration of an outer periphery of said at least one window and has smaller dimensions than said outer periphery, and wherein said substantially unobstructed pathway is through a center of said heating element.
- 47. The optical gas sensor of claim 45, wherein said heating element comprises a plurality of element portions.
- 48. The optical gas sensor of claim 47, wherein each said element portion substantially approximates at least one dimension of a corresponding portion of an outer periphery of said at least one window.
- 49. The optical gas sensor of claim 45, further comprising a temperature-conducting element.
- 50. The optical gas sensor of claim 49, wherein said temperature-conducting element is in at least thermal communication with said heating element.
- 51. The optical gas sensor of claim 49, wherein said heating element comprises a plurality of heating element portions forming a first configuration and said temperature-conducting element comprises a plurality of temperature-conducting element portions forming a second configuration, and wherein said second configuration substantially approximates said first configuration.
- 52. The optical gas sensor of claim 49, further comprising a temperature-measuring component in communication with said temperature-conducting element.
- 53. A transducer for use in an optical sensing technique for measuring at least one gaseous or vaporized material, said transducer comprising:
a transducer body; and a heating element that is substantially transparent to at least one wavelength of electromagnetic radiation coupled to said transducer body.
- 54. The transducer of claim 53, wherein upon assembly of the transducer with an optical gas sensor having at least one window therein, said heating element is positioned in proximity to the at least one window.
- 55. The transducer of claim 54, wherein said heating element is substantially aligned with at least a portion of said at least one window upon assembly of the transducer with said optical gas sensor.
- 56. A transducer for use in an optical sensing technique for measuring at least one gaseous or vaporized material, said transducer comprising:
a transducer body; and a heating element coupled to said transducer body, said heating element having a configuration that permits a substantially unobstructed optical pathway through at least one window in an optical gas sensor upon assembly of the transducer with said optical gas sensor.
- 57. The transducer of claim 56, wherein said heating element is substantially aligned with at least a portion of said at least one window upon assembly of the transducer with said optical gas sensor.
- 58. A method of heating an optical window of a gas sensor comprising:
providing an optical gas sensor having a body that defines a sample flow path therethrough, said body having at least one window therein, said optical gas sensor also including a heating element over at least a portion of said at least one window, said heating element being coupled to a source of electrical power; introducing or sensing radiation through said heating element on said at least one window; and supplying power to said heating element to heat said at least one window.
- 59. The method of claim 58, further comprising:
sensing a temperature of said at least one window.
- 60. The method of claim 59, further comprising:
varying an amount of power supplied to said heating element responsive to a sensed temperature.
- 61. The method of claim 58, further comprising:
contacting said at least one window with said heating element.
- 62. The method of claim 58, wherein said providing comprises positioning said heating element in close proximity to but out of contact with said at least one window.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] Under the provisions of 35 U.S.C. §119(e), this application claims the benefit of U.S. Provisional Application Serial No. 60/294,831, filed on May 31, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60294831 |
May 2001 |
US |