Claims
- 1. A gas detector, operative in conjunction with a power source, for sensing the presence of at least one predetermined gas, the gas detector comprising:
a detection circuit, the detection circuit including a sensing device having first and second electrodes, wherein the first electrode is connected to the power source for heating the first electrode; a temperature controller operatively connectable to the detection circuit for maintaining a temperature of the first electrode at a predetermined magnitude; and a current controller operatively connectable to the detection circuit for maintaining a current in the second electrode at a predetermined magnitude.
- 2. The gas detector of claim 1, wherein the temperature controller is operatively connected to the detection circuit during a first mode of operation, and wherein the current controller is operatively connected to the detection circuit during a second mode of operation.
- 3. The gas detector of claim 2, wherein the first mode of operation is a warm-up phase, and the second mode of operation is a normal operation phase.
- 4. The gas detector of claim 1, further comprising a switch adjustable between at least two positions, wherein in a first switch position the temperature controller is operatively connected to the detection circuit and in a second switch position the current controller is operatively connected to the detection circuit.
- 5. The gas detector of claim 4 wherein the position of the switch is determined on the basis of an operating condition of the gas detector.
- 6. The gas detector of claim 1, wherein the sensing device includes:
a cathode wire; an anode wire at least partly surrounding the cathode wire and having opposing ends; a pair of supply contacts electrically connected to respective ends of the anode wire; a pair of temperature sense contacts electrically connected to respective ends of the anode wire; and a cathode contact electrically connected to an end of the cathode wire.
- 7. A method of controlling the operation of a gas sensing device, the gas sensing device for indicating the presence of a gas of a predetermined type, wherein the method comprises the steps of:
adjustably heating the gas sensing device; generating a bias current; controlling the temperature of the heated gas sensing device on the basis of at least one operating condition of the sensing device; and controlling the bias current generated by the heated gas sensing device on the basis of at least one operating condition of the sensing device.
- 8. The method of claim 7, wherein the temperature controlling step includes the step of maintaining the temperature of the heated gas sensing device at a predetermined absolute temperature.
- 9. The method of claim 7, further comprising the step of moving the sensing device into the presence of a gas of a predetermined type, and wherein the bias current controlling step includes the step of maintaining the magnitude of the bias current at a generally constant level during the moving step.
- 10. The method of claim 9, further comprising the steps of:
generating a signal at least partially representative of the temperature of the sensing device; and monitoring the signal for an indication of the presence of at least one predetermined gas.
- 11. The method of claim 7, controlling the temperature of the heated gas sensing device and controlling the bias current generated by the heated gas sensing device occur sequentially.
- 12. The method of claim 11, wherein the step of controlling the temperature of the heated gas sensing device occurs before the step of controlling the bias current generated by the heated gas sensing device.
- 13. The method of claim 11, wherein the transition from one of the controlling steps to the other occurs on the basis of at least one operating condition of the sensing device.
- 14. A controller for controlling the operation of a gas detector, the gas detector for indicating the presence of a gas of a predetermined type and having a heated gas sensing device generating a bias current, wherein the controller comprises:
a temperature control loop for controlling the temperature of the heated gas sensing device on the basis of at least one operating condition of the sensing device; and a bias current control loop for controlling the bias current generated by the heated gas sensing device on the basis of at least one operating condition of the sensing device.
- 15. The controller of claim 14, wherein the temperature control loop is operatively connected to a detection circuit during a first mode of operation, and wherein the bias current control loop is operatively connected to the detection circuit during a second mode of operation.
- 16. The controller of claim 15, wherein the first mode of operation is a warm-up phase, and the second mode of operation is a normal operation phase.
- 17. The controller of claim 14, further comprising a switch adjustable between at least two positions, wherein in a first switch position the temperature control loop is operatively connected to a detection circuit and in a second switch position the bias current control loop is operatively connected to the detection circuit.
- 18. The controller of claim 17 wherein the position of the switch is determined on the basis of an operating condition of the gas detector.
- 19. The controller of claim 14, wherein the sensing device includes a cathode wire, an anode wire at least partly surrounding the cathode wire and having opposing ends, a pair of supply contacts electrically connected to respective ends of the anode wire, a pair of temperature sense contacts electrically connected to respective ends of the anode wire, and a cathode contact electrically connected to an end of the cathode wire, and wherein the temperature control loop is electrically connected to the temperature sense contacts.
- 20. The controller of claim 14, wherein an output of the bias current control loop is electrically connected to an input of the temperature control loop.
- 21. A method of controlling a gas detector for sensing the presence of at least one predetermined gas, the gas detector having a heated first electrode and a second electrode, wherein the method comprises the steps of:
heating the first electrode to a predetermined absolute temperature; upon reaching the predetermined absolute temperature, placing the electrodes in a test location; upon being exposed to one of the predetermined gases, generating an increased current in the second electrode; and maintaining the first electrode at substantially the predetermined absolute temperature while placing the electrodes in the test location and while generating the increased current.
- 22. The method of claim 21, further including the steps of selecting the predetermined absolute temperature and providing an indication of the predetermined absolute temperature to the gas detector.
- 23. The method of claim 22, wherein the step of providing an indication of the predetermined absolute temperature takes place while the detector is being operated.
- 24. The method of claim 22, wherein the step of providing an indication of the predetermined absolute temperature includes the step of predefining the predetermined absolute temperature during manufacturing.
- 25. The method of claim 22, wherein the step of providing an indication of the predetermined absolute temperature includes the step of entering the predetermined absolute temperature into the gas detector.
- 26. The method of claim 21, wherein the amount of heat applied to the first electrode is dependent on a duty cycle, and wherein the step of maintaining the first electrode at substantially the predetermined absolute temperature includes the step of adjusting the duty cycle.
- 27. The method of claim 21, further including the step of monitoring the actual temperature of the first electrode, and wherein the step of maintaining the first electrode at substantially the predetermined absolute temperature includes the steps of reducing the temperature of the first electrode upon determining that the actual temperature exceeds the predetermined absolute temperature and raising the temperature of the first electrode upon determining that the actual temperature is below the predetermined absolute temperature.
- 28. A method of controlling a heated electrode gas detector for sensing the presence of at least one predetermined gas, the gas detector having first and second electrodes, wherein the method comprises the steps of:
selecting a preferred absolute temperature; providing an indication of the selected preferred absolute temperature to the gas detector; adjustably heating the first electrode; upon being exposed to one of the predetermined gases, generating an increased current in the second electrode; monitoring the temperature of the first electrode while the increased current is being generated; comparing the monitored temperature to the selected preferred absolute temperature; and varying the heating of the first electrode on the basis of the outcome of the comparing step.
- 29. The method of claim 28, wherein the step of providing an indication of the selected preferred absolute temperature includes the step of entering a value corresponding to the selected preferred absolute temperature into the gas detector.
- 30. The method of claim 28, wherein the step of providing an indication of the selected preferred absolute temperature includes the step of predefining the selected predetermined absolute temperature to the gas detector during manufacturing.
- 31. The method of claim 28, wherein the step of varying the heating of the first electrode includes the steps of reducing the temperature of the first electrode upon determining that the monitored temperature exceeds the selected preferred absolute temperature and raising the temperature of the first electrode upon determining that the monitored temperature is below the selected preferred absolute temperature.
- 32. The method of claim 28, wherein at least the monitoring, comparing and varying steps are repeated substantially continuously during operation of the gas detector.
- 33. The method of claim 28, wherein the selected preferred absolute temperature is a first preferred absolute temperature, and the method further comprising the steps of:
selecting a second preferred absolute temperature; providing an indication of the second selected preferred absolute temperature to the gas detector; adjustably heating the first electrode; upon being exposed to any of the predetermined gases, generating an increased current in the second electrode; monitoring the temperature of the first electrode while the increased current is being generated; comparing the monitored temperature to the second selected preferred absolute temperature; and varying the heating of the first electrode on the basis of the outcome of the comparing step.
- 34. A method for sensing the presence at a sensing device of at least one predetermined gas, the sensing device having first and second electrodes, wherein the method comprises the steps of:
heating the first electrode; generating, at the second electrode, a bias current; moving the sensing device into the presence of one of the predetermined gases; maintaining the magnitude of the bias current at a generally constant level during the moving step; generating a signal at least partially representative of the temperature of the sensing device; and monitoring the temperature signal for an indication of the presence of at least one predetermined gas.
- 35. The method of claim 34, wherein the presence of a predetermined gas is indicated by a decrease in temperature.
- 36. The method of claim 34, wherein the bias current is a first signal, and wherein the temperature signal is a second signal.
- 37. The method of claim 34, wherein the first electrode includes at least two ends, and wherein the generating step includes generating the temperature signal at one or more of the ends of the first electrode.
- 38. The method of claim 34, wherein the step of generating the bias current includes the step of generating the bias current according to a duty cycle, and wherein the step of maintaining the magnitude of the bias current at a generally constant level includes maintaining the magnitude of the bias current at a generally constant level according to the value of the duty cycle.
- 39. A method for sensing the presence at a sensing device of at least one predetermined gas, the sensing device having first and second electrodes, wherein the method comprises the steps of:
heating the first electrode; generating, at the second electrode, a bias current; generating a first signal at least partially representative of the magnitude of the bias current, the magnitude of the bias current being a first operating condition; generating a second signal at least partially representative of a second operating condition; maintaining the magnitude of the bias current at a generally constant level on the basis of the first signal; and monitoring the second signal for an indication of the presence of at least one predetermined gas.
- 40. The method of claim 39, wherein the second operating condition is a temperature of the sensing device.
- 41. The method of claim 40, wherein the presence of a predetermined gas is indicated by a decrease in temperature.
- 42. The method of claim 40, wherein the first electrode includes at least two ends, and wherein the step of generating a second signal includes generating the second signal at one or more of the ends of the first electrode.
- 43. The method of claim 39, further including the step of moving the sensing device into the presence of one of the predetermined gases, and wherein the maintaining step includes maintaining the magnitude of the bias current at a generally constant level during the moving step.
- 44. The method of claim 39, wherein the step of generating the bias current includes the step of generating the bias current according to a duty cycle, and wherein the step of maintaining the magnitude of the bias current at a generally constant level includes maintaining the magnitude of the bias current at a generally constant level according to the value of the duty cycle.
- 45. A method of estimating the remaining useful life of a heated electrode gas detector for sensing the presence of at least one predetermined gas, the gas detector having first and second electrodes, wherein the method comprises the steps of:
adjustably heating the first electrode to maintain a current in the second electrode of a predetermined magnitude, the magnitude of the current being at least partly dependent upon the temperature of the first electrode; while heating the first electrode, determining information at least partly representative of the operating temperature of the gas detector; comparing the operating temperature information to information representative of a maximum operating temperature; and determining the remaining useful life of the gas detector on the basis of the comparison.
- 46. The method of claim 45, wherein the information at least partly representative of the operating temperature of the gas detector and the information representative of the maximum operating temperature are both particular values.
- 47. The method of claim 46, wherein the determining information step includes sensing the actual operating temperature of the gas detector.
- 48. The method of claim 46, wherein the information at least partly representative of the operating temperature of the gas detector and the information representative of the maximum operating temperature are both particular temperature values.
- 49. The method of claim 46, wherein the information at least partly representative of the operating temperature of the gas detector is a particular duty cycle value, the duty cycle value corresponding to the operating temperature of the gas detector.
- 50. The method of claim 46, wherein the step of comparing the temperatures includes subtracting the operating temperature value from the maximum operating temperature value.
- 51. The method of claim 46, wherein the step of determining the remaining useful life includes determining the remaining useful life of the gas detector as a function of the difference between the operating temperature value and the maximum operating temperature value.
- 52. The method of claim 45, further including the step of predetermining the maximum operating temperature.
- 53. The method of claim 52, wherein the step of predetermining the maximum operating temperature is done empirically.
- 54. The method of claim 45, wherein the maximum operating temperature is a maximum safe operating temperature of the gas detector.
- 55. The method of claim 45, wherein the maximum operating temperature is a maximum effective operating temperature of the gas detector.
- 56. A gas detector, operative in conjunction with a power source, for sensing the presence of at least one predetermined gas, the gas detector comprising:
an anode/cathode assembly coated with a ceramic material, the anode/cathode assembly including a cathode wire and an anode wire at least partly surrounding the cathode wire, wherein the anode wire has opposing ends and wherein one of the anode wire ends is electrically connected to the power source; a pair of supply contacts electrically connected to respective ends of the anode wire; a pair of temperature sense contacts electrically connected to respective ends of the anode wire; a cathode contact electrically connected to an end of the cathode wire; and a temperature-sensing circuit electrically connected to at least one of the temperature sense contacts for monitoring the temperature of the anode/cathode assembly.
- 57. The gas detector of claim 56, wherein the power source is electrically connected to at least one of the supply contacts.
- 58. The gas detector of claim 56, further comprising a bias current-sensing circuit electrically connected to the cathode contact.
- 59. The gas detector of claim 56, further comprising a current source electrically connected to at least one of the supply contacts.
- 60. The gas detector of claim 59, further comprising a switch for bypassing the current source.
- 61. A method of making a sensing device for a heated electrode gas detector, the method comprising the steps of:
inserting a cathode wire into an uncoated anode coil to form an electrode assembly; after inserting the cathode wire into the uncoated anode coil, coating the electrode assembly with a ceramic material; and firing the coated electrode assembly.
- 62. The method of claim 61, wherein the inserting step includes inserting an uncoated cathode wire into the uncoated anode coil to form the electrode assembly.
- 63. The method of claim 61, wherein the firing step is accomplished by applying a heating current to the anode coil.
- 64. The method of claim 63, further comprising the step of biasing the coated electrode assembly by applying a biasing voltage to the electrode assembly.
- 65. The method of claim 64, wherein the steps of firing and biasing are carried out substantially entirely simultaneously.
- 66. A method of making a sensing device for a heated electrode gas detector, the method comprising the steps of:
inserting a cathode wire into an anode coil to form an electrode assembly; coating at least part of the cathode wire and at least part of the anode coil with a ceramic material to for a unfired electrode assembly; and biasing the unfired electrode assembly to form a depletion region.
- 67. The method of claim 66, wherein the biasing step includes biasing the unfired electrode assembly by applying voltage to the anode coil.
- 68. The method of claim 67, further including the step of firing the unfired electrode assembly by applying a heating to the anode coil.
- 69. The method of claim 68, wherein the steps of firing and biasing are carried out substantially entirely simultaneously.
- 70. The method of claim 69, wherein the firing and biasing steps are completed within one hour.
- 71. A method of efficiently preparing a heated electrode refrigerant detector for use, the detector including a sensing device, wherein the method comprises the steps of:
determining a first temperature, the first temperature being a desired sensing device operating temperature; determining a second temperature, the second temperature being higher than the first temperature; gradually raising the actual temperature of the sensing device from a third temperature until the second temperature is reached, wherein the third temperature is substantially less than the first temperature; and after reaching the second temperature, lowering the actual temperature of the sensing device until the first temperature is reached.
- 72. The method of claim 71, wherein the second temperature is generally equal to the maximum sustainable operating temperature of the sensing device.
- 73. The method of claim 71, wherein the third temperature is the ambient temperature of the sensing device before the sensing device is heated.
- 74. A method of preparing a heated electrode refrigerant detector for use, the detector including a sensing device, wherein the method comprises the steps of:
maintaining the actual temperature of the sensing device at a first temperature; while maintaining the actual temperature of the sensing device at the first temperature, generating a bias current, the bias current decreasing in magnitude over time; monitoring the bias current; and on the basis of the monitored bias current, reducing the actual temperature of the sensing device to a second temperature, the second temperature being a desired sensing device operating temperature.
- 75. The method of claim 74, wherein the first temperature is generally equal to the maximum safe operating temperature of the sensing device.
- 76. The method of claim 74, wherein the temperature reducing step is executed on the basis of the negative slope of the monitored bias current over time being less than a predetermined value.
- 77. The method of claim 74, wherein the temperature reduction is effected by reducing the magnitude of the bias current to a desired operating level.
- 78. A method of re-polarizing a heated electrode refrigerant detector, the detector including a sensing device operable at an operating temperature, wherein the method comprises the steps of:
elevating the temperature of the sensing device above the operating temperature until the sensing device is substantially re-polarized; and decreasing the temperature of the sensing device to the operating temperature.
- 79. The method of claim 78, further including the step of monitoring the magnitude of a bias current generated by the sensing device, and wherein the initiation of the step of decreasing the temperature of the sensing device is dependent at least partly upon the magnitude of the bias current.
- 80. The method of claim 78, further including the step of monitoring the amount of time for which the temperature of the sensing device is elevated above operating temperature, and wherein the initiation of the step of decreasing the temperature of the sensing device is dependent at least partly upon the amount of time.
- 81. A method of efficiently preparing a heated electrode refrigerant detector for use, the detector including a sensing device, wherein the method comprises the steps of:
turning the detector on; increasing the actual temperature of the sensing device at a first rate of increase; monitoring at least one operating condition of the sensing device; and on the basis of an operating condition of the sensing device, increasing the actual temperature of the sensing device at a second rate of increase until a desired sensing device operating temperature is reached.
- 82. The method of claim 81, wherein the sensing device is capable of generating a bias current, and wherein the step of monitoring an operation condition includes monitoring the bias current.
- 83. The method of claim 82, wherein the step of increasing at a second rate occurs on the basis of the magnitude of the bias current being substantially equal to zero.
- 84. The method of claim 82, wherein the step of increasing at a second rate occurs on the basis of the magnitude of the bias current being less than 5 μA.
- 85. The method of claim 84, wherein the step of increasing at a second rate occurs on the basis of the magnitude of the bias current being less than 0.1 μA.
- 86. The method of claim 81, wherein when an initial quantity of absorbed moisture is present in the sensing device when the detector is turned on, and wherein the step of monitoring an operation condition includes monitoring absorbed moisture in the sensing device.
- 87. The method of claim 86, wherein the step of increasing at a second rate occurs on the basis of the substantially all of the initial quantity of absorbed moisture being evaporated.
- 88. The method of claim 86, wherein the step of monitoring absorbed moisture in the sensing device includes determining whether any absorbed moisture is present.
- 89. The method of claim 81, wherein the first rate of increase is between 50 and 100 degrees Celsius per second.
- 90. The method of claim 81, wherein the second rate of increase is between 500 and 2000 degrees Celsius per second.
- 91. A method of operating a heated electrode refrigerant detector, the method comprising the steps of:
establishing a sequence of desired temperature values; and adjusting the temperature of the detector according to the established sequence.
- 92. The method of claim 91, wherein the step of adjusting the temperature includes, for each desired temperature value in the sequence, the steps of:
determining the next desired temperature value in the sequence; controlling the temperature of the detector to effect the desired temperature value; monitoring the temperature of the detector to determine if the desired temperature value has been reached; and repeating the controlling and monitoring steps until the desired temperature value has been reached.
- 93. The method of claim 91, wherein the step of establishing the sequence of the desired temperatures includes using an automated algorithm to generate each desired temperature value as a function of time, and wherein the step of adjusting the temperature of the detector includes adjusting the temperature of the detector on the basis of each of the sequence of desired temperature values generated by the algorithm at the time of its generation.
- 94. The method of claim 93, wherein the algorithm further utilizes predefined beginning and ending temperature values and a predefined total ramp time.
- 95. The method of claim 91, further comprising the step of storing the established sequence of desired temperature values in a memory prior to beginning the step of adjusting the temperature of the detector.
- 96. The method of claim 91, wherein the sequence of desired temperature values is selected to create a ramp function of temperature versus time.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is entitled to the benefit of, and claims priority to, U.S. Patent Application Serial No. 60/262,525, filed Jan. 18, 2001 and entitled “HEATED ELECTRODE REFRIGERANT DETECTOR UTILIZING ONE OR MORE CONTROL LOOP.”
Provisional Applications (1)
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Number |
Date |
Country |
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60262525 |
Jan 2001 |
US |