Claims
- 1. A halogenated volatile compound sensor apparatus comprising:
a refrigerant leak detector from which an electrical output can be obtained; and a numerical output provision element responsive to said electrical output, wherein said numerical output provision element provides a numerical output that is indicative of a concentration of at least one halogenated volatile compound.
- 2. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said at least one halogenated volatile compound comprises at least one halogenated volatile organic compound.
- 3. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said refrigerant leak detector comprises a heated diode refrigerant leak detector.
- 4. A halogenated volatile compound sensor apparatus as described in claim 3, wherein said numerical output provision element comprises a voltmeter.
- 5. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said refrigerant leak detector comprises a corona discharge refrigerant leak detector.
- 6. A halogenated volatile compound sensor apparatus as described in claim 5, wherein said numerical output provision element comprises a frequency meter.
- 7. A halogenated volatile compound sensor apparatus as described in claim 5, and further comprising an air pump that provides a flow of air across the sensor to improve apparatus sensitivity and apparatus accuracy.
- 8. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said refrigerant leak detector comprises a commercially available refrigerant leak detector.
- 9. A halogenated volatile compound sensor apparatus as described in claim 8, wherein said commercially available refrigerant leak detector is a detector selected from the group of commercially available detectors consisting of: a heated diode leak detector and a corona discharge sensor.
- 10. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said at least one halogenated volatile compound comprises at least one halogenated volatile compound chemical warfare agent.
- 11. A halogenated volatile compound sensor apparatus as described in claim 10, wherein said at least one hologenated volatile compound chemical warfare agent comprises a chemical warfare agent selected from the group of chemical warfare agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 12. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said at least one halogenated volatile compound comprises at least one groundwater contaminant.
- 13. A halogenated volatile compound sensor apparatus as described in claim 12, wherein said at least one groundwater contaminant comprises at least one dense non-aqueous phase liquid.
- 14. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said halogenated volatile compound sensor apparatus is arranged as part of a sensor array.
- 15. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said refrigerant leak detector has a first operative sensitivity to said at least one halogenated volatile compound and said halogenated volatile compound sensor apparatus has a second operative sensitivity to said at least one halogenated volatile compound, wherein said second operative sensitivity is greater than said first operative sensitivity to said at least one halogenated volatile compound.
- 16. A halogenated volatile compound sensor apparatus as described in claim 15, wherein said second operative sensitivity is achieved by improving a signal to noise ratio of said halogenated volatile compound sensor apparatus.
- 17. A halogenated volatile compound sensor apparatus as described in claim 16, wherein said second operative sensitivity is achieved by minimizing the size of said halogenated volatile compound sensor apparatus.
- 18. A halogenated volatile compound sensor apparatus as described in claim 16, wherein said second operative sensitivity is achieved by arranging halogenated volatile compound sensor apparatus in a sensor array that includes at least one additional halogenated volatile compound sensor apparatus.
- 19. A halogenated volatile compound sensor apparatus as described in claim 18, wherein said sensor array is a parallel sensor array.
- 20. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said halogenated volatile compound sensor apparatus is selective to halogenated volatile compounds in the presence of non-halogenated volatile compounds.
- 21. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said at least one halogenated volatile compound comprises at least one dense non-aqueous phase liquid.
- 22. A halogenated volatile compound sensor apparatus as described in claim 21, wherein said at least one dense non-aqueous phase liquid comprises at least one dense non-aqueous phase liquid selected from the group of dense non-aqueous phase liquids consisting of carbon tetrachloride, trichloroethylene and tetrachloroethylene.
- 23. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said halogenated volatile compound sensor apparatus comprises a simple-to-use field sensor apparatus.
- 24. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said halogenated volatile compound sensor apparatus can be used to produce an accurate said numerical output by merely activating operation while said halogenated volatile compound sensor apparatus is positioned in an area of interest.
- 25. A halogenated volatile compound sensor apparatus as described in claim 1, wherein said halogenated volatile compound sensor apparatus is a portable field kit.
- 26. A halogenated volatile compound sensing method comprising the steps of:
obtaining a refrigerant leak detector from which an electrical output can be obtained; and establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound.
- 27. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile organic compound.
- 28. A halogenated volatile compound sensing method as described in claim 26, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a heated diode refrigerant leak detector.
- 29. A halogenated volatile compound sensing method as described in claim 28, wherein said step of establishing a numerical output provision element comprises the step of establishing a voltmeter.
- 30. A halogenated volatile compound sensing method as described in claim 28, and further comprising the step of increasing temperature of a diode heater to increase sensitivity of said heated diode refrigerant leak detector.
- 31. A halogenated volatile compound sensing method as described in claim 26, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a corona discharge refrigerant leak detector.
- 32. A halogenated volatile compound sensing method as described in claim 31, wherein said step of establishing a numerical output provision element comprises the step of establishing a frequency meter.
- 33. A halogenated volatile compound sensing method as described in claim 31, and further comprising the step of establishing a fan that provides a flow of air across said corona discharge leak detector to improve apparatus sensitivity and apparatus accuracy.
- 34. A halogenated volatile compound sensing method as described in claim 26, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a commercially available refrigerant leak detector.
- 35. A halogenated volatile compound sensing method as described in claim 34, wherein said step of obtaining a commercially available refrigerant leak detector comprises the step of obtaining a detector selected from the group of commercially available detectors consisting of: a heated diode leak detector and a corona discharge sensor.
- 36. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated chemical warfare agent.
- 37. A halogenated volatile compound sensing method as described in claim 36, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated chemical warfare agent comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated chemical warfare agent selected from the group of chemical warfare agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 38. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated groundwater contaminant.
- 39. A halogenated volatile compound sensing method as described in claim 38, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated groundwater contaminant comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one groundwater contaminant comprises at least one dense non-aqueous phase liquid.
- 40. A halogenated volatile compound sensing method as described in claim 26, and further comprising step of arranging said halogenated volatile compound sensor apparatus as part of a sensor array.
- 41. A halogenated volatile compound sensing method as described in claim 26, wherein said halogenated volatile compound sensor apparatus is selective to halogenated volatile compounds in the presence of non-halogenated volatile compounds.
- 42. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one dense non-aqueous phase liquid
- 43. A halogenated volatile compound sensing method as described in claim 42, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one dense non-aqueous phase liquid comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one dense non-aqueous phase liquid selected from the group of dense non-aqueous phase liquids consisting of carbon tetrachloride and trichloroethylene, tetrachloroethylene.
- 44. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and able to generate a numerical output indicative of a halogenated volatile compound concentration comprises the step of connecting wires with a signal processing amplifier of said refrigerant leak detector.
- 45. A halogenated volatile compound sensing method as described in claim 26, wherein said halogenated volatile compound is a halogenated compound selected from the group of halogenated compounds consisting of: carbon tetrachloride and tetrachloroethylene.
- 46. A halogenated volatile compound sensing method as described in claim 26, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of at least one halogenated volatile compound comprises the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a concentration of a halogenated compounds other than refrigerant.
- 47. A halogenated volatile compound sensing method as described in claim 26, and further comprising the step of obtaining said numerical output by positioning sensor in an area of interest and activating a switch on said leak detector.
- 48. A halogenated volatile compound sensing method as described in claim 26, wherein said method is field worthy.
- 49. A new method of environmental monitoring halogenated volatile compounds comprising the steps of:
obtaining a refrigerant leak detector; establishing said refrigerant leak detector in an environmental area of interest; and sensing halogenated volatile compounds in said environmental area of interest by operating said refrigerant leak detector.
- 50. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a commercially available refrigerant leak detector.
- 51. A method of environmental monitoring halogenated volatile compounds as described in claim 49 or 50, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a heated diode refrigerant leak detector.
- 52. A method of environmental monitoring halogenated volatile compounds as described in claim 51, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a refrigerant leak detector from which an electrical output can be obtained and further comprising the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration.
- 53. A method of environmental monitoring halogenated volatile compounds as described in claim 52, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration comprises the step of establishing a voltmeter.
- 54. A method of environmental monitoring halogenated volatile compounds as described in claim 49 or 50 wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a corona discharge refrigerant leak detector.
- 55. A method of environmental monitoring halogenated volatile compounds as described in claim 54, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a refrigerant leak detector from which an electrical output can be obtained and further comprising the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration.
- 56. A method of environmental monitoring halogenated volatile compounds as described in claim 55, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration comprises the step of establishing a frequency meter.
- 57. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of sensing halogenated volatile compounds in said environmental area of interest by operating said refrigerant leak detector comprises the step of sensing halogenated volatile compounds other than refrigerant in said environmental area of interest by operating said refrigerant leak detector.
- 58. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of establishing said refrigerant leak detector in an environmental area of interest comprises the step of establishing said refrigerant leak detector in a groundwater area.
- 59. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of sensing halogenated volatile compounds in said environmental area of interest by operating said refrigerant leak detector comprises the step of sensing dense non-aqueous phase liquids in said environmental area of interest by operating said refrigerant leak detector.
- 60. A method of environmental monitoring halogenated volatile compounds as described in claim 59, wherein said step of sensing dense non-aqueous phase liquids in said environmental area of interest by operating said refrigerant leak detector comprises the step of sensing a DNAPL selected from the group of DNAPL's consisting of degreasing solvents, and dry cleaning solvents.
- 61. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of establishing said refrigerant leak detector in an environmental area of interest comprises the step of establishing said refrigerant leak detector in headspace above soil.
- 62. A method of environmental monitoring halogenated volatile compounds as described in claim 49, wherein said step of establishing said refrigerant leak detector in an environmental area of interest comprises the step of establishing said refrigerant leak detector in headspace above water.
- 63. A new method of monitoring halogenated volatile chemical war agents comprising the steps of:
obtaining a refrigerant leak detector; establishing said refrigerant leak detector in an area of interest; and sensing a halogenated volatile chemical war agent in said area of interest by operating said refrigerant leak detector.
- 64. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of sensing a halogenated volatile chemical war agent in said area of interest by operating said refrigerant leak detector comprises the step of sensing halogenated volatile organic chemical war agents in said area of interest by operating said refrigerant leak detector.
- 65. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a commercially available refrigerant leak detector.
- 66. A method of monitoring halogenated volatile chemical war agents as described in claim 63 or 65, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a heated diode refrigerant leak detector.
- 67. A method of monitoring halogenated volatile chemical war agents as described in claim 66, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a refrigerant leak detector from which an electrical output can be obtained and further comprising the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration.
- 68. A method of monitoring halogenated volatile chemical war agents as described in claim 67, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration comprises the step of establishing a voltmeter.
- 69. A method of monitoring halogenated volatile chemical war agents as described in claim 63 or 65, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a corona discharge refrigerant leak detector.
- 70. A method of monitoring halogenated volatile chemical war agents as described in claim 69, wherein said step of obtaining a refrigerant leak detector comprises the step of obtaining a refrigerant leak detector from which an electrical output can be obtained and further comprising the step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration.
- 71. A method of monitoring halogenated volatile chemical war agents as described in claim 70, wherein said step of establishing a numerical output provision element responsive to said electrical output and that provides a numerical output indicative of a halogenated volatile compound concentration comprises the step of establishing a frequency meter.
- 72. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of establishing said refrigerant leak detector in an area of interest comprises the step of establishing said refrigerant leak detector in a public area.
- 73. A method of monitoring halogenated volatile chemical war agents as described in claim 72, wherein said step of sensing a halogenated volatile chemical war agent in said area of interest by operating said refrigerant leak detector comprises the step of sensing a halogenated volatile chemical war agent selected from the group of a halogenated volatile chemical war agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 74. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of establishing an alert system responsive to said step of sensing a halogenated volatile chemical war agent in said area of interest by operating said refrigerant leak detector.
- 75. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of sensing comprises in-field sensing.
- 76. A method of monitoring halogenated volatile chemical war agents as described in claim 63, wherein said step of sensing is initiated upon activation of a switch and wherein continuing to sense does not require skilled operation.
- 77. A method of field monitoring for volatile compounds comprising the steps of:
obtaining at least one halogenated volatile compound sensor; establishing said at least one halogenated volatile compound sensor in an environmental area of interest; sense operating said at least one halogenated volatile compound sensor; and obtaining a numerical output indicative of a concentration of at least one halogenated volatile compound in said environmental area of interest.
- 78. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of obtaining at least one halogenated volatile compound sensor comprises the step of obtaining at least one halogenated volatile organic compound sensor.
- 79. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of obtaining a numerical reading indicative of a concentration of at least one halogenated volatile compound in said environmental area of interest is accomplished within a short time of initiating said step of sense operating said at least one halogenated volatile compound sensor.
- 80. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of establishing said at least one halogenated volatile compound sensor in an environmental area of interest comprises the step of establishing said at least one halogenated volatile compound sensor in headspace above soil.
- 81. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of establishing said at least one halogenated volatile compound sensor in an environmental area of interest comprises the step of establishing said at least one halogenated volatile compound sensor in headspace above water.
- 82. A method of field monitoring for volatile compounds as described in claim 81, and further comprising the step of water sparging.
- 83. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds can be performed by an operator having minimal instruction.
- 84. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of sense operating said at least one halogenated volatile compound sensor does not comprises the step of flowing a chemically inert carrier gas.
- 85. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds does not comprise using a gas chromatograph.
- 86. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds does not comprise using mass spectrometry.
- 87. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds does not comprise immuno assaying.
- 88. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds does not comprise temperature control.
- 89. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of obtaining a numerical reading indicative of a concentration of at least one halogenated volatile compound in said environmental area of interest comprises the step of real time obtaining a numerical reading indicative of a concentration of at least one halogenated volatile compound in said environmental area of interest.
- 90. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of sense operating said at least one halogenated volatile compound sensor comprises the step of in situ sense operating said at least one halogenated volatile compound sensor.
- 91. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of obtaining a numerical reading indicative of a concentration of at least one halogenated volatile compound in said environmental area of interest comprises the step of obtaining a numerical reading indicative of a concentration of at least one dense non-aqueous phase liquid in said environmental area of interest.
- 92. A method of field monitoring for volatile compounds as described in claim 91, wherein said step of obtaining a numerical reading indicative of a concentration of at least one dense non-aqueous phase liquid in said environmental area of interest comprises the step of obtaining a numerical reading indicative of a concentration of a DNAPL selected from the group of DNAPL's consisting of: degreasing solvent, and dry cleaning solvents.
- 93. A method of field monitoring for volatile compounds as described in claim 77, wherein said method of field monitoring for volatile compounds is relatively low cost as compared with the cost of mass spectrometry and gas chromatography methods.
- 94. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of sensing comprises in-field sensing.
- 95. A method of field monitoring for volatile compounds as described in claim 77, wherein said step of sensing is initiated upon activation of a switch and wherein continuing to sense does not require skilled operation.
- 96. A chemical vapor sensor array apparatus comprising:
at least one halogenated compound sensor arranged with at least one other chemical vapor sensor to form a sensor array, wherein each said sensor is adapted to generate at least one sense output; and a multi-variate analysis element operable on said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group.
- 97. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is a field portable kit.
- 98. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus does not required a skilled operator during operation.
- 99. A chemical vapor sensor array apparatus as described in claims 96, wherein said at least one other chemical vapor sensor is a chemical vapor sensor selected from the group of chemical vapor sensors consisting of: heated diode sensor, corona discharge sensor, photoionization detector, thermal conductivity sensor, hydrocarbon detector, detector to measure aromatic rings by ultraviolet light absorption, detector that ionizes compounds containing double bonds, detectors using a lithium fluoride window, electrochemical cells, acoustic wave devices, combustible hydrocarbon sensor, quartz crystal microbalance, surface acoustic wave device, optical spectrometer, ultrasonic sensor, and heat capacity transducer.
- 100. A chemical vapor sensor array apparatus as described in claims 96, wherein said at least one other chemical vapor sensor involves a sensing method selected from the group of sensing methods consisting of: gas chromatography, immunoassaying, refractive index attenuation on coated optical fibers, chemical reaction in a basic media to form a color in the presence of trichloroethylene, radio frequency-induced helium plasma optical emission spectrometry, LaF2-doped element heated to about 600 degrees C. probing, synthetic nose, raman spectroscopy, and ion mobility spectrometry.
- 101. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus exhibits a selectivity to halogenated volatile compounds in the presence of non-halogenated volatile compounds.
- 102. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensor array is an air sampling train.
- 103. A chemical vapor sensor array apparatus as described in claims 96, wherein at least one of said sensors is modified to enhance sensitivity.
- 104. A chemical vapor sensor array apparatus as described in claims 96, wherein any destructive detectors are configured downstream of nondestructive sensors in said sensor array.
- 105. A chemical vapor sensor array apparatus as described in claims 96, and further comprising a mass flow controller.
- 106. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus comprises a hand-held chemical vapor sensor array apparatus.
- 107. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus can generate said sensible indication of the concentration of at least one chemical functional group within a short time.
- 108. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is designed for use in a public site selected from the group of public sites consisting of: subway, airport terminal, sports arena, and mall.
- 109. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is interfaceable with a facility chemical warfare agent defense system to cause a security response.
- 110. A chemical vapor sensor array apparatus as described in claims 109, and further comprising a facility chemical warfare agent defense system.
- 111. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus comprises a portable chemical sensor array apparatus.
- 112. A chemical vapor sensor array apparatus as described in claims 96, wherein said multivariate analysis element comprises a pre-programmed logic schemes.
- 113. A chemical vapor sensor array apparatus as described in claims 96, wherein said multivariate analysis element generates at least one signal ratio datum.
- 114. A chemical vapor sensor array apparatus as described in claims 96, wherein said multivariate analysis element comprises a microprocessor.
- 115. A chemical vapor sensor array apparatus as described in claims 96, and further comprising a selective chemical group removal element which is able to affect a chemical vapor.
- 116. A chemical vapor sensor array apparatus as described in claims 115, wherein said selective chemical group removal element comprises a selective chemical group removal element selected from the group of selective chemical group removal elements consisting of: selective adsorption element, selective absorption element, and selective reaction element.
- 117. A chemical vapor sensor array apparatus as described in claims 116, wherein said selective chemical group removal element comprises water and said selective chemical group removal element comprises a sarin removal element.
- 118. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus comprises sensors configured to give a different response for perchloroethylene relative to carbon tetrachloride.
- 119. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is able to differentiate between halogenated chemical warfare agents and halogenated volatile compounds that are not chemical warfare agents.
- 120. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is able to sense the presence of non-halogenated volatile organic compounds.
- 121. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group consists essentially of an indication of the presence of said at least one chemical functional group.
- 122. A chemical vapor sensor array apparatus as described in claims 96, wherein said multivariate analysis element comprises computer software.
- 123. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group comprises a numerical output.
- 124. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical functional group is a chemical functional group selected from the group of chemical functional groups consisting of: sarin, phosgene and mustard gas.
- 125. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical functional group comprises a volatile compound functional group.
- 126. A chemical vapor sensor array apparatus as described in claims 125, wherein said volatile compound functional group comprises a volatile organic compound functional group.
- 127. A chemical vapor sensor array apparatus as described in claims 126, wherein said volatile compound functional group comprises a halogenated functional group.
- 128. A chemical vapor sensor array apparatus as described in claims 127, wherein said halogenated functional group comprises a halogenated chemical warfare agent group.
- 129. A chemical vapor sensor array apparatus as described in claims 128, wherein said halogenated chemical warfare agent group comprises a halogenated chemical warfare agent selected from the group of halogenated chemical warfare agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 130. A chemical vapor sensor array apparatus as described in claims 125, wherein said chemical functional group comprises a chemical warfare agent functional group.
- 131. A chemical vapor sensor array apparatus as described in claims 130, wherein said chemical warfare agent functional group comprises a chemical warfare agent functional group selected from the group of chemical warfare agent functional groups consisting of: nerve agents, blood agents, and blister agents.
- 132. A chemical vapor sensor array apparatus as described in claims 125, wherein said chemical functional group comprises a groundwater contaminant group.
- 133. A chemical vapor sensor array apparatus as described in claims 132, wherein said groundwater contaminant group comprises a groundwater contaminant selected from the group of groundwater contaminants consisting of: degreasing solvents, fuels and dry cleaning solvents.
- 134. A chemical vapor sensor array apparatus as described in claims 132, wherein said groundwater contaminant group comprises at least one dense non-aqueous phase liquid.
- 135. A chemical vapor sensor array apparatus as described in claims 125, wherein said volatile compound functional group comprises at least one chemical selected from the group of chemicals consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard, lewisite, DNAPL's, carbon tetrachloride, tetrachloroethylene, trichlorethylene, dichloromethane, methylene chloride, trans-1,2-dichloroethylene, trichloromethane, chloroform, 1,1-dichloroethane, 1,1 dichloroethylene, 1,1,1-trichloroethane, toluene, 1,2-dichloroethane, benzene, o-xylene, ethylbenzene, vinyl chloride, carbon tetrachloride, chlorobenzene, p-dichlorobenzene, naphthalene.
- 136. A chemical vapor sensor array apparatus as described in claims 96, wherein said at least one halogenated compound sensor comprises at least one halogenated organic compound sensor.
- 137. A chemical vapor sensor array apparatus as described in claims 136, wherein said at least one halogenated organic compound sensor comprises at least one refrigerant leak detector.
- 138. A chemical vapor sensor array apparatus as described in claims 136, wherein said at least one halogenated organic compound sensor comprises at least one halogenated organic compound sensor selected from the group of halogenated organic compound sensor consisting of: heated diode sensor and corona discharge sensor.
- 139. A chemical vapor sensor array apparatus as described in claims 138, wherein said at least one halogenated organic compound sensor comprises at least one commercially available halogenated organic compound sensor.
- 140. A chemical vapor sensor array apparatus as described in claims 136, wherein said at least one halogenated organic compound sensor comprises a heated diode sensor.
- 141. A chemical vapor sensor array apparatus as described in claims 140, wherein said at least heated diode sensor comprises a heated diode sensor from which an electrical output can be obtained, and further comprising a voltmeter responsive to said electrical output.
- 142. A chemical vapor sensor array apparatus as described in claims 136, wherein said at least one halogenated organic compound sensor comprises a corona discharge sensor.
- 143. A chemical vapor sensor array apparatus as described in claims 142, wherein said at least one corona discharge sensor comprises a corona discharge sensor from which an electrical output can be obtained, and further comprising a frequency meter responsive to said electrical output.
- 144. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group comprises a numerical output.
- 145. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group comprises a visual readout that includes a series of lighted diodes.
- 146. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group comprises an audible indication.
- 147. A chemical vapor sensor array apparatus as described in claims 146, wherein said audible indication increases in frequency as higher concentrations of said at least one chemical functional group are sensed.
- 148. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is usable for groundwater contamination monitoring.
- 149. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is usable for soil contamination monitoring.
- 150. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is usable for chemical warfare agent monitoring.
- 151. A chemical vapor sensor array apparatus as described in claims 96, and further comprising a forced air system.
- 152. A chemical vapor sensor array apparatus as described in claims 96, wherein said chemical vapor sensor array apparatus is usable for in situ sensing.
- 153. A chemical vapor sensor array apparatus as described in claims 96, wherein said a multi-variate analysis element operable on said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group comprises a multi-variate analysis element operable on said sense outputs to real time generate a sensible indication of the concentration of at least one chemical functional group.
- 154. A chemical vapor sensor array apparatus as described in claims 96, wherein said a multi-variate analysis element operable on said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group comprises a multi-variate analysis element operable on said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group within a short time of activating said chemical vapor sensor array apparatus.
- 155. A chemical vapor sensor array apparatus as described in claims 96, wherein said sensible indication of the concentration of at least one chemical functional group comprises a sensible indication selected from the group of sensible indications consisting of: lights, noise, and numerical readout.
- 156. A chemical vapor sensor array apparatus as described in claims 96, and further comprising a chemical functional group source location element responsive to said sensors.
- 157. A chemical vapor sensing method comprising the steps of:
establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array, wherein each said sensor is adapted to generate at least one sense output; and establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group.
- 158. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array comprises the step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor selected from the group of chemical vapor sensors consisting of: heated diode sensor, corona discharge sensor, photoionization detector, thermal conductivity sensor, hydrocarbon detector, detector to measure aromatic rings by ultraviolet light absorption, detector to measure aromatic rings by ultraviolet light flourescence, colorimetric detector, detector that ionizes compounds containing double bonds, detectors using a lithium fluoride window, electrochemical cells, acoustic wave devices, combustible hydrocarbon sensor, quartz crystal microbalance, surface acoustic wave device, optical spectrometer, ultrasonic sensor, and heat capacity transducer.
- 159. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array comprises the step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor that involves a sensing method selected from the group of sensing methods consisting of: gas chromatography, immunoassaying, refractive index attenuation on coated optical fibers, chemical reaction in a basic media to form a color in the presence of trichloroethylene, radio frequency-induced helium plasma optical emission spectrometry, LaF2-doped element heated to about 600 degrees C. probing, synthetic nose, raman spectroscopy, and ion mobility spectrometry.
- 160. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of halogenated volatile compounds in the presence of non-halogenated volatile compounds.
- 161. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor comprises the step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form an air sampling train.
- 162. A chemical vapor sensing method as described in claim 157, and further comprising the step of modifying at least one of said sensors to enhance sensitivity.
- 163. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array comprises the step of establishing any destructive detectors are downstream of nondestructive sensors in said sensor array.
- 164. A chemical vapor sensing method as described in claim 157, and further comprising the step of establishing a mass flow controller to which a sensed substance is responsive.
- 165. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group within a short time.
- 166. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array comprises the step of establishing at least one halogenated volatile organic compound sensor and at least one other chemical vapor sensor to form a sensor array that may be mounted in a public site selected from the group of public sites consisting of: subway, airport terminal, sports arena, and mall.
- 167. A chemical vapor sensing method as described in claim 157 further comprising the step of interfacing said sensor array with a facility chemical warfare agent defense system to cause a security response upon sensing of a chemical warfare agent.
- 168. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element comprises the step of establishing a pre-programmed logic scheme.
- 169. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element comprises the step of establishing a multi-variate analysis element able to generate at least one signal ratio datum.
- 170. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element comprises the step of establishing a microprocessor.
- 171. A chemical vapor sensing method as described in claim 157, and further comprising the step of establishing a selective chemical group removal element capable of affecting a vapor.
- 172. A chemical vapor sensing method as described in claim 171, wherein said step of establishing a selective chemical group removal element comprises the step of establishing a selective chemical group removal element selected from the group of selective chemical group removal elements consisting of: selective adsorption element, selective absorption element, and selective reaction element.
- 173. A chemical vapor sensing method as described in claim 172, wherein said step of said selective chemical group removal element comprises water and said selective chemical group removal element comprises a sarin removal element.
- 174. A chemical vapor sensing method as described in claim 157, wherein said chemical vapor sensor array apparatus comprises sensors configured to give a different response for perchloroethylene relative to carbon tetrachloride.
- 175. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to indicate whether sensed halogenated volatile compounds are halogenated chemical warfare agents.
- 176. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group consists essentially of the step of establishing a multi-variate analysis element responsive to said sense outputs to indicate the presence of at least one chemical functional group.
- 177. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element comprises the step of establishing computer software.
- 178. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a numerical output.
- 179. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group selected from the group of chemical functional groups consisting of: sarin, phosgene and mustard gas.
- 180. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a volatile compound functional group.
- 181. A chemical vapor sensing method as described in claim 180, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of volatile compound functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a volatile organic compound functional group.
- 182. A chemical vapor sensing method as described in claim 181, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a volatile organic compound functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a halogenated group.
- 183. A chemical vapor sensing method as described in claim 182, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a halogenated group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a halogenated chemical warfare agent group.
- 184. A chemical vapor sensing method as described in claim 183, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of halogenated chemical warfare agent group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a halogenated chemical warfare agent group selected from the group of halogenated chemical warfare agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 185. A chemical vapor sensing method as described in claim 180, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a volatile compound functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical warfare agent functional group.
- 186. A chemical vapor sensing method as described in claim 185, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical warfare agent functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical warfare agent functional group selected from the group of chemical warfare agent functional groups consisting of: nerve agents, blood agents, and blister agents.
- 187. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a groundwater contaminant group.
- 188. A chemical vapor sensing method as described in claim 187, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a groundwater contaminant group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a groundwater contaminant group selected from the group of groundwater contaminant groups consisting of: degreasing solvents, fuels and dry cleaning agents.
- 189. A chemical vapor sensing method as described in claim 187, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a groundwater contaminant group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a dense non-aqueous phase liquid.
- 190. A chemical vapor sensing method as described in claim 180, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a volatile compound functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of at least one chemical selected from the group of chemicals consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard, lewisite, DNAPL's, carbon tetrachloride, tetrachloroethylene, trichlorethylene, dichloromethane, methylene chloride, trans-1,2-dichloroethylene, trichloromethane, chloroform, 1,1-dichloroethane, 1,1-dichloroethylene, 1,1,1-trichloroethane, toluene, 1,2-dichloroethane, benzene, o-xylene, ethylbenzene, vinyl chloride, carbon tetrachloride, chlorobenzene, p-dichlorobenzene, and naphthalene.
- 191. A chemical vapor sensing method as described in claim 157, wherein said step of establishing at least one halogenated volatile organic compound sensor comprises the step of establishing at least one halogenated organic compound sensor.
- 192. A chemical vapor sensing method as described in claim 191, wherein said step of establishing at least one halogenated organic compound sensor comprises the step of establishing at least one refrigerant leak detector.
- 193. A chemical vapor sensing method as described in claim 191, wherein said step of establishing at least one halogenated organic compound sensor comprises the step of establishing at least one halogenated organic compound sensor selected from the group of halogenated organic compound sensors consisting of: heated diode sensor and corona discharge sensor.
- 194. A chemical vapor sensing method as described in claim 193, wherein said step of establishing at least one at least one halogenated organic compound sensor comprises the step of establishing at least one commercially available halogenated organic compound sensor.
- 195. A chemical vapor sensing method as described in claim 191, wherein said step of establishing at least one halogenated organic compound sensor comprises the step of establishing a heated diode sensor.
- 196. A chemical vapor sensing method as described in claim 195, wherein said step of establishing at least one halogenated organic compound sensor comprises the step of establishing a halogenated organic compound sensor from which an electrical output can be obtained, and further comprising the step of establishing a voltmeter responsive to said electrical output.
- 197. A chemical vapor sensing method as described in claim 191, wherein said step of establishing at least one halogenated organic compound sensor comprises the step of establishing a heated diode sensor.
- 198. A chemical vapor sensing method as described in claim 197, wherein said step of establishing a heated diode sensor from which an electrical output can be obtained, and further comprising the step of establishing a frequency meter responsive to said electrical output.
- 199. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a numerical output.
- 200. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate an audible indication.
- 201. A chemical vapor sensing method as described in claim 200, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate an audible indication comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate an audible indication that increases in frequency as higher concentrations of said at least one chemical functional group are sensed.
- 202. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication as to the concentration of a chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a visual readout that is selected from the group of visual readouts consisting of: series of lighted diodes and flashing light.
- 203. A chemical vapor sensing method as described in claim 157, and further comprising the step of using said sensor array for groundwater contamination monitoring.
- 204. A chemical vapor sensing method as described in claim 157, and further comprising the step of using said sensor array for soil contamination monitoring.
- 205. A chemical vapor sensing method as described in claim 157, and further comprising the step of using said sensor array for chemical warfare agent monitoring.
- 206. A chemical vapor sensing method as described in claim 157, and further comprising the step of establishing a forced air system in proximity to said sensor array.
- 207. A chemical vapor sensing method as described in claim 157, and further comprising the step of establishing and operating said sensor array in-situ.
- 208. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group in real time.
- 209. A chemical vapor sensing method as described in claim 157, wherein said step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group comprises the step of establishing a multi-variate analysis element responsive to said sense outputs to generate a sensible indication of the concentration of at least one chemical functional group within a short time of activating said chemical vapor sensor array apparatus.
- 210. A chemical vapor sensing method as described in claim 157, and further comprising the step of establishing a chemical functional group source location element responsive to said sensors.
- 211. A method of volatile compound monitoring in the field comprising the steps of:
obtaining at least two volatile compound sensors; arranging said at least two volatile compound sensors in an array and so that each may sense a gas of interest; initiating operation of said at least two volatile compound sensors; and obtaining a sensible indication relative to a concentration of a volatile compound functional group, wherein said step of obtaining a sensible indication relative to a concentration of a volatile compound functional group can be performed even when said gas of interest contains volatile compounds that are not within said volatile compound functional group, wherein said step of obtaining a sensible indication relative to a concentration of a volatile compound functional group occurs within a short time of said step of initiating operation of said at least two volatile compound sensors, wherein said method does not comprise mass spectrometry, wherein said method does not comprise gas chromatography, and wherein said method does not comprise immunoassaying.
- 212. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining a sensible indication relative to a concentration of a volatile compound functional group comprises the step of real time obtaining a sensible indication relative to a concentration of a volatile compound functional group.
- 213. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of initiating operation of said at least two volatile compound sensors is accomplished while said at least two volatile compound sensors are established in situ.
- 214. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining at least two volatile compound sensors comprises the step of obtaining volatile organic compound sensors and said step of obtaining a sensible indication relative to a concentration of a volatile compound functional group comprises the step of obtaining a sensible indication relative to a concentration of a volatile organic compound functional group.
- 215. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining at least two volatile compound sensors comprises the step of obtaining at least one halogenated volatile compound sensor and at least one other sensor.
- 216. A method of volatile compound monitoring in the field as described in claim 215, wherein said step of obtaining at least one halogenated volatile compound sensor and at least one other sensor comprises the step of obtaining at least one refrigerant leak detector.
- 217. A method of volatile compound monitoring in the field as described in claim 216, wherein said step of obtaining at least one refrigerant leak detector comprises the step of obtaining at least refrigerant leak detector selected from the group of refrigerant leak detectors consisting of: heated diode sensor and corona discharge sensor.
- 218. A method of volatile compound monitoring in the field as described in claim 215, wherein said at least one halogenated volatile compound sensor is a commercially available sensor from which an electrical output can be obtained.
- 219. A method of volatile compound monitoring in the field as described in claim 218, wherein said at least one halogenated volatile compound sensor comprises a heated diode sensor from which an electrical output can be obtained.
- 220. A method of volatile compound monitoring in the field as described in claim 219, and further comprising the step of establishing a voltmeter responsive to said electrical output.
- 221. A method of volatile compound monitoring in the field as described in claim 218, wherein said at least one halogenated volatile compound sensor comprises a corona discharge sensor from which an electrical output can be obtained.
- 222. A method of volatile compound monitoring in the field as described in claim 221, and further comprising the step of establishing a frequency meter responsive to said electrical output.
- 223. A method of volatile compound monitoring in the field as described in claim 215, wherein said step of obtaining a sensible indication relative to a concentration of a volatile compound functional group consists essentially of obtaining an indication as to the presence of a volatile compound functional group.
- 224. A method of volatile compound monitoring in the field as described in claim 215, wherein said step of obtaining a sensible indication of a concentration of a volatile compound functional group comprises the step of obtaining a numerical output of a concentration of said volatile compound functional group.
- 225. A method of volatile compound monitoring in the field as described in claim 211, wherein said sensible indication of the concentration of at least one chemical functional group comprises a sensible indication selected from the group of sensible indications consisting of: lights, noise, and numerical readout.
- 226. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of arranging said at least two volatile compound sensors in an array and so that each may sense a gas of interest comprises the step of arranging said at least two volatile compound sensors in an array and so that each may sense gas in a headspace above water.
- 227. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of arranging said at least two volatile compound sensors in an array and so that each may sense a gas of interest comprises the step of arranging said at least two volatile compound sensors in an array and so that each may sense gas in a headspace above soil.
- 228. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining sensible indication as to the concentration of a volatile compound functional group comprises the step of obtaining a sensible indication as to the concentration of a volatile compound functional group selected from the group of chemical warfare agent groups consisting of: sarin, soman, phosgene, chlorine, cyanogen chloride and mustard gas.
- 229. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining a sensible indication as to the concentration of a volatile compound functional group comprises the step of obtaining a sensible indication as to the concentration of a volatile organic compound functional group.
- 230. A method of volatile compound monitoring in the field as described in claim 229, wherein said step of obtaining a sensible indication as to the concentration of a volatile organic compound functional group comprises the step of obtaining a sensible indication as to the concentration of a halogenated group.
- 231. A method of volatile compound monitoring in the field as described in claim 230, wherein said step of obtaining a sensible indication as to the concentration of a halogenated group comprises the step of obtaining a sensible indication as to the concentration of halogenated chemical warfare agent group.
- 232. A method of volatile compound monitoring in the field as described in claim 231, wherein said step of obtaining a sensible indication as to the concentration of halogenated chemical warfare agent group comprises the step of obtaining a sensible indication as to the concentration of halogenated chemical warfare agent group selected from the group of halogenated chemical warfare agents consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard and lewisite.
- 233. A method of volatile compound monitoring in the field as described in claim 229, wherein said step of obtaining a sensible indication as to the concentration of a volatile compound functional group comprises the step of obtaining a sensible indication as to the concentration of a chemical warfare agent functional group.
- 234. A method of volatile compound monitoring in the field as described in claim 233, wherein said step of obtaining a sensible indication as to the concentration of a chemical warfare agent functional group comprises the step of obtaining a sensible indication as to the concentration of a chemical warfare agent functional group selected from the group of chemical warfare agent functional groups consisting of: nerve agents, blood agents, and blister agents.
- 235. A method of volatile compound monitoring in the field as described in claim 211, wherein said step of obtaining sensible indication as to the concentration of a volatile compound functional group comprises the step of obtaining a sensible indication as to the concentration of a groundwater contaminant functional group.
- 236. A method of volatile compound monitoring in the field as described in claim 235, wherein said step of obtaining a sensible indication as to the concentration of a groundwater contaminant group comprises the step of obtaining a sensible indication as to the concentration of a groundwater contaminant functional group selected from the group of groundwater contaminant functional groups consisting of: degreasing solvents, dry cleaning solvents, fuels, and PCB's.
- 237. A method of volatile compound monitoring in the field as described in claim 235, wherein said step of obtaining a sensible indication as to the concentration of a groundwater contaminant group comprises the step of obtaining a sensible indication as to the concentration of a dense non-aqueous phase liquid.
- 238. A method of volatile compound monitoring in the field as described in claim 235, wherein said step of obtaining a sensible indication as to the concentration of a volatile compound functional group comprises the step of obtaining a sensible indication as to the concentration of at least one chemical selected from the group of chemicals consisting of: sarin, soman, cyanogen chloride, chlorine, phosgene, sulfur mustard, nitrogen mustard, lewisite, DNAPL's, carbon tetrachloride, tetrachloroethylene, trichlorethylene, dichloromethane, methylene chloride, trans-1,2-dichloroethylene, trichloromethane, chloroform, 1,1-dichloroethane, 1,1-dichloroethylene, 1,1,1-trichloroethane, toluene, 1,2-dichloroethane, benzene, o-xylene, ethylbenzene, vinyl chloride, carbon tetrachloride, chlorobenzene, p-dichlorobenzene, and naphthalene.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/340,561, filed Dec. 13, 2001, entitled “Halogenated Volatile Organic Compound Screening and Measurement” and U.S. Provisional Application No. 60/405,638; filed Aug. 23, 2002 entitled “System To Selectively Detect The Presence Of Chemical Warfare Agents”, both hereby incorporated by reference.
ACKNOWLEDGMENT OF GOVERNMENT SUPPORT
[0002] This invention was made with federal government support under Cooperative Agreement Nos. DE-FC26-98FT40322 awarded by the U.S. Department of Energy. The federal government may have certain rights in this invention.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60340561 |
Dec 2001 |
US |
|
60405638 |
Aug 2002 |
US |