Claims
- 1. An analysis system comprising:
- volatilization chamber means adapted to volatilize a sample supplied thereto;
- mass spectrometer means to which said volatilized sample is applied for generating therefrom a single ion beam and thereafter separate said single ion beam into a plurality of ion beams simultaneously focused at a common focal plane;
- detection means for converting said separate ion beams into electrical signals in response to a Read signal;
- output means for receiving said electrical signals; and
- system control means for generating said Read signals as a function of the current of said single ion beam.
- 2. The system as described in claim 1 wherein said detection means include means for converting said ion beams into images and means responsive to said Read signal for converting said images into electrical signals.
- 3. The system as described in claim 1 wherein said control means include means for detecting the current level of said single ion beam and for generating said Read signal only after the single ion beam current level drops below a preselected threshold current level.
- 4. The system as described in claim 3 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample, provided by said input means, into said volatilization chamber means, and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said detection means providing a Read Complete signal to said control means upon the completion of the conversion of said ion beams into electrical signals, and said control means further including means for providing said Step signal only if said Read Complete signal is received prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 5. The system as described in claim 4 wherein said detection means include means for converting said ion beams into images and means responsive to said Read signal for converting said images into electrical signals and for providing said Read Complete signal upon the completion of the conversion of said images into the electrical signals.
- 6. An analysis system comprising:
- volatilization chamber means adapted to receive a volatilizable sample for volatilizing said sample therein;
- mass spectrometer means for ionizing a volatilized sample supplied thereto to form a single ion beam, and for dispersing ions in said single ion beam to simultaneously produced separate ion beams focused at a common focal plane;
- coupling means between said volatilization chamber means and said mass spectrometer means for providing a path for the sample volatilized in said volatilization chamber means to said mass spectrometer means;
- ion detection means for converting said ion beams focused at said focal plane into separate images, said ion detection means including images-to-electrical signals converting means, the later including a target exposable by said separate images and including means responsive to a Read signal for converting the images on said target into electrical signals;
- output means for receiving the electrical signals from said converting means; and
- system control means including probe means for detecting the level of the ion current in said single ion beam and for generating said Read signal as a function of said single ion beam current level.
- 7. The system as described in claim 6 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample provided in said input means into said volatilization chamber means and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said converting means providing a Read Complete signal to said control means upon the completion of the conversion of said images into electrical signals and said control means further including means for providing said Step signal to said input means only if said Read Complete signal is received by said control means prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 8. The system as described in claim 7 wherein said control means include means for indicating a fail condition whenever at the end of fn minutes from the time said Transfer signal has been received either the single ion beam current level is not less than a preselected threshold level or the Read Complete signal has not been received from said converting means.
- 9. The system as described in claim 7 wherein said system further includes a source of flushing gas and said control means include means for controlling the flow of the flushing gas from said source to said volatilizable chamber means for a preselected period after said Transfer signal is received, in order to flush the volatilized sample in said volatilization chamber means to said mass spectrometer means through said coupling means.
- 10. The system as described in claim 6 wherein said coupling means includes a first flow control valve and said control means includes means for controlling the flow rate of said volatilized sample from said volatilization chamber to said mass spectrometer means through said first flow control valve as a function of the single ion beam current level, definable as I.sub.B, and a preselected reference current level, definable as I.sub.P, where I.sub.P represents an optimal maximum desirable ion beam current level.
- 11. The system as described in claim 10 wherein said coupling means further includes a second flow control valve, and said control means include means for comparing said ion beam current level I.sub.B with a reference current level, definable as I.sub.MAX, where I.sub.MAX > I.sub.P, and for switching said second valve for a preselected period to a vent position in which volatilized sample is vented through said second valve and inhibited from flowing to said mass spectrometer means whenever I.sub.B .gtoreq. I.sub.MAX.
- 12. The system as described in claim 11 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample provided in said input means into said volatilization chamber means and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said converting means providing a Read Complete signal to said control means upon the completion of the conversion of said images into electrical signals and said control means further including means for providing said Step signal to said input means only if said Read Complete signal is received by said control means prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 13. The system as described in claim 12 wherein said control means include means for indicating a fail condition whenever at the end of fn minutes from the time said Transfer signal has been received either the single ion beam current level is not less than a preselected threshold level or the Read Complete signal has not been received from said converting means.
- 14. The system as described in claim 13 wherein said ion detection means include microchannel electron multiplier means, and power means coupled thereto for converting said separate ion beams at said focal plane into separate electron beams, and means exposable to said electron beams for producing images corresponding thereto, said control means include means for activating the means in said control means which indicate the fail condition whenever said second value is switched to said vent position x times after a Transfer is received by said control means and before a Step signal is supplied thereby, x being an integer not less than one.
- 15. The system as described in claim 14 including means in said control means for deactivating said power means coupled to said microchannel electron multiplier means when said second valve is switched to said vent position.
- 16. The system as described in claim 6 wherein said control means include means for generating said Read signal when said single ion beam current level, definable as I.sub.B, falls below a preselected threshold current level, definable as I.sub.T after I.sub.B has prior thereto exceeded I.sub.T.
- 17. The system as described in claim 16 wherein said coupling means includes a first flow control valve and said control means includes means for controlling the flow rate of said volatilized sample from said volatilization chamber to said mass spectrometer means through said first flow control valve as a function of the single ion beam current level, definable as I.sub.B, and a preselected reference current level, definable as I.sub.P, where I.sub.P represents an optimal maximum desirable ion beam current level.
- 18. The system as described in claim 17 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample provided in said input means into said volatilization chamber means and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said converting means providing a Read Complete signal to said control means upon the completion of the conversion of said images into electrical signals and said control means further including means for providing said Step signal to said input means only if said Read Complete signal is received by said control means prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 19. The system as described in claim 18 wherein said control means include means for indicating a fail condition whenever at the end of fn minutes from the time said Transfer signal has been received either I.sub.B is not less than I.sub.I or the Read Complete signal has not been received from said converting means.
- 20. The system as described in claim 19 wherein said ion detection means include microchannel electron multiplier means, and power means coupled thereto for converting said separate ion beams at said focal plane into separate electron beams, and means exposable to said electron beams for producing images corresponding thereto, said control means include means for activating the means in said control means which indicate the fail condition whenever said second valve is switched to said vent position x times after a Transfer is received by said control means and before a Step signal is supplied thereby, x being an integer not less than one.
- 21. The system as described in claim 20 including means in said control means for deactivating said power means coupled to said microchannel electron multiplier means when said second valve is switched to said vent position.
- 22. The system as described in claim 6 wherein said converting means comprise vidicon means including said target which is exposed by said images and including means responsive to said Read signal for converting said images into electrical signals.
- 23. The system as described in claim 22 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample provided in said input means into said volatilization chamber means and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said vidicon means providing a Read Complete signal to said control means upon the completion of the conversion of said images into electrical signals and said control means further including means for providing said Step signal to said input means only if said Read Complete signal is received by said control means prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 24. The system as described in claim 23 wherein said system further includes a source of flushing gas and said control means include means for controlling the flow of the flushing gas from said source to said volatilizable chamber means for a preselected period after said Transfer signal is received, in order to flush the volatilized sample in said volatilization chamber means to said mass spectrometer means through said coupling means.
- 25. The system as described in claim 24 wherein said coupling means includes a first flow control valve and said control means includes means for controlling the flow rate of said volatilized sample from said volatilization chamber to said mass spectrometer means through said first flow control valve as a function of the single ion beam current level, definable as I.sub.B, and a preselected reference current level, definable as I.sub.P, where I.sub.P represents an optimal maximum desirable ion beam current level.
- 26. The system as described in claim 25 wherein said control means include means for indicating a fail condition whenever at the end of fn minutes from the time said Transfer signal has been received either the single ion beam current level is not less than a preselected threshold level or the Read Complete signal has not been received from said converting means.
- 27. The system as described in claim 26 wherein said coupling means further includes a second flow control valve, and said control means include means for comparing said ion beam current level I.sub.B with a reference current level, definable as I.sub.MAX, where I.sub.MAX < I.sub.P, and for switching said second valve for a preselected period to a vent position in which volatilized sample is vented through said second valve and inhibited from flowing to said mass spectrometer means whenever I.sub.B .gtoreq. I.sub.MAX.
- 28. The system as described in claim 27 wherein said ion detection means include microchannel electron multiplier means, and power means coupled thereto for converting said separate ion beams at said focal plane into separate electron beams, and means exposable to said electron beams for producing images corresponding thereto, said control means include means for activating the means in said control means which indicate the fail condition whenever said second valve is switched to said vent position x times after a Transfer is received by said control means and before a Step signal is supplied thereby, x being an integer not less than one.
- 29. The system as described in claim 28 including means in said control means for deactivating said power means coupled to said microchannel electron multiplier means when said second valve is switched to said vent position.
- 30. The system as described in claim 22 wherein said control means include means for generating said Read signal when said single ion beam current level, definable as I.sub.B, falls below a preselected threshold current level, definable as I.sub.T after I.sub.B has prior thereto exceeded I.sub.T.
- 31. The system as described in claim 30 further including input means for providing a succession of volatilizable samples, a volatilizable sample being provided every n minutes, said input means including transfer means responsive to a Step signal from said control means for transferring a volatilizable sample provided in said input means into said volatilization chamber means and for supplying a Transfer signal to said control means upon the completion of the transfer of a volatilizable sample to said volatilization chamber means, said control means including means responsive to said Transfer signal for activating said volatilization chamber means to volatilize the sample last transferred thereto from said input means, said vidicon means providing a Read Complete signal to said control means upon the completion of the conversion of said images into electrical signals and said control means further including means for providing said Step signal to said input means only if said Read Complete signal is received by said control means prior to the end of a period of mn minutes from the time said Transfer signal has been received, where m is an integer other than zero and not greater than an integer f.
- 32. The system as described in claim 31 wherein said system further includes a source of flushing gas and said control means include means for controlling the flow of the flushing gas from said source to said volatilizable chamber means for a preselected period after said Transfer signal is received, in order to flush the volatilized sample in said volatilization chamber means to said mass spectrometer means through said coupling means.
- 33. The system as described in claim 32 wherein said coupling means includes a first flow control valve and said control means includes means for controlling the flow rate of said volatilized sample from said volatilization chamber to said mass spectrometer means through said first flow control valve as a function of the single ion beam current level, definable as I.sub.B, and a preselected reference current level, definable as I.sub.P, where I.sub.P represents an optimal maximum desirable ion beam current level.
- 34. The system as described in claim 33 wherein said control means include means for indicating a fail condition whenever at the end of fn minutes from the time said Transfer signals has been received either I.sub.B is not less than I.sub.T or the Read Complete signal has not been received from said converting means.
- 35. The system as described in claim 34 wherein said coupling means further includes a second flow control valve, and said control means include means for comparing said ion beam current level I.sub.B with a reference current level, definable as I.sub.MAX, where I.sub.MAX > I.sub.P, and for switching said second valve for a preselected period to a vent position in which volatilized sample is vented through said second valve and inhibited from flowing to said mass spectrometer means whenever I.sub.B .gtoreq. I.sub.MAX.
- 36. The system as described in claim 35 wherein said ion detection means include microchannel electron multiplier means, and power means coupled thereto for converting said separate ion beams at said focal plane into separate electron beams, and means exposable to said electron beams for producing images corresponding thereto, said control means include means for activating the means in said control means which indicate the fail condition whenever said second valve is switched to said vent position x times after a Transfer is received by said control means and before a Step signal is supplied thereby, x being an integer not less than one.
- 37. The system as described in claim 35 including means in said control means for deactivating said power means coupled to said microchannel electron multiplier means when said second valve is switched to said vent position.
ORIGIN OF THE INVENTION
The invention described herein was made in part in the performance of work under a NASA contract and is subject to the provisions of Section 305 of the National Aeronautics and Space Act of 1958, Public Law 85-568 (72 Stat. 435; 42 USC 2457).
US Referenced Citations (2)