Claims
- 1. A gas chromatography system for separating components of an analyte mixture, said gas chromatography system comprising;
an inlet system for providing a sample of the analyte mixture entrained on a stream of a carrier gas; a first column fluidly coupled to said inlet system, said first column receiving said sample from said inlet system and causing at least partial separation of the components; a second column fluidly coupled to said first column along a column junction point, said second column receiving said components eluting from said first column, said second column causing further separation of the components; an ensemble detector operably coupled to said second column, said ensemble detector sensing said components eluting from said second column, said ensemble detector outputting a first signal; a ballast chamber containing a pressurized fluid; a pressure control device fluidly coupled to said ballast chamber, said pressure control device maintaining a supply of said pressurized fluid in said ballast chamber; a valve member system operably coupled between said column junction point and said ballast chamber, said valve member system being selectively opened to define a fluid path between said column junction point and ballast chamber in response to a control signal to supply a fluid pressure pulse between said first column and said second column, said fluid pressure pulse being sufficient to generally stop fluid flow through said first column for a predetermined amount of time; and a controller outputting said control signal.
- 2. The gas chromatography system according to claim 1, further comprising:
a column junction point detector operably coupled to said column junction point, said column junction point detector sensing said components eluting from said first column, said column junction point detector outputting a second signal.
- 3. The gas chromatography system according to claim 2 wherein said controller comprises:
a central processing unit operably receiving said second signal and calculating an optimal pulse initiation time in response to said second signal, said central processing unit outputting said control signal to said pressure controller at said optimal pulse initiation time to enhance elution separation of a discrete pair of components of the analyte mixture.
- 4. The gas chromatography system according to claim 1 wherein said ensemble detector is a mass-spectrometer.
- 5. The gas chromatography system according to claim 2 wherein said column junction point detector is a flame-ionization detector.
- 6. The gas chromatography system according to claim 2 wherein said column junction point detector is a thermal-conductivity detector.
- 7. The gas chromatography system according to claim 2 wherein said column junction point detector is a photo-ionization detector.
- 8. The gas chromatography system according to claim 1 wherein said valve member system comprises:
a solenoid valve operably coupled to said controller for receiving said control signal and outputting a triggering signal; a low-dead-volume valve operably coupled to said solenoid valve, said low-dead-volume valve being opened in response to said triggering signal.
- 9. A gas chromatography system for separating components of an analyte mixture, said gas chromatography system comprising;
an inlet system for providing a sample of the analyte mixture entrained on a stream of atmospheric air; a first column fluidly coupled to said inlet system, said first column receiving said sample from said inlet system and causing at least partial separation of the components; a second column fluidly coupled to said first column along a column junction point, said second column receiving said components eluting from said first column, said second column causing further separation of the components; an ensemble detector operably coupled to said second column, said ensemble detector sensing said components eluting from said second column, said ensemble detector outputting a first signal; a valve member system operably coupled between said column junction point and an atmospheric pressure air source, said valve member system being selectively opened to define a fluid path between said column junction point and atmospheric pressure air source in response to a control signal to generally equalize a pressure between said column junction point and said inlet system to generally stop fluid flow through said first column for a predetermined amount of time; and a controller outputting said control signal.
- 10. The gas chromatography system according to claim 9, wherein said atmospheric pressure air source is said inlet system, whereby said valve member system is operable to fluidly couple said column junction point and said inlet system to generally equalize said pressure between said column junction point and said inlet system to generally stop fluid flow through said first column for said predetermined amount of time.
- 11. The gas chromatography system according to claim 9 wherein said controller comprises:
a central processing unit operable to control said valve member system to enhance elution separation of a discrete pair of components of the analyte mixture.
- 12. The gas chromatography system according to claim 9 wherein said ensemble detector is a mass-spectrometer.
- 13. The gas chromatography system according to claim 9 wherein said ensemble detector is a surface-acoustic-wave detector.
- 14. The gas chromatography system according to claim 9, further comprising:
a vacuum pump fluidly coupled downstream of said second column, said vacuum pump operable to urge said sample through said first column and said second column.
- 15. The gas chromatography system according to claim 14, further comprising:
a valve operably coupled to said vacuum pump for controlling an amount of vacuum in said first column and said second column.
- 16. The gas chromatography system according to claim 9 wherein said valve member system comprises:
a solenoid valve operably coupled to said controller for receiving said control signal and outputting a triggering signal; a low-dead-volume valve operably coupled to said solenoid valve, said low-dead-volume valve being opened in response to said triggering signal.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. Pat. application Ser. No. 10/055,022 filed on Jan. 22, 2002, which is a continuation-in-part of U.S. patent application Ser. No. 10/016,798 filed on Dec. 10, 2001. The disclosures of the above applications are incorporated herein by reference.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
10055798 |
Jan 2002 |
US |
Child |
10154409 |
May 2002 |
US |
Parent |
10016798 |
Dec 2001 |
US |
Child |
10055798 |
Jan 2002 |
US |