Claims
- 1. A laser-induced plasma spectroscopy apparatus for the analysis of the composition of liquid and molten materials comprising:
a laser emitting pulses at given repetition rate and along a given beam path; an optical means to direct the laser pulses to a location at a surface of the liquid to generate a plasma that emits elemental radiation that corresponds to at least one compositional element of the liquid; a probe structure, which detects the emitted elemental radiation along a detection path, said probe structure including an optical window, a spectrometer for analyzing the spectra of the emitted radiation, a detector to detect the light diffracted by the spectrometer, a data processor which determines a concentration of the predetermined element; a gas flow generator to substantially prevent liquid drops, which are ejected from the liquid in response to the incident laser pulses, from accumulating on said optical window of said probe structure and along the laser beam path and the detection path; and a flow cell assembly which establishes a substantially steady flow of the liquid past the said location at the surface of the liquid, the flowing liquid at this location being truly representative of the liquid bulk flown into the cell, said cell assembly including a controller to control the liquid surface level and the flow speed.
- 2. An apparatus according to claim 1, wherein the controller provides:
a surface liquid level substantially constant a flow speed sufficiently high for a given repetition rate so the laser pulses always encounter a liquid surface substantially unperturbed by waves and unaffected by bubbles produced by the laser interaction.
- 3. An apparatus according to claim 2, wherein the controller comprises a pump to circulate the liquid in a closed loop.
- 4. An apparatus according to claim 2, wherein the controller includes a liquid vessel set above the probed liquid surface in the cell assembly and filled at a substantially constant level.
- 5. An apparatus according to claim 2 that includes further a liquid mixing means.
- 6. An apparatus according to claim 5 wherein the liquid mixing means is a perforated plate.
- 7. An apparatus according to claim 1, wherein the cell assembly is configured such a way as the liquid overflows from all sides.
- 8. An apparatus according to claim 7 that includes further a liquid mixing means.
- 9. An apparatus according to claim 8 wherein the liquid mixing means is a perforated plate.
- 10. An apparatus according to claim 1, wherein said probe structure further comprises an optical structure configured so that the incident laser beam and the light collected from the plasma are substantially collinear.
- 11. An apparatus according to claim 1, further comprising fiber optic means to convey the elemental radiation emitted by the plasma to said spectrometer of said probe structure.
- 12. An apparatus according to claim 1, wherein the laser generates multiple pulses at the same wavelength separated by a short time interval, to produce and excite the plasma at the surface of the liquid.
- 13. An apparatus according to claim 1, wherein the laser generates multiple pulses at different wavelengths simultaneously or separated by a short time interval, to produce and excite the plasma at the surface of the liquid.
- 14. An apparatus according to claim 1, wherein said probe structure comprises an intensified photodiode array detector.
- 15. An apparatus according to claim 1, wherein said probe structure comprises a CCD camera.
- 16. An apparatus according to claim 1, wherein said probe structure comprises an intensified CCD camera.
- 17. An apparatus according to claim 1, wherein said probe structure comprises a plurality of photomultipliers positioned to detect both (i) emissions from the predetermined element and (ii) background radiation.
- 18. An apparatus according to claim 1, wherein the determination of concentration of a predetermined element is made by comparison with a predetermined calibration curve.
- 19. A method of laser-induced plasma spectroscopy analysis for liquid an molten materials, comprising the steps of:
directing laser pulses at a given repetition rate and along a given beam path onto a location at the liquid surface to generate a plasma that emits elemental radiation that corresponds to at least one compositional element of the liquid; detecting the emitted elemental radiation along a detection path and analyzing its spectra with a spectrometer; processing the spectra to determine a concentration of the predetermined element; blowing gas above the liquid surface to substantially prevent liquid drops, which are ejected from the liquid in response to the incident laser pulses, from accumulating anywhere along the laser beam path and the detection path; and establishing a substantially steady flow of liquid past the said location at the liquid surface, the flowing liquid at this location being truly representative of the bulk of the liquid to analyze; and controlling the liquid surface level and the flow speed.
- 20. A method according to claim 19, wherein the step of controlling consists in establishing:
a liquid level substantially constant a sufficient flow speed with respect to said repetition rate so the laser pulses always encounter a liquid surface substantially unperturbed by waves and unaffected by bubbles produced by the laser interaction.
- 21. A method according to claim 20 wherein controlling is performed with a pump that circulates the liquid in a closed loop.
- 22. A method according to claim 20 wherein controlling is performed with a liquid vessel set above the probed liquid surface and maintained at a substantially constant level.
- 23. A method according to claim 19 wherein the step of establishing a flowing liquid at the said location substantially representative of the liquid bulk is obtained by mixing the liquid.
- 24. A method according to claim 19 wherein the liquid after passing through said location at the liquid surface flows in all directions before being discharged.
- 25. A method according to claim 19 wherein said laser beam path and detection path are substantially superimposed.
- 26. A method according to claim 19, further comprising the step of conveying the elemental radiation emitted by the plasma to the spectrometer in said detecting step using optical fiber optics.
- 27. A method according to claim 19 wherein the laser generates multiple pulses at the same wavelength separated by a short time interval to produce and excite the plasma at the surface of the liquid.
- 28. A method according to claim 19 wherein the laser generates multiple pulses at different wavelengths simultaneously or separated by a short time interval to produce and excite the plasma at the surface of the liquid.
- 29. A method according to claim 19, wherein said detecting step includes using a photodiode array detector.
- 30. A method according to claim 19, wherein said detecting step includes using a CCD camera.
- 31. A method according to claim 19, wherein said detecting step includes using an intensified CCD camera.
- 32. A method according to claim 19, wherein said detecting step includes using a plurality of photomultipliers positioned to detect both (i) emissions from the predetermined element and (ii) background radiation.
- 33. A method according to claim 19, wherein the step of processing the spectra to determine a concentration of the predetermined element is made by comparison with a predetermined calibration curve.
RELATED APPLICATION
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 091778,723, filed Feb. 8, 2001.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09778723 |
Feb 2001 |
US |
Child |
10071529 |
Feb 2002 |
US |