Claims
- 1. A particle counter, comprising:
- a laser crystal of chromium colquiriite;
- a pump source optically coupled to drive said laser crystal to produce a lasing wavelength of light;
- first and second spaced apart mirrors defining a laser resonant cavity, with said laser crystal disposed in said cavity, said first and second mirrors each having a highly reflective surface, such that the mirrors confine substantially all of the light produced by said laser crystal therebetween;
- view volume means within the laser resonant cavity in optical communication with said laser crystal, for introducing particles into said light path to produce scattered light; and
- a detector to sense light scattered from said view volume means and produce signals proportional thereto,
- the particle counter further having at least one harmonic generator means disposed in said light path for converting the lasing wavelength to a harmonic wavelength of the lasing wavelength and having a wavelength selective means associated with the harmonic generator for introducing said harmonic wavelength into said view volume having a predetermined wavelength.
- 2. The particle counter as recited in claim 1 wherein said first mirror is highly reflective of light produced by the laser crystal but transmissive of light from said pump source, the light from said pump source being optically coupled to the laser crystal through said first mirror, with beam shaping optics disposed between said dumd source and said first mirror.
- 3. The particle counter as recited in claim 1 wherein said view volume has a longitudinal axis extending transverse to said light path, and said detector is positioned to sense light scattered from the view volume.
- 4. A particle counter, comprising:
- a laser chromium (Cr.sup.3+) doped crystal of the formula Cr.sup.3+ :XYZF.sub.6 wherein X is selected from the group Li.sup.+, Na.sup.+, K.sup.+ and Rb.sup.+, Y is selected from the group Ca.sup.2+ Sr.sup.2+, Ba.sup.2+, Cd.sup.2+ and Mg.sup.2+, and Z is selected from the group Al.sup.3+, Ga.sup.3+ and Sc.sup.3+ ;
- a pump source optically coupled to drive said laser crystal to produce coherent light;
- first and second spaced apart mirrors defining a laser resonant cavity, with said laser crystal disposed in said cavity, said first and second mirrors each having a highly reflective surface, such that the mirrors confine substantially all of the light produced by said laser crystal therebetween;
- view volume means within the laser resonant cavity in optical communication with said laser crystal, for introducing particles into said light path to produce scattered light; and
- a detector to sense light scattered from said view volume means and produce signals proportional thereto,
- the particle counter further having at least one harmonic generator means disposed in said light path for converting the wavelength of the coherent light to a harmonic wavelength and having a wavelength selective means associated with the harmonic generator for introducing said harmonic wavelength into said view volume.
- 5. The particle counter as recited in claim 4 wherein said first mirror is highly reflective of light produced by the laser crystal but transmissive of light from said pump source, the light from said pump source being optically coupled to the laser crystal through said first mirror, with beam shaping optics disposed between said pump source and said first mirror.
- 6. The particle counter as recited in claim 4 wherein said view volume has a longitudinal axis extending transverse to said light path, and said detector is positioned to sense light scattered from the view volume.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. patent application Ser. No. 08/614,814, filed Mar. 8, 1996, now U.S. Pat. No. 5,642,193, issued Jun. 24, 1997.
US Referenced Citations (16)
Non-Patent Literature Citations (2)
Entry |
Burton G. Schuster et al., "Detection and Sizing of Small Particles in an Open Cavity Gas Laser", Applied Optics, vol. 11, No. 7, pp. 1515-1520 (Jul. 1972). |
Robert G. Knollenberg et al., "Open Cavity Laser `Active` Scattering Particle Spectrometry from 0.05 to 5 Microns", Fine Particles--Aerosol Generation, Measurement, Sampling, and Analysis, Academic Press, pp. 669-696 (May 1975). |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
614814 |
Mar 1996 |
|