Claims
- 1. An apparatus for optically measuring concentrations of components, comprising:
- a cell for containing a sample therein;
- means for presenting different optical path lengths to light transmitted through said cell;
- a light irradiator for emitting light of a selected wavelength to the cell;
- means for changing the wavelength of light emitted by said light irradiator;
- a photodetector for receiving light that has been transmitted through the cell to detect a quantity of transmitted light; and
- an arithmetic unit for calculating and storing, for each wavelength, an optimum optical path length of said different optical path lengths at which a peak value of quantity-of-light measuring sensitivity with respect to the quantity of transmitted light detected by the photodetector occur, for calculating a concentration of a component contained in the sample based on values of the quantity of transmitted light at the optimum optical path length, the values having been stored for each wavelength emitted by said light irradiator, and for outputting calculation results.
- 2. The apparatus for optically measuring concentrations of components according to claim 1, wherein said cell simultaneously presents continuously or stepwise different optical path lengths.
- 3. The apparatus for optically measuring concentrations of components according to claim 2, wherein different portions on said photodetector correspond to different optical path lengths simultaneously presented by said cell.
- 4. The apparatus for optically measuring concentrations of components according to claim 3, wherein a slope of an input face of said photodetector is parallel to a slope of an output face of said cell, such that a distance traversed by the transmitted light from said cell to said photodetector remains constant for light being transmitted through different optical path lengths internally in said cell.
- 5. The apparatus for optically measuring concentrations if components according to claim 1, wherein said cell has variable optical path length.
- 6. The apparatus for optically measuring concentrations of components according to any one of claims 1, 2 or 5, wherein said light irradiator is a laser.
- 7. The apparatus for optically measuring concentrations of components according to claim 6, wherein said laser is a variable-wavelength laser.
- 8. The apparatus for optically measuring concentrations of components according to any of claims 1, 2 or 5, wherein said light irradiator comprises a variable-wavelength laser, and a measuring system for enlarging and collimating a laser beam output from the variable-wavelength laser.
- 9. The apparatus for optically measuring concentrations of components according to any one of claims 1, 2 or 5, wherein said light irradiator comprises a rotatable mirror for, upon reception of a laser beam, changing a direction in which the laser beam is reflected, and a measuring system for directing the reflected laser beam toward a specified direction.
- 10. The apparatus for optically measuring concentrations of components according to any one of claims 1, 2 or 5 wherein said light irradiator comprises a light emitter for emitting light including different wavelengths, and a measuring system for collimating the emitted light and including a filter means for allowing light only of a selected wavelength out of the light including different wavelengths to be incident upon the cell.
- 11. The apparatus for optically measuring concentrations of components according to any one of claims 1, 2 or 5, further comprising a quantity-of-light detection means for detecting quantity of light when said photodetector has received selected light.
- 12. The apparatus for optically measuring concentrations of components according to any one of claims 1, 2 or 5, wherein said photodetector comprises a spectrometer.
- 13. A method for optically measuring concentrations of components, comprising the steps of:
- selecting a wavelength to be emitted;
- emitting light of the wavelength selected to a cell which contains a sample;
- presenting different optical path length over which light is transmitted through said cell;
- detecting a quantity of transmitted light for each of said different optical path lengths when a photodetector has received light transmitted through the cell;
- repeating the above steps for a plurality of wavelengths;
- calculating and storing for each wavelength of said plurality of wavelengths an optimum optical path length at which a peak value of quantity-of-light measuring sensitivity with respect to the quantity of transmitted light detected by the photodetector takes place; and
- calculating concentration of a component contained in the sample based on values of the quantity of transmitted light at the optimum optical path length at peak positions for each of said plurality of wavelengths, and outputting calculation results.
- 14. A method for optically measuring concentrations of components, comprising the steps of:
- (i) measuring quantity of transmitted light of a wavelength .lambda. that has been emitted from a light source and transmitted through a cell which does not contain a sample, and calculating a quantity of incident light I.sub.o by the following equation:
- .sub.t =I.sub.o t.gamma.
- wherein
- I.sub.o =quantity of light incident upon the cell,
- I.sub.t =quantity of light transmitted through the cell,
- .gamma.=e x p (-.SIGMA..alpha..sub.i C.sub.i L-.alpha..sub.c l)
- l=l.sub.1 +l.sub.2
- t:t.sub.1 t.sub.2 t.sub.3 t.sub.4 =(n.sub.o, n.sub.c n)
- t.sub.i =transmissivity at i interface,
- .alpha..sub.i =extinction coefficient of i component (a function of wavelength),
- .alpha..sub.c =extinction coefficient of the cell (a function of wavelength),
- l.sub.1, l.sub.2 =wall thicknesses on both sides of the cell, and
- n, n.sub.o, n.sub.c =refractive indexes of sample, air, and cell, respectively;
- (ii) calculating a transmissivity t.sub.s that depends on a refractive index of the light of wavelength .lambda. in a reference concentration sample;
- (iii) measuring a quantity of transmitted light I.sub.to of the light of wavelength .lambda. when an optical path length L within the cell is set to a reference optical path length L.sub.0, in a state that the cell contains the reference concentration sample;
- (iv) calculating a value .gamma..sub.o of .gamma. or light with the reference optical path length L.sub.o and the wavelength .lambda. by the following equation:
- I.sub.t =I.sub.o t.gamma.
- (v) calculating an optical path length ratio k.sub.p corresponding to an optical path length L.sub.p at which quantity-of-light measuring sensitivity S reaches a maximum with the wavelength .lambda., by the following equation:
- k=-1/log.sub.e (.gamma..sub.o.sup..delta.)
- where
- .delta.=e x p (.alpha..sub.c l)
- the quantity-of-light measuring sensitivity S being defined by the following equation:
- S=d I.sub.t /dC.sub.i
- where
- S=quantity-of-light measuring sensitivity,
- dI.sub.t =variation of quantity of transmitted light I.sub.t based on variation dC.sub.i of i component concentration, and
- dC.sub.i =variation of i component concentration,
- (vi) calculating an optimum optical path length L.sub.p.lambda. at which the quantity-of-light measuring sensitivity S reaches a maximum with the wavelength .lambda., by the following equation:
- k=L/L.sub.o
- repeating the above steps a plurality of times with the wavelength .lambda. varied, to calculate values of quantity of transmitted light at positions of optimum optical path lengths L.sub.p.lambda. corresponding to the varied wavelengths .lambda., wherein concentration of a component contained in the sample is calculated by multivariate analysis based on the calculated values of quantity of transmitted light.
- 15. A method for optically measuring concentrations of components, comprising the steps of:
- (i) measuring quantity of transmitted light of a wavelength .lambda. that has been emitted from a light source and transmitted through a cell wherein a sample is not contained and calculating a quantity of incident light I.sub.o by the following equation:
- I.sub.t =I.sub.o t.gamma.
- wherein
- I.sub.o =quantity of light incident upon the cell,
- I.sub.t =quantity of light transmitted through the cell,
- .gamma.=e x p (-.SIGMA..alpha..sub.i C.sub.i L-.alpha..sub.c l)
- l=l.sub.1 +l.sub.2
- t:t.sub.1 t.sub.2 t.sub.3 t.sub.4 =(n.sub.o, n.sub.c n)
- t.sub.i =transmissivity at i interface,
- .alpha..sub.i =extinction coefficient of i component (a function of wavelength),
- .alpha..sub.c =extinction coefficient of the cell (a function of wavelength),
- C.sub.i =concentration of i component in the sample,
- l.sub.1, l.sub.2 =wall thicknesses on both sides of the cell, and
- n, n.sub.o, n.sub.c =refractive indexes of sample, air, and cell, respectively,
- (ii) calculating a transmissivity t.sub.s that depends on a refractive index of the light of wavelength .lambda. in a reference concentration sample,
- (iii) measuring a quantity of transmitted light I.sub.tL of the light of wavelength .lambda. when an optical path length L within the cell containing the reference concentration sample,
- (iv) calculating absorbances to the light of wavelength .lambda. at portions of the cell corresponding to different optical path lengths L, by the following equation:
- log.sub.e (I.sub.o /I.sub.t) -log.sub.e (1/t)-.alpha..sub.c 1=A.sub.c
- where
- A.sub.c =.SIGMA.,.alpha..sub.i C.sub.i L
- (v) determining an absorbance A.sub.c.lambda.p equal to log.sub.e e from among the absorbances A.sub.c.lambda. to the light of wavelength .lambda., and
- (vi) storing an optical path length L.sub.p corresponding to the absorbance A.sub.c.lambda.p to the light of wavelength .lambda.
- repeating the above steps a plurality of times with the wavelength .lambda. varied, to calculate values of quantity of transmitted light at positions of optimum optical path lengths L.sub.p.lambda. corresponding to the varied wavelengths .lambda., wherein concentration of a component contained in the sample is calculated by multivariate analysis based on the calculated values of quantity of transmitted light.
- 16. An apparatus for optically measuring concentrations of components comprising:
- a light irradiator for emitting light of a selected wavelength towards a cell containing a sample therein, where the light is collimated into a plurality of light beams by a light collimating means, before entering said cell;
- wherein said cell presents simultaneous multiple optical path lengths where each one of the collimated light beams simultaneously traverses a different one of the simultaneous multiple optical path lengths;
- means for changing the wavelength of light emitted by said light irradiator;
- a photodetector for receiving said light beams which have transmitted through said cell to detect a quantity of the transmitted light beams;
- an arithmetic unit for calculating and storing, for each wavelength of the emitted light, an optimum optical path length, based on said simultaneous multiple optical path lengths, at which a peak value of quantity-of-light sensitivity with respect to the quantity of transmitted light beams at the optimum optical path length, the values having been stored for each wavelength omitted by said light irradiator, and for outputting calculation results.
Priority Claims (1)
Number |
Date |
Country |
Kind |
5-174156 |
Jul 1993 |
JPX |
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Parent Case Info
This application is continuation, of application Ser. No. 08/272,564 filed on Jul. 11, 1994, now abandoned.
US Referenced Citations (9)
Foreign Referenced Citations (4)
Number |
Date |
Country |
63-144237 |
Jun 1988 |
JPX |
63-165736 |
Jul 1988 |
JPX |
63-273043 |
Nov 1988 |
JPX |
2193313 |
Feb 1988 |
GBX |
Non-Patent Literature Citations (3)
Entry |
Schmidt et al "Absorption Cell With Variable Path Length" IBM Technical Disclosrue Bulletin, vol. 26, No. 9, Feb. 1994, pp. 4683-4684. |
"A Variable-Pathlength Optical Cell with No Moving Parts" By R. J. Fiddik et al. Journal of Physics E. Scientific Instruments, vol. 21, 1988 pp. 1033-1037. |
"Lens and Wedge Absorption Cells for FT-IR Spectroscopy" By T. Hirshfeld Applied Spectroscopy, vol. 39 No. 3, 1985, pp. 426-430. |
Continuations (1)
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Number |
Date |
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Parent |
272564 |
Jul 1994 |
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