Nova Patents
EP2336747A2

Component concentration measuring device

Abstract

An object of the present invention is to provide a noninvasive constituent concentration measuring apparatus and constituent concentration measuring apparatus controlling method, in which accurate measurement can be performed by superimposing two photoacoustic signals having the same frequency and reverse phases to nullify the effect from the other constituent occupying large part of the object to be measured. The constituent concentration measuring apparatus according to the invention includes light generating means for generating two light beams having different wavelengths, modulation means for electrically intensity-modulating each of the two light beams having different wavelengths using signals having the same frequency and reverse phases, light outgoing means for outputting the two intensity-modulated light beams having different wavelengths toward a test subject, and acoustic wave detection means for detecting an acoustic wave generated in the test subject by the outputted light.

EP2336747A2, drawing sheet 1
Sheet 1 of 80

Term

Term ended

Projected expiry passed 2 May 2025, 1.4 years ago.

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62 claims: 40 independent, 22 dependent

  1. 1
    A constituent concentration measuring apparatus characterized by comprising:light generating means for generating two light beams having different wavelengths;light modulation means for electrically intensity modulating each of the two light beams having the mutually different wavelengths using signals having the same frequency and reverse phases;light outgoing means for outputting the two intensity-modulated light beams having the mutually different wavelengths toward an object to be measured or a test subject;and acoustic wave detection means for detecting an acoustic wave emitted from the object to be measured or the test subject by the outputted light.
  2. 5
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, further comprising an acoustic wave generator which outputs an acoustic wave, the constituent concentration measuring apparatus characterized in that said acoustic wave detection means detects the acoustic wave emitted from the object to be measured or the test subject as well as said acoustic wave transmitted from said acoustic wave generator through the object to be measured or the test subject.
  3. 8
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light generating means sets the light wavelengths of said two light beams to two light wavelengths where an absorption difference exhibited by aliquid constituent, especially a blood constituent, set as the measuring object is larger than the absorption difference exhibited by a solvent or other blood constituents.
  4. 9
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light generating means sets one of the light wavelengths of said two light beams to a light wavelength where a constituent or liquid constituent set as the measuring object exhibits characteristic absorption, and said light generating means sets the other light wavelength to a wavelength where the solvent exhibits an equal absorption to that for the first light beam, and especially, the light generating means sets one of the light wavelengths of said two light beams to a light wavelength where a blood constituent set as the measuring object exhibits a characteristic absorption, and the light generating means sets the other light wavelength to a wavelength where water exhibits an equal absorption to that for the first light beam.
  5. 11
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized by further comprising a coupler between said light outgoing means and said object to be measured or the test subject, the coupler combining the outgoing light beams.
  6. 12
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized by further comprising rectifying amplification means for detecting an amplitude of the acoustic wave from said acoustic wave detection means, especially a phase sensitive amplifier.
  7. 13
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized by further comprising second light outgoing means for outputting the light toward said test subject, the light being intermittently emitted at intervals which are longer than the repetition period for said same frequency.
  8. 15
    A constituent concentration measuring apparatus as claimed in one claims 13 to 14, characterized in that an interval during which said second light outgoing means emits the light is an interval during which temperature rise of 2°C or less is resulted is generated in said test subject or a light intensity of said second light outgoing means is an intensity by which temperature rise of 2°C or less is resulted in said test subject.
  9. 16
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light outgoing means is fixed to said acoustic wave generator so as to keep the relative position to said acoustic wave generator.
  10. 18
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said acoustic wave generator is placed in proximity of the intensity modulated light beam outputted from said light outgoing means.
  11. 22
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that diameters of the two outgoing light beams from said light outgoing means are substantially equal to each other.
  12. 23
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light modulation means operates at the same frequency as a resonant frequency concerning detection of the acoustic wave generated in said test subject.
  13. 24
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light generating means adjusts relative intensity of said two light beams having the mutually different wavelengths such that pressure of the acoustic wave becomes zero, the acoustic wave being generated by combining said two intensity-modulated light beams having the different wavelengths into a single light beam to irradiate water.
  14. 25
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light generating means and said light modulation means consists of two directly-modulated semiconductor laser light sources driven by rectangular-waveform signals having the same frequency and reverse phases.
  15. 26
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that a blood constituent which is set as the measuring object is glucose or cholesterol.
  16. 27
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized by further comprising enduing means in which at least said light outgoing means and said acoustic wave detection means are arranged in a portion which comes into contact with said test subject, the portion being located inside of an annular portion which is endued surrounding said test subject.
  17. 31
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light generating means generates two light beams having different wavelengths by multiple semiconductor laser devices.
  18. 32
    A constituent concentration measuring apparatus as claimed in one of the preceding claims, characterized in that said light outgoing means includes a beam expander which enlarges the light beam diameter generated by said light generating means.
  19. 33
    A constituent concentration measuring apparatus as claimed in one of claims 27 to 32, characterized in that said enduing means is a ring fitted in a human finger, said light outgoing means being arranged on a dorsal side of said finger, while said acoustic wave detection means is arranged on a palm side of said finger or that the enduing means is a bracelet fitted in a human arm, said light outgoing means being arranged on a palm side of a hand, and said acoustic wave detection means being arranged on a dorsal side of a hand.
  20. 34
    A constituent concentration measuring apparatus controlling method, especially for use with a constituent concentration measuring apparatus according to one of the preceding claims, characterized by sequentially comprising:a light generating procedure in which light generating means generates two' light beams having the mutually different wavelengths;a light modulation procedure in which light modulation means electrically intensity-modulates each of the two light beams having the mutually different wavelengths using signals having the same frequency and reverse phases , the two light beams being generated in the a light generating procedure;a light outgoing procedure in which light outgoing means outputs the two light beams having the mutually different wavelengths to an object to be measured, the two light beams being intensity-modulated in the light modulation procedure;and an acoustic wave detection procedure in which acoustic wave detection means detects an acoustic wave emitted from the object to be measured or a test subject by the light outputted in said light outgoing procedure or generated by the light emitted in said light outgoing procedure.
  21. 38
    A constituent concentration measuring apparatus controlling method as claimed in one of claims 34 to 37, characterized in that said light outgoing procedure and said acoustic wave detection procedure are performed in a container which is filled with an acoustic matching substance having an acoustic impedance substantially equal to that of the object to be measured or of the test subject.
  22. 41
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 40, characterized in that , in said object to be measured, a region irradiated with said intensity modulated light is covered with said acoustic matching substance in either sol or gel form.
  23. 42
    A constituent concentration measuring apparatus controlling method as claimed in one of claims 34 to 41, further comprising an optimum position detection procedure in which acoustic wave generators output acoustic waves from two or more different positions to said object to be measured and acoustic wave detection means detects a position where intensity of said acoustic wave transmitted through said object to be measured becomes a particular value, the constituent concentration measuring apparatus controlling method characterized in that said light outgoing means outputs intensity modulated light to said object to be measured from the position where intensity of said acoustic wave becomes the particular value.
  24. 43
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 42, characterized in that said light generating procedure is a procedure for setting the light wavelengths of said two light beams to two light wavelengths where an absorption difference exhibited by the constituent set as the measuring object is larger than the absorption difference exhibited by a solvent or by other liquid constituents.
  25. 44
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 43, characterized in that said light generating procedure is a procedure for setting one of the light wavelengths of the two light beams to a light wavelength where the constituent set as the measuring object exhibits characteristic absorption, and while the other light wavelength is set to a wavelength where a solvent exhibits an equal absorption to that of the first light wavelength.
  26. 45
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 44, characterized in that the two light beams from the light outgoing means are combined and outputted to the object to be measured.
  27. 46
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 45, further comprising a second light outgoing procedure in which second light outgoing means outputs the light intermittently emitted at intervals which are longer than the repetition period for said same frequency, the constituent concentration measuring apparatus controlling method characterized in that , in said acoustic wave detection procedure, said acoustic wave detection means detects the acoustic wave generated by the light beams outputted in said light outgoing procedure and said second light outgoing procedure.
  28. 48
    A constituent concentration measuring apparatus controlling method as claimed in claims 46 or 47, characterized in that said second light outgoing means emits the light having a wavelength which exhibits a characteristic absorption of hemoglobin in blood.
  29. 49
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 48, characterized in that said second light outgoing means emits the light at intervals during which a temperature rise of 2°C or less is resulted in the test subject orthe second light outgoing means emits light of an intensity by which a temperature rise of 2°C or less is resulted in the test subject.
  30. 51
    A constituent concentration measuring apparatus controlling method as claimed in one of claims 34 to 50, characterized by further comprising an optimum position detection procedure in which acoustic wave generators output acoustic waves from two or more different positions and acoustic wave detection means detects a position where intensity of said acoustic wave transmitted through the object to be measured or the test subject becomes a particular value.
  31. 52
    A constituent concentration measuring apparatus controlling method as claimed in one of claims 34 to 51, characterized in that said light outgoing means outputs the light from the position where intensity of said acoustic wave becomes the particular value.
  32. 53
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 52, characterized in that said light generating procedure is a procedure for setting the light wavelengths of said two light beams to two wavelengths where an absorption difference exhibited by the blood constituent set as the measuring object is larger than the absorption difference exhibited by water or by other blood constituents.
  33. 54
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 24 to 53, characterized in that said light generating procedure is a procedure for setting one of the light wavelengths of said two light beams to a light wavelength where the blood constituent set as the measuring object exhibits characteristic absorption while the other light wavelength is set to a wavelength where water exhibits an equal absorption to that for said one of the light wavelengths.
  34. 55
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 54, characterized in that said detected acoustic wave is further rectified and amplified to detect amplitude of the acoustic wave and, especially, that the rectifying amplification is phase sensitive amplification.
  35. 56
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 55 characterized in that diameters of the two light beams from said light outgoing means are substantially equal to each other.
  36. 57
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 56, characterized by further comprising a constituent concentration computation procedure for computing the concentration of a constituent from pressure of the acoustic wave detected by said acoustic wave detection, the constituent being set as a measuring object.
  37. 59
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 58, characterized in that said light modulation procedure is a procedure for performing modulation with the same frequency as a resonant frequency concerning detection of the generated acoustic wave.
  38. 60
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 59, characterized by further comprising an intensity adjustment procedure between said light modulation procedure and said light outgoing procedure, the intensity adjustment procedure adjusting relative intensity of said two light beams having the mutually different wavelengths such that pressure of the acoustic wave becomes zero, the acoustic wave being generated by combining said two intensity-modulated light beams having the different wavelengths into a single light beam to irradiate water.
  39. 61
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 60, characterized in that said acoustic wave detection procedure is a procedure for synchronizing with said modulation frequency to detect the acoustic wave by phase sensitive detection.
  40. 62
    A constituent concentration measuring apparatus controlling method as claimed in any one of claims 34 to 61, characterized in that said light generating procedure and said light modulation procedure are a procedure for directly modulating each of the two semiconductor laser light sources using the rectangular-waveform signals having the same frequency and reverse phases.
Independent claims40