The invention relates to an arrangement for determining concentration of at least one substance in a fluid.
There are many situations in which it is necessary to be able to determine and monitor the concentration of a substance in a fluid. One such situation is e.g. narcosis where five different anesthetic gases are administered in different combinations and mixtures to the respiratory circuit of a patient. In that case, it is of utmost importance that the concentration, i.e. the dose of the respective gas is kept under strict control.
FR 2 677 120 (Bussotti) discloses an arrangement for photometric spectroscopy, wherein measurements may be carried out on remote samples by using fibre optics. According to the Bussotti arrangement, the light from a lamp passes through an optical chopper that consists of a motor driven rotating disc with apertures which control light entry into the ends of two optical fibres. The two optical fibres illuminate a reference and a test sample, respectively. The output is recombined into a single optical fibre, for instance by the use of mirrors, for transmission to a measuring unit. Even though the arrangement described in FR 2 677 120 may be effective in many ways, the measuring principles are clearly different from the ones of the present invention, which will be described in greater detail herein below. With the Bussotti arrangement there is also a need for the illumination of a separate reference sample. According to the arrangement of the present invention, there is no need for such a reference sample but the reference measuring means are instead according to a preferred embodiment, in an effective way integrated within the optics of the arrangement.
The arrangement of the present invention can also be manufactured at low costs without having to sacrifice the high functionality and high measurement accuracy of the arrangement, especially with use of fibre optics.
The object of the invention is to provide an improved arrangement for determining concentration of at least one substance in a fluid, e.g. a specific gas in a gas mixture.
This object is achieved with an arrangement according to the independent claims with preferred embodiments set forth in the dependent claims.
The invention will be described more in detail below with reference to the appended drawing on which
a-d illustrate light pulses in different points of the embodiment in
a-d illustrate light pulses in different points of the embodiment in
In the embodiment in
It is to be understood that the invention is not restricted to determining concentration of just gases but can be applied to any fluid including liquids. It is also to be understood that the invention in no way is limited to determine the concentration of three known gases, but that any number of gases comprised in the gas mixture can be determined. Naturally, this is true also for the embodiment of the present invention described in connection with
In
In accordance with the invention, the measuring cell can also be a hollow fibre.
In the embodiment in
The primary light pulses are generated within a wavelength interval that in this embodiment comprises three different predetermined wavelengths λ1, λ2 and λ3 that are known to be absorbed by the respective known gases in the gas mixture.
One such primary light pulse outputted by the light source 2 is illustrated in
If primary light pulses within more than one wavelength interval is needed, e.g. in order to be able to detect a large number of different substances, it is to be understood that a light source that is able to generate primary light pulses within more than one wavelength interval can be used. As an alternative, a number of different light sources can be used.
In accordance with the invention, in the embodiment in
The light pulse splitter 5 in the embodiment in
The three secondary light pulses illustrated in
The output terminal of the reference light pulse generating device 11, i.e. the output end of the optical fibre 12, is coupled to the input end of the optical fibre 10. In response to the three secondary light pulses in
Depending on the length and/or the configuration of the optical fibre 12, the delayed reference light pulses can be generated at any point in time provided that a delayed reference light pulse is generated at a point in time that is later than its respective secondary light pulse, i.e. the secondary light pulse having the same predetermined wavelength. Thus, for instance in
The three differently absorbed secondary light pulses λ1, λ2 and λ3 and the three associated delayed reference light pulses λ1r, λ2r and λ3r are coupled from the output end of the fibre 10 to an input terminal of a detector 13, e.g. a photodiode, for detecting the intensity of all incoming light pulses. A comparator 14 is connected to an output terminal of the detector 13 for comparing the intensities of the differently absorbed secondary light pulses with the intensities of the respective associated reference light pulses to thereby determine the concentration of the respective gas in the gas mixture in the measuring cell 1.
However, from the output end of the optical fibre 4, the primary light pulses generated by the light source 2 comprising the predetermined wavelengths—one such primary light pulse being illustrated in
The differently absorbed primary light pulses—one being illustrated in
The output terminal of the reference light pulse generating device 11, i.e. the output end of the optical fibre 12, is coupled to the input end of the optical fibre 9. In
In
As in the embodiment in
The three differently absorbed secondary light pulses and the three associated delayed reference light pulses, all having respective predetermined wavelengths λ1, λ2 and λ3 are coupled via the output terminal of the light pulse splitter 5 to the input end of the optical fibre 10.
As in the embodiment in
The comparator 14 is connected to the output terminal of the detector 14 for comparing the intensities of the differently absorbed secondary light pulses with the intensities of the respective associated delayed reference light pulses to determine the concentration of the respective gas in the gas mixture in the measuring cell 1.
It will be understood that the invention is not restricted to the above-described exemplifying embodiments thereof and that several conceivable modifications of the invention are possible within the scope of the attached claims. For instance in the description text of the present invention, where reference is made to an optical fibre 4,9,10 or 12, respectively, it is to be understood that any of these optical fibres just as well can comprise several fibres, provided separately or in a bunch.
Number | Date | Country | Kind |
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0402292 | Sep 2004 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE2005/001411 | 9/23/2005 | WO | 00 | 10/28/2008 |
Publishing Document | Publishing Date | Country | Kind |
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WO2006/033635 | 3/30/2006 | WO | A |
Number | Name | Date | Kind |
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6556306 | Jiang et al. | Apr 2003 | B2 |
6680472 | Thingbø et et al. | Jan 2004 | B1 |
7561276 | Boyd | Jul 2009 | B2 |
20020063866 | Kersey et al. | May 2002 | A1 |
20060076476 | Thingbo et al. | Apr 2006 | A1 |
Number | Date | Country |
---|---|---|
2 677 120 | Dec 1992 | FR |
59-218936 | Dec 1984 | JP |
WO 9306459 | Apr 1993 | WO |
WO 9817991 | Apr 1998 | WO |
Number | Date | Country | |
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20090195780 A1 | Aug 2009 | US |