Colorimetric analyzer with de-bubbling
11125696 · 2021-09-21
Assignee
Inventors
Cpc classification
Y10T436/117497
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A colorimetric analyzer includes a reaction chamber configured to receive a sample and at least one reagent. A measurement cell is operably coupled to the reaction chamber. The measurement cell has an illumination source and an illumination detector spaced from the illumination source such that illumination from the illumination source passes through the reacted sample to the illumination detector. A controller is coupled to the illumination source and the illumination detector. The controller is configured to generate an analytic output based on a signal from the illumination detector. A fill conduit is operably interposed between the reaction chamber and the measurement cell. The fill conduit is configured to reduce bubbles.
Claims
1. A colorimetric analyzer comprising: a reaction chamber configured to receive a sample and at least one reagent; a measurement cell operably coupled to the reaction chamber, the measurement cell having an illumination source and an illumination detector spaced from the illumination source such that illumination from the illumination source passes through the reacted sample to the illumination detector; a controller coupled to the illumination source and the illumination detector, the controller being configured to generate an analytic output based on a signal from the illumination detector; and a fill conduit operably interposed between the reaction chamber and the measurement cell, the fill conduit comprising a first material and a fluidically-sealed, hydrophobic second material disposed along an inner diameter of the first material.
2. The colorimetric analyzer of claim 1, wherein the hydrophobic second material is formed of a polymer.
3. The colorimetric analyzer of claim 2, wherein the polymer is Poly(methyl methacrylate).
4. The colorimetric analyzer of claim 1, wherein the fill conduit is disposed at a non-zero angle that is less than 90 degrees with respect to gravity.
5. The colorimetric analyzer of claim 1, wherein both the first and second materials comprise a hydrophobic material.
6. The colorimetric analyzer of claim 5, wherein the hydrophobic material comprises Poly(methyl methacrylate).
7. The colorimetric analyzer of claim 1, and further comprising a peristaltic pump disposed between the reaction chamber and the fill conduit, wherein the peristaltic pump is configured to convey reacted sample into a sample inlet of the fill conduit.
8. The colorimetric analyzer of claim 1, wherein the colorimetric analyzer is a silica analyzer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(4) In automatic colorimetric analyzers, one of the challenges for analyzer design is the elimination of bubbles while filling the optical cuvette with sample. Any bubbles stuck to the wall of the cuvette will deflect light and thus affect the accuracy of the optical measurement. In accordance with various embodiments set forth below, the portion of the analyzer upstream of the optical cuvette is configured to reduce or eliminate the formation or presence of bubbles such that the sample that reaches the optical cuvette is substantially bubble-free.
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(7) In accordance with an embodiment of the present invention, sample conduit 154 is formed or includes, at its inner diameter, a hydrophobic material. In some embodiments, conduit 154 may be formed entirely of a hydrophobic material. In other embodiments, sample fill conduit 154 may be formed of any material but provided with a hydrophobic layer at its internal diameter. While any particular hydrophobic material can be used, in one embodiment, conduit 154 is formed of a hydrophobic polymer. More particularly, the polymer may be Poly(methyl methacrylate). By providing a hydrophobic surface within sample fill conduit 154, the sample will trickle or otherwise flow down along the inside of sample fill conduit 154 before flowing into the optical cuvette. Any bubble in the sample solution will be eliminated or otherwise reduced by the hydrophobic surface within sample fill conduit 154 so that measurement cell 122 can be filled with bubble-free sample. As used herein, reducing bubbles is defined to mean reducing the formation or presence of bubbles in fill conduit 154. Accordingly, such bubble reduction eliminates at least some bubbles before the bubbles can reach measurement cell 122. This is important because if a bubble were to become trapped inside the optical cuvette, the bubble would deflect light from the measurement beam and interfere with the proper illumination detection.
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(9) Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention.