PHOTOMETER OPTICAL COUPLING FOR A DUAL INCUBATION RING USING A PERISCOPE DESIGN
20220221333 · 2022-07-14
Assignee
Inventors
Cpc classification
G01N35/025
PHYSICS
International classification
Abstract
A system for coupling photometers to an incubation ring for use in in vitro diagnostics comprises one or more light sources, and an incubation ring assembly, and two photometers. An incubation ring assembly comprises an internal trough and an external trough. Each trough comprises (a) an internal wall comprising an internal aperture and (b) an external wall comprising an external aperture. A first photometer comprises: a first optics housing directing light from the light sources through the external aperture of the internal trough, and a first detector positioned to receive the light through the internal aperture of the internal trough. A second photometer comprises a second optics housing directing the light from the light sources through the internal aperture of the external trough, and a second detector positioned to receive the light through the external aperture of the external trough.
Claims
1. A system for coupling photometers to an incubation ring for use in in vitro diagnostics, the system comprising: one or more light sources; an incubation ring assembly comprising an internal trough and an external trough, wherein each trough comprises (a) an internal wall comprising an internal aperture and (b) an external wall comprising an external aperture; a first photometer positioned with respect to the internal trough, wherein the first photometer comprises: a first optics housing directing light from the light sources through the external aperture of the internal trough, and a first detector positioned to receive the light through the internal aperture of the internal trough; and a second photometer mounted positioned with respect to the external trough, wherein the second photometer comprises: a second optics housing directing the light from the light sources through the internal aperture of the external trough, and a second detector positioned to receive the light through the external aperture of the external trough.
2. The system of claim 1, further comprising: one or more fiber optic cables transmitting the light from the light sources to the first optics housing and the second optics housing.
3. The system of claim 1, wherein the first optics housing comprises: a vertical channel for receiving a fiber optic cable transmitting the light from the light sources, a horizontal channel connected to the external aperture of the internal trough, and one or more reflecting surfaces for redirecting the light from the vertical channel to the horizontal channel and through the external aperture of the internal trough.
4. The system of claim 1, wherein the second optics housing comprises: a vertical channel for receiving a fiber optic cable transmitting the light from the light sources, a horizontal channel connected to the internal aperture of the external trough, and one or more reflecting surfaces for redirecting the light from the vertical channel to the horizontal channel and through the internal aperture of the external trough.
5. The system of claim 1, wherein the light sources comprise (a) a first light source connected to the first optics housing via a first fiber optic cable and (b) a second light source connected to the second optics housing via a second fiber optic cable.
6. The system of claim 1, wherein the one or more light sources comprise a single light source connected to the first optics housing and the second optics housing via a second fiber optic cable via a bifurcated fiber optic cable bundle.
7. The system of claim 1, wherein the incubation ring assembly comprises an upper surface defined by open sections of the internal trough and the external trough and a lower surface located opposite to the upper surface, and the system further comprises: a base plate positioned below the lower surface of the incubation ring assembly, wherein the first photometer and the second photometer are each mounted to the base plate.
8. The system of claim 7, wherein the one or more light sources are positioned below the base plate with respect to the incubation ring assembly.
9. The system of claim 8, wherein the first detector and the second detector are each positioned below the base plate with respect to the incubation ring assembly.
10. The system of claim 7, wherein the one or more light sources are positioned above the base plate with respect to the incubation ring assembly.
11. The system of claim 10, wherein the first detector and the second detector are each positioned below the base plate with respect to the incubation ring assembly.
12. A photometer system comprising: an optics housing comprising: a first channel receiving a fiber optic cable transmitting light from one or more light sources, a second channel connected to the first channel at an angle; one or more reflecting surfaces for redirecting the light from the fiber optic cable to the second channel; and a detector oriented parallel with respect to the second channel of the optics housing and configured to generate a photometric measurement based on the light received from the optics housing.
13. The photometer system of claim 12, wherein the optics housing is sized to fit between two troughs of an incubation ring assembly.
14. The photometer system of claim 13, wherein the optics housing further comprises: one or more pins, one or more cavities extending parallel to the first channel and allowing insertion of the pins through the optics housing for coupling the optics housing to a base plate below the incubation ring assembly.
15. The photometer system of claim 13, wherein the second channel of the optics housing is threaded and the photometer system further comprises: a nut sized to screw on to the second channel to couple the optics housing to a wall of one of the troughs of the incubation ring assembly.
16. The photometer system of claim 15, further comprising: a seal positioned between an external surface of the second channel and the wall of the trough.
17. The photometer system of claim 12, further comprising: one or more aspheric collimating lenses in the first channel for focusing the light on the one or more reflecting surfaces.
18. The photometer system of claim 12, wherein the reflecting surfaces comprise an optical mirror.
19. The photometer system of claim 12, wherein the reflecting surfaces comprise a parabolic mirror.
20. The photometer system of claim 12, wherein the reflecting surfaces comprise a dichroic lens.
21. The photometer system of claim 12, wherein the reflecting surfaces comprise a prism.
22. A method of testing a sample in an in vitro diagnostics system, the method comprising: receiving a light signal from a fiber optic cable in a vertical channel of an optics housing; directing the light signal onto a reflecting surface of the optics housing such that the light signal is reflected at an angle and through a first aperture of a trough of an incubation ring assembly; receiving the light signal by a detector through a second aperture of the trough of the incubation ring assembly; processing the light signal to determine one or more photometric measurements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The foregoing and other aspects of the present invention are best understood from the following detailed description when read in connection with the accompanying drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments that are presently preferred, it being understood, however, that the invention is not limited to the specific instrumentalities disclosed. Included in the drawings are the following Figures:
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DETAILED DESCRIPTION
[0029] The present invention relates generally to methods, systems, and apparatuses related to the coupling of a photometer to a dual incubation ring using a periscope design. More specifically, with the designs disclosed herein, the light source (e.g., halogen, LED or hybrid) is located below the baseplate in any desired space location, and coupled by a fiber optic cable to a periscope assembly between the dual incubation rings in a minimal space. The light is focused from the fiber by a set of aspheric collimating lenses, and then turned at an angle (e.g., 45 degrees) by an optical mirror, parabolic mirror, dichroic lens, or prism to hit the target aperture for proper beam alignment to pass through the optical cuvettes to hit the detector. In some embodiments, this can be done to supply both sides of the ring using a single light source, using a bifurcated optical fiber. Likewise, in some embodiments, the general design disclosed herein may be implemented with a single light source, and single leg optical fiber.
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[0032] The Optics Housing 110 is based on a “periscope” design that allows the Optics Housing 110 to fit in a minimal space location between troughs of the Incubation Ring Assembly 105. Within the Optics Housing 110, a Vertical Channel 110A receives the Fiber Optic Cable 120. Aspheric Collimating Lenses 110D focuses the light from the Fiber Optic Cable 120 on a Reflecting Surface 110C. This Reflecting Surface 110C may comprise, for example, an optical mirror, parabolic mirror, dichroic lens, or a prism. The Reflecting Surface 110C redirects the light across a Horizontal Channel 110B and through the First Aperture 105C of the Internal Trough 105B.
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[0042] The embodiments of the present disclosure may be implemented with a combination of hardware and software. In addition, functionality employed by the embodiments of the present disclosure may be included in an article of manufacture (e.g., one or more computer program products) having, for example, computer-readable, non-transitory media. The media has embodied therein, for instance, computer readable program code for providing and facilitating the mechanisms of the embodiments of the present disclosure. The article of manufacture can be included as part of a computer system or sold separately.
[0043] The functions and process steps herein may be performed automatically, or wholly, or partially in response to user command. An activity (including a step) performed automatically is performed in response to one or more executable instructions or device operations without user direct initiation of the activity.
[0044] The systems illustrated in the figures are not exclusive. Other systems may be derived in accordance with the principles of the invention to accomplish the same objectives. Although this invention has been described with reference to particular embodiments, it is to be understood that the embodiments and variations shown and described herein are for illustration purposes only. Modifications to the current design may be implemented by those skilled in the art, without departing from the scope of the invention. As described herein, the various systems, subsystems, agents, managers, and processes can be implemented using hardware components, software components, and/or combinations thereof. No claim element herein is to be construed under the provisions of 35 U.S.C. 112(f), unless the element is expressly recited using the phrase “means for.”