Single-piece transfer arm structure for analytical instrumentation
11204362 ยท 2021-12-21
Assignee
Inventors
Cpc classification
G01N35/10
PHYSICS
G01B21/16
PHYSICS
G01N35/1011
PHYSICS
G01F23/18
PHYSICS
G01N35/02
PHYSICS
B26D1/00
PERFORMING OPERATIONS; TRANSPORTING
B60S1/40
PERFORMING OPERATIONS; TRANSPORTING
G01N1/28
PHYSICS
International classification
Abstract
Embodiments are directed to a single piece radial transfer arm for use in a clinical analyzer in an in vitro diagnostics (IVD) environment. The transfer arm is comprised of a chassis or elongated, rigid member that provides structural and aesthetic properties, acting as both a mounting base and a cover for transfer arm components. The elongated, rigid member is a single component, such as a single piece of injection-molded plastic. The elongated, rigid member has a top surface, a bottom surface, sidewalls, a pivot end, and a component end. One or more access holes and/or internal component mounting locations are provided for mounting one or more components on the bottom surface. A plurality of radial configuration mounting locations are provided on the bottom surface to allow for multiple radial distances between a pivoting axis of the transfer arm and an attached probe to accommodate arcs of different radii.
Claims
1. A single piece radial transfer arm for a clinical analyzer in an in vitro diagnostics (IVD) environment, the transfer arm comprising: an elongated, rigid member comprising: a top surface; a bottom surface; a pivot end comprising a plurality of radial configuration mounting locations provided on the bottom surface of the elongated, rigid member, wherein each of the plurality of radial configuration mounting locations are configured to secure the elongated, rigid member to an end of a shaft such that the elongated, rigid member can revolve about a center axis of the end of the shaft, wherein the plurality of radial configuration mounting locations allow for respective ones of radial distances between a pivoting axis at the pivot end and at least one attachment location at a component end; and the component end comprising the at least one attachment location configured to secure at least one component to the elongated, rigid member.
2. The transfer arm of claim 1, wherein at least one of the plurality of radial configuration mounting locations are configured to secure a mounting clamp to the elongated, rigid member to couple the end of the shaft to the elongated, rigid member.
3. The transfer arm of claim 1, wherein the at least one attachment location is configured to secure to the elongated, rigid member one or more of a probe, a crash detection mechanism, mixing devices, pick-and-place devices, circuit boards, and valves.
4. The transfer arm of claim 1, further comprising one or more of electromagnetic interference (EMI) shielding material on at least a portion of the bottom surface and grounding material on at least a portion of the bottom surface.
5. The transfer arm of claim 1, wherein the elongated, rigid member is injection molded.
6. A single piece radial transfer arm in a clinical analyzer in an in vitro diagnostics (IVD) environment, the transfer arm comprising: an elongated, rigid member comprising: a top surface; a bottom surface comprising an underside portion of the top surface; sidewalls extending from the top surface and configured to form at least a partially surrounding enclosure for the bottom surface; a pivot end comprising a plurality of radial configuration mounting locations provided on the bottom surface of the elongated, rigid member, wherein each of the plurality of radial configuration mounting locations are configured to secure the elongated, rigid member to an end of a shaft such that the elongated, rigid member can revolve about a center axis of the end of the shaft, wherein the plurality of radial configuration mounting locations allow for respective ones of radial distances between a pivoting axis at the pivot end and at least one attachment location at a component end; and the component end comprising the at least one attachment location configured to secure at least one component to the elongated, rigid member.
7. The transfer arm of claim 6, wherein at least one of the plurality of radial configuration mounting locations are configured to secure a mounting clamp to the elongated, rigid member to couple the end of the shaft to the elongated, rigid member.
8. The transfer arm of claim 7, wherein the elongated, rigid member extends horizontally and the shaft is oriented substantially perpendicular to the elongated, rigid member.
9. The transfer arm of claim 6, wherein the at least one attachment location comprise; one or more of: (i) one or more access holes extending through the top surface and the bottom surface; and (ii) internal component mounting locations on the bottom surface.
10. The transfer arm of claim 6, wherein the at least one attachment location is configured to secure to the elongated, rigid member one or more of a probe, a crash detection mechanism, mixing devices, pick-and-place devices, circuit boards, and valves.
11. The transfer arm of claim 6, further comprising electromagnetic interference (EMI) shielding material on at least a portion of the bottom surface.
12. The transfer arm of claim 6, further comprising grounding material on at least a portion of the bottom surface.
13. The transfer arm of claim 6, further comprising structural ribbing formed on the bottom surface, the structural ribbing configured to provide structural support for the elongated, rigid member.
14. The transfer arm of claim 6, wherein the elongated, rigid member is injection molded.
15. The transfer arm of claim 6, wherein the elongated, rigid member comprises a glass-filled nylon material.
16. The transfer arm of claim 6, further comprising one or more alignment ribs formed on an outer portion of the sidewalls.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) 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 is 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
(8) Embodiments are directed to a single piece radial transfer arm having an elongated, rigid member.
(9)
(10) As shown in
(11) As shown in
(12) As shown in the underside view of the transfer arm 100 of
(13) As shown in
(14) Turning back to
(15) With reference to
(16)
(17) Alignment ribs 142 formed on a portion of sidewalls 140 are provided, according to an embodiment, as markings for use as alignment aids for both gross and fine adjustment (see
(18)
(19) Other devices can also be mounted, according to embodiments, using the mounting locations 134 and/or 136, including, for example and not limitation, a crash detect mechanism, a mixing device, a pick-and-place device, a capacitive level detection printed circuit assembly, other circuit boards, and liquid valves. Many of these components are contained within the aesthetic enclosure provided by the sidewalls 140. In other words, the components are hidden or at least partially hidden from view, depending on geometries and orientations of the components and/or the transfer arm 100.
(20) In an embodiment, adjustable mounting can take many forms; for example, slots in the transfer arm 100 or a threaded fine adjustment knob. Additional specific or universal mounting points or access holes may be added.
(21) In an embodiment, the material of the transfer arm 100 may be a glass-filled nylon to provide the necessary stiffness and strength. The material can be color-matched and textured, as desired, eliminating the need for paint. The design of the mold for manufacturing the transfer arm 100 is an important factor in producing a flat part that positions a probe perpendicular to the plane of travel (see
(22) In an embodiment, an interior portion of the transfer arm 100 (e.g., a portion of the bottom surface 130 and/or an interior portion of the sidewalls 140) may be coated with an electrically conductive paint to provide for electromagnetic interference (EMI) protection (by creating a partial faraday cage) for critical electrical components mounted within. Such a coating may also provide a chassis ground path to the shaft 350 of the arm for a circuit board and other components. In another embodiment, an interior portion of the transfer arm 100 (e.g., a portion of the bottom surface 130 and/or an interior portion of the sidewalls 140) may be coated with a grounding material.
(23) According to embodiments provided herein, the transfer arm 100 has an advantage of low cost. This includes the part cost, assembly cost (fewer components), and lower inventory costs for manufacturing and service (again due to fewer components). A technical feature that contributes to this lower cost advantage is that the transfer arm 100, according to embodiments herein, is a single part. It is injection molded, which is a low-cost process, and it can be re-used in multiple applications. Savings compared to traditional methods can range from hundreds of thousands to over a million dollars per year, depending on production quantities and on how many products transfer arm 100 is applied.
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(25) The system architecture 600 of
(26) Although the present invention has been described with reference to exemplary embodiments, it is not limited thereto. Those skilled in the art will appreciate that numerous changes and modifications may be made to the preferred embodiments of the invention and that such changes and modifications may be made without departing from the true spirit of the invention. It is therefore intended that the appended claims be construed to cover all such equivalent variations as fall within the true spirit and scope of the invention.