Tube Carrier
20190346473 · 2019-11-14
Inventors
Cpc classification
B65G47/74
PERFORMING OPERATIONS; TRANSPORTING
B65G54/02
PERFORMING OPERATIONS; TRANSPORTING
G01N35/00732
PHYSICS
International classification
Abstract
The field of the present invention relates to sample tube carrier for automated analyzer systems for processing patient samples. The invention provides a sample carrier for automated analyzer systems, comprising a body with two wheels at opposite sides of the body for moving the sample carrier, a ferromagnetic core arranged with the body, wherein the sample carrier has no drive.
Claims
1. A sample carrier for automated analyzer systems, comprising: a body with two wheels at opposite sides of the body the carrier for moving the sample carrier; and a U-shaped ferromagnetic core arranged in an upright position with its opening directed to the bottom of the sample carrier within the body of the carrier; wherein the sample carrier has no active drive.
2. The sample carrier of claim 1, comprising clamps on top of its body for fixation of sample tubes.
3. The sample carrier of claim 2, comprising two to five clamps for fixation of a sample
4. The sample carrier of claim 2, wherein the clamps have a length for fixation of sample tubes with a diameter of 10 to 16 mm and a height of maximal 100 mm
5. The sample carrier of claim 1, comprising ID tags at its bottom for storing information.
6. The sample carrier of claim 1, wherein the two wheels are arranged centrally on a virtual axis through the sample carrier.
7. The sample carrier of claim 1, wherein the diameter of the wheels is larger than at least half of the height of the sample carrier body.
8. A system comprising a sample carrier, comprising: a body with two wheels at opposite sides of the body the carrier for moving the sample carrier; and a U-shaped ferromagnetic core arranged in an upright position with its opening directed to the bottom of the sample carrier within the body of the carrier; wherein the sample carrier has no active drive, and a transporting surface onto which the passive transport carrier is moved, and a handling system for moving the sample carrier that is arranged below a transporting surface.
9. The system of claim 9, wherein the handling system comprises a U-shaped magnet that is arranged in downright position with its opening directed to the upper surface of the transporting surface.
10. The system of claim 10, wherein the U-shaped magnet is movable below the transporting surface.
11. The system of claim 10, wherein the U-shaped magnet is movable in all three dimensions and is rotatable around any vertical axis going through the long basis of the U.
12. A method for transporting a sample comprising the steps of: placing a sample into a sample carrier comprising a body with two wheels at opposite sides of the body the carrier for moving the sample carrier, a U-shaped ferromagnetic core arranged in an upright position with its opening directed to the bottom of the sample carrier within the body of the carrier, wherein the sample carrier has no active drive; placing the sample carrier onto a transporting surface; coupling of the sample carrier with a handling system that is arranged below a transporting surface.
13. The method of claim 12, wherein the handling system comprises a U-shaped magnet that is arranged in downright position with its opening directed to the upper surface of the transporting surface that is coupled with the U-shaped ferromagnetic core of the carrier.
14. The method of claim 12, wherein U-shaped ferromagnetic core of the handling system is moved below the transporting surface to move the coupled carrier rolling onto the transporting surface.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0036] The invention will now be described on the basis of figures. It will be understood that the embodiments and aspects of the invention described in the figures are only examples and do not limit the protective scope of the claims in any way. The invention is defined by the claims and their equivalents. It will be understood that features of one aspect or embodiment of the invention can be combined with a feature of a different aspect or aspects of other embodiments of the invention, in which:
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DETAILED DESCRIPTION OF THE INVENTION
[0043] The invention relates to a passive transport carrier for a single sample tube. The technical problem is solved by the features of the independent claim. The dependent claims refer to further embodiments of the invention.
[0044] Within the meaning of the present invention, passive in terms of a carrier means, that the carrier has no active drive components to accomplish the transport by itself. The carrier is a generic device to allow for integration in various OEM analyzers and their loading and transport concepts. It has an internal ferromagnetic core, so it can be moved by magnetic force of an external permanent magnet as part of the transport installation.
[0045] The body of a carrier designates the whole structure of the device, whether it is a frame, rack, bridge or whatever is carried by wheels. A frame for example which has four ends being carried by wheels represents a body within the meaning of the present invention, so that all wheels will have to be taken into account that are located on the frame, respectively on its lower ends.
[0046] The terms carrier, sample carrier, transport carrier and passive transport carrier shall be understood as synonyms within the description of the present invention.
[0047] The carrier is equipped with two big wheels that support a low friction linear movement and allow for rotating the carrier around its vertical centre axis. The carrier further comprises RFID technology to carry and provide information about the carrier ID and type, the loaded tube and sample and additional information like e.g. priorities for handling, travel paths or destination. The carrier information and information about the patient sample may also be matched by the instrument software. This could be useful if the RFID Tag is not writable within the instrument.
[0048] The basic carrier allows for loading of sample tubes with a diameter of 10-16 mm. Different types of carriers like for paediatric tubes or for project specific solutions can be customized if needed in a specific analyzer. Sample tubes are inserted manually and can reliably identified without rotational alignment by the user. Basic tube heights up to 100 mm are supported, higher tubes can be inserted and fixed easily as the carrier does not limit tube heights.
[0049] The carrier is intended to roll over flat surfaces inside the analyser, without having a drive that is arranged within the carrier.
[0050] A number of clamping springs center and fix a tube in a carrier of the present invention, wherein the number of clamping springs can vary between 3 and 5. Depending on number and geometry, the width of each clamping spring shall be limited to leave enough space between two springs to allow for reading a sample ID barcode labeled according to AUTO2 A2 specification (the appropriate specification for labeling ID codes on sample containers in the IVD field).
[0051] Unlike with commonly used sample racks, the user does not need to rotationally align the sample tubes when inserting them. Orientation between code and reader is established by either rotating the carrier or inspect turned-away codes by a multi-mirror approach.
[0052] Uncommon customer specific or project specific sample container geometries can be addressed by individual adapters or clamping mechanisms. Upcoming 2D-1D codes can be supported by limiting the number of clamping springs, reducing their width or redesigning them in a way to open the field of view for a reader (e.g. camera) and the illumination.
[0053] As already mentioned, the carrier does not incorporate active drive components. Its movement is performed by applying a magnetic force between the carrier and the transport and handling system, which moves the passive sample carrier via this magnetic force coupling. The handling system and the passive transport carrier do not have direct contact. There is a planar traveling surface between them onto which the passive sample carrier does have three degrees of freedom to travel, two lateral ones (X/Y) on the planar surface and a rotational one around its center vertical axis.
[0054] To allow for a safe and reliable magnetic coupling between carrier and handling, the magnetic force must be adequately high. This force however contributes almost completely as normal force to the friction for the movement of the carrier on its travelling surface, which is the main reason, why the carrier uses two wheels for its movement and does not purely slide.
[0055] Both wheels are located on a virtual axis through the center of the passive transport carrier to ideally allow for a rotational movement. As bigger wheels easier pass little particles or other obstacles, the carrier shall contain the biggest possible wheels to fit in its cylindrical build body.
[0056] Each carrier contains a ferromagnetic core. It is not intended to implement permanent magnets in the passive sample carrier as their magnetic forces would attract, repel or in any other way influence other carrier in the analyzer as well as before, during and after loading and unloading. The U-shaped ferromagnetic core is a result of design and simulation iterations for best supporting lateral and rotational passive transport carrier moves. The arrangement and orientation of a U-shaped magnetic core as shown in
[0057] The carrier could easily make uncontrolled and undesired moves and worst-case tip over and spill sample liquid out of the tubes they carry. This would be considered as a high-risk scenario as the spilled liquid may contaminate a user, the analyzer or the workplace.
[0058] As the carrier of the present invention can easily roll, it is mandatory to implement measures to set it still in certain positions as for example for identification, storage or pipetting. The different functions in these positions trigger different approaches to reduce some or all degrees of freedom of a carrier of the present invention. This is achieved by means of external forces like friction, clamping, recessed seating or magnetic fixation as the carrier itself does not incorporate a fixation mechanism.
[0059] The carrier itself comprises an ID-tag at its bottom surface for storing information, like a RFID-tag. The ID tag can either be read-only or it can support read/write functionality, depending on the system it is used for.
[0060] The ID tag can support multiple functions like [0061] Allow for distinction between different passive transport carrier types; [0062] Enable matching of patient sample ID and passive transport carrier I; which provides easy and valid sample ID reading at all relevant positions inside the analyzer; [0063] Allow for allocation of routing options and for allocation of handling or processing preferences or priorities to a passive transport carrier; and [0064] Support for system reboot after blind start-up/energy loss, which makes identification of passive transport carrier easier.
[0065] Each carrier needs to be sensed for presence during handling and transport as it is only coupled to the handling system via magnetic force. It has to be ensured that this coupling is not lost along the way and that the carrier follows the routed path of the handling system. A Hall-sensor chip can be located in the handling system or the passive transport carrier for sensing coupling of handling system and sample carrier.
[0066] In case that a carrier is coupled, a significant portion of the magnetic field of the permanent magnet inside the handling system is routed through the U-shaped ferromagnetic core of the carrier. In an uncoupled state this magnetic field routes differently through ambient and air.
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[0073] The U-shaped magnet of handling system 45 and a carrier 35 as well as the magnetic flux lines with coupled carrier 45 are shown in
[0074] The foregoing description of the preferred embodiment of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible in light of the above teachings or may be acquired from practice of the invention. The embodiment was chosen and described in order to explain the principles of the invention and its practical application to enable one skilled in the art to utilize the invention in various embodiments as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto, and their equivalents. The entirety of each of the aforementioned documents is incorporated by reference herein.
REFERENCE NUMERALS
[0075] 5 passive transport carrier [0076] 10 body [0077] 11 outer plate [0078] 12 recess [0079] 15 wheel [0080] 20 clamp [0081] 25 sample tube [0082] 30 ID tag [0083] 35 U-shaped ferromagnetic core [0084] 40 base plate [0085] 45 magnetic flux lines with coupled carrier [0086] 46 magnetic flux lines without coupled carrier [0087] 50 sensor position