SAMPLE TUBE RACK AND SAMPLE TUBE ANALYSING SYSTEM
20170136467 ยท 2017-05-18
Inventors
Cpc classification
B01L2200/025
PERFORMING OPERATIONS; TRANSPORTING
B01L9/06
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0609
PERFORMING OPERATIONS; TRANSPORTING
G01N35/00732
PHYSICS
G01N2035/0498
PHYSICS
G01N2035/00801
PHYSICS
International classification
B01L9/06
PERFORMING OPERATIONS; TRANSPORTING
G01N35/00
PHYSICS
Abstract
A sample tube rack for receiving at least one sample tube comprises an upper part comprising an upper surface, wherein at least one upper opening for receiving the sample tube is provided in the upper surface; an intermediate part comprising an intermediate surface, wherein at least one intermediate opening for receiving the sample tube is provided in the intermediate surface; and a lower part comprising a supporting surface, wherein at least one supporting position for supporting the sample tube is provided in the supporting surface. Therein, the intermediate part is connected to both the upper part and the lower part such that the at least one upper opening is substantially aligned above the at least one intermediate opening and above the at least one supporting position for receiving the at least one sample tube. At least one gripping orifice is provided in a lateral side of the lower part.
Claims
1. A sample tube rack for receiving at least one sample tube, the sample tube rack comprising: an upper part comprising an upper surface, wherein at least one upper opening for receiving the sample tube is provided in the upper surface; an intermediate part comprising an intermediate surface, wherein at least one intermediate opening for receiving the sample tube is provided in the intermediate surface; and a lower part comprising a supporting surface, wherein at least one supporting position for supporting the sample tube is provided in the supporting surface; wherein the intermediate part is connected to both the upper part and the lower part such that the at least one upper opening is substantially aligned above the at least one intermediate opening and above the at least one supporting position for receiving the at least one sample tube, and wherein at least one gripping orifice is provided in a lateral side of the lower part.
2. The sample tube rack of claim 1, wherein the lateral side with the gripping orifice is at least one of: arranged adjacent to the supporting surface; or at an angle different from 0 and 180 to the supporting surface.
3. The sample tube rack of claim 1, wherein the gripping orifice is configured to enable lateral access into a carrying-space below the supporting surface.
4. The sample tube rack of claim 1, further comprising a thumb rest feature (13) arranged above the gripping orifice, wherein the thumb rest feature (13) may be provided as a lateral extension of the upper surface.
5. The sample tube rack of claim 1, further comprising a plurality of upper openings, a plurality of intermediate openings, and a plurality of supporting positions arranged in aligned grids.
6. The sample tube rack of claim 1, wherein the at least one supporting position comprises a recess which is shaped substantially convergent, and configured to receive and/or bear a sample tube bottom of a predetermined type.
7. The sample tube rack of claim 1, wherein each of the first and the second opening comprises a rim at the surface in which it is provided, and wherein at each rim at least three flexible restraining elements are provided for steadily holding the sample tube, wherein the flexible restraining elements extend substantially downwards from the rim, such that they extend towards a vertical axis through the center of the respective opening.
8. The sample tube rack of claim 1, wherein the upper part, the intermediate part, and the lower part are each provided as an injection molding.
9. The sample tube rack of claim 1, wherein the upper part and the intermediate part are identical in construction.
10. The sample tube rack of claim 1, further comprising connecting features for enabling a plug connection of the intermediate part with both the upper part and the lower part.
11. The sample tube rack of claim 1, wherein the lower part comprises a bottom configured for an aligned arrangement on a rack resting area, and wherein the lower part comprises a lift-off prevention feature configured to prevent an unintended lifting of the sample tube rack from the rack resting area.
12. The sample tube rack of claim 1, wherein the sample tube rack is stackable on and/or below identically constructed sample tube racks, or wherein the sample tube rack comprises an RFID-tag receiving area.
13. The sample tube rack of claim 1, wherein identification information is provided on a lateral side of the sample tube rack in an optically readable form or wherein the upper part, the intermediate part, and the lower part are sufficient to enable a steady sample tube receiving function of the sample tube rack.
14. The sample tube rack of claim 1, wherein the intermediate part is directly connected to both the upper part and the lower part, and wherein the intermediate part is only connected to the upper part and the lower part at lateral sides of the sample tube rack.
15. A sample tube analysing system for analysing the content of at least one sample tube, comprising a rack resting area provided in a drawer, wherein the rack resting area is configured for an aligned arrangement of the lower part of a sample tube rack according to claim 1 such that the gripping orifice is arranged in a manually accessible position when is drawer is arranged in an extended position.
16. The sample tube rack of claim 1, wherein the lateral side with the gripping orifice is arranged adjacent to the supporting surface and is substantially orthogonal to the supporting surface.
17. The sample tube rack of claim 1, wherein the at least one supporting position comprises a recess which is shaped substantially conically, and configured to receive and/or bear a sample tube bottom of a predetermined type.
18. The sample tube rack of claim 10, wherein the plug connection is configured to be permanently fixed once established.
19. The sample tube rack of claim 1, wherein the sample tube rack is stackable on and/or below identically constructed sample tube racks, and wherein the sample tube rack comprises an RFID-tag receiving area.
20. The sample tube rack of claim 1, wherein identification information is provided on a lateral side of the sample tube rack in an optically readable form and wherein the upper part, the intermediate part, and the lower part are sufficient to enable a steady sample tube receiving function of the sample tube rack.
Description
[0063] Embodiments of the invention are described with reference to the figures. Features of the embodiments shown in the figures may be combined with alternative embodiments. Reference numbers identify identical or similar features of different embodiments. The embodiments are shown by:
[0064]
[0065]
[0066]
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
[0079]
[0080] The sample tube rack 1 is shaped substantially like a cuboid comprising four lateral walls, one upper side, and one lower side at its base. Furthermore, each of the upper part 10, the intermediate part 20, and the lower part 30 is substantially shaped like a smaller cuboid. Said three smaller cuboids are arranged on top of each other, thereby forming the larger cuboid of the whole sample tube rack 1.
[0081] As shown in the exploded view of
[0082] A plurality of upper openings 12 are provided in the upper surface 11. In the embodiment shown in
[0083] Each upper opening 12 is shaped substantially circular and forms a rim 14 at the intersection with the upper surface 11. The inner diameter of the upper openings 12 is slightly larger than the outer diameter of the largest sample tube the sample tube rack 1 is configured to receive. Each of the upper openings 12 faces upwards and is configured to receive the bottom and/or base of a sample tube that may be inserted into the upper opening 12 in a substantially vertical position. Such a sample tube may be inserted into one of the upper openings 12 until at least the lower third of the sample tube is substantially inserted into the sample tube rack 1. An upper end of the sample tube may then protrude out of the sample tube rack 1 and out of the upper opening 12.
[0084]
[0085] Referring back to
[0086]
[0087] When carrying the sample tube rack 1, the user may rest his thumb on a thumb rest feature 13 (see also
[0088] Without the thumb rest feature 13, the user is likely to rest his thumb up on the upper surface 11. While this may cause no problem in case the adjacent upper openings 12 are not filled by a sample tube, it may be uncomfortable, not sterile, and/or hazardous to place the thumb on top of the upper surface 11 if the adjacent openings are filled by sample tubes. Therefore, the thumb rest features 13 increases safety when handling, in particular when carrying, the sample tube rack 1. The thumb rest features 13 are designed sufficiently small to be not in the way of other racks when placed in an input area, e.g. a rack resting area, of a sample tube analyzing system.
[0089]
[0090]
[0091] The upper part 10 may comprise an index similar to a checkerboard, showing numbers on one side and letters on an adjacent side. In the shown embodiment, the index shows the number 1 to 6 on one lateral side, and the letters A to F on an adjacent lateral side.
[0092]
[0093]
[0094] The lower part 30 comprises a lift-off prevention feature 36. The lift-off prevention feature 36 is provided as a protrusion at the lowest end of the lower part 30, e.g., a base of the lower part 30. The lift-off prevention feature 36 protrudes in the x-axis direction, in the y-axis direction, against the x-axis direction, and against the y-axis direction from the lateral wall of the lower part 30, e.g. from its base. The shape of the lift-off prevention feature 36 is also shown in, e.g.,
[0095]
[0096] Each of the upper openings 12 and the intermediate openings 22 comprises flexible restraining elements. Upper restraining elements 15 are protruding substantially downwards from the first surface 11. Intermediate restraining elements 25 are protruding substantially downwards from the intermediate surface 21. Each upper opening 12 comprises six upper restraining elements 15. Each intermediate opening 22 comprises six intermediate restraining elements 25. Six restraining elements per opening provide comfortable support for a sample tube inserted into any of the openings. However, in alternative embodiments, a different number of restraining elements per opening may be provided. For example, each opening could be provided with a minimum of three restraining elements and still provide comfortable and steady support for a sample tube. However, six restraining elements per opening may be especially stable and preferable.
[0097]
[0098] As shown in
[0099]
[0100]
[0101] The intermediate part 20 is connected to the upper part 10 via connecting features 19. The intermediate part 20 is connected to the lower part 30 by connecting features 29. Said connecting features 19 and 29 enable a plug connection between the respective parts. The plug connection may be of a kind that is only unpluggable by use of a specific tool, and that is manually unpluggable. The connecting features 19 and 29 may be provided as elongated sticks protruding from the respective surface downwards and towards the surface arranged below the respective part.
[0102]
[0103] The exploded view shown in
[0104] The sample tube rack may consist of only the lower part, the intermediate part, and the upper part. Furthermore the sample tube rack may comprise an RFID-tag. However, only said three parts are required to enable safe receipt of one or more sample tubes.
[0105] All three parts 10, 20, and 30 may be provided as injection molding parts. In the assembled state of the sample tube rack, all three parts are snapped together. The RFID-tag may simply be assembled by snapping it into the RFID-tag receiving area 37, or by inserting it into the RFID-tag receiving area 37 before assembly of the whole rack.
[0106] Furthermore, on a lateral wall of any of the three parts, e.g. of the upper part 10, a bar code comprising an identification information, e.g. a serial number, may be provided. Said identification information may correspond to an information stored in the RFID-tag 40. In the RFID-tag 40, e.g. the rack geometry may be saved (like a number of rows and columns, length, height, etc.). A grip angle for a robot for the rack type may be saved, and/or an insertion force of the robot for this rack type may also be saved. These data may be read by an RFID-tag reader and used by a robot of a sample tube analyzing system.
[0107] The gripping orifice 35, if applicable in connection with a thumb rest feature 13, may enable safe one-hand handling of the sample tube rack 1. Since the gripping orifice 35 is cut out from a lateral wall of the lower part 30, while still comprising a full circumference, a base area of the gripping orifice 35 may provide a counterforce when handling the sample tube rack. As the users fingers are enclosed by the gripping orifice 35 from all sides, the sample tube rack 1 could even be flipped over without the user losing control and/or grip of the sample tube rack 1.
[0108] In the lower rim of the lower part 30, e.g. in its base, the lift-off prevention feature 36 may be provided. Furthermore, in said base of the lower part 30, a gap 38 (see
[0109] The arrangement of the positioning feature may correspond to the index of the upper part 10 (see
[0110] The flexible restraining elements 15 and/or 25 may be configured to hold sample tubes with a diameter from substantially 12 mm to 16 mm. In an alternative embodiment, the flexible restraining elements may be configured to hold sample tubes with a diameter from substantially 5 mm to 10 mm. A sample tube may be inserted into the sample tube rack for at least 30 mm of its length, preferably for at least 45 mm of its length to enable safe storing and/or receiving of the sample tube.
[0111]
[0112] The connecting elements include snap-in noses 16, snap holes 17, and no-snap holes 18. The connecting elements are arranged asymmetrical within the upper part 10 to enable identifying of the orientation of the upper part 10 (and also of the identical intermediate part 20).
[0113] On the inside of a lower end of a first lateral wall A, the upper part 10 comprises two snap-in noses 16 (see
[0114] At an upper end of the first lateral wall A, the upper part 10 comprises three snap-in holes 17, in between which two no-snap holes 18 are arranged (see
[0115] The intermediate part 20 is designed identical to the upper part 10 and, thus, comprises the same number of snap-in noses 16, snap holes 17, and no-snap holes 18. In an assembled state of the sample tube rack 1, the two snap-in noses 16 of the first wall A of the upper part 10 are snapped into the two snap-in holes 17 of the second wall B of the intermediate part 20. Also, the three snap-in noses 16 of the second wall B of the upper part 10 are snapped into the three snap-in holes 17 of the first wall A of the intermediate part 20.
[0116] When the first wall A of the upper part 10 is arranged above the first wall A of the intermediate part 20, the two snap-in noses 16 of the first wall A of the upper part 10 would be inserted into the two no-snap holes 18 of the first wall A of the intermediate part 20. Thus, no snap-connection is established, since the snap-in noses 16 may not be interlocked in a snap-connection with the no-snap holes 18.
[0117] The snap-connection of the intermediate part 20 and the upper part 10 may only be established under one specific, predetermined orientation of said two parts. The snap-connection may be configured to be established manually.
[0118] The lower part 30 may comprise corresponding snap-in holes 17 and/or corresponding no-snap holes 18 arranged at the upper end of two of its opposing lateral walls to engage into the snap-in noses 16 of the intermediate part 20. Thus, a snap-connection of the intermediate part 20 and the lower part 30 may also only be established under one specific, predetermined orientation of said two parts.
[0119] Each no-snap hole 18 may be arranged above one snap-in nose 16. Each no-snap hole 18 may be provided as a substantially vertical channel connecting the upper surface 11 (or the intermediate surface 21) with the snap-in nose 16 arranged at a lower portion of the upper part 10 (or intermediate part 20).
[0120] An exemplary snap-in hole 17 and an exemplary no-snap hole 18 are identified in
[0121]
[0122] The arrangement of the connecting elements/features like the snap-in noses 16, the snap holes 17, and the no-snap holes 18 is asymmetrical in each of the upper part 10, the intermediate part 20, and the lower part 30. Distances between said different types of connecting elements/features may be configured such that the upper part 10 can be clipped together with the intermediate part 20, only if the intermediate part 20 is rotated by 180 as compared to the upper part 10.
[0123] In an embodiment, the connecting elements/features 16, 17, and/or 18 may also be arranged at the other two lateral walls, at the edges of the respective part, and/or at all four lateral walls. The rack may comprise more or less than five of said connecting elements/features. However, the sample tube rack 1 comprises a minimum of two connecting elements/features on each of two opposing sides/walls.
[0124] In an embodiment, the sample tube rack 1 is configured to be unpluggable, even by a tool. Once established, the plug connection between the upper part 10, the intermediate part 20, and/or the lower part 30 may be permanently fixed.
[0125] The no-snap holes 18 may be formed by tool inserts of an injection mold tool and enable a safe molding of all parts above and below the respective surface of the respective part. When the upper part 10 and/or the intermediate part 20 is molded, a tool insert for the snap-in noses 16 may be moved parallel to and against the direction of the z-axis (from above) through the no-snap holes 18 to form the snap-in noses 16 into the mold. A tool insert for the snap-in holes 17 may be moved parallel to and in the direction of the z-axis (from below) to form the snap-in holes 17 into the mold. The no-snap holes 18 may have no further function and/or use besides granting the tool inserts of the injection mold tool access into the respective part, and/or an exit out of the respective part.
[0126] In other words, the upper part 10 and/or the intermediate part 20 comprise channels for the tool inserts forming the connecting elements/features 16, 17, and 18 that are arranged along the direction in which the plug-in/snap-in connection between said parts is established (here parallel to the z-axis). Thus, no complicated slides in the injection mold tool are required to establish the plug-in/snap-in connection. Thereby, both the molding process and the establishing of the connection between the parts is improved and simplified. In particular, the parts may be configured to require no sliding element in the injection mold tool to establish the connection between the parts.
[0127]
[0128] The sample tube rack 2 is shaped substantially like a cuboid comprising four lateral walls, one upper side, and one lower side at its base. Therein, the upper side is provided by an upper surface 11. A plurality of upper openings 12 are provided in the upper surface 11. Below each upper opening 12, the sample tube rack 2 comprises a plurality of receptacles 50, each of which is configured to hold, align, receive, and/or retain one sample tube, respectively.
[0129] The receptacles are arranged in a grid comprising rows and columns in a horizontal plane. In the embodiment shown in
[0130] Each receptacle 50 is provided as substantially tubular cavity, accessible via the upper opening 12. The tubular cavities of the receptacles 50 are arranged parallel to each other.
[0131] The cylinder axis of each tubular cavity is arranged substantially vertically.
[0132]
[0133]
[0134]
[0135]
[0136] As shown in
[0137] The cross section of
[0138] Because the restraining elements are grouped as described above in the first group comprising the first restraining elements 52 and the second group comprising the second restraining elements 53, the restraining elements may hold sample tubes comfortably stable within each receptacle 50.
[0139]
[0140] Furthermore, the slots 54 and, if applicable, further holes in the receptacle bottom 51, provide a drainage for fluids, e.g., water condensation on the sample tubes.
[0141] The walls 50 protrude over receptacle bottoms 51 to form a stable support for the sample tube rack 2 (see also
[0142] The one-piece sample tube rack 2 may be configured to be stackable on top and/or below an identical further one-piece sample tube rack.
LIST OF REFERENCE NUMERALS
[0143] 1 sample tube rack [0144] 1 sample tube rack [0145] 2 sample tube rack [0146] 10 upper part [0147] 11 upper surface [0148] 12 upper opening [0149] 13 thumb rest feature [0150] 14 rim [0151] 15 upper restraining elements [0152] 16 snap-in nose [0153] 17 snap hole [0154] 18 no-snap hole [0155] 19 connecting feature [0156] 20 intermediate part [0157] 21 intermediate surface [0158] 22 intermediate opening [0159] 25 intermediate restraining elements [0160] 29 connecting feature [0161] 30 lower part [0162] 31 supporting surface [0163] 31 underside of the supporting surface [0164] 32 supporting position [0165] 35 gripping orifice [0166] 36 lift-off prevention feature [0167] 37 RFID-tag receiving area [0168] 37 RFID-tag receiving area [0169] 38 gap [0170] 40 RFID-tag [0171] 50 receptacle [0172] 51 receptacle bottom [0173] 52 first restraining element [0174] 53 second restraining element [0175] 54 slot [0176] 55 wall [0177] A first lateral wall [0178] B second lateral wall