The present application claims priority under 35 U.S.C. §119 of /Swiss Patent Application No. CH-1968/10, filed on Nov. 24, 2010, the disclosure of which is expressly incorporated by reference herein in its entirety
1. Field of the Invention
The invention relates to a storage arrangement for storing laboratory objects at very low temperatures.
2. Discussion of Background Information
The storage of laboratory objects at very low temperatures, such as temperatures below 160° C., for example, typically at −196° C., is very complex and automation is difficult to achieve. A storage arrangement for low temperatures is known from EP 1 972 874, but this system is suitable for really low temperatures only to a limited extent.
The object is therefore to provide a storage arrangement of the type mentioned at the outset, which can be operated automatically.
This object is attained with the storage arrangement according to claim 1.
According to the claim the storage arrangement thus has
Due to this embodiment it is possible to provide an automated storage arrangement for very low temperatures. The energy consumption by the system is reduced because the actual storage temperature is maintained only inside the Dewar flasks. However, the picking device is arranged outside the Dewar flasks, in the chamber, so that the components thereof are not exposed to extremely low temperatures and at the same time, however, large differences in temperature and ice formation are avoided. The arrangement above the Dewar flasks and the vertical access to the storage cassettes reduce the heat equalization between the chamber and the interior of the Dewar flasks.
Advantageously, a door is provided on the top of the at least one Dewar flask, which door can be automatically opened and closed. When the door is opened, the picking device can access the storage cassettes in the Dewar flask from above.
Several Dewar flasks, which can be charged by the picking device, can be provided in the chamber. This has the advantage that smaller, more inexpensive Dewar flasks can be used.
If several Dewar flasks are provided, advantageously a common picking device is provided for all of the Dewar flasks, i.e. exactly one picking device is provided, which operates all of the Dewar flasks.
The cassette lift can have several telescopic sections that can be extended with respect to one another in a telescopic manner, a pulley and/or a belt or a chain, in order to lower a gripper device for gripping the storage cassettes into the at least one Dewar flask. The vertical installation height of the cassette lift can be reduced by the use of a telescopic solution or pulley solution so that the installation height of the chamber above the Dewar flasks can be kept low.
Furthermore, at least one centering device can be provided at a fixed height, into which a storage cassette can be moved in order to align the storage cassette horizontally. A storage cassette aligned in this manner can be loaded and unloaded better.
The centering element can be part of the cassette lift. Alternatively, the centering element can also be arranged on the Dewar flask.
Furthermore, the picking device can have a handling device, which has a vertically moveable scoop that can be extended horizontally into a raised storage cassette, with which scoop objects can be removed from the storage cassette or can be inserted therein. In the event that the picking device has two cassette lifts, the handling device is advantageously arranged between the two cassette lifts, so that both of them can he served thereby.
Furthermore, it is advantageous to arrange in the chamber at least two rows of Dewar flasks rotated by 180° with respect to one another and to arrange the cassette lifts likewise rotated by 180° with respect to one another. In this case respectively one cassette lift is correctly aligned with respect to the Dewar flasks in one row.
The picking device advantageously has a carriage that can be moved horizontally in two directions, on which the at least one cassette lift is arranged, so that the cassette lift can be moved above each desired Dewar flask and/or plates picked or to be picked or laboratory objects can be conveyed to a transfer station at the edge of the chamber. In this case the carriage can be connected to the housing via a first and a second rail, wherein the two rails are perpendicular to one another and are arranged higher than the Dewar flask or the Dewar flasks.
Advantageously, a rotatable carousel is provided in each Dewar flask on which carousel the storage cassettes are arranged. Each storage cassette can thereby be brought into the active area of the picking device. Furthermore, a carousel is particularly suitable for installation in the normally round Dewar flasks. To improve the utilization of space, the storage cassettes are advantageously arranged in several concentric circles around a rotational axis of the carousel.
The picking device can also have a sample removal device, with which an individual laboratory object can be removed from a sample plate removed from a storage cassette or inserted into the sample plate. In this manner in the case of a sample plate which holds several laboratory objects, only one can be removed. The paths are thereby shorter and the other laboratory objects can be quickly returned to the Dewar flask.
Other exemplary embodiments and advantages of the present invention may be ascertained by reviewing the present disclosure and the accompanying drawing.
The present invention is further described in the detailed description which follows, in reference to the noted plurality of drawings by way of non-limiting examples of exemplary embodiments of the present invention, in which like reference numerals represent similar parts throughout the several views of the drawings, and wherein:
The particulars shown herein are by way of example and for purposes of illustrative discussion of the embodiments of the present invention only and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of the present invention. In this regard, no attempt is made to show structural details of the present invention in more detail than is necessary for the fundamental understanding of the present invention, the description taken with the drawings making apparent to those skilled in the art how the several forms of the present invention may be embodied in practice.
The samples are contained, for example, in sample tubes, which in turn are arranged in plates. Several of these sample plates are respectively stored one above the other in a storage cassette.
The storage arrangement has an insulated outer housing 2, which surrounds a chamber 3. At least one Dewar flask 4 is arranged in the chamber 3. Preferably, several such Dewar flasks 4 are provided. Each Dewar flask 4 has in a known manner an evacuated, mirrored insulation wall, which has low thermal conduction. The Dewar flasks are closed on all sides in the embodiment shown and for access in each case a lid 5 is provided on their inside. The lid covers an opening 6 arranged on the top of the Dewar flask.
The chamber 3 is preferably embodied as a cooling chamber. The Tc of the chamber 3 is advantageously lower than 0° C., in particular lower than −20° C. or −50° C. This lowering of the temperature prevents ice formation in the Dewar flasks 4 or on the samples. The storage temperature Ts in the Dewar flasks 4 is lower than the chamber temperature Tc and is preferably at the referenced “very low temperatures”, i.e., typically at −196° C.
However, a cooling of the chamber 3 is not absolutely necessary. The chamber 3 can also e.g., contain only a defined atmosphere (for example, dry air or nitrogen atmosphere), or it can be a not specially air-conditioned storage space.
Furthermore, a picking device 8 is arranged in the chamber 3. This picking device 8 has one transport device each for the storage cassettes, the sample plates and the sample tubes. It is arranged in a moveable manner above the Dewar flasks 4. As can be seen from
The storage arrangement furthermore comprises a first cooling device 9a for producing the interior temperature Ti in the chamber 3 as well as a second cooling device 9b for producing the storage temperature Ts in the Dewar flasks 4.
The chamber 3 is accessible via a door 11, which is large enough to accommodate the Dewar flasks 4.
A first embodiment of a Dewar flask 4 is shown in
A positioning drive 22 is used to rotate the carousel 18 around the rotational axis 16 and to bring it into defined positions.
The storage cassettes 20 are arranged in several concentric circles around the rotational axis 16, positioned radially by means of vertical walls 24 and are moveable in the vertical direction.
The lid 5 can be automatically opened and closed with a door drive 26. It is arranged on the top of the Dewar flask 4 and positioned and dimensioned such that when the lid 5 is opened, each storage cassette 20, which has been rotated with the positioning drive 22 into the region of the door opening, can be drawn out from above. Preferably, the horizontal diameter of the door opening is smaller, however, than half the horizontal diameter of the Dewar flask 4 so that an excessive loss of cooling can be avoided when opening the lid 5.
A second embodiment of a Dewar flask is shown in
In the embodiment according to
The storage cassette forms a plurality of storage sites arranged one above the other, each of which can accommodate a sample plate. They are structured such that they ensure a high mechanical precision over a very wide temperature range. Furthermore, they have centering and transport devices, which render possible a high mechanical positioning precision and automatic transport.
In the exemplary embodiment shown each storage site is formed by several angles 40, 42. These angles project inwards from the side walls 30 (angle 40) or the back wall 32 (angle 42) and form lateral and rear supports for the sample plates. The angles 42 on the back wall 32 have on their front edge retention elements 44 (see
The side walls 30 of the storage cassettes 20 are bent upwards at the front and thus form bent-up regions 46, with which the storage cassette 20 is positioned laterally in the Dewar flask 4. As shown in
As can be seen in particular from
Predetermined bending points 39 are provided between at least one part of the bent-up sections of the piece of sheet metal, in particular in the form of elongated holes or slots, which facilitate a locationally precise bending of the piece of sheet metal during production.
Advantageously, the outline of the piece of sheet metal is cut by means of laser processing and the predetermined bending points 39 are also produced with the laser in the same step so that a high relative positioning accuracy is ensured.
The storage cassette shown is suitable not only for use in the storage arrangement described here, but also for use for other purposes, e.g., in general for storage of laboratory objects (such as, e.g., microtitration plates) inside and outside climate-controlled cabinets.
The picking device 8 is shown in more detail in
At least one cassette lift 60 is arranged on the carriage 56, with which cassette lift storage cassettes can be removed from the Dewar flasks 4 in the vertical direction and inserted therein again.
In the embodiment according to
The structure of the cassette lift is described below.
Furthermore, a handling device 100 is provided on the carriage 56. In the embodiment according to
The structure and the function of the handling device 100 correspond essentially to those of the handling device according to WO 02/059251.
The handling device 100 comprises a vertical guide 102, on which a handling carriage 104 is arranged in an automatically moveable manner in the vertical direction. A scoop 106 that can be extended horizontally is provided on the handling carriage 104. The scoop 106 can preferably be pivoted by at least 180° about a vertical axis so that in the embodiment according to
A climate controlled cabinet 110 can be provided outside the outer housing at the location of the transfer station 108, which climate controlled cabinet is able to exchange laboratory objects or storage plates with the transfer station 108.
Furthermore, a sample removal device can also be provided on the carriage 56, with which sample removal device it is possible to remove a sample tube from a sample plate removed from a cassette or to add a sample tube to such a plate without the sample plate having to leave the climatic chamber 2. This measure reduces the dwell time of the samples outside the storage temperature and increases the sample throughput by reducing the transport paths. A suitable construction of a sample removal device is disclosed in EP 2078961.
A first telescopic section 62 is attached to the carriage 56 in a stationary manner. A first vertical rail 69 is arranged on the first telescopic section 62, on which first vertical rail a first vertical drive 66 is arranged in a slidable manner. The vertical drive 66 is connected via a first guide 70 to the first vertical rail 69 and engages with a sprocket 72 in a gear rack 74 on the first telescopic section 62.
Furthermore, a second vertical rail 76 is arranged on the first telescopic section 62, to which second vertical rail the second telescopic section 64 is attached in a vertically moveable manner. It is connected to the first vertical drive 66 via a flexible, strong, low-temperature resistant belt or a chain 80 deflected at the upper end of the first telescopic section 62, so that a lowering or raising of the first vertical drive 66 causes a raising or lowering of the second telescopic section 66 by the same height relative to the first telescopic section 62. Thus the second telescopic section 64 can be extended or retracted in a telescopic manner with the first vertical drive 64.
A third vertical rail 82 is arranged on the second telescopic section 64, on which third vertical rail an arm 84 of the cassette lift 60 is supported in a vertically moveable manner. The second vertical drive 68 is designed to move the arm 84 vertically with respect to the second telescopic section 64. In the embodiment shown in
A gripper device 88 with a gripper drive 89 is arranged on the arm 84, with which gripper drive the handle 36 of a storage cassette 20 can be seized from above.
At least one centering element 90 is provided at a fixed height on the carriage 56 or on the first telescopic section 62 above the gripper device 88, which centering element forms a seat tapering upwards for accommodating a storage cassette 20, when the storage cassette is moved into its uppermost position with the cassette lift 60. Since at the same time the gripper device 88 has some clearance at the side, the centering element 90 defines the horizontal position of the raised storage cassette 20 and thus makes it possible to exactly align the storage cassette horizontally.
The third embodiment of the cassette lift is not based on a telescopic arrangement of elements. Instead, the chain 80 together with rollers 96, 97 forms a pulley which is used to lower the gripper device 88 into the Dewar flasks 4. To this end, the chain is deflected over at least one lower and at least one upper roller 96 and 97 respectively, cf.
In the embodiment shown, the vertical drive is arranged on the first vertical rail 69 of a rail carrier 62 (
The chain 80 deflected at the upper end of the cassette lift 60 hangs vertically downwards and bears on its lower end the gripper device 88, which, as in the second embodiment of the cassette lift, is formed by an electromagnet, with which the respective storage cassette can be retained magnetically. (In
In order to stabilize the chain 80 laterally somewhat, a guide element 98 is provided, which is guided on a second vertical rail 76 in a longitudinally slidable manner. The second vertical rail 76 is likewise arranged on the rail carrier 62. The guide element 98 forms a lateral guide for the chain 80, preferably an eyelet 116, through which the chain 80 runs. In the lowered position of the storage cassette 20 (cf.
The embodiment according to
The use of a pulley is furthermore advantageous because it makes it possible to reduce the vertical stroke of the motor and thus the installation height. However, the chain or the belt 80 does not necessarily need to be arranged in a pulley. Instead of a pulley it is also possible e.g. to roll up the belt or the chain 80 on a driven roller or reel, or to unroll it therefrom, as shown in the embodiment for the chain 94 shown in
Additionally or alternatively to the centering elements 90 and 91, a centering element 95 can also be provided on the Dewar flask 2, as is shown in
In the embodiment according to
As shown in
The back wall 32 of the storage cassettes 20 is structured such that the holder elements 107 have room to be brought from below behind a laboratory object held in the storage cassette 20. For this purpose the back wall 32, as shown in
It is mentioned in the above description that the storage arrangement 1 as well as the storage cassettes 20 are used to store sample tubes. However, they are also suitable for storing samples in another form, generally suitable for storing laboratory objects. These can be, e.g., biological or chemical samples. A typical use also relates to the storage of laboratory samples in microtitration plates, in which case the sample plates are embodied as microtitration plates. It is also conceivable that, instead of the sample plates, sample holders, e.g., flasks, are used, which each hold only one sample.
While preferred embodiments of the invention are described in the present application, it should be noted that the invention is not restricted thereto and can also be carried out in another manner within the scope of the following claims.
It is noted that the foregoing examples have been provided merely for the purpose of explanation and are in no way to be construed as limiting of the present invention. While the present invention has been described with reference to an exemplary embodiment, it is understood that the words which have been used herein are words of description and illustration, rather than words of limitation. Changes may be made, within the purview of the appended claims, as presently stated and as amended, without departing from the scope and spirit of the present invention in its aspects. Although the present invention has been described herein with reference to particular means, materials and embodiments, the present invention is not intended to be limited to the particulars disclosed herein; rather, the present invention extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims.
Number | Date | Country | Kind |
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1968/10 | Nov 2010 | CH | national |