Test tube with identification device and corresponding production method
10154665 ยท 2018-12-18
Assignee
Inventors
- Dominique Charles Joseph Dutscher (Haguenau, FR)
- Martino Marcolin (Piove di Sacco, IT)
- Francesco Tamiazzo (Piove di Sacco, IT)
- Valter Veronese (Piove di Sacco, IT)
Cpc classification
C12M45/22
CHEMISTRY; METALLURGY
A01N1/0268
HUMAN NECESSITIES
Y10T29/49826
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01L3/502
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/1894
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A test tube, suitable to be immersed in a cryogenic fluid, comprises a containing body having a perimeter wall that defines a containing compartment, a bottom wall, disposed inside the latter to close it at the lower part, and a housing seating, inside the perimeter wall and outside the containing compartment. A support element for an identification code is suitable to be inserted into the housing seating, with at least a free surface facing toward the outside of the housing seating on the opposite side with respect to the bottom wall. In correspondence to said housing seating, mechanical constraint means are provided in cooperation with said perimeter wall of the containing body and with a peripheral portion of the free surface of the support element, in order to constrain the latter in a defined axial position with respect to the containing body.
Claims
1. Test tube, suitable to be immersed in a cryogenic fluid, comprising a containing body having a perimeter wall that defines a containing compartment, the perimeter wall having a through aperture adjacent an end, a bottom wall having an opening, disposed inside said containing compartment to close it at the lower part, and a housing seating, inside said perimeter wall and outside said containing compartment, a support element sized for insertion in the housing seating, the support element including an identification code, said support element having at least a free surface facing toward the outside of said housing seating on the opposite side with respect to said bottom wall, and including an outlet channel formed by cooperating portions of the bottom wall and the support element and arranged to cooperate with the aperture of the perimeter wall and the opening of the bottom wall to discharge said cryogenic fluid outside of said test tube to thus expel said cryogenic fluid from said housing seating via the through aperture, and mechanical constraint means for constraining defined at least in part by a portion of said perimeter wall of said containing body and with a peripheral portion of said free surface of said support element, in order to constrain the support element in a defined axial position with respect to said containing body, said support element directly abutting against said bottom wall.
2. Test tube as in claim 1, wherein the identification code is stored in an RFID tag.
3. Test tube as in claim 2, wherein the RFID tag is disposed adjacent an outside portion of the support element.
4. Test tube as in claim 1, wherein said mechanical constraint means comprise at least one overhang, made in the internal part of said perimeter wall with respect to said housing seating.
5. Test tube as in claim 4, wherein said at least one overhang has at least one support surface able to cooperate with said peripheral portion of said free surface of said support element, to constrain it axially inside said housing seating.
6. Test tube as in claim 4, wherein said at least one overhang is obtained by upsetting one end of said perimeter wall.
7. Test tube as in claim 1, wherein said constraint means comprise at least a holding lip, made in the lower end edge of said perimeter wall, protruding toward the inside of said housing seating, and at least partly located in contact with said peripheral portion of said free surface of said support element, to constrain it axially inside said housing seating.
8. Test tube as in claim 7, wherein said at least one lip is made by bending at least part of one end of said perimeter wall.
9. Test tube as in claim 1, wherein, in correspondence to said housing seating, said perimeter wall is discontinuous to define the through aperture or to define a plurality of through apertures.
10. Test tube as in claim 9, including a plurality of outlet channels, the plurality of outlet channels made in said bottom wall a diverge from a central chamber also made in said bottom wall and with the plurality of outlet channels arranged to open toward said housing seating for said support element and communicating with corresponding ones of the through apertures.
11. Test tube as in claim 1, and further including additional outlet channels made in an upper wall of said support element, facing toward said bottom wall, said additional outlet channels being at least partly open toward said housing seating.
12. Test tube as in claim 1, and including additional outlet channels made in a lateral wall of said support element and facing toward said perimeter wall, said additional outlet channels being at least partly open toward said housing seating and toward the outside of said test tube.
13. Test tube as in claim 1, wherein said additional outlet channels are made through in said support element, to put said housing seating in communication with the outside of said test tube.
14. Method to make a test tube suitable to be immersed in a cryogenic fluid, comprising a first step in which a containing body is made, having a perimeter wall that defines a containing compartment, the perimeter wall having a through aperture adjacent an end, a bottom wall having an opening, disposed internally to said containing compartment to close it at the lower part, and a housing seating, inside said perimeter wall and outside said containing compartment, a second step in which a support element for an identification code is made, a third step, after said first and said second step, in which said support element is inserted into said housing seating, so that at least a peripheral portion of a free surface of said support element is facing toward the outside of said housing seating on the B opposite side with respect to said bottom wall, wherein said support element includes an outlet channel formed by cooperating portions of the bottom wall and the support element and arranged to cooperate with the aperture of the perimeter wall and the opening of the bottom wall to discharge said cryogenic fluid to outside of the of said test tube via the through aperture, and in that it also comprises a fourth step, after said third step, in which mechanical constraint means are made in correspondence to said housing seating for said support element, located in cooperation with said perimeter wall of said containing body and with at least part of said peripheral portion of said free surface of said support element, in order to constrain the latter in a defined axial position with respect to said containing body, said support element being positioned in direct abutment against said bottom wall.
15. Method as in claim 14, wherein during said fourth step a deformation of said perimeter wall is carried out, to obtain said mechanical constraint means.
16. Method as in claim 15, wherein said deformation carried out during said fourth step is made by bending at least a portion of an end of said perimeter wall.
17. Method as in claim 15, wherein said deformation carried out during said fourth step is obtained by upsetting at least a portion of an end of said perimeter wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other characteristics of the present invention will become apparent from the following description of some forms of embodiment, given as a non-restrictive example with reference to the attached drawings wherein:
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(9) To facilitate comprehension, the same reference numbers have been used, where possible, to identify identical common elements in the drawings. It is understood that elements and characteristics of one form of embodiment can conveniently be incorporated in other forms of embodiment without further clarifications.
DETAILED DESCRIPTION OF SOME FORMS OF EMBODIMENT
(10) With reference to the attached drawings, a test tube 10 made according to the present invention comprises a containing body 11 having in this case, merely by way of example, an elongated tubular shape along a longitudinal axis X, defined by a perimeter wall 12, which delimits a containing compartment 14 laterally. The bottom of the containing compartment 14 is defined by a bottom wall 13, transverse with respect to the longitudinal axis X and associated to the perimeter wall 12 at a determinate distance from one end 15 thereof.
(11) The space inside the perimeter wall 12 and outside the bottom wall 13, comprised between the end 15 of the perimeter wall 12 and the bottom wall 13, defines a housing seating 16, in which a discoid element 17 is suitable to be inserted with play, which acts as a support element for an identification code of the test tube 10, not shown in the drawings.
(12) In possible implementations, the identification code can be memorized in an RFID tag 29, shown as an example in
(13) The RFID tag 29 can be associated, for example applied stably, to the discoid element 17. One example of the position of the RFID tag 29 can for example be on the free surface 22. For example, it may be provided to glue the RFID tag 29. In another example the RFID tag 29 can be incorporated in the discoid element 17. Typically, the RFID tag 29 is positioned so that radio visibility is possible, for example so that it can be read for accessing and the information contained therein can be traced.
(14) The bottom walls 13 can have different shapes, depending on the different production needs, and, for example, can be convex (
(15) In some forms of embodiment, the discoid element 17 and the bottom wall 13 are positioned in close proximity, once installed. In particular, in some forms of embodiment, the discoid element 17 is in direct abutment, that is, in contact, against the bottom wall 13 of the containing body 11.
(16) During use, for example, when the discoid element 17 is positioned inside the housing seating 16, a first peripheral surface 20 thereof, and an external surface 21 of the bottom wall 13 are in contact with each other. This coupling allows the discoid element 17 to remain substantially orthogonal to the longitudinal axis X.
(17) A free surface 22 of the discoid element 17, opposite the first peripheral surface 20, and therefore facing toward the outside of the housing seating 16, has a peripheral portion 23, which can affect only part, or the whole extension of the free surface 22, which rests on a supporting surface 24 of an overhang 25, made in proximity to the end 15 of the perimeter wall 12 and facing toward the longitudinal axis X.
(18) In one form of embodiment (
(19) In a variant (
(20) The overhang 25, obtained by the plastic deformation of the perimeter wall 12, and which advantageously can be obtained by hot or ultrasound upsetting, has the function of mechanically constraining the discoid element 17 inside the housing seating 16, preventing it from translating along the longitudinal axis X.
(21) The mechanical constraint is effective both against gravity and against the thrust exerted by the expansion of the cryogenic fluid. In fact, gravity could cause the discoid element 17 to come out of the housing seating 16 if the end 15 were positioned below the perimeter wall 12. Furthermore, the cryogenic fluid, which can be for example nitrogen, if present in the housing seating 16, when it passes from the liquid state to the gaseous state, expands violently and can expel the discoid element 17.
(22) In this case, the end 15 of the perimeter wall 12 of the containing body 11 is discontinuous in a circumferential direction and is shaped so as to define three through apertures 26, which put the housing seating 16 into communication with the outside of the test tube 10. In this way, the through apertures 26 function as a mean to discharge the nitrogen, allowing the latter to come out of the housing seating 16.
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(24) Variants of this form of embodiment (
(25) In another variant (
(26) One form of embodiment of the test tube 10, shown in
(27) In another form of embodiment of the test tube 10 (
(28) In a variant of the previous form of embodiment (
(29) With reference to
(30) During use, the second discharge channels 35 each communicate with a corresponding through aperture 26, 226, or with a slit 126.
(31) The form of embodiment in
(32) In
(33) It is possible to provide any combination whatsoever of the forms of embodiment and variants described heretofore, as indicated by way of example in
(34) It is clear that modifications and/or additions of parts may be made to the test tube as described heretofore, without departing from the field and scope of the present invention.
(35) It is also clear that, although the present invention has been described with reference to some specific examples, a person of skill in the art shall certainly be able to achieve many other equivalent forms of test tube, having the characteristics as set forth in the claims and hence all coming within the field of protection defined thereby.