The present invention concerns a modular incubator for microbiological and cellular cultures.
The known incubators used in biology normally comprise a chamber defined inside a metal supporting box, externally insulated and provided with an adjustable heater to maintain the chamber at optimal temperature. The incubator is provided with autonomous means for controlling, in addition to the temperature, other ambient conditions inside the chamber, for example the percentage of carbon dioxide and the percentage of humidity.
The known incubators cannot be used for simultaneously incubating cultures to be used in very different environments, for example cell regeneration, fertility treatment and transplants, since the cultures in these areas may require very different incubation conditions. The incubator must therefore be used for different cultures at different times or have several incubators for simultaneous use, with consequent increase in the purchasing and management costs for said equipment.
The object of the present invention is to produce an incubator which is free from the drawbacks described above and, at the same time, is easy and inexpensive to produce.
According to the present invention, a modular incubator is provided as defined in the attached claims.
The present invention will now be described with reference to the accompanying drawings, which illustrate a non-limiting embodiment example, in which:
In
The outer box 6 of each incubator module 5 has a parallelepipedal shape adapted to be arranged, in use, with an own longitudinal axis 6a in a horizontal direction and having a rectangular cross section. Each cell 4 consists of a channel having a rectangular cross section and a length such as to completely contain the outer box 6. In particular, the cell 4 is defined by two vertical walls, i.e. two lateral walls 8 and 9, and two horizontal walls, i.e. an upper wall 10 and a lower wall 11. The cell 4 has a frontal opening 12 (
With reference also to
To facilitate the coupling between the wheels 17 and the track 15 during insertion of the incubator module 5 into the cell 4, a trolley 19 is provided having a respective track 20 with the same gauge as the track 15 and fixed on a surface 21 of the trolley 19 which is height-adjustable in order to align the track 20 with the track 15. In
The track 20 of the trolley 19 can be coupled to the track 15 of the cell 4 by means of a male-female coupling 22, which can be seen in
With reference to
The coupling between connectors 23 and connectors 25 is of known type, for example male-female with quick connection-disconnection. For example, with reference to the detail 3A of
Each group of connectors 23, 25 comprises a respective sub-group of pneumatic connectors and a respective sub-group of electrical connectors. Each pneumatic connector of the group of connectors (on the incubator module 5 side) can be coupled to a respective pneumatic connector of the group of connectors 23 (on the cell 4 side). The pneumatic connectors of the group of connectors 25 communicate with the relative incubation chamber 7. Analogously, each electrical connector of the group of connectors 25 can be coupled to a respective electrical connector of the group of connectors 23. In this way, the coupling between the group of connectors 23 and the group of connectors 25 provides a multiple connection with several airtight channels and several electrical channels.
Each pneumatic connector of the group of connectors 23 of each cell 4 and the corresponding pneumatic connector of the group of connectors 25 of each incubator module 5 are associated with a relative aeriform substance to be introduced into the incubation chamber 7 of the incubator module 5 to carry out the incubation process, or associated with a relative aeriform substance or mixture of aeriform substances to be expelled from the incubation chamber 7 to allow a sterilization cycle before the incubation process or, respectively, to adjust the incubation process.
With reference to
In particular, the source 26 consists of a delivery device for delivering carbon dioxide, which is housed inside a cabinet 32 of the modular incubator 1 positioned outside the housing structure 2 and is fed by an external circuit, not illustrated, by means of a relative feed duct 26a. The source 27 consists of a water vapour generator which is also housed in the cabinet 32 and supplied with demineralized water and air through respective feed ducts 27a and 27b to provide a flow of humidified air. The source 28 consists of a hydrogen peroxide steam generator, which is enclosed in a respective cabinet mounted on a trolley, illustrated in
Each of the above-mentioned three pneumatic connectors of the group of connectors 23 is connected to the relative delivery manifold 29, 30, 31 by means of a respective valve 33, 34, 35 (
A pneumatic connector of the group of connectors 23 of each cell 4 communicates with an inlet 28b of the hydrogen peroxide steam generator 28 through a return duct 37 to define, together with the delivery duct 31, a closed circuit used for sterilization of the relative incubation chamber 7. Another pneumatic connector of the group of connectors 23 of each cell 4 communicates with an exhaust manifold 38 to expel the humidified air from the relative incubation chamber 7 and therefore promote a circulation of humidified air enriched with carbon dioxide inside the incubation chamber 7. Said circulation of air inside each incubation chamber 7 is regulated by the relative valves 33 and 34.
The delivery manifolds 29-31, all the valves 33-35 and the return manifolds 37 and 38 are part of the modular incubator 1 and, as shown in the example of
The connections between pneumatic connectors of the group of connectors 23 and the manifolds 29-31, 37, 38 and between the manifolds 29-31, 37 and the sources 26-28 are provided by rigid or flexible pipes, only some of which are illustrated in
Again with reference to
Each incubator module 5 comprises a plurality of sensors (not illustrated) arranged in the relative incubation chamber 7 to monitor the incubation process and the sterilization cycle inside the incubation chamber 7. In particular, said sensors comprise a first sensor for measuring the percentage of humidity, a second sensor for measuring the percentage of carbon dioxide, a third sensor for measuring the concentration of hydrogen peroxide and a fourth sensor for measuring the temperature. Each incubator module 5 further comprises electric heating resistances (not illustrated) to heat the walls of the incubation chamber 7.
The electrical connectors of the first group of connectors 23 of each cell 4 are connected to the control panel 36, while the corresponding electrical connectors of the group of connectors 25 of each incubator module 5 are connected to the relative sensors and to the electrical resistances. Therefore, when the connectors 23 are coupled to the connectors 25, the control panel 36 is able to electrically power the sensors and the electrical heating resistances and receive signals transmitted by said sensors.
The control panel 36 is configured to control the electrical heating resistances and the valves 33-35 as a function of the signals transmitted by the sensors so as to maintain the desired ambient conditions in the incubation chamber 7, said ambient conditions being determined substantially by the following parameters: temperature, percentage of humidity and percentage of carbon dioxide for the incubation process; temperature and concentration of hydrogen peroxide vapours for the sterilization cycle. Furthermore, the control panel 36 is designed to allow an operator to program the above-mentioned parameters for each cell 4, and therefore for the relative incubator module 5 inserted in said cell 4. Therefore, the control panel 36 is able to control the electrical heating resistances and the valves 33—so as to maintain, in the incubation chamber 7 of each incubator module 5, the respective desired ambient conditions.
It is observed that maintenance of the desired temperature inside an incubation chamber 7 is obtained via two alternative methods:
With particular reference to
With reference to
With reference again to
With particular reference to
Although the invention described above refers in particular to a precise embodiment example, it should not be considered limited to said embodiment example, since it comprises all variations, modifications or simplifications that would be evident to a person skilled in the art, such as:
One of the main advantages of the modular incubator 1 described above is that it can carry out several incubation processes simultaneously in a corresponding number of incubator modules 5 characterized also by different parameters, such as temperature, percentage of humidity, percentage of carbon dioxide and concentration of hydrogen peroxide vapours, efficiently using common sources of aeriform substances, such as water vapour and carbon dioxide. Furthermore, the modular incubator 1 allows several sterilization cycles to be carried out simultaneously in a corresponding number of incubator modules 5 efficiently using a common source of hydrogen peroxide vapours. Lastly, the incubator module 5, once removed from the modular incubator 1, can be connected to an isolator, by means of the coupling between the β-RTP port 42 and the α-RTP port of the isolator, to allow access to the contents of the incubation chamber 7 without interrupting the sterility inside it.
Number | Date | Country | Kind |
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BO2015A000206 | Apr 2015 | IT | national |
Number | Name | Date | Kind |
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6365367 | Friedman | Apr 2002 | B1 |
20100112690 | Eddington | May 2010 | A1 |
20120083030 | Busujima | Apr 2012 | A1 |
20130005014 | Bell | Jan 2013 | A1 |
Number | Date | Country |
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2237816 | May 1991 | GB |
2006149232 | Jun 2006 | JP |
2010154793 | Jul 2010 | JP |
Number | Date | Country | |
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20210123011 A1 | Apr 2021 | US |
Number | Date | Country | |
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Parent | 15135986 | Apr 2016 | US |
Child | 17102200 | US |