COOLING DEVICE
20210310914 · 2021-10-07
Inventors
Cpc classification
G01N1/286
PHYSICS
F25D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a device, in particular for a biological sample grinding apparatus, comprising a first enclosure (18) comprising an internal chamber (32) intended to receive a material (57) capable of producing cold by sublimation under normal temperature and pressure conditions and comprising an opening (30) making it possible for a fluidic communication with an internal chamber of a second enclosure (20) through an opening (36) of it, the device further comprising an air circuit making the outside air communicate with the internal chamber (32) of the first enclosure (18), blasting means (76) making it possible for an air circulation in the air circuit from the outside up into the internal chamber (32) of the first enclosure (18).
Claims
1. A device, in particular for a biological sample grinding apparatus, comprising a first enclosure comprising an internal chamber intended to receive a material capable of producing cold by sublimation under normal temperature and pressure conditions and comprising an opening for a fluidic communication with an internal chamber of a second enclosure through an opening of said second enclosure, the device further comprising an air circuit making outside air communicate with the internal chamber of the first enclosure, a air blasting module for an air circulation in the air circuit from outside up to into the internal chamber of the first enclosure, as well as a measuring module for measuring the temperature in the internal chamber of the second enclosure and a controlling module for controlling the air blasting module according to the temperature in the internal chamber of the second enclosure.
2. The device according to claim 1, wherein the air circuit houses the air blasting module and comprises an outlet opening into an upper portion of the first enclosure.
3. The device according to claim 1, wherein the air circuit comprises an upstream conduit of which an upstream end opens into the outside air.
4. The device according to claim 3, wherein a downstream end of the conduit opens into a cavity of a double-walled cover, of which an internal wall comprises a plurality of passages opening into the internal chamber of the first enclosure.
5. The device according to claim 3, wherein said upstream conduit houses the air blasting module and is secured to the second enclosure, the air blasting module connected to an electrical supply module also supported by the second enclosure.
6. The device according to claim 1, wherein the air blasting module comprise a ventilator arranged at the inlet of the air circuit.
7. The device according to claim 1, wherein a cup for receiving said material is mounted fixed or removably inside the internal chamber of the first enclosure and comprises a lower wall comprising a plurality of orifices, the cup being positioned at a distance from a bottom wall of the first enclosure, wherein is formed the opening of the first enclosure.
8. The device according to claim 7, wherein thermal insulation elements are arranged between the cup and the bottom wall of the first enclosure around the opening of the first enclosure.
9. The device according to claim 1, wherein the first enclosure is arranged above the second enclosure and the opening of the first enclosure is formed in a bottom wall or lower wall, and wherein the opening of the second enclosure is formed in an upper wall of the second enclosure.
10. The device according to claim 9, wherein the first enclosure is mounted removably on the second enclosure.
11. The device according to claim 1, wherein the measuring module for measuring the temperature comprises a temperature sensor supported by an internal face of the second enclosure and in the proximity of the opening of the second enclosure.
12. The device according to claim 1, wherein a plate for supporting tubes intended to contain biological samples is arranged inside the chamber of the second enclosure, elements for driving the plate in an oscillatory movement about a rotation centre being also provided.
13. The device according to claim 1, wherein the internal chamber of the second enclosure is fluidically connected to the outside air.
14. A method for implementing the device according to claim 1, comprising: filling the internal chamber of the first enclosure with a material capable of producing cold by sublimation under normal temperature and pressure conditions, such as carbon dioxide in solid form; determining a target temperature to reach for the internal chamber of the second enclosure; and switching on the device so as to maintain the temperature of the internal chamber of the second enclosure at the target temperature by controlling an air flow supplying the chamber of the first enclosure.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
[0040]
[0041] The cold producing device 14 comprises a first enclosure 18 arranged above the second enclosure 20 belonging to the sample grinding device 12. As can be seen in
[0042] The first enclosure 18 comprises a side annular wall 24 extending in a vertical direction A and a bottom wall 26 connected to the lower edge of the side annular wall 24 and of a shape, substantially complementary to an upper wall 28 of the second enclosure 20 or lower enclosure. The bottom wall 26 or lower wall of the upper enclosure 18 comprises an outlet opening 30 establishing a fluidic communication between an internal chamber 32 of the upper enclosure 18 and an internal chamber 34 of the lower enclosure 20 by way of an inlet opening 36 of the upper wall 28 of the lower enclosure 20. The upper wall 28 of the lower enclosure 20 is connected on the perimeter thereof to a side annular wall 38 extending substantially in the vertical direction A. As can be seen in
[0043] The lower enclosure 20 is formed by a removable cap and a portion 47 of the chassis. The removable cap can be mounted pivoting on the streamlined lower chassis 48 of the assembly 10 (
[0044] The first enclosure 18 or upper enclosure comprises a cover pivoting 56 about a substantially horizontal axis. The external annular wall 24, the bottom wall 26 and the cover 56 together define the internal chamber 32, wherein is mounted removably a cup 58 intended to receive a material 57 capable of producing cold by sublimation under normal temperature and pressure conditions. The material 57 capable of being sublimated is preferably CO.sub.2 in solid or dry ice form which has the advantage of being easily able to be handled in a laboratory.
[0045] As represented in
[0046] Curved or bent vanes 70 are formed inside the cup 58 and extend from the curved wall 62 up to the side annular wall 66 of the cup 58. These vanes 70 ensure a maintaining of the material 57 capable of being sublimated substantially uniformly distributed in the cup 58 during the handling of it. The cup 58 is supported by structural elements 72 formed protruding from the bottom wall 26 of the first enclosure 18 (
[0047] Thermal insulation means are preferably arranged between the cup 58 and the bottom wall 26 of the first enclosure 18 around the opening 30 of the first enclosure 18 and between the cup 58 and the side wall 24, in the inserted housings 74 in order to limit the caloric losses by conducting cold towards the outside.
[0048] In order to establish an air circulation from the outside up to into the internal chamber 32 of the first upper enclosure, the device according to the invention comprises an air circuit, as well as blasting means 76 making it possible to establish the desired air flow direction (
[0049] The air circuit for supplying the internal chamber 32 of the first chamber 18 with air is made of two portions, an upstream portion formed by a conduit 78 secured to the lower enclosure 20 and more specifically, of the upper wall 28 of the lower enclosure 20 and a downstream portion formed by the cover 56. The upstream conduit 78 houses the blasting means 76 in the vicinity of the upstream end thereof opening into the outside air. It will be noted, that the air blasting means 76 are thus supported by the lower enclosure 20 and that the electrical supply thereof can thus be achieved by way of means for electrically supplying the sample grinding device 12. Thus, the upper enclosure 18 which is optional to the operation of the grinding device 12, can be designed without any electrical connection member or element, which greatly simplifies the production thereof.
[0050] As represented in
[0051] The air circulation is achieved as follows. The blasting means 76 pulse an air circulation direction in the upstream conduit 78 up to into the cavity of the cover 56. The air then passes through the passages of the internal wall of the cover 56, the air then circulating upon contact with the material 57, capable of being sublimated, housed in the cup 58 which is mounted in the chamber of the upper enclosure. Upon contact with air, the material 57 is sublimated more or less according to the air flow entering into the internal chamber 32. The cold air coming from the sublimation of the material 57 then circulates through the orifices 64 of the cup 58 into the opening 30 of the upper enclosure 18 and into the opening 36 of the second enclosure 20 up to into the chamber 34 in order to cool the tubes there, when they are subjected to a grinding action of the samples housed in the tubes 52.
[0052] In order to achieve an optimal cold air supply of the chamber 32 of the upper enclosure 18, the blasting means 76 are controlled by control means 46 making it possible to control the outside air flow pulsed in the air circuit according to the temperature in the chamber 34 of the lower enclosure 18. The controlling of the ventilator can be carried out with a controlling of the PWM type, which means “pulse width modulation”.
[0053] In a practical example of using the device according to the invention under standard laboratory conditions: temperature of the outside air of around 20° C. comprising a humidity rate of 50%, leading to a dew point temperature of +10° C., the sublimation of the solid CO.sub.2 produces twice more gaseous CO.sub.2 as air in transit. Thus, in the air/CO.sub.2 mixture obtained, the dilution of the water vapour causes the fall in the partial saturation pressure thereof to reach a dew point temperature of −10° C. (
[0054] It will be noted, that the air supply in the chamber 34 of the upper enclosure 20 does not induce any notable overpressure in this chamber 34 due to the pressure increase generated by the blasting means is low and there are air outlet orifices towards the outside of which the dimensions are sufficient for evacuating air towards the outside air and for maintaining the total pressure in the chamber 34 at the outside pressure. Thus, by the unclosed design of the chamber 34 and the low flow of blasting means, the pressure in the chamber 34 is always equal to the outside pressure, i.e. the atmospheric pressure, 1013 mbar inside the chamber, which makes it possible to decrease the temperature of the dew point during the addition of CO.sub.2 by sublimation of the dry ice.
[0055] Indeed, the sublimation of the dry ice produces a certain quantity of CO.sub.2 in the second chamber which highly dilutes the vapour pressure inside it and therefore the saturation pressure responsible for the condensation and for the frost. As the second chamber is not closed hermetically, in this there is always: Patm=Pair+Pvap=1013 mbar or Pvap=Psat×RH (Relative Humidity).
[0056] With the sublimation of the dry ice, there is: Patm=Pair+Pvap+PCO.sub.2=1013 mbar.
[0057] Thus, the vapour pressure will highly fall, for example down to 1 mbar, hence a very low saturation pressure, for example, 200 Pa for a laboratory atmosphere with a relative humidity of 50% and a negative dew point.
[0058] If the invention is particularly useful in a configuration, wherein the first enclosure is arranged above the second enclosure, to have a good capacity of the device and a flow of cold air from the top to the bottom, it is understood, that the invention can function with a first enclosure and second enclosure arranged relative to one another in the space differently and for example, side-to-side. The invention also covers embodiments, wherein the outlet opening 30 and the inlet opening 36 are connected to one another by a flexible or rigid conduit, generally by any means making it possible to produce a cold air flow between the chamber 32 of the first enclosure 18 and the chamber 34 of the second enclosure 20.