Dispensing apparatus provided with a cooling unit
11092377 · 2021-08-17
Assignee
Inventors
Cpc classification
F28F2255/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B67D1/0861
PERFORMING OPERATIONS; TRANSPORTING
F25D19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D31/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2331/802
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B67D1/00
PERFORMING OPERATIONS; TRANSPORTING
F25D31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A beverage container cooling unit has: (a) a housing having a slot for receiving a container therein, (b) a cooling element having a cold supply, (c) a heat conductive panel enabling heat transfer between a container provided in the slot and the cold supply; wherein the heat conductive panel has two material layers fixed against one another: (I) a first material layer defining a cooling surface facing the container receiving slot and an opposed surface, said first layer made of a material having a thermal expansion coefficient of X.sub.1; (ii) a second material layer having a contact surface facing positioned against the opposed surface of the first material layer and a second opposed surface, the second material layer having a thermal expansion coefficient of X.sub.2, different from X.sub.1, the difference in thermal expansion causing the conductive panel to bulge at a change in temperature.
Claims
1. A beverage container cooling unit comprising: (a) a housing comprising a slot for receiving a container therein; (b) a cooling element comprising a cold supply; (c) a heat conductive panel enabling heat transfer between the container provided in the slot and the cold supply; wherein the heat conductive panel comprises two material layers fixed against one another: (I) a first material layer defining a cooling surface facing the container receiving slot and an opposed surface, said first layer made of a material having a thermal expansion coefficient of X.sub.1; (ii) a second material layer having a contact surface facing the opposed surface of the first material layer and a second opposed surface, the second material layer having a thermal expansion coefficient of X.sub.2, different from X.sub.1, the difference in thermal expansion, causing the conductive panel to bulge at a change in temperature, wherein X.sub.1>X.sub.2, such that upon cooling the heat conductive panel bulges to define a concave shape facing the slot for receiving the container.
2. The beverage container cooling unit according to claim 1, wherein said first material layer, defining the cooling surface, is manufactured in a material having a thermal expansion coefficient X.sub.1 of at least 8×10.sup.−6 K.sup.−1, preferably at least 10×10.sup.−6 K.sup.−1, or more, such as aluminium.
3. The beverage container cooling unit according to claim 1, wherein said second material layer is manufactured in a material having a thermal expansion coefficient X.sub.2 of at most 6×10.sup.−6 K.sup.−1, preferably at most 4×10.sup.−6 K.sup.−1, or less, such as invar.
4. The beverage container cooling unit according to claim 1, the heat conductive panel comprising a socket in thermal conductive contact with the first material layer and enabled to contact the cold supply of the cooling element.
5. The beverage container cooling unit according to claim 4, comprising a regulator allowing varying the distance between the socket and the cold supply.
6. The beverage container cooling unit according to claim 1, comprising a pulse generator with an output coupled to a motion producing means for cyclically producing a mechanical motion of a beverage container provided in the slot.
7. A beverage dispensing apparatus comprising the cooling unit as according to claim 1.
8. The beverage dispensing apparatus according to claim 7, comprising a first container containing a concentrated beverage component and fluidly connected to a dispense tap by a first dispense line and a second container or reservoir containing a diluent and fluidly connected to the dispense tap by a second dispense line, the cooling unit integrated in the apparatus for cooling the concentrated beverage container and/or the container or reservoir containing the diluent.
9. The beverage dispensing apparatus according to claim 8, comprising a mixing unit having an inlet in fluid communication with the first and second dispense lines and an outlet in fluid communication with the dispense tap.
10. The beverage dispensing apparatus according to claim 9, comprising a carbonation unit, preferably an in-line carbonation unit, having an inlet in fluid communication with the second container or reservoir containing the diluent and an outlet in fluid communication with the dispense tap, the cooling unit integrated in the apparatus for cooling the diluent container.
11. The beverage dispensing apparatus according to claim 10 is a domestic apparatus suitable for dispensing a carbonated malt-based beverage.
12. The beverage dispensing apparatus according to claim 11 an on-trade apparatus suitable for dispensing a carbonated malt-based beverage.
13. The beverage dispensing apparatus according to claim 7, comprising a mixing unit having an inlet in fluid communication with the first and second dispense lines and an outlet in fluid communication with the dispense tap.
14. The beverage dispensing apparatus according to claim 7, comprising a carbonation unit, preferably an in-line carbonation unit, having an inlet in fluid communication with the second container or reservoir containing the diluent and an outlet in fluid communication with the dispense tap, the cooling unit integrated in the apparatus for cooling the diluent container.
15. The beverage dispensing apparatus according to claim 7 is a domestic apparatus suitable for dispensing a carbonated malt-based beverage.
16. The beverage dispensing apparatus according to claim 7 an on-trade apparatus suitable for dispensing a carbonated malt-based beverage.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) For a fuller understanding of the nature of the present invention, reference is made to the following detailed description taken in conjunction with the accompanying drawings in which:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
(5) As illustrated in
(6) The foregoing elements will be discussed in more details in continuation. The gist of the invention is that the cooling unit (2) comprises a heat conductive panel (2H) comprising two material layers fixed against one another (
the difference in thermal expansion, causing the conductive panel to bulge at a change in temperature.
(7) With fixed it is indicated that both layers are unified to make an integral body, such that upon bending of one of the layers, the other layer bends along.
(8) In the embodiment of
(9) The cooling unit comprises a cold source (2C) for cooling the conductive panel. Any type of cold source known in the art can be used. Typically compressor based refrigeration systems or thermoelectric cooling systems are well suited for cooling the conductive panel. Any other method can, however, be used without departing from the present invention. The cooling unit is preferably provided with insulation material (2i) arranged such as to enhance heat exchange only from the conductive panel surface facing the beverage container receiving slot.
(10) This heat exchange is preferably obtained through a socket (2S) that is part of the heat conductive panel (SH), and connects the cold source with the first material layer of heat conductive panel in a in thermal conductive manner. The socket is preferably manufactured in one piece with the first layer (2.1) and protrudes through the second layer (2.2) of the heat conductive panel as depicted in
(11) It is preferred to orient the heat conductive panel such that the second material layer has a thermal expansion coefficient X.sub.2 that is smaller than the thermal expansion coefficient X.sub.1 of the first material layer that is connected to the cold supply. As such, the first layer contracts more than the second layer upon cooling of the conductive panel as a result of which the conductive panel bulges to form a concavity towards the beverage container positioned in the appointed slot. The result is a snugly fit of the conductive plate with the container, that preferably has an elliptical or cylindrical cross section, thereby increasing the effective contact area and allowing efficient cooling of the beverage contained in the container. The cooling unit according to the present invention is particularly convenient for containers of a type that do not have a very narrowly defined cross section, such as blow-moulded containers or larger (1.5 l or more) metallic containers, as the conductive panel adapts its cross section to the containers outer surface upon cooling.
(12) Optionally, the distance X between the socket (2S) and the cold supply (2C) can be varied. Such variation effectively allows controlling the temperature of the heat conductive panel, especially when the heat conductive panel is manufactured from thin film layers having a very limited heat storage capacity. When a tight contact between the socket and the cold supply is established; the cold source will cool the heat conductive panel or maintain the heat conductive panel at a low temperature (eg. −2° C.). At this low temperature, the heat conductive panel is bulged and clamps a container (C) positioned in the slot. When the contact between the socket and the cold supply is broken, an air layer is formed between the socket and the heat conductive panel, thereby insulating the heat conductive panel from the cold source. Depending on the ambient temperature and eventually the temperature of a container in contact with the heat conductive panel, the heat conductive panel will start warming and bulging of the heat conductive panel will decrease, thereby decreasing the contact area between container and heat conductive panel, making that even when the container is cooled to a desired temperature of eg. 2° C., the heat conductive panel will start heating up by air present in the housing and bulging of the heat conductive panel will further decrease.
(13) As the heat conductive panel is preferably dimensioned to enwrap the container over a section of more than 180° in cross section, cooling of the heat conductive panel (socket in contact with the cold supply) will allow effectively tightly clamping the container and as such, due to the good contact between the container and the heat conductive panel, effectively cool the container. When the contact between the cold supply and the socket is broken (distance X increases), the temperature of the heat conductive panel will increase (the container will always be slightly warmer than the cold supply) and bulging of the heat conductive panel will decrease, thereby decreasing the contact area between the heat conductive panel and the container such that even when the container is relatively cool, the heat conductive panel will warm up, eventually to a higher temperature than the container and the bulging of the heat conductive panel will decrease to a rate wherein the container can easily be removed from the slot.
(14) Varying the distance between the socket of the heat conductive panel and the cold supply can be achieved by a regulator working on a large variety of principles well known in the art such as by means of one or more screws, a solenoid, a notch, etc. . . .
(15) In a preferred embodiment, the cooling unit further comprises a pulse generator (P) with an output coupled to a motion producing means (M) for cyclically producing a mechanical motion of a beverage container provided in the slot. (Electronic) Pulse generators are known in the art for over thirty years and will not be discussed in further detail. The motion producing means can be any kind of device or unit that allows cyclically mechanically hitting the container or the heat conductive panel, thereby generating a motion (agitation) of the beverage stored in the container. Such agitation is believed to improve the cooling efficiency. Examples of motion producing means included solenoids, a revolving notch, etc. . . .
(16)
(17) Such embodiment of the beverage dispensing apparatus is particularly suited for use as a home appliance for dispensing a beverage.
(18)
(19)