Draft Beer Machine
20180099853 ยท 2018-04-12
Assignee
Inventors
Cpc classification
B67D1/0868
PERFORMING OPERATIONS; TRANSPORTING
B67D1/0004
PERFORMING OPERATIONS; TRANSPORTING
F25D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2400/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D31/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B67D1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A draft beer machine comprising a cabinet and a refrigeration circuit inside the cabinet, including a compressor, a condenser, and refrigeration tubes. Beer pipes are also arranged inside the cabinet and a beer tap is fixed to the outside of the cabinet. The outer end of the beer pipes is connected to the beer tap. The refrigeration tube and the beer pipe are wound into a quick cooler of a round or an elliptic cylindrical shape, in a helical manner. The quick cooler comprises at least one mixing layer, which is formed by winding the refrigeration tube and the beer pipe into a round or elliptic cylinder, in an abreast and helical manner. In the same mixing layer, the adjacent beer pipe and refrigeration tube adhere to each other. The adjacent two mixing layers directly adhere or a thermal conductive medium is filled in between the two layers.
Claims
1. A draft beer machine, comprising: a cabinet (1); a refrigeration circuit inside the cabinet (1), the refrigeration circuit includes a compressor (2), a condenser (3), and refrigeration tubes (4); beer pipes (5) arranged inside the cabinet (1); a beer tap (6) fixed to an outside of the cabinet (1); and an outer end of the beer pipes (5) connected to the beer tap (6); wherein the refrigeration tube (4) and the beer pipe (5) are wound into a quick cooler (7) of a round or an elliptic cylindrical shape, the refrigeration tube (4) and the beer pipe (5) wound in a helical manner; wherein the quick cooler (7) comprises at least one mixing layer (72), each mixing layer is formed by winding the refrigeration tube (4) and the beer pipe (5) into a round or elliptic cylinder, and formed in an abreast and helical manner; wherein in the same mixing layer (72), the adjacent beer pipe (5) and the refrigeration tube (4) adhere to each other.
2. The draft beer machine as claimed in claim 1 wherein there are at least two adjacent mixing layers (72), the two adjacent mixing layers (72) adhere to each other, either directly or with a thermal conductive medium filled in between the two adjacent mixing layers (72).
3. The draft beer machine as claimed in claim 2 wherein a refrigeration layer (71) is arranged inside an innermost mixing layer (72); wherein the refrigeration layer (71) is formed by winding the refrigeration tubes (4) into a round or elliptic cylinder, the refrigeration layer (71) formed in a helical manner; and wherein the refrigeration layer (71) and the innermost mixing layer (72) adhere to each other, either directly or with a thermal conductive medium filled in between the refrigeration layer (71) and the innermost mixing layer (72).
4. The draft beer machine as claimed in claim 3 wherein a beer pipe layer (73) is sleeved over an outside of an outermost mixing layer (72); wherein the beer pipe layer (73) is formed by winding the beer pipes (5) into a round or elliptic cylinder, the beer pipe layer (73) formed in a helical manner; and wherein the beer pipe layer (73) and the outermost mixing layer (72) adhere to each other, either directly or with a thermal conductive medium filled in between the beer pipe layer (73) and the outermost mixing layer (72).
5. The draft beer machine as claimed in claim 4 wherein the quick cooler (7) is formed by winding the laterally abutting refrigeration tube (4) and beer pipe (5) simultaneously.
6. The draft beer machine as claimed in claim 4 wherein the quick cooler (7) is formed by winding the above or below abutting refrigeration tube (4) with the beer pipe (5) simultaneously.
7. The draft beer machine as claimed in claim 5 wherein the quick cooler (7) is formed by winding one refrigeration tube (4) and at least two beer pipes (5); or the quick cooler (7) is formed by winding one refrigeration tube (4) and one beer pipes (5).
8. The draft beer machine as claimed in claim 4 wherein each beer pipe (5) is wound into each mixing layer (72) and beer pipe layer (73) continuously, and refrigeration tube (4) is wound into each mixing layer (72) and the refrigeration layer (71) continuously.
9. The draft beer machine as claimed in claim 4 wherein the beer pipe (5) of the innermost mixing layer (72) is used to connect to a cask (10); wherein the beer pipe (5) of the beer pipe layer (73) is connected to the beer tap (6); wherein the refrigeration tube (4) of the outermost mixing layer (72) is connected to the condenser (3), and the refrigeration tube (4) of the refrigeration layer (71) is connected to the compressor (2).
10. The draft beer machine as claimed in claim 1 wherein the thermal conductive medium is thermal conductive mud or aluminum powder.
11. The draft beer machine as claimed in claim 1 wherein a shell (8) is arranged outside the quick cooler (7), the shell (8) used to accommodate the quick cooler (7); wherein the quick cooler (7) is located inside the shell (8); and wherein an insulation layer is set up between the quick cooler (7) and an inner wall of the shell (8).
12. The draft beer machine as claimed in claim 1 wherein there is a cold storage chamber (11) inside the cabinet (1), the cold storage chamber (11) used to hold a cask (10); wherein the cold storage chamber (11) has a single chamber structure; and wherein the quick cooler (7) is located in the cold storage chamber (11).
13. The draft beer machine as claimed in claim 1 wherein the quick cooler (7) is formed by winding one refrigeration tube (4) and at least two beer pipes (5) or the quick cooler (7) is formed by winding one refrigeration tube (4) and one beer pipes (5); wherein each beer pipe (5) is wound into each mixing layer (72) continuously.
14. The draft beer machine as claimed in claim 1 wherein a refrigeration circuit also includes evaporator (9), the evaporator (9) and the quick cooler (7) are series connected or parallel connected.
15. A quick cooler, comprising: a refrigeration tube (4), conducting refrigerant from a refrigeration circuit; at least one beer pipe (5), each beer pipe (5) has an outer end and an inner end to conduct beer or beverage to a tap (6); Wherein the refrigeration tube (4) and the beer pipe (5) are wound into a quick cooler (7) of a round or an elliptic cylindrical shape, the refrigeration tube (4) and the beer pipe (5) wound in a helical manner; wherein the quick cooler (7) comprises at least one mixing layer (72), each mixing layer is formed by winding the refrigeration tube (4) and the beer pipe (5) into a round or elliptic cylinder, and formed in an abreast and helical manner; wherein in the same mixing layer (72), the adjacent beer pipe (5) and the refrigeration tube (4) adhere to each other.
16. The draft beer machine as claimed in claim 15 wherein there are at least two adjacent mixing layers (72), the two adjacent mixing layers (72) adhere to each other, either directly or with a thermal conductive medium filled in between the two adjacent mixing layers (72).
17. The quick cooler as claimed in claim 16 wherein a refrigeration layer (71) is arranged inside an innermost mixing layer (72); wherein the refrigeration layer (71) is formed by winding the refrigeration tubes (4) into a round or elliptic cylinder, the refrigeration layer (71) formed in a helical manner; and wherein the refrigeration layer (71) and the innermost mixing layer (72) adhere to each other, either directly or with a thermal conductive medium filled in between the refrigeration layer (71) and the innermost mixing layer (72).
18. The quick cooler as claimed in claim 17 wherein the quick cooler (7) is formed by winding the laterally abutting refrigeration tube (4) and beer pipe (5) simultaneously, or the above or below abutting refrigeration tube (4) with the beer pipe (5) simultaneously.
19. The quick cooler as claimed in claim 18 wherein the quick cooler (7) is formed by winding one refrigeration tube (4) and at least two beer pipes (5); or the quick cooler (7) is formed by winding one refrigeration tube (4) and one beer pipes (5); each beer pipe (5) is wound into each mixing layer (72) and beer pipe layer (73) continuously, and refrigeration tube (4) is wound into each mixing layer (72) and the refrigeration layer (71) continuously.
20. The quick cooler as claimed in claim 18 wherein A shell (8) is arranged outside the quick cooler (7), the shell (8) used to accommodate the quick cooler (7); wherein the quick cooler (7) is located inside the shell (8); and wherein an insulation layer is set up between the quick cooler (7) and an inner wall of the shell (8).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
DETAILED DESCRIPTION OF THE INVENTION
[0036] The embodiments of this invention will be described below and the technical solutions of the invention will be further illustrated in connection with the accompanying figures. However, the present invention shall not be limited to these embodiments.
First Embodiment
[0037] As shown in
[0038] As shown in
[0039] As shown in
[0040] As shown in
[0041] Furthermore, in this embodiment, the beer pipe (5) of the innermost mixing layer (72) is used to connect to the cask (10), and the beer pipe (5) of the beer pipe layer (73) is connected to the beer tap (6). The refrigeration tube (4) of the outermost mixing layer (72) is connected to the condenser (3), and the refrigeration tube (4) of the refrigeration layer (71) is connected to the compressor (2). The refrigeration fluid which outflows from the condenser (3) has a fairly low initial temperature. Namely, the end connected to the condenser (3) is the inlet end of the refrigeration tube (4). In the present invention, the refrigeration tube (4) in the outermost mixing layer (72) is connected to the condenser (3), ensuring that the temperature in the outermost mixing layer (72) is always fairly low. Namely, the inlet end of the refrigeration fluid in the quick cooler (7) is located in the outermost mixing layer (72), and the outlet end is located in the innermost refrigeration layer (71) of the whole quick cooler (7). Also, the inlet end of beer in the present invention is located in the innermost mixing layer (72), and the outlet end is located in the outermost beer pipe layer (73) of the whole quick cooler (7). Therefore, the outlet end of beer is next to the inlet end of the refrigeration fluid, and the inlet end of beer is next to the outlet end of the refrigeration fluid. Beer and the refrigeration fluid form a relative counter-flow formation, ensuring that the outlet end of beer can always has a fairly low temperature and this further improves the refrigeration efficiency of discharged beer. Of course, with this arrangement, cooling capacity in the deeper refrigeration tube (4) becomes less and less, resulting in a worse refrigeration effect in the deeper interior. However, in this embodiment, an extra one refrigeration layer (71) is arranged inside the innermost mixing layer (72) to ensure an enhanced refrigeration effect.
[0042] As shown in
Second Embodiment
[0043] The structure and principle of this embodiment is basically the same as that of the first embodiment. The differences are:
[0044] As shown in
Third Embodiment
[0045] The structure and principle of this embodiment is basically the same as that of the first embodiment. The differences are:
[0046] The two adjacent tube layers do not directly adhere; instead, a thermal conductive medium is filled in between the two layers. The thermal conductive medium is thermal conductive mud. Namely, the thermal conductive mud is filled in between the beer pipe layer (73) and the outermost mixing layer (72), between the adjacent mixing layers (72), and between the innermost mixing layer (72) and the refrigeration layer (71). The thermal conductive mud can be kneaded into various shapes as required, and be filled in between two adjacent tube layers. This allows two tube layers to adhere tightly, reduce the thermal resistance and transfer cooling capacity quickly and effectively to refrigerate beer, so as to improve the refrigeration efficiency of beer. Of course, aluminum powder has a fairly good thermal conductivity and it can effectively transfer cooling capacity, so it is applicable to this situation.
Fourth Embodiment
[0047] The structure and principle of this embodiment is basically the same as that of the first embodiment. The differences are:
[0048] As shown in
[0049] The description of the preferred embodiments thereof serves only as an illustration of the scope of the invention. It will be understood by those skilled in the art that various changes or supplements in form and details may be made therein without departing from the scope of the invention as defined by the appended claims.
[0050] Although the terms of Cabinet (1), Cold Storage Chamber (11), Door (12), Compressor (2), Condenser (3), Refrigeration Tube (4), Beer Pipe (5), Beer Tap (6), Quick Cooler (7), Refrigeration Layer (71), Mixing Layer (72), Beer Pipe Layer (73), Shell (8), Insulation Layer (81), Evaporator (9), Cask (10), etc. are often used herein, it does not exclude the possibility to use any other terms. Using such terms is only to describe or explain the nature of the present invention more conveniently. Any additional restrictions are contrary to the scope of the present invention.
LIST OF REFERENCE NUMERALS
[0051] 1 Cabinet [0052] 11 Cold Storage Chamber [0053] 12 Door [0054] 2 Compressor [0055] 3 Condenser [0056] 4 Refrigeration Tube [0057] 5 Beer Pipe [0058] 6 Beer Tap [0059] 7 Quick Cooler [0060] 71 Refrigeration Layer [0061] 72 Mixing Layer [0062] 73 Beer Pipe Layer [0063] 8 Shell [0064] 81 Insulation Layer [0065] 9 Evaporator [0066] 10 Cask