1. Field of the Invention
The present invention relates to an ice-making unit for a flow-down type ice maker having a pair of ice-making plates disposed facing each other with an evaporator constituting a refrigeration system in between.
2. Description of the Related Art
There is a flow-down type ice maker as an ice maker which continuously produces ice cubes (see, for example, Japanese Utility Model Laid-Open Publication No. S62-176669). The flow-down type ice maker has a pair of ice-making plates vertically disposed facing each other with an evaporator constituting a refrigeration system in between, and produces ice cubes by supplying ice-making water to the top sides (ice-making surfaces) of the ice-making plates cooled down by a refrigerant supplied to the evaporator, thereby producing ice cubes. The obtained ice cubes are separated and dropped down from the ice-making surfaces by deicing water.
As shown in
The evaporator 14 has straight portions extending laterally (horizontally) and curved portions 14a or folded portions sticking out sideward of the side portions of both ice-making plates 12, 12. A plurality of fixing portions 16 are provided at side portions of the ice-making plates 12, 12 which are coupled together by the fixing portions 16. The fixing portion 16 also serves as the mount base of a support member 20 for mounting the ice-making unit 10 onto the body of the ice maker. Side openings between the ice-making plates 12, 12 communicate with the space S, and are covered by the fixing portions 16 excluding the insertion space of the evaporator 14.
The support member 20 has a flange portion 22 bent so as to be able to abut on the body of the ice maker, and a cutaway portion 20a formed in such a way as to evade the curved portion 14a and an inlet/outlet portion 14b of the evaporator 14 which stick out from between the ice-making plates 12, 12 (see
In a deicing operation, deicing water is supplied between the pair of ice-making plates 12, 12 in the ice-making unit 10 by deicing water supply means (not shown) disposed above the ice-making unit 10 to accelerate melting of the frozen surfaces between ice cubes and the ice-making plate 12. Accordingly, the pair of ice-making plates 12, 12 are grimed over time with impurities such as mineralogical fur and calcium contained in the deicing water, it is desirable to regularly clean the ice-making plates 12, 12. Because the pair of ice-making plates 12, 12 are basically difficult to disassemble, however, cleaning by inserting a cleaning tool or the like in the space S to remove the grime adhered to the backside of each ice-making plate 12 is conducted.
Even if the cleaning tool is inserted in the space S from above or below to clean the opposing sides of the ice-making plates 12, 12, the insertion of the cleaning tool is interfered with by the straight portions of the evaporator 14, so that only the upper portion or the lower portion of the ice-making plate 12 is partially cleaned. It is necessary to insert the cleaning tool from the sides of both ice-making plates 12, 12 to clean the center portion of each ice-making plate 12. In this case, however, the curved portions 14a sticking out sideward of the ice-making plates 12, 12 interfere with an appropriate cleaning work. In addition, the side opening which communicates with the space S is mostly covered by the fixing portion 16 and the support member 20. This limits the portion where the cleaning tool is to be inserted, and decreases the degree of freedom of the cleaning work even if the cleaning tool is inserted, thus preventing the entire ice-making plate 12 from being cleaned.
Accordingly, it is an object of the present invention to overcome the inherent problem of the ice-making unit for the conventional flow-down type ice maker and provide an ice-making unit for a flow-down type ice maker which allows the insertion of a cleaning tool from the sides of both ice-making plates and appropriate cleaning work of the backside of each ice-making plate.
To achieve the object, an ice-making unit for a flow-down type ice maker according to the present invention includes:
a pair of ice-making plates;
an evaporator disposed between backsides of the ice-making plates and having straight portions extending laterally and curved portions sticking out sideward of the ice-making plates, the straight portions and the curved portions being repetitively zigzagged, wherein ice-making water is supplied down onto a top side of each ice-making plate cooled down by a refrigerant supplied to the evaporator in circulation, thereby producing ice cubes, in an ice-making operation, and deicing water is supplied down onto a backside of each ice-making plate, thereby separating ice cubes, in a deicing operation,
the curved portion being bent frontward or rearward of the ice-making plates more than a clearance between the ice-making plates so that the curved portion is retracted from a side opening defined between the ice-making plates.
An ice-making unit for a flow-down type ice maker according to a preferred embodiment of the present invention will be described below referring to the accompanying drawings. For the sake of descriptive convenience, like or same reference numerals are given to those components of the ice-making unit which are the same as the corresponding components of the ice-making unit for the flow-down type ice maker shown in
As shown in FIGS. 1 to 4, an ice-making unit 30 for a flow-down type ice maker according to the embodiment includes a pair of ice-making plates 32, 32 arranged substantially vertically, and an evaporator 34 held between the opposing sides (between the backsides) of both ice-making plates 32, 32. The evaporator 34 has straight portions 34a repetitively zigzagged in such a way as to extend laterally (horizontally). The ice-making unit 30 forcibly cools down both ice-making plates 32, 32 by circulating a refrigerant in the evaporator 34 which constitutes the a refrigeration system in an ice-making operation. The ice-making unit 30 is supported on the body of the ice maker via support members 40, 40 disposed on the respective sides of the ice-making unit 30.
The ice-making unit 30 is constructed by welding both ice-making plates 32, 32 to the evaporator 34. Both ice-making plates 32, 32 are separated from each other by the pipe diameter of the evaporator 14, thus defining a space S between the opposing sides of the ice-making plates 32, 32. Ice-making water supply means and deicing water supply means (both not shown) are disposed above the ice-making unit 30. In the ice-making operation, ice-making water is supplied to the top side (ice-making surface) of each ice-making plate 32 in the ice-making unit 30 by ice-making water supply means. In a deicing operation, deicing water is supplied between the opposing sides of the ice-making plates 32, 32 in the ice-making unit 30 by deicing water supply means. In the deicing operation, a hot gas (high-temperature refrigerant) is supplied to the evaporator 34 by operating a changeover valve in the refrigeration system. While the ice-making plates 32, 32 are formed by a metal plate having a relatively low heat conductivity, such as a stainless plate, the ice-making plates 32, 32 may be formed of other materials as well. While the evaporator 34 is formed by a pipe having a relatively high heat conductivity, such as a copper pipe, the evaporator 34 may be formed of other materials as well.
A plurality of projections 32a protruding outward and extending in the up and down direction are formed on each ice-making plate 32 by bending a thin plate in a wavy form. The projections 32a are arranged in parallel in the extending direction of the straight portions 34a of the evaporator 34. An ice-making area of the ice-making plate 32 is an internal portion surrounded by a pair of projections 32a, 32a. Ice-making water is supplied to the ice-making areas of the ice-making plate 32 by the ice-making water supply means.
Fixing portions 36, 36 are provided at the upper end and lower end of side portions of the opposing ice-making plates 32, 32, and the opposing side portions of the ice-making plates 32, 32 are coupled together via the fixing portions 36, 36. Each fixing portion 36 serves as the mount base of the support member 40, and has a screw hole 36a bored in approximately the center portion of the fixing portion 36 (see
The straight portions 34a of the evaporator 34 extend in the lateral direction of the pair of ice-making plates 32, 32. Curved portions 34b which are U-shaped folded portions of the evaporator 34 are arranged sticking sideward from between the pair of ice-making plates 32, 32 (side opening 38) (see
The curved portion 34b of the evaporator 34 is bent frontward or rearward (rearward in the embodiment) which is the opposing direction of the ice-making plates 32, 32 from the root portion sticking out from the side opening 38 (see
As shown in
The operation of the ice-making unit for the flow-down type ice maker according to the embodiment will be described below. The ice-making unit 30 is fixed to the ice maker body by supporting the sides of the ice-making unit 30 with the pair of support members 40, 40. At this time, the side opening 38 is aligned with the window portion 46 of the support member 40 in the ice-making unit 30. That is, with the support member 40 attached to the side of the ice-making unit 30, one can face the space S from the side through the window portion 46 and the side opening 38. This can allow a cleaning tool 50 such as a brush to be inserted into the space S from the side without detaching the ice-making unit 30 from the support member 40 at the time of cleaning the ice-making unit 30. The side opening 38 is set relatively wide by providing the fixing portions 36 to be the mount bases of the support member 40 at the upper ends and lower ends of the side portions of the ice-making plates 32, 32. Therefore, the degree of freedom of movement of the cleaning tool 50 inserted into the space S in the ice-making unit 30 is high so that the entire opposing sides of the ice-making plates 32, 32 can be cleaned (see
The curved portion 34b sticking out from each side surface of the ice-making unit 30 is bent in one of the opposing directions of the ice-making plates 32, 32 and is retracted from the side opening 38. Accordingly, when the cleaning tool 50 is inserted through the side opening 38, the insertion of the cleaning tool 50 is not interfered with the curved portion 34b. In cleaning the opposing sides of the ice-making plates 32, 32, the curved portion 34b of the evaporator 34 does not interfere with the movement of the cleaning tool 50, thus permitting the entire opposing sides of the ice-making plates 32, 32 to be adequately cleaned. What is more, the cleaning tool 50, when inserted through one of the side openings 38 of the ice-making unit 30, covers approximately the entire lateral length of the ice-making plates 32, 32. Therefore, the ice-making unit 30 has only to be cleaned from one side surface, thus leading to an improved workability. Further, as the inlet portion 34c and the outlet portion 34d of the evaporator 34 are likewise bent frontward or rearward of both ice-making plates 32, 32, the cleaning performance can be improved. As the performance of cleaning the interior of the ice-making unit 30 is improved this way, it is possible to suitably maintain the sanitary state of the ice-making unit 30.
The ice-making unit 30 of the embodiment differs from the conventional ice-making unit only in that the curved portion 34b of the evaporator 34 is bent and the structure of the fixing portion 36 is changed. It is therefore unnecessary to change the conventional assembling steps at the time of assembling the ice-making unit 30, so that the adequate cleaning performance can be obtained without increasing the assembling cost.
(Modification)
Although the curved portions 34b sticking out from both side surfaces of the ice-making unit 30 or 31 are so bent as to be retracted from the side opening 38 in the embodiment or the modification, only one curved portion 34b sticking out from one side surface of the ice-making unit 30 or 31 may be bent.
According to the ice-making unit of the flow-down type ice maker of the present invention, as the curved portion of the evaporator is bent frontward or rearward of both ice-making plates more than the clearance between both ice-making plates, the curved portion is retracted from the side opening which is defined between both ice-making plates and is open sideward. This permits insertion of the cleaning tool to be inserted between both ice-making plates from the side of the ice-making unit. Further, the curved portion of the evaporator does not interfere with the movement of the cleaning tool in the cleaning work, thus improving the cleaning performance. As a pair of ice-making plates are coupled together by connecting the upper and lower ends of the side portions of the ice-making plates by the fixing portions, the side opening open to the side surface of the ice-making unit becomes relatively larger, thus further improving the cleaning performance.
Number | Date | Country | Kind |
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2004-249173 | Aug 2004 | JP | national |