This application is a National Phase Entry of PCT International Application No. PCT/KR2013/005615, which was filed on Jun. 25, 2013, and claims priority to Korean Patent Application No. 10-2012-0071185, which was filed on Jun. 29, 2012, to Korean Patent Application No. 10-2012-0098329, which was filed on Sep. 5, 2012, and to Korean Patent Application No. 10-2013-0070339, which was filed on Jun. 19, 2013, the contents of each of which are incorporated herein by reference.
The present disclosure relates to an ice maker producing ice, and more particularly, to an ice maker varying an amount of heat transferred between an ice making member connected to a cooling unit and water being in direct or indirect contact with the ice making member according to portions of the ice making member, thereby producing ice in various forms thereon.
An ice maker is an apparatus for cooling water to a temperature below zero degrees Celsius, freezing point, producing ice, and supplying the ice to a user. Such an ice maker is provided in a refrigerator requiring an ice producing function, a water purifier having an ice maker, or the like.
Examples of the ice maker may include an immersion-type ice maker immersing, an immersion member having a refrigerant flowing therein in water and producing ice on the immersion member, a spray-type ice maker spraying water into an ice making mold provided with a cooling unit, such as an evaporator having a refrigerant flowing therein, and producing ice in the ice making mold, or a flow-type ice maker in which water flows into an ice making mold provided with a cooling unit, such as an evaporator having a refrigerant flowing therein, and producing ice in the ice making mold.
Forms of ice produced in the ice maker may be varied, according to forms of an ice making mold provided therein. For example, angular ice or rounded ice may be produced according to forms of an ice making mold. Also, spherical ice may be produced by providing an ice making mold in a form of a sphere or a hemisphere.
Accordingly, in the conventional art, there arises an issue in that an ice making mold needs to be provided in a form corresponding to a form of ice desired to be produced. For example, in order to produce rounded ice without edges, a rounded ice making mold needs to be used. In particular, in order to produce spherical ice, an ice making mold in a form of a sphere or a hemisphere needs to be involved.
As such, the use of such an ice making mold is essential in order to produce various types of ice, for example, rounded ice without edges or spherical ice. Thus, in order to produce rounded ice without edges or spherical ice, a cumbersome ice maker having a relatively complex configuration may be required, since water needs to be held in an ice making mold having a rounded, spherical, or hemispherical form.
Accordingly, a disadvantage of the ice maker according to the conventional art is that ice may not be easily produced in various forms.
The present disclosure is provided in consideration of at least one of the demands or issues arising in the field of conventional ice makers, as mentioned above.
An aspect of the present disclosure provides an ice maker producing ice in various forms, through a simplified configuration, without using an ice making mold provided in a form corresponding to that of desired ice.
An aspect of the present disclosure also provides an ice maker able to readily produce ice in various forms.
An aspect of the present disclosure also provides an ice maker producing rounded ice without edges, especially spherical ice, through a simplified configuration, without using an ice making mold provided in a rounded, spherical or a hemispherical form.
An aspect of the present disclosure also provides an ice maker readily producing rounded ice without edges, especially spherical ice.
In order to resolve at least one of the aforementioned issues, an ice maker according to exemplary embodiments may have characteristics as described in the following:
The present disclosure is directed to an ice maker varying an amount of heat transferred between an ice making member connected to a cooling unit and water being in direct or indirect contact with the ice making member according to portions of the ice making member, and producing ice thereon in various forms including, for example, rounded ice without edges, especially spherical ice.
According to an aspect of the present disclosure, an ice maker may include a cooling unit performing cooling; and at least one ice making member connected to the cooling unit and being in direct or indirect contact with water to allow ice I to be produced thereon, wherein an amount of heat transferred between the ice making member and the water being in direct or indirect contact with the ice making member varies according to portions of the ice making member, such that ice I is produced in various forms thereon.
The ice making member may include a heat transfer control member having a heat transfer rate different from that of the ice making member.
The ice making member may include two or more materials having different heat transfer rates.
The ice making member may have different thicknesses varying according to the portions of the ice making member.
A lower portion of the ice making member may be provided in a rounded form to produce rounded ice I without edges on the ice making member.
An amount of heat transferred to the lower portion of the ice making member may be greater than that transferred to a portion of the ice making member other than the lower portion of the ice making member.
The amount of heat transferred to the portion of the ice making member other than the lower portion of the ice making member may be decreased in an upward direction thereof.
The ice making member may include a heat transfer control member having a heat transfer rate lower than that of the ice making member, and a lower portion of the heat transfer control member may be spaced apart from the lower portion of the ice making member by a predetermined distance.
The heat transfer control member may be provided with a through-hole through which the ice making member penetrates.
The through-hole may be narrowed in a laterally slanted manner to have a cross section decreasing in a downward direction thereof, and a lower portion of the through-hole may be tightly fitted to the ice making member, and a space between the ice making member and the through-hole is increased in an upward direction thereof.
The through-hole may have a form corresponding to a form of the ice making member, and a thickness of the heat transfer control member may be increased in an upward direction thereof.
The ice making member may be immersed in water to be in direct or indirect contact therewith.
The ice making member may be sprayed with water to be in direct or indirect contact therewith.
Water may flow in the ice making member to be in direct or indirect contact therewith.
The heat transfer control member may be provided with a heating element.
The heating element may be an electric heating wire.
The electric heating wire may be provided around an outer circumference of the heat transfer control member or may be inserted into the heat transfer control member.
The outer circumference of the heat transfer control member may be provided with an electric heating wire groove, and the electric heating wire may be provided in the electric heating wire groove.
Water may flow along the outer circumference of the heat transfer control member when ice is separated.
A water supply pipe connected to a water source may pass through an upper portion of the heat transfer control member, and the water supply pipe may be provided with a supply hole to allow water to flow along the outer circumference of the heat transfer control member.
According to exemplary embodiments of the present disclosure, an ice maker may vary an amount of heat transferred between an ice making member and water being in direct or indirect contact therewith according to portions of the ice making member, and produce ice thereon in various forms, including, for example, rounded ice without edges, especially spherical ice.
According to exemplary embodiments of the present disclosure, an ice maker may readily produce ice in various forms.
According to exemplary embodiments of the present disclosure, an ice maker may produce ice in various forms, through a simplified configuration, without using an ice making mold provided in a rounded, spherical or a hemispherical form.
According to exemplary embodiments of the present disclosure, an ice maker may readily produce rounded ice without edges, especially spherical ice.
Hereinafter, an ice maker according to exemplary embodiments of the present disclosure will be described in detail for more complete and thorough understanding of the above-mentioned characteristics of the ice maker.
The following detailed description is provided to assist the reader in gaining a comprehensive understanding of the methods and/or apparatuses described herein. However, various changes, modifications, and equivalents of the apparatuses and/or methods described herein will be apparent to one of ordinary skill in the art. Also, descriptions of functions and constructions that are well known to one of ordinary skill in the art may be omitted for increased clarity and conciseness. Throughout the drawings and the detailed description, the same reference numerals refer to the same elements. The drawings may not be to scale, and the relative size, proportions, and depiction of elements in the drawings may be exaggerated for clarity, illustration, and convenience.
Exemplary embodiments of the present disclosure may include varying an amount of heat transferred between an ice making member connected to a cooling unit and water being in direct or indirect contact therewith according to portions of the ice making member, and producing ice thereon in various forms including, for example, rounded ice without edges, especially spherical ice.
As illustrated in
The cooling unit 200 may perform cooling. To this end, as illustrated in
As illustrated in
As illustrated in
Water may be in direct or indirect contact with the ice making member 300. In other words, the ice making member 300 may be in indirect contact with water through being in direct contact with water in the vicinity of the ice making member 300 or through being in contact with an object in contact with the ice making member 300.
In order for water to be in direct or indirect contact with the ice making member 300, the ice making member 300 may be immersed in water as illustrated in
However, besides the operations of the ice maker illustrated in
Based on such a manner, as illustrated in
Accordingly, heat may be transferred, to the ice making member 300, from the water being in direct or indirect contact with the ice making member 300, for example, as illustrated in
In the ice maker 100 according to the exemplary embodiment, an amount of heat transferred between the ice making member 300 and the water being in direct or indirect contact therewith may be varied, according to portions of the ice making member 300. For example, as illustrated in
Accordingly, ice I may be produced in various forms as illustrated in
Thus, since an ice making mold provided in a form corresponding to a form of ice desired to be produced, for example, a sphere or a hemisphere, is unnecessary to produce rounded ice I without edges or spherical ice I, ice may be produced in various forms on the ice making member 300 through a simplified configuration. Accordingly, various forms of ice may be readily produced.
To this end, as illustrated in
As illustrated in
To this end, as illustrated in
As illustrated in
Also, as illustrated in
However, the form of the heat transfer control member 400 or the position of the heat transfer control member 400 with respect to the ice making member 300 is not limited thereto, and any form or position thereof allowing various forms of ice I to be produced may be used.
As illustrated in
In order to vary the amount of heat transferred between the ice making member 300 and the water being in direct or indirect contact with the ice making member 300 according to the portions of the ice making member 300, the ice making member 300 may be formed of two or more materials having different heat transfer rates as illustrated in (a) of
The ice making member 300 of the ice maker 100 may have a rounded lower portion as illustrated in
Accordingly, as illustrated in
According to the exemplary embodiment, in order to produce such rounded ice I without edges, especially spherical ice I, an ice making mold in a form of a sphere or a hemisphere may not be required as in the conventional art. Therefore, rounded ice I without edges, especially spherical ice I may be produced through a simplified configuration, and thus in a convenient manner.
To this end, as illustrated in
As illustrated in
In order to provide the heat transfer control member 400 in the ice making member 300, the through-hole 410 through which the ice making member 300 penetrates may be formed in the heat transfer control member 400 as illustrated in
As illustrated in
Further, in order to allow the amount of heat transferred to the lower portion of the ice making member 300 to be greater than that transferred to the portion of the ice making member 300 other than the lower portion of the ice making member 300 while also allowing the amount of heat transferred to the portion of the ice making member 300 other than the lower portion of the ice making member 300 to be decreased in an upward direction thereof, the heat transfer control member 400 may be provided in the ice making member 300. Although not illustrated, the through-hole 410 may have a form corresponding to that of the ice making member 300, and a thickness of the heat transfer control member 400 may be increased in an upward direction thereof.
Based on the above configuration, as illustrated in
Heat may be continuously transferred from water in the vicinity of the ice making member 300 to the ice making member 300 over time, water may be cooled to below zero degrees Celsius, freezing point, in the portion of the ice making member 300 other than the lower portion of the ice making member 300, and ice I may start to be produced as illustrated in
Accordingly, rounded ice I without edges, especially spherical ice I may be produced and grow on the ice making member 300. As illustrated in
As illustrated in (a) of
Further, as illustrated in (b) of
Due to the above configuration, the amount of heat transferred to the lower portion of the ice making member 300 may be greater than that transferred to the portion of the ice making member 300 other than the lower portion of the ice making member 300, and the amount of heat transferred to the portion of the ice making member 300 other than the lower portion of the ice making member 300 may be decreased in an upward direction thereof, such that rounded ice I without edges, especially spherical ice I may be produced on the ice making member 300 to have a predetermined size.
As illustrated in
For example, as illustrated in
The dropped ice I may be transferred to an ice storage (not illustrated) and stored therein.
The heating element 420 may be disposed in a portion of the heat transfer control member 400 on which ice I is produced, for example, the lower portion of the heat transfer control member 400 as illustrated in
As illustrated in
Also, as illustrated in
Further, as illustrated in
As illustrated in
The heating element 420 may be provided as any type thereof well known to one of ordinary skill in the art, aside from the aforementioned electric heating wire, such as a planar heating element, capable of facilitating separation of ice I while being provided in the heat transfer control member 400.
As illustrated in
To this end, as illustrated in
However, the manner of water flowing along the outer circumference of the heat transfer control member 400 is not limited to what is described hereinbefore and what is illustrated in
As set forth above, through use of the ice maker according to the exemplary embodiments, ice may be produced in various forms on an ice making member, through a relatively simplified configuration, ice may be produced in various forms relatively easily, and rounded ice without edges, especially spherical ice may be produced through a relatively simplified configuration, without using an ice making mold in a rounded, spherical, or hemispherical form.
The exemplary embodiments of the present disclosure may not be limited in the application thereof to the ice maker described above; however, the entirety or part of the exemplary embodiments may be selectively combined to allow various changes to be made thereto.
Number | Date | Country | Kind |
---|---|---|---|
10-2012-0071185 | Jun 2012 | KR | national |
10-2012-0098329 | Sep 2012 | KR | national |
10-2013-0070339 | Jun 2013 | KR | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/KR2013/005615 | 6/25/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2014/003422 | 1/3/2014 | WO | A |
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3433030 | Jacobs | Mar 1969 | A |
4458503 | Nelson | Jul 1984 | A |
4685304 | Essig | Aug 1987 | A |
4959966 | Dimijian | Oct 1990 | A |
5187948 | Frohbieter | Feb 1993 | A |
Number | Date | Country |
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2755518 | Feb 2006 | CN |
2 333 420 | Jun 1977 | FR |
07-019684 | Jan 1995 | JP |
09203573 | Aug 1997 | JP |
1020040085605 | Oct 2004 | KR |
1020080022479 | Mar 2008 | KR |
100820675 | Apr 2008 | KR |
100936610 | Jan 2010 | KR |
100936691 | Jan 2010 | KR |
WO 2006002224 | Jan 2006 | WO |
Entry |
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Chinese Office Action dated Jan. 19, 2016 issued in counterpart application No. 201380034235.6, 6 pages. |
European Search Report dated May 28, 2015 issued in counterpart application No. 13810478.1-1605. |
Number | Date | Country | |
---|---|---|---|
20150143838 A1 | May 2015 | US |