TW201640066A - System and method for producing block ice treated with nitrogen substitution - Google Patents

System and method for producing block ice treated with nitrogen substitution Download PDF

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TW201640066A
TW201640066A TW105102187A TW105102187A TW201640066A TW 201640066 A TW201640066 A TW 201640066A TW 105102187 A TW105102187 A TW 105102187A TW 105102187 A TW105102187 A TW 105102187A TW 201640066 A TW201640066 A TW 201640066A
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nitrogen
water
ice
dissolved water
nitrogen gas
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TW105102187A
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TWI657224B (en
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若山敏次
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昭和冷凍事業股份有限公司
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C1/00Producing ice
    • F25C1/18Producing ice of a particular transparency or translucency, e.g. by injecting air
    • F25C1/20Producing ice of a particular transparency or translucency, e.g. by injecting air by agitation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C1/00Producing ice
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C1/00Producing ice
    • F25C1/18Producing ice of a particular transparency or translucency, e.g. by injecting air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C5/00Working or handling ice

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Freezing, Cooling And Drying Of Foods (AREA)
  • Physical Water Treatments (AREA)
  • Food Preservation Except Freezing, Refrigeration, And Drying (AREA)
  • Devices That Are Associated With Refrigeration Equipment (AREA)

Abstract

Provided is a block ice capable of preventing and restraining oxidation and degradation of fresh food and inhibiting bacteria propagation, and a manufacture method thereof. The system for producing block ice treated with nitrogen substitution comprises a cooling nitrogen dissolved water generation unit and a nitrogen substitution block ice generation unit. The cooling nitrogen dissolved water generation unit comprises: a nitrogen gas supply unit having a means of providing nitrogen gas with a fixed pressure; a nitrogen dissolved water generation unit, which is necessary for generating nitrogen dissolved water; a water storage tank for storing the water to be the row material; a cooling means for cooling the water stored in the aforesaid water storage tank; a nitrogen gas injection means for injecting the nitrogen gas, which is provided by the aforesaid nitrogen gas supply unit, into the water stored in the aforesaid water storage tank; the nitrogen substitution block ice generation unit comprises: a plurality of ice tanks, which are immersed in a salt water tank that can maintain the frozen temperature of the water; a filling means for filling the nitrogen dissolved water, which is provided by the nitrogen dissolved water generation unit into the respective ice tanks; a gas injection means respectively injecting the nitrogen gas provided by the nitrogen gas supply unit into the non frozen parts of the aforesaid nitrogen dissolved water while the filled nitrogen dissolved water is frozen.

Description

氮氣置換冰塊之製造系統及製造方法 Manufacturing system and manufacturing method of nitrogen replacement ice block

本發明為有關使用液態氧結凍氮氣置換之水之柱狀之冰,即冰塊之製造系統及製造方法。 The present invention relates to a columnar ice, i.e., a manufacturing system and a manufacturing method for ice, which is replaced with liquid oxygen-frozen nitrogen.

專利文獻1中,已揭示冰凍含有氮氣氣體之水之氮氣氣體封入冰覆蓋在魚艙水面,藉由氮氣氣體封入冰溶解,使魚艙內水之溶氧量減少,來維持魚之鮮度之技術。 Patent Document 1 discloses a technique in which a nitrogen gas containing nitrogen gas is sealed in ice to cover the surface of a fish tank, and the nitrogen gas is sealed by nitrogen gas to reduce the dissolved oxygen amount in the fish tank to maintain the freshness of the fish. .

專利文獻2中,已揭示生鮮食品之加工醃漬之醬汁內使氮氣氣體溶解並用製冰機結凍,將冰送回醬汁槽並覆蓋在水面上,藉由冰之融化使醬汁槽內之水之溶氧量減少,有效提升防止生鮮食品氧化、腐敗之技術。 In Patent Document 2, it has been revealed that the marinated sauce of fresh food is dissolved in nitrogen gas and frozen by an ice maker, and the ice is returned to the sauce tank and covered on the water surface, and the sauce is melted by the ice. The amount of dissolved oxygen in the water is reduced, and the technology for preventing oxidation and spoilage of fresh food is effectively improved.

另一方面,一般在日本市販冰中之最大規格,為135kg的冰塊,縱280mmX橫550mmX高1080mm之柱狀冰。 On the other hand, the largest specification for ice in the Japanese market is 135 kg of ice, and 280 mm of vertical 550 mm and columnar ice of 1080 mm.

如此一邊長為數十cm以上之大尺寸柱狀冰(本說明書以「冰塊」稱之)之製造方法,是將既定大小之冰罐填充原料之水,藉由將冰罐浸泡在鹽水槽,讓冰罐周圍包覆著鹽水,鹽水為例如使用氯化鈣等溶液,維持在-8℃~-12℃之程度。藉由鹽水之冷卻使冰罐內之水結凍。在尚未結凍時,在水中藉由空氣幫浦將打出的空氣將水攪拌,可提高冷卻效率並同時促進 將水中存在之氣泡及雜質上升並排放在大氣中,另外,為獲得高透明度之冰塊,通常結凍會進行36~72小時。 Such a method of manufacturing a large-sized columnar ice having a length of several tens of cm or more (referred to as "ice block" in this specification) is to fill a raw material of an ice can of a predetermined size by immersing the ice can in a brine tank. The ice can is covered with salt water, and the brine is maintained at a temperature of -8 ° C to -12 ° C, for example, using a solution such as calcium chloride. The water in the ice can is frozen by the cooling of the brine. When the water has not been frozen, the air is pumped in the water by the air pump to increase the cooling efficiency and promote Bubbles and impurities present in the water are raised and discharged into the atmosphere. In addition, in order to obtain high transparency ice, the freezing usually takes 36 to 72 hours.

但是,已知使用充氣之方法無法得到透明度高之冰(專利文獻3、4)。 However, it is known that a method of aeration is not used to obtain ice having high transparency (Patent Documents 3 and 4).

專利文獻5已揭示藉由包含空氣、氮氣、氧氣、二氧化碳、臭氧等氣體之微小氣泡知水結凍,直接封住氣泡之氣體含有冰之製造方法。但是,使用專利文獻之方法,無法獲得透明之冰。 Patent Document 5 discloses a method for producing water containing ice by directly covering a small bubble containing air such as air, nitrogen, oxygen, carbon dioxide, or ozone, and freezing the gas directly. However, transparent ice cannot be obtained by the method of the patent document.

【專利文獻1】日本專利2007-155172號公報 [Patent Document 1] Japanese Patent No. 2007-155172

【專利文獻2】日本專利2007-282550號公報 [Patent Document 2] Japanese Patent Publication No. 2007-282550

【專利文獻3】日本專利H6-101943號公報 [Patent Document 3] Japanese Patent No. H6-101943

【專利文獻4】日本專利2011-112279號公報 [Patent Document 4] Japanese Patent Publication No. 2011-112279

【專利文獻5】日本專利2007-225127號公報 Patent Document 5: Japanese Patent No. 2007-225127

現狀之氮氣氣體封入冰,為直徑數十mm程度之塊狀冰、將厚度數十mm程度之板狀冰打碎之小尺寸,而大型之冰塊中,保持如以往之透明度且溶氧量為低濃度之製造技術,都尚未提及。 The current state of the nitrogen gas is sealed in ice, which is a block of ice having a diameter of several tens of mm, and a small size of flaky ice having a thickness of several tens of mm, while the large ice cube maintains transparency and dissolved oxygen as in the past. Manufacturing techniques for low concentrations have not been mentioned.

以往製造冰塊時之充氣,為藉由攪拌與空氣上升流來趕出水中之氣泡,以往之冰塊製造中,充氣只是單純地將氮氣氣體之噴出做為取代,無法獲得充分氮氣置換狀態(代替氧氣以氮氣溶解之狀態)之冰塊。 In the past, when the ice was produced, the aeration was carried out by stirring and rising the air to eject the bubbles in the water. In the manufacture of ice in the past, the aeration was simply replaced by the discharge of nitrogen gas, and a sufficient nitrogen replacement state could not be obtained ( An ice cube in place of oxygen dissolved in nitrogen.

在此,本發明之目的為實現充分地氮氣置換狀態之大尺寸之柱狀冰之製造系統及製造方法。 Here, an object of the present invention is to provide a system and a method for producing a large-sized columnar ice which is sufficiently nitrogen-substituted.

為解決上述課題,本發明有以下構成。 In order to solve the above problems, the present invention has the following constitution.

本發明之第一態樣,是為製造氮氣置換冰塊之系統,其特徵在於,具備: A first aspect of the present invention is a system for producing a nitrogen replacement ice block, characterized by comprising:

(a)氮氣氣體供給部,具備為將氮氣氣體以固定壓力提供之手段; (a) a nitrogen gas supply unit provided with means for supplying nitrogen gas at a fixed pressure;

(b)氮氣溶解水生成部,為生成氮氣溶解水而必須具備;儲水槽,為儲存原料之水;冷卻手段,將儲存在上述儲水槽之水冷卻;氮氣氣體注入手段,為將從上述氮氣氣體供給部供給之氮氣注入上述儲水槽儲存之水中。 (b) a nitrogen-dissolved water generating unit, which is required to generate nitrogen-dissolved water; a water storage tank for storing the raw material; a cooling means for cooling the water stored in the water storage tank; and a nitrogen gas injection means for the nitrogen gas to be supplied The nitrogen gas supplied from the gas supply unit is injected into the water stored in the water storage tank.

(c)氮氣置換冰塊生成部,具備:複數之冰罐,浸泡在可維持水之凍結溫度之鹽水槽內;填充手段,從上述氮氣溶解水生成部供給提供氮氣溶解水填充至各別上述冰罐;氣體注入手段,已填充之上述氮氣溶解水之結凍中,從上述氮氣氣體供給部供給之氮氣氣體各別注入上述氮氣溶解水之未結凍部分。 (c) a nitrogen-substituted ice cube generating unit, comprising: a plurality of ice cans immersed in a brine tank capable of maintaining a freezing temperature of water; and a filling means supplied from the nitrogen-dissolved water generating unit to supply nitrogen-dissolved water to each of the above The ice canister; the gas injection means, in the freezing of the filled nitrogen-dissolved water, and the nitrogen gas supplied from the nitrogen gas supply unit is separately injected into the unfrozen portion of the nitrogen-dissolved water.

上述氮氣溶解水生成部所生成之氮氣溶解水較佳為0°c附近溫度且溶氧量未滿0.3mg/L。 The nitrogen-dissolved water generated by the nitrogen-dissolved water generating unit is preferably at a temperature near 0° C. and the dissolved oxygen amount is less than 0.3 mg/L.

上述態樣中,將氮氣溶解水各自填充至冰罐之填充手段,具備:注水槽,為儲存從上述氮氣溶解水生成部提供之氮氣溶解水;複數之注水口,對應各別上述冰罐並形成在上述注水槽底面,透過各個上述注水口,上述冰罐各自填充氮氣溶解水。 In the above aspect, the filling means for filling the nitrogen-dissolved water into the ice tank includes: a water-filling tank for storing the nitrogen-dissolved water supplied from the nitrogen-dissolved water generating portion; and a plurality of water-filling ports corresponding to the respective ice cans The bottom surface of the water injection tank is formed through the respective water injection ports, and the ice cans are filled with nitrogen-dissolved water.

本發明之第2態樣,係製造氮氣置換冰塊之方法,其特徵在 於,具有: 第1步驟,藉由緩緩地將儲存之原料之水注入氮氣氣體並冷卻上述水,生成冷卻之氮氣溶解水, 第2步驟,在可維持水之凍結溫度之冰罐填充上述冷卻之氮氣溶解水,並在上述氮氣溶解水之結凍時間開始至結凍時間結束之時間內,至少將一部分未結凍部分緩緩地注入氮氣氣體使上述氮氣溶解水結凍。 A second aspect of the present invention is a method for producing a nitrogen replacement ice block, which is characterized in that Yes, with: In the first step, the cooled nitrogen-dissolved water is generated by slowly injecting the stored raw material water into the nitrogen gas and cooling the water. In the second step, the ice tank capable of maintaining the freezing temperature of the water is filled with the cooled nitrogen dissolved water, and at least a portion of the unfrozen portion is slowed down from the freezing time of the nitrogen dissolved water to the end of the freezing time. The above nitrogen gas dissolved water was frozen by gently injecting nitrogen gas.

第1步驟之氮氣溶解水生成部所生成之氮氣溶解水較佳為0℃附近溫度且溶氧量未滿0.3mg/L。 The nitrogen-dissolved water generated by the nitrogen-dissolved water generating unit in the first step is preferably at a temperature near 0 ° C and the dissolved oxygen amount is less than 0.3 mg/L.

上述態樣,其中,上述氮氣溶解水之結凍時間開始至結凍時間結束之時間內,從結凍開始至中途在上述氮氣溶解水之未結凍部分緩緩地注入氮氣氣體來結凍,之後至結凍完成將停止注入氮氣氣體來結凍。 In the above aspect, the freezing time of the nitrogen-dissolved water starts from the end of the freezing time, and the nitrogen gas is gradually injected into the unfrozen portion of the nitrogen-dissolved water from the beginning of the freezing to the middle of freezing. After the completion of the freezing, the injection of nitrogen gas is stopped to freeze.

另外,此樣態中,其中,在製造縱280mmX橫550mmX高1080mm之柱狀冰塊之狀況,從上述氮氣溶解水之結凍開始至結凍結束之時間為48小時。 Further, in this aspect, in the case of producing columnar ice cubes having a length of 280 mm X and a width of 550 mm X and a height of 1080 mm, the time from the freezing of the nitrogen-dissolved water to the end of the freezing was 48 hours.

本發明中,先將原料之水緩緩地冷卻在將氮氣氣體注入生成冷卻之氮氣溶液生成水,再對所生成之氮氣溶液生成水緩緩地注入氮氣氣體來結凍,而可獲得溶氧量較通常相當少之低溶氧量冰塊。 In the present invention, the raw material water is gradually cooled, and a nitrogen gas is injected into the cooled nitrogen solution to form water, and the generated nitrogen solution is gradually injected into the nitrogen gas to be frozen, thereby obtaining dissolved oxygen. The amount of low dissolved oxygen ice is relatively small.

氮氣置換冰塊與小尺寸之氮氣冰相同,利用來保存各種生鮮產品及食品,對保持鮮度做出貢獻。例如,防止及抑止生鮮食品之氧化及劣化,並可抑制雜菌繁殖。除此之外,大尺寸之冰塊,擁有小尺寸冰所沒有之多種利用方法,例如,藉由保管在冰櫃內,其自身可以做為冷氣源發 揮作用。在此情況,也因為溶氧量少,在溶解時因氧氣而帶給周圍(例如保存在冰櫃中之生鮮食品)之不良影響,也比通常冰所帶來得低。 The nitrogen-exchanged ice cube is the same as the small-sized nitrogen ice, and is used to preserve various fresh products and foods, contributing to the freshness. For example, it prevents and suppresses oxidation and deterioration of fresh foods, and inhibits the growth of bacteria. In addition, large-sized ice cubes have many uses that are not available in small-sized ice. For example, by keeping them in a freezer, they can be used as a source of cold air. Play a role. In this case as well, since the amount of dissolved oxygen is small, the adverse effects brought to the surroundings (for example, fresh food stored in the freezer) by oxygen at the time of dissolution are also lower than those of ordinary ice.

10‧‧‧氮氣氣體供給部 10‧‧‧Nitrogen gas supply department

11‧‧‧空氣壓縮機 11‧‧‧Air compressor

12‧‧‧氮氣氣體生成裝置 12‧‧‧Nitrogen gas generating device

13‧‧‧氮氣氣體槽 13‧‧‧Nitrogen gas tank

14、15‧‧‧氮氣氣體供給線 14, 15‧‧‧ nitrogen gas supply line

20‧‧‧冷卻氮氣溶解水生成部 20‧‧‧Cooling nitrogen dissolved water generation unit

21‧‧‧儲水槽 21‧‧‧Water storage tank

22‧‧‧水冷卻裝置 22‧‧‧Water cooling device

23、24‧‧‧幫浦 23, 24‧‧‧

25‧‧‧水供給線 25‧‧‧Water supply line

26‧‧‧氮氣溶解水供給線 26‧‧‧Nitrogen dissolved water supply line

27‧‧‧氮氣氣體供給線 27‧‧‧Nitrogen gas supply line

28‧‧‧氮氣氣體注入管 28‧‧‧Nitrogen gas injection pipe

29‧‧‧水循環線 29‧‧‧Water circulation line

30‧‧‧氮氣置換冰塊生成部 30‧‧‧Nitrogen replacement ice generation unit

31‧‧‧注水槽 31‧‧‧Sink

32‧‧‧鹽水槽 32‧‧‧ brine tank

33‧‧‧冰罐 33‧‧‧ Ice Cans

34‧‧‧氮氣溶解水供給線 34‧‧‧Nitrogen dissolved water supply line

35‧‧‧注水口 35‧‧‧Water inlet

36‧‧‧氮氣氣體供給線 36‧‧‧Nitrogen gas supply line

37‧‧‧氮氣氣體注入管 37‧‧‧Nitrogen gas injection pipe

圖1係顯示藉由本發明所概略構成之氮氣置換冰塊製造系統之圖。 Fig. 1 is a view showing a nitrogen-substituted ice cube manufacturing system schematically constructed by the present invention.

圖2係概略地顯示圖1中氮氣供給部之構成例之圖。 Fig. 2 is a view schematically showing a configuration example of a nitrogen gas supply unit in Fig. 1;

圖3係概略地顯示圖1中冷卻氮氣溶解水生成部之構成例之圖。 Fig. 3 is a view schematically showing a configuration example of a cooling nitrogen-dissolved water generating portion in Fig. 1;

圖4係概略地顯示圖1中氮氣置換冰塊生成部之構成例之圖。 Fig. 4 is a view schematically showing a configuration example of a nitrogen-substituted ice cube generating portion in Fig. 1;

圖5係,顯示圖1~圖4所顯示之使用製造系統來製造氮氣置換冰塊之步驟之適當例之流程圖。 Fig. 5 is a flow chart showing a suitable example of the steps of manufacturing a nitrogen-substituted ice cube using the manufacturing system shown in Figs. 1 to 4;

圖6係藉由本發明所之氮氣置換冰塊之實施例照片。 Figure 6 is a photograph of an embodiment of the replacement of ice by the nitrogen of the present invention.

圖7係習知冰塊之比較例之照片。 Figure 7 is a photograph of a comparative example of a conventional ice block.

以下,參考本發明之實施型態之一例所顯示之圖式來說明本發明之實施型態。 Hereinafter, embodiments of the present invention will be described with reference to the drawings shown in an embodiment of the present invention.

本發明之適用對象之冰塊,是可稱為「冰柱」之長方體(包含立方體)。一般日本市販之冰中最大規格,為135kg之冰塊,縱280mmX橫550mmX高1080mm之透明度高之柱狀冰。以下,以這種大小之冰塊為例說明本發明,但作為本發明適用對象之冰塊,並不限定為此大小。冰塊各軸之長度,上述規格之冰塊之各軸長各自在正負20%範圍內之長度之情況,視為等同於上述規格之冰塊。並且,擁有約20kg以上重量之冰塊,也是本發明適用對象之冰塊。 The ice cube to which the present invention is applied is a rectangular parallelepiped (including a cube) which can be called an "ice column". Generally, the largest size of ice in Japan is 135kg ice, vertical 280mmX horizontal 550mmX high 1080mm high transparency columnar ice. Hereinafter, the present invention will be described by taking an ice cube of such a size as an example, but the ice cube to which the present invention is applied is not limited to this size. The length of each axis of the ice block, and the length of each of the axial lengths of the above-mentioned ice cubes in the range of plus or minus 20% is regarded as an ice block equivalent to the above specifications. Further, an ice cube having a weight of about 20 kg or more is also an ice cube to which the present invention is applied.

圖1係顯示藉由本發明所概略構成之氮氣置換冰塊製造系統之圖。圖1中之白箭頭顯示氣體流動方向,黑箭頭顯示液體流動方向(以下圖中皆相同)。氮氣置換冰塊製造系統,具有氮氣氣體供給部10,冷卻氮氣溶解水生成部20,氮氣置換冰塊生成部30。氮氣氣體供給部10,具備為以既定之壓力供給氮氣氣體之手段。冷卻氮氣溶解水生成部20,為使用原料之水及由氮氣氣體供給部10所提供之氮氣,來生成冷卻之氮氣溶解水之構成。氮氣置換冰塊生成部30,為使用冷卻氮氣溶解水生成部20所提供之冷卻之氮氣溶解水,及氮氣氣體供給部10所提供之氮氣,來生成溶氧量十分低之冰塊之構成。 Fig. 1 is a view showing a nitrogen-substituted ice cube manufacturing system schematically constructed by the present invention. The white arrow in Figure 1 shows the direction of gas flow and the black arrow shows the direction of liquid flow (the same is true in the following figures). The nitrogen-substituted ice cube manufacturing system includes a nitrogen gas supply unit 10, a cooled nitrogen-dissolved water generating unit 20, and a nitrogen-substituted ice-block generating unit 30. The nitrogen gas supply unit 10 is provided with means for supplying nitrogen gas at a predetermined pressure. The cooled nitrogen-dissolved water generating unit 20 is configured to generate cooled nitrogen-dissolved water by using the raw material water and the nitrogen gas supplied from the nitrogen gas supply unit 10. The nitrogen-substituted ice generation unit 30 is configured to generate ice cubes having a very low dissolved oxygen amount by using the cooled nitrogen-dissolved water supplied from the cooled nitrogen-dissolved water generating unit 20 and the nitrogen gas supplied from the nitrogen gas supply unit 10.

本說明書中,水之「氮氣置換」,為大氣壓力下降低藉由溫度所決定之水之溶氧量,並將其降低量置換為氮氣。另外,「氮氣溶解水」,為與通常之水相比,溶氧量少且溶氮氣量多,意即,將通常之水之溶解氧氣與溶解氮氣置換之水,另外,「氮氣置換冰」,為將氮氣溶解水維持在低溶氧狀態下直接結凍之冰。低溶氧狀態為,溶氧量為0.3mg/L或未滿。 In the present specification, the "nitrogen substitution" of water is to reduce the dissolved oxygen amount of water determined by the temperature under atmospheric pressure, and to replace the amount of reduction with nitrogen. In addition, "nitrogen-dissolved water" has a smaller amount of dissolved oxygen than a normal water, and has a large amount of dissolved nitrogen, that is, water in which dissolved oxygen in a normal water is replaced with dissolved nitrogen, and "nitrogen replaces ice". In order to maintain the nitrogen dissolved water in the low dissolved oxygen state directly frozen ice. The low dissolved oxygen state is such that the dissolved oxygen amount is 0.3 mg/L or less.

圖2係概略地顯示圖1中氮氣供給部10之構成例之圖。氮氣供給部10,由空氣壓縮機11,壓縮大氣;氮氣氣體生成裝置12,從壓縮空氣中將氮氣抽出;氮氣氣體槽13,儲存抽出之氮氣氣體。空氣壓縮機,例如,可使用日立產機系統之Oil-free BEBICON(登錄商標)。使用提供0.5至0.9Mpa空氣壓力之空氣壓縮機。 Fig. 2 is a view schematically showing a configuration example of the nitrogen gas supply unit 10 in Fig. 1 . The nitrogen gas supply unit 10 compresses the atmosphere by the air compressor 11, and the nitrogen gas generating device 12 extracts nitrogen gas from the compressed air. The nitrogen gas tank 13 stores the extracted nitrogen gas. For an air compressor, for example, Oil-free BEBICON (registered trademark) of Hitachi Production System can be used. An air compressor that provides an air pressure of 0.5 to 0.9 MPa is used.

氮氣氣體生成裝置係,設置了由聚酰亞胺中空線膜構成之氮氣分離膜之壓力容器,從其一端輸入壓縮空氣,從橫口將氧氣吹淨(排出),並將從壓力容器另一端將氮氣氣體取出。利用藉由氣體之種類,而有不同 之膜通過速度之氮氣氣體生成裝置,例如,使用片山化學工業研究所之脫氣裝置「Ripureru(原文)」(登錄商標)。 A nitrogen gas generating device is a pressure vessel in which a nitrogen separation membrane composed of a polyimide hollow fiber membrane is provided, and compressed air is supplied from one end thereof, and oxygen is blown (discharged) from the transverse port, and the other end of the pressure vessel is removed from the pressure vessel. The nitrogen gas was taken out. A nitrogen gas generating device having a different film passage speed by the kind of gas, for example, using a degasser of the Katayama Chemical Industry Research Institute "Ripureru (original )" (registered trademark).

氮氣氣體槽13,具備儲存氮氣氣體,並以既定之壓力提供氮氣氣體之調整手段。氮氣氣體槽13,可提供冷卻氮氣溶解水生成部20及氮氣置換冰塊生成部30各自所需要之氮氣氣體。藉由各供給線14、15上設置之適宜之閥,可各自切換氮氣氣體之供給或停止。 The nitrogen gas tank 13 is provided with an adjustment means for storing nitrogen gas and supplying nitrogen gas at a predetermined pressure. The nitrogen gas tank 13 can supply the nitrogen gas required for each of the cooled nitrogen-dissolved water generating unit 20 and the nitrogen-substituted ice generating unit 30. The supply or stop of the nitrogen gas can be switched by the appropriate valves provided on the respective supply lines 14, 15.

圖3係概略地顯示圖1中冷卻氮氣溶解水生成部20之構成例之圖。冷卻氮氣溶解水生成部20,由儲水槽21,儲存透過供給線25供給之原料之水;水冷卻裝置22,儲水槽21內之水W藉由循環線29及幫浦23循環並冷卻;氮氣氣體注入幫浦28,為將從氮氣氣體供給部10透過供給線27所提供之氮氣氣體注入水中。 Fig. 3 is a view schematically showing a configuration example of the cooling nitrogen-dissolved water generating unit 20 of Fig. 1 . The nitrogen-dissolved water generating unit 20 is cooled, and the water supplied from the raw material supplied through the supply line 25 is stored in the water storage tank 21; the water cooling device 22, the water W in the water storage tank 22 is circulated and cooled by the circulation line 29 and the pump 23; The gas injection pump 28 injects nitrogen gas supplied from the nitrogen gas supply unit 10 through the supply line 27 into the water.

氮氣氣體注入幫浦28,例如,儲水槽21內以水平方向延伸之長管,管壁上形成為噴出氮氣氣體之多數之孔。因高壓在水中噴射之氮氣氣體,在溶入水中之同時,將溶解氧氣及氣泡上升,從空氣中排出。如此一來,儲水槽21內之水W之溶氧量變低,溶氮量變高。藉此,獲得氮氣溶解水。 Nitrogen gas is injected into the pump 28, for example, a long tube extending horizontally in the water storage tank 21, and a plurality of holes for discharging nitrogen gas are formed on the tube wall. The nitrogen gas sprayed by the high pressure in the water, while dissolved in the water, raises dissolved oxygen and bubbles and is discharged from the air. As a result, the dissolved oxygen amount of the water W in the water storage tank 21 becomes low, and the amount of dissolved nitrogen becomes high. Thereby, nitrogen is dissolved in water.

藉由水冷卻裝置22,儲水槽21內之水W之溫度較佳以正之0℃為止之附近溫度冷卻。藉此,便可有效率地開始之後之氮氣置換冰塊生成部30之結凍步驟。另外,藉由一邊注入氮氣氣體一邊水W之溫度以0℃為止之附近溫度冷卻,雖然通常越低溫溶解氧氣會增加,但通常情況下會抑制溶解氧氣,並可增加溶解氮氣。 With the water cooling device 22, the temperature of the water W in the water storage tank 21 is preferably cooled at a temperature close to 0 °C. Thereby, the freezing step of the nitrogen replacement ice generating portion 30 after the start can be efficiently started. Further, by injecting a nitrogen gas while cooling the temperature of the water W at a temperature of around 0 ° C, although the oxygen is generally dissolved at a lower temperature, the dissolved oxygen is usually suppressed, and the dissolved nitrogen gas is increased.

一實施例中,藉由儲水槽21之處理,從在室溫下溶氧量 99.7mg/L之原水,得到0℃附近溫度中溶氧量0.3mg/L之氮氣溶解水。即使在其他實施例,也確認獲得溶氧量0.3mg/L之氮氣溶解水。通常之水在0℃之溶氧量為14.6mg/L。 In one embodiment, the amount of dissolved oxygen at room temperature is treated by the water storage tank 21. 99.7 mg/L of raw water gave nitrogen dissolved water with a dissolved oxygen content of 0.3 mg/L at a temperature around 0 °C. Even in other examples, it was confirmed that nitrogen-dissolved water having an dissolved oxygen content of 0.3 mg/L was obtained. The usual amount of dissolved oxygen at 0 ° C is 14.6 mg / L.

儲水槽21內之冷卻之氮氣溶解水,藉由供給線26及幫浦24,供給至氮氣置換冰塊生成部30。 The cooled nitrogen dissolved water in the water storage tank 21 is supplied to the nitrogen replacement ice generation unit 30 by the supply line 26 and the pump 24.

圖4係概略地顯示圖1中氮氣置換冰塊生成部30之構成例之圖。氮氣置換冰塊生成部30,具備注水槽31,將從冷卻氮氣溶解水生成部20透過供給線34移送之冷卻之氮氣溶解水暫時儲存;複數之冰罐32,為填充冷卻之氮氣氣體溶解水;鹽水槽33,為浸泡複數之冰罐32。 Fig. 4 is a view schematically showing a configuration example of the nitrogen-substituted ice cube generating unit 30 of Fig. 1 . The nitrogen-substituted ice generation unit 30 includes a water injection tank 31 for temporarily storing the cooled nitrogen-dissolved water transferred from the cooling nitrogen-dissolved water generating unit 20 through the supply line 34, and the plurality of ice tanks 32 are filled with cooled nitrogen gas dissolved water. The brine tank 33 is a plurality of ice tanks 32 for soaking.

注水槽31,具備為對應各個冰罐32而在底面形成之複數之注水口。各注水口35,位於各冰罐32之上面開口正上方。注水口35,以將氮氣溶解水儲存至注水槽31時關閉,從注水槽將氮氣溶解水填充至各冰罐32時打開之方式控制。 The water injection tank 31 is provided with a plurality of water injection ports formed on the bottom surface corresponding to the respective ice cans 32. Each of the water injection ports 35 is located directly above the upper opening of each ice can 32. The water injection port 35 is closed when the nitrogen-dissolved water is stored in the water-filling tank 31, and is controlled to be opened when the nitrogen-dissolved water is filled into the ice tank 32 from the water-filling tank.

各冰罐32,是為了製造冰塊而形成既定形狀及大小之容器。各冰罐32浸泡在鹽水槽33內。鹽水槽33,例如,填充了將氯化鈣水溶液作為鹽水之槽。鹽水藉由外部之冷卻裝置(未圖式)冷卻至既定溫度。鹽水之溫度,設定為最適合為將冰罐32內之氮氣溶解水結凍並生成優質冰塊之溫度。 Each of the ice cans 32 is a container having a predetermined shape and size for the purpose of manufacturing ice cubes. Each ice can 32 is immersed in the brine tank 33. The brine tank 33 is, for example, filled with a tank in which an aqueous calcium chloride solution is used as the brine. The brine is cooled to a predetermined temperature by an external cooling device (not shown). The temperature of the brine is set to be the most suitable temperature for freezing the nitrogen dissolved water in the ice tank 32 to produce high quality ice.

接著,在各冰罐32內,設置為從氮氣氣體供給部10透過供給線36將氮氣氣體注入水內之注入管37。注入管37,例如冰罐32內以鉛直方向延伸之長管,管壁上形成為噴出氮氣氣體之多數之孔。藉此,冰罐32內之氮氣氣體溶解水之結凍中,未結凍部分中之會進一步降低溶氧量, 並會進一步提高溶氮量。另外,藉由冰罐32內之氮氣氣體之噴射,水中之氣泡上升並從空氣中排出,使氣泡及雜質不會進入冰塊,而獲得透明度高之冰塊。通常僅以空氣之充氣所製造之冰塊常見中央部殘留不透明之部分,本發明之冰塊透明度更加地高。另外,藉由適度地攪拌以提升冷卻效率。 Next, in each of the ice tanks 32, an injection pipe 37 for injecting nitrogen gas into the water from the nitrogen gas supply unit 10 through the supply line 36 is provided. The injection pipe 37 is, for example, a long pipe extending in the vertical direction in the ice tank 32, and a plurality of holes for discharging nitrogen gas are formed on the pipe wall. Thereby, the nitrogen gas in the ice tank 32 dissolves in the freezing of the water, and the amount of dissolved oxygen is further reduced in the unfrozen portion. And will further increase the amount of nitrogen. Further, by the injection of the nitrogen gas in the ice tank 32, the bubbles in the water rise and are discharged from the air, so that the bubbles and impurities do not enter the ice, and the ice having high transparency is obtained. The ice cubes which are usually made only by the aeration of air are often opaque in the central portion, and the ice of the present invention is more transparent. In addition, the cooling efficiency is improved by moderate agitation.

圖5係,顯示圖1~圖4所顯示之使用製造系統來製造氮氣置換冰塊之步驟之適當例之流程圖。本利所製造之冰塊尺寸為縱280mmX橫550mmX高1080mm。 Fig. 5 is a flow chart showing a suitable example of the steps of manufacturing a nitrogen-substituted ice cube using the manufacturing system shown in Figs. 1 to 4; The ice cubes manufactured by Benli are 280mm in length and 550mm in height and 1080mm in height.

首先,供給原料之水至儲水槽,並填充(步驟S01)。填充之後,可藉由將水靜置數小時至數十小時,使水中之氣泡自然地上升排除至空氣中,藉此降低溶氧量。 First, the raw material water is supplied to the water storage tank and filled (step S01). After the filling, the water can be naturally removed from the air by allowing the water to stand for several hours to several tens of hours, thereby reducing the amount of dissolved oxygen.

接著,緩緩地將氮氣氣體注入儲水槽內,將水冷卻至0℃附近(比0℃高溫)(步驟S02)。對應其水量花費適當時間來執行。藉此,生成冷卻之氮氣溶解水。 Next, nitrogen gas is gradually injected into the water storage tank, and the water is cooled to around 0 ° C (higher than 0 ° C) (step S02). It takes time to execute according to the amount of water. Thereby, cooled nitrogen is dissolved in the water.

接下來,將儲水槽內之冷卻之氮氣溶解水移送至注水槽,填充至注水槽(步驟S03)。注水槽之填充後,打開注水槽之注水孔,將冷卻之氮氣溶解水填充至位於下方之各冰罐(步驟S04)。填充氮氣溶解水時,浸泡在鹽水槽之各冰罐已維持適當之冷卻溫度,意即可使水結冰之溫度。可使水結冰之溫度,例如-12℃。 Next, the cooled nitrogen dissolved water in the water storage tank is transferred to the water injection tank and filled into the water injection tank (step S03). After filling the water tank, the water injection hole of the water tank is opened, and the cooled nitrogen-dissolved water is filled into the ice tanks located below (step S04). When the nitrogen is dissolved in the water, the ice tanks immersed in the brine tank have maintained the appropriate cooling temperature, which means the temperature at which the water freezes. The temperature at which water can be frozen, for example -12 °C.

之後,各冰罐內之氮氣溶解水之未結凍部分緩緩地注入氮氣氣體,使氮氣氣體結凍。到結凍結束為止,鹽水槽維持固定之溫度。適當例為,冰罐自填充氮氣溶解水結凍開始至結束花費48小時。最初至既定之 時間緩緩地注入氮氣氣體進行氮氣溶解水之結凍(步驟S05)。較佳為至接近結凍完成為止仍注入氮氣氣體。停止注入氮氣氣體時,較佳為從各冰罐取出注入管。停止注入氮氣氣體後,氮氣溶解水之結凍便完成(步驟S06)。結凍完成後,將從各冰罐中取出氮氣置換冰塊(步驟S07)。 Thereafter, the unfrozen portion of the nitrogen-dissolved water in each ice tank was gradually injected with nitrogen gas to freeze the nitrogen gas. The brine tank maintains a fixed temperature until the end of the freeze. As a suitable example, it takes 48 hours for the ice can to be frozen from the filling of the nitrogen-dissolved water to the end. Initial to established The nitrogen gas is gradually injected into the nitrogen to dissolve the water (step S05). It is preferred to inject nitrogen gas until the completion of the freezing. When the injection of the nitrogen gas is stopped, it is preferred to take out the injection tube from each ice can. After the injection of the nitrogen gas is stopped, the freezing of the nitrogen-dissolved water is completed (step S06). After the completion of the freezing, the nitrogen gas is taken out from each ice can to replace the ice (step S07).

依據上述適當例中水之可結凍溫度、全結凍時間,以及氮氣氣體之注入時間及停止時間,可充分氮氣置換並獲得透明度高且優質之冰塊。此狀況之全結凍時間,比同樣大小之習知冰塊(藉由充氣)在相同溫度條件下所製造之全結凍時間短。 According to the above-mentioned appropriate example, the freezeable temperature of the water, the full freeze time, and the injection time and the stop time of the nitrogen gas can be sufficiently replaced with nitrogen to obtain a high-transparency and high-quality ice. The full freezing time of this condition is shorter than the full freezing time of the same size of conventional ice (by aeration) under the same temperature conditions.

但是,本發明並不只限定於上述適當例,亦可鹽水之溫度也可因需求作適當變更。另外,結凍開始至結凍結束之時間,以及,之後之結凍結束為止之氮氣氣體之停止注入而結凍之時間,都可因需求作適當變更。例如,全結凍時間48小時,鹽水溫度為-10℃,前半之24小時注入氮氣氣體,後24小時停止。另外,例如,全結凍時間72小時,鹽水之溫度為-8℃,開始之60小時注入氮氣氣體,之後12小時停止。 However, the present invention is not limited to the above-described appropriate examples, and the temperature of the brine may be appropriately changed depending on the demand. In addition, the time from the start of the freezing to the end of the freezing, and the time when the nitrogen gas is stopped and the freezing is completed after the end of the freezing can be appropriately changed depending on the demand. For example, the total freezing time is 48 hours, the brine temperature is -10 ° C, the first half of the 24 hours is injected with nitrogen gas, and the second 24 hours are stopped. Further, for example, the total freezing time is 72 hours, the temperature of the brine is -8 ° C, the nitrogen gas is injected 60 hours after the start, and then stopped 12 hours later.

圖6係由圖5之步驟製作之氮氣置換冰塊俯視之照片。圖7係習知方法製作之相同大小冰塊俯視之照片。習知之方法,為將通常之水一邊充氣一邊結凍之方法。習知方法中,充氣用之空氣,藉由通過濾網去除灰塵。將圖6及圖7比較,可知氮氣置換冰塊之透明度較高。 Figure 6 is a photograph of a top view of a nitrogen-substituted ice block made by the steps of Figure 5. Figure 7 is a photograph of an ice block of the same size made by a conventional method. A conventional method is a method of freezing a normal water while inflating it. In the conventional method, the air for inflation is removed by passing through a sieve. Comparing Fig. 6 with Fig. 7, it can be seen that the transparency of the nitrogen replacement ice block is high.

10‧‧‧氮氣氣體供給部 10‧‧‧Nitrogen gas supply department

20‧‧‧冷卻氮氣溶解水生成部 20‧‧‧Cooling nitrogen dissolved water generation unit

30‧‧‧氮氣置換冰塊生成部 30‧‧‧Nitrogen replacement ice generation unit

Claims (8)

一種氮氣置換冰塊製造系統,是為製造氮氣置換冰塊之系統,其特徵在於,具備:(a)氮氣氣體供給部,具備為將氮氣氣體以固定壓力提供之手段;(b)氮氣溶解水生成部,為生成氮氣溶解水而必須具備;儲水槽,為儲存原料之水;冷卻手段,將儲存在上述儲水槽之水冷卻;氮氣氣體注入手段,為將從上述氮氣氣體供給部供給之氮氣注入上述儲水槽儲存之水中。 (c)氮氣置換冰塊生成部,具備:複數之冰罐,浸泡在可維持水之凍結溫度之鹽水槽內;填充手段,從上述氮氣溶解水生成部供給提供氮氣溶解水填充至各別上述冰罐;氣體注入手段,已填充之上述氮氣溶解水之結凍中,從上述氮氣氣體供給部供給之氮氣氣體各別注入上述氮氣溶解水之未結凍部分。 A nitrogen-substituted ice cube manufacturing system for producing a nitrogen-substituted ice cube, comprising: (a) a nitrogen gas supply unit provided with means for supplying nitrogen gas at a fixed pressure; (b) nitrogen-dissolved water The generating unit is required to generate nitrogen-dissolved water; the water storage tank is water for storing the raw material; the cooling means cools the water stored in the water storage tank; and the nitrogen gas injection means is nitrogen gas supplied from the nitrogen gas supply unit. Inject into the water stored in the above storage tank. (c) a nitrogen-substituted ice cube generating unit, comprising: a plurality of ice cans immersed in a brine tank capable of maintaining a freezing temperature of water; and a filling means supplied from the nitrogen-dissolved water generating unit to supply nitrogen-dissolved water to each of the above The ice canister; the gas injection means, in the freezing of the filled nitrogen-dissolved water, and the nitrogen gas supplied from the nitrogen gas supply unit is separately injected into the unfrozen portion of the nitrogen-dissolved water. 如請求項1之氮氣置換冰塊製造系統,其中,上述氮氣溶解水生成部所生成之氮氣溶解水較佳為0℃附近溫度且溶氧量未滿0.3mg/L。 The nitrogen-substituted ice cube manufacturing system according to claim 1, wherein the nitrogen-dissolved water generated by the nitrogen-dissolved water generating unit is preferably at a temperature of around 0 ° C and an dissolved oxygen amount of less than 0.3 mg/L. 如請求項1或2之氮氣置換冰塊製造系統,其中,將上述氮氣溶解水各自填充至冰罐之填充手段,具備:注水槽,為儲存從上述氮氣溶解水生成部提供之氮氣溶解水;複數之注水口,對應各別上述冰罐並形成在上述注水槽底面,透過各個上述注水口,上述冰罐各自填充該氮氣溶解水。 The nitrogen-substituted ice cube manufacturing system according to claim 1 or 2, wherein the nitrogen-dissolved water is filled into each of the filling means of the ice tank, and comprises: a water-filling tank for storing nitrogen-dissolved water supplied from the nitrogen-dissolved water generating portion; A plurality of water injection ports corresponding to the respective ice cans are formed on the bottom surface of the water injection tank, and are passed through the respective water injection ports, and the ice cans are filled with the nitrogen dissolved water. 一種氮氣置換冰塊製造方法,係製造氮氣置換冰塊之方法,其特徵在於,具有: 第1步驟,藉由緩緩地將儲存之原料之水注入氮氣氣體並冷卻上述水,生成冷卻之氮氣溶解水,第2步驟,在可維持水之凍結溫度之冰罐填充上述冷卻之氮氣溶解水,並在該氮氣溶解水之結凍時間開始至結凍時間結束之時間內,至少將一部分未結凍部分緩緩地注入氮氣氣體使該氮氣溶解水結凍。 A method for producing a nitrogen-substituted ice cube, which is a method for producing a nitrogen-substituted ice cube, characterized in that it has: In the first step, by slowly injecting the stored raw material water into the nitrogen gas and cooling the water to generate cooled nitrogen dissolved water, in the second step, the ice tank capable of maintaining the freezing temperature of the water is filled with the cooled nitrogen to dissolve. Water, and at least a portion of the unfrozen portion is slowly injected with nitrogen gas during the freezing time of the nitrogen-dissolved water to the end of the freezing time to freeze the nitrogen-dissolved water. 如請求項4之氮氣置換冰塊製造方法,其中,第1步驟之氮氣溶解水生成部所生成之氮氣溶解水較佳為0℃附近溫度且溶氧量未滿0.3mg/L。 The method for producing a nitrogen-substituted ice cube according to claim 4, wherein the nitrogen-dissolved water generated by the nitrogen-dissolved water generating portion in the first step is preferably at a temperature near 0 ° C and the dissolved oxygen amount is less than 0.3 mg/L. 如請求項4或5之氮氣置換冰塊製造方法,其中,上述氮氣溶解水之結凍時間開始至結凍時間結束之時間內,從結凍開始至中途在該氮氣溶解水之未結凍部分緩緩地注入氮氣氣體來結凍,之後至結凍完成將停止注入氮氣氣體來結凍。 The method for producing a nitrogen-substituted ice cube according to claim 4, wherein the freezing time of the nitrogen-dissolved water starts from the end of the freezing time, and the unfrozen portion of the nitrogen-dissolved water from the start of freezing to the middle of the freezing Nitrogen gas is slowly injected to freeze, and then, when the freezing is completed, the injection of nitrogen gas is stopped to freeze. 如請求項4或5之氮氣置換冰塊製造方法,其中,在製造縱280mmX橫550mmX高1080mm之柱狀冰塊之狀況,從上述氮氣溶解水之結凍開始至結凍結束之時間為48小時。 The method for producing a nitrogen-substituted ice cube according to claim 4 or 5, wherein, in the case of producing columnar ice cubes having a length of 280 mm X and a width of 550 mm X and a height of 1080 mm, the time from the freezing of the nitrogen-dissolved water to the end of the freezing is 48 hours. . 如請求項6之氮氣置換冰塊製造方法,其中,在製造縱280mmX橫550mmX高1080mm之柱狀冰塊之狀況,從上述氮氣溶解水之結凍開始至結凍結束之時間為48小時。 The method for producing a nitrogen-substituted ice cube according to claim 6, wherein the period of the columnar ice cube having a length of 280 mm X and a width of 550 mm X and a height of 1080 mm is 48 hours from the freezing of the nitrogen-dissolved water to the end of the freezing.
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Publication number Priority date Publication date Assignee Title
CN111854248B (en) * 2019-04-01 2022-03-25 青岛海尔电冰箱有限公司 Ice maker and control method thereof
CN112194220A (en) * 2020-10-29 2021-01-08 晶彩无限环境科技(苏州)有限公司 Preparation method and preparation system of oxygen-free water-regulating and oxygen-free air-regulating ice
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Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SU131767A1 (en) * 1959-11-11 1959-11-30 А.К. Комов The method of obtaining block ice
SU1500814A1 (en) * 1987-12-01 1989-08-15 С.О.Филин и Т.В.Филина Food service ice maker
US4979370A (en) * 1989-09-07 1990-12-25 Hotaling William E Process for manufacturing clear and pattern ice products
JP3193441B2 (en) * 1992-03-09 2001-07-30 御木本製薬株式会社 Whitening cosmetics
JP3350138B2 (en) * 1992-08-07 2002-11-25 株式会社前川製作所 Method and apparatus for producing transparent ice
JP3412371B2 (en) * 1995-11-29 2003-06-03 三浦工業株式会社 Freezing prevention system for ice storage type chiller
JP4503214B2 (en) * 2002-03-27 2010-07-14 日本電産サンキョー株式会社 Automatic ice maker water supply mechanism
JP2005043014A (en) * 2003-07-24 2005-02-17 Hoshizaki Electric Co Ltd Operation method of automatic ice making machine
KR100607640B1 (en) * 2003-10-30 2006-08-02 (주) 엘플러스닷컴 Apparatus for rapid ice making
JP4079968B2 (en) * 2005-12-02 2008-04-23 株式会社昭和冷凍プラント Nitrogen gas-filled ice, nitrogen gas-filled ice production device, nitrogen gas-filled ice production method, fresh fish preservation device, and fresh fish preservation method
JP4803431B2 (en) 2006-01-30 2011-10-26 独立行政法人産業技術総合研究所 Method and apparatus for producing gas-containing ice and gas-containing ice
KR100819600B1 (en) * 2006-02-10 2008-04-03 엘지전자 주식회사 Water tank for ice tray and ice tray assembly using the same
JP4969897B2 (en) * 2006-04-14 2012-07-04 株式会社昭和冷凍プラント Pickled soup, pickled juice manufacturing equipment and processing pickling method
JP2011112579A (en) 2009-11-30 2011-06-09 Nikon Corp Shape-measuring device
JP2012163312A (en) * 2011-01-17 2012-08-30 Showa Reito Plant:Kk Nitrogen ice making device and method, and cooling apparatus
US8956542B1 (en) * 2013-07-30 2015-02-17 Showa Freezing Plant Co., Ltd. Method for processing radioactively-contaminated water
JP3198096U (en) * 2015-01-30 2015-06-18 株式会社北海道ニーズ Mobile ice truck
CN104792081B (en) * 2015-04-17 2017-03-01 安徽绿能技术研究院有限公司 Sell ice maker and its control method

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