The present invention relates to a bottle type cooling pack, and more particularly, to a bottle type cooling pack, wherein, when a plurality of cooling packs are stacked and frozen, the curved shape of a case of each of the plurality of cooling packs enables the side surfaces of cooling packs disposed in the middle or lower portion of the stack of the packs to be also exposed to the outside so that the freezing speed can be increased.
In general, ice packs are used instead of ice when various fresh foods such as agricultural products, livestock products, and marine products are stored at low temperatures and are transported so that these fresh foods do not deteriorate. However, because these fresh foods lose their function as food when they are left at an appropriate temperature or higher even for a short period of time, an appropriate temperature needs to be continuously maintained. Thus, the supply of ice packs at an appropriate temperature is important for maintaining the freshness of fresh foods.
However, ice packs need to be frozen so as to maintain an appropriate temperature, and a refrigerator for this is required. Ice packs according to the related art are mainly used in the form of plates, and when these ice packs are frozen in large quantities, they are stacked and frozen in order to freeze a larger number of ice packs. In this case, ice packs arranged in the middle of the stacked ice packs have a relatively small area exposed to the outside, so that the freezing speed is decreased.
The present invention provides a bottle type cooling pack, wherein, when a plurality of cooling packs are stacked and frozen, the curved shape of a case of each of the plurality of cooling packs enables the side surfaces of cooling packs disposed in the middle or lower portion of the stack of the packs to be also exposed to the outside so that the freezing speed can be increased.
According to an aspect of the present invention, there is provided a bottle type cooling pack including a case, which has a storage space formed therein to store a refrigerant including a phase change material (PCM), the phase of which varies according to temperature, has a front surface and a rear surface, widths of which are wider than that of a side surface thereof, and has a rectangular hexahedral shape formed through the front surface and rear surface and curved in forward and backward directions, wherein, in the case, the front surface and the rear surface are curved in the forward and backward directions, and the width of the front surface is greater than the width of the rear surface, and on the front surface, a plurality of grooves having a linear structure with respect to the widthwise direction so that absorption of cold energy from an outside or emission of cold energy inside the case can be quickly performed, are formed to be spaced apart from one another in a lengthwise direction of the case, and on the rear surface, a plurality of grooves having a linear structure with respect to the widthwise direction so that absorption of cold energy from an outside or emission of cold energy inside the case can be quickly performed, is are formed to be spaced apart from one another in a lengthwise direction of the case, and when multiple cases are stacked in the forward and backward directions and change into a sold phase, a width of the front surface of the case disposed in a lower portion of a stack of the packs is more smaller than a width of the rear surface of the case disposed in an upper portion of the stack of the packs so that the case disposed in the lower portion is exposed by a difference between the width of the front surface of the case disposed in the lower portion and the width of the rear surface of the case disposed in the upper portion.
According to the present invention, a bottle type cooling pack has the following effects.
First, when a plurality of cooling packs are stacked and frozen, the curved shape of a case of each of the plurality of cooling packs enables the edge portions of cooling packs disposed in the middle or lower portion of the stack of the packs to be also exposed to the outside so that the freezing speed can be increased.
Second, because cold air can be transmitted between grooves of a linear structure formed on the outer circumferential surface of the case and the cold energy of a refrigerant can be emitted, time can be saved when freezing or supplying the cold air to an object required to be maintained at low temperature.
Third, when multiple cases are stacked, protrusions of the case disposed in the lower portion of the stack of the cases and insertion grooves of the case stacked on the upper portion of the stack of the cases are combined with one another, so that the case stacked on the upper portion of the stack of the cases is fixed without slipping.
Hereinafter, the present invention will be described in detail by describing a preferred embodiment of the present invention with reference to the accompanying drawings.
Referring to
Because the case 110 has rigidity to maintain the shape, like in a general plastic container, unlike an existing pouch type cooling pack, the bottle type cooling pack 100 does not require an additional material for shape maintenance, like in an existing cooling pack. Also, the case 110 may discharge the refrigerant (not shown) after use and may be separately collected and thus is ecofriendly, and the refrigerant is frozen again or is re-injected and frozen and thus may be re-used and the case 110 is suitable for resource recycling (resource circulation).
The case 110 has an injection portion 111, which is formed in an upper portion of the case 110 and through which the refrigerant (not shown) may be injected and discharged. The case 110 has a āUā-shaped groove formed in an upper end in which the injection portion 111 is formed. The injection portion 111 is formed in the U-shaped groove. Thus, the case 110 has no entirely protruding portions in spite of the presence of the injection portion 111 and thus is maintained in the rectangular hexahedral structure. Also, because the injection portion 111 is formed in the U-shaped groove, the risk of breakage caused by contact with the outside can be remarkably reduced.
Also, the case 110 includes an injection portion stopper 112 for opening/closing the injection portion 111. The injection portion 111 has a similar structure to that of a cylindrical beverage outlet formed in a general drink bottle, and has a screw thread formed on an outer circumferential surface of the injection portion 111. The injection portion stopper 112 has a similar structure to that of a general drink lid, and has a screw thread that may be screw connected to the injection portion 111 and is formed on an inner circumferential surface of the injection portion 111. In the present embodiment, the combined structure of the injection portion 111 and the injection portion stopper 112 has been described as a screw connection structure, but any combined structure of the injection portion stopper 112 in which the refrigerant may be injected and discharged, may be modified.
In the case 110, a wide and curved surface shown in
Because the case 110 has a structure which is curved in one direction rather than a plate shape, the case 110 may be flexibly in contact with the rear surface 114 of the case 110 when coming into contact with fresh foods generally packaged in a plastic bag or the like. Also, because the front surface 113 has a greater width than that of the rear surface 114 and surrounds the front surface 113, there is an effect in which cold energy in the bottle type cooling pack 100 is well collected in a direction of the rear surface 114 and is emitted. Thus, an object required to be maintained at low temperature and disposed in the rear surface 114 may receive cold air effectively.
Protrusions 115 are formed on the front surface 113 of the case 110, as shown in
Insertion grooves 116 are formed in the rear surface 114 of the case 110, as shown in
When two or more cases 110 are stacked, as shown in
The refrigerator (not shown) stored in the case 110 uses mainly water. However, when the water changes from a liquid state to a solid state, that is, when the water changes to ice, unlike other general cases, the volume of the water increases. Accordingly, the case 110 may be subjected to a force by the ice that expands when the water freezes, and may be deformed. However, due to this deformation, as shown in
The rib structure 117 includes a first rib structure 117 formed in a portion in which the first protrusions 115a and the first insertion grooves 116a are formed, and a second rib structure 117b formed in a portion in which the second protrusions 115b and the second insertion grooves 116b are formed. That is, the first rib structure 117a is formed in the widthwise direction along an outer circumferential surface of the case 110, the first protrusions 115a are formed on the front surface 113 in which the first rib structure 117a is formed, and the first insertion grooves 116a are formed in the rear surface 114. The second rib structure 117b is spaced apart from the first rib structure 117a in the lengthwise direction of the first rib structure 117a, wherein the second protrusions 115b are formed on the front surface 113 in which the second rib structure 117b is formed, and the second insertion grooves 116b are formed on the rear surface 114. In the bottle type cooling pack 100, deformation occurs only in the lengthwise direction by the rib structure 117 formed in the widthwise direction when water that is the refrigerant (not shown) is frozen and expands. Thus, the widthwise distance between the protrusions 115 and the widthwise distance between the insertion grooves 116 hardly change. Thus, because even when the bottle type cooling pack 100 is deformed, the rib structure 117 limits widthwise deformation, a problem that the protrusions 115 and the insertion grooves 116 are not combined with each other and collapse in a state where the bottle type cooling packs 100 are stacked, can be solved. In the present embodiment, the protrusions 115 and the insertion grooves 116 may be respectively formed in one of portions between portions in which the grooves 118 of the linear structure are formed.
The grooves 118 of the linear structure are formed on the outer circumferential surface of the case 110. The grooves 118 of the linear structure include grooves 118a of a first linear structure formed on the front surface 113 and grooves 118b of a second linear structure formed on the rear surface 114. A plurality of grooves 118 of the linear structure are formed in the widthwise direction to be spaced apart from one another in parallel to the rib structure 117 in the lengthwise direction. Thus, the outer circumferential surface of the case 110 forms a concave-convex structure while portions where the grooves 118 of the linear structure are formed and portions where no grooves 118 of the linear structure are formed, are repeated. When the case 110 is frozen by increasing the surface area of the case 110, more cold air is in contact with the grooves 118 of the linear structure so that the refrigerant (not shown) stored in the case 110 can be rapidly cooled. Of course, due to the increased surface area by the grooves 118 of the linear structure, in the bottle type cooling pack 100, even when cold energy is emitted onto an object required to be maintained at low temperature, cold energy can be emitted more rapidly than the case where the grooves 118 of the linear structure are not present.
In the present embodiment, the grooves 118 of the linear structure are formed in one linear structure in which the grooves 118 are connected without broken portions. However, the present invention is not limited thereto, and the grooves 118 of the linear structure may also be formed only on the front surface 113 and the rear surface 114. Because when a plurality of cases 110 are stacked, they are stacked to face each other between the grooves 118 of the linear structure, even when the cases 110 are stacked and frozen, cold air may flow between the grooves 118 of the linear structure so that, even when the plurality of cases 110 are stacked and frozen, the degree of reducing the cooling speed is small.
The refrigerant (not shown) uses phase change materials (PCM) of which phases change according to temperature. In the present embodiment, an example of the refrigerant is water of which phase changes between the solid state and the liquid state. Of course, the type of the refrigerant may change. The refrigerant (not shown) may be injected through the injection portion 111 of the case 110, and when the refrigerant (not shown) needs to be replaced, in a state in which the refrigerant (not shown) is in a liquid phase state, the injection portion stopper 112 is opened, and the refrigerant is discharged through the injection portion 111.
In the present embodiment, water used as the refrigerant uses general water that is not purified. However, the present invention is not limited thereto, and water used as the refrigerant is purified and thus, water that may be directly drunk may also be used. This means that, after the bottle type cooling pack 100 is used for the purpose of maintaining temperature of fresh food or the like, the bottle type cooling pack 100 can be used for the purpose such as mineral water. Thus, the utilization of the refrigerant that has been used for the purpose of use, rather than simply discharging the refrigerant that has reached the existing purpose of use so that resources can be saved and efficiency can be promoted. Of course, the purified water can be frozen and re-used as a refrigerant.
Referring to
When the cases 110 are formed in a plate structure and stacked, when widths of facing surfaces are the same, a surface on which cold air may contact the cases 110, is reduced, when a plurality of cases 110 are stacked and frozen, the cooling speed is decreased. Fresh foods cannot be used any more when they are deteriorated in a state in which they are at higher temperature than required temperature. Thus, it is significant to rapidly supply the cooling pack. Thus, structurally, the present invention having a structure in which the cooling pack can be cooled in large quantities at a short time can satisfy demand characteristics of a product.
While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present invention as defined by the following claims.
By using the present invention, a bottle type cooling pack, wherein, when a plurality of cooling packs are stacked and frozen, edge portions of cooling packs disposed in the middle or lower portion of the stack of the packs to be also exposed to the outside so that the freezing speed can be increased, can be provided.
Number | Date | Country | Kind |
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20-2020-0000585 | Feb 2020 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2020/007404 | 6/8/2020 | WO |