Freezing plate with customizable size
By designing customizable freezer plates, the problem of low space utilization caused by the irregular shape of plastic ice packs inside the insulated refrigerator was solved, achieving a close match between the freezer plates and the insulated refrigerator and efficient space utilization.
Patent Information
- Application Number
- CN202520152113.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-01-22
AI Technical Summary
Plastic ice packs freeze into irregular shapes inside insulated refrigerators, resulting in low space utilization, and existing refrigerants cannot effectively fill the gaps in insulated refrigerators.
Design a customizable freezer plate consisting of multiple freezer tubes and a cover component. By adjusting the number and arrangement of the freezer tubes, ensure that the length of the freezer plate matches the insulated refrigerator. Improve stability and sealing effect through the design of connecting ropes and cover components.
It improves the space utilization of the insulated refrigerator, ensures a tight fit between the freezer plate and the insulated refrigerator, reduces gaps, enhances the stability and sealing effect of the freezer plate, and improves the freezing effect and space applicability.
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Figure CN223855964U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of freezing, in particular to a freezing plate with customizable size. BACKGROUND
[0002] In a portable thermal insulation refrigerator, in order to maintain the longer freezing effect of the thermal insulation refrigerator, a refrigerating object is generally placed inside the thermal insulation refrigerator to absorb heat in the thermal insulation refrigerator, thereby prolonging the long freezing effect of the thermal insulation refrigerator.
[0003] At present, in order to adapt to the portability and economy of the thermal insulation refrigerator, a plastic ice bag is generally selected as the refrigerating object for refrigeration in the thermal insulation refrigerator. When in use, the plastic ice bag is filled with refrigerant, and then the plastic ice bag is frozen to a suitable state, and then the plastic ice bag is placed near the thermal insulation refrigerator for refrigeration.
[0004] For the related technology in the above, after the plastic ice bag filled with refrigerant is frozen, the shape of the plastic ice bag is irregular, which can easily cause a large number of gaps that are not easy to be utilized when the plastic ice bag is placed in the thermal insulation refrigerator, thereby reducing the space utilization rate in the thermal insulation refrigerator. CONTENT OF THE INVENTION
[0005] In order to reduce the gaps that are not easy to be utilized when the refrigerating object is placed in the thermal insulation refrigerator, the present application provides a freezing plate with customizable size.
[0006] The freezing plate with customizable size provided by the present application adopts the following technical solution:
[0007] A freezing plate with customizable size, comprising one or more freezing pipes, each of the freezing pipes being connected to each other to form the freezing plate, the freezing pipe comprising a pipe body part and two cover body parts, the pipe body part being provided with a freezing groove penetrating through, and the two cover body parts being respectively detachably connected to the two ends of the pipe body part and respectively sealing the two end slots of the freezing groove.
[0008] By adopting the above technical solution, the freezing plate is composed of one or more freezing pipes connected to each other, so that the length of the freezing plate is always close to the length of the thermal insulation refrigerator by adjusting the number of the freezing pipes that form the freezing plate, thereby making the position of the freezing plate connected to the thermal insulation refrigerator not easy to produce a large number of gaps that are not easy to be utilized, and improving the problem that the shape of the plastic ice bag is irregular after the plastic ice bag filled with refrigerant is frozen, which can easily cause a large number of gaps that are not easy to be utilized when the plastic ice bag is placed in the thermal insulation refrigerator, thereby reducing the space utilization rate in the thermal insulation refrigerator.
[0009] Optionally, one or more connecting ropes are further included, the freezing tubes are provided with connecting holes, and when the freezing tubes are connected to form the freezing plate, the connecting ropes are sequentially arranged in the adjacent connecting holes, so that the freezing tubes are connected to form the freezing plate.
[0010] By adopting the above technical scheme, the connecting ropes are arranged, the connection of the freezing tubes forming the freezing plate is more stable, the structure of the freezing plate is more stable, and the usability is better.
[0011] Optionally, the cross-sectional shape of the tube component includes a triangle, a square, a rectangle, a prism, a regular polygon, and an isosceles trapezoid.
[0012] Optionally, the cross-sectional shape of the tube component is an isosceles trapezoid, and the tube component includes opposite upper and lower bottom surfaces and a side waist surface connected between the upper and lower bottom surfaces.
[0013] Optionally, the lower bottom surface of one freezing tube and the upper bottom surface of an adjacent other freezing tube are arranged on the same side.
[0014] Or the upper bottom surface of one freezing tube and the upper bottom surface of an adjacent other freezing tube are arranged on the same side.
[0015] By adopting the above technical scheme, the freezing plate formed by the same number of freezing tubes can be adjusted by adjusting the number of the upper and lower bottom surfaces in the same plane to fine-tune the space size filled by the freezing plate. When the upper and lower bottom surfaces of each adjacent two freezing tubes forming the freezing plate are staggered, the space size occupied by the freezing plate is the smallest. When the upper and lower bottom surfaces of each freezing tube forming the freezing plate are in the same plane, the space size occupied by the freezing plate is the largest. When the upper and lower bottom surfaces of each freezing tube forming the freezing plate are staggered, the space size occupied by the freezing plate is between the space sizes occupied by the above two arrangement modes. Therefore, the space size occupied by the freezing plate is more suitable for different space sizes of the heat preservation refrigerator, and the usability is better.
[0016] Optionally, a first round corner is arranged between the upper bottom surface and the side waist surface, and a second round corner is arranged between the lower bottom surface and the side waist surface.
[0017] By adopting the above technical scheme, the first and second round corners are arranged, the shape structure of the tube component is more stable, the service life of the tube component is better, and deformation is less likely to occur, and the usability is better.
[0018] Optionally, the cover component comprises a connecting portion, a top end portion and a sealing portion, the top end portion is located at one end of the connecting portion, the sealing portion is located at the other end of the connecting portion, when the cover component is connected to the pipe body component, the top end portion abuts against the pipe body component, the connecting portion and the sealing portion are both arranged in the freezing tank, and the side surface of the sealing portion abuts against and seals the freezing tank body.
[0019] By adopting the above technical scheme, when the cover component seals the freezing tank, the abutment of the top end portion against the pipe body component and the abutment of the sealing portion against the freezing tank body are realized, thereby completing two different sealings of the freezing tank, so that the sealing effect of the cover component on the freezing tank is better, and the usability is better.
[0020] Optionally, the pipe body component is made of plastic or metal.
[0021] Optionally, the cover component is made of soft rubber with elasticity.
[0022] In summary, the present application has at least one of the following beneficial technical effects:
[0023] 1. The freezing plate is composed of one or more freezing pipes connected to each other, so that by adjusting the number of freezing pipes that constitute the freezing plate, the length of the freezing plate is always close to the length of the insulation refrigerator, so that the position where the freezing plate is connected to the insulation refrigerator is less likely to produce a large gap that is not easy to utilize, thereby improving the problem that after the plastic ice bag is filled with refrigerant and frozen, the shape of the plastic ice bag is irregular, which is easy to cause a large gap that is not easy to utilize when the plastic ice bag is placed in the insulation refrigerator, thereby reducing the space utilization rate of the insulation refrigerator.
[0024] 2. Thus, the freezing plate composed of the same number of freezing pipes can realize fine adjustment of the space size filled by the freezing plate by adjusting the number of upper and lower bottom surfaces in the same plane. When the upper and lower bottom surfaces of each adjacent two freezing pipes that constitute the freezing plate are connected alternately, the space size occupied by the freezing plate is the smallest. When the upper and lower bottom surfaces of each freezing pipe that constitutes the freezing plate are in the same plane, the space size occupied by the freezing plate is the largest. When the upper and lower bottom surfaces of each freezing pipe that constitutes the freezing plate are connected in a staggered manner, the space size occupied by the freezing plate is between the space sizes occupied by the above two arrangement modes, so that the space size occupied by the freezing plate is more suitable for insulation refrigerators with different space sizes, and the usability is better.
[0025] 3. Thus, when the cover component seals the freezing tank, the abutment of the top end portion against the pipe body component and the abutment of the sealing portion against the freezing tank body are realized, thereby completing two different sealings of the freezing tank, so that the sealing effect of the cover component on the freezing tank is better, and the usability is better. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 This is a schematic diagram of the structure of the freezing plate.
[0027] Figure 2 This is a schematic diagram of the structure of a freezer plate installed in an insulated refrigerator;
[0028] Figure 3 This is a schematic diagram of a grid-structured freezing plate.
[0029] Figure 4 This is a schematic diagram of a regular polygonal freezing plate structure;
[0030] Figure 5 This is a schematic diagram of the overall structure of Embodiment 1;
[0031] Figure 6 This is a schematic diagram of the cryotube structure in Example 1;
[0032] Figure 7 This is a schematic diagram of the pipe body component structure in Embodiment 1;
[0033] Figure 8 This is a schematic diagram of the cross-sectional structure of the tube component in Embodiment 1;
[0034] Figure 9 This is a schematic diagram of the cover component structure in Embodiment 1. Figure 1 ;
[0035] Figure 10 This is a schematic diagram of the cover component structure in Embodiment 1. Figure 2 ;
[0036] Figure 11 This is a schematic diagram showing different distributions of the freezing tubes in Example 1;
[0037] Figure 12 This is a schematic diagram of the overall structure of Embodiment 2;
[0038] Figure 13 This is a schematic diagram of the cryotube structure in Example 2;
[0039] Figure 14 This is a schematic diagram of the pipe body component structure in Embodiment 2;
[0040] Figure 15 This is a schematic diagram of the cover component structure in Embodiment 2.
[0041] Reference numerals: 1, freezing tube; 11, tube body part; 111, freezing groove; 112, upper bottom surface; 1121, first round corner; 113, lower bottom surface; 1131, second round corner; 114, side waist surface; 12, cover body part; 121, connecting part; 122, top end part; 1221, connecting groove; 123, sealing part; 13, connecting hole; 131, first hole part; 132, second hole part; 2, connecting rope; 101, first distribution; 102, second distribution; 103, third distribution; 10, freezing plate; 20, heat preservation refrigerator; 30, frozen object. DETAILED DESCRIPTION
[0042] The following will be described in detail with reference to the accompanying drawings. Figures 5-12 The present application is further described in detail.
[0043] The present application discloses a freezing plate with customizable size.
[0044] Embodiment one.
[0045] Referring to Figure 5 A freezing plate with customizable size includes a plurality of freezing tubes 1 and a plurality of connecting ropes 2.
[0046] Referring to Figure 6 , Figure 7 and Figure 8 The freezing tube 1 includes a tube body part 11, a freezing groove 111 is provided through the middle position of the tube body part 11, the freezing groove 111 is used to contain refrigerant, the refrigerant includes water and various refrigerant liquids, the refrigerant contained in the freezing groove 111 in the present application is selected as water, the cross-sectional shape of the tube body part 11 includes triangle, square, rectangle, prismatic, regular polygon and isosceles trapezoid, the cross-sectional shape of the tube body part 11 in the present application is selected as isosceles trapezoid.
[0047] Referring to Figure 6 , Figure 7 and Figure 8 The tube body part 11 includes an upper bottom surface 112, a lower bottom surface 113 and two side waist surfaces 114, the upper bottom surface 112 is the surface of the upper bottom edge where the tube body part 11 is located, the lower bottom surface 113 is the surface of the lower bottom edge where the tube body part 11 is located, and the side waist surface 114 is the surface of the isosceles edge where the tube body part 11 is located.
[0048] Referring to Figure 6 , Figure 7 and Figure 8The first round corner 1121 is arranged between the upper bottom surface 112 and the side waist surface 114, and the second round corner 1131 is arranged between the lower bottom surface 113 and the side waist surface 114, and the radius size of the first round corner 1121 and the second round corner 1131 is 4mm to 10mm, and in the embodiment of the application, the radius size of the first round corner 1121 and the second round corner 1131 is 4mm, so that the shape structure of the pipe body part 11 is more stable, so that the service life of the pipe body part 11 is better, and deformation is not easy to occur.
[0049] With reference to Figure 6 , Figure 7 and Figure 8 , the material of the pipe body part 11 includes plastic and metal, and in the embodiment of the application, the material of the pipe body part 11 is selected to be aluminum, so that the heat conduction effect of the pipe wall of the pipe body part 11 is better, so that the refrigerant in the freezing tank 111 is more easily condensed to a suitable refrigeration temperature, and the heat in the heat preservation refrigerator is more easily transmitted to the refrigerant through the pipe wall of the pipe body part 11, so as to be quickly absorbed by the refrigerant, so that the refrigeration effect in the heat preservation refrigerator is better.
[0050] With reference to Figure 9 and Figure 10 , the freezing pipe 1 further comprises two cover body parts 12, and in the embodiment of the application, the cover body part 12 is selected to be a soft rubber with elasticity, and the two cover body parts 12 are respectively connected to the two ends of the pipe body part 11 and respectively seal the two end slots of the freezing tank 111, and the cover body part 12 comprises a connecting part 121, a top end part 122 and a sealing part 123, the top end part 122 is located at one end of the connecting part 121, and the sealing part 123 is located at the other end of the connecting part 121, so that from far away from the pipe body part 11 to close to the pipe body part 11, the top end part 122, the connecting part 121 and the sealing part 123 are distributed in turn, the cross-sectional shape of the top end part 122, the connecting part 121 and the sealing part 123 is isosceles trapezoidal, and the cross-sectional shape of the top end part 122, the connecting part 121 and the sealing part 123 is similar to the cross-sectional shape of the pipe body part 11, the side length size of the side close to the pipe body part 11 of the top end part 122 is the same as the cross-sectional side length size of the pipe body part 11, and the side length size of the sealing part 123 is the same as the groove size of the freezing tank 111, so that when the cover body part 12 is connected to the pipe body part 11, the top end part 122 abuts against the pipe body part 11, the connecting part 121 and the sealing part 123 are both arranged in the freezing tank 111, and the side surface of the sealing part 123 abuts against and cooperates with the groove of the freezing tank 111 and seals the groove of the freezing tank 111.
[0051] With reference to Figure 9 and Figure 10, so that when the cover member 12 seals the freezing tank 111, the top end 122 abuts against the tube member 11 and the sealing portion 123 abuts against the tank body of the freezing tank 111, thereby completing two different seals of the freezing tank 111, and making the sealing effect of the cover member 12 on the freezing tank 111 better.
[0052] Refer to Figure 9 and Figure 11 , through holes 13 are provided at both ends of the freezing tube 1 in a penetrating manner, and the two through holes 13 are respectively located at the top ends 122 of the two cover members 12. Connecting grooves 1221 are provided at both ends of the top end 122, and the two connecting grooves 1221 communicate with the through holes 13. When the freezing tubes 1 are connected to form a freezing plate, the connecting rope 2 sequentially passes through the through holes 13 at the same end. After the connecting rope 2 connects the freezing tubes 1, knots are tied at both ends of the connecting rope 2 respectively, so that the freezing tubes 1 are more stably connected to form a freezing plate. The two knots on both sides of the freezing plate are respectively passed through the two closest connecting grooves 1221, so as to place and accommodate the knots through the connecting grooves 1221.
[0053] In the embodiment of the present application, the connecting rope 2 is flexible, so that the freezing plate formed by connecting the freezing tubes 1 to each other is in a flat plate shape, or in a "field" shape, or in a regular polygon shape, so that the freezing plate composed of multiple freezing tubes 1 and multiple connecting ropes 2 has a variety of different shapes, and makes the freezing plate more conform to the shape of the object to be heat-insulated and refrigerated.
[0054] Refer to Figure 12 , in addition, when the shape of the freezing plate formed by the freezing tubes 1 and the connecting ropes 2 is a flat plate shape, by adjusting the freezing plate formed by connecting the freezing tubes 1 to each other, the lower bottom surface 113 of one freezing tube 1 and the upper bottom surface 112 of an adjacent another freezing tube 1 are arranged on the same side in the same plane. This distribution type of the freezing tubes 1 is the first distribution 101, or the upper bottom surfaces 112 of adjacent freezing tubes 1 or the lower bottom surfaces 113 of adjacent two freezing tubes 1 are arranged on the same side in the same plane. This distribution type of the freezing tubes 1 is the second distribution 102, or both of the above two distribution types exist for adjacent two freezing tubes 1 in the same plane. This distribution type of the freezing tubes 1 is the third distribution 103.
[0055] Refer to Figure 12Therefore, the freezing plate composed of the same number of freezing tubes 1 can realize fine adjustment of the space size of the freezing plate by adjusting the number of the upper bottom surface 112 and the lower bottom surface 113 in the same plane, the space size occupied by the freezing plate is the smallest when the upper bottom surface 112 and the lower bottom surface 113 of each adjacent two freezing tubes 1 composing the freezing plate are staggered connected, the space size occupied by the freezing plate is the largest when the upper bottom surface 112 or the lower bottom surface 113 in the same plane of each freezing tube 1 composing the freezing plate is the upper bottom surface 112 or the lower bottom surface 113, and the space size occupied by the freezing plate is between the space sizes occupied by the above two arrangement modes when the upper bottom surface 112 and the lower bottom surface 113 of each freezing tube 1 composing the freezing plate are misaligned connected, so that the space size occupied by the freezing plate is more suitable for different space sizes of the insulation refrigerator.
[0056] Finally, the length size of the freezing tube 1 is customized, so that the freezing plate composed of the freezing tube 1 is more easily reasonably and fully filled in the space of the insulation refrigerator which needs to be refrigerated, so that the refrigeration range in the insulation refrigerator is more extensive and the refrigeration is more uniform.
[0057] The freezing tube 1 is composed of a tube body part 11 and two cover body parts 12, so that when the length of the freezing tube 1 is customized, only the length of the tube body part 11 needs to be adjusted, that is, the length of the freezing tube 1 is customized, so that the length customization of the freezing tube 1 is more simple and convenient, and the additional production cost of the customized freezing tube 1 is lower.
[0058] The implementation principle of the first embodiment is that the freezing plate is composed of one or more freezing tubes 1 connected to each other, so that by adjusting the number of the freezing tubes 1 composing the freezing plate, the length size of the freezing plate is always close to the length size of the insulation refrigerator, so that the position of the freezing plate connected to the insulation refrigerator is not easy to produce more gaps that are not easy to be utilized, which improves the problem that the shape of the plastic ice bag is relatively irregular after the plastic ice bag filled with refrigerant is frozen, and then the plastic ice bag is placed in the insulation refrigerator, which is easy to produce more gaps that are not easy to be utilized, and then the space utilization rate in the insulation refrigerator is low.
[0059] The second embodiment.
[0060] The main difference between the second embodiment and the first embodiment is the position of the connecting hole 13.
[0061] The connecting hole 13 is provided through both ends of the freezing tube 1, and includes a first hole part 131 and two second hole parts 132. The first hole part 131 is located in the sealing part 123, and the two second hole parts 132 are respectively located in the two side waist parts of the tube part 11. When the sealing part 123 is provided through the tube part 11, the first hole part 131 is communicated with the second hole part 132. When the freezing tubes 1 are connected to each other to form a freezing plate, the connecting rope 2 is provided through the connecting holes 13 in sequence. When the connecting rope 2 is connected to the freezing tubes 1, the ends of the connecting rope 2 are knotted to make the freezing tubes 1 more stably connected to each other to form the freezing plate. Thus, the first hole part 131 is located in the sealing part 123, and the second hole part 132 is located in the tube part 11. When the connecting rope 2 connects the freezing tubes 1 to form the freezing plate, the cover part 12 and the tube part 11 are simultaneously provided through by the same connecting rope 2, thereby further increasing the stability of the connection between the cover part 12 and the tube part 11.
[0062] The above are preferred embodiments of the present application, and do not limit the protection scope of the present application. Any equivalent changes made on the basis of the structure, shape and principle of the present application should be covered within the protection scope of the present application.
Claims
1. A customizable size freezing plate, characterized by: The application relates to a freezing tube (1) which comprises one or more freezing tubes (1) connected to each other to form a freezing plate, wherein each freezing tube (1) comprises a tube body part (11) provided with a freezing groove (111) and two cover body parts (12) which are respectively detachably connected to the two ends of the tube body part (11) and seal the two end openings of the freezing groove (111).
2. A customizable size freeze plate according to claim 1, wherein: The freezing tube (1) is provided with a connecting hole (13), and when the freezing tubes (1) are connected to each other to form the freezing plate, the connecting rope (2) is sequentially arranged in the connecting holes (13) of the adjacent freezing tubes (1) so that the freezing tubes (1) are connected to form the freezing plate.
3. A customizable size freeze plate according to claim 1, wherein: The cross section shape of the tube body part (11) comprises a triangle, a square, a rectangle, a prism, a regular polygon and an isosceles trapezoid.
4. A customizable size freeze plate according to claim 3, wherein: The cross section shape of the tube body part (11) is selected as an isosceles trapezoid, and the tube body part (11) comprises opposite upper and lower bottom surfaces (112) and (113) and a side waist surface (114) connected between the upper and lower bottom surfaces (112) and (113).
5. A customizable size freeze plate according to claim 4, wherein: The lower bottom surface (113) of one freezing tube and the upper bottom surface (112) of the adjacent freezing tube (1) are arranged on the same side. The upper bottom surface (112) of one freezing tube (1) and the upper bottom surface (112) of the adjacent freezing tube (1) are arranged on the same side.
6. A customizable size freeze plate according to claim 5, wherein: The first round corner (1121) is arranged between the upper bottom surface (112) and the side waist surface (114), and the second round corner (1131) is arranged between the lower bottom surface (113) and the side waist surface (114).
7. A customizable size freeze plate according to claim 1, wherein: The cover body part (12) comprises a connecting part (121), a top end part (122) and a sealing part (123), the top end part (122) is located at one end of the connecting part (121), the sealing part (123) is located at the other end of the connecting part (121), when the cover body part (12) is connected to the tube body part (11), the top end part (122) abuts against the tube body part (11), the connecting part (121) and the sealing part (123) are arranged in the freezing groove (111), and the side surface of the sealing part (123) abuts against and seals the groove body of the freezing groove (111).
8. A customizable size freeze plate according to claim 1, wherein: The material of the tube body part (11) comprises plastic and metal.
9. A customizable size freeze plate according to claim 1, wherein: The material of the cover body part (12) comprises soft rubber with elasticity.