Ice water making machine

By controlling the actuators of the inner chamber, receiving component, and spiral component, the ice cubes are separated and dispensing, solving the problems of ice cubes sticking together and space utilization, and improving the reliability of the ice maker and the convenience of home use.

CN224034072UActive Publication Date: 2026-03-24广东卡沃罗小家电有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The ice cubes in existing ice makers tend to stick together during the melting process, making it difficult to control the amount of ice dispensed automatically and taking up a lot of space, which is not conducive to home use.

Method used

The design employs an inner chamber, a receiving component, and a spiral component. The first driver controls the receiving component to flip and drop the ice into the inner chamber, while the second driver controls the spiral component to rotate and move the ice to the ice outlet, thus achieving the separation and dispensing of the ice.

Benefits of technology

It effectively solves the problem of ice cubes sticking together during the melting process, and achieves reliable control of ice cubes and optimization of space utilization.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224034072U_ABST
    Figure CN224034072U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of water making / ice making, and discloses an ice water making machine convenient to control and good in reliability, the ice water making machine comprises an inner box body (110), a bearing assembly (132) and a spiral assembly (141), a rotating shaft of a second driver is connected with one end of the bearing assembly (132); the first driver (131) controls the receiving assembly (132) to turn over along one side of the spiral assembly (141), so that ice blocks on the surface of the receiving assembly (132) fall into the inner box body (110); the second driver (140) controls the spiral assembly (141) to rotate in the axial direction of the inner box body (110) so as to transfer part of ice blocks in the inner box body (110) to the ice outlet (173).
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to water ice making technical field, more specifically, relate to a kind of ice water machine. BACKGROUND

[0002] Water dispenser is more common in the home or office water maker, it can not only supply purified water, cold water, hot water and ice. At present, for part of the ice maker with ice making function, the space volume occupied by component is larger, so that the overall volume of ice maker is large, not conducive to family use;

[0003] On the other hand, after producing ice, ice is mixed with water during melting process, which causes ice to stick easily, so that the amount of automatic ice output / taking ice is not easy to control. UTILITY MODEL CONTENT

[0004] The technical problem to be solved by the utility model is that, in view of the above-mentioned defect that ice is mixed with water during melting process, which causes ice to stick easily, so that the amount of automatic ice output / taking ice is not easy to control in the prior art, a ice water machine is provided, which is easy to operate and has good reliability.

[0005] The technical solution adopted by the utility model to solve its technical problem is: a ice water machine is constructed, which has:

[0006] The inner box body is formed as an open-top structure and is used to store ice;

[0007] The receiving assembly is arranged on one side of the inner box body and is used to carry ice, wherein

[0008] A first driver is arranged on the outer side of the inner box body, and the rotating shaft of the first driver is connected to one end of the receiving assembly;

[0009] A spiral assembly is movably arranged in the inner box body and is arranged adjacent to the receiving assembly, a second driver is arranged on the outer side of the inner box body, and the rotating shaft of the second driver is connected to one end of the receiving assembly;

[0010] The first driver controls the receiving assembly to overturn along one side of the spiral assembly, so that the ice on the surface of the receiving assembly falls into the inner box body;

[0011] The second driver controls the spiral assembly to rotate along the axial direction of the inner box body, so as to move part of the ice in the inner box body to the ice outlet.

[0012] In some embodiments, an opening is formed in the front end face of the inner box body, and the rotating shaft of the second driver is connected to one end of the spiral assembly through the opening.

[0013] In some embodiments, an isolation component is axially arranged in the inner box body, the isolation component separates the inner box body into a first chamber and a second chamber,

[0014] The screw assembly is arranged in the first chamber,

[0015] The receiving assembly is arranged in the second chamber.

[0016] In some embodiments, the bottom side surface of the isolation component is arc-shaped, wherein,

[0017] A protruding piece is arranged at one end of the isolation component,

[0018] The protruding piece is arranged opposite to the first driver.

[0019] In some embodiments, a wrapping assembly for wrapping the inner box body is further included, the wrapping assembly is in a top-open structure.

[0020] In some embodiments, at least one radial groove is arranged on the outer wall of the wrapping assembly.

[0021] In some embodiments, a semicircular opening is arranged at the front end of the wrapping assembly, the opening is in an open structure.

[0022] In some embodiments, an outer box body for carrying the wrapping assembly is further included, the outer box body is in a top-open cuboid,

[0023] At least one convex rib which can be embedded in the groove of the wrapping assembly is arranged on the inner wall of the outer box body,

[0024] The convex rib is arranged opposite to the groove.

[0025] In some embodiments, two limiters are arranged on the rear side of the outer box body, the protruding piece extends between the limiters, when the isolation component is controlled to flip, the protruding piece abuts against the limiters to limit the stroke of the isolation component.

[0026] In some embodiments, the outer box body, the wrapping assembly and the inner box body can be arranged separately.

[0027] The utility model discloses an ice making water machine, including inner box, the receiving subassembly and screw subassembly, wherein the pivot of second driver is connected with the one end of receiving subassembly, the first driver controls the receiving subassembly to overturn along one side of screw subassembly, makes the ice block on the receiving subassembly surface fall into the inner box, and the second driver controls the axial rotation of screw subassembly along the inner box, to remove the partial ice block in the inner box to the ice outlet. BRIEF DESCRIPTION OF DRAWINGS

[0028] The utility model will be further described below combining with the drawings and example, and the drawings are:

[0029] Figure 1 It is the perspective drawing of one embodiment of ice making water machine provided by the utility model,

[0030] Figure 2 It is the perspective drawing of another embodiment of ice making water machine provided by the utility model,

[0031] Figure 3 It is the exploded view of one embodiment of ice making water machine provided by the utility model,

[0032] Figure 4 It is the exploded view of another embodiment of ice making water machine provided by the utility model,

[0033] Figure 5 It is the perspective drawing of one embodiment of outer box provided by the utility model,

[0034] Figure 6 It is the perspective drawing of one embodiment of wrapping subassembly provided by the utility model,

[0035] Figure 7 It is the perspective drawing of one embodiment of inner box provided by the utility model. DETAILED DESCRIPTION

[0036] In order to have more clear understanding to the technical features, the object and the effect of the utility model, now the specific implementation mode of the utility model is explained in detail with the drawings.

[0037] As Figures 1-4 Shown, in the first embodiment of ice making water machine of the utility model, ice making water machine 10 includes at least outer box 110, wrapping subassembly 120, inner box 130, first driver 131, receiving subassembly 132, second driver 140, screw subassembly 141, compressor 160 and water tank 190,

[0038] Among them, likeFigure 5 As shown in the figure, the outer box 110 is a cuboid or a square with a top opening 110a, which is used to place the package assembly 120;

[0039] As shown in the figure, the package assembly 120 is a cuboid or a square with a top opening structure, which is provided with a first placement room 120a and a second placement room 120b, which are used to place the inner box 130. In order to avoid the situation that the outer wall of the inner box 130 appears water condensation beads due to temperature difference when ice is made or ice is contained, the package assembly 120 can be extended outside the inner box 130, and the internal structure of the package assembly 120 is basically the same as the external structure of the inner box 130; Figure 6

[0040] As shown in the figure, the inner box 130 is an "L" shaped structure, and the top is an open structure, which is provided with a first chamber 130a and a second chamber 130b. The first chamber 130a is used to place ice blocks, and the second chamber 130b is used to install the receiving assembly 132; Figure 7

[0041] The first driver 131 and the second driver 140 are used to output rotary power to control the action of the receiving assembly 132 and the spiral assembly 141 respectively;

[0042] The receiving assembly 132 is used to receive the ice blocks made by the evaporator 133. The evaporator 133 can absorb heat from the surrounding environment to change the refrigerant from liquid to gas;

[0043] The compressor 160 can suck in low-temperature and low-pressure refrigerant gas from the suction pipe, and discharge high-temperature and high-pressure refrigerant gas after compression;

[0044] The water tank 190 is an internal hollow structure 190a, which is used to contain pure water to provide water source for the compressor 160 to make ice / refrigeration water;

[0045] Specifically, the inner box 130 is formed as a top opening structure to accommodate ice blocks made by the evaporator 133;

[0046] Further, the receiving assembly 132 is arranged on one side of the inner box 130 to carry ice blocks;

[0047] As shown in the figure, opposite openings 130d are opened in the front end wall and the rear end wall of the inner box 130, and the two ends of the receiving assembly 132 are respectively embedded in the openings 130d of the inner box 130; Figure 7

[0048] Further, the first driver 131 is arranged on the outside of the inner box 130, and the rotating shaft of the first driver 131 is connected with one end of the receiving assembly 132 through the opening 130d in the front end wall to control the action of the receiving assembly 132; ​​​

[0049] Further, the spiral assembly 141 is movably arranged in the inner box 130, and the spiral assembly 141 is arranged adjacent to the receiving assembly 132,

[0050] Wherein, the second driver 140 is arranged outside the inner box 130, and the rotating shaft of the second driver 140 is connected with one end of the receiving assembly 132;

[0051] Specifically, the first driver 131 controls the receiving assembly 132 to overturn along one side of the spiral assembly 141, so that the ice blocks on the surface of the receiving assembly 132 fall into the inner box 130;

[0052] The second driver 140 controls the spiral assembly 141 to rotate along the axial direction of the inner box 130, so as to move the ice blocks in the inner box 130 to the ice outlet 173.

[0053] By using the technical solution, the receiving assembly 132 and the spiral assembly 141 are respectively controlled by the first driver 131 and the second driver 140 to move, so that the ice block separation and ice outlet actions can be effectively performed, and the problem that the ice blocks are easy to adhere to each other in the melting process after the ice blocks are produced, so that the automatic ice outlet / ice taking amount is not easy to control can be effectively solved.

[0054] In some embodiments, as shown in Figure 7 In order to ensure the reliability of the action of the spiral assembly 141, an opening 130f is formed in the front end surface of the inner box 130,

[0055] Specifically, the rotating shaft of the second driver 140 is connected with one end of the spiral assembly 141 through the opening 130f, and the other end of the spiral assembly 141 is movably arranged on the upper side of the inner box 130;

[0056] When the second driver 140 works, the spiral assembly 141 is driven by the second driver 140 to rotate along the axial direction of the inner box 130, so as to move the ice blocks in the inner box 130 to the ice outlet 173.

[0057] In some embodiments, as shown in Figure 7 An isolation part 130c is arranged in the axial direction of the inner box 130, wherein the isolation part 130c extends to the opening side of the inner box 130, so as to divide the inner box 130 into a first chamber 130a and a second chamber 130b,

[0058] The spiral assembly 141 is arranged in the first chamber 130a,

[0059] The receiving assembly 132 is arranged in the second chamber 130b.

[0060] In some embodiments, as shown in Figure 2As shown, in order to ensure the reliability of the movement, the bottom side surface of the isolation component 130c can be arc-shaped,

[0061] Wherein, a protruding piece 132a is arranged at one end of the isolation component 130c, and the protruding piece 132a extends outward along the outer wall of the isolation component 130c,

[0062] The protruding piece 132a is arranged opposite to the first driver 131,

[0063] Wherein, as Figure 7 shown, the protruding piece 132a is embedded in the opening 130d at the rear end of the inner box 130.

[0064] In some embodiments, as Figure 6 shown, in order to avoid water condensation on the outer wall due to temperature difference, a wrapping assembly 120 can be wrapped around the outer periphery of the inner box 130 to prevent temperature loss of the inner box 130 or condensation of water droplets on the outer wall of the inner box 130 due to temperature difference, wherein the wrapping assembly 120 has a top opening structure.

[0065] In some embodiments, as Figure 6 shown, in order to ensure the reliability of the assembly, at least one radial groove 120e can be arranged on the outer wall of the wrapping assembly 120.

[0066] In some embodiments, as Figure 6 shown, in order to ensure the tightness of the assembly with the inner box 130, a semicircular opening 120d can be opened at the front end of the wrapping assembly 120, and the opening 120d has an open structure.

[0067] In some embodiments, as Figure 5 shown, in order to improve the reliability of the assembly of the wrapping assembly 120, an outer box 110 for carrying the wrapping assembly 120 can be arranged, and the outer box 110 has a top opening rectangular structure,

[0068] Wherein, the inner wall of the outer box 110 is provided with at least one convex rib 110b which can be embedded in the groove 120e of the wrapping assembly 120,

[0069] The convex rib 110b is arranged opposite to the groove 120e.

[0070] In some embodiments, as Figure 2 shown, in order to limit the maximum stroke of the overturning of the outer box 110, two limiters 135 can be arranged at the rear side of the outer box 110, and the protruding piece 132a extends between the limiters 135. When the isolation component 130c is controlled to overturn, the protruding piece 132a abuts against the limiters 135 to limit the stroke of the isolation component 130c.

[0071] In some embodiments, asFigure 3 and Figure 4 As shown in the figure, for the convenience of assembling and disassembling, the outer box body 110, the wrapping assembly 120 and the inner box body 130 can be arranged separately.

[0072] The embodiments of the utility model are described above in combination with the drawings, but the utility model is not limited to the specific embodiments described above, and the specific embodiments described above are only illustrative but not restrictive, and the ordinary skilled in the art can make many forms under the inspiration of the utility model without departing from the purpose of the utility model and the scope protected by the claims, and these all belong to the protection of the utility model.

Claims

1. An ice-making water maker, characterized in that, have: The inner box is designed with an open top for storing ice. A receiving component, located on one side of the inner casing, is used to hold ice blocks, wherein... A first driver is provided on the outside of the inner housing, and the shaft of the first driver is connected to one end of the receiving component; A spiral assembly is movably disposed within the inner housing and adjacent to the receiving assembly. A second driver is disposed on the outside of the inner housing, and the shaft of the second driver is connected to one end of the receiving assembly. The first actuator controls the receiving component to flip along one side of the spiral component, causing the ice on the surface of the receiving component to fall into the inner box. The second actuator controls the spiral assembly to rotate along the axial direction of the inner chamber to transfer a portion of the ice block inside the inner chamber to the ice outlet.

2. The ice-making water maker according to claim 1, characterized in that, An opening is made on the front end face of the inner housing, and the shaft of the second driver is connected to one end of the spiral assembly through the opening.

3. The ice-making water machine according to claim 2, characterized in that, An isolation component is axially disposed within the inner casing, dividing the inner casing into a first chamber and a second chamber. The spiral assembly is disposed within the first chamber. The receiving component is disposed within the second cavity.

4. The ice-making water machine according to claim 3, characterized in that, The bottom surface of the isolation component is arc-shaped, wherein, A protrusion is provided at one end of the isolation component. The protrusion is positioned opposite to the first driver.

5. The ice-making water machine according to claim 4, characterized in that, It also includes a wrapping assembly for enclosing the inner box, the wrapping assembly having a top opening structure.

6. The ice-making water machine according to claim 5, characterized in that, At least one radial groove is provided on the outer wall of the package component.

7. The ice-making water machine according to claim 6, characterized in that, A semi-circular opening is made at the front end of the packaging component, and the opening has an open structure.

8. The ice-making water machine according to claim 7, characterized in that, It also includes an outer casing for carrying the package assembly, the outer casing being a cuboid with an open top. The inner wall of the outer casing is provided with at least one protruding rib that can be embedded into the groove of the packaging assembly. The ribs are provided corresponding to the grooves.

9. The ice-making water machine according to claim 8, characterized in that, Two limiters are provided on the rear side of the outer casing, and the protrusion extends between the limiters. When the isolation component is controlled to flip, the protrusion abuts against the limiters to limit the travel of the isolation component.

10. The ice-making water machine according to claim 9, characterized in that, The outer casing, the packaging assembly, and the inner casing can be separated.