Ice maker capable of making ice in variable shape
By introducing innovative designs of snap-fit and ice-removing components into the ice maker, the problem of inconvenient ice mold replacement in existing ice makers has been solved, enabling quick fixing and disassembly of the ice mold and improving replacement efficiency.
Patent Information
- Application Number
- CN202520187700.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-02-06
AI Technical Summary
The existing ice maker has a complicated and inconvenient process for changing ice molds, especially the collection, installation and disassembly of screws, which is complicated and affects the efficiency of the replacement.
The design employs snap-fit components and ice-removing components, including a first slider, a second slider, a first slide groove, a second slide groove, a locking block, and a lead screw, etc., to achieve quick fixing and disassembly of the ice mold through sliding connection and flipping mechanism.
It simplifies the installation and disassembly process of ice molds, improves replacement efficiency, reduces operating steps, and enhances the convenience of replacement.
Smart Images

Figure CN223755627U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to ice maker technical field, concretely relates to an ice maker of ice shape variable. BACKGROUND
[0002] Ice maker is widely used in catering, hotel, nightclub, hospital, school, laboratory, research institute and so on and supermarket food preservation, fishing cold storage, medical application, chemical industry, food processing and so on, application range is wide, and ice maker is a refrigeration mechanical equipment that generates ice by water cooling after evaporator by refrigeration system refrigerant, adopts refrigeration system, takes water as carrier, and generates ice after a certain equipment under the electrified state, and according to the principle and production mode of evaporator, the shape of the ice block is different;People generally divide ice maker into granular ice machine, flake ice machine, plate ice machine, pipe ice machine, shell ice machine and so on according to ice shape.
[0003] The prior art discloses a granular ice maker with variable shape; the ice mold can be conveniently replaced. UTILITY MODEL CONTENTS
[0004] The utility model discloses a kind of ice maker of ice shape variable, to solve the problem raised in above background.
[0005] To solve the above technical problems, the technical scheme adopted by the utility model is:
[0006] The utility model provides a kind of ice maker of ice shape variable, including ice maker body, several first guide rail and second guide rail are fixedly connected along vertical direction in ice maker body, several buckle parts and several ice mould are respectively provided in ice maker body, ice mould is fixedly connected with ice maker body by buckle part, one side of ice maker body is fixedly connected with shell, collecting box is fixedly connected in shell, ice removal component is provided in shell, motor is fixedly connected above shell, controller is installed in the side of ice maker body away from shell.
[0007] When different shapes of ice block are needed to be manufactured, different ice moulds can be replaced to achieve the purpose, when ice mould needs to be installed, open the box door rotatingly connected on the ice maker (the ice maker is mature technology in prior art, so it is not described in detail), then fix the ice mould in the ice maker through the first guide rail, the second guide rail and the buckle part, close the box door, at this time, the ice maker starts to work to freeze the water in the mould into ice block, then when the ice mould needs to be taken out, open the box door, take out the ice mould by opening the buckle part, then open the door rotatingly connected on the shell to take out the ice block in the mould through the ice removal component, the ice block falls into the collecting box, the ice mould can be quickly fixed and disassembled by setting the buckle part, so that the staff can replace it conveniently.
[0008] The further improvement of the technical scheme of the utility model lies in that: the buckle part comprises a first sliding block and a second sliding block, the first sliding block is located on one side of the ice mould and fixedly connected with the ice mould, the first sliding block is partially provided in a columnar shape, the second sliding block is located on the side of the ice mould away from the first sliding block and fixedly connected with the ice mould, a first sliding groove is formed on the first guide rail, a second sliding groove is formed on the second guide rail, the first sliding block is slidingly connected with the first sliding groove, the second sliding block is slidingly connected with the second sliding groove, a C-shaped clamping block is slidingly connected on the second guide rail, a matching groove is formed on the clamping block, a matching block is fixedly connected on the second sliding block, and the matching block is used in cooperation with the matching groove.
[0009] In the above technical scheme, when the ice mould needs to be installed in the ice maker body, the first sliding block and the second sliding block fixedly connected with the ice mould are respectively aligned with the first sliding groove and the second sliding groove formed on the first guide rail and the second guide rail, and then the first sliding block and the second sliding block are slid into the first sliding groove and the second sliding groove, so that the first sliding block and the second sliding block are slidingly connected with the first guide rail and the second guide rail through the first sliding groove and the second sliding groove, then the clamping block is lifted up, at this time, the second sliding groove in the second guide rail is in a state of being unblocked, the ice mould is pushed in, then the clamping block is released, at this time, the clamping block is clamped into the second sliding block, then the ice mould is pulled in the opposite direction, at this time, the matching block in the second sliding block is slid into the matching groove to fix the ice mould, when disassembling, the reverse operation can be performed, the first sliding block, the second sliding block, the first sliding groove, the second sliding groove and the connection relationship between the matching block and the matching groove can quickly and conveniently disassemble and assemble the ice mould, so that the staff can replace it conveniently.
[0010] The further improvement of the technical scheme of the utility model lies in that: the ice unloading part comprises a lead screw, the lead screw is rotationally connected with the shell, one end of the lead screw is fixedly connected with the output end of the motor, a rotating groove is formed on the shell, the rotating groove is arranged in an arc shape, an L-shaped placing block is arranged on the side of the shell away from the rotating groove, a moving block is threadedly connected with the lead screw and slidably connected with the shell, a plurality of supporting columns are arranged on the moving block, and the supporting columns are rotationally connected with the moving block through torsional springs.
[0011] By adopting the above technical scheme, when the ice block needs to be unloaded, the first sliding block fixedly connected with one side of the ice mold is inserted into the rotating groove formed on the shell, at this time, the ice mold is in a sliding and rotating state with the rotating groove, and the other end of the ice mold is placed on the L-shaped placing block fixedly connected with the shell, then the motor is started through the control panel, the motor drives the lead screw fixedly connected with the output end to rotate, the rotation of the lead screw drives the moving block threadedly connected therewith to rotate, because the moving block is slidably connected with the shell, the moving block moves along the direction of the axis of the lead screw, when the moving block moves downward, the supporting columns are pressed to move the second sliding block fixedly connected with the other side of the ice mold, when passing through the second sliding block, the supporting columns are reset under the action of the torsional spring to contact one side of the second sliding block, at this time, the motor drives the moving block to move reversely, the moving block drives the second sliding block fixedly connected with one side of the ice mold to move through the supporting columns, so that the ice mold is turned over, when the moving block moves to a certain distance, the supporting columns are separated from the ice mold, the ice mold is reset to vibrate to separate the ice block in the ice mold from the ice mold.
[0012] The further improvement of the technical scheme of the utility model lies in that: a groove is formed in the second sliding block, a baffle is slidably connected in the groove, one side of the baffle is fixedly connected with a pressure spring, and the other end of the pressure spring is fixedly connected with the main body of the ice maker.
[0013] By adopting the above technical scheme, when the second sliding block is inserted into the second guide rail through the second sliding groove, the second sliding block presses the baffle to press the pressure spring, so that the pressure spring is in a compressed state, then when the clamping block moves downward, the ice mold is released, at this time, the ice mold is pushed under the action of the pressure spring and the baffle, so that the matching block enters the matching groove formed in the clamping block, the pressure spring and the baffle are arranged to reduce the action of pulling back, thereby simplifying the steps of installing the ice mold, and the ice mold is installed more quickly and conveniently.
[0014] The further improvement of the technical scheme of the utility model lies in that: a first inclined surface is formed in the clamping block, and a second inclined surface is formed in one end of the second sliding block.
[0015] The technical scheme is characterized in that the first inclined surface and the second inclined surface are arranged in cooperation to push the second sliding block all the time when the second sliding block is pushed into the second sliding groove, the second inclined surface pushes the clamping block in contact with the first inclined surface and lifts the clamping block through the first inclined surface, thereby simplifying the installation steps of the ice mold and making the installation of the ice mold more rapid and convenient.
[0016] The technical scheme is further improved in that one end of the first sliding block is provided with a first rounded corner, and one end of the first sliding groove arranged on the first guide rail (2) is provided with a second rounded corner.
[0017] The technical scheme is characterized in that the first sliding block and the second sliding block are first inserted into the first sliding groove and the second sliding groove, and the first rounded corner arranged at one end of the first sliding block and the second rounded corner arranged at one end of the first sliding groove arranged on the first guide rail can be used to more rapidly align the first sliding block with the first sliding groove, so that the first sliding block can be rapidly inserted into the first sliding groove, thereby improving the installation efficiency.
[0018] The technical scheme is further improved in that a plurality of weight-reducing grooves are arranged on the first sliding block.
[0019] The technical scheme is characterized in that the plurality of weight-reducing grooves arranged on the first sliding block can reduce the weight of the ice mold, so that the ice mold is more easily moved and operated.
[0020] The technical scheme is characterized in that the technical progress achieved by the ice maker is that:
[0021] 1. The ice maker provided by the present application can be used to manufacture ice blocks of different shapes by replacing different ice molds when different shapes of ice blocks are required, and when the ice mold needs to be installed, the box door rotatably connected to the ice maker is opened, the ice mold is then fixed in the ice maker through the first guide rail, the second guide rail and the buckle part, the box door is closed, the ice maker starts to work to freeze the water in the mold into ice blocks, the box door is then opened when the ice mold needs to be taken out, the ice mold is taken out by opening the buckle part, the door rotatably connected to the shell is then opened, the ice blocks in the mold are taken out through the ice removal part, and the ice blocks fall into the collecting box, the buckle part can be used to rapidly fix and dismount the ice mold, thereby facilitating the replacement of the ice mold by the staff.
[0022] 2. The utility model provides a ice shape variable ice maker, when need to install ice mould in the inside of ice maker body, first sliding block and second sliding block fixedly connected with ice mould are respectively aligned with first sliding groove and second sliding groove of first guide rail and second guide rail, then slide into first sliding block and second sliding block, make first sliding block and second sliding block respectively through first sliding groove and second sliding groove with the sliding connection of first guide rail and second guide rail, then the clamping block is up, second sliding groove in second guide rail is in the state of dredging, then push the ice mould, then loosen the clamping block, the clamping block will be clamped into second sliding block at this time, then pull the ice mould in the opposite direction, the matching block in second sliding block will slide into the matching groove at this time and fix the ice mould, when disassembling, reverse operation can be carried out, through the connecting relationship between first sliding block, second sliding block, first sliding groove, second sliding groove and matching block and matching groove, the ice mould can be disassembled quickly and conveniently, thereby facilitating personnel to replace it.
[0023] 3. The utility model provides a ice shape variable ice maker, when need to unload ice block, first sliding block fixedly connected with one side of ice mould is inserted into the rotating groove of casing, at this time, ice mould and rotating groove are in the state of sliding and rotating, and the other end of ice mould is placed on the L-shaped placing block fixedly connected with casing, then start motor through control panel, and motor can drive screw rod fixedly connected with output end to rotate, and screw rod rotation can drive moving block connected with its screw thread to rotate, because moving block is connected with casing in sliding mode, so moving block can move along the direction of screw rod axis, when moving block moves downward, at this time, support column can be extruded to pass through second sliding block fixedly connected with one side of ice mould, when passing through second sliding block, at this time, support column can reset under the action of torsional spring to contact one side of second sliding block, at this time, motor drives moving block to move reversely, and moving block can drive second sliding block fixedly connected with one side of ice mould to move through support column, so that ice mould is turned over, when moving block moves to a certain distance, at this time, support column is separated from ice mould, and ice mould can reset to turn over and produce vibration to cause ice block in the inside to separate from ice mould. ACCURACY OF DRAWINGS
[0024] The utility model will be further described below in combination with the drawings.
[0025] Figure 1 It is the first structure schematic drawing of the utility model;
[0026] Figure 2 It is the first cross section schematic drawing of the utility model;
[0027] Figure 3 It is the second structure schematic drawing of the utility model;
[0028] Figure 4 It is the third structure schematic drawing of the utility model;
[0029] Figure 5 It is ice mold structure schematic view of the utility model;
[0030] Figure 6 It is ice mold structure schematic view of the utility model.
[0031] In the figure: 1, ice maker body; 2, first guide rail; 3, second guide rail; 4, ice mold; 5, shell; 6, collection box; 7, motor; 8, controller; 9, first sliding block; 10, second sliding block; 11, first sliding slot; 12, second sliding slot; 13, clamping block; 14, matching groove; 15, matching block; 16, screw rod; 17, rotating groove; 18, placing block; 19, moving block; 20, support column; 21, recess; 22, baffle; 23, pressure spring; 24, first inclined plane; 25, second inclined plane; 26, first round corner; 27, second round corner; 28, lightening groove. DETAILED DESCRIPTION
[0032] The utility model will be further explained in detail in connection with examples:
[0033] Example 1
[0034] As Figure 1 And Figure 3 The utility model provides a kind of ice making shape variable ice maker, including ice maker body 1, the first guide rail 2 and second guide rail 3 are fixedly connected in ice maker body 1 along vertical direction, a plurality of buckle components and a plurality of ice molds 4 are respectively provided in ice maker body 1, ice mold 4 is fixedly connected with ice maker body 1 by buckle component, one side of ice maker body 1 is fixedly connected with shell 5, collection box 6 is fixedly connected in shell 5, ice removing component is provided in shell 5, motor 7 is fixedly connected on the top of shell 5, controller 8 is installed on the side of ice maker body 1 away from shell 5.
[0035] In the embodiment, when different shapes of ice block need to be manufactured, different ice molds 4 can be replaced to realize, when ice mold 4 needs to be installed, the door of rotating connection on ice maker (wherein, ice maker is the mature technology in prior art, so it is not described in detail) is opened, then ice mold 4 is fixed in ice maker by first guide rail 2, second guide rail 3 and buckle component, the door is closed, at this time, ice maker starts to work and freezes water in mould into ice block, then when ice mold 4 needs to be taken out, the door is opened, ice mold 4 is taken out by opening buckle component, then the door of rotating connection on shell 5 is opened, ice block in module is taken out by ice removing component, ice block thus will fall into collection box 6, by being provided with buckle component, ice mold 4 can be quickly fixed and disassembled, so as to facilitate staff to replace it.
[0036] Example 2
[0037] As Figure 2 , Figure 3 and Figure 5 shown, on the basis of example 1, the utility model provides a technical scheme: preferably, buckle part includes first sliding block 9 and second sliding block 10, first sliding block 9 is located at one side of ice mould 4 and is fixedly connected with ice mould 4, first sliding block 9 is partially arranged in columnar shape, second sliding block 10 is located at one side of ice mould 4 away from first sliding block 9 and is fixedly connected with ice mould 4, first guide rail 2 is provided with first sliding slot 11, second guide rail 3 is provided with second sliding slot 12, first sliding block 9 is slidably connected with first sliding slot 11, second sliding block 10 is slidably connected with second sliding slot 12, C-shaped clamping block 13 is slidably connected on second guide rail 3, cooperating slot 14 is provided in clamping block 13, cooperating block 15 is fixedly connected on second sliding block 10, cooperating block 15 is used in cooperation with cooperating slot 14.
[0038] In the embodiment, when ice mould 4 needs to be installed in the inside of ice maker body 1, first sliding block 9 and second sliding block 10 fixedly connected with ice mould 4 are respectively aligned with first sliding slot 11 and second sliding slot 12 provided on first guide rail 2 and second guide rail 3, then first sliding block 9 and second sliding block 10 are slid, so that first sliding block 9 and second sliding block 10 are slidably connected with first guide rail 2 and second guide rail 3 through first sliding slot 11 and second sliding slot 12 respectively, then clamping block 13 is lifted up, at this time, second sliding slot 12 in second guide rail 3 is in unblocked state, ice mould 4 is pushed in, then clamping block 13 is released, at this time, clamping block 13 is clamped into second sliding block 10, then ice mould 4 is pulled in reverse direction, at this time, cooperating block 15 in second sliding block 10 is slid into cooperating slot 14, so as to fix ice mould 4, when disassembling, reverse operation can be performed, through the connecting relationship between first sliding block 9, second sliding block 10, first sliding slot 11, second sliding slot 12 and cooperating block 15 and cooperating slot 14, ice mould 4 can be quickly and conveniently disassembled and assembled, so as to facilitate personnel to replace it.
[0039] Example 3
[0040] As Figure 3 and Figure 4 shown, on the basis of example 2, the utility model provides a technical scheme: preferably, ice removing part includes screw rod 16, screw rod 16 is rotatably connected with shell 5, one end of screw rod 16 is fixedly connected with the output end of motor 7, rotating groove 17 is provided on shell 5, rotating groove 17 is arranged in arc shape, L-shaped placing block 18 is arranged on the side of shell 5 away from rotating groove 17, moving block 19 is threadedly connected on screw rod 16 and slidably connected with shell 5, a plurality of supporting columns 20 are arranged on moving block 19, a plurality of supporting columns 20 are rotatably connected with moving block 19 through torsional spring.
[0041] In the embodiment, when the ice block needs to be unloaded, the first sliding block 9 fixedly connected to one side of the ice mold 4 is inserted into the rotating groove 17 formed on the shell 5, at this time, the ice mold 4 and the rotating groove 17 are in a sliding and rotating state, and the other end of the ice mold 4 is placed on the L-shaped placing block 18 fixedly connected to the shell 5, then the motor 7 is started through the control panel, the motor 7 drives the lead screw 16 fixedly connected to the output end of the motor 7 to rotate, the rotation of the lead screw 16 drives the moving block 19 threadedly connected to the lead screw 16 to rotate, because the moving block 19 is slidingly connected to the shell 5, the moving block 19 moves along the axis direction of the lead screw 16, when the moving block 19 moves downward, at this time, the support column 20 is pressed to drive the second sliding block 10 fixedly connected to one side of the ice mold 4 to pass through, at this time, the support column 20 is reset under the action of the torsional spring to contact one side of the second sliding block 10, at this time, the motor 7 drives the moving block 19 to move reversely, the moving block 19 drives the second sliding block 10 fixedly connected to one side of the ice mold 4 to move through the support column 20, so that the ice mold 4 is turned over, when the moving block 19 moves to a certain distance, at this time, the support column 20 is separated from the ice mold 4, the ice mold 4 is reset to vibrate to separate the ice block in the ice mold 4 from the ice mold 4.
[0042] Embodiment 4
[0043] As shown in Figure 2 , on the basis of embodiment 3, the utility model provides a technical scheme: preferably, the second sliding block 10 is provided with a groove 21, the groove 21 is slidingly connected with a baffle 22, one side of the baffle 22 is fixedly connected with a pressure spring 23, the other end of the pressure spring 23 is fixedly connected with the ice maker main body.
[0044] In the embodiment, when the second sliding block 10 passes through the second sliding groove 12 and is inserted into the second guide rail 3, at this time, the second sliding block 10 presses the baffle 22 to press the pressure spring 23, so that the pressure spring 23 is in a compressed state, then when the clamping block 13 moves downward, the ice mold 4 is released, at this time, the ice mold 4 is pushed under the action of the pressure spring 23 and the baffle 22, so that the matching block 15 enters the matching groove 14 formed on the clamping block 13, the pressure spring 23 and the baffle 22 can reduce the action of pulling back, so as to simplify the step of installing the ice mold 4, and make the installation of the ice mold 4 more rapid and convenient.
[0045] As shown in Figure 5 and Figure 6 , in the embodiment, preferably, the clamping block 13 is provided with a first inclined surface 24, and one end of the second sliding block 10 is provided with a second inclined surface 25.
[0046] By setting the first slope 24 and the second slope 25 to be used in cooperation, the second slider 10 can be pushed all the time when it is pushed into the second sliding groove 12, and the second slope 25 will push the clamping block 13 in contact with the first slope 24 and lift it through the first slope 24, thereby simplifying the steps of installing the ice mold 4 and making it faster and more convenient to install the ice mold 4.
[0047] As shown in Figure 3 and Figure 5 Preferably, one end of the first slider 9 is provided with a first round corner 26, and one end of the first sliding groove 11 opened on the first guide rail 2 is provided with a second round corner 27.
[0048] Because the first slider 9 and the second slider 10 need to be inserted into the first sliding groove 11 and the second sliding groove 12 first, by setting the first round corner 26 on one end of the first slider 9 and the second round corner 27 on one end of the first sliding groove 11 opened on the first guide rail 2, the first slider 9 can be aligned with the first sliding groove 11 more quickly, so that the first slider 9 can be inserted into the first sliding groove 11 quickly, thereby improving the installation efficiency.
[0049] As shown in Figure 5 Preferably, a plurality of weight reduction grooves 28 are opened on the first slider 9.
[0050] By opening a plurality of weight reduction grooves 28 on the first slider 9, the weight of the ice mold 4 can be reduced, making it easier to move and operate.
[0051] The working principle of the ice maker with variable ice shape will be described in detail below.
[0052] As shown in Figure 1 - Figure 6When it is needed to manufacture ice blocks with different shapes, different ice molds 4 can be replaced. When it is needed to install the ice mold 4, the box door rotatingly connected on the ice maker (the ice maker is a mature technology in the prior art, and thus is not described in detail) is opened, and then the ice mold 4 is fixed in the ice maker through the first guide rail 2, the second guide rail 3 and the buckle part, and the box door is closed. At this time, the ice maker starts to work to freeze the water in the mold into ice blocks. Then, when it is needed to take out the ice mold 4, the box door is opened, and the ice mold 4 is taken out by opening the buckle part. Then, the door rotatingly connected on the shell 5 is opened, and the ice blocks in the mold are taken out through the ice discharging part. The ice blocks thus fall into the collecting box 6. When it is needed to install the ice mold 4 in the ice maker body 1, the first sliding block 9 and the second sliding block 10 fixedly connected with the ice mold 4 are respectively aligned with the first sliding groove 11 and the second sliding groove 12 opened on the first guide rail 2 and the second guide rail 3, and then the first sliding block 9 and the second sliding block 10 are slid into the first sliding groove 11 and the second sliding groove 12, so that the first sliding block 9 and the second sliding block 10 are respectively slidably connected with the first guide rail 2 and the second guide rail 3 through the first sliding groove 11 and the second sliding groove 12. Then, the clamping block 13 is lifted up. At this time, the second sliding groove 12 in the second guide rail 3 is in an unblocked state. The ice mold 4 is pushed in, and then the clamping block 13 is released. At this time, the clamping block 13 is clamped into the second sliding block 10. Then, the ice mold 4 is pulled in the opposite direction. At this time, the matching block 15 in the second sliding block 10 is slid into the matching groove 14, so as to fix the ice mold 4. When disassembling, the operation is reversed. Through the connection relationship between the first sliding block 9, the second sliding block 10, the first sliding groove 11, the second sliding groove 12 and the matching block 15 and the matching groove 14, the ice mold 4 can be quickly and conveniently disassembled and assembled, so as to conveniently replace the ice mold 4. When it is needed to discharge the ice blocks, the first sliding block 9 fixedly connected on one side of the ice mold 4 is inserted into the rotating groove 17 opened on the shell 5. At this time, the ice mold 4 and the rotating groove 17 are in a sliding and rotating state, and the other end of the ice mold 4 is placed on the L-shaped placing block 18 fixedly connected with the shell 5. Then, the motor 7 is started through the control panel. The motor 7 drives the lead screw 16 fixedly connected with the output end of the motor 7 to rotate. The rotation of the lead screw 16 drives the moving block 19 threadedly connected with the lead screw 16 to rotate. Because the moving block 19 is slidably connected with the shell 5, the moving block 19 moves along the axis of the lead screw 16. When the moving block 19 moves downward, the support column 20 is pressed, so as to pass through the second sliding block 10 fixedly connected on one side of the ice mold 4. When passing through the second sliding block 10, the support column 20 is reset under the action of the torsional spring, so as to contact one side of the second sliding block 10. At this time, the motor 7 drives the moving block 19 to move in the opposite direction. The moving block 19 drives the second sliding block 10 fixedly connected on one side of the ice mold 4 to move through the support column 20, so as to make the ice mold 4 overturn. When the moving block 19 moves to a certain distance, the support column 20 is separated from the ice mold 4. The ice mold 4 is overturned and reset, so as to produce vibration to cause the ice blocks in the ice mold 4 to be separated from the ice mold 4.When the second sliding block 10 is inserted into the second guide rail 3 through the second sliding groove 12, the second sliding block 10 will press the baffle 22 at this time, so as to press the pressure spring 23, so that the pressure spring 23 is in a compressed state, then when the clamping block 13 moves downward, the ice mold 4 is released, at this time the ice mold 4 is pushed under the action of the pressure spring 23 and the baffle 22, so that the matching block 15 enters the matching groove 14 opened on the clamping block 13, by setting the pressure spring 23 and the baffle 22, the action of back pulling can be reduced, thereby simplifying the step of installing the ice mold 4, and the ice mold 4 is more quickly and conveniently installed. By setting the first inclined surface 24 and the second inclined surface 25 in cooperation, the second sliding block 10 can be pushed all the time when it is pushed into the second sliding groove 12, the second inclined surface 25 will contact the first inclined surface 24 and lift the clamping block 13 through the first inclined surface 24, thereby simplifying the step of installing the ice mold 4, and the ice mold 4 is more quickly and conveniently installed. Because the first sliding block 9 and the second sliding block 10 need to be inserted into the first sliding groove 11 and the second sliding groove 12 first, at this time, by setting the first round corner 26 on one end of the first sliding block 9 and the second round corner 27 on one end of the first sliding groove 11 opened on the first guide rail 2, the first sliding block 9 and the first sliding groove 11 can be more quickly aligned, thereby the first sliding block 9 can be quickly inserted into the first sliding groove 11, thereby improving the installation efficiency. By setting the plurality of lightening grooves 28 opened on the first sliding block 9, the weight of the ice mold 4 can be reduced, so that it is more easily moved and operated.
[0053] The above has made a detailed description of the utility model in general, but some modifications or improvements can be made on the basis of the utility model, which is obvious to those skilled in the art. Therefore, the modifications or improvements without departing from the spirit of the utility model are within the protection scope of the utility model.
Claims
1. A shape-variable ice maker comprising an ice maker body (1), characterized in that: The ice maker body (1) is fixedly connected with a plurality of first guide rails (2) and second guide rails (3) in the vertical direction, a plurality of buckle parts and ice molds (4) are arranged in the ice maker body (1) respectively, the ice mold (4) is fixedly connected with the ice maker body (1) through the buckle part, a shell (5) is fixedly connected to one side of the ice maker body (1), a collecting box (6) is fixedly connected in the shell (5), an ice discharging part is arranged in the shell (5), a motor (7) is fixedly connected above the shell (5), and a controller (8) is installed on the side, away from the shell (5), of the ice maker body (1).
2. The ice maker of claim 1, wherein: The buckle part comprises a first sliding block (9) and a second sliding block (10), the first sliding block (9) is located on one side of the ice mold (4) and is fixedly connected with the ice mold (4), the first sliding block (9) is partially provided in a columnar shape, the second sliding block (10) is located on the side, away from the first sliding block (9), of the ice mold (4) and is fixedly connected with the ice mold (4), a first sliding groove (11) is formed in the first guide rail (2), a second sliding groove (12) is formed in the second guide rail (3), the first sliding block (9) is slidably connected with the first sliding groove (11), the second sliding block (10) is slidably connected with the second sliding groove (12), a C-shaped clamping block (13) is slidably connected to the second guide rail (3), a matching groove (14) is formed in the clamping block (13), a matching block (15) is fixedly connected to the second sliding block (10), and the matching block (15) is used in cooperation with the matching groove (14).
3. The ice maker of claim 2, wherein: The ice discharging part comprises a lead screw (16), the lead screw (16) is rotatably connected with the shell (5), one end of the lead screw (16) is fixedly connected with the output end of the motor (7), a rotating groove (17) is formed in the shell (5), the rotating groove (17) is arranged in an arc shape, an L-shaped placing block (18) is arranged on the side, away from the rotating groove (17), of the shell (5), a moving block (19) is threadedly connected to the lead screw (16) and slidably connected with the shell (5), a plurality of supporting columns (20) are arranged on the moving block (19), and the supporting columns (20) are rotatably connected with the moving block (19) through torsional springs.
4. The ice maker of claim 3, wherein: A recess (21) is formed in the second sliding block (10), a baffle (22) is slidably connected in the recess (21), a pressure spring (23) is fixedly connected to one side of the baffle (22), and the other end of the pressure spring (23) is fixedly connected with the ice maker body.
5. The ice maker of claim 4, wherein: A first inclined surface (24) is formed in the clamping block (13), and a second inclined surface (25) is formed in one end of the second sliding block (10).
6. The ice maker of claim 5, wherein: A first round corner (26) is arranged at one end of the first sliding block (9), and a second round corner (27) is arranged at one end of the first sliding groove (11) formed in the first guide rail (2).
7. The ice maker of claim 6, wherein: A plurality of lightening grooves (28) are formed in the first sliding block (9).
Citation Information
Patent Citations
Shape-variable particle ice maker
CN221959085U