Ice shaving and juice extracting all-in-one machine

CN224815193UActive Publication Date: 2026-09-29GUANGDONG ENAITER ELECTRICAL APPLIANCES CO LTD
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Patent Information

Application Number
CN202522323791.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-31
Publication Date
2026-09-29
Estimated Expiration
2035-10-31

AI Technical Summary

Technical Problem

[0002]目前家用搅拌机和刨冰机是两个单独存在的产品,同一设备无法组合使用两项功能,实用性相对较差;另外,驱动搅拌杯上刀轴转的电机与搅拌杯成一上一下结构设计,导致整机高度相对高,不方便台面式操作使用

Benefits of technology

[0003]为了克服现有的技术缺陷,本实用新型的目的在于提供一种刨冰榨汁一体机以解决上述技术问题。

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Abstract

The utility model discloses a kind of ice planing and juicing all-in-one machine, comprising: machine body is provided with lower transmission wheel;Stirring mechanism includes stirring cup and the first motor installed in the rear end inside of machine body, the first motor is connected with the lower transmission wheel transmission by transmission assembly, stirring cup is rotatably connected with cutter shaft, and the lower end of cutter shaft is fixed with upper transmission wheel;Ice planing mechanism includes ice bin shell installed on the upper portion of machine body, ice pressing part, gear box and second motor, and ice outlet hole position on cutter head is provided with ice planing cutter, and cutter head lower end is provided with cutter head gear, and ice pressing part is installed in ice bin shell, and its inside is provided with ice pressing plate, and power gear of the power of gear box output is engaged with cutter head gear, and the motor shaft of second motor is connected with the input shaft transmission of gear box.Using the above technical scheme, mixed stirring can be made to cold drink, and also can be made independently to slush, and stirring mechanism can also be independently started to make beverage, so as to provide the functionality of equipment, practicality.
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Description

Technical Field

[0001] This utility model relates to the technical field of food processors, and in particular to an ice shaver and juicer. Background Technology

[0002] Currently, household blenders and ice shavers are two separate products, and the two functions cannot be combined in the same device, resulting in relatively poor practicality. In addition, the motor that drives the blade shaft of the blending cup is designed with the blending cup at different heights, which makes the whole machine relatively tall and inconvenient for countertop operation. Utility Model Content

[0003] In order to overcome the existing technical defects, the purpose of this utility model is to provide an integrated ice shaver and juicer to solve the above-mentioned technical problems.

[0004] The technical solution adopted by this utility model to solve the technical problem is as follows:

[0005] According to one aspect of this utility model, an ice shaver and juicer combo machine is designed, comprising:

[0006] The machine body is equipped with a lower drive wheel;

[0007] The stirring mechanism includes a stirring cup and a first motor installed inside the rear end of the machine body. The first motor is connected to the lower transmission wheel through a transmission component to drive the lower transmission wheel to rotate. A cutter shaft is rotatably fitted on the stirring cup. The upper end of the cutter shaft extends into the stirring cup and is connected to a stirring blade. The lower end is fixed to an upper transmission wheel. When the stirring cup is placed on the machine body, the upper transmission wheel and the lower transmission wheel are engaged in a driving engagement.

[0008] The ice-shaving mechanism includes an ice chamber shell, an ice-pressing component, a gearbox, and a second motor, all mounted on the upper part of the machine body. A blade disc is rotatably fitted inside the lower end of the ice chamber shell. Ice-shaving blades are positioned at ice outlet holes on the blade disc. The blade disc corresponds vertically to the mixing cup. A blade disc gear is located at the lower end of the blade disc, enabling its rotation. The ice-pressing component is installed inside the ice chamber shell and contains an inclined or spiral-shaped ice-pressing plate. The power gear output from the gearbox meshes with the blade disc gear. The motor shaft of the second motor is connected to the input shaft of the gearbox.

[0009] By adopting the above technical solution, the ice-shaving mechanism is combined with the stirring mechanism, and the ice-shaving mechanism is placed above the stirring cup. The ice slush made by the ice-shaving mechanism falls directly into the stirring cup for mixing and stirring to make cold drinks, or it can be made into ice slush on its own. At the same time, the stirring mechanism can also be started independently to make drinks, thus providing the functionality and practicality of the equipment. In addition, the first motor is installed inside the rear end of the machine body and forms a front-to-back structure with the stirring cup, rather than an up-and-down structure. This reduces the overall height and facilitates countertop operation.

[0010] To better address the aforementioned technical deficiencies, this utility model also offers a superior technical solution:

[0011] In some embodiments, the front end of the machine body is provided with a protrusion, and the inner sidewall of the protrusion is provided with at least one insertion port and a limiting groove communicating with the insertion port. A snap-fit ​​member is provided on one side of the limiting groove. A connecting seat is fixedly connected to the lower end of the stirring cup. When the stirring cup is placed in the position of the protrusion, the side buckle on the connecting seat can be inserted into the insertion port. When the stirring cup is rotated, the side buckle moves into the limiting groove, and the snap-fit ​​groove on the side buckle engages with the snap-fit ​​connector on the snap-fit ​​member. Thus, when the side buckle moves into the limiting groove and the snap-fit ​​groove on the side buckle engages with the snap-fit ​​connector on the snap-fit ​​member, the vertical movement and circumferential movement of the stirring cup relative to the machine body can be restricted, ensuring a stable connection between the stirring cup and the machine body.

[0012] In some embodiments, the mixing cup is covered with a lid, which has a trigger and an anti-rotation part. The anti-rotation part cooperates with the anti-rotation groove on the mixing cup to restrict the lid's rotation relative to the mixing cup. A first safety linkage component is provided on the upper part of the machine body. The first motor and the first safety linkage component are electrically connected to the control circuit board. When the side latch moves into the limiting groove, the trigger abuts against the first safety linkage component, triggering a feedback message to the control circuit board. By providing a trigger and an anti-rotation part on the lid, and the anti-rotation part cooperating with the anti-rotation groove on the mixing cup, the rotation of the lid relative to the mixing cup can be restricted. When the mixing cup is placed on the protrusion and rotated, the rotation of the mixing cup triggers the lid and the trigger. The trigger abuts against the first safety linkage component, triggering it. The first safety linkage component then sends a feedback message to the control circuit board, indicating that the mixing cup is covered with a lid. Only then can the mixing program be started via the control circuit board. When the mixing cup is not covered or the lid is not properly installed, the mixing program cannot be started, ensuring safety and improving security.

[0013] In some embodiments, an ice container lid is hinged to the ice container shell, and a second safety linkage component is installed thereon. The second safety linkage component and a second motor are electrically connected to the control circuit board. When the ice container lid is placed on the ice container shell, the safety linkage component can be triggered to send feedback information to the control circuit board. Thus, the shaved ice function can only be activated after the ice container lid is closed, improving safety performance and preventing accidents caused by activating the shaved ice function without the ice container lid closed.

[0014] In some embodiments, the first safety linkage component includes a linkage seat that slides with the body, a first trigger unit electrically connected to the control circuit board, and a first elastic element. The trigger end of the linkage seat is placed in a through hole on the front side of the body and exposed on the front side of the body, and the other end corresponds to the contact of the first trigger unit. The first elastic element is disposed in a strip hole on the linkage seat, and one end of the first elastic element abuts against the linkage seat, and the other end abuts against a protrusion on the body. When the cup lid rotates, it can drive the trigger part to move against the linkage seat, so that the other end of the linkage seat abuts against the contact of the first trigger unit, so that the first trigger unit is triggered and feeds back information to the control circuit board.

[0015] In some embodiments, the front end of the machine body is provided with an inclined slide groove that is lower at the front and higher at the rear. The bottom surface of the rear end of the inclined slide groove is not lower than the height of the protrusion. A funnel is connected to the through hole on the cup lid, which floats up and down. When the lower part of the stirring cup is pushed in by the front slide groove of the inclined slide groove, it can be placed at the position of the protrusion. The top of the funnel abuts against the machine body. If there is a gap between the top of the funnel and the machine body, the ice shavings will spill out from the gap. The abutment between the top of the funnel and the machine body can prevent the ice shavings from spilling out.

[0016] In some embodiments, the ice chamber lid is hinged to the ice chamber shell via a hinge block and a hinge shaft. The second safety linkage component includes a linkage member, an elastic component that drives the linkage member to move upward and reset, and a second trigger unit electrically connected to the control circuit board. When the ice chamber lid is closed onto the ice chamber shell from the open position, the hinge block rotates and drives the linkage member to move downward and press against the contact of the second trigger unit to trigger the second trigger unit. When the ice chamber lid is opened from the closed position, the elastic component drives the linkage member to move upward and reset.

[0017] In some embodiments, the linkage includes a first linkage that slides vertically with the ice chamber shell and is located below the hinge block, and a second linkage located below the first linkage and moving vertically with the body. The elastic component includes a first compression spring located inside the first linkage and having its lower end abutting against the upper stop block of the ice chamber shell and its upper end abutting against the first linkage, and a second compression spring sleeved below the second linkage.

[0018] In some embodiments, the lower end of the ice chamber shell is detachably connected to the body, the body is provided with an outlet located below the ice pressing component, the front end of the ice chamber cover is provided with a snap-fit ​​plate with a snap-fit ​​head, the snap-fit ​​head is engaged with the snap-fit ​​part on the ice chamber shell, and the bottom of the ice pressing plate is provided with several protrusions.

[0019] In some embodiments, the snap-fit ​​component includes a movable plate and a snap-fit ​​connector disposed on one side of the movable plate. The snap-fit ​​connector is inserted into a limiting groove. The movable plate is movably fitted into a mounting groove inside the machine body. A second elastic member is disposed in the mounting groove. One end of the second elastic member abuts against the side wall of the mounting groove, and the other end abuts against the movable plate. Attached Figure Description

[0020] Figure 1 A schematic diagram of the structure of an ice shaver and juicer according to one embodiment of this utility model;

[0021] Figure 2 This is a cross-sectional structural diagram of an ice shaver and juicer.

[0022] Figure 3 This is a schematic diagram of a partial structure of the organism;

[0023] Figure 4 This is a schematic diagram of the organism's structure;

[0024] Figure 5 This is a schematic diagram of the internal structure of the upper part of the machine body;

[0025] Figure 6 This is a schematic diagram of the internal structure of the lower part of the machine body;

[0026] Figure 7 This is a schematic diagram of the mixing cup.

[0027] Figure 8 A schematic diagram of the mixing bowl from another perspective;

[0028] Figure 9 This is a schematic diagram of the ice-shaving mechanism;

[0029] Figure 10 A schematic diagram of the ice-shaving mechanism from another perspective;

[0030] Figure 11 This is a cross-sectional schematic diagram of the ice-shaving mechanism;

[0031] Figure 12 This is a schematic diagram of the cutter head structure;

[0032] Figure 13 This is a structural schematic diagram of the ice-pressing component;

[0033] Figure label:

[0034] 1. Body; 11. Protrusion; 12. Lower transmission wheel; 13. Inlet; 14. Limiting groove; 15. Protrusion; 16. Inclined slide groove; 17. Connecting shaft; 2. Stirring mechanism; 21. Stirring cup; 211. Knife shaft; 2111. Upper transmission wheel; 22. First motor; 23. Transmission assembly; 231. Drive gear; 232. Rotating shaft; 233. Driven gear; 234. Transmission gear; 24. Connecting seat; 241. Side buckle; 2411. Snap-fit ​​groove; 3. Ice shaving mechanism; 31. Ice chamber shell; 311. Ring; 312. Snap-fit; 313. Cover; 314. Stop block; 32. Ice pressing component; 321. Ice pressing plate; 3211. Protrusion; 33. Gearbox; 331. Power gear; 34. Second 35. Motor; 351. Ice outlet; 352. Ice shaver; 353. Ice shaver gear; 41. Movable plate; 42. Snap-fit ​​connector; 43. Second elastic element; 5. Cup lid; 51. Trigger; 52. Anti-rotation part; 53. Funnel; 54. Ring part; 55. Compression spring; 6. First safety linkage assembly; 61. Linkage seat; 611. Trigger end; 62. First trigger unit; 63. First elastic element; 7. Ice compartment lid; 71. Hinge block; 72. Hinge shaft; 73. Snap-fit ​​plate; 731. Snap-fit ​​head; 8. Second safety linkage assembly; 81. Linkage component; 811. First linkage component; 812. Second linkage component; 82. Elastic component; 821. First compression spring; 822. Second compression spring; 83. Second trigger unit. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this utility model. Furthermore, descriptions of well-known structures and technologies are omitted in the following description to avoid unnecessarily obscuring the concept of this utility model.

[0036] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0037] In the description of this utility model, unless otherwise explicitly defined, terms such as setting, installing, connecting, and fixing should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0038] refer to Figures 1 to 13As shown, the present invention provides an integrated ice shaver and juicer, comprising: a machine body 1, a stirring mechanism 2, and an ice shaver mechanism 3.

[0039] The front end of the body 1 is provided with a protrusion 11 and a lower transmission wheel 12. The protrusion 11 has a circular structure, and the lower transmission wheel 12 is located inside the protrusion 11. The inner side wall of the protrusion 11 is provided with one insertion port 13, or two, three, or four insertion ports 13 distributed circumferentially. In this embodiment, it is preferred that three insertion ports 13 are distributed circumferentially on the inner side wall of the protrusion 11. Each insertion port 13 has a limiting groove 14 communicating with it on one side. One, two, or all of the limiting grooves 14 are provided with a snap-fit ​​component on one side. In this embodiment, it is preferred that one of the limiting grooves 14 is provided with a snap-fit ​​component on one side. The snap-fit ​​component includes a movable plate 41 and a snap-fit ​​connector 42 disposed on one side of the movable plate 41. The snap-fit ​​connector 42 and the movable plate 41 are integrally structured. The snap-fit ​​connector 42 is placed in the limiting groove 14. The movable plate 41 is movably fitted in the mounting groove inside the body 1. A second elastic element 43 is provided in the mounting groove. One end of the second elastic element 43 abuts against the side wall of the mounting groove, and the other end abuts against the movable plate 41. The second elastic element 43 is a spring, a V-shaped spring, or a Z-shaped spring. In this embodiment, the second elastic element 43 is preferably a spring. When the snap-fit ​​connector 42 is subjected to a squeezing force, it can move in the direction of the second elastic element 43, thereby moving the movable plate 41 in conjunction.

[0040] The stirring mechanism 2 includes a stirring cup 21 and a first motor 22 installed inside the rear end of the body 1. The first motor 22 is in an inverted state. The first motor 22 is connected to the lower transmission wheel 12 through the transmission component 23 and is used to drive the lower transmission wheel 12 to rotate. A blade shaft 211 is rotatably fitted on the stirring cup 21. The upper end of the blade shaft 211 extends into the stirring cup 21 and is connected to a stirring blade. The lower end of the blade shaft 211 is fixedly connected to the upper transmission wheel 2111. A connecting seat 24 is fixedly connected inside the lower end of the stirring cup 21. The connecting seat 24 has a number of side fasteners 241 distributed around its periphery that are the same number as the number of inlets 13.

[0041] The mixing cup 21 is covered with a lid 5. The lid 5 is provided with one or two trigger parts 51 and one or two anti-rotation parts 52. In this embodiment, the lid 5 is preferably provided with two trigger parts 51 and two anti-rotation parts 52. The two trigger parts 51 are designed with a central symmetrical structure, and the two anti-rotation parts 52 are also designed with a central symmetrical structure. The two anti-rotation parts 52 are matched with two anti-rotation grooves on the mixing cup 21 to restrict the lid 5 from rotating relative to the mixing cup 21, and at the same time, the lid 5 is positioned and covered on the mixing cup 21.

[0042] The upper part of the machine body 1 is provided with a first safety linkage component 6. The first motor 22 and the first safety linkage component 6 are electrically connected to the control circuit board.

[0043] When the stirring cup 21 is placed at the protrusion 11, the three side fasteners 241 are inserted into the three inlets 13, and the plug on the upper drive wheel 2111 is inserted into the slot on the lower drive wheel 12 to achieve transmission connection. When the stirring cup 21 is rotated counterclockwise, the side fasteners 241 move into the limiting groove 14, and the snap-fit ​​groove 2411 on the upper side fastener 241 snaps into the snap-fit ​​connector 42 on the snap-fit ​​piece. The rotation of the stirring cup 21 drives the cup lid 5 to rotate, and the rotation of the cup lid 5 drives the trigger part 51 to rotate. One of the trigger parts 51 rotates and abuts against the first safety linkage component 6 to trigger feedback information to the control circuit board. Only then can the stirring / grinding program be started through the control circuit board (i.e., the start and stop of the first motor can be controlled). If the first safety linkage component 6 is not triggered, the stirring / grinding program cannot be started. When the stirring / grinding program is started, the first motor 22 drives the lower drive wheel 12 to rotate through the transmission component 23. The rotation of the lower drive wheel 12 drives the upper drive wheel 2111 to rotate, which in turn drives the blade shaft 211 to rotate.

[0044] When the snap-fit ​​groove 2411 on the side buckle 241 and the snap-fit ​​connector 42 on the snap-fit ​​part are in a snap-fit ​​engagement state, rotating the stirring cup 21 clockwise can move the side buckle 241 to the inlet 13.

[0045] The first safety linkage component 6 includes a linkage seat 61 that slides with the body 1, a first trigger unit 62 that is electrically connected to the control circuit board, and a first elastic element 63. The first trigger unit 62 is a micro switch or limit switch, etc. The trigger end 611 of the linkage seat 61 is placed in the through hole on the front side of the body 1 and exposed on the front side of the body 1. The other end of the linkage seat 61 corresponds to the contact of the first trigger unit 62. The first elastic element 63 is disposed in the strip hole on the linkage seat 61. One end of the first elastic element 63 abuts against the linkage seat 61, and the other end abuts against the protrusion 15 on the body 1. The first elastic element 63 is a spring, a V-shaped spring, or a Z-shaped spring. In this embodiment, the first elastic element 63 is preferably a spring. When the cup lid 5 rotates, it can drive the trigger part 51 to abut against the linkage seat 61 and move. The linkage seat 61 moves and its other end abuts against the contact of the first trigger unit 62, so that the first trigger unit 62 is triggered. The first trigger unit 62 feeds back information to the control circuit board.

[0046] The front top of the body 1 is provided with an inclined slide groove 16 that is lower at the front and higher at the back. The height of the bottom surface of the inclined slide groove 16 at the rear end is not lower than the height of the protrusion 11. A funnel 53 is connected to the cup lid 5 by a through hole that floats up and down. Specifically, a ring 54 is provided at the bottom of the cup lid 5 to abut against it. The lower end of the funnel 53 is connected to the ring 54. Multiple compression springs 55 are distributed circumferentially between the funnel 53 and the cup lid 5. The upper end of the compression spring 55 abuts against the funnel 53, and the lower end abuts against the cup lid 5. The compression springs 55 allow the funnel 53 to float up and down. When the lower part of the mixing cup 21 is placed in front of the inclined slide groove 16 and is pushed in by sliding from the front of the inclined slide groove 16, it can be placed in the position of the protrusion 11, and the top of the funnel 53 abuts against the body 1.

[0047] The transmission assembly 23 includes a drive gear 231 fixed to the motor shaft of the first motor 22, a rotating shaft 232 rotatably engaged with the machine body 1 and fixed at its upper end to the lower transmission wheel 12, a driven gear 233 fixed to the rotating shaft 232, and a transmission gear 234 rotatably engaged with the connecting shaft 17 connected to the machine body 1. There is one, two, or more transmission gears 234. When there is one transmission gear 234, one end of the transmission gear 234 meshes with the drive gear 231 and the other end meshes with the driven gear 233. When there are two transmission gears 234, the two transmission gears 234 mesh, one of which meshes with the drive gear 231 and the other with the driven gear 233. In this embodiment, it is preferable to have two transmission gears 234. In other embodiments, the transmission assembly 23 includes a drive wheel fixed to the motor shaft, a rotating shaft 232 that rotatably engages with the machine body 1 and whose upper end is fixed to the lower transmission wheel 12, a driven wheel fixed to the rotating shaft 232, and a transmission component that engages with the drive wheel and the driven wheel. The drive wheel and the driven wheel are both synchronous pulleys and the transmission component is a synchronous belt; or the drive wheel and the driven wheel are both pulleys and the transmission component is a belt; or the drive wheel and the driven wheel are both sprockets and the transmission component is a chain.

[0048] The ice-shaving mechanism 3 includes an ice chamber shell 31, an ice-pressing component 32, a gearbox 33, and a second motor 34. The ice chamber shell 31 has a cylindrical structure with open top and bottom. The lower end of the ice chamber shell 31 is detachably connected to the machine body 1. The ice chamber shell 31 is snapped into the machine body 1 or threaded into the machine body 1, etc.

[0049] A blade disc 35 is rotatably fitted inside the lower end of the ice chamber shell 31. The blade disc 35 has one, two, or more ice outlets 351. In this embodiment, the blade disc 35 preferably has two ice outlets 351. Ice shaving blades 352 are respectively positioned at the two ice outlets 351. The ice shaving blades 352 are inclined, with their upper parts higher than the top surface of the blade disc 35. A blade disc gear 353, capable of driving the blade disc 35 to rotate, is located at the lower end of the blade disc 35. The blade disc gear 353 is a ring-shaped gear, integrally formed with the blade disc 35, or fixedly connected to the lower end of the blade disc 35, or snapped onto the lower end of the blade disc 35. The edge of the blade disc 35 rests above a circular ring 311 inside the ice chamber shell 31, with the blade disc gear 353 located below this circular ring 311.

[0050] The ice-pressing component 32 has an open structure at the top and bottom. The ice-pressing component 32 is installed inside the ice chamber shell 31. The ice-pressing component 32 is rotatably snapped into the ice chamber shell 31, or connected to the ice chamber shell 31 by means of threaded connection, or connected to the ice chamber shell 31 by means of screw locking. The ice-pressing component 32 is provided with one, two or more inclined or spiral ice-pressing plates 321 inside. In this embodiment, it is preferred that the ice-pressing component 32 is provided with two ice-pressing plates 321 inside. The two ice-pressing plates 321 are arranged in a centrally symmetrical structure. Several protrusions 3211 are provided at the bottom of the ice-pressing plates 321. The protrusions 3211 can prevent the ice block from rolling when shaving ice, which is conducive to shaving ice.

[0051] The blade 35 corresponds vertically to the mixing cup 21. The machine body 1 has an outlet located below the blade 35, from which the shaved ice falls into the mixing cup 21.

[0052] Gearbox 33 is located on one side of the lower end of ice chamber shell 31. The power gear 331 of gearbox 33 outputs power and meshes with the cutter head gear 353. The motor shaft of the second motor 34 is connected to the input shaft of gearbox 33 to provide power to gearbox 33. When the second motor 34 starts, it outputs power to gearbox 33. The power gear 331 of gearbox 33 rotates, driving the cutter head gear 353 to rotate clockwise. The rotation of the cutter head gear 353 drives the cutter head 35 to rotate, which in turn drives the ice shaving blade 352 to rotate. The rotating ice shaving blade 352 contacts the ice block placed in the ice pressing component 32 to shave the ice. The shaved ice falls out of the ice outlet 351.

[0053] An ice compartment cover 7 is hinged to the ice compartment shell 31, and a second safety linkage component 8 is installed thereon. The second safety linkage component 8 and the second motor 34 are electrically connected to the control circuit board respectively. When the ice compartment cover 7 is placed on the ice compartment shell 31, the second safety linkage component 8 can be triggered to send feedback information to the control circuit board.

[0054] Furthermore, a hinge block 71 is provided on the ice compartment lid 7. The hinge block 71 is hinged to the ice compartment shell 31 through the hinge shaft 72. The second safety linkage component 8 includes a linkage member 81, an elastic component 82 that drives the linkage member 81 to move upward and reset, and a second trigger unit 83 electrically connected to the control circuit board. The second trigger unit 83 is a micro switch or limit switch, etc. When the ice compartment lid 7 is closed on the ice compartment shell 31 from the open position, the hinge block 71 rotates and drives the linkage member 81 to move downward. The linkage member 81 moves downward and presses against the contact of the second trigger unit 83, causing the second trigger unit 83 to be triggered. The second trigger unit 83 feeds back information to the control circuit board, indicating that ice shaving can be performed. Only through the control circuit board can the second motor 34 be started and stopped. The second trigger unit 83 is installed inside the machine body 1. When the ice compartment lid 7 is opened from the closed position, the elastic component 82 drives the linkage member 81 to move upward and reset, and the second trigger unit 83 changes from the triggered state to the non-triggered state. The front end of the ice compartment lid 7 is provided with a snap-fit ​​plate 73 and a snap-fit ​​part 312 is provided on the ice compartment shell 31. When the ice compartment lid 7 is closed on the ice compartment shell 31, the snap-fit ​​plate 73 and the snap-fit ​​part 312 on the ice compartment shell 31 engage with each other to keep the ice compartment lid 7 closed.

[0055] The linkage 81 includes a first linkage 811 that slides up and down with the ice chamber shell 31 and is located below the hinge block 71, and a second linkage 812 located below the first linkage 811 and moves up and down with the body 1. The first linkage 811 has an inclined surface at its upper end, and a cover 313 is provided around the first linkage 811 to cover it and is fixedly connected to the ice chamber shell 31. The elastic component 82 includes a first compression spring 821 located in the strip-shaped through hole on the first linkage 811 and whose lower end abuts against the stop block 314 on the ice chamber shell 31, and whose upper end abuts against the first linkage 811, and a second compression spring 822 sleeved below the second linkage 812. The second linkage 812 is generally in the shape of a "7", and the lower end of the second spring is placed in the spring hole on the body 1. When the ice compartment lid 7 closes onto the ice compartment shell 31 from the open position, the ice compartment lid 7 drives the hinge block 71 to rotate. The hinge block 71 rotates and abuts against the inclined surface at the upper end of the first linkage member 811 to drive the first linkage member 811 to move downward. The first linkage member 811 moves downward and presses the second linkage member 812 to move downward. The second linkage member 812 moves downward and presses the contact of the second trigger unit 83 to move downward, causing the second trigger unit 83 to be triggered. When the ice compartment lid 7 is closed, the locking head 731 engages with the locking part 312. When the ice compartment lid 7 is opened from the closed position, the first compression spring 821 drives the first linkage member 811 to move upward and reset, and the second compression spring 822 drives the second linkage member 812 to move upward and reset. The second trigger unit 83 changes from the triggered state to the non-triggered state.

[0056] The stirring mechanism 2 can independently stir / crush the food placed in the stirring cup 21, and the ice shaving mechanism 3 can independently shave the ice cubes placed in the ice pressing component 32 into shaved ice. When the stirring mechanism 2 and the ice shaving mechanism 3 are used together, the stirring cup 21 is placed on the machine body 1 and installed in place, the ice cubes are placed in the ice pressing component 32 and the cup lid 5 is closed, and the first motor 22 and the second motor 34 are started by controlling the control circuit board. The second motor 34 outputs power to the gearbox 33, and the gearbox 33 transmits the electric power to the power gear 3. 31 rotates to drive the blade disc gear 353 to rotate, which in turn drives the blade disc 35 to rotate and in conjunction with the ice shaving blade 352 to rotate. The ice shaving blade 352 rotates and comes into contact with the ice to shave the ice. The shaved ice falls from the ice outlet 351, passes through the funnel 53, and enters the mixing cup 21. The first motor 22 starts and drives the lower transmission wheel 12 to rotate through the transmission assembly 23. The rotation of the lower transmission wheel 12 drives the upper transmission wheel 2111 to rotate and in conjunction with the blade shaft 211 to rotate. The rotation of the blade shaft 211 drives the mixing blade to rotate for stirring / crushing.

[0057] The above descriptions are merely some embodiments of this utility model. For those skilled in the art, various modifications and improvements can be made without departing from the inventive concept of this utility model, and these all fall within the protection scope of this utility model.

Claims

1. A shaved ice and juice maker, characterized in that, include: The machine body is equipped with a lower drive wheel; The stirring mechanism includes a stirring cup and a first motor installed inside the rear end of the machine body. The first motor is connected to the lower transmission wheel through a transmission component to drive the lower transmission wheel to rotate. A cutter shaft is rotatably fitted on the stirring cup. The upper end of the cutter shaft extends into the stirring cup and is connected to a stirring blade. The lower end is fixed to an upper transmission wheel. When the stirring cup is placed on the machine body, the upper transmission wheel and the lower transmission wheel are engaged in a driving engagement. The ice-shaving mechanism includes an ice chamber shell, an ice-pressing component, a gearbox, and a second motor, all mounted on the upper part of the machine body. A blade disc is rotatably fitted inside the lower end of the ice chamber shell. Ice-shaving blades are installed at the ice outlet positions on the blade disc. The blade disc corresponds vertically to the mixing cup. A blade disc gear is provided at the lower end of the blade disc to drive its rotation. The ice-pressing component is installed inside the ice chamber shell and has an inclined or spiral ice-pressing plate inside. The power gear output by the gearbox meshes with the blade disc gear. The motor shaft of the second motor is connected to the input shaft of the gearbox.

2. The shaved ice and juicer as described in claim 1, characterized in that, The front end of the machine body is provided with a protrusion. The inner side wall of the protrusion is provided with at least one inlet and a limiting groove communicating with the inlet. A snap-fit ​​component is provided on one side of the limiting groove. A connecting seat is fixedly connected to the lower end of the stirring cup. When the stirring cup is placed in the position of the protrusion, the side buckle on the connecting seat can be inserted into the inlet. When the stirring cup is rotated, the side buckle moves into the limiting groove, and the snap-fit ​​groove on the side buckle engages with the snap-fit ​​connector on the snap-fit ​​component.

3. The shaved ice and juicer as described in claim 2, characterized in that, The mixing cup is covered with a lid, which has a trigger and an anti-rotation part. The anti-rotation part cooperates with the anti-rotation groove on the mixing cup to limit the lid from rotating relative to the mixing cup. The upper part of the machine body is provided with a first safety linkage component. The first motor and the first safety linkage component are electrically connected to the control circuit board. When the side buckle moves into the limiting groove, the trigger abuts against the first safety linkage component to trigger feedback information to the control circuit board.

4. The shaved ice and juicer as described in claim 1, characterized in that, The ice chamber shell is hinged with an ice chamber lid and a second safety linkage component is installed. The second safety linkage component and the second motor are electrically connected to the control circuit board. When the ice chamber lid is placed on the ice chamber shell, the safety linkage component can be triggered to send feedback information to the control circuit board.

5. The shaved ice and juicer as described in claim 3, characterized in that, The first safety linkage component includes a linkage seat that slides with the body, a first trigger unit electrically connected to the control circuit board, and a first elastic element. The trigger end of the linkage seat is placed in a through hole on the front side of the body and exposed on the front side of the body, and the other end corresponds to the contact of the first trigger unit. The first elastic element is disposed in a strip hole on the linkage seat, and one end of the first elastic element abuts against the linkage seat, and the other end abuts against a protrusion on the body. When the cup lid rotates, it can drive the trigger part to move against the linkage seat, so that the other end of the linkage seat abuts against the contact of the first trigger unit, so that the first trigger unit is triggered and feeds back information to the control circuit board.

6. The shaved ice and juicer as described in claim 3, characterized in that, The front end of the machine body is provided with an inclined slide groove that is lower in the front and higher in the back. The height of the bottom surface of the rear end of the inclined slide groove is not lower than the height of the protrusion. A funnel is connected to the through hole on the cup lid by floating up and down. When the lower part of the stirring cup is pushed in by the front slide of the inclined slide groove, it can be placed at the position of the protrusion. The top of the funnel abuts against the machine body.

7. The shaved ice and juicer as described in claim 4, characterized in that, The ice chamber lid is hinged to the ice chamber shell via a hinge block and a hinge shaft. The second safety linkage component includes a linkage member, an elastic component that drives the linkage member to move upward and reset, and a second trigger unit electrically connected to the control circuit board. When the ice chamber lid is closed onto the ice chamber shell from the open position, the hinge block rotates and drives the linkage member to move downward and press against the contact of the second trigger unit to trigger the second trigger unit. When the ice chamber lid is opened from the closed position, the elastic component drives the linkage member to move upward and reset.

8. The shaved ice and juicer as described in claim 7, characterized in that, The linkage includes a first linkage that slides up and down with the ice chamber shell and is located below the hinge block, and a second linkage that is located below the first linkage and moves up and down with the body. The elastic component includes a first compression spring located inside the first linkage and whose lower end abuts against the upper block of the ice chamber shell and whose upper end abuts against the first linkage, and a second compression spring sleeved below the second linkage.

9. The shaved ice and juicer as described in claim 4, characterized in that, The lower end of the ice chamber shell is detachably connected to the body of the machine. The body of the machine is provided with an outlet located below the ice pressing component. The front end of the ice chamber cover is provided with a snap-fit ​​plate with a snap-fit ​​head. The snap-fit ​​head engages with the snap-fit ​​part on the ice chamber shell. The bottom of the ice pressing plate is provided with several protrusions.

10. A shaved ice and juicer as described in claim 2, characterized in that, The snap-fit ​​component includes a movable plate and a snap-fit ​​connector disposed on one side of the movable plate. The snap-fit ​​connector is placed in a limiting groove. The movable plate is movably fitted into a mounting groove inside the machine body. A second elastic element is disposed in the mounting groove. One end of the second elastic element abuts against the side wall of the mounting groove, and the other end abuts against the movable plate.