Ice drink machine with adjustable feed port
By designing a movable feed cover at the feed port of the ice drinker, the problem that the existing ice drinker cannot adjust the size of the feed port is solved, and flexible adjustment of feed speed and improved dust protection effect are achieved.
Patent Information
- Application Number
- CN202422023846.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-20
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-08-20
AI Technical Summary
The existing ice drinkers cannot adjust the size of the feed port, resulting in the inability to flexibly adjust the speed when feeding, and cannot effectively prevent dust when not in use.
An ice drinker with adjustable feed port is designed, and by providing a movable feed cover at the feed port of the feed hopper, the open size of the feed port can be adjusted as needed.
It realizes the flexibly adjusting the feed speed according to the properties and quantity of raw materials when feeding, and enhances the dustproof effect by completely closing the feed port when the ice drinker is not used, simplifying the operation steps.
Smart Images

Figure CN222898250U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of food processing equipment, in particular to an ice drink machine with an adjustable feeding port. Background Art
[0002] As one of the indispensable equipment in the modern food industry, ice drink machines include ice drink machines, smoothie machines, etc. The continuous optimization of their performance and design is of great significance for improving the quality, taste and production efficiency of frozen drinks and foods.
[0003] In the existing design and application of ice drink machines, although a dust-proof cover is configured at the feeding port of the ice drink machine, which is used to block the feeding port when the ice drink machine is not in use, the function of this dust-proof cover is single and lacks the function of timely cooperating to open the feeding port of the ice drink machine. Summary of the Utility Model
[0004] Aiming at the problems raised in the background art, the purpose of the utility model is to provide an ice drink machine with an adjustable feeding port, which solves the problem that the feeding port size of the existing ice drink machine cannot be adjusted.
[0005] To achieve this purpose, the utility model adopts the following technical solutions:
[0006] An ice drink machine with an adjustable feeding port, comprising a machine shell, a feeding assembly, a freezing cylinder, a refrigeration assembly, a stirring assembly, a driving assembly and a discharging assembly;
[0007] The freezing cylinder, the refrigeration assembly and the driving assembly are arranged inside the machine shell, and the feeding assembly and the discharging assembly are installed on the machine shell;
[0008] The stirring assembly is arranged inside the freezing cylinder, the driving assembly is used to drive the stirring assembly to rotate, and the refrigeration assembly is used to refrigerate the freezing cylinder;
[0009] The feeding assembly includes a feeding hopper and a feeding cover. The feeding hopper is communicated with the freezing cylinder. The feeding cover movably covers the feeding port of the feeding hopper, and the movement of the feeding cover is used to adjust the opening size of the feeding port;
[0010] The discharging assembly is communicated with the freezing cylinder, and the discharging assembly is used to discharge food.
[0011] Preferably, the feeding hopper is installed on the top of the machine shell;
[0012] The feeding port is arranged at the top of the feeding hopper, the feeding port is arranged at the bottom of the feeding hopper, the feeding port is connected with the freezing cylinder, the feeding cover is installed on the top of the feeding hopper, and the feeding cover is slidably connected with the feeding hopper.
[0013] Preferably, the feed cover includes a cover top plate and two cover side plates. The two cover side plates are respectively arranged on both sides of the cover top plate. One end of each cover side plate is connected to the bottom of the cover top plate, and the other end of each cover side plate is provided with a sliding portion;
[0014] The upper part of the feed hopper protrudes from the top surface of the casing. The outer walls of the opposite sides of the upper part of the feed hopper are provided with chutes, which extend along the length direction of the feed hopper. One sliding portion on one side is slidably connected with the chute on one side.
[0015] Preferably, the sliding portion is a plurality of sliders, and the plurality of sliders are arranged at intervals along the length direction of the cover side plate.
[0016] Preferably, the feed cover further includes a cover baffle, which is arranged at the rear end of the bottom of the cover top plate. Both sides of the cover baffle are respectively connected to the two cover side plates, and the cover baffle is in limit fit with the outer wall of the rear end of the feed hopper;
[0017] A limiting convex block protruding downward is provided at the front end of the bottom of the cover top plate, and the limiting convex block is in limit fit with the inner wall of the rear end of the feed hopper.
[0018] Preferably, the front end of the cover side plate is provided with a first inclined surface, and the front end of the chute is provided with a second inclined surface. The slope of the first inclined surface is the same as that of the second inclined surface, and the first inclined surface and the second inclined surface cooperate with each other.
[0019] Preferably, a locking convex block protruding downward is provided at the rear end of the bottom of the cover top plate, and a limiting portion recessed downward is provided at the top of the rear end of the feed hopper. The locking convex block and the limiting portion are used in cooperation.
[0020] Preferably, the top surface of the cover top plate is provided with friction protrusions.
[0021] Preferably, the friction protrusions are a plurality of strip-shaped protrusions, and the length direction of the strip-shaped protrusions is perpendicular to the guiding direction of the chute.
[0022] Preferably, it further includes a control component, which is installed on the outer wall of the casing and is used to control the refrigeration component and the driving component.
[0023] Compared with the prior art, one of the above technical solutions has the following beneficial effects:
[0024] By designing that the feeding cover is movably covered on the feeding port of the feeding hopper, the opening size of the feeding port can be adjusted according to actual needs. This facilitates flexibly adjusting the feeding speed according to the nature and quantity of the raw materials during feeding, and can also enhance the dust-proof effect by completely closing the feeding port when the ice drink machine is not in use, eliminating the need for an additional dust-proof cover and simplifying the operation steps. Brief Description of the Drawings
[0025] Figure 1 is a schematic diagram of an embodiment of the present utility model;
[0026] Figure 2 is another schematic diagram of an embodiment of the present utility model (hiding part of the casing);
[0027] Figure 3 is Figure 1 a schematic diagram of the feeding port of the feeding assembly in
[0028] Figure 4 is an assembly schematic diagram of the feeding assembly of the present utility model;
[0029] Figure 5 is an exploded view of the feeding assembly of the present utility model;
[0030] Figure 6 is a schematic diagram of the feeding assembly of the present utility model;
[0031] Figure 7 is Figure 6 a cross-sectional view taken along line A-A in
[0032] Wherein: casing 1, feeding assembly 2, feeding hopper 21, feeding port 211, feeding opening 212, chute 213, second inclined surface 2131, limiting portion 214, feeding cover 22, cover top plate 221, cover side plate 222, first inclined surface 2221, sliding portion 223, cover baffle 224, limiting protrusion 225, locking protrusion 226, friction protrusion 227, control assembly 3, freezing cylinder 4, refrigeration assembly 5, drive assembly 6 and discharge assembly 7. Detailed Description of the Embodiment
[0033] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present utility model and should not be construed as limiting the present utility model.
[0034] In the description of the present utility model, it should be understood that the orientation or positional relationships indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings. These are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present utility model.
[0035] In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first", "second", and "third" may explicitly or implicitly include one or more of such features.
[0036] It should be noted that unless otherwise clearly specified and defined, the terms "installed", "connected", and "coupled" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0037] The following Figures 1 to 7 and further illustrate the technical solution of the present utility model through specific embodiments.
[0038] An ice drink machine with an adjustable feed inlet, comprising a machine shell 1, a feed assembly 2, a freezing cylinder 4, a refrigeration assembly 5, a stirring assembly, a driving assembly 6, and a discharging assembly 7;
[0039] The freezing cylinder 4, the refrigeration assembly 5, and the driving assembly 6 are arranged inside the machine shell 1, and the feed assembly 2 and the discharging assembly 7 are installed on the machine shell 1;
[0040] The stirring assembly is arranged inside the freezing cylinder 4, the driving assembly 6 is used to drive the stirring assembly to rotate, and the refrigeration assembly 5 is used to refrigerate the freezing cylinder 4;
[0041] The feed assembly 2 includes a feed hopper 21 and a feed cover 22. The feed hopper 21 is communicated with the freezing cylinder 4. The feed cover 22 movably covers the feed inlet 211 of the feed hopper 21, and the movement of the feed cover 22 is used to adjust the opening size of the feed inlet 211;
[0042] The discharging assembly 7 is communicated with the freezing cylinder 4, and the discharging assembly 7 is used to discharge food.
[0043] ReferenceFigure 1 and Figure 2 The present utility model provides an ice drink machine with an adjustable feed inlet. A freezing cylinder 4, a refrigeration assembly 5, and a driving assembly 6 are installed inside a machine housing 1. The driving assembly 6 is connected to a stirring assembly disposed inside the freezing cylinder 4 and is used to drive the stirring assembly to rotate and stir the cold drink raw materials in the cylinder. The refrigeration assembly 5 refrigerates the freezing cylinder 4 so that the cold drink raw materials in the freezing cylinder 4 are frozen and solidified. Among them, a feed assembly 2 and a discharge assembly 7 installed on the outer wall of the machine housing 1 are communicated with the freezing cylinder 4. The cold drink raw materials are added into the freezing cylinder 4 through the feed assembly 2, and the formed cold drinks are discharged through the discharge assembly 7.
[0044] In the present utility model, a feed cover 22 is designed to movably cover a feed inlet 211 of a feed hopper 21, so that the opening size of the feed inlet 211 can be adjusted according to actual needs. This design not only facilitates flexible adjustment of the feeding sequence and speed according to the nature and quantity of the raw materials during feeding, but also enhances the dust-proof effect by completely closing the feed inlet when the ice drink machine is not in use, eliminating the need for an additional dust-proof cover and simplifying the operation steps. The adjustability of the feed inlet 211 allows for more precise control of the feeding speed and quantity of the raw materials, helping to maintain the stability and uniformity of the raw materials in the freezing cylinder 4, thereby optimizing the texture and taste of the frozen drinks or foods. Additionally, this design can more flexibly adapt to different types of cold drink raw materials and production process requirements. For example, for raw materials with high viscosity or poor fluidity, the opening of the feed inlet can be appropriately reduced to slow down the feeding speed and avoid blockage; while for raw materials with good fluidity, the opening can be increased to improve production efficiency.
[0045] By connecting the feed hopper 21 to the freezing cylinder 4 and disposing the stirring assembly inside the freezing cylinder 4, it is possible to reduce the splashing of materials near the feed inlet during the stirring of the existing ice drink machine when starting to stir, which affects the feeding during the process or subsequently. At the same time, in cooperation with the feed assembly 2 with an adjustable feed inlet 211 size, it further prevents the splashing phenomenon caused by too fast stirring speed when stirring liquid raw materials, thereby reducing the waste of raw materials and avoiding the pollution of the surrounding environment by the raw materials. At the same time, the design of the feed cover 22 slidingly covering the feed inlet 211 can open and close the feed inlet 211 at any time, significantly reducing the risk of the ice drink machine inhaling sundries such as dust and flying insects in the air during operation, ensuring the purity of the cold drink raw materials, and thus improving the hygienic quality and taste of the final product.
[0046] In addition, during the actual use process, when the feed cover 22 is fully opened, the materials can be directly put into the feed hopper 21 near the feeding port 212, which is beneficial to improving the feeding speed. If you don't want the feeding speed to be too fast, the materials can be put into the feed hopper 21 at a position far from the feeding port 212, and the materials will slide along the feed hopper 21 to the feeding port 212. If you want to reduce the amount temporarily, the materials sliding along the feed hopper 21 can be blocked to achieve the reduction.
[0047] Further explanation, the feeding cover 22 can be movably covered on the feeding port 211 of the feeding hopper 21 in ways such as sliding covering or flipping covering. The structures of sliding connection and hinge connection are relatively simple and convenient for manual operation.
[0048] The utility model improves the structure of the ice drink machine, enhances the hygiene quality and taste of frozen drinks or foods, reduces the troubles in the production process of making cold drinks (such as frequent cleaning of splashed raw materials), enhances the use experience of users (including producers and consumers), and improves the market competitiveness of products.
[0049] Further, the feeding hopper 21 is installed on the top of the machine shell 1;
[0050] The top of the feeding hopper 21 is provided with the feeding port 211, the bottom of the feeding hopper 21 is provided with a feeding opening 212, the feeding opening 212 is connected to the freezing cylinder 4, the feeding cover 22 is installed on the top of the feeding hopper 21, and the feeding cover 22 is slidably connected to the feeding hopper 21.
[0051] The feeding hopper 21 is installed on the top of the machine shell 1, the feeding port 211 is provided at the top of the feeding hopper 21, and the feeding opening 212 provided at the bottom is connected to the freezing cylinder 4. This can facilitate the direct downward flow of cold drink raw materials into the freezing cylinder 4 under the action of gravity without adding additional power to assist in the addition of cold drink raw materials. The slidably connected feeding cover 22 can quickly and tightly cover the feeding port 211, enhancing the dust-proof effect and ensuring the purity of cold drink raw materials.
[0052] The slidable connection between the feeding cover 22 and the feeding hopper 21 makes the opening and closing of the feeding cover 22 very simple and fast. The operator only needs to gently push or pull to open and close the feeding port 211, without complex operation steps or tools, greatly improving the work efficiency and operation convenience.
[0053] Furthermore, the feeding cover 22 includes a cover top plate 221 and two cover side plates 222. The two cover side plates 222 are respectively arranged on both sides of the cover top plate 221. One end of the cover side plate 222 is connected to the bottom of the cover top plate 221, and the other end of the cover side plate 222 is provided with a sliding portion 223;
[0054] The upper part of the feeding hopper 21 protrudes from the top surface of the machine shell 1. The outer walls on the opposite sides of the upper part of the feeding hopper 21 are provided with sliding grooves 213. The sliding grooves 213 extend along the length direction of the feeding hopper 21. One sliding portion 223 on one side is slidably connected with one sliding groove 213 on one side.
[0055] The combined design of the cover top plate 221 and the two cover side plates 222 enables the feeding cover 22 to form a more comprehensive seal when covering the feeding port 211, effectively preventing the liquid raw materials from splashing out during the stirring process, and also preventing the entry of external dust, flying insects and other sundries, further improving the purity of the cold drink raw materials and the hygienic quality of the product.
[0056] The sliding part 223 is slidably connected with the sliding groove 213, enabling the feeding cover 22 to move smoothly and smoothly during the opening and closing processes, avoiding shaking or jamming caused by improper operation, and improving the stability and reliability of the operation. The design of the sliding connection makes the opening and closing operations of the feeding cover 22 very simple and direct. The operator only needs to push or pull the feeding cover 22 along the sliding groove 213 to open and close the feeding port, without the need for additional tools or complex operation steps, greatly simplifying the operation process.
[0057] Furthermore, the sliding part 223 is several sliding blocks, and several of the sliding blocks are arranged at intervals along the length direction of the cover side plate 222.
[0058] The multiple sliding blocks are arranged at intervals along the length direction of the cover side plate 222, which can more evenly disperse the force generated during the sliding process of the feeding cover 22, making the sliding process smoother and reducing the jamming or shaking phenomenon caused by the concentration of force.
[0059] For further illustration, after the sliding part is subdivided into several sliding blocks, the contact area between the sliding part 223 and the sliding groove 213 is reduced. This makes it unnecessary to use special tools or perform complex operations when the feeding cover 22 needs to be disassembled from the feeding hopper 21. Compared with a continuous strip-shaped sliding part, the sliding part composed of spaced sliding blocks is easier to disassemble and is not easily damaged during the installation and disassembly process. Just apply a little upward force to break it, and the sliding block can be separated from the sliding groove 213 to complete the disassembly.
[0060] Furthermore, the feeding cover 22 further includes a cover baffle 224, the cover baffle 224 is arranged at the rear end of the bottom of the cover top plate 221, both sides of the cover baffle 224 are respectively connected to the two cover side plates 222, and the cover baffle 224 is in limit fit with the outer wall of the rear end of the feeding hopper 21;
[0061] A limiting convex block 225 protruding downward is arranged at the front end of the bottom of the cover top plate 221, and the limiting convex block 225 is in limit fit with the inner wall of the rear end of the feeding hopper 21.
[0062] The added cover baffle 224 is located at the bottom rear end of the cover top plate 221, and together with the cover side plates 222 on both sides, it forms a more complete dust-proof barrier. This design effectively prevents the cold drink raw materials from splashing out from behind the feed port during the stirring or mixing process, further enhancing the dust-proof effect and ensuring the purity of the raw materials and the hygiene of the equipment.
[0063] Furthermore, the cover baffle 224 is arranged at the rear end of the cover top plate 221, and the cover baffle 224 is in limit fit with the outer wall of the rear end of the feed hopper 21, so that the feed cover 22 cannot slide forward without obstruction. A limit projection 225 is provided at the front end of the bottom of the cover top plate 221, and the limit projection 225 is in limit fit with the inner wall of the rear end of the feed hopper 21, so that the feed cover 22 will not slide backward without obstruction during the process of sliding backward to open the feed port 211. The settings of the cover baffle 224 and the limit projection 225 make the cooperation between the feed cover 22 and the feed hopper 21 more convenient, and the structure of the feed assembly 2 is simple and the cooperation is stable.
[0064] Furthermore, a first inclined surface 2221 is provided at the front end of the cover side plate 222, a second inclined surface 2131 is provided at the front end of the chute 213, the slope of the first inclined surface 2221 is the same as the slope of the second inclined surface 2131, and the first inclined surface 2221 cooperates with the second inclined surface 2131.
[0065] The slopes of the first inclined surface 2221 and the second inclined surface 2131 are the same and cooperate with each other, so that the feed cover 22 can enter and exit the chute 213 more smoothly during the sliding process. This design reduces the friction and resistance during the sliding process, and avoids the inconvenience of operation or equipment damage caused by jamming or excessive resistance. When the feed cover 22 is completely closed, the close fit of the first inclined surface 2221 and the second inclined surface 2131 helps to form a more tight sealing structure. This further reduces the possibility of sundries such as dust and flying insects entering from the edge of the feed port, and improves the sealing performance and hygiene quality of the equipment.
[0066] Furthermore, a locking projection 226 protruding downward is provided at the rear end of the bottom of the cover top plate 221, and a limiting portion 214 recessed downward is provided at the top of the rear end of the feed hopper 21, and the locking projection 226 is used in cooperation with the limiting portion 214.
[0067] The tight fit between the locking bump 226 and the limiting portion 214 can significantly improve the sealing performance at the feed inlet, effectively preventing dust, impurities or other contaminants from entering the ice drink machine through the feed inlet, and ensuring the hygienic quality and taste of frozen drinks or foods. This locking mechanism not only ensures a firm connection between the feed hopper and the cover top plate, but also increases the stability of the overall structure, reducing the possible shaking or loosening during operation or transportation, and preventing the feed cover 22 from easily detaching from the feed hopper 21. When using the feed assembly 2, the operator only needs to apply a backward pushing force to the feed cover 22 to unlock the cooperation between the locking bump 226 and the limiting portion 214.
[0068] Furthermore, the top surface of the cover top plate 221 is provided with friction protrusions 227.
[0069] The design of the friction protrusions 227 increases the roughness of the top surface of the cover top plate 221, enabling the operator to obtain better stability and feel when pushing the feed cover 22 to open or close. This design reduces operation errors or accidents caused by slippery hands, improving the safety and accuracy of operation.
[0070] On the premise of not affecting the function, the reasonably designed friction protrusions 227 can also add a unique visual effect to the dust-proof feed structure of the ice drink machine, enhancing the overall aesthetics and product texture.
[0071] Furthermore, the friction protrusions 227 are a plurality of strip-shaped protrusions, and the length direction of the strip-shaped protrusions is perpendicular to the guiding direction of the sliding groove 213.
[0072] The plurality of strip-shaped protrusions increase the area of the friction part; the strip-shaped protrusions extend along the width direction of the cover top plate 221 and are perpendicular to the direction in which the feed cover 22 slides relative to the feed hopper 21 to open or close the feed inlet 211, enabling the operator to more easily find a stable support point when pushing the feed cover 22. This design effectively increases the contact area and friction force between the hand and the cover top plate, thus significantly enhancing the holding stability and reducing sliding and accidents during operation.
[0073] Furthermore, it further includes a control component 3, which is installed on the outer wall of the machine housing 1, and the control component 3 is used to control the refrigeration component 5 and the drive component 6.
[0074] Installing the control component 3 on the outer wall of the machine housing 1 enables the user to operate and control the ice drink machine intuitively and conveniently. The user can easily adjust parameters such as the refrigeration effect and stirring speed without opening the machine housing or searching for a hidden control panel, improving the convenience of use.
[0075] Through the precise control of the refrigeration component 5 and the drive component 6 by the control component 3, the ice drink machine can achieve a more automated production process. The user can set the working parameters as needed, and the machine can automatically run according to the preset program, reducing the complexity of manual intervention and operation, and improving production efficiency and stability. The control component 3 can adjust the working state of the refrigeration component 5 and the drive component 6 according to actual needs to avoid unnecessary energy waste. For example, after the cold drink is made, the refrigeration component can be automatically turned off or its power can be reduced to save electricity. At the same time, by optimizing parameters such as the stirring speed, energy consumption can also be reduced to a certain extent.
[0076] The technical principle of the present invention is described above in combination with specific embodiments. These descriptions are only for explaining the principle of the present invention and cannot be interpreted as limiting the protection scope of the present invention in any way. Based on the explanations here, technicians in this field can think of other specific implementation methods of the present invention without creative work, and these methods will fall within the protection scope of the present invention.
Claims
1. An ice drink machine with an adjustable feed inlet, characterized in that: It comprises a casing (1), a feeding assembly (2), a freezing cylinder (4), a refrigeration assembly (5), a stirring assembly, a driving assembly (6) and a discharging assembly (7); The freezing cylinder (4), the refrigeration assembly (5) and the driving assembly (6) are arranged inside the casing (1), and the feeding assembly (2) and the discharging assembly (7) are installed on the casing (1); The stirring component is arranged inside the freezing cylinder (4), the driving component (6) is used to drive the stirring component to rotate, and the refrigeration component (5) is used to cool the freezing cylinder (4); The feed assembly (2) comprises a feed hopper (21) and a feed cover (22), wherein the feed hopper (21) is connected to the freezing cylinder (4), and the feed cover (22) is movably covered on a feed opening (211) of the feed hopper (21), and the movement of the feed cover (22) is used to adjust the opening size of the feed opening (211); The discharging assembly (7) is in communication with the freezing cylinder (4), and the discharging assembly (7) is used for discharging food.
2. The ice drink machine with adjustable feed inlet according to claim 1, characterized in that: The feed hopper (21) is installed on the top of the casing (1); The top of the feed hopper (21) is provided with the feed port (211), the bottom of the feed hopper (21) is provided with a feeding port (212), the feeding port (212) is connected to the freezing cylinder (4), the feed cover (22) is installed on the top of the feed hopper (21), and the feed cover (22) is slidably connected to the feed hopper (21).
3. The ice drink machine with adjustable feed inlet according to claim 2, characterized in that: The feed cover (22) comprises a cover top plate (221) and two cover side plates (222), wherein the two cover side plates (222) are arranged on both sides of the cover top plate (221), one end of the cover side plate (222) is connected to the bottom of the cover top plate (221), and the other end of the cover side plate (222) is provided with a sliding portion (223); The upper part of the feed hopper (21) protrudes from the top surface of the casing (1), and the outer side walls on the opposite sides of the upper part of the feed hopper (21) are provided with sliding grooves (213), and the sliding grooves (213) extend along the length direction of the feed hopper (21), and the sliding part (223) on one side is slidably connected with the sliding groove (213) on one side.
4. The ice drink machine with adjustable feed inlet according to claim 3, characterized in that: The sliding portion (223) is a plurality of sliding blocks, and the plurality of sliding blocks are arranged at intervals along the length direction of the cover side plate (222).
5. The ice drink machine with adjustable feed inlet according to claim 4, characterized in that: The feed cover (22) further comprises a cover baffle (224), the cover baffle (224) being arranged at the rear end of the bottom of the cover top plate (221), the two sides of the cover baffle (224) being respectively connected to the two cover side plates (222), and the cover baffle (224) being limitedly matched with the outer wall of the rear end of the feed hopper (21); A downwardly protruding limiting block (225) is provided at the front end of the bottom of the cover top plate (221), and the limiting block (225) is in limiting cooperation with the inner wall at the rear end of the feed hopper (21).
6. The ice drink machine with adjustable feed inlet according to claim 5, characterized in that: The front end of the cover side plate (222) is provided with a first inclined surface (2221), and the front end of the slide groove (213) is provided with a second inclined surface (2131), the slope of the first inclined surface (2221) is the same as the slope of the second inclined surface (2131), and the slope of the first inclined surface (2221) matches the slope of the second inclined surface (2131).
7. The ice drink machine with adjustable feed inlet according to claim 6, characterized in that: A locking protrusion (226) protruding downward is provided at the rear end of the bottom of the cover top plate (221), and a limiting portion (214) recessed downward is provided at the top of the rear end of the feed hopper (21), and the locking protrusion (226) is used in conjunction with the limiting portion (214).
8. The ice drink machine with adjustable feed inlet according to claim 7, characterized in that: The top surface of the cover top plate (221) is provided with a friction protrusion (227).
9. The ice drink machine with adjustable feed inlet according to claim 8, characterized in that: The friction protrusions (227) are a plurality of strip-shaped protrusions, and the length direction of the strip-shaped protrusions is perpendicular to the guiding direction of the slide groove (213).
10. The ice drink machine with adjustable feed inlet according to claim 9, characterized in that: It also comprises a control component (3), which is mounted on the outer wall of the casing (1), and the control component (3) is used to control the refrigeration component (5) and the drive component (6).