Ice slurry machine material bucket cover with anti-skid structure and ice slurry machine
Patent Information
- Application Number
- CN202521688059.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-08-08
AI Technical Summary
[0003]针对上述提到现有冰沙机所采用的料桶盖采用光面设计导致容易发生打滑、空转影响出冰效率和出冰质量的问题,本实用新型解决其技术问题采用的技术方案是:
本实用新型的盖体在接触冰块的一侧采用具有磨冰纹路的磨冰面,磨冰纹路能够采用凸起结构作为增大冰块摩擦的造型结构,也可以采用凹腔结构作为增大冰块摩擦的造型结构,也可以在磨冰面混合使用凸起结构和凹腔结构进一步增大与冰块、冰粒或者冰沙等冰状物之间的接触摩擦力,相较于传统的冰沙机料桶盖,能够降低冰块在加工时由于接触传统盖体其光滑的表面摩擦力不足导致发生打滑、空转等情况,提高碎冰效率,提高冰粒或者冰沙的形成效率,提高冰沙的形成质量。
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Figure CN224654618U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a slush machine material bucket cover, specifically a slush machine material bucket cover with an anti-slip structure and a slush machine. Background Technology
[0002] A smoothie machine is an electrical device used to crush ice, fruit, and other ingredients to make smoothies. Existing smoothie machines have an ice-crushing device consisting of a bucket structure and a bucket lid installed on the bucket structure. The bucket lid is installed inside the ice-crushing chamber of the bucket structure for making smoothies. After the ice is placed inside the ice-crushing chamber, the bucket lid is closed and the smoothie machine is started to make smoothies. However, the bucket lid of common machines generally uses a smooth surface design on the side that contacts the ice. When the ice, ice granules, or smoothies are hard, the contact friction between the lid and these ice-like materials is insufficient, causing these ice-like materials to slip and spin freely during the process, resulting in obstructed ice output and affecting the ice output efficiency and quality. Utility Model Content
[0003] Regarding the aforementioned problem that the smooth surface design of the material hopper lid in existing smoothie machines easily leads to slippage and idling, affecting ice dispensing efficiency and quality, the technical solution adopted by this utility model to solve this problem is: A slush machine hopper lid with an anti-slip structure includes a lid body suitable for a slush machine. The lid body includes a slush surface a for contacting ice cubes. The slush surface a has slush textures for assisting in increasing the frictional contact of the ice cubes. The slush textures on the slush surface a adopt a raised structure and / or a concave structure as a shape structure to increase the friction of the ice cubes.
[0004] As described above, in the ice slush machine bucket lid with an anti-slip structure, the slush texture can be a straight line or a curve as the length extension trajectory of the shape structure.
[0005] As described above, the ice slush machine bucket lid with an anti-slip structure has a slush texture that uses any one of the following cross-sectional shapes: semi-circular, rectangular, trapezoidal, or triangular.
[0006] As described above, in a slush machine bucket lid with an anti-slip structure, several of the slush textures are arranged at intervals along a straight or curved path from the center of the slush surface a outward.
[0007] As described above, in a slush machine material bucket cover with an anti-slip structure, several of the slush textures are arranged at intervals along the circumferential direction around the center of the slush surface a.
[0008] As described above, in a slush machine bucket lid with an anti-slip structure, several slush patterns are arranged around the center of the slush surface a along the circumferential direction with the same circumferential angle b, and are evenly spaced on the slush surface a.
[0009] As described above, the slush machine material bucket cover with an anti-slip structure is further provided with a sealing groove structure for installing a sealing ring. The sealing groove structure is connected end to end and surrounds the outer edge of the slush surface a, and the slush surface a is located within the enclosure of the sealing groove structure.
[0010] As described above, in the ice slush machine material bucket cover with an anti-slip structure, the slush surface a adopts a surface frosting structure with a granular structure or a toothed structure. The granular structure or toothed structure of the surface frosting structure is formed on the slush surface a in an uneven manner, and the maximum surface height of the surface frosting structure formed on the slush surface a is less than 1 mm.
[0011] A smoothie machine, including a lid for the smoothie machine's material hopper.
[0012] As described above, the ice blender includes an ice crushing device having a material tank structure and a stirring rod. The cover is installed on the material tank structure to form a sealed ice crushing chamber, and one end of the stirring rod is installed at the middle position of the ice grinding surface a. The slush machine also includes a hinged handle and a hinged sealing nozzle respectively installed on the cover. The cover is also provided with a through vent hole. The center of the vent hole is located on the slush surface a. The vent hole is provided with an ice-blocking grid for blocking ice blocks from passing through the slush. The hinged end of the hinged handle drives the hinged sealing nozzle to open or block the vent hole.
[0013] The beneficial effects of this utility model are as follows: The cover of this invention features a textured surface with a rubbing pattern on the side that contacts the ice. This rubbing pattern can be either raised or recessed to increase friction, or a combination of both can be used to further increase the contact friction with ice, ice particles, or slush. Compared to traditional slush machine lids, this design reduces slippage and spinning caused by insufficient friction on the smooth surface of traditional lids during processing, thus improving ice crushing efficiency, ice particle or slush formation efficiency, and the quality of slush. Attached Figure Description
[0014] Figure 1 This is a perspective view of the material bucket cover of the smoothie machine according to this utility model.
[0015] Figure 2This is a front view of the material bucket cover of the smoothie machine according to this utility model.
[0016] Figure 3 for Figure 2 AA section view.
[0017] Figure 4 for Figure 2 BB section view.
[0018] Figure 5 This is a perspective view of the material bucket cover of the slush machine and the slush machine of this utility model.
[0019] Figure 6 This is a diagram showing the material bucket cover of the smoothie machine and the internal structure of the smoothie machine according to this utility model.
[0020] Figure 7 This is an exploded perspective view of the material bucket cover and the smoothie machine of this utility model.
[0021] Figure 8 This is a schematic diagram of the shaved ice texture layout on the material bucket lid of the shaved ice machine of this utility model. Figure 1 .
[0022] Figure 9 This is a schematic diagram of the shaved ice texture layout on the lid of the shaved ice machine's feed hopper according to this utility model. Figure 2 .
[0023] Figure 10 This is a schematic diagram of the shaved ice texture layout on the lid of the shaved ice machine's feed hopper according to this utility model. Figure 3 .
[0024] Figure 11 This is a schematic diagram of the shaved ice texture layout on the lid of the shaved ice machine's feed hopper according to this utility model. Figure 4 .
[0025] Figure 12 This is a schematic diagram of the shaved ice texture layout on the lid of the shaved ice machine's feed hopper according to this utility model. Figure 5 .
[0026] Figure 13 This is a schematic diagram of the shaved ice texture layout on the lid of the shaved ice machine's feed hopper according to this utility model. Figure 6 .
[0027] Figure 14 This is a cross-sectional structural diagram (protruding structure) of the ice-grinding pattern on the slush machine bucket lid of this utility model.
[0028] Figure 15 This is a cross-sectional structural diagram (concave cavity structure) of the ice-grinding pattern on the slush machine hopper lid of this utility model. Detailed Implementation
[0029] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings. The described embodiments are merely some, not all, of the embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.
[0030] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.
[0031] Furthermore, the use of terms such as "first" and "second" in this utility model is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.
[0032] Example 1 This embodiment provides a slush machine bucket lid with an anti-slip structure.
[0033] like Figures 1 to 4The illustrated ice blender bucket cover with an anti-slip structure includes a cover body 1 suitable for the ice blender. The cover body 1 is used to cover the ice crushing device 4 inside the ice blender to form a sealed ice crushing chamber 43. The cover body 1 includes a rubbing surface a for contacting ice cubes. The rubbing surface a has rubbing texture 2 to help increase the friction contact of the ice cubes. The rubbing texture 2 can be a dotted texture or a striped texture as the specific texture structure. When the rubbing texture 2 adopts a raised structure on the rubbing surface a, the raised structure can adopt any of the following surface protrusion shapes that extend integrally from the rubbing surface a towards the outside: raised dots, raised blocks, raised textures, raised spikes, etc. Preferably, a raised texture structure is used as the surface protrusion shape of the rubbing texture 2 on the rubbing surface a. The maximum surface height of the raised rubbing texture 2 on the rubbing surface a is greater than 1 mm. During use, the raised ice-grinding texture 2 contacts the ice block moving in the ice-crushing chamber 43 inside the slush machine. The ice block contacts and abuts against the raised structure, effectively increasing the sliding friction of the ice block on the ice-grinding surface a, so that the ice block no longer slips easily. The surface of the raised structure can assist the ice-crushing device 4 in forming a squeezing effect on the ice block. Combined with the ice-crushing device 4 inside the slush machine, it performs operations such as pressure, stirring, and crushing to break the ice block into smaller ice particles or ice slush. Compared with the traditional ice-crushing machine lid, the lid of the slush machine with the ice-grinding texture 2 can reduce the slippage and idling of ice blocks caused by insufficient friction on the smooth surface of the traditional lid 1 during processing, thereby improving the ice crushing efficiency, the formation efficiency of ice particles or ice slush, and the formation quality of ice slush.
[0034] Furthermore, in some embodiments, such as Figures 8 to 10 As shown, the raised structure can be made up of protruding points located on the surface of the shaved ice surface a. Several protruding points are distributed on the surface of the shaved ice surface a in a regular or irregular manner. The regular distribution means that they are evenly distributed radially with the center of the shaved ice surface a as the reference, while the irregular distribution means that they are randomly distributed within the range of the shaved ice surface a. The multi-point arrangement of protruding points can effectively improve the sliding friction of the ice on the shaved ice surface a, so that the ice will not slip easily. Compared with the smooth surface of the traditional ice slush machine bucket lid, it can reduce the slippage and idling of ice due to insufficient contact friction during processing, improve the ice crushing efficiency, improve the formation efficiency of ice particles or ice slush, and improve the formation quality of ice slush.
[0035] Furthermore, in some embodiments, such as Figure 12As shown, the raised structure can be a protruding shape on the surface of the shaved ice surface a, with several protrusions distributed on the surface of the shaved ice surface a in a regular or irregular manner. The regular distribution means that the protrusions are evenly spaced radially outward from the center of the shaved ice surface a, while the irregular distribution means that the protrusions are randomly spaced within the range of the shaved ice surface a. The multi-point protrusion structure can effectively improve the sliding friction of the ice on the shaved ice surface a, so that the ice will not slip easily. Compared with the smooth surface of the traditional ice slush machine bucket lid, it can reduce the slippage and idling of the ice due to insufficient contact friction during processing, improve the ice crushing efficiency, improve the formation efficiency of ice particles or ice slush, and improve the formation quality of ice slush.
[0036] Furthermore, in some embodiments, such as Figure 10 , Figure 12 and Figure 13 As shown, the frost texture 2, which uses convex dots, bumps, or spikes as the surface protrusions, can be evenly distributed at intervals along a straight line or curve with the center of the frost surface a as the reference.
[0037] Furthermore, in some embodiments, such as Figure 2 and Figure 11 As shown, the shaved ice texture 2 can use a straight line or a curve as the length extension trajectory of the shape structure. The center line of the shaved ice texture 2 can extend in a straight line or in a curved direction. The shaved ice texture 2 preferably uses an "S"-shaped curve as the length extension trajectory of the shape structure. The shaved ice texture 2 extending in a straight line or in a curved direction can effectively increase the sliding friction of the ice block on the shaved ice surface a, so that the ice block will no longer slip easily.
[0038] Furthermore, in some embodiments, such as Figures 14 to 15 As shown, the cross-sectional shape of the shaved ice texture 2 can be any cross-sectional contour shape such as semi-circle, rectangle, trapezoid, or triangle. The cross-section is perpendicular to the shaved ice surface a and crosses the shaved ice texture 2, which effectively increases the sliding friction of the ice on the shaved ice surface a, so that the ice will no longer slip easily. The shaved ice texture 2 is preferably semi-circular as the cross-sectional shape, which forms a smooth rounded corner surface structure, which can improve the durability and wear resistance of the shaved ice texture 2, and can also improve the resistance of the shaved ice texture 2 to the pressure of the ice, so that it will not easily deform or crack.
[0039] Furthermore, in some embodiments, such as Figures 14 to 15 As shown, cross-sectional contours with obvious corners, such as rectangles, trapezoids, and triangles, can be treated with rounded corners or arc transitions at their corners, thus forming a raised structure with rounded corners or arc transitions on the surface.
[0040] Furthermore, in some embodiments, such as Figure 2 and Figure 11 As shown, several shaving patterns 2 are arranged at intervals around the central circumference of the shaving surface a. Preferably, the several shaving patterns 2 are evenly spaced on the shaving surface a with the same circumferential angle b, forming an aesthetically pleasing and regular pattern structure. This effectively improves the sliding friction of the ice cube on the shaving surface a, making the ice cube less prone to slipping. The angle b can be controlled to be less than or equal to 40 degrees. Preferably, the angle b is 20 degrees, 25 degrees, or 30 degrees. If the angle b is too large, the interval between adjacent patterns will be too large, and the effect of enhancing friction will not be obvious. If the angle b is too small, the interval between adjacent patterns will be too small, and the friction generated will be insufficient, causing the ice cube to slip and spin easily.
[0041] Furthermore, in some embodiments, such as Figures 1 to 4 As shown, the cover 1 is also provided with a sealing groove structure 3 for installing the sealing ring. The sealing groove structure 3 is connected end to end and surrounds the outer edge of the ice grinding surface a. The ice grinding surface a is located within the enclosure of the sealing groove structure 3. The user can install the sealing ring on the sealing groove structure 3 and then cover the material bucket cover on the ice crushing device 4 inside the ice slush machine to form a sealed ice crushing chamber 43, further improving the sealing effect after installation.
[0042] Example 2 This embodiment provides a slush machine bucket lid with an anti-slip structure.
[0043] like Figures 1 to 4 The ice blender bucket cover with an anti-slip structure shown differs from Embodiment 1 in that the ice-grinding pattern 2 on the ice-grinding surface a can also adopt a concave cavity structure. When the ice-grinding pattern 2 adopts a concave cavity structure, the concave cavity structure can be any surface recessed shape formed from the ice-grinding surface a towards the inward side, such as a concave point, pit, groove, or hole. Preferably, a groove is used as the surface recessed shape of the ice-grinding pattern 2 on the ice-grinding surface a. The maximum surface height of the ice-grinding pattern 2 on the ice-grinding surface a is greater than 1 mm. During use, the recessed ice-grinding pattern 2 contacts the ice blocks moving in the ice crushing chamber 43 inside the ice blender, and the ice blocks contact and abut against the concave cavity structure effectively. The increased sliding friction of ice on the shaving surface a prevents ice from slipping easily. The concave cavity structure helps the ice crushing device 4 to restrict the contact position of the ice. Combined with the internal ice crushing device 4 of the slush machine, pressure, stirring, and crushing operations are performed to break the ice into smaller ice particles or slush. Compared with the traditional slush machine hopper lid, the slush machine hopper lid with the shaving texture 2 can reduce the slippage and idling caused by insufficient friction of the smooth surface of the traditional lid 1 during processing, thereby improving the ice crushing efficiency, the formation efficiency of ice particles or slush, and the quality of slush.
[0044] Furthermore, in some embodiments, such as Figures 8 to 10 As shown, the concave cavity structure can be formed by concave points located on the surface of the shaved ice surface a. Several concave points are discretely distributed on the surface of the shaved ice surface a in a regular or irregular manner. The regular distribution means that the concave points are evenly distributed radially with the center of the shaved ice surface a as the reference, while the irregular distribution means that the concave points are randomly distributed within the range of the shaved ice surface a. The multi-point concave point structure can effectively improve the sliding friction of the ice block on the shaved ice surface a, so that the ice block will not slip easily. Compared with the smooth surface of the traditional ice slush machine bucket lid, it can reduce the slippage and idling of the ice block due to insufficient contact friction during processing, improve the ice crushing efficiency, improve the formation efficiency of ice particles or ice slush, and improve the formation quality of ice slush.
[0045] Furthermore, in some embodiments, such as Figure 12 As shown, the concave structure can be a recessed shape located on the surface of the shaved ice surface a. Several concaves are discretely distributed on the surface of the shaved ice surface a in a regular or irregular manner. The regular distribution means that they are evenly distributed radially with the center of the shaved ice surface a as the reference, while the irregular distribution means that they are randomly distributed within the range of the shaved ice surface a. The multi-point concave structure can effectively improve the sliding friction of the ice on the shaved ice surface a, so that the ice will no longer slip easily. Compared with the smooth surface of the traditional ice slush machine bucket lid, it can reduce the slippage and idling of ice due to insufficient contact friction during processing, improve the ice crushing efficiency, improve the formation efficiency of ice particles or ice slush, and improve the formation quality of ice slush.
[0046] Furthermore, in some embodiments, such as Figure 10 , Figure 12 and Figure 13 As shown, the frost texture 2, which uses concave dots, pits, or holes as the surface recessed shape, can be evenly distributed at intervals along a straight line or curve with the center of the frost surface a as the reference.
[0047] Example 3 This embodiment provides a slush machine bucket lid with an anti-slip structure.
[0048] This embodiment shows a slush machine bucket cover with an anti-slip structure. The slush texture 2 on the slush surface a can also use a combination of raised and recessed structures, forming a plurality of raised and recessed structures on the slush surface a. Preferably, they are arranged in an alternating ABAB pattern around the center of the slush surface a, spaced apart from each other, to further increase the friction generated by contact with the ice, thereby improving the ice output efficiency and quality.
[0049] Example 4 This embodiment provides a slush machine bucket lid with an anti-slip structure.
[0050] This embodiment illustrates a slush machine bucket lid with an anti-slip structure. The ice-grinding surface a of the lid 1 adopts a surface frosted structure with a granular or serrated structure. The granular or serrated structure of the surface frosted structure is formed on the ice-grinding surface a in an uneven manner. The maximum surface height of the surface frosted structure formed on the ice-grinding surface a (in a raised or recessed manner) is less than 1 mm. The surface frosted structure further enhances the surface friction coefficient of the ice-grinding surface a, effectively increasing the sliding friction of the ice cubes on the ice-grinding surface a, so that the ice cubes no longer easily slip. Compared with the smooth surface of traditional slush machine bucket lids, its smooth surface can reduce the slippage and idling of ice cubes due to insufficient contact friction during processing, improve ice crushing efficiency, improve the formation efficiency of ice particles or slush, and improve the formation quality of slush.
[0051] Example 5 This embodiment provides a smoothie machine, which includes the smoothie machine bucket cover shown in the embodiment.
[0052] like Figures 5 to 7 The image shows a slush machine, which includes an ice crushing device 4. The cover 1 of the slush machine's hopper is installed on the ice crushing device 4 to form a sealed ice crushing chamber 43. One end of the stirring rod 42 of the ice crushing device 4 is installed in the middle of the ice grinding surface a. When the slush machine is started, the stirring rod 42 stirs the ice blocks inside the ice crushing chamber 43 and crushes them. The ice blocks are pressed and pressed against the ice grinding texture 2, which effectively increases the sliding friction of the ice blocks on the ice grinding surface a, so that the ice blocks no longer slip easily. This reduces the slippage and free-spinning of ice blocks caused by insufficient friction on the smooth surface of the traditional cover 1 during processing, thereby improving the ice crushing efficiency, the formation efficiency of ice particles or slush, and the quality of slush.
[0053] Furthermore, in some embodiments, the slush machine also includes a hinged handle 5 and a hinged sealing nozzle 6 respectively mounted on the cover 1. The cover 1 is also provided with a through vent 7. The center of the vent 7 is located on the slush surface a. The vent 7 is provided with an ice-blocking grid 8 for blocking ice blocks from passing through the slush. The hinged end of the hinged handle 5 drives the hinged sealing nozzle 6 to open or block the vent 7.
[0054] The above examples are merely illustrative of the technical content of this utility model to facilitate reader understanding, but do not imply that the implementation of this utility model is limited to these embodiments. Any technical extensions or re-creations made based on this utility model are protected by this utility model. The scope of protection of this utility model is defined by the claims.
Claims
1. A slush machine hopper cover with an anti-slip structure, comprising a cover body (1) suitable for a slush machine, characterized in that: The cover (1) includes a frosted surface a for contacting ice, the frosted surface a having frosted texture (2) for assisting in increasing the frictional contact of the ice, the frosted texture (2) on the frosted surface a using a raised structure and / or a concave structure as a shape structure for increasing the friction of the ice.
2. The ice smoothie machine material bucket lid with an anti-slip structure as described in claim 1, characterized in that: The frosted texture (2) can be a straight line or a curve as the length extension trajectory of the shape structure.
3. The ice smoothie machine bucket lid with an anti-slip structure as described in claim 1, characterized in that: The frost pattern (2) adopts any one of the following cross-sectional shapes: semi-circle, rectangle, trapezoid or triangle.
4. The slush machine bucket lid with an anti-slip structure as described in claim 1, characterized in that: Several of the aforementioned frost patterns (2) are arranged at intervals along a straight line or curve from the center of the frost surface a outward.
5. The slush machine bucket lid with an anti-slip structure as described in claim 1, characterized in that: Several of the aforementioned frost patterns (2) are arranged at intervals around the center of the frost surface a along the circumferential direction.
6. The slush machine bucket lid with an anti-slip structure as described in claim 5, characterized in that: Several of the aforementioned frost patterns (2) are arranged around the center of the frost surface a along the circumferential direction with the same circumferential angle b, and are evenly spaced on the frost surface a.
7. The ice smoothie machine hopper lid with an anti-slip structure as described in claim 1, characterized in that: The cover (1) is also provided with a sealing groove structure (3) for installing a sealing ring. The sealing groove structure (3) is connected end to end and surrounds the outer edge of the frost surface a. The frost surface a is located within the enclosure of the sealing groove structure (3).
8. The slush machine bucket lid with an anti-slip structure as described in claim 1, characterized in that: The frosted ice surface a adopts a surface frosting structure with a granular structure or a toothed structure. The granular structure or toothed structure of the surface frosting is formed on the frosted ice surface a in an uneven manner. The maximum surface height of the surface frosting structure formed on the frosted ice surface a is less than 1 mm.
9. A smoothie machine, characterized in that: Includes the slush machine hopper lid as described in any one of claims 1-8.
10. A smoothie machine as described in claim 9, characterized in that: The slush machine includes an ice crushing device (4) having a material bucket structure (41) and a stirring rod (42). The cover (1) is installed on the material bucket structure (41) to form a closed ice crushing chamber (43). One end of the stirring rod (42) is installed at the middle position of the ice grinding surface a. The slush machine also includes a hinged handle (5) and a hinged sealing nozzle (6) respectively installed on the cover (1). The cover (1) is also provided with a through vent (7). The center of the vent (7) is located on the slush surface a. The vent (7) is provided with an ice-blocking grid (8) for blocking ice blocks from passing through the slush. The hinged end of the hinged handle (5) drives the hinged sealing nozzle (6) to open or block the vent (7).