Whipping cavity structure and food processor
By designing the mixing chamber structure, including the interconnected design of the mixing blade assembly and the mixing cover, multiple suction ports and overflow ports, baffle ribs and modular components, the problems of low mixing efficiency and high noise in food processors have been solved, achieving a high-efficiency, stable and low-noise mixing effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2026-03-10
AI Technical Summary
Existing food processors suffer from low blending efficiency and high noise levels, especially when processing foods that require fine blending, which negatively impacts the user experience.
Design a stirring chamber structure including a stirring blade assembly and a stirring cover. The stirring cover is placed outside the stirring blade, and the cover cavity is connected to the receiving cavity. Multiple suction ports and overflow ports are designed. Baffles are used to increase turbulence. The motor and stirring blade assembly are compactly arranged. Fan cooling is used. Modular components facilitate maintenance.
It improves mixing efficiency and reduces noise, ensures uniform mixing of materials, improves food processing efficiency and quality, reduces noise transmission, and enhances the stability and convenience of the equipment.
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Figure CN223979722U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to food processing machine technical field, in particular to a kind of whipping cavity structure and food processing machine. BACKGROUND
[0002] With the improvement of living standards and the development of science and technology, household appliances have become an indispensable part of people's daily life. Among them, food processing machine as a kind of household appliance that can simplify food processing process and improve life efficiency, has been welcomed by consumers. However, the existing food processing machine still has the problems of low whipping efficiency and high use noise in actual use. The problem of low whipping efficiency mainly shows that the stirring blade of the food processing machine cannot fully contact with the food, or cannot effectively break and refine the food when processing food. This leads to the food processing machine needs to spend a long time when processing some food that needs fine whipping, such as making soy milk, or cannot achieve the ideal whipping effect. On the other hand, the problem of high use noise is also an important challenge faced by food processing machine. In the operation process, the high-speed rotation of the motor and stirring blade of the food processing machine will produce a lot of noise, which not only affects the user's experience, but also may cause certain interference to the home environment. SUMMARY
[0003] Therefore, it is necessary to provide a whipping cavity structure and food processing machine to solve the problems of low whipping efficiency and high use noise of food processing machine.
[0004] A kind of whipping cavity structure, comprising: rack assembly;Hot pot assembly, the hot pot assembly is arranged on the rack assembly, the hot pot assembly is equipped with containing cavity;Stirring knife assembly, the stirring knife assembly is arranged on the rack assembly, part of the stirring knife assembly extends into the containing cavity;Stirring cover, the stirring cover is arranged on the rack assembly and / or the hot pot assembly, at least part of the stirring cover is located in the containing cavity, the stirring cover is equipped with cover cavity, the part of the stirring knife assembly extending into the containing cavity is located in the cover cavity, the cover cavity is communicated with the containing cavity.
[0005] The first aspect of the present application discloses a whipping cavity structure, through part of the stirring knife assembly extending into the containing cavity to whip the food in the containing cavity, the stirring cover is arranged outside the stirring knife assembly, so that the stirring knife assembly is enclosed in the whipping cavity composed of the containing cavity and the cover cavity during the whipping process. This structure makes the stirring process more concentrated and continuous, thereby improving the whipping efficiency. The cover cavity of the stirring cover is in communication with the containing cavity of the hot pot assembly, ensuring that the material can smoothly transfer between the containing cavity and the cover cavity during the whipping process, further promoting the improvement of the whipping efficiency and improving the processing efficiency of the food. In addition, the stirring cover covers the stirring knife assembly, which can effectively isolate part of the noise generated by the rotation of the stirring knife and the whipping, reducing the propagation of noise.
[0006] In one embodiment, the stirring cover includes a mounting portion, a connecting rod and a stirring cover body, the mounting portion is detachably arranged on the rack assembly, one end of the connecting rod is arranged on the mounting portion, the stirring cover body is arranged on the connecting rod, the stirring cover body is located at the end of the connecting rod away from the mounting portion, the connecting rod and the stirring cover body extend into the containing cavity, and the stirring cover body is provided with the cover cavity. By detachably arranging the mounting portion on the rack assembly, the modularity and maintenance convenience of the equipment are improved, and the overall installation of the stirring cover is facilitated. One end of the connecting rod is arranged on the mounting portion, the other end extends into the containing cavity, and the stirring cover body is arranged on the connecting rod. The connecting rod plays a role in positioning and supporting the stirring cover body, avoiding displacement of the stirring cover body during the whipping process, and thereby affecting the whipping efficiency and processing effect. The stirring cover body is provided with the cover cavity to cover the part of the stirring knife assembly extending into the containing cavity, which can effectively contain and guide the whipping material, ensuring the uniformity and efficiency of the material during the whipping process. At the same time, due to the design of the stirring cover body, the entire whipping process is more stable, and the noise generated during the whipping process is reduced.
[0007] In one embodiment, the cover cavity is provided with a plurality of suction inlets and a plurality of overflow outlets. The plurality of suction inlets are arranged at intervals on the circumference of the mixing cover body, and the plurality of overflow outlets are arranged at intervals on the mixing cover body, located on the side of the mixing cover body away from the bottom wall of the containing cavity. The plurality of overflow outlets are arranged opposite to the part of the mixing blade assembly extending into the containing cavity. The liquid is formed into a vortex during the operation of the mixing blade assembly, and at this time the material in the containing cavity is sucked into the cover cavity from the plurality of suction inlets, so that the mixing blade assembly continuously stirs the material. The design of the plurality of suction inlets allows the cover cavity to suck in material from multiple directions at the same time, which can more evenly and quickly stir the material, improving the overall stirring efficiency. During the whipping process, the material settles at the bottom of the cover cavity due to gravity, and the treated liquid mixture is overflowed from the plurality of overflow outlets above the mixing cover body. Therefore, the design of the plurality of suction inlets and the plurality of overflow outlets can increase the flowability of the liquid, thereby improving the stirring efficiency. In addition, the design of the plurality of suction inlets and the plurality of overflow outlets makes it easier to clean and maintain the mixing cover body, as it is easier to access all parts of the mixing cover.
[0008] In one embodiment, the mixing cover body is provided with a plurality of turbulence ribs arranged at intervals on the inner wall of the cover cavity. By arranging a plurality of turbulence ribs at intervals on the inner wall of the cover cavity, the turbulence of the fluid during the stirring process can be increased, thereby improving the stirring efficiency and uniformity. The design of the turbulence ribs helps to break the large-scale flow structure in the fluid, allowing the fluid in different regions to mix more fully and reducing the stirring dead angle.
[0009] In one embodiment, the end of the mixing cover body away from the connecting rod is in contact with the bottom wall of the containing cavity. By contacting the end of the mixing cover body with the bottom wall of the containing cavity, the structural stability of the entire stirring cavity can be enhanced, reducing the risk of displacement of the mixing cover body due to vibration or impact during stirring.
[0010] In one embodiment, one end of the mixing cover is detachably arranged on the rack assembly, and the end of the mixing cover away from the rack assembly extends into the containing cavity. The detachable design of the mixing cover and the rack assembly facilitates the cleaning and maintenance of the mixing blade assembly and the mixing cover. At the same time, the position of the mixing cover can be adjusted or different shapes of the mixing cover can be replaced as needed to adapt to the whipping needs of different materials, further optimizing the stirring effect.
[0011] In one of the embodiments, the hot pot assembly comprises a hot pot body and a heating element, the hot pot body is arranged on the rack assembly, the hot pot body is provided with the containing cavity, and the heating element is arranged on the hot pot body and located on the outer wall of the containing cavity. By arranging the heating element on the outer wall of the hot pot body, more efficient heat conduction can be achieved, because the heating element is in direct contact with the outer wall of the containing cavity, heat loss can be reduced, and heating efficiency can be improved. Arranging the heating element on the hot pot body can save internal space and make the overall structure of the whipping cavity more compact.
[0012] In one of the embodiments, the hot pot body is provided with a heating element accommodating groove, the heating element is matched with the heating element accommodating groove, and the heating element accommodating groove is located at the bottom of the containing cavity and / or the heating element accommodating groove is located on the circumference of the containing cavity. By matching the heating element with the heating element accommodating groove, the layout of the whipping cavity structure is optimized, and the space utilization is improved. At the same time, the heating element is embedded in the heating element accommodating groove, which can reduce damage caused by vibration or impact and improve the structural stability of the whole whipping cavity structure. The heating element accommodating groove is located at the bottom of the containing cavity or on the circumference of the containing cavity, so that the heating element is located at the bottom of the containing cavity or on the circumference of the containing cavity. Such layout helps to distribute heat more evenly and improve heating efficiency.
[0013] In one of the embodiments, the stirring blade assembly comprises a motor, a connecting piece and a stirring blade assembly, the rack assembly is provided with a mounting cavity, the motor is arranged on the rack assembly and located in the mounting cavity, one end of the connecting piece is connected with the motor, the other end of the connecting piece away from the motor is connected with the stirring blade assembly, and part of the connecting piece and the stirring blade assembly extend into the containing cavity. By arranging the motor on the rack assembly and in the mounting cavity, the compact design of the device is realized. One end of the connecting piece is connected with the motor, and the other end is connected with the stirring blade assembly. This design ensures efficient transmission of power from the motor to the stirring blade assembly and improves stirring efficiency. The stirring blade assembly is located in the containing cavity to whip the material.
[0014] In one of the embodiments, a fan is further included, the rack assembly is provided with a heat dissipation hole, the heat dissipation hole is communicated with the installation cavity, the fan is arranged on the motor, the fan is located at the end of the motor away from the connecting piece, and the fan is arranged opposite to the heat dissipation hole. By arranging the heat dissipation hole on the rack assembly and communicating with the installation cavity, the heat generated by the motor can be effectively discharged, so as to reduce the working temperature of the motor and improve the stability and service life of the motor. The fan is arranged on the motor and located at the end of the motor away from the connecting piece, so that the motor drives the fan when driving the stirring blade assembly, the fan directly cools the motor, and the heat dissipation efficiency is improved. The fan is arranged opposite to the heat dissipation hole, and the heat dissipation efficiency of the motor is further improved.
[0015] In one of the embodiments, the rack assembly includes an outer shell, a rack body and an upper cover assembly, the outer shell is provided with an installation cavity and an installation opening, the installation cavity is communicated with the installation opening, the rack body is arranged on the outer shell and located in the installation cavity, the hot pot assembly is arranged on the outer shell and the rack body, one end of the hot pot assembly away from the rack body is arranged at the installation opening, the upper cover assembly is detachably arranged on the hot pot assembly and the outer shell, part of the upper cover assembly extends into the containing cavity, and the stirring cover is detachably arranged on the upper cover assembly and located on the side of the upper cover assembly facing the containing cavity. By dividing the rack assembly into the outer shell, the rack body and the upper cover assembly, the modular design can be realized, and the installation and maintenance of the components are facilitated. The upper cover assembly and the stirring cover are designed to be detachable, so that the whole structure is easy to assemble and disassemble, and the user can clean and maintain the inside of the containing cavity. The upper cover assembly is detachably arranged on the hot pot assembly and the outer shell, and part of the upper cover assembly extends into the containing cavity to form a barrier, so as to prevent the material from splashing and polluting the use space during the whipping process.
[0016] In one of the embodiments, the upper cover assembly includes a connecting part, a barrier plate and a gripping part, the connecting part is detachably arranged on the hot pot assembly and the outer shell, the barrier plate is arranged on the connecting part, one end of the barrier plate away from the connecting part extends into the containing cavity, and the gripping part is arranged on the connecting part and located on the side of the connecting part away from the barrier plate. The barrier plate extends into the containing cavity, which helps to prevent liquid from splashing out, avoids the user from being scalded, and avoids the liquid from splashing and polluting the use space. The design of the gripping part enables the user to conveniently grasp and operate the upper cover assembly, reduces the risk of the user being scalded, and improves the convenience and safety during use. The connecting part is designed to be detachable, so that the cleaning and maintenance of the inside of the containing cavity are more convenient.
[0017] A food processor comprises the whipping cavity structure as described above; and a control assembly arranged on the whipping cavity structure.
[0018] The second aspect of the present application discloses a food processor. The food processor can realize efficient whipping function by arranging the whipping cavity structure. The structure design of the whipping cavity structure can make food materials more uniformly mixed during the whipping process, improve the taste and quality of food, and improve the whipping efficiency. The control assembly is arranged to control the function of the whipping cavity structure, so that the operation of the food processor is more convenient. In addition, the control panel is integrated outside the whipping cavity structure, and the control panel is connected with the control assembly. Users can easily control the working state of the food processor through the control panel, realize one-key operation, and simplify the operation process. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 is a sectional view of the whipping cavity structure;
[0020] Figure 2 is a sectional view of the mixing cover and the hot pot body;
[0021] Figure 3 is a structural schematic view of the mixing cover and the upper cover assembly;
[0022] Figure 4 is a perspective view of the mixing cover;
[0023] Figure 5 is a sectional view of the mixing cover;
[0024] Figure 6 is a sectional view of the hot pot body and the rack assembly;
[0025] Figure 7 is an exploded view of the hot pot assembly;
[0026] Figure 8 is a perspective view of the mixing blade assembly and the rack body;
[0027] Figure 9 is a perspective view of the food processor.
[0028] Correspondence between the reference signs and the component names is as follows:
[0029] 1 rack assembly, 11 outer shell, 12 rack body, 13 upper cover assembly, 131 connecting part, 132 blocking plate, 133 gripping part, 101 mounting cavity, 102 mounting port, 103 heat dissipation hole;
[0030] 2 hot pot assembly, 21 hot pot body, 22 heating element, 201 containing cavity, 202 heating element containing groove;
[0031] 3. Stirring blade assembly; 31. Motor; 32. Connector; 33. Stirring blade assembly;
[0032] 4. Stirring hood, 41. Mounting part, 42. Connecting rod, 43. Stirring hood body, 431. Baffle rib, 401. Cover cavity, 402. Suction port, 403. Overflow port;
[0033] 5 fans. Detailed Implementation
[0034] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0035] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and therefore the scope of protection of the invention is not limited to the specific embodiments disclosed below.
[0036] The following describes the mixing chamber structure and food processing machine of some embodiments of the present invention with reference to the accompanying drawings.
[0037] Example 1, such as Figures 1 to 9 As shown, this embodiment discloses a mixing chamber structure, including: a frame assembly 1; a hot pot assembly 2, which is disposed on the frame assembly 1 and has a receiving cavity 201; a stirring blade assembly 3, which is disposed on the frame assembly 1 and a portion of the stirring blade assembly 3 extends into the receiving cavity 201; and a stirring cover 4, which is disposed on the frame assembly 1 and / or the hot pot assembly 2, at least a portion of the stirring cover 4 is located within the receiving cavity 201, the stirring cover 4 has a cover cavity 401, the portion of the stirring blade assembly 3 extending into the receiving cavity 201 is located within the cover cavity 401, and the cover cavity 401 communicates with the receiving cavity 201.
[0038] The first aspect of this application discloses a mixing chamber structure. A portion of the mixing blade assembly 3 extends into the receiving cavity 201 to mix the food within the receiving cavity 201. A mixing cover 4 is positioned to enclose the mixing blade assembly 3 within the mixing chamber, which consists of the receiving cavity 201 and the cover cavity 401, during the mixing process. This structure makes the mixing process more concentrated and continuous, thereby improving mixing efficiency. The cover cavity 401 of the mixing cover 4 communicates with the receiving cavity 201 of the hot pot assembly 2, ensuring smooth transfer of materials between the receiving cavity 201 and the cover cavity 401 during mixing, further promoting improved mixing efficiency and increasing food processing efficiency. Furthermore, the mixing cover 4, covering the mixing blade assembly 3, effectively isolates some of the noise generated by the rotation and mixing of the blades, reducing noise propagation.
[0039] like Figure 3 and Figure 4 As shown, in addition to the features of the above embodiments, this embodiment further defines: the stirring hood 4 includes a mounting part 41, a connecting rod 42, and a stirring hood body 43. The mounting part 41 is detachably mounted on the frame assembly 1. One end of the connecting rod 42 is mounted on the mounting part 41, and the stirring hood body 43 is mounted on the connecting rod 42. The stirring hood body 43 is located at the end of the connecting rod 42 away from the mounting part 41. The connecting rod 42 and the stirring hood body 43 extend into the receiving cavity 201, and the stirring hood body 43 has a hood cavity 401. By detachably mounting the mounting part 41 on the frame assembly 1, the modularity and maintenance convenience of the equipment are improved, making the overall installation of the stirring hood 4 convenient. One end of the connecting rod 42 is mounted on the mounting part 41, and the other end extends into the receiving cavity 201. The stirring hood body 43 is mounted on the connecting rod 42, and the connecting rod 42 plays a role in positioning and supporting the stirring hood body 43, preventing the stirring hood body 43 from shifting during the stirring process, thereby affecting the stirring efficiency and processing effect. The mixing cover body 43 has a cover cavity 401 to cover the portion of the mixing blade assembly 3 extending into the receiving cavity 201, which can effectively contain and guide the materials to be mixed, ensuring the uniformity and efficiency of the materials during the mixing process. At the same time, due to the design of the mixing cover body 43, the entire mixing process is more stable and the noise generated during the mixing process is reduced.
[0040] like Figure 2 , Figure 4 and Figure 5As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the cavity 401 is provided with multiple suction ports 402 and multiple overflow ports 403. The multiple suction ports 402 are spaced apart on the circumference of the stirring shroud body 43, and the multiple overflow ports 403 are spaced apart on the stirring shroud body 43. The multiple overflow ports 403 are located on the side of the stirring shroud body 43 away from the bottom wall of the receiving cavity 201, and the multiple overflow ports 403 are opposite to the portion of the stirring blade assembly 3 extending into the receiving cavity 201. During operation, the stirring blade assembly 3 creates a vortex in the liquid, at which time the material in the receiving cavity 201 is drawn into the cavity 401 from the multiple suction ports 402, thereby continuously agitating the material with the stirring blade assembly 3. The design of multiple suction ports 402 allows the cavity 401 to simultaneously draw in material from multiple directions, which can achieve more uniform and faster agitation and improve the overall agitation efficiency. During the mixing process, the material settles to the bottom of the chamber 401 due to gravity, while the resulting liquid mixture overflows from multiple overflow ports 403 above the mixing chamber body 43. Therefore, the design of multiple suction ports 402 and multiple overflow ports 403 increases the fluidity of the liquid, thereby improving mixing efficiency. Furthermore, the design of multiple suction ports 402 and multiple overflow ports 403 makes cleaning and maintenance of the mixing chamber body 43 easier, as it allows for easier access to all parts inside the mixing chamber.
[0041] like Figure 5 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the stirring shroud body 43 is provided with a plurality of turbulence ribs 431, which are spaced apart on the inner wall of the shroud cavity 401. By spaced apart on the inner wall of the shroud cavity 401, the turbulence of the fluid during the stirring process can be increased, thereby improving the stirring efficiency and uniformity. The design of the turbulence ribs 431 helps to break the large-scale flow structure in the fluid, allowing the fluid in different areas to be mixed more fully and reducing stirring dead zones.
[0042] like Figure 2 and Figure 4 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the end of the stirring cover body 43 away from the connecting rod 42 abuts against the bottom wall of the receiving cavity 201. By abutting one end of the stirring cover body 43 against the bottom wall of the receiving cavity 201, the structural stability of the entire stirring cavity can be enhanced, and the risk of displacement of the stirring cover body 43 due to vibration or impact during the stirring process can be reduced.
[0043] like Figure 3As shown, in addition to the features of the above embodiments, this embodiment further specifies that: one end of the stirring cover 4 is detachably mounted on the frame assembly 1, and the end of the stirring cover 4 away from the frame assembly 1 extends into the receiving cavity 201. The detachable design of the stirring cover 4 from the frame assembly 1 facilitates cleaning and maintenance of the stirring blade assembly 3 and the stirring cover 4. Simultaneously, the position of the stirring cover 4 can be adjusted or different shapes of stirring covers 4 can be replaced as needed to adapt to the mixing requirements of different materials, further optimizing the mixing effect.
[0044] like Figure 1 and Figure 7 As shown, in addition to the features of the above embodiments, this embodiment further defines: the hot pot assembly 2 includes a hot pot body 21 and a heating element 22. The hot pot body 21 is mounted on the frame assembly 1 and has a receiving cavity 201. The heating element 22 is mounted on the hot pot body 21 and located on the outer wall of the receiving cavity 201. By mounting the heating element 22 on the outer wall of the hot pot body 21, more efficient heat conduction can be achieved because the heating element 22 is in direct contact with the outer wall of the receiving cavity 201, which reduces heat loss and improves heating efficiency. Mounting the heating element 22 on the hot pot body 21 saves internal space and makes the overall structure of the stirring chamber more compact.
[0045] like Figure 2 , Figure 3 and Figure 7 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the hot pot body 21 is provided with a heating element receiving groove 202, the heating element 22 is adapted to the heating element receiving groove 202, and the heating element receiving groove 202 is located at the bottom of the receiving cavity 201 and / or the heating element receiving groove 202 is located in the circumferential direction of the receiving cavity 201. By adapting the heating element 22 to the heating element receiving groove 202, the layout of the stirring cavity structure is optimized, improving space utilization. Simultaneously, the heating element 22 being embedded in the heating element receiving groove 202 can reduce damage caused by vibration or impact, improving the structural stability of the entire stirring cavity structure. The heating element receiving groove 202 being located at the bottom or circumferential direction of the receiving cavity 201, such as the heating element 22 being located at the bottom or circumferential direction of the receiving cavity 201, helps to distribute heat more evenly and improve heating efficiency.
[0046] like Figure 1 , Figure 6 and Figure 8As shown, in addition to the features of the above embodiments, this embodiment further defines: the stirring blade assembly 3 includes a motor 31, a connector 32, and a stirring blade assembly 33. The frame assembly 1 has a mounting cavity 101. The motor 31 is mounted on the frame assembly 1 and located within the mounting cavity 101. One end of the connector 32 is connected to the motor 31, and the end of the connector 32 away from the motor 31 is connected to the stirring blade assembly 33. A portion of the connector 32 and the stirring blade assembly 33 extend into the receiving cavity 201. By mounting the motor 31 on the frame assembly 1 and within the mounting cavity 101, a compact design of the equipment is achieved. One end of the connector 32 is connected to the motor 31, and the other end is connected to the stirring blade assembly 33. This design ensures efficient power transmission from the motor 31 to the stirring blade assembly 33, improving stirring efficiency. The stirring blade assembly 33 is located within the receiving cavity 201 to agitate materials.
[0047] like Figure 1 , Figure 6 and Figure 8 As shown, in addition to the features of the above embodiments, this embodiment further includes a fan 5. The frame assembly 1 is provided with heat dissipation holes 103, which communicate with the mounting cavity 101. The fan 5 is mounted on the motor 31 and located at the end of the motor 31 away from the connector 32. The fan 5 is positioned opposite to the heat dissipation holes 103. By providing heat dissipation holes 103 on the frame assembly 1 and communicating with the mounting cavity 101, the heat generated by the motor 31 can be effectively dissipated, thereby reducing the operating temperature of the motor 31 and improving its stability and service life. The fan 5 is mounted on the motor 31 and located at the end of the motor away from the connector 32. This layout allows the motor 31 to drive the fan 5 while driving the stirring blade assembly 33, enabling the fan 5 to directly cool the motor 31 and improve heat dissipation efficiency. Furthermore, the design of the fan 5 being positioned opposite to the heat dissipation holes 103 further improves the heat dissipation efficiency of the motor 31.
[0048] like Figure 1 and Figure 6As shown, in addition to the features of the above embodiments, this embodiment further defines: the frame assembly 1 includes an outer shell 11, a frame body 12, and a top cover assembly 13. The outer shell 11 has a mounting cavity 101 and a mounting opening 102, which communicate with each other. The frame body 12 is disposed on the outer shell 11 and located within the mounting cavity 101. The hot pot assembly 2 is disposed on the outer shell 11 and the frame body 12, with one end of the hot pot assembly 2 away from the frame body 12 resting at the mounting opening 102. The top cover assembly 13 is detachably disposed on the hot pot assembly 2 and the outer shell 11, with a portion of the top cover assembly 13 extending into the receiving cavity 201. The stirring hood 4 is detachably disposed on the top cover assembly 13, with the stirring hood 4 located on the side of the top cover assembly 13 facing the receiving cavity 201. By dividing the frame assembly 1 into the outer shell 11, the frame body 12, and the top cover assembly 13, a modular design can be achieved, facilitating the installation and maintenance of the components. The detachable design of both the top cover assembly 13 and the stirring cover 4 makes the entire structure easy to assemble and disassemble, facilitating cleaning and maintenance of the interior of the receiving cavity 201. The top cover assembly 13 is detachably mounted on the hot pot assembly 2 and the outer shell 11, and part of the top cover assembly 13 extends into the receiving cavity 201 to form a partition, which can prevent material from splashing during the stirring process and contaminating the working space.
[0049] like Figure 1 and Figure 3 As shown, in addition to the features of the above embodiments, this embodiment further defines: the top cover assembly 13 includes a connecting portion 131, a baffle plate 132, and a gripping portion 133. The connecting portion 131 is detachably mounted on the hot pot assembly 2 and the outer shell 11. The baffle plate 132 is mounted on the connecting portion 131, with one end of the baffle plate 132 extending into the receiving cavity 201 away from the connecting portion 131. The gripping portion 133 is mounted on the connecting portion 131 and is located on the side of the connecting portion 131 away from the baffle plate 132. The baffle plate 132 extending into the receiving cavity 201 helps prevent liquid splashing, avoiding burns to the user, and also preventing liquid splashing from contaminating the usage space. The design of the gripping portion 133 allows the user to easily grasp and operate the top cover assembly 13, reducing the risk of burns and improving convenience and safety during use. The detachable design of the connecting portion 131 makes cleaning and maintenance of the inside of the receiving cavity 201 more convenient.
[0050] Example 2, as Figures 1 to 9 As shown, this embodiment discloses a food processor, including: a mixing chamber structure as described above; and a control component disposed on the mixing chamber structure.
[0051] The second aspect of this application discloses a food processor. By incorporating a mixing chamber structure, the food processor achieves highly efficient mixing. The structural design of the mixing chamber allows for more even mixing of ingredients during the mixing process, improving the taste and quality of the food and increasing mixing efficiency. A control component is provided to control the function of the mixing chamber structure, making the food processor more convenient to operate. Furthermore, a control panel is integrated externally into the mixing chamber structure, connecting to the control component. Users can easily control the working status of the food processor through the control panel, achieving one-button operation and simplifying the operation process.
[0052] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0053] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A whipping chamber structure, characterized by, The utility model relates to a hot pot device, including: A rack assembly (1); A hot pot assembly (2) is arranged on the rack assembly (1), and the hot pot assembly (2) is provided with a containing cavity (201); A stirring blade assembly (3) is arranged on the rack assembly (1), and part of the stirring blade assembly (3) extends into the containing cavity (201); A stirring cover (4) is arranged on the rack assembly (1) and / or the hot pot assembly (2), at least part of the stirring cover (4) is located in the containing cavity (201), the stirring cover (4) is provided with a cover cavity (401), and the part of the stirring blade assembly (3) extending into the containing cavity (201) is located in the cover cavity (401), and the cover cavity (401) communicates with the containing cavity (201).
2. The whipping chamber structure of claim 1, wherein The stirring cover (4) includes a mounting portion (41), a connecting rod (42) and a stirring cover body (43), the mounting portion (41) is detachably arranged on the rack assembly (1), one end of the connecting rod (42) is arranged on the mounting portion (41), the stirring cover body (43) is arranged on the connecting rod (42), the stirring cover body (43) is located at one end of the connecting rod (42) away from the mounting portion (41), and the connecting rod (42) and the stirring cover body (43) extend into the containing cavity (201), and the stirring cover body (43) is provided with the cover cavity (401).
3. A whipping chamber structure according to claim 2, wherein The cover cavity (401) is provided with a plurality of suction inlets (402) and a plurality of overflow outlets (403), a plurality of the suction inlets (402) are arranged at intervals in the circumferential direction of the stirring cover body (43), a plurality of the overflow outlets (403) are arranged at intervals on the stirring cover body (43), a plurality of the overflow outlets (403) are located on the side of the stirring cover body (43) away from the bottom wall of the containing cavity (201), and a plurality of the overflow outlets (403) are arranged opposite to the part of the stirring blade assembly (3) extending into the containing cavity (201); And / or the stirring cover body (43) is provided with a plurality of turbulence ribs (431), and a plurality of the turbulence ribs (431) are arranged at intervals on the inner wall of the cover cavity (401); And / or one end of the stirring cover body (43) away from the connecting rod (42) abuts against the bottom wall of the containing cavity (201); And / or one end of the stirring cover (4) is detachably arranged on the rack assembly (1), and the end of the stirring cover (4) away from the rack assembly (1) extends into the containing cavity (201).
4. The whipping chamber structure of claim 1, wherein The hot pot assembly (2) includes a hot pot body (21) and a heating element (22), the hot pot body (21) is arranged on the rack assembly (1), the hot pot body (21) is provided with the containing cavity (201), and the heating element (22) is arranged on the hot pot body (21) and located on the outer wall of the containing cavity (201).
5. The whipping chamber structure of claim 4, wherein The hot pot body (21) is provided with a heating element accommodating groove (202), the heating element (22) is matched with the heating element accommodating groove (202), and the heating element accommodating groove (202) is located at the bottom of the accommodating cavity (201) and / or the heating element accommodating groove (202) is located on the circumference of the accommodating cavity (201).
6. The whipping chamber structure of claim 1, wherein The stirring blade assembly (3) comprises a motor (31), a connecting piece (32) and a stirring blade assembly (33), the rack assembly (1) is provided with a mounting cavity (101), the motor (31) is arranged on the rack assembly (1) and located in the mounting cavity (101), one end of the connecting piece (32) is connected with the motor (31), the end of the connecting piece (32) away from the motor (31) is connected with the stirring blade assembly (33), and part of the connecting piece (32) and the stirring blade assembly (33) extend into the accommodating cavity (201).
7. A whipping chamber structure according to claim 6, wherein Further comprising a fan (5), the rack assembly (1) is provided with a heat dissipation hole (103), the heat dissipation hole (103) is communicated with the mounting cavity (101), the fan (5) is arranged on the motor (31), the fan (5) is located at the end of the motor (31) away from the connecting piece (32), and the fan (5) is arranged opposite to the heat dissipation hole (103).
8. The whipping chamber structure of claim 1, wherein The rack assembly (1) comprises an outer shell (11), a rack body (12) and an upper cover assembly (13), the outer shell (11) is provided with a mounting cavity (101) and a mounting opening (102), the mounting cavity (101) is communicated with the mounting opening (102), the rack body (12) is arranged on the outer shell (11) and located in the mounting cavity (101), the hot pot assembly (2) is arranged on the outer shell (11) and the rack body (12), one end of the hot pot assembly (2) away from the rack body (12) is arranged at the mounting opening (102), the upper cover assembly (13) is detachably arranged on the hot pot assembly (2) and the outer shell (11), part of the upper cover assembly (13) extends into the accommodating cavity (201), and the stirring cover (4) is detachably arranged on the upper cover assembly (13) and located on the side of the upper cover assembly (13) facing the accommodating cavity (201).
9. A whipping chamber structure according to claim 8, wherein The upper cover assembly (13) comprises a connecting part (131), a blocking plate (132) and a gripping part (133), the connecting part (131) is detachably arranged on the hot pot assembly (2) and the outer shell (11), the blocking plate (132) is arranged on the connecting part (131), one end of the blocking plate (132) away from the connecting part (131) extends into the accommodating cavity (201), and the gripping part (133) is arranged on the connecting part (131) and located on the side of the connecting part (131) away from the blocking plate (132).
10. A food processor, characterised in that, Comprise: The whipping cavity structure according to any one of claims 1 to 9; The whipping cavity structure according to any one of claims 1 to 9; a control assembly disposed on the whipping chamber structure.