Food processor
By setting up an embedding groove and a limiting structure at the embedding end in the food processing machine, combined with a wiring cavity and a sealing ring, the problems of installation misalignment and damage of the sensing element and water intrusion are solved, and the safe fixation of the sensing element and the reliable operation of the electrical appliance are achieved.
Patent Information
- Application Number
- CN202422561322.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-23
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-10-23
AI Technical Summary
The sensing elements of existing food processors are easily squeezed and damaged due to misalignment during installation, and the wiring harness routed inside the handle may allow water to enter and affect the normal use of the machine.
An embedding groove is set in the handle base, an embedding end is set in the handle, and a accommodating cavity for accommodating the sensing element is set at the embedding end. The sensing element is limited by the cooperation between the embedding groove wall and the embedding end. The lead of the sensing element is connected to the power board through the wiring cavity, and a sealing ring is set at the embedding end to prevent water from entering.
This avoids damage to the sensing components when they are installed incorrectly, reduces the length of the wiring harness, reduces the risk of water entering and affecting electrical components, and ensures the safety and reliability of the electrical appliances.
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Figure CN223380485U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a kitchen appliance, in particular to a food processing machine. Background Art
[0002] In order to ensure safe use, food processing machines usually need to be equipped with a lid closing detection device. For example, patent CN202320985096.6 discloses a lid closing detection device. The cover body is provided with a magnet, and the handle base is provided with a mounting groove for pre-positioning the sensing element. After the sensing element is placed in the mounting groove, the handle cover is snapped onto the handle base, and the sensing element is clamped and fixed in the mounting groove. This solution fixes the sensing element by clamping the handle base and the handle cover. The sensing element needs to withstand the squeezing force of the handle base and the handle cover. Due to certain tolerances during product manufacturing, misalignment may occur during the process of fixing the handle cover and the handle base. At this time, if the handle cover is forcibly fixed to the handle base, the sensing element is easily damaged by external squeezing. Utility Model Content
[0003] The utility model provides a food processing machine, which is used to solve the problem that the sensing element is easily damaged by being squeezed by the handle during the process of fixing the handle to the sensing element.
[0004] In order to achieve the above-mentioned purpose, the present invention adopts the following technical solution: a food processing machine, comprising a cup body with a crushing chamber, a cover body covering the cup body, and a crushing device arranged in the crushing chamber, the cover body is provided with an induction magnet, a handle is provided on one side of the cup body, and an induction element cooperating with the induction magnet is provided in the handle, characterized in that: the handle comprises a handle seat mounted on the cup body and a handle fixedly connected to the handle seat, an embedding groove is provided at the upper end of the handle seat away from the cup body, an embedding end is provided at the upper end of the handle, the embedding end is provided with a accommodating chamber for accommodating the induction element, after the induction element is placed in the accommodating chamber, the embedding end is inserted into the embedding groove, and the groove wall of the embedding groove cooperates with the embedding end to limit the induction element.
[0005] Furthermore, the embedded end includes an upwardly protruding edge, which encloses a accommodating cavity with an open upper end. The embedded end is located at the bottom of the accommodating cavity and is provided with a support portion for supporting the sensing element. The embedded groove includes a top wall, which abuts against the edge and covers the top opening of the accommodating cavity to limit the sensing element in the accommodating cavity.
[0006] Furthermore, the support portion is a support plate; or, the support portion is a support rib.
[0007] Furthermore, the side wall of the embedded end is recessed into the embedded end to form an accommodating cavity, and the sensing element is placed in the accommodating cavity from the opening of the side wall of the embedded end. The embedded groove includes a groove side wall corresponding to the opening of the side wall of the embedded end, and the groove side wall abuts against the side wall of the embedded end and covers the opening of the side wall of the embedded end to limit the sensing element in the accommodating cavity.
[0008] Furthermore, the embedded end is provided with a wire passing hole, and a wiring cavity is provided between the handle seat and the cup body. The wiring cavity is connected to the accommodating cavity through the wire passing hole. The sensing element is connected with a lead. The food processor also includes a power board located under the cup body. The lead extends into the wiring cavity from the wire passing hole, and extends downward along the wiring cavity to be electrically connected to the power board.
[0009] Furthermore, the food processor includes a base located below the cup body, the power board is installed in the base, the wiring cavity is arranged on the side of the handle seat close to the cup body, the top of the handle seat is fixed to the upper edge of the cup body, and the bottom of the handle seat is fixedly connected to the base; or, the cup body includes an inner cup and an outer cup arranged on the outside of the inner cup, the handle seat is integrally formed on the outer cup, and a wiring cavity is formed between the inner cup and the handle seat.
[0010] Furthermore, the embedded end is provided with a wire passing hole, a wiring cavity is provided inside the handle, the accommodating cavity is connected to the wiring cavity through the wire passing hole, the sensing element is connected with a lead, and the food processor also includes a power board located under the cup body, the lead extends into the wiring cavity from the wire passing hole, and extends downward along the wiring cavity to be electrically connected to the power board.
[0011] Furthermore, an annular sealing ring is sleeved on the embedding end, and the annular sealing ring is arranged away from the cup body relative to the accommodating cavity, and the annular sealing ring is clamped between the embedding groove and the embedding end.
[0012] Furthermore, the embedded end is surrounded by a groove, the groove is arranged away from the cup body relative to the accommodating cavity, and the annular sealing ring is sleeved in the groove; or, the embedded end cooperates with the embedded groove to form an annular groove, and the annular sealing ring is sleeved in the annular groove.
[0013] Furthermore, the food processor also includes a machine base, which is located at the bottom of the cup body, and a hook is provided on the top of the handle base close to the cup body. The top of the handle base is hooked on the edge of the cup through the hook, and the bottom of the handle base is fixedly connected to the machine base; or, the cup body includes an inner cup and an outer cup mounted on the outside of the inner cup, and the handle base is integrally formed on the outer cup.
[0014] The above technical solution has the following beneficial technical effects:
[0015] 1. In the present utility model, an embedding groove is provided in the handle base, an embedding end is provided in the handle, and a receiving cavity for receiving the sensing element is provided in the embedding end. After the embedding end is inserted into the embedding groove, the sensing element is limited by the cooperation between the embedding groove wall and the embedding end. During the installation process, the limitation of the sensing element is achieved by the cooperation between the embedding groove wall and the embedding end. The sensing element itself is only supported by the receiving cavity. In addition, it does not need to cooperate with other components to limit its position, and there is no situation where other components exert force on the sensing element. Even if the installation is misaligned during the installation process, since the sensing element is not subjected to other external forces, it can avoid the situation where other components squeeze the sensing element due to misaligned installation, causing damage to the sensing element.
[0016] 2. In the present invention, a surrounding edge is provided at the embedded end, and the surrounding edge encloses a accommodating cavity with an open upper end. A support member is provided at the bottom of the accommodating cavity. During installation, the sensing element is first placed in the accommodating cavity. The support member is used to support the sensing element. After the embedded end is inserted into the embedded groove, the top wall of the embedded groove abuts against the upper end of the surrounding edge and closes the upper end opening of the accommodating cavity. At this time, the sensing element is only supported by the support member. The top wall of the embedded groove cooperates with the top end of the surrounding edge to limit the sensing element in the accommodating cavity. The sensing element itself does not need to cooperate with other components to limit its position. Even if the installation is misaligned, the sensing element itself will not be subjected to force, thereby preventing the sensing element from being squeezed and damaged.
[0017] 3. In the present invention, a wire hole is provided at the embedded end, and a wiring cavity is provided between the handle seat and the cup body. The lead of the sensing element is connected to the power board through the wiring cavity. Compared with the existing solution in which the wiring harness passes through the handle, the wiring path is shortened, the length of the wiring harness can be reduced, and the cost is saved. In addition, in the existing technology, the wiring harness is routed inside the handle. When the user takes the machine, residual water may enter the handle, causing a short circuit in the lead and affecting the normal use of the machine. By setting the wiring cavity between the handle seat and the cup body, water is not easily able to enter the wiring cavity when the user takes the machine, thereby ensuring the safety of the electrical components.
[0018] 4. In the present invention, an annular sealing ring is provided on the embedded end. By clamping the sealing ring in cooperation with the embedded groove, it can be prevented that when the user frequently takes the machine, residual water enters the accommodating cavity through the gap between the embedded groove and the embedded end, causing the sensing element to short-circuit and fail, thereby ensuring the safety of the electrical components. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention will be further described below with reference to the accompanying drawings:
[0020] Figure 1 This is a structural schematic diagram of an embodiment of the food processing machine of the present utility model;
[0021] Figure 2 for Figure 1A schematic cross-sectional view of a food processor;
[0022] Figure 3 for Figure 2 Schematic diagram of the structure of the middle handle;
[0023] Figure 4 for Figure 3 Schematic diagram of the structure of the middle handlebar seat;
[0024] Figure 5 for Figure 3 Schematic diagram of the structure of the middle handle;
[0025] Figure 6 for Figure 2 A cross-sectional view of the middle handle from another angle;
[0026] Figure 7 for Figure 3 A schematic structural diagram of the middle latch member;
[0027] Figure 8 This is a schematic structural diagram of a handle of another embodiment of the food processor of the present invention;
[0028] Figure 9 This is a cross-sectional schematic diagram of a handle of another embodiment of the food processing machine of the present invention. DETAILED DESCRIPTION
[0029] like Figure 1-Figure 7 The figure shows an embodiment of the present invention, a food processing machine, comprising a cup body 2 having a crushing chamber, a base 3 disposed below the cup body 2, a motor and a power supply board disposed within the base 3, a threaded column and a wire entry hole disposed on one side of the base 3, a motor shaft extending from the bottom of the cup body 2 into the crushing chamber, a crushing device connected to the top of the motor shaft, a cup cover 1 disposed on the top of the cup body 2, an induction magnet disposed on one side of the cup cover 1, and an exhaust hole disposed in the center of the cup cover 1. A handle 4 is mounted on one side of the cup body 2, a detachable cover of the cup body 2 is provided with a soundproof cover 9, a through hole 92 disposed on the top of the soundproof cover 9, a vent plug disposed within the through hole 92, the vent plug simultaneously sealing the through hole 92 and the exhaust hole of the cup cover, an opening 91 disposed on one side of the soundproof cover 9, and the handle 4 can extend from the opening 91 to the outside of the soundproof cover 9.
[0030] The handle 4 includes a handle base 41 and a handle 42. A hook 412 is provided at the top of the handle base 41 close to the cup body. The handle base 41 is also provided with a folded edge 419 protruding toward the cup body 2. A through hole 417 and a mounting column 418 are provided at the bottom of the handle base 41. A through hole is provided at the center of the mounting column 418. An embedding groove 411 is provided at the top of the handle base 41 away from the cup body 2. The embedding groove 411 includes a top wall 4111. The bottom wall of the embedding groove 411 is provided with a limiting groove 413 and an opening 415. The bottom wall of the embedding groove 411 is also provided with a positioning column 414 protruding downward.
[0031] An embedded end 421 is provided on the side of the handle 42 close to the cup body 2. The embedded end 421 is a boss protruding from the top of the handle 42 toward the cup body 2. The outer diameter of the boss is smaller than the outer diameter of the upper end of the handle, and the boss is located at the center of the upper end of the handle. The boss is provided with an upwardly protruding edge 4212, and the edge 4212 encloses a accommodating cavity 4213 with an open upper end. The edge 4212 is also provided with a positioning groove 4214. A support plate is provided at the bottom of the accommodating cavity 4213, and a wire hole 4215 is provided on one side of the support plate. A threaded column 422 is provided at the bottom of the handle 42.
[0032] When installing the handle 4, first place the sensing element 6 into the accommodating cavity 4213 from the top opening of the accommodating cavity 4213. The sensing element 6 is supported by the support plate at the bottom of the accommodating cavity 4213. The lead 61 connected to the sensing element 6 extends out of the accommodating cavity 4213 through the wire hole 4215 on one side of the support plate. Then, fix the handle with the sensing element 6 and the handle base 41. Insert the embedded end 421 at the top of the handle 42 into the embedded groove 411 at the top of the handle base 41. The front end of the embedded end 421 The wall 4211 abuts against the front wall 416 of the embedding groove 411, the top wall 4111 of the embedding groove 411 abuts against the top of the surrounding edge 4212, and closes the opening at the top of the accommodating cavity 4213. At the same time, part of the embedding end 421 does not extend into the embedding groove 411, and the notch of the embedding groove 411 corresponds to the outer diameter of the upper end of the handle. Therefore, an annular groove is formed at the end wall of the embedding groove 411, the embedding end 421 that does not extend into the embedding groove 411, and the upper end of the handle, and the annular sealing ring 8 is arranged in the annular groove. Furthermore, the positioning groove 4214 on the edge 4212 of the inserting end 421 partially extends into the limiting groove 413 on the bottom wall of the inserting groove 411. The latch portion 72 of the latch member 7 is inserted from bottom to top into the limiting groove 413. One end of the latch portion 72 abuts against the wall of the limiting groove 413, and the other end abuts against the wall of the positioning groove 4214. The main body 71 of the latch member 7 abuts against the positioning post 414. The circular hole in the main body 71 corresponds to the threaded hole in the positioning post 414. A screw passes through the circular hole and screws into the threaded hole to secure the latch member 7, thereby securing the handle base 41 to the upper end of the handle 42. Subsequently, the threaded post 422 at the bottom of the handle 42 is aligned with the through hole 417 at the bottom of the handle base 41. A screw passes through the through hole 417 and screws into the threaded post 422 to secure the handle base 41 to the lower end of the handle 42. At this point, the sensor 6 is secured to the handle 4.
[0033] Then, snap the hook 412 at the top of the handle base 41 onto the top edge of the cup body 2. The mounting post 418 at the bottom of the handle base 41 aligns with the threaded post on one side of the base 3. Screws are inserted through the through-hole in the center of the mounting post 418 and connected to the threaded post to secure the handle base to the base 3. The folded edge 419 of the handle base 41 forms a wiring cavity 5. The leads of the sensing element 6 extend from the accommodating cavity 4213 through the wire hole 4215 into the wiring cavity 5. They then extend down the wiring cavity 5, through the wire entry hole, into the base 3, and connect to the power board inside the base 3.
[0034] In this embodiment, an upwardly protruding edge is provided at the embedded end, and the edge encloses a accommodating cavity. A support plate is provided at the bottom of the accommodating cavity. The top wall of the embedded groove abuts against the top of the edge and closes the top opening of the accommodating cavity to achieve the limitation of the sensing element in the accommodating cavity. The sensing element is only supported by the support member and does not need to cooperate with other components to achieve limitation. Even if misaligned installation occurs during the installation process, the sensing element will not be squeezed by external force and damaged.
[0035] A wire hole is set at the embedded end, and a wiring cavity is set at the handle seat. The lead of the sensing element is connected to the power board through the wiring cavity. Compared with the existing solution of the wiring harness passing through the handle, the wiring path is shortened, the length of the wiring harness can be reduced, and the cost is saved. In addition, in the existing technology, the wiring harness is routed inside the handle. When the user takes the machine, residual water may enter the handle, causing a short circuit in the lead and affecting the normal use of the machine. By setting the wiring cavity between the handle seat and the cup body, water is not easy to enter the wiring cavity when the user takes the machine, thereby ensuring the safety of electrical components.
[0036] In the utility model, an annular sealing ring is provided on the embedded end sleeve. By clamping the sealing ring through the embedded end and the embedded groove, it can be prevented that when the user frequently picks up the machine, residual water enters the accommodating cavity through the gap between the embedded groove and the embedded end, causing the sensing element to short-circuit and fail, thereby ensuring the safety of the electrical components.
[0037] Of course, the support plate used to support the sensing element in this embodiment can also be a support rib arranged on the inner wall of the surrounding edge. Support ribs parallel to the surrounding edge can be arranged on the inner walls of two opposite surrounding edges to support the sensing element, or support ribs connecting the two surrounding edges can be arranged between the two opposite surrounding edges. The specific structure of the support ribs is not limited. By setting the support ribs, while supporting the sensing element, wire holes can also be formed between the support ribs.
[0038] In another embodiment, the accommodating cavity may also be formed by being recessed from the front end wall of the embedded end close to the cup body toward the interior of the embedded end, such as Figure 7As shown, the front end wall of the embedded end forms an opening. After the sensing element is placed into the accommodating cavity through the opening, the embedded end is inserted into the embedded slot. The front wall of the embedded slot abuts the front end wall of the embedded end, closing the opening and limiting the position of the sensing element in the accommodating cavity. At this time, a wire hole is set in the bottom wall of the accommodating cavity, and the wiring harness of the sensing element extends through the wire hole into the wiring cavity.
[0039] Of course, the accommodating cavity can also be formed by the side walls on both sides of the front end wall of the embedded end being recessed into the embedded end. In this case, after the embedded end is inserted into the embedded groove, the groove side walls on both sides of the front wall of the embedded groove abut against the side walls of the embedded end, and the opening of the side walls of the embedded end is closed to limit the sensing element in the accommodating cavity.
[0040] Through the above-mentioned limiting method, the sensing element is only supported by the bottom wall of the accommodating cavity. The limiting of the sensing element is achieved by the embedded groove wall abutting against the end wall or side wall of the embedded end and closing the opening of the accommodating cavity, thereby avoiding the sensing element from being squeezed and damaged when the installation is misaligned.
[0041] As for the fixing method of the handle base and the handle, the pin part can also be eliminated. A through hole is provided on the front wall of the embedding groove, and a threaded column corresponding to the through hole is provided at the embedding end. After the embedding end is inserted into the embedding groove, the through hole corresponds to the threaded column, and the screw passes through the through hole and is threadedly connected to the threaded column to achieve the fixation of the handle base and the handle.
[0042] For the fixation of the annular sealing ring, a groove surrounding the embedded end can also be set at the embedded end. The groove is set away from the cup body relative to the accommodating cavity. After the annular sealing ring is set in the groove, the embedded end is inserted into the embedded groove. The annular sealing ring can be extended into the embedded groove, and the annular sealing ring is pressed against the embedded groove wall and the groove wall respectively.
[0043] In the above embodiments, the cup body can be a glass cup, and a shock-absorbing member can be arranged between the hook of the handle seat and the edge of the cup. The preferred shock-absorbing member is a silicone member. The shape of the shock-absorbing member is similar to the shape of the hook, which can achieve a soft connection between the hook and the cup body. When the machine is running, it avoids hard collision between the hook and the cup body, which is conducive to reducing noise and can also prevent the hook from scratching the cup body.
[0044] In another embodiment, a sticker may also be affixed to the folded edge of the handle base to shield the interior of the wiring cavity, preventing the wiring harness inside the wiring cavity from being visible through the glass, thereby ensuring that the overall appearance of the machine is simple and beautiful.
[0045] Of course, to enhance the aesthetics of the handle, a decorative ring can be placed on the embedded end of the handle. The embedded end can be provided with a retaining groove, and the decorative ring can be provided with a retaining protrusion corresponding to the retaining groove. First, the decorative ring is placed on the embedded end, and the retaining protrusion is snapped into the retaining groove. Then, the embedded end is inserted into the embedded groove. The decorative ring is clamped and secured to the embedded groove and the embedded end by securing the handle base to the handle. In the case of a closed handle, an embedded end can also be provided at the lower end of the handle, and an embedded groove corresponding to the lower end of the handle base can be provided. The embedded end of the lower end of the handle can also be provided with a decorative piece, and the decorative piece is clamped and secured to the embedded end and the embedded groove. The handle can also adopt an open structure, with the upper end of the handle secured to the handle base via the embedded end. In this case, only one decorative piece is required.
[0046] The food processor of the present invention can also be a double-layer cup body, which includes an inner cup and an outer cup 21 sleeved on the outer side of the inner cup. Figure 8 The inner cup can be a glass or metal cup, and the outer cup is a plastic shell that surrounds the inner cup. The plastic shell can also enclose the motor and power board. In this case, the inner cup, motor, and power board are all arranged in the accommodation space within the plastic shell. In this case, the handle base can be integrally formed on the outer cup 21, and the handle base and the inner cup form a wiring cavity. The handle base is provided with an embedding groove at the upper end of the side away from the cup body. The installation method of the handle base and the handle is as described above. Of course, the outer cup can also be simply placed outside the inner cup, with a base provided at the bottom of the outer cup and the inner cup, the power board and motor are arranged in the base, and the bottom of the outer cup is fixedly connected to the base.
[0047] Regarding the wiring method of the sensing element, when the above wiring method is adopted, the wiring cavity is located between the handle base and the cup body. In this case, the handle can be a solid structure. Of course, wiring can also be done through the handle. In this case, the handle needs to be set as a closed structure. The handle is hollow inside and can include a handle base and a handle cover provided on the handle base. An embedded end is provided at the top of the handle base close to the cup body. The accommodating cavity of the embedded end is connected to the side of the handle base away from the cup body through a wire hole. The handle base and the handle cover are jointly enclosed to form a wiring cavity. In the case of a single-layer cup, at this time, the bottom of the handle base is first fixedly connected and connected to the bottom of the handle base, and the bottom of the handle base is fixedly connected and connected to the base. The lead wire extends from the wiring cavity through the bottom of the handle base into the base and is connected to the power board. In the case of a double-layer cup, the bottom of the handle is fixedly connected and connected to the bottom of the handle base. The lead wire extends from the wiring cavity through the bottom of the handle base into the base or the outer cup and is connected to the power board.
[0048] It can be understood that the solutions of the above embodiments of the present invention are not independent and can be combined with each other.
[0049] Those skilled in the art should understand that the present invention includes but is not limited to the contents described in the drawings and the above specific embodiments. Any modification that does not deviate from the functional and structural principles of the present invention shall be included in the scope of the claims.
Claims
1. A food processor comprising a cup having a grinding chamber, a cover covering the cup, and a grinding device disposed within the grinding chamber, the cover being provided with an induction magnet, a handle being provided on one side of the cup, and an induction element being provided within the handle for cooperating with the induction magnet, characterized in that: The handle includes a handle base installed on the cup body and a handle fixedly connected to the handle base. An embedding groove is provided at the upper end of the handle base away from the cup body, and an embedding end is provided at the upper end of the handle. The embedding end is provided with a accommodating cavity for accommodating the sensing element. After the sensing element is placed in the accommodating cavity, the embedding end is inserted into the embedding groove, and the groove wall of the embedding groove cooperates with the embedding end to limit the sensing element.
2. The food processing machine according to claim 1, characterized in that: The embedded end includes an upwardly protruding edge, which encloses a accommodating cavity with an open upper end. The embedded end is located at the bottom of the accommodating cavity and is provided with a support portion for supporting the sensing element. The embedded groove includes a top wall, which abuts against the edge and covers the top opening of the accommodating cavity to limit the sensing element in the accommodating cavity.
3. The food processing machine according to claim 2, characterized in that: The support portion is a support plate; Alternatively, the supporting portion is a supporting rib.
4. The food processing machine according to claim 1, wherein: The side wall of the embedded end is recessed into the embedded end to form an accommodating cavity, and the sensing element is placed in the accommodating cavity from the opening of the side wall of the embedded end. The embedded groove includes a groove side wall corresponding to the opening of the side wall of the embedded end. The groove side wall abuts against the side wall of the embedded end and covers the opening of the side wall of the embedded end to limit the sensing element in the accommodating cavity.
5. The food processing machine according to claim 1, wherein: The embedded end is provided with a wire passing hole, and a wiring cavity is provided between the handle base and the cup body. The wiring cavity is connected to the accommodating cavity through the wire passing hole. The sensing element is connected with a lead. The food processor also includes a power board located under the cup body. The lead extends into the wiring cavity from the wire passing hole, and extends downward along the wiring cavity to be electrically connected to the power board.
6. The food processing machine according to claim 5, characterized in that: The food processor includes a base located below the cup body, a power board installed in the base, the wiring cavity is provided on a side of the handle base close to the cup body, the top end of the handle base is fixed to the upper edge of the cup body, and the bottom end of the handle base is fixedly connected to the base; Alternatively, the cup body includes an inner cup and an outer cup sleeved on the outer side of the inner cup, the handle seat is integrally formed on the outer cup, and a wiring cavity is formed between the inner cup and the handle seat.
7. The food processing machine according to claim 1, wherein: The embedded end is provided with a wire passing hole, a wire routing cavity is provided inside the handle, the accommodating cavity is connected to the wire routing cavity through the wire passing hole, the sensing element is connected with a lead, and the food processor also includes a power board located below the cup body, the lead extends from the wire passing hole into the wire routing cavity, and extends downward along the wire routing cavity to be electrically connected to the power board.
8. The food processing machine according to claim 1, wherein: An annular sealing ring is sleeved on the embedding end. The annular sealing ring is arranged away from the cup body relative to the accommodating cavity and is clamped between the embedding groove and the embedding end.
9. The food processing machine according to claim 8, characterized in that: The embedded end is surrounded by a groove, the groove is arranged away from the cup body relative to the accommodating cavity, and the annular sealing ring is sleeved in the groove; Alternatively, the embedding end cooperates with the embedding groove to form an annular groove, and the annular sealing ring is sleeved in the annular groove.
10. The food processor according to claim 1, wherein: The food processor also includes a machine base, which is located at the bottom of the cup body. A hook is provided on the top of the handle base near the cup body. The top of the handle base is hooked on the edge of the cup through the hook, and the bottom of the handle base is fixedly connected to the machine base. Alternatively, the cup body includes an inner cup and an outer cup sleeved on the outer side of the inner cup, and the handle seat is integrally formed on the outer cup.
Citation Information
Patent Citations
Food processor convenient to assemble
CN219940424U