Cast iron cookware processing apparatus
By designing a cast iron cookware processing equipment, the internal connecting parts and driving parts are used to make the cast iron soup pot rotate along the central axis. Combined with the position adjustment of the adjusting frame and grinding parts, the problems of dust pollution and unsatisfactory grinding effect during the grinding process of cast iron cookware are solved, and efficient surface flatness and grinding wheel durability are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHIJIAZHUANG KINGWAY IMP &EXP CO LTD
- Filing Date
- 2025-07-29
- Publication Date
- 2026-07-24
AI Technical Summary
In existing technologies, the grinding process of cast iron cookware results in severe dust pollution and unsatisfactory grinding effects, making it difficult to achieve efficient surface smoothness.
A casting iron cookware processing device was designed, including a base, an inner connector, a driving component, and a grinding component. The inner connector maintains the relative position of the casting iron soup pot, and the driving component rotates it along the central axis. Combined with the position adjustment of the adjusting frame and the grinding component, efficient grinding of the outer surface of the casting iron soup pot is achieved.
It effectively reduces dust pollution, improves the smoothness and polishing effect of the cast iron pot surface, and enhances the ease of use of the equipment and the durability of the grinding wheel.
Smart Images

Figure CN224544019U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cookware processing technology, and in particular to a cast iron cookware processing equipment. Background Technology
[0002] In the field of cooking utensils, cast iron saucepans are widely chosen by consumers due to their excellent heat conductivity, heat retention capacity, and durability. However, because cast iron has rough, uneven burrs on its surface formed during the casting process, it requires polishing.
[0003] In related technologies, tools such as sandpaper or grinding wheels are often used to polish the pot body. When polishing manually, the dust generated during polishing affects the health of workers. Although mechanical processing can effectively reduce the impact of polishing dust on workers, the polishing effect is often unsatisfactory. Utility Model Content
[0004] In view of this, this application aims to provide a cast iron cookware processing device to help improve the surface flatness of the cookware.
[0005] To achieve the above objectives, the technical solution of this application is implemented as follows:
[0006] A cast iron cookware processing device is used to polish the outer surface of a cast iron soup pot. The cast iron cookware processing device includes a base, an inner connector inserted into the cast iron soup pot and capable of maintaining a relative position with the cast iron soup pot, a drive member disposed on the base and capable of driving the inner connector to rotate along the central axis of the cast iron soup pot, and an adjustment frame located on one side of the base and connected to the polishing component.
[0007] The adjusting frame can drive the grinding component to move along the axial and radial directions of the cast iron soup pot, so that the grinding component abuts against the outer surface of the cast iron soup pot.
[0008] Furthermore, the inner connecting member includes a core having an adjustment cavity, a slider that can be moved radially along the cast iron pot and embedded in or protrude from the core, and an adjustment member disposed in the adjustment cavity that allows the slider to move radially along the cast iron pot.
[0009] Furthermore, the adjusting component includes a wedge block located in the adjusting cavity, a telescopic component connected to the wedge block, and a connecting rod with one end fixed to the slider and the other end inserted into the adjusting cavity and capable of abutting against the wedge surface of the wedge block; the telescopic component drives the wedge block to move axially along the cast iron pot, and enables the connecting rod to move radially along the cast iron pot.
[0010] Furthermore, a guide groove is formed on the wedge block, and the bottom wall of the guide groove is parallel to the wedge surface;
[0011] The connecting rod is provided with a guide block, and the guide groove is slidably inserted into the guide groove; and / or...
[0012] The guide groove extends through the end face of the wedge block that connects to the telescopic component.
[0013] Furthermore, the driving component includes a sleeve shaft coaxially fixed to the core, a first motor fixed on the base, and two transmission gears respectively sleeved on the output shaft of the sleeve shaft and the first motor, with the two transmission gears meshing together.
[0014] The sleeve shaft is rotatably connected to the base, and the sleeve shaft is sleeved outside the telescopic member, and the telescopic member is connected to the sleeve shaft.
[0015] Furthermore, the slider includes a rigid body and a rubber layer coated on the rigid body; the connecting rod is fixedly connected to the rigid body; the end face of the slider that abuts against the cast iron soup pot is an arc surface.
[0016] Furthermore, the adjusting frame includes a first guide rail arranged along the axial direction of the cast iron soup pot, a second guide rail slidably arranged on the first guide rail and perpendicular to the first guide rail, and a third guide rail connected to the second guide rail and capable of moving radially along the cast iron soup pot; the grinding element is connected to the third guide rail.
[0017] Furthermore, the grinding component includes a second motor and a grinding wheel connected to the second motor; driving the second motor can drive the grinding wheel to rotate, and the grinding wheel rotates in the opposite direction to the core.
[0018] Furthermore, the axis of rotation of the grinding wheel is parallel to the central axis.
[0019] Compared with related technologies, this application has the following advantages:
[0020] (1) The cast iron cookware processing equipment described in this application, when polishing the outer surface of a cast iron soup pot, uses an internal connecting part that can be inserted into the cast iron soup pot and maintain a relative position with it, and a driving part that can drive the cast iron soup pot to rotate. This allows the cast iron soup pot to rotate along its central axis. At this time, it is only necessary to adjust the position of the polishing part by adjusting the adjusting frame so that the polishing part abuts against the outer surface of the cast iron soup pot, thereby achieving the polishing of the outer surface of the cast iron soup pot. In this way, the situation where the cast iron soup pot and the polishing part rotate synchronously can be effectively avoided, and the situation where no relative displacement occurs between the cast iron soup pot and the polishing part, thus failing to achieve the polishing of the cast iron soup pot, can be effectively avoided, thereby helping to improve the flatness of the cookware surface.
[0021] (2) By setting internal connecting parts including core, slider and adjusting part, when the core is inserted into the cast iron soup pot and maintains the relative position between the core and the cast iron soup pot, the adjusting part is controlled to make the slider move radially along the cast iron soup pot and protrude out of the core and abut against the inner wall of the cast iron soup pot; after grinding is completed, the adjusting part is controlled to make the slider retract and embed into the core, so that the cast iron soup pot can be separated from the core. The whole process only requires controlling the adjusting part, which has the effect of being easy to use.
[0022] (3) By setting the adjusting components including a wedge block, a telescopic component, and a connecting rod, when the adjusting slider moves radially along the cast iron pot, the telescopic component adjusts the wedge block to move axially along the cast iron pot. Since one end of the connecting rod always abuts against the wedge surface, the slider can move radially along the cast iron pot. This setting facilitates the installation of connecting rods on both wedge surfaces of the wedge block, thereby achieving symmetrical positioning of the cast iron pot radially and effectively improving the reliability of the cast iron pot mounted on the inner connecting component.
[0023] (4) By forming a guide groove on the wedge block and setting a guide block at the end of the connecting rod, the connecting rod can always abut against the wedge surface, thereby allowing the connecting rod to move radially along the cast iron pot as the wedge block moves axially along the cast iron pot. Furthermore, by setting a guide groove that penetrates the end face of the wedge block connecting the telescopic component, it is easy to insert the guide block into the guide groove, thereby facilitating the assembly and disassembly of the connecting rod and the wedge block.
[0024] (5) By setting the driving components including the sleeve shaft, the first motor and the transmission gear, the cast iron soup pot can be rotated along the central axis. At the same time, the wedge block rotates synchronously with the core, and the telescopic component can still adjust the wedge block to move along the central axis.
[0025] (6) By setting the slider to include a rigid body and a rubber layer, the rigid body can effectively ensure that the slider is pressed against the inner wall of the cast iron pot, effectively avoiding the situation where the cast iron pot and the core rotate relative to each other; the rubber layer can effectively prevent the rigid body from directly contacting the inner wall of the cast iron pot and scratching the cast iron pot, or leaving indentations on the inner wall of the cast iron pot.
[0026] (7) By setting adjustment components including the first guide rail, the second guide rail and the third guide rail, the grinding component can move in three-dimensional space and abut against the circumferential outer wall or bottom of the cast iron soup pot, thereby achieving grinding of different positions on the outer surface of the cast iron soup pot.
[0027] (8) By setting the grinding components to include a second motor and a grinding wheel, and making the grinding wheel rotate in the opposite direction to the core, the relative rotation speed between the cast iron pot and the grinding wheel is increased, which helps to improve the grinding speed of the cast iron pot. At the same time, it enables the grinding wheel to be worn evenly, improving the durability of the grinding wheel. Attached Figure Description
[0028] The accompanying drawings, which form part of this application, are used to provide a further understanding of this application. The illustrative embodiments and descriptions of this application are used to explain this application and do not constitute an undue limitation of this application. In the drawings:
[0029] Figure 1 This is a schematic diagram of the overall structure of the cast iron cookware processing equipment described in the embodiments of this application;
[0030] Figure 2 for Figure 1 Another perspective view of the structure shown;
[0031] Figure 3 This is a schematic diagram of the structure of the drive component and internal connector described in the embodiments of this application;
[0032] Figure 4 This is a schematic diagram of the internal structure of the connecting parts and core described in the embodiments of this application;
[0033] Figure 5 This is a cross-sectional view of the wedge block and slider described in the embodiments of this application;
[0034] Figure 6 This is a schematic diagram of the slider, connecting rod, and guide block described in the embodiments of this application.
[0035] Explanation of reference numerals in the attached figures:
[0036] 1. Base;
[0037] 2. Internal connecting parts; 201. Core; 2011. Adjusting cavity; 202. Slider; 2021. Rigid body; 2022. Rubber layer; 203. Adjusting component; 2031. Wedge block; 20311. Wedge surface; 20312. Guide groove; 2032. Telescopic component; 2033. Connecting rod;
[0038] 3. Drive component; 301. Sleeve shaft; 302. First motor; 303. Transmission gear;
[0039] 4. Grinding parts; 401. Second motor; 402. Grinding wheel;
[0040] 5. Adjustment frame; 501. First guide rail; 502. Second guide rail; 503. Third guide rail;
[0041] 6. Cast iron soup pot;
[0042] 7. Guide block;
[0043] L, central axis. Detailed Implementation
[0044] To make the technical solution and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0045] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other.
[0046] Furthermore, it should be noted that in the description of this application, if terms such as "upper," "lower," "inner," or "outer" appear, indicating orientation or positional relationship, these are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. In addition, if terms such as "first" or "second" appear, they are also used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0047] Furthermore, in the description of this application, unless otherwise expressly defined, the terms "installation," "connection," "joining," and "connector" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application in light of the specific circumstances.
[0048] In this application, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0049] The present application will now be described in detail through exemplary embodiments. However, it should be understood that, without further description, elements, structures, and features in one embodiment may be advantageously incorporated into other embodiments.
[0050] An embodiment of this application provides a cast iron cookware processing device.
[0051] In related technologies, tools such as sandpaper or 402 grinding wheels are often used to polish the pot body. When polishing manually, the dust generated during polishing affects the health of workers. Although mechanical processing can effectively reduce the impact of polishing dust on workers, the polishing effect is often unsatisfactory.
[0052] In view of this, in order to overcome the shortcomings of the related technologies, the cast iron cookware processing equipment in this embodiment combines... Figures 1 to 3 As shown, in terms of overall design, this cast iron cookware processing equipment is used to polish the outer surface of the cast iron soup pot 6.
[0053] The cast iron cookware processing equipment includes a base 1, an inner connector 2 inserted into a cast iron soup pot 6 and able to maintain a relative position with the cast iron soup pot 6, a drive member 3 provided on the base 1 and able to drive the inner connector 2 to rotate along the central axis L of the cast iron soup pot 6, and an adjustment frame 5 located on one side of the base 1 and connected to a grinding member 4; the adjustment frame 5 can drive the grinding member 4 to move axially and radially along the cast iron soup pot 6, so that the grinding member 4 abuts against the outer surface of the cast iron soup pot 6.
[0054] Therefore, by providing an inner connector 2 that can be inserted into the cast iron saucepan 6 and maintain a relative position with it, and a drive component 3 that can drive the cast iron saucepan 6 to rotate, the cast iron saucepan 6 can rotate along its central axis L. When polishing the outer surface of the cast iron saucepan 6, the position of the polishing component 4 can be adjusted by adjusting the bracket 5 so that the polishing component 4 abuts against the outer surface of the cast iron saucepan 6, thus achieving the polishing of the outer surface of the cast iron saucepan 6. In this way, the situation where the cast iron saucepan 6 and the polishing component 4 rotate synchronously can be effectively avoided, and the situation where the cast iron saucepan 6 is not polished due to the lack of relative displacement between the cast iron saucepan 6 and the polishing component 4 can also be effectively avoided, thereby helping to improve the surface flatness of the cookware.
[0055] In some of the exemplary implementations, combined with Figures 2 to 4 As shown, the inner connector 2 includes a core 201 having an adjustment cavity 2011, a slider 202 that can be moved radially along the cast iron saucepan 6 and can be embedded in or protrude from the core 201, and an adjustment member 203 provided in the adjustment cavity 2011 that allows the slider 202 to move radially along the cast iron saucepan 6.
[0056] As described above, by setting the inner connector 2, which includes a core 201, a slider 202, and an adjusting member 203, when the core 201 is inserted into the cast iron soup pot 6 and maintains its relative position with the cast iron soup pot 6, the adjusting member 203 is controlled to make the slider 202 move radially along the cast iron soup pot 6 and protrude out of the core 201, and abut against the inner wall of the cast iron soup pot 6; after grinding is completed, the adjusting member 203 is controlled to make the slider 202 retract and embed into the core 201, so that the cast iron soup pot 6 can be separated from the core 201. The whole process only requires controlling the adjusting member 203, which has the effect of being easy to use.
[0057] Based on the above general introduction, specifically, the core 201 conforms to the shape of the cast iron soup pot 6, that is, the outer contour of the core 201 is as follows. Figure 3 As shown, the cylindrical core 201 is inserted into the cast iron saucepan 6. There is a gap between the inner wall of the cast iron saucepan 6 and the core 201. This gap can effectively reduce the friction between the core 201 and the inner wall of the cast iron saucepan 6. Furthermore, during the process of inserting the core 201 into the cast iron saucepan 6, the gap can be used to expel gas from the cast iron saucepan, thus facilitating the insertion of the core 201 into the cast iron saucepan 6.
[0058] In some of the exemplary implementations, combined with Figures 3 to 5 As shown, the adjusting member 203 includes a wedge block 2031 located in the adjusting cavity 2011, a telescopic member 2032 connected to the wedge block 2031, and a connecting rod 2033, one end of which is fixed to the slider 202 and the other end is inserted into the adjusting cavity 2011 and can abut against the wedge surface 20311 of the wedge block 2031; the telescopic member 2032 drives the wedge block 2031 to move axially along the cast iron pot 6, and enables the connecting rod 2033 to move radially along the cast iron pot 6.
[0059] As described above, by setting the adjusting component 203, which includes a wedge block 2031, a telescopic component 2032, and a connecting rod 2033, when the adjusting slider 202 moves radially along the cast iron pot 6, the telescopic component 2032 adjusts the wedge block 2031 to move axially along the cast iron pot 6. Since one end of the connecting rod 2033 always abuts against the wedge surface 20311, the slider 202 can move radially along the cast iron pot 6. This arrangement facilitates the placement of the connecting rod 2033 on both wedge surfaces 20311 of the wedge block 2031, thereby achieving symmetrical positioning of the cast iron pot 6 radially and effectively improving the reliability of the cast iron pot 6 mounted on the inner connecting component 2.
[0060] It is understood that the cross-section of the wedge block 2031 is typically an isosceles trapezoid or an isosceles triangle. In this embodiment, the cross-section of the wedge block 2031 is an isosceles trapezoid. By maintaining the inclination angle of the wedge surface 20311 while reducing the length of the wedge block 2031, the moving distance of the wedge block 2031 within the adjustment cavity 2011 is effectively increased. Furthermore, it is understood that the wedge block 2031 has two symmetrical wedge surfaces 20311, and the two symmetrically arranged connecting rods 2033 always remain in contact with the two symmetrically arranged wedge surfaces 20311 respectively.
[0061] It is also worth noting that the core 201 is formed with a clearance hole to accommodate the connecting rod 2033 and the slider 202. The clearance hole allows the connecting rod 2033 to extend and retract radially along the cast iron soup pot 6 and allows the slider 202 to be embedded in the core 201.
[0062] In some exemplary embodiments, as an optional implementation where the connecting rod 2033 always abuts against the wedge surface 20311, combined with Figures 3 to 6 As shown, a guide groove 20312 is formed on the wedge block 2031, and the bottom wall of the guide groove 20312 is parallel to the wedge surface 20311; a guide block 7 is provided on the connecting rod 2033, and the guide groove 20312 is slidably inserted into the guide groove 20312. Specifically, in this embodiment, the guide block 7 is cylindrical, and the circumferential surface of the guide block 7 abuts against the bottom wall of the guide groove 20312.
[0063] In specific implementation, the guide groove 20312 can also be configured to penetrate the end face of the wedge block 2031 connecting the telescopic member 2032.
[0064] As described above, by forming a guide groove 20312 on the wedge block 2031 and providing a guide block 7 at the end of the connecting rod 2033, the connecting rod 2033 can always abut against the wedge surface 20311, thereby allowing the connecting rod 2033 to move radially along the cast iron pot 6 as the wedge block 2031 moves axially along the cast iron pot 6. Furthermore, by providing the guide groove 20312 through the end face of the connecting telescopic member 2032 of the wedge block 2031, it is easy to insert the guide block 7 into the guide groove 20312, thereby facilitating the assembly and disassembly of the connecting rod 2033 from the wedge block 2031.
[0065] In some of the exemplary implementations, combined with Figure 3 and Figure 4As shown, the drive component 3 includes a sleeve shaft 301 coaxially fixed to the core 201, a first motor 302 fixed on the base 1, and two transmission gears 303 respectively sleeved on the output shafts of the sleeve shaft 301 and the first motor 302, the two transmission gears 303 being meshed and connected; the sleeve shaft 301 is rotatably connected to the base 1, and the sleeve shaft 301 is sleeved outside the telescopic member 2032, the telescopic member 2032 being connected to the sleeve shaft 301.
[0066] Therefore, by setting the drive component 3, which includes a sleeve shaft 301, a first motor 302, and a transmission gear 303, the cast iron soup pot 6 can be rotated along the central axis L. At the same time, the wedge block 2031 rotates synchronously with the core 201, while the telescopic component 2032 can still adjust the wedge block 2031 to move along the central axis L.
[0067] It is worth noting that, in use, the sleeve shaft 301 is a round tube with open ends, and a flange is fixed to one end of the round tube, which is then connected to the core 201. It is also understood that, to facilitate the rotation of the sleeve shaft 301 of the telescopic member 2032, in this embodiment, the telescopic member 2032 is provided as an electric telescopic rod, and this electric telescopic rod has a battery pack to provide the necessary electrical energy.
[0068] Of course, the telescopic component 2032 can also be a common hydraulic cylinder or pneumatic cylinder. When the telescopic component 2032 is a common hydraulic cylinder or pneumatic cylinder, one end of the telescopic component 2032 is fixedly connected to the base 1, and the telescopic component 2032 is rotatably connected to the wedge block 2031. That is, the center line of the telescopic component 2032 in the length direction coincides with the central axis L. A bearing is set at the connection between the telescopic component 2032 and the wedge block 2031 to connect the two. In this way, the wedge block 2031 rotates with the core 201, while keeping the telescopic component 2032 from rotating, which facilitates the arrangement of hydraulic oil circuits or pneumatic components.
[0069] In some of the exemplary implementations, combined with Figure 5 As shown, the slider 202 includes a rigid body 2021 and a rubber layer 2022 coated on the rigid body 2021; the connecting rod 2033 is fixedly connected to the rigid body 2021; the end face of the slider 202 that abuts against the cast iron soup pot 6 is an arc surface.
[0070] As described above, by setting the slider 202 to include a rigid body 2021 and a rubber layer 2022, the rigid body 2021 can effectively ensure that the slider 202 is pressed against the inner wall of the cast iron soup pot 6, effectively avoiding the situation where the cast iron soup pot 6 and the core 201 rotate relative to each other; the setting of the rubber layer 2022 can effectively prevent the rigid body 2021 from directly contacting the inner wall of the cast iron and scratching the cast iron soup pot 6, or leaving indentations on the inner wall of the cast iron soup pot 6.
[0071] In some of the exemplary implementations, combined with Figure 1 As shown, the adjusting frame 5 includes a first guide rail 501 arranged along the axial direction of the cast iron soup pot 6, a second guide rail 502 slidably arranged on the first guide rail 501 and perpendicular to the first guide rail 501, and a third guide rail 503 connected to the second guide rail 502 and capable of moving radially along the cast iron soup pot 6; the grinding element 4 is connected to the third guide rail 503.
[0072] By setting the adjustment component 203, which includes the first guide rail 501, the second guide rail 502 and the third guide rail 503, the grinding component 4 can move in three-dimensional space and abut against the circumferential outer wall or bottom of the cast iron soup pot 6, thereby achieving grinding of different positions on the outer surface of the cast iron soup pot 6.
[0073] It is understandable that, in order to enable the second guide rail 502 to slide along the extension direction of the first guide rail 501, and the third guide rail 503 to slide along the extension direction of the second guide rail 502, driving components are provided between the first guide rail 501 and the second guide rail 502, and between the second guide rail 502 and the third guide rail 503. The driving components can be common hydraulic cylinders, pneumatic cylinders, or reciprocating screw assemblies, capable of adjusting the relative movement of the first guide rail 501, the second guide rail 502, and the third guide rail 503. Displacement sensors are provided to improve the movement accuracy of the second guide rail 502 and the third guide rail 503. The specific arrangement of the hydraulic cylinder, pneumatic cylinder, or reciprocating screw, and the displacement sensor, can refer to existing arrangements; this application does not make any improvements in this regard.
[0074] In some of the exemplary implementations, combined with Figure 1 and Figure 2 As shown, the grinding component 4 includes a second motor 401 and a grinding wheel 402 connected to the second motor 401; driving the second motor 401 can drive the grinding wheel 402 to rotate, and the grinding wheel 402 rotates in the opposite direction to the core 201. The rotation axis of the grinding wheel 402 is parallel to the central axis L.
[0075] As described above, by configuring the grinding component 4 to include a second motor 401 and a grinding wheel 402, and making the rotation direction of the grinding wheel 402 opposite to that of the core 201, the relative rotation speed between the cast iron saucepan 6 and the grinding wheel 402 is increased, thereby helping to improve the grinding speed of the cast iron saucepan 6. At the same time, it enables the grinding wheel 402 to be worn evenly, improving the durability of the grinding wheel 402.
[0076] It is understood that, in order to facilitate the setting of the adjusting member 203 inside the core 201, the core 201 in this embodiment includes a first core and a second core. The first core and the second core are symmetrically arranged about a reference plane that passes through the central axis L and is perpendicular to the bottom surface of the core 201. Preferably, the reference plane passes through the clearance hole required by the slider 202 and the connecting rod 2033. This arrangement facilitates the processing, production and assembly of the inner connecting member 2.
[0077] The cast iron cookware processing equipment of this embodiment adopts the above design. By providing an inner connector 2 that can be inserted into the cast iron soup pot 6 and maintain a relative position with it, and a drive component 3 that can drive the cast iron soup pot 6 to rotate, the cast iron soup pot 6 can rotate along its central axis L. When polishing the outer surface of the cast iron soup pot 6, the position of the polishing component 4 only needs to be adjusted by the adjusting bracket 5 so that the polishing component 4 abuts against the outer surface of the cast iron soup pot 6, thus achieving polishing of the outer surface of the cast iron soup pot 6. This effectively avoids the situation where the cast iron soup pot 6 and the polishing component 4 rotate synchronously, and further avoids the situation where the cast iron soup pot 6 is not polished due to a lack of relative displacement between the two components, thereby helping to improve the surface flatness of the cookware.
[0078] The above descriptions are merely some embodiments of this application and are not intended to limit this application. The technical features or structures in the foregoing different embodiments can be arbitrarily combined to form other specific technical solutions as needed. For those skilled in the art, this application can have various modifications and variations. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of the claims of this application.
Claims
1. A casting iron cookware processing device for polishing the outer surface of a cast iron soup pot (6), characterized in that: The cast iron cookware processing equipment includes a base (1), an inner connector (2) inserted into the cast iron soup pot (6) and capable of maintaining a relative position with the cast iron soup pot (6), a drive member (3) provided on the base (1) and capable of driving the inner connector (2) to rotate along the central axis (L) of the cast iron soup pot (6), and an adjustment bracket (5) located on one side of the base (1) and connected to a grinding member (4). The adjusting frame (5) can drive the grinding part (4) to move along the axial and radial directions of the cast iron soup pot (6), so that the grinding part (4) abuts against the outer surface of the cast iron soup pot (6).
2. The cast iron cookware processing equipment according to claim 1, characterized in that: The inner connector (2) includes a core (201) having an adjustment cavity (2011), a slider (202) that can be moved radially along the cast iron pot (6) and can be embedded in or protrude from the core (201), and an adjustment member (203) disposed in the adjustment cavity (2011) that allows the slider (202) to move radially along the cast iron pot (6).
3. The cast iron cookware processing equipment according to claim 2, characterized in that: The adjusting member (203) includes a wedge block (2031) located in the adjusting cavity (2011), a telescopic member (2032) connected to the wedge block (2031), and a connecting rod (2033) with one end fixed to the slider (202) and the other end inserted into the adjusting cavity (2011) and capable of abutting against the wedge surface (20311) of the wedge block (2031); The telescopic component (2032) drives the wedge block (2031) to move axially along the cast iron soup pot (6), which enables the connecting rod (2033) to move radially along the cast iron soup pot (6).
4. The cast iron cookware processing equipment according to claim 3, characterized in that: The wedge block (2031) is formed with a guide groove (20312), and the bottom wall of the guide groove (20312) is parallel to the wedge surface (20311); The connecting rod (2033) is provided with a guide block (7), and the guide groove (20312) is slidably inserted into the guide groove (20312); and / or, The guide groove (20312) passes through the end face of the wedge block (2031) that connects to the telescopic member (2032).
5. The cast iron cookware processing equipment according to claim 3, characterized in that: The drive component (3) includes a sleeve shaft (301) coaxially fixed to the core (201), a first motor (302) fixed on the base (1), and two transmission gears (303) respectively sleeved on the output shaft of the sleeve shaft (301) and the first motor (302), and the two transmission gears (303) meshing and connecting. The sleeve shaft (301) is rotatably connected to the base (1), and the sleeve shaft (301) is sleeved outside the telescopic member (2032), and the telescopic member (2032) is connected to the sleeve shaft (301).
6. The cast iron cookware processing equipment according to claim 3, characterized in that: The slider (202) includes a rigid body (2021) and a rubber layer (2022) coated on the rigid body (2021); the connecting rod (2033) is fixedly connected to the rigid body (2021); The end face of the slider (202) that abuts against the cast iron soup pot (6) is an arc surface.
7. The cast iron cookware processing equipment according to claim 1, characterized in that: The adjusting frame (5) includes a first guide rail (501) arranged along the axial direction of the cast iron soup pot (6), a second guide rail (502) slidably arranged on the first guide rail (501) and perpendicular to the first guide rail (501), and a third guide rail (503) connected to the second guide rail (502) and capable of moving radially along the cast iron soup pot (6); the grinding element (4) is connected to the third guide rail (503).
8. The cast iron cookware processing equipment according to claim 2, characterized in that: The grinding component (4) includes a second motor (401) and a grinding wheel (402) connected to the second motor (401); The second motor (401) drives the grinding wheel (402) to rotate, and the grinding wheel (402) rotates in the opposite direction to the core (201).
9. The cast iron cookware processing equipment according to claim 8, characterized in that: The axis of rotation of the grinding wheel (402) is parallel to the central axis (L).