Ceramic bowl and dish forming machine
By using a lower mold cylinder with a negative pressure hole structure in the ceramic bowl and plate forming machine, the problem of insufficient mold stability in automated production line was solved, and stable mold positioning and efficient roll forming were achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN HUIXIANG INTELLIGENT EQUIPMENT CO LTD
- Filing Date
- 2025-04-28
- Publication Date
- 2026-05-19
AI Technical Summary
Existing ceramic cylinder and tank forming equipment suffers from insufficient mold stability during automated production lines, leading to speed limitations and affecting the roll forming effect.
The lower mold cylinder, which adopts a negative pressure hole structure, fixes the mold by negative pressure adsorption. Combined with the lifting and rotation drive of the upper and lower modules, it achieves stable positioning and roll forming of the mold.
This improved the stability of the mold during the roll forming process, enabling efficient roll forming in line production.
Smart Images

Figure CN224255632U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of ceramic ware production equipment, and in particular to a ceramic bowl and plate forming machine. Background Technology
[0002] Traditional ceramic cylinders and jars are formed manually, which is inefficient and results in poor product quality, uneven density, low compactness, and problems such as leakage and cracking. With technological advancements, roll forming equipment has been used in ceramic forming processes to roll-form ceramic blanks. Clay is placed in a rotating mold, and the rolling die and rotating cylinder rotate around a fixed axis, stretching and pressing the plastic clay within the mold into shape. Existing semi-automatic forming machines generally achieve clay pressing by moving and pressing down the rolling die. However, in automated production lines, the mold barrel needs to rise to lift the mold and clay blank in the production line for rolling. While existing forming equipment can drive the mold barrel to lift and rotate, it has very limited control over the mold. Therefore, both the mold and the rolling die need to maintain a low rotation speed; otherwise, the mold may detach or shift, affecting the rolling forming effect. Utility Model Content
[0003] The purpose of this utility model is to provide a ceramic bowl and plate forming machine to solve one or more technical problems existing in the prior art, and at least provide a beneficial option or create conditions.
[0004] The technical solution adopted to solve the above-mentioned technical problems is as follows:
[0005] A ceramic bowl and plate forming machine includes: a frame, an upper mold and a lower mold;
[0006] The upper module and the lower module are arranged vertically, and both the upper module and the lower module are connected to the frame. The frame is provided with a lower mold lifting drive component for driving the lower module to move up and down. The lower end of the upper module is provided with a rolling die head.
[0007] The lower mold assembly includes a lower mold cylinder, a lower mold shaft, and a lower mold rotation drive unit. The lower mold shaft extends vertically, and the lower mold rotation drive unit is driven to rotate the lower mold shaft. The lower mold cylinder is coaxially fixedly installed on the upper end of the lower mold shaft, and the upper end of the lower mold shaft is provided with a negative pressure hole that connects the lower mold cylinder and the negative pressure generating element.
[0008] The ceramic bowl and plate forming machine provided by this utility model has at least the following beneficial effects: the lower mold lifting drive component can drive the lower mold assembly to move upward, so that the lower mold cylinder can lift the mold and clay blank on the production line; the lower mold rotation drive unit can drive the lower mold shaft to rotate, thereby rotating the lower mold cylinder, which cooperates with the upper mold assembly to achieve roll forming. During the roll forming process, negative pressure suction can be achieved through the negative pressure hole of the lower mold shaft, thereby forming negative pressure adsorption in the lower mold cylinder, which firmly fixes the mold in the lower mold cylinder. After the roll forming process is completed, when the lower mold assembly is lowered to reset, the negative pressure hole releases the negative pressure, allowing the mold to detach and be placed back on the production line. The ceramic bowl and plate forming machine of this utility model, through the negative pressure hole structure, enables the lower mold cylinder to perform negative pressure adsorption and positioning of the mold, improving the stability of the mold, thereby realizing the continuous production of roll forming.
[0009] As a further improvement to the above technical solution, the lower module includes a lower mold base, which is slidably disposed on the front side of the frame along the vertical direction. The lower mold lifting drive component is connected to the lower mold base in a transmission manner, and the lower mold shaft is rotatably disposed through the lower mold base.
[0010] As a further improvement to the above technical solution, the lower mold base includes a lower mold slide plate and a lower mold box. The rear side of the lower mold slide plate is slidably connected to the frame. The lower mold box is fixedly installed on the front side of the lower mold slide plate. The lower mold cylinder and the lower mold rotation drive unit are respectively located on the upper and lower sides of the lower mold box.
[0011] As a further improvement to the above technical solution, the lower mold base has a hollow connecting cavity, and a negative pressure cylinder is provided in the connecting cavity and is coaxially rotatably sleeved on the outside of the lower mold shaft. The lower mold shaft has a connecting channel connecting the negative pressure hole and the inside of the negative pressure cylinder.
[0012] As a further improvement to the above technical solution, the lower mold lifting drive component includes a lower mold lifting drive unit and a cam drive disk. The cam drive disk is rotatably mounted on the frame. The lower mold lifting drive unit is used to drive the cam drive disk to rotate. The lower mold base is rotatably provided with a drive roller. The drive roller is located on the upper side of the cam drive disk and rolls against the outer edge of the cam drive disk.
[0013] As a further improvement to the above technical solution, the upper module includes an upper die base and a rolling drive component. The rolling drive component includes a rolling die head and an upper die rotation drive unit for driving the rolling die head to rotate. The rolling drive component is adjustablely installed on the front side of the upper die base, and the upper die base is connected to the frame.
[0014] As a further improvement to the above technical solution, the rolling drive component has a hinge part and an adjustment part. The hinge part is rotatably hinged to the upper die base. The upper die base is provided with a strip-shaped adjustment groove extending around the arc of the hinge part. The adjustment part is adjustablely disposed in the strip-shaped adjustment groove.
[0015] As a further improvement to the above technical solution, the frame includes a base frame and an upper mold platform. The lower mold assembly is installed on the front side of the base frame, and the upper mold platform is located on the upper side of the base frame. The base frame is provided with an upper mold translation drive component for driving the upper mold platform to move back and forth. The upper mold assembly is installed on the front side of the upper mold platform, and the upper mold platform is provided with an upper mold lifting drive component for driving the upper mold assembly to move up and down.
[0016] As a further improvement to the above technical solution, a scraper mechanism for scraping mud is provided on the front side of the base frame, and a waste conveying mechanism that extends left and right and is fixedly connected to the base frame is provided on the rear side of the lower mold cylinder.
[0017] As a further improvement to the above technical solution, the frame also includes a base, which is located on the lower side of the base frame, and the base frame is adjustablely mounted on the upper side of the base in the front-back direction. Attached Figure Description
[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0019] Figure 1 This is a three-dimensional schematic diagram of an embodiment of the ceramic bowl and plate forming machine provided by this utility model;
[0020] Figure 2 This is a side view of an embodiment of the ceramic bowl and plate forming machine provided by this utility model;
[0021] Figure 3 yes Figure 2 A magnified view of a portion of region A in the middle;
[0022] Figure 4 This is a side sectional view of an embodiment of the ceramic bowl and plate forming machine provided by this utility model;
[0023] Figure 5 yes Figure 4 A magnified view of a portion of region B in the middle;
[0024] Figure 6 This is a rear view of an embodiment of the ceramic bowl and plate forming machine provided by this utility model.
[0025] In the diagram: 100-Frame, 110-Base, 111-Guide bar, 120-Base frame, 121-Guide wheel, 130-Upper mold table, 140-Lower mold lifting drive component, 141-Lower mold lifting drive unit, 142-Cam drive disc, 150-Upper mold translation drive component, 160-Upper mold lifting drive component, 200-Lower mold assembly, 210-Lower mold cylinder, 220-Lower mold shaft, 221-Negative pressure hole, 222-Negative pressure channel. 223-Connecting channel, 230-Lower mold rotation drive unit, 240-Lower mold base, 241-Lower mold slide plate, 242-Lower mold box, 243-Drive roller, 250-Negative pressure cylinder, 251-Connecting pipe port, 300-Upper mold assembly, 310-Upper mold base, 311-Adjusting component, 312-Adjusting screw, 320-Upper mold core base, 321-Hinge, 322-Adjusting component, 330-Rolling die head, 340-Upper mold rotation drive unit. Detailed Implementation
[0026] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0027] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model 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. Therefore, they should not be construed as limitations on this utility model.
[0028] In the description of this utility model, if there are words such as "several", they mean one or more, "multiple" means two or more, "greater than", "less than", "exceeding" etc. are understood to exclude the number itself, and "above", "below", "within" etc. are understood to include the number itself.
[0029] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0030] Reference Figures 1 to 6 The ceramic bowl and plate forming machine of this utility model is described in the following embodiments:
[0031] A ceramic bowl and plate forming machine includes: a frame 100, an upper mold 300, and a lower mold 200.
[0032] The upper module 300 and the lower module 200 are arranged vertically on the front side of the frame 100, and both the upper module 300 and the lower module 200 are connected to the frame 100. The frame 100 is provided with a lower mold lifting drive component 140, which has a lower mold lifting drive end that is pulsatorically connected to the lower module 200 and causes the lower module 200 to move vertically relative to the frame 100.
[0033] The lower mold assembly 200 includes a lower mold cylinder 210, a lower mold shaft 220, and a lower mold rotation drive unit 230. The lower mold shaft 220 has a central axis extending vertically, and the lower mold rotation drive unit 230 is drivenly connected to the lower mold shaft 220 to rotate the lower mold shaft 220 around the central axis. The lower mold cylinder 210 is coaxially fixedly mounted on the upper end of the lower mold shaft 220, and the upper end of the lower mold shaft 220 is provided with a negative pressure hole 221, which communicates with the lower mold cylinder 210 and a negative pressure generating element.
[0034] In practical use, the lower mold lifting drive component 140 can drive the lower mold assembly 200 to move upward, so that the lower mold cylinder 210 can lift the mold and clay blank on the production line. The lower mold rotation drive unit 230 can drive the lower mold shaft 220 to rotate, thereby rotating the lower mold cylinder 210, which cooperates with the upper mold assembly 300 to achieve roll forming. During the roll forming process, negative pressure suction can be achieved through the negative pressure hole 221 of the lower mold shaft 220, thereby forming negative pressure adsorption in the lower mold cylinder 210, which firmly fixes the mold in the lower mold cylinder 210. After the roll forming process is completed, when the lower mold assembly 200 returns to its original position, the negative pressure hole 221 releases the negative pressure, allowing the mold to detach and be placed back on the production line. The ceramic bowl and plate forming machine of this utility model enables the lower mold cylinder 210 to perform negative pressure adsorption and positioning of the mold through the structure of the negative pressure hole 221, thereby realizing the continuous production of roll forming.
[0035] The lower module 200 includes a lower mold base 240, which is slidably disposed on the front side of the frame 100. The lower mold lifting drive component 140 is connected to the lower mold base 240 in a transmission manner, and the lower mold shaft 220 is rotatably inserted through the lower mold base 240.
[0036] In this embodiment, the lower mold base 240 includes a lower mold slide plate 241 and a lower mold box 242. The lower mold slide plate 241 is plate-shaped, and the rear side of the lower mold slide plate 241 is slidably connected to the frame 100 in the vertical direction via a linear slide rail. The lower mold box 242 is located on the front side of the lower mold slide plate 241 and is fixedly connected to the lower mold slide plate 241.
[0037] The lower mold shaft 220 extends vertically and rotatably passes through the lower mold base 240. The lower mold cylinder 210 and the lower mold rotation drive unit 230 are respectively located on the upper and lower sides of the lower mold box 242. Considering the ease of controlling the rotation speed and accuracy of the lower mold cylinder 210, the lower mold rotation drive unit 230 in this embodiment is a servo motor. In other embodiments, the lower mold rotation drive unit 230 may be a stepper motor or a pneumatic motor, or other rotary drive components.
[0038] The lower mold box 242 is box-shaped and has a hollow connecting cavity. A negative pressure cylinder 250 is housed within the connecting cavity. The negative pressure cylinder 250 is cylindrical and coaxially rotatably fitted onto the outside of the lower mold shaft 220. Both the upper and lower ends of the negative pressure cylinder 250 are sealed to the upper and lower sides of the lower mold box 242, forming a cylindrical space between the inner surface of the negative pressure cylinder 250 and the outer periphery of the lower mold shaft 220. The lower mold shaft 220 has a negative pressure channel 222 extending along its centerline, with a negative pressure hole 221 located at the upper end of the negative pressure channel 222. The lower mold shaft 220 also has a radially extending connecting channel 223, one end of which connects to the negative pressure channel 222, and the other end connects to the inner space of the negative pressure cylinder 250. A connecting port 251 is located on the front side of the negative pressure cylinder 250.
[0039] In actual use, the lower mold shaft 220 and the lower mold cylinder 210 are driven to rotate by the lower mold rotation drive unit 230. The pipe port 251 of the negative pressure cylinder 250 can be connected to the negative pressure generating element through the pipe, thereby forming a negative pressure inside the negative pressure cylinder 250. The negative pressure can be connected to the negative pressure hole 221 along the connecting channel 223, thereby achieving negative pressure suction on the inside of the lower mold cylinder 210, so that the mold can be adsorbed and fixed inside the lower mold cylinder 210, improving the stability of rolling.
[0040] The split-structure lower mold base 240 can be connected to the frame 100 and the lower mold assembly 200 respectively via the lower mold slide plate 241 and the lower mold box 242, reducing processing costs. In some other embodiments, the lower mold base 240 can be a one-piece molded structure.
[0041] In this embodiment, the lower die lifting drive component 140 is a cam mechanism, comprising a lower die lifting drive unit 141 and a cam drive disk 142. The cam drive disk 142 is rotatably mounted on the frame 100, and its rotation axis extends in the front-rear direction. The cam drive disk 142 is plate-shaped, and the distance between its edge and its rotation axis is not always equal. The lower die lifting drive unit 141 has a lower die lifting drive end that is connected to the cam drive disk 142 and causes the cam drive disk 142 to rotate relative to the frame 100. In this embodiment, the lower die lifting drive unit 141 can be a rotary cylinder, servo motor, stepper motor, or pneumatic motor, etc. A drive roller 243 is rotatably provided on the rear side of the lower die slide plate 241, and the rotation axis of the drive roller 243 is parallel to the rotation axis of the cam drive disk 142. The drive roller 243 is located on the upper side of the cam drive disk 142, and the outer edge of the drive roller 243 rolls and abuts against the upper end of the outer edge of the cam drive disk 142.
[0042] In actual use, the lower module 200 presses downwards under its own weight, causing the drive roller 243 to press downwards against the upper side of the cam drive disk 142. When the lower module lifting drive unit 141 drives the cam drive disk 142 to rotate, the height of the upper end of the outer edge of the cam drive disk 142 changes in the opposite direction, thereby causing the drive roller 243 to move up and down, thus driving the lifting action of the lower module 200.
[0043] The upper mold assembly 300 includes an upper mold base 310 and a rolling drive component. The rolling drive component includes an upper mold core base 320, a rolling die head 330, and an upper mold rotation drive unit 340. The upper mold rotation drive unit 340 drives the rolling die head 330 to rotate. Considering ease of control over the rotation speed and accuracy of the rolling die head 330, the upper mold rotation drive unit 340 in this embodiment uses a servo motor. In other embodiments, the upper mold rotation drive unit 340 can be a stepper motor or a pneumatic motor, etc., as a rotary drive element. The upper mold rotation drive unit 340 and the rolling die head 330 are respectively located at both ends of the upper mold core base 320, and the output shaft of the upper mold rotation drive unit 340 is drively connected to the rolling die head 330.
[0044] To accommodate different rolling requirements, the rolling drive component is adjustablely mounted on the front side of the upper die holder 310. Specifically, the upper die holder 310 is connected to the frame 100, and the upper die core holder 320 is adjustablely connected to the upper die holder 310 around a left-right extending rotation axis.
[0045] The upper mold core base 320 is provided with hinge portions 321 and adjustment portions 322 on both its left and right sides. The hinge portions 321 are rotatably hinged to the upper mold base 310 along a left-right extending rotation axis. The front end of the upper mold base 310 is provided with connecting plates arranged in pairs at intervals on the left and right sides. The upper mold core base 320 is located between the two connecting plates. The connecting plates are provided with strip-shaped adjustment grooves extending in an arc around the hinge portions 321. The adjustment portions 322 are adjustablely disposed within the strip-shaped adjustment grooves.
[0046] Specifically, refer to the appendix Figure 2 and 3 The upper mold base 310 has adjusting members 311 on both its left and right sides. The adjusting part 322 is equipped with a connecting screw, which passes through the strip-shaped adjusting groove and is locked to one end of the adjusting member 311 by a nut. The other end of the adjusting member 311 is rotatably connected to an adjusting screw 312. The upper mold base 310 is rotatably connected to a transmission member threadedly connected to the adjusting screw 312. In actual use, loosening the nut allows the connecting screw and adjusting member 311 to be released. Rotating the adjusting screw 312 then drives the distance between the connecting screw and the transmission member through threaded transmission, allowing the adjusting part 322 to swing around the hinge part 321 along the strip-shaped adjusting groove, thus adjusting the swing of the upper mold core base 320. After adjustment, the adjusting member 311 and the connecting screw are locked and fixed to the connecting plate of the upper mold base 310 by a nut, achieving fixation.
[0047] In this embodiment, the frame 100 includes a base 110, a base frame 120, and an upper mold table 130.
[0048] The base frame 120 is located on the upper side of the base 110, and the upper mold platform 130 is located on the upper side of the base frame 120.
[0049] The lower module 200 is disposed on the front side of the base frame 120. The rear side of the lower mold slide plate 241 is slidably connected to the front end of the base frame 120. The base frame 120 has a box structure, and the lower mold lifting drive component 140 is disposed inside the base frame 120. The front end of the base frame 120 is provided with a vertically extending clearance groove. The projection of the drive roller 243 in the front-rear direction is located in the clearance groove. The rear side of the lower mold slide plate 241 is provided with a connecting part that extends rearward into the clearance groove.
[0050] The upper mold platform 130 is slidably disposed on the upper side of the base frame 120 in the front-back direction. The lower end of the upper mold platform 130 is slidably connected to the base frame 120 via a linear slide rail extending front-back. The base frame 120 is provided with an upper mold translation drive component 150 for driving the upper mold platform 130 to move back and forth. The upper mold assembly 300 is disposed on the front side of the upper mold platform 130, and the rear side of the upper mold base 310 is slidably connected to the upper mold platform 130 in the vertical direction. The upper mold platform 130 is provided with an upper mold lifting drive component 160 for driving the upper mold assembly 300 to move up and down. The upper mold translation drive component 150 and the upper mold lifting drive component 160 can be linear drive components such as cylinders, electric push rods, hydraulic push rods, or lead screw and nut drive assemblies.
[0051] In this embodiment, the base frame 120 is adjustablely mounted on the upper side of the base 110 in the front-to-back direction. The base 110 is a rectangular frame shape, and guide strips 111 extending front-to-back are provided on the left and right sides of the upper end of the base 110. Guide wheels 121 arranged front-to-back are provided on both the left and right sides of the base frame 120, and the guide wheels 121 roll and abut against the guide strips 111. At least one of the guide strips 111 has a cross-section with a high center and low left and right sides. The outer peripheral surface of the guide wheel 121 on the same side is provided with a groove, and the cross-sectional shape of the groove matches the cross-sectional shape of the guide strip 111.
[0052] The front side of the base frame 120 is equipped with a scraper mechanism, which includes a scraper blade and a scraper feed drive component. The scraper feed drive component can be a linear drive component such as a cylinder, electric push rod, hydraulic push rod, or lead screw and nut drive assembly. One end of the scraper blade is connected to the scraper blade, and the other end of the scraper blade faces the rolling die head 330. The scraper feed drive component is arranged along the line connecting the scraper blade and the rolling die head 330. In actual use, the scraper blade is driven by the scraper feed drive component to clean the residue on the rolling die head 330.
[0053] In a further embodiment, the rear side of the lower mold cylinder 210 is provided with a waste conveying mechanism extending laterally and fixedly connected to the base frame 120. The waste conveying mechanism can be a belt conveyor mechanism, which transports and transfers the mud scraped off by the scraper mechanism through a circulating conveyor belt.
[0054] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0055] Although embodiments of the present invention have been shown and described, those skilled in the art can make various changes, modifications, substitutions and alterations to these embodiments without departing from the principles and spirit of the present invention. All such changes, modifications, equivalent alterations or substitutions are included within the scope defined by the claims of this application, and the scope of the present invention is defined by the claims and their equivalents.
Claims
1. A ceramic bowl and plate forming machine, characterized in that: include: Frame, upper module, and lower module; The upper module and the lower module are arranged vertically, and both the upper module and the lower module are connected to the frame. The frame is provided with a lower mold lifting drive component for driving the lower module to move up and down. The lower end of the upper module is provided with a rolling die head. The lower mold assembly includes a lower mold cylinder, a lower mold shaft, and a lower mold rotation drive unit. The lower mold shaft extends vertically, and the lower mold rotation drive unit is driven to rotate the lower mold shaft. The lower mold cylinder is coaxially fixedly installed on the upper end of the lower mold shaft, and the upper end of the lower mold shaft is provided with a negative pressure hole that connects the lower mold cylinder and the negative pressure generating element.
2. The ceramic bowl and plate forming machine according to claim 1, characterized in that: The lower mold assembly includes a lower mold base, which is slidably disposed on the front side of the frame. The lower mold lifting drive component is connected to the lower mold base in a transmission manner, and the lower mold shaft is rotatably inserted through the lower mold base.
3. The ceramic bowl and plate forming machine according to claim 2, characterized in that: The lower mold base includes a lower mold slide plate and a lower mold box. The rear side of the lower mold slide plate is slidably connected to the frame. The lower mold box is fixedly installed on the front side of the lower mold slide plate. The lower mold cylinder and the lower mold rotation drive unit are respectively located on the upper and lower sides of the lower mold box.
4. The ceramic bowl and plate forming machine according to claim 2, characterized in that: The lower mold base has a hollow connecting cavity, and a negative pressure cylinder is coaxially rotatably sleeved on the outside of the lower mold shaft inside the connecting cavity. The lower mold shaft has a connecting channel connecting the negative pressure hole and the inside of the negative pressure cylinder.
5. The ceramic bowl and plate forming machine according to claim 2, characterized in that: The lower die lifting drive component includes a lower die lifting drive unit and a cam drive disk. The cam drive disk is rotatably mounted on the frame. The lower die lifting drive unit is used to drive the cam drive disk to rotate. The lower die base is rotatably provided with a drive roller. The drive roller is located on the upper side of the cam drive disk and rolls against the outer edge of the cam drive disk.
6. The ceramic bowl and plate forming machine according to claim 1, characterized in that: The upper module includes an upper die base and a rolling drive component. The rolling drive component includes a rolling die head and an upper die rotation drive unit for driving the rolling die head to rotate. The rolling drive component is adjustablely installed on the front side of the upper die base, and the upper die base is connected to the frame.
7. The ceramic bowl and plate forming machine according to claim 6, characterized in that: The rolling drive component has a hinge part and an adjustment part. The hinge part is rotatably hinged to the upper die base. The upper die base is provided with a strip-shaped adjustment groove extending around the arc of the hinge part. The adjustment part is adjustablely disposed in the strip-shaped adjustment groove.
8. The ceramic bowl and plate forming machine according to claim 1, characterized in that: The frame includes a base frame and an upper mold platform. The lower mold assembly is installed on the front side of the base frame, and the upper mold platform is located on the upper side of the base frame. The base frame is provided with an upper mold translation drive component for driving the upper mold platform to move back and forth. The upper mold assembly is installed on the front side of the upper mold platform, and the upper mold platform is provided with an upper mold lifting drive component for driving the upper mold assembly to move up and down.
9. The ceramic bowl and plate forming machine according to claim 8, characterized in that: The front side of the base frame is provided with a scraper mechanism for scraping mud, and the rear side of the lower mold cylinder is provided with a waste conveying mechanism that extends left and right and is fixedly connected to the base frame.
10. The ceramic bowl and plate forming machine according to claim 8, characterized in that: The frame also includes a base, which is located on the lower side of the base frame, and the base frame is adjustablely mounted on the upper side of the base in the front-to-back direction.