Segmentation cutting mechanism and forming device for ultra-light clay
By designing a cutting mechanism for ultra-light clay, which uses a cylinder to drive the cutting blade and conveyor belt to achieve automated cutting, the problems of low cutting efficiency and inconsistent quality of ultra-light clay are solved, thus improving production efficiency and product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2026-03-31
AI Technical Summary
The current cutting process of ultralight clay relies on manual operation, which is inefficient and results in poor product quality consistency, making it difficult to achieve mechanized production.
Design a cutting mechanism that includes a drive component and a cutting component. The cutting blade is driven by a cylinder for automatic cutting, and a conveyor belt and a detection component are combined to achieve precise cutting, forming segmented ultralight clay.
It improves production efficiency, reduces reliance on manual labor, ensures consistent product quality, enhances safety and hygiene, and reduces labor intensity and costs.
Smart Images

Figure CN224059905U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of clay processing equipment technology, and in particular to a cutting mechanism and forming device for ultralight clay. Background Technology
[0002] Super light clay is a very popular craft material, especially suitable for making various models and children's crafts. Its main characteristics are as its name suggests—it is very lightweight and has a soft, easily moldable texture. This clay is typically made from a mixture of foaming powder (also known as microbead powder), glue, and other additives. Because it contains a large number of air-filled tiny beads, it is much lighter than traditional clay or polymer clay.
[0003] Super light clay, due to its soft texture, rich colors, and ease of shaping, is widely used in handicrafts, artistic creations, and children's toys. In the production process of super light clay, it is often necessary to process the clay into blocks of specific sizes and further cut them into smaller pieces for packaging and sales.
[0004] Currently, traditional semi-finished large blocks of ultralight clay (generally referring to semi-finished products produced in kneaders) are typically rolled into long strips manually using rollers. Slitting is primarily done manually, with workers pulling and stretching the large blocks into smaller pieces. This method is not only inefficient, but also prone to inconsistent clay block size due to variations in manual operation, severely impacting product quality and production efficiency. While some large screw extrusion machines exist, these devices are mostly complex in structure, and subsequent slitting still requires manual intervention.
[0005] Therefore, there is an urgent need for a cutting mechanism that can cut ultralight clay into small pieces using mechanized means. Summary of the Invention
[0006] (a) Technical problems to be solved
[0007] In view of the above-mentioned shortcomings and deficiencies of the prior art, the present invention provides a cutting mechanism and forming device for ultra-light clay, which solves the technical problems of low efficiency and poor product quality consistency caused by relying on manual labor to divide large blocks of clay into small blocks.
[0008] (II) Technical Solution
[0009] To achieve the above objectives, the main technical solutions adopted by this utility model include:
[0010] On one hand, this utility model provides a segmenting mechanism for ultra-light clay, the segmenting mechanism including a mounting frame, a drive assembly, and a segmenting assembly; the mounting frame is vertically arranged, and the space below it is for a conveyor belt for conveying long strips of ultra-light clay to pass through; the segmenting assembly is vertically mounted on the top of the mounting frame, and the cutting end of the segmenting assembly is always located in the space below the mounting frame and above the conveyor belt, for cutting the long strips of ultra-light clay; the fixed end of the drive assembly is installed on the top of the mounting frame, and the driving end of the drive assembly passes through the top of the mounting frame and connects to the cutting end; the driving end of the drive assembly can drive the segmenting assembly to repeatedly move vertically up and down, so as to drive the cutting end to repeatedly cut the long strips of ultra-light clay, so as to cut it into segments of ultra-light clay.
[0011] Preferably, the slicing assembly includes a cutting blade and at least two guide rods; the cutting blade forms the cutting end of the slicing assembly and is horizontally located within the mounting frame; the bottoms of the at least two guide rods vertically pass through the top of the mounting frame and are respectively vertically connected to the cutting blade to guide the cutting direction of the cutting blade.
[0012] Preferably, the drive assembly includes a cylinder and a connector; the telescopic end of the cylinder constitutes the drive end of the drive assembly; the connector is vertically arranged, and both ends of the connector are respectively connected to the telescopic end of the cylinder and the cutting blade; the fixed end of the cylinder is installed on the top of the mounting frame; the telescopic end of the cylinder passes through the top of the mounting frame and is connected to the connector; the telescopic end of the cylinder can drive the cutting blade to repeatedly rise and fall vertically through the connector.
[0013] Preferably, the connector is located in the middle of the cutting blade, and the midpoint of the cutting blade is located on the axis of the cylinder and the connector.
[0014] Preferably, the cutting mechanism further includes a detection component; the detection component is installed on the end side wall of the conveyor belt along the conveying direction, and the detection component is electrically connected to the cylinder for detecting the end of the long strip of ultralight clay.
[0015] Preferably, the detection components may be provided in multiple sets, and the multiple sets of detection components are arranged along the conveying direction of the conveyor belt, and all the multiple sets of detection components are electrically connected to the cylinder.
[0016] Preferably, the detection component includes a mounting block and a photoelectric sensor; the mounting block is mounted on the end sidewall of the conveyor belt along the conveying direction, the photoelectric sensor is mounted on the mounting block, and the detection direction of the photoelectric sensor faces the conveyor belt, and the photoelectric sensor is electrically connected to the cylinder.
[0017] Preferably, each mounting block can be provided with multiple photoelectric sensors, which are mounted on the mounting block from top to bottom, and the detection direction of the multiple photoelectric sensors is facing the conveyor belt, and the multiple photoelectric sensors are electrically connected to the cylinder.
[0018] Preferably, the diameter of the connector is the same as the diameter of the cutting blade.
[0019] On the other hand, this utility model provides a molding device for ultralight clay, including the cutting mechanism described above, as well as a support frame and a rolling mechanism; the rolling mechanism is installed on the top of the support frame and is used to roll block-shaped ultralight clay into the long strip-shaped ultralight clay; the conveyor belt can receive and transport the long strip-shaped ultralight clay; the cutting mechanism is located near the end of the conveyor belt along the conveying direction of the conveyor belt, so that the conveyor belt transports the long strip-shaped ultralight clay to the cutting mechanism for cutting.
[0020] (III) Beneficial Effects
[0021] The beneficial effects of this utility model are:
[0022] This invention, by incorporating a drive component and a cutting component, enables the cutting component to repeatedly move vertically up and down, cutting long strips of ultralight clay into segments. This allows the cutting component to perform continuous cutting operations, significantly shortening the processing time for each batch of ultralight clay, improving work efficiency, and increasing overall production efficiency. Compared to manual pulling, the cutting mechanism reduces reliance on manual labor, lowering labor costs and reducing worker fatigue. Furthermore, the conveyor belt eliminates the need for manual contact with the long strips of ultralight clay, greatly improving its hygiene. Since the cutting component is driven by the drive component, worker injury from touching the cutting component is also prevented, enhancing safety. This invention, through its drive and cutting components, enables mechanized cutting of long strips of ultralight clay, improving work efficiency and saving production time. Attached Figure Description
[0023] Figure 1 This is a three-dimensional schematic diagram of the overall structure of a cutting mechanism and forming device for ultralight clay according to the present invention.
[0024] Figure 2 This is a three-dimensional schematic diagram of the overall structure of a cutting mechanism and forming device for ultra-light clay according to the present invention.
[0025] [Explanation of Labels in the Attached Image]
[0026] 1: Conveyor belt; 2: Mounting frame; 3: Drive assembly; 31: Cylinder; 32: Connector; 4: Cutting assembly; 41: Cutting blade; 42: Guide rod; 5: Detection assembly; 51: Mounting block; 52: Photoelectric sensor; 6: Support frame; 7: Rolling mechanism. Detailed Implementation
[0027] To better understand the above technical solutions, exemplary embodiments of the present invention will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present invention are shown in the drawings, it should be understood that the present invention can be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that the present invention can be understood more clearly and thoroughly, and that the scope of the present invention can be fully conveyed to those skilled in the art.
[0028] Example 1
[0029] This embodiment provides a cutting mechanism for ultralight clay, which includes a mounting frame 2, a drive assembly 3, and a cutting assembly 4.
[0030] Specifically, such as Figure 1 As shown, the mounting frame 2 is vertically arranged, with the space below it for the conveyor belt 1, used for transporting long strips of ultra-light clay, to pass through. It should be noted that the space below refers to the space below the top of the mounting frame 2. The cutting assembly 4 is vertically mounted on the top of the mounting frame 2, with its cutting end always located within the space below the mounting frame 2 and above the conveyor belt 1, for cutting the long strips of ultra-light clay. The fixed end of the drive assembly 3 is mounted on the top of the mounting frame 2, and the driving end of the drive assembly 3 passes through the top of the mounting frame 2 and connects to the cutting end. The driving end of the drive assembly 3 can drive the cutting assembly 4 to repeatedly move vertically up and down, thereby causing the cutting end to repeatedly cut the long strips of ultra-light clay into segments. By configuring a drive component 3 and a cutting component 4, the drive component 3 can drive the cutting component 4 to repeatedly rise and fall vertically, enabling the cutting of long strips of ultralight clay into segments. This allows the cutting component 4 to perform continuous cutting operations, significantly shortening the processing time for each batch of ultralight clay, improving work efficiency, and increasing overall production efficiency. Compared to manual pulling, the cutting mechanism reduces reliance on manual labor, lowering labor costs and reducing worker fatigue. Furthermore, the conveyor belt 1 eliminates the need for manual contact with the long strips of ultralight clay, greatly improving its hygiene. Since the drive component 3 drives the cutting component 4 to cut the long strips, worker injury from touching the cutting component 4 is also prevented, enhancing safety.
[0031] It should be noted that the conveyor belt 1 is driven by a driving component, which can be a drive motor.
[0032] Furthermore, such as Figure 2 As shown, the cutting assembly 4 includes a cutting blade 41 and at least two guide rods 42. The cutting blade 41 forms the cutting end of the cutting assembly 4. The cutting blade 41 is horizontally located within the mounting frame 2. The driving end of the drive assembly 3 is connected to the cutting blade 41, enabling the cutting blade 41 to effectively cut long strips of ultra-light clay. Furthermore, because the cutting blade 41 can rapidly and repeatedly rise and fall vertically under the drive of the drive assembly 3, combined with the continuous conveying of the long strips of ultra-light clay by the conveyor belt 1, the processing cycle of the long strips of ultra-light clay is significantly shortened, and production efficiency is significantly improved. The bottom of the at least two guide rods 42 vertically passes through the top of the mounting frame 2 and is vertically connected to the cutting blade 41 to guide the cutting direction of the cutting blade 41. This ensures that the at least two guide rods 42 can effectively constrain the movement direction of the cutting blade 41, ensuring that it maintains a straight line during vertical rising and falling. This avoids the problem of the cutting blade 41 shifting or tilting due to uneven force, thereby improving the cutting accuracy and consistency.
[0033] Furthermore, such as Figure 2 As shown, the drive assembly 3 includes a cylinder 31 and a connector 32. The telescopic end of the cylinder 31 constitutes the drive end of the drive assembly 3. By setting the cylinder 31, it has the characteristics of fast response speed and stable output force. The connector 32 is set vertically, and its two ends are connected to the telescopic end of the cylinder 31 and the cutting blade 41, respectively. The fixed end of the cylinder 31 is installed on the top of the mounting frame 2, and the telescopic end of the cylinder 31 passes through the top of the mounting frame 2 and connects to the connector 32. The telescopic end of the cylinder 31 can drive the cutting blade 41 to move vertically up and down repeatedly through the connector 32, thereby realizing the continuous cutting of long strips of ultra-light clay. Compared with the traditional manual pulling method, the setting of the cylinder 31 and the cutting blade 41 significantly improves the cutting efficiency and shortens the production cycle. Preferably, the connector 32 is located in the middle of the cutting blade 41, and the midpoint of the cutting blade 41 is located on the axis of the cylinder 31 and the connector 32. This allows the driving force of the cylinder 31 to be evenly transmitted to the cutting blade 41, avoiding the cutting blade 41 from tilting or shifting due to uneven force, ensuring that the cutting blade 41 always remains horizontal during the cutting process, and improving the stability of the cutting.
[0034] Furthermore, the diameter of the connector 32 is the same as the diameter of the cutting blade 41, thereby ensuring that the end face of the long strip of ultralight clay cut by the cutting blade 41 under the drive of the cylinder 31 and the connector 32 is smooth, avoiding irregular end faces of each segment of ultralight clay after cutting, and improving product quality. Preferably, the cutting blade 41 has a round rod structure, which, compared with existing blades, can prevent workers from accidentally touching the cutting blade 41 and causing danger to their hands, thus improving the safety of the cutting mechanism. Moreover, when the round rod structure of the cutting blade 41 cuts long strips of ultralight clay, the gap between the end face of the newly formed segments of ultralight clay and the long strip of ultralight clay is larger due to its round rod structure, preventing the segments of ultralight clay from sticking together again due to their adhesiveness, thereby avoiding affecting the product quality of the formed segments of ultralight clay.
[0035] Furthermore, such as Figure 2 As shown, the cutting mechanism also includes a detection component 5. The detection component 5 is installed on the end side wall of the conveyor belt 1 along the conveying direction. The detection component 5 is electrically connected to the cylinder 31 and is used to detect the end position of the long strip of ultra-light clay in real time. This allows for precise cutting according to the required length of the ultra-light clay, avoiding inconsistent lengths in the segments and improving product quality. By electrically connecting the detection component 5 to the cylinder 31, the detection component 5 detects the end of the ultra-light clay and transmits an electrical signal to the cylinder 31, driving the extension end of the cylinder 31 to extend, thereby driving the cutting blade 41 to cut the long strip of ultra-light clay, improving cutting accuracy and work efficiency. After cutting, the cylinder 31 can drive its extension end to retract, completing the cutting of the long strip of ultra-light clay.
[0036] Furthermore, the detection component 5 can be provided in multiple sets (not shown in the figure). Multiple sets of detection components 5 are arranged along the conveying direction of the conveyor belt 1. All sets of detection components 5 are electrically connected to the cylinder 31. They can drive the cylinder 31 to extend and retract according to the required length of the segmented ultra-light clay, and drive the cutting blade 41 to cut. That is, the cutting is performed according to the required length of the segmented ultra-light clay, thereby improving the applicability and versatility of the cutting mechanism.
[0037] Furthermore, such as Figure 2As shown, the detection component 5 includes a mounting block 51 and a photoelectric sensor 52. The mounting block 51 is installed on the end side wall of the conveyor belt 1 along the conveying direction. The photoelectric sensor 52 is installed on the mounting block 51, and the detection direction of the photoelectric sensor 52 faces the conveyor belt 1. The photoelectric sensor 52 is electrically connected to the cylinder 31. The photoelectric sensor 52 can detect the end of the long strip of ultra-light clay in real time and transmit the electrical signal to the cylinder 31, thereby driving the telescopic end of the cylinder 31 to extend and retract, and driving the cutting blade 41 to cut it. This ensures that the length of each segment of ultra-light clay is consistent, thus achieving a seamless connection from detection to cutting, greatly shortening the processing cycle, and improving work efficiency and product quality.
[0038] Furthermore, each mounting block 51 can be equipped with multiple photoelectric sensors 52 (not shown in the figure). These sensors are mounted from top to bottom on the mounting block 51, with their detection direction facing the conveyor belt 1. All sensors 52 are electrically connected to the cylinder 31. By setting multiple photoelectric sensors 52 on the same mounting block 51, it is possible to detect strips of ultra-light clay of varying thicknesses, ensuring accurate positioning and cutting even when the thickness of the strips varies, thus greatly improving the accuracy of the detection.
[0039] Based on the above structure, the working principle of a cutting mechanism for ultralight clay in this embodiment is as follows:
[0040] like Figure 1 and Figure 2 As shown, the cutting mechanism is first installed and debugged to ensure that the photoelectric sensor 52 can detect normally and that the telescopic end of the cylinder 31 can extend and retract normally. After debugging, multiple photoelectric sensors 52 that can detect the preset length of the long strip of ultra-light clay and the cylinder 31 are turned on to ensure the electrical connection between the multiple photoelectric sensors 52 and the cylinder 31.
[0041] After conveyor belt 1 transports the long strip of ultralight clay through the space below the mounting frame 2, photoelectric sensor 52 detects the end face of the long strip of ultralight clay and immediately transmits an electrical signal to the drive unit of the conveyor belt 1, causing the drive unit to stop conveying conveyor belt 1. At the same time, photoelectric sensor 52 transmits an electrical signal to cylinder 31, causing the telescopic end of cylinder 31 to extend, driving connector 32 and cutting blade 41 to descend vertically. At least two guide rods 42 guide the lifting direction of cutting blade 41. After cutting the long strip of ultralight clay into a segment, the telescopic end of cylinder 31 immediately drives cutting blade 41 and connector 32 to rise vertically, returning to the initial position. Then the drive unit drives conveyor belt 1 to continue transporting to another position. When photoelectric sensor 52 detects the end face of the long strip of ultralight clay again, the above process continues to be executed to separate the long strip of ultralight clay into multiple segments of ultralight clay, which will not be described in detail here.
[0042] Once all the long strips of ultralight clay have been cut, immediately stop driving the cutting mechanism and conveyor belt 1, and clean the remaining ultralight clay from the cutting blade 41, conveyor belt 1, etc., in preparation for cutting again.
[0043] It should be noted that this embodiment does not involve any improvement or use of computer programs; it only provides the connection relationship between the cylinder 31, the drive component, and the photoelectric sensor 52. The improvements in this embodiment do not involve control aspects; existing control processes are all existing practices.
[0044] Example 2
[0045] like Figure 1 As shown, this embodiment of a molding apparatus for ultralight clay includes the aforementioned cutting mechanism, a support frame 6, and a rolling mechanism 7. The rolling mechanism 7 is installed on top of the support frame 6 and is used to roll block-shaped ultralight clay into elongated strips. The conveyor belt 1 receives and transports the elongated strips of ultralight clay. The cutting mechanism is located near the end of the conveyor belt 1 along its conveying direction, allowing the conveyor belt 1 to transport the elongated strips of ultralight clay to the cutting mechanism for cutting. By setting the rolling mechanism 7, it ensures that the block-shaped ultralight clay is uniformly rolled into elongated strips of the same thickness and width, generally elongated cylindrical shapes. The conveyor belt 1 receives and transports the elongated strips of ultralight clay to the cutting mechanism, which ensures that each cut ultralight clay block is of consistent size, greatly improving product dimensional consistency and appearance quality, increasing work efficiency, and enabling continuous production of segmented ultralight clay.
[0046] The rolling mechanism 7 includes multiple rolling rollers. By simply driving these rollers to rotate in the same direction, the blocky ultralight clay can be rolled into long cylindrical ultralight clay strips. After being rolled, the long cylindrical ultralight clay strips are placed onto the conveyor belt 1, which then transports them to the space below the mounting frame 2. This allows the cylinder 31 to drive the cutting blade 41 to cut the long cylindrical ultralight clay strips, forming segmented cylindrical ultralight clay strips. This creates a continuous production line, improving production efficiency.
[0047] In the description of this utility model, it should be understood that the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0048] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0049] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "beneath" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0050] In the description of this specification, the terms "one embodiment," "some embodiments," "embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are 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. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0051] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make modifications, alterations, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A segmenting mechanism for ultra-light clay, characterized in that, The cutting mechanism comprises a mounting frame (2), a driving assembly (3) and a cutting assembly (4); The mounting frame (2) is vertically arranged, and a space below the mounting frame (2) is used for the conveying belt (1) for conveying the long strip-shaped ultra-light clay to pass through; The cutting assembly (4) is vertically and movably arranged on the top of the mounting frame (2), the cutting end of the cutting assembly (4) is always located in the space below the mounting frame (2) and above the conveying belt (1) for cutting the long strip-shaped ultra-light clay; The fixed end of the driving assembly (3) is mounted on the top of the mounting frame (2), and the driving end of the driving assembly (3) is connected with the cutting end through the top of the mounting frame (2); The driving end of the driving assembly (3) can drive the cutting assembly (4) to vertically and repeatedly move up and down, so as to drive the cutting end to repeatedly cut the long strip-shaped ultra-light clay, and cut the long strip-shaped ultra-light clay into segmented ultra-light clay.
2. The cutting mechanism for the ultra-light clay according to claim 1, characterized in that: The cutting assembly (4) comprises a cutting knife (41) and at least two guide rods (42); The cutting knife (41) constitutes the cutting end of the cutting assembly (4), and the cutting knife (41) is horizontally arranged in the mounting frame (2); The bottom of the at least two guide rods (42) vertically passes through the top of the mounting frame (2) and is respectively connected with the cutting knife (41) perpendicularly to guide the cutting direction of the cutting knife (41).
3. The cutting mechanism for the ultra-light clay according to claim 2, characterized in that: The driving assembly (3) comprises a pneumatic cylinder (31) and a connecting piece (32); The telescopic end of the pneumatic cylinder (31) constitutes the driving end of the driving assembly (3); The connecting piece (32) is vertically arranged, and the two ends of the connecting piece (32) are respectively connected with the telescopic end of the pneumatic cylinder (31) and the cutting knife (41), the fixed end of the pneumatic cylinder (31) is mounted on the top of the mounting frame (2), the telescopic end of the pneumatic cylinder (31) is connected with the connecting piece (32) through the top of the mounting frame (2), and the telescopic end of the pneumatic cylinder (31) can drive the cutting knife (41) to vertically and repeatedly move up and down through the connecting piece (32).
4. The cutting mechanism for the ultra-light clay according to claim 3, characterized in that: The connecting piece (32) is located at the middle part of the cutting knife (41), and the midpoint of the cutting knife (41) is located on the axis of the pneumatic cylinder (31) and the connecting piece (32).
5. The cutting mechanism for the ultra-light clay according to claim 4, characterized in that: The cutting mechanism further comprises a detection assembly (5); The detection assembly (5) is mounted on the end wall along the conveying direction of the conveying belt (1), the detection assembly (5) is electrically connected with the pneumatic cylinder (31) for detecting the end of the long strip-shaped ultra-light clay.
6. The cutting mechanism for the ultra-light clay according to claim 5, characterized in that: The detection assembly (5) can be provided with multiple groups, and the multiple groups of detection assemblies (5) are arranged along the conveying direction of the conveying belt (1), and the multiple groups of detection assemblies (5) are all electrically connected with the air cylinder (31). 7.The segmenting mechanism for ultra-light clay according to claim 6, characterized in that: The detection assembly (5) comprises a mounting block (51) and a photoelectric sensor (52); The mounting block (51) is mounted on the end side wall of the conveying belt (1) along the conveying direction, the photoelectric sensor (52) is mounted on the mounting block (51), and the detection direction of the photoelectric sensor (52) faces the conveying belt (1), and the photoelectric sensor (52) is electrically connected with the air cylinder (31). 8.The segmenting mechanism for ultra-light clay according to claim 7, characterized in that: A plurality of photoelectric sensors (52) can be arranged on each mounting block (51), and the plurality of photoelectric sensors (52) are all mounted on the mounting block (51) from top to bottom, the detection direction of the plurality of photoelectric sensors (52) all faces the conveying belt (1), and the plurality of photoelectric sensors (52) are all electrically connected with the air cylinder (31). 9.The segmenting mechanism for ultra-light clay according to claim 4, characterized in that: The diameter of the connecting piece (32) is the same as the diameter of the cutting knife (41).
10. A forming device for super-light clay, comprising the segmenting mechanism according to any one of claims 1 to 9, characterized in that, Further comprising a support frame (6) and a rolling mechanism (7); The rolling mechanism (7) is mounted on the top of the support frame (6) and is used for rolling the block-shaped ultra-light clay into the long strip-shaped ultra-light clay; The conveying belt (1) can receive and convey the long strip-shaped ultra-light clay; The segmenting mechanism is located near the end of the conveying belt (1) along the conveying direction of the conveying belt (1), so that the conveying belt (1) conveys the long strip-shaped ultra-light clay to the segmenting mechanism for cutting.