A new cutting and dividing mechanism
By designing an automated cutting and dividing mechanism and using the pushing, cutting, fixing and dividing components to work together, the problems of low efficiency and low precision of traditional equipment are solved, efficient and stable material processing is achieved, and production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202411175961.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-08-26
AI Technical Summary
Traditional cutting and dividing equipment is inefficient, low-precision, complicated to operate, and requires manual operation, resulting in low production efficiency and prone to errors.
A new type of cutting and dividing mechanism is designed, which adopts automated cutting and dividing operations. The pushing component, cutting component, fixing component and dividing component work together to achieve precise pushing, cutting, fixing and shaking of materials. Multiple detection components and spring components are combined to improve adaptability and reliability.
It significantly improves production efficiency, reduces labor intensity, improves product quality and the stability of the production process, and is suitable for processing parts of different materials and specifications.
Smart Images

Figure CN118952381B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of automated processing equipment, and in particular to a novel cutting and dividing mechanism. Background Art
[0002] With the continuous development of automation technology, more and more production lines are beginning to adopt automated equipment to improve production efficiency. Cutting and sorting are two important steps in the material processing process. However, traditional cutting and sorting equipment often suffers from low efficiency, low precision, and complex operation.
[0003] Currently, most cutting and dividing equipment on the market uses mechanical or hydraulic cutting methods. Although these methods can achieve the cutting function, they have disadvantages such as slow cutting speed, low precision, and high noise. In addition, traditional dividing methods usually require manual operation, which is not only inefficient but also prone to errors.
[0004] Therefore, how to design a new cutting and dividing mechanism to improve production efficiency and product quality and reduce labor costs is an important technical problem that technical personnel in this field need to solve. Summary of the Invention
[0005] The purpose of this application is to overcome the above technical problems and provide a new type of cutting and dividing mechanism.
[0006] The present application provides a novel cutting and dividing mechanism, comprising:
[0007] A new type of cutting and dividing mechanism, comprising:
[0008] Support platform;
[0009] A feeding piece is provided at one end of the support platform, and is provided with a first feeding trough and a pushing hole on the side thereof;
[0010] The pushing assembly is arranged on the side of the feeding piece and includes a first driving piece, a socket piece, a limiting piece and a first fixing piece, one end of the first driving piece is fixed to the supporting platform, and the other end is movably connected to the first fixing piece, the first fixing piece is connected to the limiting piece, the socket piece is movably fixed in the limiting piece and one end is exposed to connect the first through hole on the material piece through the pushing hole, wherein when the first driving piece drives the first fixing piece, the limiting piece and the socket piece to move away from the feeding piece in sequence, the material piece is driven to move in the direction away from the feeding piece together;
[0011] a cutting assembly, arranged on the side of the feeding member, located at the end of the pushing assembly away from the first driving member, and comprising a second driving member, a first sliding member, an abutting member and a cutting member, wherein one end of the second driving member is fixed to the support table, and the other end is movably connected to the first sliding member, the abutting member and the cutting member are accommodated in the first sliding member, wherein when the second driving member drives the first sliding member, the abutting member abuts the material, and the cutting member cuts the material to obtain the material to be separated;
[0012] A fixing assembly is fixed on the support platform and is located on the other side of the feeding member relative to the cutting assembly, and is used for movably engaging the head end of the member to be separated;
[0013] The material dividing member assembly is fixed on the support platform, close to the fixed assembly, and includes a third driving member and a breaking member. The driving end of the third driving member is provided with a connecting member, and the connecting member is provided with an eccentric connecting hole. One end of the breaking member passes through the connecting hole and is connected to the third driving member, and the other end is provided with a second feed trough connected to the first feed trough, wherein the second feed trough is used to accommodate the tail end of the member to be divided, so as to reciprocate and break the tail end of the member to be divided under the drive of the third driving member.
[0014] Using this technical solution, materials enter the first feed chute of the feed assembly and are pushed by the pusher assembly to the cutting assembly. The cutting assembly then cuts the materials into separate pieces. The fixing assembly flexibly engages the leading end of the piece to be separated, while the breaking element of the separating assembly reciprocates to break the trailing end of the piece, thereby achieving the separation operation. The entire process is highly automated, improving production efficiency and product quality.
[0015] The optional new cutting and dividing mechanism also includes: a first detection member, which is arranged on the support platform and is used to detect the material to be divided.
[0016] By adopting the above technical solution, when the material to be separated passes by, the existence of the material can be detected and the signal can be transmitted to the control system for subsequent operations.
[0017] Optionally, the fixing component includes:
[0018] a fourth driving member, fixed to the support platform;
[0019] a second sliding member, disposed on an end surface of the fourth driving member away from the support platform, and having a first receiving groove disposed on an end surface of the second sliding member away from the fourth driving member, wherein the second sliding member is configured to move with the driving of the fourth driving member;
[0020] The engaging member has one end accommodated in the first accommodating groove and the other end provided with an engaging groove for engaging the head end of the member to be separated, wherein the tail end of the member to be separated is located in the second feeding groove.
[0021] By adopting the above technical solution, the second sliding member can drive the engaging member to move through the drive of the fourth driving member to engage the head end of the material to be separated, and the material is fixed during the engagement, so that the material separation member assembly can shake off the tail end of the material to be separated.
[0022] Optionally, the second sliding member is provided with an abutting protrusion, and the abutting protrusion is provided with a second accommodating groove and a second through hole;
[0023] The fixing assembly further comprises:
[0024] a first spring member, one end of which is located in the second accommodating groove, and the other end of which is used to abut against the engaging member;
[0025] a second fixing member, disposed on the second sliding member and arranged parallel to the engaging member, wherein the second fixing member is provided with a third through hole;
[0026] a plug-in component, one end of which is inserted through the second through-hole and the other end of which is inserted through the third through-hole, and is inserted into the first through-hole as the fourth driving component moves, wherein the middle position of the plug-in component is located between the second through-hole and the third through-hole and is provided with a convex edge;
[0027] The second spring component is sleeved on the plug-in component, with one end abutting against the abutting protrusion and the other end abutting against the convex edge.
[0028] By adopting the above technical solution, one end of the first spring member is located in the second accommodating groove, and the other end is used to abut the engaging member to provide a buffering force when the engaging member engages the head end of the material member; by arranging the connector to be inserted into the first through hole of the material member, the material member can be limited and fixed to facilitate the cutting assembly to cut the material member, and by arranging the second spring member, the connector can be provided with a buffering force and a rebound force.
[0029] Optionally, the pusher assembly further includes: a third spring member, accommodated between the limiting member and the first fixing member, with one end thereof being used to abut against the socket member, and the other end thereof being used to abut against the first fixing member.
[0030] By adopting the above technical solution, the third spring member can provide elastic force, so that the socket member can push the material more stably, and when the first driving member drives the first fixing member, the limiting member and the socket member to reset, the third spring member can play a buffering role to protect the various components from impact.
[0031] Optionally, the cutting assembly further includes: a fourth spring member and a fifth spring member, wherein one end of the fourth spring member abuts against the first sliding member, and the other end is used to abut against the abutting member; one end of the fifth spring member abuts against the first sliding member, and the other end is used to abut against the cutting member.
[0032] By adopting the above technical solution, the fourth spring member and the fifth spring member can provide stable elastic support for the abutting member and the cutting member respectively, so as to ensure the accuracy and stability of the cutting operation.
[0033] Optionally, the new cutting and dividing mechanism further includes a second detecting member, and a sensing member for detection by the second detecting member is provided on the corresponding connecting member.
[0034] By adopting the above technical solution, a sensing member for detection by the second detecting member is provided on the connecting member, which can be used to detect the position of the connecting member, thereby ensuring the accurate movement of the material dividing assembly.
[0035] Optionally, the pusher assembly further includes: a plurality of third detection members, which are arranged on the first driving member and are used to sense the moving position of the telescopic rod in the driving member.
[0036] By adopting the above technical solution and providing a third detection member to detect the moving position of the telescopic rod, the material pushing process can be accurately controlled to ensure that the material is pushed to the accurate position of the cutting assembly.
[0037] Optionally, the new cutting and dividing mechanism further includes: a feed port connected to the feed piece.
[0038] The above technical solution is usually adopted to set a feed port to connect the feed piece, which can facilitate the material to enter the first feed chute from the feed port, thereby realizing the input of the material.
[0039] Optionally, the new cutting and dividing mechanism further includes: a discharge port, the upper end of which is arranged on the support platform relative to the second feed trough.
[0040] By adopting the above technical solution, the discharge port is arranged on the support platform relative to the second feed trough, and can be used to output the parts to be separated after the separation is completed, thereby realizing automatic discharge.
[0041] In summary, this application includes at least one of the following beneficial technical effects:
[0042] 1. Since the present invention adopts automatic cutting and material dividing operations, it replaces the traditional manual operation mode, thereby significantly improving production efficiency and reducing labor intensity;
[0043] 2. The present invention preferably uses multiple components to work together to achieve operations such as precise pushing, cutting, fixing, shaking and separating of materials, thereby improving the stability of the production process and product quality;
[0044] 3. By setting up multiple detection parts, spring parts and other auxiliary components, the adaptability and reliability of the mechanism are enhanced, making the mechanism suitable for processing materials of different materials and specifications. BRIEF DESCRIPTION OF THE DRAWINGS
[0045] Figure 1 This is a structural schematic diagram of a new type of cutting and dividing mechanism disclosed in an embodiment of the present application;
[0046] Figure 2 for Figure 1 A schematic diagram of a partial explosion structure of a new type of cutting and dividing mechanism is shown;
[0047] Figure 3 for Figure 2 A schematic structural diagram of the first enlarged area of a novel cutting and dividing mechanism is shown;
[0048] Figure 4 for Figure 1 A schematic diagram of a partial structure of a pushing assembly of a novel cutting and dividing mechanism is shown;
[0049] Figure 5 for Figure 2 A schematic structural diagram of the second enlarged area of a novel cutting and dividing mechanism is shown;
[0050] Figure 6 for Figure 1 A schematic diagram of a portion of the structure of a cutting component of a novel cutting and dividing mechanism is shown;
[0051] Figure 7 for Figure 1 A schematic diagram of a partial structure of a fixed component of a novel cutting and distributing mechanism is shown;
[0052] Figure 8 for Figure 1 The exploded structural diagram of a new type of cutting and dividing mechanism is shown.
[0053] Description of reference numerals:
[0054] 10. Support platform; 20. Feed member; 21. First feed trough; 22. Push hole; 30. Push assembly; 31. First driving member; 32. Socket member; 33. Limiting member; 34. First fixing member; 40. Cutting assembly; 41. Second driving member; 42. First sliding member; 43. Abutting member; 44. Cutting member; 50. Fixing assembly; 51. Fourth driving member; 52. Second sliding member; 521. First receiving groove; 522. Abutting protrusion; 5221. Second through hole; 53. Engaging member; 531. Engaging groove; 54. A spring member; 55, a second fixing member; 551, a third through-hole; 56, a plug-in member; 561, a convex edge; 57, a second spring member; 60, a material distribution component; 61, a third driving member; 611, a connecting member; 6111, a connecting hole; 6112, a sensing member; 62, a shaking member; 621, a second feed trough; 70, a material member; 71, a first through-hole; 80, a first detection member; 90, a second detection member; 100, a third detection member; 110, a feed port; 120, a discharge port; A, a first magnification area; B, a second magnification area. DETAILED DESCRIPTION
[0055] The terms used in the following examples of the present application are for the purpose of describing specific embodiments only and are not intended to limit the present application. As used in the specification and appended claims of this application, the singular expressions "a," "an," "above," "the," and "this" are intended to include plural expressions as well, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used in this application refers to and encompasses any and all possible combinations of one or more of the listed items.
[0056] In the following, the terms "first" and "second" are used for descriptive purposes only and should not be understood to imply or suggest relative importance or implicitly indicate the number of the technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. In the description of the embodiments of this application, unless otherwise specified, "plurality" means two or more.
[0057] The technical solutions of the embodiments of the present application are described in detail below with reference to the accompanying drawings.
[0058] See also Figure 1 and Figure 2 , which is a new type of cutting and dividing mechanism disclosed in an embodiment of the present application, includes a support table 10 and a feeding piece 20, a pushing assembly 30, a cutting assembly 40, a fixing assembly 50 and a dividing assembly 60 arranged on the support table 10.
[0059] Among them, the support platform 10 is the base part of the entire mechanism, which is used to provide stable support. The feed piece 20 is set at one end of the support platform 10, and a first feed trough 21 is set on it for accommodating the material 70 for movement, and a push hole 22 is set on the side of the feed piece 20 for use by the push assembly 30. In this embodiment, in order to facilitate the material 70 to enter the first feed trough 21 from the feed port 110 and realize the input of the material 70, a feed port 110 is also provided to connect the feed piece 20. The specific structure can be seen in Figure 1 shown.
[0060] See also Figure 3 and Figure 4 , Figure 3 for Figure 2 In the first enlarged area A, the pusher assembly 30 includes a first driving member 31, a socket member 32, a limit member 33 and a first fixing member 34. The first driving member 31 is a telescopic cylinder, one end of which is fixed on the support platform 10 and the other end is movably connected to the first fixing member 34. Figure 2 As shown, one end of the first driving member 31 is sleeved on the first fixing member 34 , so as to facilitate the assembly of the first driving member 31 and the first fixing member 34 .
[0061] Among them, one end of the first fixing member 34 is connected to the first driving member 31, and the other end is connected to the limiting member 33. The socket member 32 is movably fixed in the limiting member 33 and one end is exposed to connect the first through hole 71 on the material member 70 through the pushing hole 22. The exposed end of the corresponding socket member 32 is the tip. The specific structure can be seen in Figure 4 .
[0062] When the first driving member 31 sequentially drives the first fixing member 34, the limiting member 33, and the socket member 32 to move away from the feed member 20, it also drives the material 70 to move away from the feed member 20. It should be noted that when the first driving member 31 sequentially drives the first fixing member 34, the limiting member 33, and the socket member 32 to move toward the feed member 20 (i.e., reset), the socket member 32 rotates within the limiting member 33 so that it does not impact the material 70 during movement, thereby affecting its current position.
[0063] Specifically, in order to ensure that the socket member 32 can push the material member 70 more stably, a third spring member (not shown in the figure) is accommodated between the limit member 33 and the first fixing member 34, one end of which is used to abut the socket member 32, and the other end is used to abut the first fixing member 34. When the first driving member 31 drives the first fixing member 34, the limit member 33 and the socket member 32 to reset, the third spring member can play a buffering role to protect the components from impact.
[0064] See also Figure 2The pusher assembly 30 further includes: a plurality of third detection members 100, for example, two, which are arranged on the first driving member 31 and are used to sense the moving position of the telescopic rod in the driving member.
[0065] The third detection members 100 are displacement sensor detection elements. By detecting the movement of the telescopic rod, the material pushing process can be precisely controlled to ensure that the material 70 is pushed to the correct position of the cutting assembly 40. Here, the telescopic rod is provided with a metal material that can be detected by the third detection member 100, such as a pin, but this is not limited to this.
[0066] See also Figure 2 、 Figure 5 and Figure 6 , Figure 5 for Figure 2 In the second enlarged area B, the cutting assembly 40 includes a second driving member 41, a first sliding member 42, an abutting member 43 and a cutting member 44. The second driving member 41 is a telescopic cylinder, one end of which is fixed on the support platform 10, and the other end is movably connected to the first sliding member 42 to drive the first sliding member 42 to slide. The abutting member 43 and the cutting member 44 are accommodated in the first sliding member 42 and can move as the second driving member 41 drives the first sliding member 42 to move. One end of the abutting member 43 is used to abut the material 70 to fix the material 70. One end of the cutting member 44 is a cutting surface, which is used to cut the material 70. The abutment of the abutting member 43 and the punching of the cutting member 44 driven by the second driving member 41 can more accurately cut the material 70 to be divided.
[0067] To ensure the accuracy and stability of the cutting operation, the cutting assembly 40 further includes a fourth spring member (not shown) and a fifth spring member (not shown). One end of the fourth spring member abuts the inside of the first sliding member 42, and the other end abuts the abutting member 43. One end of the fifth spring member abuts the inside of the first sliding member 42, and the other end abuts the cutting member 44. Therefore, when the second driving member 41 is driven, the fourth and fifth spring members can provide stable elastic support for the abutting member 43 and the cutting member 44, thereby acting as a buffer.
[0068] See also Figure 1 and Figure 7 The fixing assembly 50 is fixed on the support platform 10 and is located on the other side of the feeding member 20 relative to the cutting assembly 40. It is used to movably engage the head end of the material to be separated 70 to ensure that the material to be separated 70 remains stable during the separation process.
[0069] Among them, the fixed component 50 includes a fourth driving member 51, a second sliding member 52 and a clamping member 53. The fourth driving member 51 is a cylinder, one end face of which is fixed on the support platform 10. The second sliding member 52 is arranged on an end face of the fourth driving member 51 away from the support platform 10, and the end face of the second sliding member 52 away from the fourth driving member 51 is provided with a first accommodating groove 521 for accommodating the clamping member 53. One end of the clamping member 53 is accommodated in the first accommodating groove 521, and the other end is provided with a clamping groove 531, for example, 2, for clamping the head ends of two pieces to be separated 70, wherein the tail end of the piece to be separated 70 is located in the second feed groove 621 of the dividing component 60.
[0070] Specifically, an abutting protrusion 522 is provided on the second sliding member 52 , and a second accommodating groove and a second through hole 5221 are provided on the abutting protrusion 522 . The corresponding fixing assembly 50 also includes a first spring member 54 , a second fixing member 55 , a plug-in member 56 and a second spring member 57 .
[0071] One end of the first spring member 54 is located in the second receiving groove, abutting the abutting protrusion 522, while the other end abuts the engaging member 53. This provides a buffering force when the engaging member 53 engages the head end of the material 70, preventing damage to the head end of the material 70 due to excessive impact force. The second fixing member 55 is disposed on the second sliding member 52 and is arranged parallel to the engaging member 53. The second fixing member 55 is provided with a third through-hole 551. One end of the plug-in member 56 extends through the second through-hole 5221 and is exposed, while the other end extends through the third through-hole 551 and is inserted into the first through-hole 71 of the material 70 to secure the material 70. The end of the plug-in member 56 that extends through the first through-hole 71 is pointed to facilitate insertion into the first through-hole 71.
[0072] It is worth mentioning that the portion of the connector 56 located between the abutting protrusion 522 and the second fixing member 55 (i.e., between the second through-hole 5221 and the third through-hole 551) is provided with a convex edge 561. This allows the second spring member 57 to be sleeved onto the connector 56, with one end abutting the abutting protrusion 522 and the other end abutting the convex edge 561. This provides a buffering force and a rebound force for the connector 56 to prevent damage to the material 70. Furthermore, the distance of the connector 56 protruding from the second through-hole 5221 can be observed or detected by an external detection device to determine whether the connector 56 is inserted into the first through-hole 71, allowing for timely subsequent processing.
[0073] See also Figure 1 and Figure 8The material dividing component 60 includes a third driving member 61 and a breaking member 62. The third driving member 61 is a motor, and a connecting member 611 is provided at its driving end. An eccentric connecting hole 6111 is provided on the connecting member 611. The eccentricity can be understood as not taking the center of the connecting member 611 as the center of the circle. Therefore, when the third driving member 61 drives the breaking member 62, the breaking member 62 swings based on the rotation of the connecting member 611 to realize the reciprocating breaking action of the tail end of the material 70.
[0074] One end of the breaking member 62 passes through the connecting hole 6111 and is connected to the third driving member 61. The other end is provided with a second feed chute 621 that docks with the first feed chute 21. The second feed chute 621 can accommodate the tail end of the material to be separated 70. Under the drive of the third driving member 61, the second feed chute 621 can reciprocate to break the tail end of the material to be separated 70, thereby achieving the material separation operation.
[0075] See also Figure 1 A discharge port 120 is provided at the lower end of the shaking piece 62, and the upper end of the discharge port 120 is provided on the support platform 10 relative to the second feed trough 621, so as to output the parts to be separated 70 that have been separated and realize automatic discharge.
[0076] See also Figure 2 In order to detect the existence of the material 70 in real time, the mechanism is further provided with a first detection member 80, which is arranged on the support platform 10 and is used to detect the material 70 to be separated.
[0077] When the first detection member 80 senses the material 70, it transmits a sensing signal to the control system. The control system controls the cutting assembly 40 to cut the material 70 to obtain the cut material 70 to be separated. At the same time, the control system controls the fixing assembly 50 to engage the head end of the material 70 to be separated, and then controls the separating assembly 60 to shake off the tail end of the material to be separated, separating the head end and tail end of the material 70. The head end of the material 70 is output from the discharge port 120. It is noted that the first detection member 80 is a sensor component, and its type is not limited, as long as it can achieve the same function.
[0078] See also Figure 2 and Figure 8 The mechanism also includes a second detecting member 90 , and a sensing member 6112 for detection by the second detecting member 90 is provided on the corresponding connecting member 611 .
[0079] The sensing member 6112 is, for example, a pin, which is used for position detection by the second detecting member 90 to determine whether the position of the connecting member 611 is reset, thereby ensuring the accurate movement of the material dividing assembly 60 .
[0080] To sum up, the embodiment of the present application discloses a new type of cutting and dividing mechanism, which is configured by setting a support table 10 for supporting and fixing each component, and a pushing component 30 for driving the material 70 to move in a direction away from the feed component 20 to prepare for the subsequent cutting operation. The cutting component 40 can cut the material 70, thereby obtaining the material 70 to be divided, and the fixing component 50 is used to ensure the stability of the material 70 to be divided during the dividing process. The dividing component 60 can reciprocally shake off the tail end of the material 70 to be divided obtained after being cut by the cutting component 40, thereby completing the dividing operation. The entire process has a high degree of automation, which can improve the production efficiency and product quality of the product.
[0081] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A new type of cutting and dividing mechanism, characterized in that: include: Support platform (10); A feeding member (20) is provided at one end of the support platform (10), and a first feeding trough (21) is provided on the feeding member (20), and a pushing hole (22) is provided on the side thereof; A pushing assembly (30) is arranged on the side of the feed member (20) and includes a first driving member (31), a socket member (32), a limiting member (33) and a first fixing member (34), wherein one end of the first driving member (31) is fixed on the support platform (10) and the other end is movably connected to the first fixing member (34), the first fixing member (34) is connected to the limiting member (33), the socket member (32) is movably fixed in the limiting member (33) and one end is exposed to connect the first through hole (71) on the material member (70) through the pushing hole (22), wherein when the first driving member (31) drives the first fixing member (34), the limiting member (33) and the socket member (32) to move in a direction away from the feed member (20) in sequence, it also drives the material member (70) to move in a direction away from the feed member (20); A cutting component (40) is arranged on the side of the feeding component (20), located at one end of the pushing component (30) away from the first driving component (31), and includes a second driving component (41), a first sliding component (42), an abutting component (43) and a cutting component (44), wherein one end of the second driving component (41) is fixed on the support platform (10), and the other end is movably connected to the first sliding component (42), the abutting component (43) and the cutting component (44) are accommodated in the first sliding component (42), wherein when the second driving component (41) drives the first sliding component (42), the abutting component (43) abuts the material (70), and the cutting component (44) cuts the material (70) to obtain the material to be separated (70); A fixing assembly (50) is fixed on the support platform (10), is located on the other side of the feed member (20) relative to the cutting assembly (40), and is used for movably engaging the head end of the member to be separated (70); The material separation component (60) is fixed on the support platform (10) and is close to the fixed component (50), and includes a third driving member (61) and a shaking member (62), wherein the driving end of the third driving member (61) is provided with a connecting member (611), and the connecting member (611) is provided with an eccentric connecting hole (6111), one end of the shaking member (62) passes through the connecting hole (6111) to connect to the third driving member (61), and the other end is provided with a second feeding trough (621) connected to the first feeding trough (21), wherein the second feeding trough (621) is used to accommodate the tail end of the material to be separated (70), so as to reciprocate and break the tail end of the material to be separated (70) under the drive of the third driving member (61).
2. The new cutting and dividing mechanism according to claim 1 is characterized in that: Also includes: A first detection member (80) is provided on the support platform (10) and is used to detect the material to be separated (70).
3. The new cutting and dividing mechanism according to claim 1 is characterized in that: The fixing assembly (50) comprises: a fourth driving member (51) fixed on the support platform (10); a second sliding member (52) provided on an end surface of the fourth driving member (51) away from the support platform (10), and a first accommodating groove (521) is provided on an end surface of the second sliding member (52) away from the fourth driving member (51), wherein the second sliding member (52) is used to move with the driving of the fourth driving member (51); The engaging member (53) has one end accommodated in the first accommodating groove (521) and the other end provided with an engaging groove (531) for engaging the head end of the material to be separated (70), wherein the tail end of the material to be separated (70) is located in the second feeding groove (621).
4. The new cutting and dividing mechanism according to claim 3 is characterized in that: The second sliding member (52) is provided with an abutting protrusion (522), and the abutting protrusion (522) is provided with a second accommodating groove and a second through hole (5221); The fixing assembly (50) further includes: A first spring member (54), one end of which is located in the second accommodating groove, and the other end of which is used to abut against the engaging member (53); A second fixing member (55) is provided on the second sliding member (52) and is arranged parallel to the engaging member (53); a third through hole (551) is provided on the second fixing member (55); A plug-in component (56), one end of which is inserted through the second through hole (5221) and the other end of which is inserted through the third through hole (551), and is inserted into the first through hole (71) as the fourth driving component (51) moves, wherein the middle position of the plug-in component (56) is located between the second through hole (5221) and the third through hole (551), and is provided with a convex edge (561); The second spring member (57) is sleeved on the plug-in member (56), with one end abutting against the abutting protrusion (522) and the other end abutting against the convex edge (561).
5. The new cutting and dividing mechanism according to claim 1 is characterized in that: The pusher assembly (30) further includes: a third spring member, which is accommodated between the limiting member (33) and the first fixing member (34), one end of which is used to abut against the socket member (32) and the other end of which is used to abut against the first fixing member (34).
6. The new cutting and dividing mechanism according to claim 1 is characterized in that: The cutting assembly (40) further includes: a fourth spring member and a fifth spring member, wherein one end of the fourth spring member abuts against the first sliding member (42) and the other end is used to abut against the abutting member (43); and one end of the fifth spring member abuts against the first sliding member (42) and the other end is used to abut against the cutting member (44).
7. The novel cutting and distributing mechanism according to claim 1 is characterized in that: Also includes: The second detection member (90) is provided with a sensing member (6112) on the corresponding connecting member (611) for detection by the second detection member (90).
8. The novel cutting and dividing mechanism according to claim 1 is characterized in that: The pusher assembly (30) further includes: A plurality of third detection members (100) are arranged on the first driving member (31) and are used to sense the moving position of the telescopic rod in the first driving member (31).
9. The novel cutting and distributing mechanism according to claim 1 is characterized in that: Also includes: A feed port (110) is connected to the feed member (20).
10. The novel cutting and distributing mechanism according to claim 1 is characterized in that: Also includes: A discharge port (120), wherein the upper end of the discharge port (120) is arranged on the support platform (10) relative to the second feed trough (621).
Citation Information
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