Intelligent temperature control core body processing equipment and processing method thereof
By using the adjustment mechanism and stabilizing frame design of the intelligent temperature-controlled core processing equipment, the problem of the non-adjustable cutter position of the diaper core rolling cutter is solved, enabling precise cutting of cores of different thicknesses and widths, and improving the system's flexibility and cutting quality.
Patent Information
- Application Number
- CN202511056197.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-30
- Publication Date
- 2025-11-14
AI Technical Summary
In existing technologies, the cutter position of the diaper core rolling cutter is not adjustable, making it impossible to adapt to cores of different thicknesses and adjust the cutting size, which limits the system's flexibility.
An intelligent temperature-controlled core processing device was designed. Through the cooperation of the adjustment mechanism and the stabilizing frame, the position and size of the rotary cutter can be precisely adjusted. This includes the linkage of the adjustment stud, the synchronization plate and the folding frame to ensure the stability and adaptability of the cutting process.
It enables precise cutting of diaper cores of different thicknesses and widths, improves system flexibility and cutting quality, prevents cutting deviation and wear, and enhances production efficiency.
Smart Images

Figure CN120938728A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of diaper processing technology, specifically to intelligent temperature-controlled core processing equipment and its processing method. Background Technology
[0002] The core of the smart temperature-controlled diaper is self-powered through urine electrolysis power generation technology. It uses a built-in flexible temperature sensor to monitor the temperature in real time. When a low temperature is detected, the heating module (such as graphene or heating wire) is automatically activated to maintain a comfortable feel. At the same time, the temperature and humidity data is synchronized to a mobile app via Bluetooth to remind parents. Its multi-layer composite core structure (such as honeycomb design + breathable membrane) takes into account moisture absorption, breathability and anti-backflow, ensuring that moisture can still be quickly wicked away when heated. It forms an innovative care solution that integrates self-powered, precise temperature control, intelligent reminders and comfortable wear. However, in the current production of smart temperature-controlled diaper cores, because the core needs to integrate a graphene heating layer, flexible sensor circuit and multi-layer composite moisture absorption structure, it must be cut by precision processing equipment to ensure that the dimensions of each functional layer are matched, and to avoid circuit breakage or displacement of the heating area.
[0003] A search revealed that CN214724710U discloses a diaper core rolling and cutting device, including a rolling and cutting machine body, a rotating shaft, a rolling and cutting blade, and two supports mounted on the rolling and cutting machine body. A movable block is slidably mounted between the two supports via a sliding assembly. A fixed block is movably mounted at one end of the movable block via a connecting assembly. A grinding seat is fixed on the lower surface of the fixed block, and a V-shaped groove is formed on the lower surface of the grinding seat. A whetstone is fixedly mounted inside the V-shaped groove, and a grinding groove matching the rolling and cutting blade is formed on the lower surface of the whetstone. The sliding assembly includes a slider and a slide rail. The slide rail is fixedly mounted between the two supports, and the slider is slidably mounted on the slide rail.
[0004] The aforementioned diaper core rolling and cutting device saves grinding time for the rolling cutter, which helps improve actual work efficiency. However, the cutter position of the device is not adjustable, which not only makes it unable to adapt to cores of different thicknesses, but also makes it impossible to adjust the cutting size, resulting in a significant limitation on the system's flexibility.
[0005] Therefore, it is of great importance to design intelligent temperature control core processing equipment and methods to solve the above-mentioned defects. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention designs an intelligent temperature-controlled core processing device and its processing method. This intelligent temperature-controlled core processing device and its processing method aim to solve the technical problem that, in the existing technology, the cutter position is not adjustable during the rolling and cutting of diaper cores. This not only makes it impossible to adapt to cores of different thicknesses, but also makes it impossible to adjust the cutting size, which greatly limits the flexibility of the system.
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] The intelligent temperature-controlled core processing equipment includes a frame, a cutting table fixedly installed on the inner side of the frame, adjusting seats slidably connected to both ends of the frame, a cutter roller rotatably connected between the two sets of adjusting seats, multiple sets of rolling cutters installed on the outer side of the cutter roller, an adjusting mechanism fixedly installed inside the cutter roller and on the inner side of the multiple sets of rolling cutters, and a stabilizing frame fixedly installed on the front of the frame.
[0009] The adjustment mechanism includes an adjustment frame fixedly installed inside the cutter roller. Multiple sets of synchronization plates are slidably connected to the inner side of the adjustment frame. A folding frame is installed on the top of the multiple sets of synchronization plates, and the multiple sets of synchronization plates are rotatably connected to the folding frame. The front ends of the multiple sets of synchronization plates are fixedly connected to the inner side of the cutting blade through connectors. An adjustment stud is threaded to the left end of the adjustment frame, and the right end of the adjustment stud is rotatably connected to one of the sets of synchronization plates. The rear ends of the multiple sets of synchronization plates are slidably connected to the adjustment frame through slide rods.
[0010] As a preferred embodiment of the present invention, the four corners of the adjusting frame are fixedly connected to the cutter roller by the first mounting screw, and the inner sides of the multiple sets of rolling cutters are fixedly connected to the connector by the second mounting screw.
[0011] As a preferred embodiment of the present invention, a movable groove is provided inside the cutter roller at a position corresponding to the multiple sets of connectors, and a baffle is fixedly installed inside the cutter roller and at the top of the movable groove, and both the left and right ends of the baffle are fixedly connected to the cutter roller by a third mounting screw.
[0012] As a preferred embodiment of the present invention, the adjusting stud is threadedly connected to the adjusting frame via a connecting sleeve, and a locking screw is threaded inside the connecting sleeve, and the locking screw abuts against the adjusting stud.
[0013] As a preferred embodiment of the present invention, a discharge hopper is fixedly installed on the back of the frame and at the rear end of the cutting table, a cleaning cover is fixedly installed on the top of the inner side of the discharge hopper, and a connecting pipe is fixedly connected to the left end of the cleaning cover.
[0014] As a preferred embodiment of the present invention, the front end of the cutting table is provided with an adjustment groove, and a bidirectional threaded rod is rotatably connected inside the adjustment groove. Limiting plates are slidably connected to both ends of the adjustment groove, and the bottom ends of the two sets of limiting plates are connected to the bidirectional threaded rod through screw nuts.
[0015] As a preferred embodiment of the present invention, a fixing plate is fixedly installed on the top of both the left and right ends of the frame, and a hinge sleeve is hinged to the top of both sets of adjustment seats. One set of hinge sleeves is slidably connected to the fixing plate through a guide rod, and the top of the other set of hinge sleeves is threadedly connected to the fixing plate through an adjusting screw, and the bottom end of the adjusting screw is rotatably connected to the hinge sleeve.
[0016] As a preferred embodiment of the present invention, the left and right ends of both sets of the adjusting seats are slidably connected to the frame through lifting grooves, the left and right ends of the cutter roller are rotatably connected to the adjusting seats through bearings, a mounting frame is slidably connected to the right side of the frame, a motor is fixedly installed on the top of the mounting frame, and the drive end of the motor is fixedly connected to the right end of the cutter roller, and sliding columns are fixedly connected to the front and rear sides of the bottom end of the mounting frame, and both sets of sliding columns are slidably connected to the inside of the frame through sliding grooves.
[0017] As a preferred embodiment of the present invention, two sets of fixed frames are fixedly installed at the front end of the stabilizer, and movable frames are slidably connected to the opposite sides of the two sets of fixed frames. Multiple sets of compensating springs are fixedly connected between the two sets of movable frames and the fixed frames, and stabilizing rollers are rotatably connected to the opposite sides of the two sets of movable frames.
[0018] To address the aforementioned technical problems, this invention also provides a method for processing intelligent temperature control cores, the specific operation steps of which are as follows:
[0019] S1. The core material is guided by the stabilizing roller on the stabilizing frame to keep the diaper core centered and run to the cutting table. The rotating bidirectional threaded rod drives two sets of limiting plates to move synchronously in opposite directions, clamping the cores of different widths to prevent cutting deviation.
[0020] S2. Adjust the height of the adjusting seat in the lifting groove by rotating the adjusting screw, and the cutter roller will rise and fall vertically in conjunction with the screw, which can adapt to cores of different thicknesses. The bearing ensures that the rotation of the cutter roller is not affected by the height adjustment.
[0021] S3. Rotate the adjusting stud to push the synchronous plate to slide inside the adjusting frame. The folding frame moves all synchronous plates along the slide bar, and drives multiple sets of roller cutters to extend and retract radially synchronously through the connector to accurately match the cutting size. After completion, lock the adjusting stud with the locking screw.
[0022] S4. The motor drives the cutter roller to rotate and cut through the floating mounting bracket. The slide column slides in the slide groove to compensate for height changes. The stabilizing roller adaptively presses the core surface under the action of the compensation spring to prevent material displacement caused by cutting vibration.
[0023] S5. After cutting, the waste material is collected and falls through the discharge hopper. The dust and light impurities are sucked out by a negative pressure fan connected to a connecting pipe through a hood to prevent workshop pollution.
[0024] Compared with the prior art, the beneficial effects of the present invention are:
[0025] 1. In this invention, through the coordinated design of the frame, adjusting seat, cutter roller, rolling cutter, and adjusting mechanism, one end of the frame is hinged and slidably connected to the fixed plate via a guide rod to ensure a linear motion trajectory. The other end is finely adjusted via an adjusting screw threaded into the fixed plate. Thus, for diaper cores of different thicknesses, the working plane of the rolling cutter is adjusted by adjusting the height of the adjusting seat. When the position of the rolling cutter needs to be adjusted, the adjusting stud is rotated, which pushes the synchronous plate rotatably connected to it to slide within the adjusting frame. The sliding of the synchronous plate causes the folding frame to deform, thereby causing all synchronous plates to slide synchronously along the slide rod. The connector at the front end of the synchronous plate transmits this linear displacement to the rolling cutter, realizing the synchronous adjustment of the radial position of multiple sets of rolling cutters. This achieves precise adjustment of the rolling cutter position to adapt to the needs of different core cutting sizes and improves the flexibility of the system.
[0026] 2. In this invention, through the coordinated design of the cutting table and the stabilizing frame, the core material is guided by the stabilizing roller on the stabilizing frame to keep the diaper core centered on the cutting table. The front end of the cutting table has an adjustment groove, and the built-in bidirectional threaded rod drives two sets of limiting plates to move synchronously in opposite directions through the screw nut, which can adapt to diaper cores of different widths and ensure that the core does not misalign or slide during the cutting process. The movable frame can be slidably adjusted, and with the elastic deformation of the compensation spring, it automatically compensates for the thickness tolerance or positional deviation of the material, ensuring that the stabilizing roller always fits the surface of the diaper core, avoiding jamming or wear caused by size changes. During the conveying process, the stabilizing roller guides the diaper core to keep it centered, preventing lateral deviation or tilting, and further improving the quality of the cutting process. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0028] Figure 2 This is a schematic diagram of the cutting table structure of the present invention;
[0029] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0030] Figure 4 This is a schematic diagram of the cutter roller and rolling cutter structure of the present invention;
[0031] Figure 5 This is a schematic diagram of the cutter roller and adjusting mechanism of the present invention;
[0032] Figure 6 for Figure 5 Enlarged view at point B in the middle;
[0033] Figure 7 This is a schematic diagram of the stabilizer structure of the present invention.
[0034] In the diagram: 1. Frame; 2. Cutting table; 201. Discharge hopper; 202. Impurity removal hood; 203. Connecting pipe; 204. Adjusting groove; 205. Bidirectional threaded rod; 206. Limiting plate; 207. Screw nut; 3. Adjusting seat; 301. Fixing plate; 302. Hinge sleeve; 303. Guide rod; 304. Adjusting screw; 305. Lifting groove; 306. Bearing; 307. Mounting bracket; 308. Motor; 309. Sliding column; 310. Slide groove; 4. Cutting roller; 5. 6. Roller cutter; 6. Adjustment mechanism; 601. Adjustment frame; 602. Synchronization plate; 603. Folding frame; 604. Connector; 605. Adjustment stud; 606. Slide rod; 607. First mounting screw; 608. Second mounting screw; 609. Moving groove; 610. Baffle; 611. Third mounting screw; 612. Connecting sleeve; 613. Locking screw; 7. Stabilizing frame; 701. Fixed frame; 702. Movable frame; 703. Compensating spring; 704. Stabilizing roller. Detailed Implementation
[0035] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0036] Example: Please refer to Figures 1-7 The present invention provides a technical solution:
[0037] The intelligent temperature-controlled core processing equipment includes a frame 1, a cutting table 2 fixedly installed on the inner side of the frame 1, an adjusting seat 3 slidably connected to both the left and right ends of the frame 1, a cutter roller 4 rotatably connected between the two sets of adjusting seats 3, multiple sets of rolling cutters 5 installed on the outer side of the cutter roller 4, an adjusting mechanism 6 fixedly installed inside the cutter roller 4 and located inside the multiple sets of rolling cutters 5, and a stabilizing frame 7 fixedly installed on the front of the frame 1.
[0038] First, in this embodiment, the specific structure of the adjusting mechanism 6 is as follows:
[0039] The adjusting mechanism 6 includes an adjusting frame 601 fixedly installed inside the cutter roller 4. Multiple sets of synchronization plates 602 are slidably connected to the inner side of the adjusting frame 601. A folding frame 603 is mounted on the top of each set of synchronization plates 602, and all sets of synchronization plates 602 are rotatably connected to the folding frame 603. The front ends of each set of synchronization plates 602 are fixedly connected to the inner side of the cutting blade 5 via connectors 604. An adjusting stud 605 is threadedly connected to the left end of the adjusting frame 601, and the right end of the adjusting stud 605 is rotatably connected to one set of synchronization plates 602. The rear ends of each set of synchronization plates 602 are slidably connected to the adjusting frame 601 via slide rods 606. When the adjusting stud 605 is in its initial position, the synchronization plates... 602 maintains a certain initial spacing within the adjusting frame 601, ensuring that multiple sets of rotary cutters 5 are in preset cutting positions. When the position of the rotary cutter 5 needs to be adjusted, the adjusting stud 605 is rotated, which pushes the synchronous plate 602, which is rotatably connected to it, to slide within the adjusting frame 601. The sliding of the synchronous plate 602 causes the folding frame 603 to deform, thereby causing all synchronous plates 602 to slide synchronously along the slide rod 606. The connector 604 at the front end of the synchronous plate 602 transmits this linear displacement to the rotary cutter 5, achieving synchronous adjustment of the radial position of multiple sets of rotary cutters 5. This enables precise adjustment of the position of the rotary cutter 5 to meet the needs of different core cutting sizes.
[0040] Furthermore, the four corners of the adjusting frame 601 are fixedly connected to the cutter roller 4 by the first mounting screw 607, and the inner sides of the multiple sets of rolling cutters 5 are fixedly connected to the connector 604 by the second mounting screw 608. The adjusting frame 601 is fastened to the inside of the cutter roller 4 by the first mounting screw 607 at the four corners, ensuring the structural stability of the adjusting mechanism 6 under rotation conditions. At the same time, the use of multi-point screw fixing facilitates disassembly and maintenance. Each set of rolling cutters 5 is fixed to the connector 604 by the second mounting screw 608, realizing independent disassembly and assembly of the cutter, supporting the replacement of a single cutter, and reducing maintenance costs.
[0041] Then, a movable groove 609 is provided inside the cutter roller 4 at a position corresponding to the multiple sets of connectors 604. A baffle 610 is fixedly installed inside the cutter roller 4 and at the top of the movable groove 609. Both ends of the baffle 610 are fixedly connected to the cutter roller 4 by the third mounting screw 611. The movable groove 609 inside the cutter roller 4, corresponding to the position of the connector 604, provides a precise guide channel for the radial adjustment of the rolling cutter 5, ensuring the straightness of the cutter displacement trajectory. The baffle 610 is fixedly connected to the cutter roller 4 at both ends by the third mounting screw 611 to restrict the outside of the connector 604. At the same time, it can be disassembled to release the restriction on the connector 604 for easy maintenance.
[0042] Furthermore, the adjusting stud 605 is threadedly connected to the adjusting frame 601 via the connecting sleeve 612. The connecting sleeve 612 has a locking screw 613 threaded inside, and the locking screw 613 abuts against the adjusting stud 605. The adjusting stud 605 is threadedly connected to the adjusting frame 601 via the connecting sleeve 612. Rotating the adjusting stud 605 can drive the synchronous plate 602 to move linearly, thereby adjusting the radial position of the rolling cutter 5. The locking screw 613 inside the connecting sleeve 612 forms a point contact mechanical lock with the adjusting stud 605. After adjustment, tightening the locking screw 613 prevents the adjusting stud 605 from rotating accidentally through frictional torque.
[0043] The discharge hopper 201 is fixedly installed on the back of the frame 1 and at the rear end of the cutting table 2. A cleaning hood 202 is fixedly installed on the top of the inner side of the discharge hopper 201. A connecting pipe 203 is fixedly connected to the left end of the cleaning hood 202. The discharge hopper 201 is fixed to the rear end of the cutting table 2 to receive the cut material. The material is guided to fall in a concentrated manner by the inclined hopper wall. The cleaning hood 202 is located at the top of the inner side of the discharge hopper 201. A negative pressure fan is connected to the outside through the connecting pipe 203 to continuously extract dust and light impurities, prevent workshop pollution, and further improve the quality of the core after cutting.
[0044] Furthermore, the front end of the cutting table 2 is provided with an adjustment groove 204. A bidirectional threaded rod 205 is rotatably connected inside the adjustment groove 204. Limiting plates 206 are slidably connected to both ends of the adjustment groove 204. The bottom ends of the two sets of limiting plates 206 are connected to the bidirectional threaded rod 205 through a screw nut 207. The front end of the cutting table 2 is provided with an adjustment groove 204. The built-in bidirectional threaded rod 205 drives the two sets of limiting plates 206 to move synchronously in opposite directions through the screw nut 207, which can adapt to diaper cores of different widths and ensure that the core does not misalign or slide during the cutting process, thereby further improving the quality of the cutting process.
[0045] Furthermore, fixed plates 301 are fixedly installed on the top of both ends of the frame 1. The top of each of the two sets of adjusting seats 3 is hinged with a hinge sleeve 302. One set of hinge sleeves 302 is slidably connected to the fixed plate 301 through a guide rod 303. The top of the other set of hinge sleeves 302 is threadedly connected to the fixed plate 301 through an adjusting screw 304. The bottom end of the adjusting screw 304 is rotatably connected to the hinge sleeve 302. The hinge sleeve 302 at one end of the frame 1 is slidably connected to the fixed plate 301 through the guide rod 303 to ensure a linear motion trajectory. The other end is finely adjusted through the threaded engagement of the adjusting screw 304 with the fixed plate 301. Thus, for diaper cores of different thicknesses, such as infant and adult types, the working plane of the roller cutter 5 can be adjusted by adjusting the height of the adjusting seat 3 without stopping the machine to change the blade.
[0046] Secondly, both ends of the two sets of adjusting seats 3 are slidably connected to the frame 1 via lifting grooves 305. Both ends of the cutter roller 4 are rotatably connected to the adjusting seats 3 via bearings 306. A mounting frame 307 is slidably connected to the right side of the frame 1. A motor 308 is fixedly mounted on the top of the mounting frame 307, and the drive end of the motor 308 is fixedly connected to the right end of the cutter roller 4. Sliding columns 309 are fixedly connected to the front and rear sides of the bottom of the mounting frame 307. Both sets of sliding columns 309 are slidably connected to the inside of the frame 1 via sliding grooves 310. This mechanical structure is adjusted... The lifting grooves 305 at both ends of the section seat 3 are slidably connected to the frame 1 to achieve vertical precision adjustment of the cutter roller 4, allowing the cutter roller 4 to move up and down along the frame 1 to adapt to the cutting needs of materials of different thicknesses. The two ends of the cutter roller 4 are rotatably connected to the adjusting seat 3 through the bearings 306 to ensure smooth rotation. The motor 308 is slidably connected to the frame 1 through the mounting bracket 307. The sliding column 309 and the sliding groove 310 cooperate to form a horizontal guide, allowing the motor 308 to float synchronously with the height change of the cutter roller 4. The motor 308 drives the cutter roller 4 to rotate to cut the diaper core.
[0047] Finally, two sets of fixed frames 701 are fixedly installed at the front end of the stabilizing frame 7. Movable frames 702 are slidably connected to the opposite side of the two sets of fixed frames 701. Multiple sets of compensating springs 703 are fixedly connected between the two sets of movable frames 702 and the fixed frames 701. Stabilizing rollers 704 are rotatably connected to the opposite side of the two sets of movable frames 702. The movable frames 702 can be slidably adjusted. With the elastic deformation of the compensating springs 703, they automatically compensate for the thickness tolerance or positional deviation of the material, ensuring that the stabilizing rollers 704 always fit the surface of the diaper core, avoiding jamming or wear caused by size changes. During the conveying process, the stabilizing rollers 704 guide the diaper core to keep it running in the center, preventing lateral deviation or tilting, and further improving the quality of the cutting process.
[0048] In this embodiment, the specific implementation scenario is as follows: the core material is guided by the stabilizing roller 704 on the stabilizing frame 7 to keep the diaper core centered and move to the cutting table 2. The front end of the cutting table 2 is provided with an adjustment groove 204, and the built-in bidirectional threaded rod 205 drives two sets of limiting plates 206 to move synchronously in opposite directions through the screw nut 207, adapting to diaper cores of different widths and ensuring that the core does not misalign or slide during the cutting process. One end of the frame 1 is hinged sleeve 302, which is slidably connected to the fixed plate 301 through the guide rod 303 to ensure a linear motion trajectory. The other end is finely adjusted by the threaded engagement of the adjusting screw 304 with the fixed plate 301. Thus, for diaper cores of different thicknesses, the working plane of the roller cutter 5 is adjusted by adjusting the height of the adjusting seat 3. When it is necessary to adjust the position of the roller cutter 5, the adjusting stud 605 is rotated, which pushes the synchronous plate 602, which is rotatably connected to it, to slide within the adjusting frame 601. The sliding of 02 causes the folding frame 603 to deform, thereby causing all the synchronous plates 602 to slide synchronously along the slide bar 606. The connector 604 at the front end of the synchronous plate 602 transmits this linear displacement to the roller cutter 5, realizing the synchronous adjustment of the radial position of multiple sets of roller cutters 5, and realizing the precise adjustment of the position of the roller cutter 5 to adapt to the needs of different core cutting sizes. The motor 308 drives the cutter roller 4 to rotate to cut the diaper core. The discharge hopper 201 is fixed at the rear end of the cutting table 2 to receive the cut material. The material is guided to fall in a concentrated manner by the inclined hopper wall. The impurity removal cover 202 is located at the top of the inner side of the discharge hopper 201. A negative pressure fan is connected to the outside through the connecting pipe 203 to continuously remove dust and light impurities to prevent workshop pollution. The whole operation process is simple and convenient. This invention realizes the precise cutting of diaper cores of multiple specifications through design, improves the flexibility of the system, and can guide and limit the cutting process, thereby improving the quality of cutting.
[0049] This invention also provides a method for processing intelligent temperature control cores, the specific operation steps of which are as follows:
[0050] S1. The core material is guided by the stabilizing roller 704 on the stabilizing frame 7 to keep the diaper core centered and run to the cutting table 2. The rotating bidirectional threaded rod 205 drives the two sets of limiting plates 206 to move in opposite directions synchronously, clamping the cores of different widths to prevent cutting deviation.
[0051] S2. Adjust the height of the adjusting seat 3 in the lifting groove 305 by rotating the adjusting screw 304, and the linkage cutter roller 4 will rise and fall vertically to adapt to cores of different thicknesses. The bearing 306 ensures that the rotation of the cutter roller 4 is not affected by the height adjustment.
[0052] S3. Rotating the adjusting stud 605 pushes the synchronous plate 602 to slide within the adjusting frame 601. The folding frame 603 moves all synchronous plates 602 along the slide rod 606 in conjunction with the movement of the sliding rod 606. Through the connector 604, multiple sets of roller cutters 5 are radially synchronously extended and retracted to accurately match the cutting size. After completion, the locking screw 613 fixes the adjusting stud 605.
[0053] S4. Motor 308 drives the cutter roller 4 to rotate and cut through floating mounting bracket 307. Sliding column 309 slides in sliding groove 310 to compensate for height changes. Stabilizing roller 704 adaptively presses the core surface under the action of compensation spring 703 to prevent material displacement caused by cutting vibration.
[0054] S5. After cutting, the waste material is collected and falls through the discharge hopper 201. The dust removal hood 202 is connected to a negative pressure fan through the connecting pipe 203 to suck up the dust and light impurities to prevent workshop pollution.
[0055] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. Intelligent temperature-controlled core processing equipment, comprising a frame (1), characterized in that: A cutting table (2) is fixedly installed on the inner side of the frame (1). Adjustment seats (3) are slidably connected to both the left and right ends of the frame (1). A blade roller (4) is rotatably connected between the two sets of adjustment seats (3). Multiple sets of rolling cutters (5) are installed on the outer side of the blade roller (4). An adjustment mechanism (6) is fixedly installed inside the blade roller (4) and on the inner side of the multiple sets of rolling cutters (5). A stabilizing frame (7) is fixedly installed on the front of the frame (1). The adjustment mechanism (6) includes an adjustment frame (601) fixedly installed inside the cutter roller (4). Multiple sets of synchronization plates (602) are slidably connected to the inner side of the adjustment frame (601). A folding frame (603) is installed on the top of the multiple sets of synchronization plates (602), and the multiple sets of synchronization plates (602) are rotatably connected to the folding frame (603). The front ends of the multiple sets of synchronization plates (602) are fixedly connected to the inner side of the rolling cutter (5) through a connector (604). An adjustment stud (605) is threadedly connected to the left end of the adjustment frame (601), and the right end of the adjustment stud (605) is rotatably connected to one of the sets of synchronization plates (602). The rear ends of the multiple sets of synchronization plates (602) are slidably connected to the adjustment frame (601) through a slide rod (606).
2. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: The four corners of the adjusting frame (601) are fixedly connected to the cutter roller (4) by the first mounting screw (607), and the inner sides of the multiple sets of rolling cutters (5) are fixedly connected to the connector (604) by the second mounting screw (608).
3. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: The cutter roller (4) has a moving groove (609) at a position corresponding to the multiple sets of connectors (604). A baffle (610) is fixedly installed inside the cutter roller (4) and at the top of the moving groove (609). Both the left and right ends of the baffle (610) are fixedly connected to the cutter roller (4) by a third mounting screw (611).
4. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: The adjusting stud (605) is threadedly connected to the adjusting bracket (601) via a connecting sleeve (612). The connecting sleeve (612) has a locking screw (613) threaded inside, and the locking screw (613) abuts against the adjusting stud (605).
5. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: A discharge hopper (201) is fixedly installed on the back of the frame (1) and at the rear end of the cutting table (2). A cleaning cover (202) is fixedly installed on the top of the inner side of the discharge hopper (201). A connecting pipe (203) is fixedly connected to the left end of the cleaning cover (202).
6. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: The cutting table (2) has an adjustment groove (204) at its front end. A bidirectional threaded rod (205) is rotatably connected inside the adjustment groove (204). Limiting plates (206) are slidably connected to both the left and right ends of the adjustment groove (204). The bottom ends of the two sets of limiting plates (206) are connected to the bidirectional threaded rod (205) through screw nuts (207).
7. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: Fixed plates (301) are fixedly installed on the top of both the left and right ends of the frame (1). The top ends of the two sets of adjustment seats (3) are hinged with hinge sleeves (302). One set of hinge sleeves (302) is slidably connected to the fixed plate (301) through a guide rod (303). The top end of the other set of hinge sleeves (302) is threadedly connected to the fixed plate (301) through an adjusting screw (304), and the bottom end of the adjusting screw (304) is rotatably connected to the hinge sleeve (302).
8. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: Both ends of the two sets of adjustment seats (3) are slidably connected to the frame (1) through lifting grooves (305). Both ends of the cutter roller (4) are rotatably connected to the adjustment seat (3) through bearings (306). A mounting frame (307) is slidably connected to the right side of the frame (1). A motor (308) is fixedly installed on the top of the mounting frame (307), and the drive end of the motor (308) is fixedly connected to the right end of the cutter roller (4). Sliding columns (309) are fixedly connected to the front and rear sides of the bottom end of the mounting frame (307). Both sets of sliding columns (309) are slidably connected to the inside of the frame (1) through sliding grooves (310).
9. The intelligent temperature-controlled core processing equipment according to claim 1, characterized in that: The front end of the stabilizer (7) is fixedly installed with two sets of fixed frames (701). Each set of fixed frames (701) is slidably connected to a movable frame (702) on the opposite side. Each set of movable frames (702) is fixedly connected to a plurality of compensating springs (703). Each set of movable frames (702) is rotatably connected to a stabilizing roller (704) on the opposite side.
10. A method for processing intelligent temperature control cores, applied to the intelligent temperature control core processing equipment according to any one of claims 1-9, characterized in that... It includes the following steps: S1. The core material is guided by the stabilizing roller (704) on the stabilizing frame (7) to keep the diaper core centered and run to the cutting table (2). The rotating bidirectional threaded rod (205) drives the two sets of limiting plates (206) to move synchronously in opposite directions, clamping the cores of different widths to prevent cutting deviation. S2. Adjust the height of the adjusting seat (3) in the lifting groove (305) by rotating the adjusting screw (304), and the linkage cutter roller (4) will rise and fall vertically to adapt to cores of different thicknesses. The bearing (306) ensures that the rotation of the cutter roller (4) is not affected by the height adjustment. S3. Rotate the adjusting stud (605) to push the synchronous plate (602) to slide inside the adjusting frame (601). The folding frame (603) moves all the synchronous plates (602) along the slide rod (606) in conjunction with the connecting head (604) to drive multiple sets of rolling cutters (5) to extend and retract radially synchronously, accurately matching the cutting size. After completion, the locking screw (613) fixes the adjusting stud (605). S4. The motor (308) drives the cutter roller (4) to rotate and cut through the floating mounting bracket (307). The slide column (309) slides in the slide groove (310) to compensate for height changes. The stabilizing roller (704) adaptively presses the core surface under the action of the compensation spring (703) to prevent material displacement caused by cutting vibration. S5. After cutting, the waste material is collected and falls through the discharge hopper (201). The dust removal hood (202) is connected to a negative pressure fan through the connecting pipe (203) to suck up dust and light impurities to prevent workshop pollution.