Intelligent pressing device and pressing method for wood profile forming
Through the monitoring and distance adjustment mechanism of the intelligent pressing device, the spacing between wooden strips is adjusted in real time, which solves the hollow problem caused by wooden strips and improves the quality and production efficiency of recycled composite wooden beams.
Patent Information
- Application Number
- CN202311355657.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-19
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2043-10-19
AI Technical Summary
On the recycled composite wood beam production line, the wooden strips are prone to disconnection during the pressing process, resulting in hollows in the recycled composite wood beam after heat curing, affecting product quality.
An intelligent pressing device is designed, including a monitoring mechanism and a distance adjustment mechanism, which monitors the spacing of wooden strips in real time and adjusts it in time through the transmission component. The electric push rod and partition board are used to solve the problem of wooden strips disconnection to ensure that the wooden strips are closely fit.
It effectively avoids the generation of hollows in the recycled composite wooden beams, improves product quality and production efficiency, and ensures that the wooden strips are closely integrated during the thermal curing process.
Smart Images

Figure CN117226940B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wood processing, and in particular to an intelligent pressing device and pressing method used for forming wood profiles. Background Art
[0002] The recycled composite wood beam production line is a continuous production equipment used for recycling construction waste. Glass fiber, waste wood strips, reinforcing cloth, etc. impregnated with resin glue are formed and cured through extrusion molds under the action of traction to continuously produce recycled composite wood beams of different lengths.
[0003] During the process of conveying wood strips on the wood strip conveyor on the recycled composite wood plank production line, the wood strips that need to be pressed together may be easily disconnected due to workers' negligence in loading or friction caused by movement. Then, when the wood strips and glass fiber are heated, cured and pressed together, voids will be generated in the middle of the recycled composite wood plank, affecting the quality of the processed recycled composite wood plank and making the recycled composite wood plank prone to breakage or dents. Summary of the Invention
[0004] In response to the above-mentioned shortcomings of the prior art, the present invention provides an intelligent pressing device and pressing method for wood profile forming, which can effectively solve the problem in the prior art that when pressing wood strips in the recycled composite wood strip production line, the gaps between the wood strips are easily disconnected, resulting in the formation of voids in the inner core of the recycled composite wood strip during thermal curing.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions:
[0006] The present invention provides an intelligent pressing device and pressing method for wood profile forming, comprising a machine body, a wood strip conveying mechanism provided on the machine body, a yarn threading machine provided on one side of the wood strip conveying mechanism, a thermosetting mechanism provided on one side of the machine body, a monitoring mechanism for monitoring the spacing between the wood strips provided in the machine body, and a distance adjustment mechanism for adjusting the spacing between the wood strips provided on the machine body.
[0007] The monitoring mechanism comprises a working chamber provided on the machine body, wherein the working chamber is provided with a plurality of test components for monitoring whether there are large gaps between the wood strips and a signaling component for transmitting information on the need to adjust the spacing between the wood strips.
[0008] The working chamber includes two groups of springs a fixedly installed in the working chamber, and the two groups of springs a are fixedly connected to the same group of limit boxes. Two groups of sliding grooves a are opened on opposite sides of the inner side of the limit box. A monitoring part is slidably installed in the limit box, and limiting columns b are fixedly installed on both sides of the monitoring part, and the end of the limiting column b is slidably installed in the sliding groove a.
[0009] Furthermore, the communication component includes a communication bin opened on one side of the working chamber, two groups of limit grooves c are opened on opposite sides of the inner side of the communication bin, a communication board is slidably installed in the communication bin, and both sides of the communication board are fixedly connected to the limit columns c, and the ends of the limit columns c are slidably inserted in the limit grooves c.
[0010] Furthermore, the working chamber also includes a reset component for controlling the return of the monitoring component, and the reset component includes a spring b fixedly installed on one side of the working chamber, the end of the spring b is fixedly connected to a push block, and a limit block is fixedly installed on the push block. A limit slot b is opened on the top of the working chamber, and the end of the limit block is slidably installed in the limit slot b, and the cross-section of the limit block is L-shaped.
[0011] Furthermore, the distance adjustment mechanism includes support columns fixedly installed on both sides of the machine body, a fixing frame fixedly connected to the support columns, multiple sets of sliding grooves b are opened at the bottom of the fixing frame, an electric push rod a is fixedly installed on one side of the sliding groove b, and the telescopic end of the electric push rod a is fixedly connected to a sliding block.
[0012] Furthermore, the bottom of the sliding block is fixedly connected to an electric push rod b, and the telescopic end of the electric push rod b is fixedly installed with a pressing block.
[0013] Furthermore, a connecting plate is fixedly mounted on the electric push rod b, and two sets of partition plates are fixedly mounted on both sides of the connecting plate.
[0014] Furthermore, a signal board is fixedly installed at the starting end of the wood strip conveying mechanism, and a plurality of groups of signal lights are fixedly connected to the signal board.
[0015] Furthermore, a fixing groove is provided on one side of the monitoring component, a positioning rod is fixedly connected to one side of the communication board, and the positioning rod is movably inserted into the monitoring component, and a sensor is fixedly installed on the top of the communication compartment.
[0016] Furthermore, a limiting groove a is provided on one side of the working cavity, a limiting column a is fixedly installed on one side of the limiting box, and an end portion of the limiting column a is inserted into the limiting groove a.
[0017] The pressing method of the intelligent pressing device applied to wood profile forming comprises the following steps:
[0018] S1: The glass fiber yarn is threaded and fixed on the yarn threading machine, and then the wooden strips to be pressed are staggered and placed side by side on the wooden strip conveying mechanism, which conveys the wooden strips to the thermal setting mechanism for pressing;
[0019] S2: During the movement of the wooden strips, they pass through the monitoring mechanism. When a large gap appears between the front and rear wooden strips, the push block moves upward to insert into the gap between the wooden strips. At the same time, the push block activates the signal transmission component, transmits the information for adjusting the distance between the wooden strips, and drives the distance adjustment mechanism to start operation.
[0020] S3: When the wooden strips are moving, the electric push rod b drives the connecting plate down together, and the partition plate separates the wooden strips on both sides of the wooden strip to be moved. The electric push rod a pushes the wooden strips forward through the pressing block to narrow the distance between the wooden strips.
[0021] S4: As the wooden strips move forward, the monitoring element is pushed down into the working chamber. The push block pushes the monitoring element back to its original position and continues to monitor the spacing between the wooden strips in real time. The electric push rod b drives the connecting plate to rise together, so that the partition plate is separated from between the wooden strips, and the wooden strips are merged. The electric push rod a then returns the sliding block to its original position, and the electric push rod b controls the connecting plate to continue to rise until it is parallel to the other connecting plates at the same height.
[0022] S5: The wood strips and glass fibers are put into the thermosetting mechanism for thermosetting and pressing.
[0023] Beneficial effects
[0024] Compared with the known public technologies, the technical solution provided by the present invention has the following beneficial effects:
[0025] 1. This intelligent pressing device used for forming wood profiles can monitor the distance between wooden strips in real time by setting up a monitoring mechanism. When the wooden strips become disjointed during transportation, it can promptly give feedback to the distance-adjusting component. By setting up the distance-adjusting component, the distance-adjusting component can control the disjointed wooden strips to move forward quickly and fit the wooden strips in front, effectively solving the problem of disjointed wooden strips, thereby avoiding the generation of voids after the wooden strips and glass fiber are pressed and thermally cured into recycled composite wood planks, which is beneficial to improving the production quality of recycled composite wood planks.
[0026] Second, this intelligent pressing device used for forming wood profiles, by setting up a signaling component, can automatically start the distance adjustment mechanism to solve the problem of disjointed wood strips when the wood strips become disjointed, thereby helping to improve the production efficiency of recycled composite wood beams. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.
[0028] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0029] Figure 2 Schematic diagram of the three-dimensional structure of the distance adjustment mechanism of the present invention;
[0030] Figure 3 Schematic side cross-sectional view of the distance adjustment mechanism of the present invention;
[0031] Figure 4 Schematic diagram of the three-dimensional structure of the monitoring mechanism of the present invention;
[0032] Figure 5 Schematic diagram of the three-dimensional structure of the test assembly of the present invention;
[0033] Figure 6 Schematic diagram of the side structure of the monitoring mechanism of the present invention;
[0034] Figure 7 It is a state diagram of the present invention when processing wood strips.
[0035] Reference numerals:
[0036] 1. Machine body; 101. Wood strip conveying mechanism; 1011. Signal board; 1012. Signal light; 102. Yarn threading machine; 103. Heat setting mechanism;
[0037] 2. Monitoring mechanism; 201. Working chamber; 2011. Limit slot a; 2012. Limit slot b; 2013. Signaling chamber; 2014. Limit slot c;
[0038] 202, test assembly; 2021, spring a; 2022, limit box; 2023, limit column a; 2024, sliding slot a; 2025, monitoring component; 2026, limit column b; 2027, fixing slot;
[0039] 203, reset assembly; 2031, spring b; 2032, push block; 2033, limit block;
[0040] 204, signal transmission component; 2041, communication board; 2042, limit column c; 2043, positioning rod;
[0041] 205, sensor;
[0042] 3. Distance adjustment mechanism; 301. Support column; 302. Fixed frame; 303. Sliding slot b; 304. Electric push rod a; 305. Sliding block; 306. Electric push rod b; 307. Pressing block; 308. Connecting plate; 309. Partition plate. DETAILED DESCRIPTION
[0043] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0044] The present invention will be further described below with reference to the embodiments.
[0045] Refer to the attached Figure 1 and attached Figure 7 As shown, an intelligent pressing device and pressing method for wood profile forming include a machine body 1, a wood strip conveying mechanism 101 is provided on the machine body 1, a yarn threading machine 102 is provided on one side of the wood strip conveying mechanism 101, a thermosetting mechanism 103 is provided on one side of the machine body 1, a monitoring mechanism 2 for monitoring the distance between the wood strips is provided in the machine body 1, and a distance adjusting mechanism 3 for adjusting the distance between the wood strips is provided on the machine body 1. Specifically, when a large gap appears between the wood strips at the front and rear positions on the machine body 1, the monitoring mechanism 2 will detect it in real time and transmit the information of the disjoint problem to the distance adjusting mechanism 3, and start the distance adjusting mechanism 3 to quickly advance the disjointed wood strips, thereby achieving the purpose of solving the disjoint problem of the wood strips.
[0046] Refer to the attached Figure 4 -Attached Figure 7 As shown, the monitoring mechanism 2 includes a working chamber 201 provided on the body 1. The working chamber 201 is provided with a plurality of test components 202 for monitoring whether there are large gaps between the wood strips and a signaling component 204 for transmitting information that the spacing between the wood strips needs to be adjusted.
[0047] The working chamber 201 also includes a reset component 203 for controlling the return of the monitoring part 2025. The working chamber 201 includes two groups of springs a2021 fixedly installed in the working chamber 201. By setting the springs a2021, when the springs a2021 push the monitoring part 2025 to rise between the two groups of wooden bars through the limit boxes 2022, the two groups of springs a2021 are fixedly connected with the same group of limit boxes 2022. By setting the limit boxes 2022, it helps to support the monitoring part 2025 to move stably horizontally on the springs a2021. A limit slot a2011 is provided on one side of the working chamber 201, and a limit column a2023 is fixedly installed on one side of the limit box 2022, and the end of the limit column a2023 is inserted in the limit slot a2011. By setting the limit slot a2011 and the limit column a2023, the range of motion of the limit box 2022 is limited. To prevent the limit box 2022 from shaking laterally as the spring a2021 pushes it, two sets of sliding grooves a2024 are provided on the opposite sides of the inner side of the limit box 2022. A monitoring part 2025 is slidably installed in the limit box 2022. By setting the monitoring part 2025, the wooden strips always press the monitoring part 2025 during the movement of the wooden strips. When a large distance appears between the wooden strips at the front and rear positions, the restriction above the monitoring part 2025 is released, and the spring a2021 pushes the monitoring part 2025 to rise. Limiting columns b2026 are fixedly installed on both sides of the monitoring part 2025, and the ends of the limiting columns b2026 are slidably installed in the sliding grooves a2024. By setting the limiting columns b2026 and the sliding grooves a2024, it is helpful to limit the range of movement of the monitoring part 2025 and prevent the monitoring part 2025 from popping out of the working chamber 201 due to inertia during the rising process.
[0048] The communication component 204 includes a communication bin 2013 opened on one side of the working chamber 201, and two groups of limit grooves c2014 are opened on the opposite sides of the inner side of the communication bin 2013. A communication board 2041 is slidably installed in the communication bin 2013. By setting the communication board 2041, when the monitoring component 2025 rises, the communication board 2041 rises together, and the sensor 205 receives the information of the distance change between it and the communication board 2041. The communication board 2041 is fixedly connected to the limit column c2042 on both sides, and the end of the limit column c2042 is slidably inserted in the limit groove c2014. By setting the limit column c2042 and the limit groove c2014, it helps to ensure that the communication board 2041 always remains in a horizontal state during the up and down movement, and avoids the communication board 2041 from tilting and deflecting. In order to affect the accuracy of the ranging sensing information of the sensor 205, a fixed groove 2027 is provided on one side of the monitoring part 2025, and a positioning rod 2043 is fixedly connected to one side of the communication board 2041, and the positioning rod 2043 is movably inserted in the monitoring part 2025. The sensor 205 is fixedly installed on the top of the communication warehouse 2013. By setting the positioning rod 2043 and the fixed groove 2027, it is helpful for the monitoring part 2025 to drive the communication board 2041 to rise. When the monitoring part 2025 is pushed toward the direction of the thermosetting mechanism 103 by the wooden strip, the fixed groove 2027 is separated from the positioning rod 2043, and the communication board 2041 is free to fall and reset. When the monitoring part 2025 is returned to its original position by the push block 2032, the positioning rod 2043 is reinserted into the fixed groove 2027, waiting for the next rise.
[0049] The reset assembly 203 includes a spring b2031 fixedly installed on one side of the working chamber 201. By setting the spring b2031, when the monitoring part 2025 is pushed by the wooden bar and its position is moved, the spring b2031 pushes the monitoring part 2025 to reset its position through the push block 2032. The end of the spring b2031 is fixedly connected to the push block 2032. By setting the push block 2032, it is convenient for the spring b2031 to push the monitoring part 2025. A limit block 2033 is fixedly installed on the push block 2032. A limit groove b2012 is provided at the top of the working chamber 201, and the end of the limit block 2033 is slidably installed in the limit groove b2012. The cross-section of the limit block 2033 is L-shaped. By setting the limit groove b2012 and the limit block 2033, it is helpful to support the limit block 2033 to move stably horizontally, which is beneficial to avoid deformation of the spring b2031 and extend the service life of the spring b2031.
[0050] Specifically, when a large distance appears between the wooden strips at the front and rear positions, the restriction above the monitoring part 2025 is released, the squeezing force of the spring a2021 disappears, and the spring a2021 pushes the monitoring part 2025 up through the limit box 2022. The communication board 2041 rises together with it through the positioning rod 2043. The distance between the communication board 2041 and the sensor 205 changes, and the sensor 205 transmits the change information to the distance adjustment mechanism 3, thereby starting the distance adjustment mechanism 3 to adjust the distance of the wooden strips.
[0051] At the same time, the continuously moving wooden strip will push the monitoring part 2025 to move toward the thermosetting mechanism 103. The monitoring part 2025 squeezes the spring b2031 through the push block 2032. When the monitoring part 2025 continues to sink along the side wall of the opening of the working chamber 201 until it is at the same height as the machine body 1 and is separated from the horizontal driving force of the wooden strip, the spring b2031 releases the pressure and pushes the push block 2032 to restore the monitoring part 2025 to its original position, and continue the subsequent real-time monitoring.
[0052] Refer to the attached Figure 1 -Attached Figure 3 As shown, the distance adjustment mechanism 3 includes support columns 301 fixedly mounted on both sides of the body 1, and a fixing frame 302 is fixedly connected to the support column 301, and a plurality of sliding grooves b303 are provided at the bottom of the fixing frame 302. By setting the sliding grooves b303, the sliding grooves b303 limit the range of motion of the sliding block 305, and an electric push rod a304 is fixedly mounted on one side of the sliding groove b303, and the electric push rod a304 controls the horizontal movement of the electric push rod b306, and the telescopic end of the electric push rod a304 is fixedly connected to the sliding block 305, and the sliding block 305 fixes the horizontal height of the fixed end of the electric push rod b306, and the bottom of the sliding block 305 is fixedly connected to the electric push rod b306, and the telescopic end of the electric push rod b306 is fixedly mounted with a pressing block 307, and an anti-sliding block is provided at the bottom of the pressing block 307. By setting the pressing block 307, the pressing block 307 presses the disjointed wooden strips and drives the wooden strips to move forward quickly, close to the wooden strips in front, effectively solving the problem of large spacing between the wooden strips.
[0053] A connecting plate 308 is fixedly installed on the electric push rod b306, and two groups of partition plates 309 are fixedly installed on both sides of the connecting plate 308. The partition plates 309 on multiple groups of connecting plates 308 are staggered relative to the adjacent groups of partition plates 309, so that the partition plates 309 on different connecting plates 308 are all above the horizontal gaps between the wooden strips. By setting the partition plates 309, the partition plates 309 inserted between the parallel wooden strips are lowered and the wooden strips on both sides of the disjointed wooden strips are pushed outward, which helps to reduce the friction between the disjointed wooden strips when the disjointed wooden strips move forward.
[0054] A signal board 1011 is fixedly installed at the starting end of the wood strip conveying mechanism 101, and multiple groups of signal lights 1012 are fixedly connected to the signal board 1011. Another group of signal devices is connected to the tail end of the sliding groove b303. When the sliding groove b303 completes pushing the sliding block 305 forward, the group of signal devices will transmit information to the signal board 1011, so that the signal lights 1012 in the same vertical column will light up, reminding workers to pay attention to pushing forward the loading of materials in that vertical column when loading.
[0055] Specifically, when the distance adjustment mechanism 3 is started, the electric push rod b306 drives the pressing block 307 and the connecting plate 308 to descend together, the pressing block 307 presses the disjointed wooden strips, and the partition plate 309 on the connecting plate 308 descends and inserts between the parallel wooden strips. The partition plate 309 pushes the wooden strips on both sides of the disjointed wooden strips outward, and the sliding groove b303 pushes the sliding block 305 forward on the fixed frame 302, and then the pressing block 307 drives the disjointed wooden strips to move forward quickly, so that the wooden strips in front and behind are fitted together, thereby solving the problem of disjointness between the wooden strips.
[0056] When the disconnection problem is solved, the electric push rod b306 drives the connecting plate 308 to rise a distance, so that the partition plate 309 is separated from the wooden strips, and the electric push rod a304 drives the sliding block 305 to return to its original position. The electric push rod b306 continues to rise, controlling the connecting plate 308 to continue to rise to the same height as other connecting plates 308 and reset in parallel to avoid collision between different groups of partition plates 309 during subsequent use.
[0057] The pressing method of the intelligent pressing device applied to wood profile forming comprises the following steps:
[0058] S1: The glass fiber yarn is threaded and fixed on the yarn threading machine 102, and then the wood strips to be pressed are staggered and placed side by side on the wood strip conveying mechanism 101. The wood strip conveying mechanism 101 conveys the wood strips to the heat setting mechanism 103 for pressing;
[0059] S2: During the movement of the wooden strips, the wooden strips pass through the monitoring mechanism 2. When a large gap appears between the front and rear wooden strips, the push block 2032 moves upward to insert into the gap between the wooden strips. Simultaneously, the push block 2032 activates the signaling assembly 204, transmits the information for adjusting the distance between the wooden strips, and drives the distance adjustment mechanism 3 to start operation.
[0060] S3: During the movement of the wooden strips, the electric push rod b306 drives the connecting plate 308 to descend together, the partition plate 309 moves the wooden strips on both sides of the wooden strip to be moved apart, and the electric push rod a304 pushes the wooden strips forward through the pressing block 307 to narrow the distance between the wooden strips;
[0061] S4: As the wooden strips move forward, the monitoring component 2025 is pushed down into the working chamber 201, and the push block 2032 pushes the monitoring component 2025 to reset, and continues to monitor the distance between the wooden strips in real time. The electric push rod b306 drives the connecting plate 308 to rise together, so that the partition plate 309 is separated from between the wooden strips, and then the sliding block 305 is returned to its position through the electric push rod a304. The electric push rod b306 controls the connecting plate 308 to continue to rise to the same height and parallel with other connecting plates 308.
[0062] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention 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 will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the various embodiments of the present invention.
Claims
1. An intelligent pressing device for forming wood profiles, comprising a machine body (1), a wood strip conveying mechanism (101) provided on the machine body (1), a threading machine (102) provided on one side of the wood strip conveying mechanism (101), and a heat setting mechanism (103) provided on one side of the machine body (1), characterized in that: A monitoring mechanism (2) for monitoring the distance between the wooden strips is provided in the machine body (1), and a distance adjustment mechanism (3) for adjusting the distance between the wooden strips is provided on the machine body (1); The monitoring mechanism (2) comprises a working chamber (201) provided on the body (1), wherein the working chamber (201) is provided with a plurality of test components (202) for monitoring whether there are large gaps between the wood strips and a signaling component (204) for transmitting information indicating that the spacing between the wood strips needs to be adjusted; Two groups of springs a (2021) are fixedly installed in the working chamber (201), and the same group of limit boxes (2022) are fixedly connected to the two groups of springs a (2021). Two groups of sliding grooves a (2024) are opened on opposite sides of the inner side of the limit box (2022). A monitoring component (2025) is slidably installed in the limit box (2022), and limit columns b (2026) are fixedly installed on both sides of the monitoring component (2025), and the ends of the limit columns b (2026) are slidably installed in the sliding grooves a (2024).
2. The intelligent pressing device for wood profile molding according to claim 1, characterized in that: The signal transmission component (204) comprises a signal transmission chamber (2013) provided on one side of the working chamber (201), two groups of limiting grooves c (2014) being provided on opposite sides of the inner side of the signal transmission chamber (2013), a communication board (2041) being slidably installed in the signal transmission chamber (2013), both sides of the communication board (2041) being fixedly connected to limiting columns c (2042), and the ends of the limiting columns c (2042) being slidably inserted in the limiting grooves c (2014).
3. The intelligent pressing device for wood profile molding according to claim 2, characterized in that: The working chamber (201) also includes a reset assembly (203) for controlling the return of the monitoring component (2025), the reset assembly (203) including a spring b (2031) fixedly mounted on one side of the working chamber (201), the end of the spring b (2031) being fixedly connected to a push block (2032), a limit block (2033) being fixedly mounted on the push block (2032), a limit slot b (2012) being provided at the top of the working chamber (201), and an end of the limit block (2033) being slidably mounted in the limit slot b (2012), the cross section of the limit block (2033) being L-shaped.
4. The intelligent pressing device for wood profile molding according to claim 3, characterized in that: The distance adjustment mechanism (3) comprises support columns (301) fixedly mounted on both sides of the machine body (1); a fixing frame (302) is fixedly connected to the support columns (301); a plurality of sliding grooves b (303) are provided at the bottom of the fixing frame (302); an electric push rod a (304) is fixedly mounted on one side of the sliding groove b (303); and a sliding block (305) is fixedly connected to the telescopic end of the electric push rod a (304).
5. The intelligent pressing device for wood profile molding according to claim 4, characterized in that: The bottom of the sliding block (305) is fixedly connected to an electric push rod b (306), and the telescopic end of the electric push rod b (306) is fixedly mounted with a pressing block (307).
6. The intelligent pressing device for wood profile molding according to claim 5, characterized in that: A connecting plate (308) is fixedly mounted on the electric push rod b (306), and two sets of partition plates (309) are fixedly mounted on both sides of the connecting plate (308).
7. The intelligent pressing device for wood profile molding according to claim 6, characterized in that: A signal board (1011) is fixedly mounted on the starting end of the wood strip conveying mechanism (101), and a plurality of groups of signal lights (1012) are fixedly connected to the signal board (1011).
8. The intelligent pressing device for wood profile molding according to claim 7, characterized in that: A fixing groove (2027) is provided on one side of the monitoring component (2025), a positioning rod (2043) is fixedly connected to one side of the communication board (2041), and the positioning rod (2043) is movably inserted into the fixing groove (2027), and a sensor (205) is fixedly installed on the top of the communication chamber (2013).
9. The intelligent pressing device for wood profile molding according to claim 8, characterized in that: A limiting groove a (2011) is provided on one side of the working cavity (201), a limiting column a (2023) is fixedly mounted on one side of the limiting box (2022), and an end portion of the limiting column a (2023) is inserted into the limiting groove a (2011).
10. An intelligent pressing method for forming wood profiles, using the intelligent pressing device described in claim 9, characterized in that: The following steps are involved: S1: The glass fiber yarn is threaded and fixed on the threading machine (102), and then the wooden strips to be pressed are placed side by side on the wooden strip conveying mechanism (101). The wooden strip conveying mechanism (101) conveys the wooden strips to the heat-setting mechanism (103) for pressing; S2: During the movement of the wooden strips, the wooden strips will pass through the monitoring mechanism (2). When a large gap appears between the front and rear wooden strips, the monitoring member (225) will move upward and insert into the gap between the wooden strips. At the same time, the monitoring member (2025) will drive the signaling component (204) to start, transmit the information for adjusting the distance between the wooden strips, and drive the distance adjustment mechanism (3) to start the operation; S3: During the movement of the wooden strips, the electric push rod b (306) drives the connecting plate (308) to descend together, the partition plate (309) moves the wooden strips on both sides of the wooden strip to be moved apart, and the electric push rod a (304) pushes the wooden strips forward through the pressing block (307) to reduce the distance between the wooden strips; S4: As the wooden strips advance, the monitoring member (2025) is pushed down into the working chamber (201), and the push block (2032) pushes the monitoring member (2025) to reset, continuing to monitor the spacing between the wooden strips in real time. The electric push rod b (306) drives the connecting plate (308) to rise together, so that the partition plate (309) is separated from between the wooden strips, and the wooden strips are merged. Then, the electric push rod a (304) is used to return the sliding block (305) to its original position, and the electric push rod b (306) controls the connecting plate (308) to continue to rise until it is parallel to the other connecting plates (308) at the same height. S5: The wood strips and the glass fiber yarns enter the heat setting mechanism (103) for heat setting and pressing.
Citation Information
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