Carbon reduction method of supercritical extraction coupled with three-level resource recycling of paeonia lactiflora residue

CN122516656APending Publication Date: 2026-08-07王灿
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
王灿
Filing Date
2026-06-15
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0005]为了弥补以上不足,本发明提供了芍药药渣三级资源化循环耦合超临界萃取减碳方法,旨在改善该装置进行定位安装辅助工作时,通过夹持板配合弹簧对模板进行夹持,夹持板在使用一段时间后可能出现磨损或损坏的情况,同时弹簧在使用一段时间后,可能出现弹性下降而影响夹持效果的情况,该装置的夹持板和弹簧的夹持机构拆卸更换较为不方便,出现夹持效果下降的情况下,不方便对夹持机构进行拆卸更换或维修而影响安装辅助工作的问题

Benefits of technology

[0012] In a preferred embodiment of the present invention, a worm gear is fixedly sleeved on the outer wall of the second threaded rod, and an installation rod is rotatably installed inside the installation groove. A worm is installed at one end of the installation rod, and the worm and the worm gear are meshed together. The rotation of the installation rod causes the worm to drive the worm gear to rotate. At the same time, the self-locking property of the worm prevents the worm gear from rotating in the opposite direction, thereby improving the stability of the aluminum alloy template clamping mechanism. The installation rod rotates through one side of the installation plate, and a second external support is installed at one end of the installation rod.

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Abstract

The present application discloses a paeony residue three-level resource recycling coupling supercritical extraction carbon reduction method, belongs to the template technical field, the paeony residue three-level resource recycling coupling supercritical extraction carbon reduction method includes the positioning calibration auxiliary mainboard, one side of the positioning calibration auxiliary mainboard is provided with the position adjusting mechanism, the bottom end of the position adjusting mechanism is provided with the mounting plate, the mounting plate is provided with the mounting groove, the inside of the mounting groove is provided with the fixed limiting mechanism, the mounting plate is detachably installed with the aluminum alloy template clamping mechanism through the fixed limiting mechanism, the position adjusting mechanism includes the plate body, the plate body is installed on one side of the positioning calibration auxiliary mainboard, one side of the plate body is rotatably installed with the lead screw, the lead screw is screwedly installed with the moving block. The device can conveniently and quickly install and dismount the aluminum alloy template clamping mechanism through the fixed limiting mechanism, the operation is more convenient, a certain time can be saved, and the use cost is reduced.
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Description

Technical Field

[0001] This invention relates to the field of templates, and more specifically, to a three-stage resource utilization and recycling method for supercritical extraction and carbon reduction of peony residue. Background Technology

[0002] Since its inception, aluminum alloy formwork systems have been used for nearly 50 years and have been widely applied in the construction industry. In the process of promoting their use, various countries have also accumulated a wealth of experience in the design, manufacturing, application, and construction of aluminum formwork.

[0003] In the prior art, a formwork positioning and installation auxiliary device with application number 202222264228.4 includes a main board, a moving ring, a bottom frame, and a clamping plate. The top two outer walls of the main board are fixedly connected to baffles, and a threaded rod is rotatably connected between the opposite outer walls of the baffles via a bearing. The moving ring is threaded onto the outer circumference of the threaded rod. A top groove is formed between the top and bottom outer walls of the main board, and a limiting plate inserted into the top groove is fixedly connected to the bottom outer wall of the moving ring. Two bottom frames are respectively fixedly connected to the bottom two outer walls of the limiting plate, and telescopic rods are inserted between the top and bottom outer walls of both ends of the bottom frames. The clamping plates are respectively fixedly connected between the outer walls of one end of the telescopic rods. This invention achieves the effect of the formwork following the moving ring. When the handle is rotated to move the moving ring, a marking plate and an indicator plate mark the moving distance of the moving ring, thereby achieving precise positioning of the formwork installation position.

[0004] The applicant's research revealed certain shortcomings in the aforementioned solution. When the device assists in positioning and installation, it uses a clamping plate and springs to hold the template. However, the clamping plate may wear out or become damaged after a period of use, and the springs may lose elasticity, affecting the clamping effect. Furthermore, disassembling and replacing the clamping plate and spring mechanism is inconvenient. If the clamping effect decreases, it is difficult to disassemble, replace, or repair the clamping mechanism, thus hindering the installation assistance work. How to improve these problems has become a pressing issue for those skilled in the art. Summary of the Invention

[0005] To overcome the above shortcomings, this invention provides a three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue. This method aims to improve upon the shortcomings of the current device, which uses a clamping plate and springs to hold the template during positioning and installation. The clamping plate may wear or be damaged after a period of use, and the springs may lose elasticity, affecting the clamping effect. Furthermore, the clamping mechanism of the clamping plate and springs is inconvenient to disassemble and replace. This inconvenience in disassembling, replacing, or repairing the clamping mechanism when the clamping effect decreases hinders the installation and installation work.

[0006] The present invention is implemented as follows: a three-stage resource recycling and supercritical extraction carbon reduction method for peony residue includes a positioning and calibration auxiliary main board, a position adjustment mechanism is installed on one side of the positioning and calibration auxiliary main board, an installation plate is installed at the bottom of the position adjustment mechanism, the installation plate is provided with an installation groove, a fixing and limiting mechanism is installed inside the installation groove, and an aluminum alloy template clamping mechanism is detachably installed on the installation plate through the fixing and limiting mechanism.

[0007] In a preferred embodiment of the present invention, the position adjustment mechanism includes a plate body, which is mounted on one side of the positioning calibration auxiliary main board. A lead screw is rotatably mounted on one side of the plate body, and a moving block is threaded onto the lead screw. An auxiliary block is mounted on one side of the moving block. An auxiliary groove is provided on one side of the positioning calibration auxiliary main board in conjunction with the auxiliary block. An L-shaped plate is mounted on the upper end of the moving block. The L-shaped plate has a threaded groove, and a threaded rod is threaded onto the groove. A handle is mounted on the top end of the threaded rod, and a support plate is mounted on the bottom end of the threaded rod. An indicator rod is mounted on one side of the L-shaped plate. The positioning calibration auxiliary main board is equipped with a marking plate on its upper end. The auxiliary block is slidably connected in the auxiliary groove. The rotation of the screw causes the moving block to move, which in turn causes the L-shaped plate and the indicator rod to move. This allows the device to be positioned in conjunction with the marking plate, marking the moving distance of the aluminum alloy template to facilitate subsequent installation of the aluminum alloy template. After moving to the required designated position, the screw rod is rotated by the handle, causing the screw rod to drive the support plate to descend. The L-shaped plate supports the moving block to prevent it from moving, thus improving the accuracy of the positioning calibration. The indicator rod is triangular, and the mounting plate is U-shaped.

[0008] In a preferred embodiment of the present invention, the lead screw rotates through one side of the plate, and an external support is installed at one end of the lead screw.

[0009] In a preferred embodiment of the present invention, the fixing and limiting mechanism includes a second threaded rod, which is rotatably mounted inside the mounting groove. A sleeve plate is threaded onto the second threaded rod, and a fixing block is mounted on one end of the sleeve plate. The aluminum alloy template clamping mechanism includes a second mounting plate, with a connecting block mounted on one side of the second mounting plate. A connecting groove is provided on one side of the mounting plate to cooperate with the connecting block. The fixing block slides through the mounting groove and the connecting groove, and a fixing groove is provided on one side of the connecting block to cooperate with the fixing block. Multiple sets of elastic bodies are mounted on the other side of the second mounting plate, and clamping plates are connected to the other ends of the multiple sets of elastic bodies. The aluminum alloy template to be installed is stably clamped by the two sets of clamping plates. The aluminum alloy template clamping mechanism can be used to fix and limit the aluminum alloy template. It can be quickly and easily installed inside the mounting plate, facilitating the disassembly of the aluminum alloy template clamping mechanism. When the aluminum alloy template clamping mechanism is worn or damaged due to prolonged use and needs repair or replacement, or when the elasticity of the elastomer decreases and affects the clamping effect, the aluminum alloy template clamping mechanism can be easily and quickly replaced separately without replacing the entire device, thus extending its service life and reducing costs. During installation and fixing, the aluminum alloy template clamping mechanism is initially connected through the second mounting plate and the connecting block in the connecting groove. The rotation of the second threaded rod causes the sleeve plate to move, allowing the fixing block to be fixed in the fixing groove of the connecting block, completing the installation of the aluminum alloy template clamping mechanism. During disassembly, the second threaded rod rotates in the opposite direction, and a third external support is installed on one side of the second mounting plate.

[0010] In a preferred embodiment of the present invention, two sets of sleeve plates and connecting blocks are provided in cooperation, and the two sets of sleeve plates are threadedly installed at both ends of the second threaded rod, with the thread directions of the two ends of the second threaded rod being opposite.

[0011] In a preferred embodiment of the present invention, a guide block is installed on one side of the sleeve plate, and a guide groove is provided on the inner wall of the mounting groove in cooperation with the guide block, and the guide block is slidably connected in the guide groove.

[0012] In a preferred embodiment of the present invention, a worm gear is fixedly sleeved on the outer wall of the second threaded rod, and an installation rod is rotatably installed inside the installation groove. A worm is installed at one end of the installation rod, and the worm and the worm gear are meshed together. The rotation of the installation rod causes the worm to drive the worm gear to rotate. At the same time, the self-locking property of the worm prevents the worm gear from rotating in the opposite direction, thereby improving the stability of the aluminum alloy template clamping mechanism. The installation rod rotates through one side of the installation plate, and a second external support is installed at one end of the installation rod.

[0013] In a preferred embodiment of the present invention, a support rod is installed on one side of the positioning calibration auxiliary motherboard.

[0014] The beneficial effects of this invention are as follows: The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue, obtained through the above design, utilizes two sets of clamping plates and an elastomer to stably clamp the aluminum alloy template to be installed. Rotating the lead screw via an external holder causes the moving block to move, which in turn moves the L-shaped plate and the indicator rod. This allows the device to be positioned using a marking plate, marking the moving distance of the aluminum alloy template for easier subsequent installation. After moving to the desired location, rotating the threaded rod via the handle causes the threaded rod to lower the support plate, and the L-shaped plate then guides the moving block... The device provides support to prevent the moving block from shifting. When the aluminum alloy template clamping mechanism becomes worn or damaged due to prolonged use and requires repair or replacement, or when the elasticity of the elastomer decreases, affecting the clamping effect, the aluminum alloy template clamping mechanism can be easily and quickly replaced individually. By rotating the mounting rod via the second external support, the mounting rod rotates, causing the worm gear to drive the worm wheel to rotate. Simultaneously, the worm gear's self-locking property prevents the worm wheel from rotating in the opposite direction. The rotation of the second threaded rod causes the sleeve plate to move the fixing block, thus removing the fixing block from the fixing groove of the connecting block, completing the disassembly of the aluminum alloy template clamping mechanism. It can then be replaced or repaired and reinstalled. This device, through its fixed limiting mechanism, allows for convenient and quick installation and disassembly of the aluminum alloy template clamping mechanism, saving time and reducing operating costs. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue provided in the embodiments of the present invention; Figure 2 Another structural schematic diagram provided for an embodiment of the present invention; Figure 3 A schematic diagram of the internal structure provided for an embodiment of the present invention; Figure 4 for Figure 3 A magnified view of position A in the middle.

[0017] In the diagram: 100-Positioning calibration auxiliary main board; 110-Marker plate; 120-Support rod; 200-Position adjustment mechanism; 210-Plate body; 220-Lead screw; 221-External holder; 230-Moving block; 231-Auxiliary block; 240-L-shaped plate; 250-Threaded rod; 251-Support plate; 252-Handle; 260-Indicator rod; 300-Mounting plate; 301-Mounting groove; 302-Connecting groove; 400-Fixing limit mechanism; 410-Second threaded rod; 420-Sleeve plate; 421-Guide block; 430-Fixing block; 440-Worm gear; 450-Mounting rod; 460-Worm; 470-Second external holder; 500-Aluminum alloy template clamping mechanism; 510-Second mounting plate; 511-Third external holder; 520-Connecting block; 530-Elastomer; 540-Clamping plate. Detailed Implementation

[0018] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0019] Please see Figure 1 The present invention provides a technical solution: a three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue, including a positioning and calibration auxiliary main board 100, a position adjustment mechanism 200 installed on one side of the positioning and calibration auxiliary main board 100, an installation plate 300 installed at the bottom of the position adjustment mechanism 200, an installation groove 301 provided on the installation plate 300, a fixing and limiting mechanism 400 installed inside the installation groove 301, and an aluminum alloy template clamping mechanism 500 detachably installed on the installation plate 300 through the fixing and limiting mechanism 400.

[0020] In some specific implementations, the position adjustment mechanism 200 includes a plate 210, which is mounted on one side of the positioning calibration auxiliary main board 100. A lead screw 220 is rotatably mounted on one side of the plate 210, and a moving block 230 is threaded onto the lead screw 220. An auxiliary block 231 is mounted on one side of the moving block 230. An auxiliary groove is provided on one side of the positioning calibration auxiliary main board 100 to cooperate with the auxiliary block 231. An L-shaped plate 240 is mounted on the upper end of the moving block 230. The L-shaped plate 240 is provided with a threaded groove, and a threaded rod 250 is threaded into the groove. A handle 252 is mounted on the top end of the threaded rod 250, and a support plate 251 is mounted on the bottom end of the threaded rod 250. An indicator rod 260 is mounted on one side of the L-shaped plate 240 for positioning calibration. A marking plate 110 is installed on the upper end of the auxiliary main board 100. The auxiliary block 231 is slidably connected in the auxiliary groove. The rotation of the lead screw 220 causes the moving block 230 to move, which in turn causes the L-shaped plate 240 and the indicator rod 260 to move. This allows the device to be positioned in conjunction with the marking plate 110, marking the moving distance of the aluminum alloy template to facilitate subsequent installation of the aluminum alloy template. After moving to the required designated position, the threaded rod 250 is rotated by the handle 252, causing the threaded rod 250 to drive the support plate 251 to descend. The L-shaped plate 240 supports the moving block 230 to prevent it from moving, thus improving the accuracy of the positioning calibration. The indicator rod 260 is triangular, and the mounting plate 300 is U-shaped.

[0021] In some specific implementations, the lead screw 220 rotates through one side of the plate 210, and an external support 221 is installed at one end of the lead screw 220.

[0022] In some specific implementations, the fixing and limiting mechanism 400 includes a second threaded rod 410, which is rotatably mounted inside the mounting groove 301. A sleeve plate 420 is threaded onto the second threaded rod 410, and a fixing block 430 is mounted on one end of the sleeve plate 420. The aluminum alloy template clamping mechanism 500 includes a second mounting plate 510, with a connecting block 520 mounted on one side of the second mounting plate 510. A connecting groove 302 is provided on one side of the mounting plate 300 to cooperate with the connecting block 520. The fixing block 430 slides through the mounting groove 301 and the connecting groove 302, and a fixing groove is provided on one side of the connecting block 520 to cooperate with the fixing block 430. Multiple sets of elastic bodies 530 are mounted on the other side of the second mounting plate 510, and a clamping plate 540 is connected to the other end of each set of elastic bodies 530. The two clamping plates 540 stably clamp the aluminum alloy template to be installed. The aluminum alloy template clamping mechanism 500 can be conveniently and quickly clamped by the fixing and limiting mechanism 400. The aluminum alloy template clamping mechanism 500 is installed inside the mounting plate 300, which facilitates disassembly of the aluminum alloy template clamping mechanism 500. When the aluminum alloy template clamping mechanism 500 is worn or damaged due to long-term use and needs repair or replacement, or when the elasticity of the elastomer 530 decreases and affects the clamping effect, the aluminum alloy template clamping mechanism 500 can be replaced quickly and easily without replacing the entire device body, thus extending its service life and reducing costs. During installation and fixing, the aluminum alloy template clamping mechanism 500 is initially connected through the second mounting plate 510 and the connecting block 520 in conjunction with the connecting groove 302. The rotation of the second threaded rod 410 causes the sleeve plate 420 to drive the fixing block 430 to move, so that the fixing block 430 is fixed in conjunction with the fixing groove of the connecting block 520, thus completing the installation of the aluminum alloy template clamping mechanism 500. During disassembly, the second threaded rod 410 is rotated in the opposite direction, and a third external support 511 is installed on one side of the second mounting plate 510.

[0023] In some specific implementations, two sets of sleeve plates 420 and connecting blocks 520 are provided in cooperation. The two sets of sleeve plates 420 are threadedly installed at both ends of the second threaded rod 410, and the thread directions at both ends of the second threaded rod 410 are opposite.

[0024] In some specific implementations, a guide block 421 is installed on one side of the sleeve plate 420, and a guide groove is provided on the inner wall of the mounting groove 301 to cooperate with the guide block 421. The guide block 421 is slidably connected in the guide groove.

[0025] In some specific implementations, a worm gear 440 is fixedly sleeved on the outer wall of the second threaded rod 410, and an installation rod 450 is rotatably installed inside the installation groove 301. A worm 460 is installed at one end of the installation rod 450. The worm 460 and the worm gear 440 are meshed. The rotation of the installation rod 450 causes the worm 460 to drive the worm gear 440 to rotate. At the same time, the self-locking property of the worm 460 prevents the worm gear 440 from rotating in the opposite direction, thereby improving the stability of the aluminum alloy template clamping mechanism 500. The installation rod 450 rotates through one side of the installation plate 300, and a second external support 470 is installed at one end of the installation rod 450.

[0026] In some specific implementations, a support rod 120 is installed on one side of the positioning calibration auxiliary motherboard 100.

[0027] Working principle: In use, two sets of clamping plates 540, in conjunction with the elastic body 530, stably clamp the aluminum alloy template to be installed. The external holder 221 rotates the lead screw 220, causing the moving block 230 to move, which in turn moves the L-shaped plate 240 and the indicator rod 260. This allows the device to be positioned in conjunction with the marking plate 110, marking the moving distance of the aluminum alloy template for easier subsequent installation. After moving to the desired position, the handle 252 rotates the threaded rod 250, causing the threaded rod 250 to lower the support plate 251. The L-shaped plate 240 supports the moving block 230, preventing it from moving. When the aluminum alloy template... When the clamping mechanism 500 wears or is damaged due to prolonged use and needs repair or replacement, or when the elasticity of the elastomer 530 decreases and affects the clamping effect, the aluminum alloy template clamping mechanism 500 can be easily and quickly replaced separately. By rotating the mounting rod 450 through the second external support 470, the rotation of the mounting rod 450 causes the worm gear 460 to drive the worm wheel 440 to rotate. At the same time, the self-locking property of the worm gear 460 prevents the worm wheel 440 from rotating in the opposite direction. The rotation of the second threaded rod 410 causes the sleeve plate 420 to drive the fixing block 430 to move, so that the fixing block 430 no longer engages with the fixing groove of the connecting block 520 for fixation. The aluminum alloy template clamping mechanism 500 can be disassembled, replaced or repaired, and then reinstalled.

[0028] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the invention by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the invention should be included within the scope of protection of the invention.

Claims

1. A three-stage resource utilization and recycling method for peony residue coupled with supercritical extraction for carbon reduction, characterized in that... The system includes a positioning and calibration auxiliary motherboard, a position adjustment mechanism is installed on one side of the positioning and calibration auxiliary motherboard, an installation plate is installed at the bottom of the position adjustment mechanism, the installation plate is provided with an installation groove, a fixing and limiting mechanism is installed inside the installation groove, and an aluminum alloy template clamping mechanism is detachably installed on the installation plate through the fixing and limiting mechanism.

2. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 1, characterized in that, The position adjustment mechanism includes a plate body, which is mounted on one side of the positioning calibration auxiliary main board. A lead screw is rotatably mounted on one side of the plate body, and a moving block is threaded onto the lead screw. An auxiliary block is mounted on one side of the moving block. An auxiliary groove is provided on one side of the positioning calibration auxiliary main board in conjunction with the auxiliary block. An L-shaped plate is mounted on the upper end of the moving block. The L-shaped plate has a threaded groove, and a threaded rod is threaded into the groove. A handle is mounted on the top end of the threaded rod, and a support plate is mounted on the bottom end of the threaded rod. An indicator rod is mounted on one side of the L-shaped plate, and a marking plate is mounted on the upper end of the positioning calibration auxiliary main board.

3. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 2, characterized in that, The lead screw rotates through one side of the plate, and an external support is installed at one end of the lead screw.

4. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 1, characterized in that, The fixed limiting mechanism includes a second threaded rod, which is rotatably installed inside the mounting groove. A sleeve plate is threaded onto the second threaded rod, and a fixing block is installed at one end of the sleeve plate. The aluminum alloy template clamping mechanism includes a second mounting plate, with a connecting block installed on one side of the second mounting plate. A connecting groove is provided on one side of the mounting plate to cooperate with the connecting block. The fixing block slides through the mounting groove and the connecting groove, and a fixing groove is provided on one side of the connecting block to cooperate with the fixing block. Multiple sets of elastic bodies are installed on the other side of the second mounting plate, and a clamping plate is connected to the other end of each set of elastic bodies.

5. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 4, characterized in that, The sleeve plate and connecting block are provided in two sets. The two sets of sleeve plates are threadedly installed at both ends of the second threaded rod, and the thread directions at both ends of the second threaded rod are opposite.

6. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 4, characterized in that, A guide block is installed on one side of the sleeve plate, and a guide groove is provided on the inner wall of the mounting groove to cooperate with the guide block.

7. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 4, characterized in that, A worm gear is fixedly sleeved on the outer wall of the second threaded rod, and an installation rod is rotatably installed inside the installation groove. A worm is installed at one end of the installation rod, and the worm and the worm gear are meshed together.

8. The three-stage resource utilization and recycling coupled supercritical extraction carbon reduction method for peony residue according to claim 1, characterized in that, A support rod is installed on one side of the positioning calibration auxiliary motherboard.

Citation Information

Patent Citations

  • Building template positioning and mounting auxiliary device

    CN218668539U