Finished product conveying device for shaving board production

By using scale components and magnetorheological elastomer layers in the particleboard conveying device, combining pressure and temperature sensors to adjust the angle and temperature of the scale main board, and using pixelated electrode sheets to generate electric fields, the problems of particleboard wear, side damage, dust flying and bending deformation in traditional conveying devices are solved, and a stable and clean conveying effect is achieved.

CN120645290AInactive Publication Date: 2025-09-16YANTAI GEERS NEW MATERIAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511159164.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2025-09-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The finished product conveying device used in traditional particleboard production can easily cause particleboard wear, side damage, and dust flying during the conveying process, and the mechanical clamping can easily cause the board to bend and deform.

Method used

A conveyor belt with a scale component and a magnetorheological elastomer layer is used. The inclination angle and temperature of the scale main board are adjusted through pressure sensors and temperature sensors. The pixelated electrode sheet is used to generate an electric field for stable transportation and dust removal of the particle board.

Benefits of technology

It effectively prevents the wear and side damage of particleboard, reduces dust flying, improves conveying stability, prevents the bending and deformation of the board, and realizes deep cleaning and dust removal functions.

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Abstract

The invention relates to the technical field of shaving board finished product transportation, and discloses a finished product conveying device for shaving board production, which comprises a support plate I and a support plate II, a stepping motor is fixedly mounted on the outer wall of the support plate II, and a driving gear is fixedly assembled on a power output shaft of the stepping motor; the outer wall of the driving gear is engaged with one end of a rack transmission belt, and the inner wall of the other end of the rack transmission belt is engaged with a driven gear. The weight of the board is detected through the pressure sensor, a signal is transmitted through the control panel, the temperature of the scale main board is adjusted after the electric heating wire layer is started, the inclination angle of the scale main board is changed through the temperature sensor, and therefore shaving boards with different weights can be conveyed according to different inclination angles of the shaving boards, energy is saved, and the environment is protected; and meanwhile, the shaving board can play a role in preventing backward sliding in the transportation process, meanwhile, vibration can be generated in the rotating process of the scale main board, large particles on the surface can be shaken off, and the self-cleaning purpose is achieved.
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Description

Technical Field

[0001] The invention relates to the technical field of particleboard finished product transportation, in particular to a finished product conveying device for particleboard production. Background Art

[0002] The finished product conveying device for particleboard production is an indispensable link in the particleboard production process. Its design and technical application directly affect production efficiency, finished product quality and operational safety.

[0003] The following problems are prone to occur during the conveying process of traditional finished product conveying devices for particleboard production: 1. The friction between the particleboard and the conveyor belt causes scratches on the bottom surface and causes damage; 2. The conveyor belt surface is rough or there are foreign objects, which causes uneven pressure when the particle board is transported, causing side damage during transportation; 3. The conveyor belt will generate dust during the particleboard transportation process, and it is easy to fly. This not only affects the workshop environment, but also easily threatens the health of operators. At the same time, it is easy to cause pollution to the surrounding environment and affect the speed of the conveyor belt. Furthermore, conventional finished product conveying devices for particleboard production generally use mechanical clamping methods to fix the particleboards when conveying them, which makes the particleboards prone to bending and deformation, affecting the final conveying quality. Therefore, improvements are needed. Summary of the Invention

[0004] The present invention provides a finished product conveying device for particleboard production, which solves the problems raised by the above-mentioned background technology.

[0005] The present invention provides the following technical solution: a finished product conveying device for particle board production, comprising support plate one and support plate two, the outer wall of the support plate two is fixedly mounted with a stepping motor, the power output shaft of the stepping motor is fixedly equipped with a driving gear, the outer wall of the driving gear is meshed with one end of a rack transmission belt, and the inner wall of the other end of the rack transmission belt is meshed with a driven gear, the center of the driven gear is fixedly sleeved with a driving roller through a rotating shaft, the outer wall of the driving roller is provided with a conveyor belt assembly, the top of the conveyor belt assembly is provided with a scale assembly, and protective shells are installed on the outer walls of both sides of the conveyor belt assembly, an installation box is provided between the support plate one and the support plate two, a control panel and an emergency brake button are fixedly mounted on the top of the installation box, mounting frames are installed at both ends of the installation box, a classification assembly is provided on the top of the mounting frame, and an X-ray density scanner is fixedly installed on the top of the inner wall of the installation box.

[0006] As a preferred technical solution of the present invention: the stepper motor and the X-ray density scanner are both electrically connected to the control panel, the number of support plate 1 and support plate 2 are both two, and the two support plates 1 and support plate 2 are symmetrically distributed on the outer wall of the mounting frame, and the drive roller is located on the inner wall of the conveyor belt assembly.

[0007] As a preferred technical solution of the present invention: the scale assembly includes a scale main board, the inner wall of the scale main board is respectively inlaid with a pressure sensor, a temperature sensor, an inclination sensor and a speed encoder, the inner wall of the scale main board is fixedly inlaid with an insulating protective layer, and the inner wall of the insulating protective layer is fixedly inlaid with a heating wire layer.

[0008] As a preferred technical solution of the present invention: the temperature sensor is electrically connected to the heating wire layer, the pressure sensor, the inclination sensor and the speed encoder are all electrically connected, there are several groups of the scale components, and the several groups of the scale components are staggered and evenly distributed on the outer wall of the conveyor belt component, and the row spacing between the scale main boards is: 2 to 3 mm, the inner cavity of the scale main board is added with a microwave absorber, the scale main board is prepared by a polyurethane-based shape memory polymer, and the polymer is respectively added with carbon nanotubes, graphene and anti-UV agents, and the surface of the scale main board is coated with a nano coating.

[0009] As a preferred technical solution of the present invention: the conveyor belt assembly includes a scale conveying layer, an electrode array assembly is installed at the bottom of the scale conveying layer, an insulating layer is installed at the bottom of the electrode array assembly, a magnetorheological elastomer layer is installed at the bottom of the insulating layer, an electromagnetic coil array layer is installed at the bottom of the magnetorheological elastomer layer, a high-strength fiber base layer is installed at the bottom of the electromagnetic coil array layer, and a rotating shaft is fixedly installed at the top outer edge of the scale conveying layer.

[0010] As a preferred technical solution of the present invention: the diameter of the rotating shaft is adapted to the inner wall diameter of the circular groove, and the rotating shaft is sleeved on the inner wall of the circular groove, the thickness of the insulating layer is 1 mm, the thickness of the magnetorheological elastomer layer is 5 to 8 mm, the high-strength fiber base layer is prepared by vacuum infusion and curing after fiber fabric and embedded electromagnetic coil, the magnetorheological elastomer layer is prepared by hot vulcanization molding of silicone rubber matrix and carbonyl iron powder, and the scale transfer layer, electrode array assembly, insulating layer, magnetorheological elastomer layer, electromagnetic coil array layer and high-strength fiber base layer are all bonded with conductive adhesive.

[0011] As a preferred technical solution of the present invention: the electrode array assembly includes a protective interlayer, the top of the protective interlayer is inlaid with a pixelated electrode sheet, the bottom of the protective interlayer is installed with an electrode array layer, the bottom of the electrode array layer is installed with an insulating interlayer, the bottom of the insulating interlayer is installed with a grounding conductive layer, and the bottom of the grounding conductive layer is installed with a baseband layer.

[0012] As a preferred technical solution of the present invention: the gap between the pixelated electrode sheets is two millimeters, and the pixelated electrode sheets are electrically connected to the control panel, the electrode array layer is made of 0.2 mm copper foil, the insulating interlayer is made of polyimide, the grounding conductive layer is made of 0.5 mm aluminum foil, and the baseband layer is made of 3 mm PVC.

[0013] As a preferred technical solution of the present invention: the classification component includes a mounting plate, the inner wall of the mounting plate is fixedly embedded with a driving motor, the power output shaft of the driving motor is fixedly assembled with a driving rod, the top of the driving rod is fixedly sleeved with a rotating handle, the bottom of the rotating handle is fixedly installed with a push plate, and the top of the driving motor is embedded with an indicator light.

[0014] As a preferred technical solution of the present invention: the classification components include two groups, and the two groups of classification components are symmetrically distributed on the top of the mounting frame, the driving motor is electrically connected to the X-ray density scanner, the push plate is located above the scale component, and the indicator light is electrically connected to the X-ray density scanner.

[0015] The present invention has the following beneficial effects: 1. The finished product conveying device for particleboard production detects the weight of the board through a pressure sensor and transmits a signal through a control panel to start the heating wire layer to adjust the temperature of the scale main board, and changes the inclination angle of the scale main board through a temperature sensor, so that the device can convey particleboards of different weights at different inclination angles, which is energy-saving and environmentally friendly. At the same time, it can prevent the particleboard from slipping during transportation. At the same time, vibration will be generated during the rotation of the scale main board, which can shake off large particles on the surface and achieve the purpose of self-cleaning.

[0016] 2. The finished product conveying device for particle board production can start the pixelated electrode sheet by transmitting a signal through the control panel, and control the electric field generated by the pixelated electrode sheet through the high-frequency inverter, the step-up transformer and the voltage doubling rectifier circuit. When the particle board needs to be conveyed normally, the pixelated electrode sheet can generate a positive electric field, so that it can adsorb the particle board, and the transmission of the particle board can be more stable. Under normal conditions, the pixelated electrode sheet can generate a negative electric field, so that it is in dust removal mode and can repel dust through the negative electric field. At the same time, the pixelated electrode sheet can be placed in ±5kV by transmitting a signal through the control panel, so that it can perform pulse cleaning after the alternating electric field, thereby ensuring the stability of the particle board transportation while achieving deep cleaning and dust removal. It also solves the problem that the traditional finished product conveying device for particle board production generally adopts a mechanical clamping method to fix the particle board when conveying it, which makes the particle board prone to bending and deformation.

[0017] 3. The finished product conveying device for particleboard production is prepared by hot vulcanization molding of a magnetorheological elastomer layer silicone rubber matrix and carbonyl iron powder. It can be seen that the magnetorheological elastomer layer can provide deep support for the particleboard, thereby effectively dispersing the gravity of the scale assembly supporting the particleboard, thereby effectively improving the conveying efficiency of the particleboard. The magnetorheological elastomer layer can recover energy through deformation, and the electrostatic field can store energy in capacitors to save energy. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 This is a structural schematic diagram of the other side of the present invention; Figure 3 It is a schematic diagram of the cross-sectional structure of the present invention; Figure 4 This is a plane diagram of the particleboard production and conveying direction of the present invention; Figure 5 It is a schematic diagram of the local structure of the present invention; Figure 6 For the present invention Figure 5 A in the middle is an enlarged structural diagram; Figure 7 Schematic diagram of the electrode array assembly structure of the present invention; Figure 8 For the present invention Figure 7 The enlarged structural diagram at B in the middle; Figure 9 This is a schematic diagram of the rotating shaft structure of the present invention; Figure 10 This is a schematic diagram of the structure of the scale assembly of the present invention; Figure 11 This is a schematic diagram of the classification component structure of the present invention.

[0019] Figure: 1. Support plate 1; 2. Stepper motor; 3. Driving gear; 4. Rack drive belt; 5. Driven gear; 6. Scale assembly; 7. Drive roller; 8. Conveyor belt assembly; 9. Protective housing; 10. Mounting box; 11. Classification assembly; 12. Control panel; 13. Emergency brake button; 14. X-ray density scanner; 15. Support plate 2; 16. Mounting bracket; 17. Rotating shaft. 601, scale main board; 602, pressure sensor; 603, temperature sensor; 604, tilt sensor; 605, speed encoder; 606, insulation protection layer; 607, heating wire layer; 608, circular groove; 801, scale transfer layer; 802, electrode array assembly; 803, insulation layer; 804, magnetorheological elastomer layer; 805, electromagnetic coil array layer; 806, high-strength fiber base layer; 807, rotating shaft; 8021, protective interlayer; 8022, pixelated electrode sheet; 8023, electrode array layer; 8024, insulating interlayer; 8025, ground conductive layer; 8026, baseband layer; 1101. Mounting plate; 1102. Driving motor; 1103. Driving rod; 1104. Rotating handle; 1105. Push plate; 1106. Indicator light. DETAILED DESCRIPTION

[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 creative efforts are within the scope of protection of the present invention.

[0021] See also Figure 1 - Figure 11The gear train 2 is fixedly mounted on the gear 2 and the gear 2 is mounted on the gear 2. The gear train 2 is fixedly mounted on the gear 2 and the gear 2 is mounted on the gear 2.

[0022] In the above structure, the X-ray density scanner 14 can be started by transmitting a signal through the control panel 12, so that the X-ray density scanner 14 can scan the particle board placed on the top of the conveyor belt assembly 8, thereby detecting the surface density and core density of the particle board, so that the device can detect the particle board during the process of conveying the finished product of the particle board, and can classify the particle board into qualified and unqualified, and can facilitate the subsequent classification and transportation of the particle board.

[0023] In a preferred embodiment: the stepper motor 2 and the X-ray density scanner 14 are both electrically connected to the control panel 12, the number of support plates 1 and 2 15 are both two, and the two support plates 1 and 2 15 are symmetrically distributed on the outer wall of the mounting frame 16, and the drive roller 7 is located on the inner wall of the conveyor belt assembly 8.

[0024] In the above structure, by transmitting a signal through the control panel 12, the stepper motor 2 can be started, so that the stepper motor 2 can drive the driving gear 3 to rotate, and drive the driven gear 5 to rotate synchronously through the rack transmission belt 4, so that the driven gear 5 can drive the driving roller 7 to rotate, and then the conveyor belt assembly 8 can be transmitted, so that the particle board can be transported.

[0025] In a preferred embodiment: the scale assembly 6 includes a scale main board 601, the inner wall of the scale main board 601 is respectively inlaid with a pressure sensor 602, a temperature sensor 603, an inclination sensor 604 and a speed encoder 605, the inner wall of the scale main board 601 is fixedly inlaid with an insulating protective layer 606, and the inner wall of the insulating protective layer 606 is fixedly inlaid with a heating wire layer 607.

[0026] In the above structure, the scale main board 601 is perpendicular to the top of the conveyor belt assembly 8 at room temperature (25°C). When heated by the electric heating wire layer 607, when the temperature reaches Tg+10°C, the scale main board 601 automatically stands upright. When the particle board is located on the top of the scale main board 601, the scale main board 601 can be made to lie flat due to external force, which makes it easier to transport the particle board during transportation and effectively prevents it from slipping. At the same time, the inclination angle of the scale main board 601 is changed by the temperature sensor 603. When the particle board is placed on the top of the scale main board 601, the weight of the particle board can be detected by the pressure sensor 602, thereby providing auxiliary functions for the speed encoder 605 and the tilt sensor 604. After the transportation is completed and the temperature is maintained at room temperature, the scale main board 601 will automatically return to an upright state, so as to facilitate the next support of the particle board.

[0027] In a preferred embodiment: the temperature sensor 603 is electrically connected to the heating wire layer 607, the pressure sensor 602, the inclination sensor 604 and the speed encoder 605 are all electrically connected, there are several groups of scale components 6, and several groups of scale components 6 are staggered and evenly distributed on the outer wall of the conveyor belt component 8, and the row spacing between the scale main board 601 and the scale main board 601 is: 2~3mm, the inner cavity of the scale main board 601 is added with a microwave absorber, the scale main board 601 is prepared by a polyurethane-based shape memory polymer, and the polymer is respectively added with carbon nanotubes, graphene and anti-UV agents, and the surface of the scale main board 601 is coated with a nano coating.

[0028] In the above structure, microwave absorbent is added to the inner cavity of the scale main board 601, so that it can be locally heated by microwaves, thereby being able to accurately control the heating area, and enable the scale main board 601 to present different tilt angles through the tilt sensor 604. Because the scale main board 601 is added with carbon nanotubes, graphene and anti-UV agents, it can be seen that carbon nanotubes can improve the thermal conductivity of the scale main board 601, and graphene can enhance the mechanical properties. The use of anti-UV agents can effectively extend the service life of the scale main board 601. Because the surface of the scale main board 601 is coated with a nano-coating, the scale main board 601 can be made more wear-resistant.

[0029] In a preferred embodiment: the conveyor belt assembly 8 includes a flake transfer layer 801, an electrode array assembly 802 is installed at the bottom of the flake transfer layer 801, an insulating layer 803 is installed at the bottom of the electrode array assembly 802, a magnetorheological elastomer layer 804 is installed at the bottom of the insulating layer 803, an electromagnetic coil array layer 805 is installed at the bottom of the magnetorheological elastomer layer 804, a high-strength fiber base layer 806 is installed at the bottom of the electromagnetic coil array layer 805, and a rotating shaft 807 is fixedly installed on the top outer edge of the flake transfer layer 801.

[0030] In the above structure, through the setting of the rotating shaft 807 and the characteristics of the rotating shaft 807 being sleeved on the inner wall of the circular groove 608, it can be seen that the circular groove 608 can adjust its inclination angle on the outer wall of the rotating shaft 807, so that the device can transport different particle boards, and because the scale transfer layer 801, the electrode array assembly 802, the insulating layer 803, the magnetorheological elastomer layer 804, the electromagnetic coil array layer 805 and the high-strength fiber base layer 806 are all bonded with conductive adhesive, they can remain stable during the transportation of the particle board, and there are triple safety guarantees: the high-strength fiber base layer 806 can provide basic support; the electromagnetic coil array layer 805 can still have support due to residual magnetism after power failure, and the energy storage capacitor can maintain short-term adsorption.

[0031] In a preferred embodiment: the diameter of the rotating shaft 807 is compatible with the inner wall diameter of the circular groove 608, and the rotating shaft 807 is sleeved on the inner wall of the circular groove 608, the thickness of the insulating layer 803 is 1 mm, the thickness of the magnetorheological elastomer layer 804 is 5 to 8 mm, the high-strength fiber base layer 806 is prepared by vacuum infusion and curing of fiber fabric and embedded electromagnetic coil, the magnetorheological elastomer layer 804 is prepared by hot vulcanization molding of silicone rubber matrix and carbonyl iron powder, and the scale transfer layer 801, the electrode array assembly 802, the insulating layer 803, the magnetorheological elastomer layer 804, the electromagnetic coil array layer 805 and the high-strength fiber base layer 806 are all bonded with conductive adhesive.

[0032] In the above structure, through the characteristics of the magnetorheological elastomer layer 804 prepared by the silicone rubber matrix and the carbonyl iron powder after hot vulcanization molding, it can be seen that the magnetorheological elastomer layer 804 can play a deep supporting role on the particleboard, thereby effectively dispersing the gravity of the flake component 6 supporting the particleboard, thereby effectively improving the transportation efficiency of the particleboard, and the magnetorheological elastomer layer 804 can recover energy through deformation, and the electrostatic field can store energy in the capacitor to save energy.

[0033] In a preferred embodiment: the electrode array assembly 802 includes a protective interlayer 8021, the top of the protective interlayer 8021 is inlaid with a pixelated electrode sheet 8022, the bottom of the protective interlayer 8021 is installed with an electrode array layer 8023, the bottom of the electrode array layer 8023 is installed with an insulating interlayer 8024, the bottom of the insulating interlayer 8024 is installed with a grounding conductive layer 8025, and the bottom of the grounding conductive layer 8025 is installed with a baseband layer 8026.

[0034] In the above structure, the pixelated electrode sheet 8022 generates an electric field under the control of the control panel 12, which enables it to transport ultra-thin plates without loss, and can also transport particleboards made of anti-static sensitive materials. It not only solves the limitations of traditional mechanical clamping, but also integrates a cleaning function, saving cleaning time and improving transportation efficiency.

[0035] In a preferred embodiment: the gap between the pixelated electrode sheets 8022 and the pixelated electrode sheets 8022 is two millimeters, and the pixelated electrode sheets 8022 are electrically connected to the control panel 12, the electrode array layer 8023 is made of 0.2 mm copper foil, the insulating interlayer 8024 is made of polyimide, the grounding conductive layer 8025 is made of 0.5 mm aluminum foil, and the baseband layer 8026 is made of 3 mm PVC.

[0036] In the above structure, the pixelated electrode piece 8022 can be started by transmitting a signal through the control panel 12, and the electric field generated by the pixelated electrode piece 8022 can be controlled by the high-frequency inverter, the step-up transformer and the voltage doubling rectifier circuit. When the particle board needs to be transported normally, the pixelated electrode piece 8022 can generate a positive electric field, so that it can adsorb the particle board, and the transmission of the particle board can be more stable. Under normal conditions, the pixelated electrode piece 8022 can generate a negative electric field, so that it is in dust removal mode and can repel dust through the negative electric field. At the same time, the pixelated electrode piece 8022 can be placed in ±5kV by transmitting a signal through the control panel 12, so that it can perform pulse cleaning after an alternating electric field.

[0037] In a preferred embodiment: the classification component 11 includes a mounting plate 1101, the inner wall of the mounting plate 1101 is fixedly embedded with a drive motor 1102, the power output shaft of the drive motor 1102 is fixedly assembled with a drive rod 1103, the top of the drive rod 1103 is fixedly sleeved with a rotating handle 1104, the bottom of the rotating handle 1104 is fixedly installed with a push plate 1105, and the top of the drive motor 1102 is embedded with an indicator light 1106.

[0038] In a preferred embodiment: the classification component 11 includes two groups, and the two groups of classification components 11 are symmetrically distributed on the top of the mounting frame 16, the drive motor 1102 is electrically connected to the X-ray density scanner 14, the push plate 1105 is located above the scale component 6, and the indicator light 1106 is electrically connected to the X-ray density scanner 14.

[0039] In the above structure, the particle board is inspected by the X-ray density scanner 14. When the inspection is completed, the corresponding drive motor 1102 starts working, and the corresponding indicator light 1106 lights up. The driving rod 1103 can drive the rotating handle 1104 to rotate, and the push plate 1105 can be rotated toward the push plate 1105 at the other end, so that the particle board can be limited during the transportation process, and the particle board can only have a unique one-way transmission, so that the device can classify and transport the particle board as qualified or unqualified.

[0040] Working principle: Place the particleboard to be transported on the top of the scale main board 601, so that the pressure sensor 602 embedded in the inner cavity of the scale main board 601 detects the weight of the board and transmits a signal through the control panel 12, which can start the heating wire layer 607 and adjust the temperature of the scale main board 601 through the temperature sensor 603. When the scale main board 601 is at room temperature (25°C), it will be perpendicular to the top of the conveyor belt assembly 8. When it is heated by the heating wire layer 607, when the temperature reaches Tg+10°C, the scale main board 601 It will automatically stand up, and because the particle board is located on the top of the scale main board 601, the scale main board 601 can be made to lie flat due to external force, which can facilitate the transportation of the particle board during the transportation process and effectively prevent it from slipping. At the same time, the inclination angle of the scale main board 601 is changed by the temperature sensor 603, and when the particle board is placed on the top of the scale main board 601, the weight of the particle board can be detected by the pressure sensor 602, thereby providing auxiliary functions for the speed encoder 605 and the tilt sensor 604; When the weight is less than the standard value, it is known that the current particle board is thin, and the pressure sensor 602 can emit a signal, so that the tilt sensor 604 can drive the scale main board 601 to tilt slightly, and the magnetism generated by the magnetorheological elastomer layer 804 is mainly used to support and limit the particle board; When the weight is equal to the standard value, it is known that the current particle board is a standard board, so that the pressure sensor 602 transmits a signal, and the tilt sensor 604 drives the scale main board 601 to support the particle board in a balanced mode; When the weight is greater than the standard value, it can be known that the current particleboard is a thick plate. At this time, the pressure sensor 602 can transmit a signal to make the multiple scale main boards 601 stand up. At the same time, the magnetorheological properties of the magnetorheological elastomer layer 804 mainly support the particleboard, so that the device can transport the particleboard according to the weight of the particleboard. In this process, the control panel 12 transmits a signal to start the pixelated electrode sheet 8022, and the electric field generated by the pixelated electrode sheet 8022 is controlled by the high-frequency inverter, the step-up transformer and the voltage-doubling rectifier circuit. When the particleboard needs to be transported normally, the pixelated electrode sheet 8022 can generate a positive electric field, so that it can adsorb the particleboard, making the transportation of the particleboard more stable, thereby achieving the precise positioning of the particleboard and the auxiliary anti-slip effect. At this time, the control panel 12 can be made to transmit a signal, so that the stepping motor 2 can be started, so that the stepping motor 2 can drive the driving gear 3 to rotate, and drive the driven gear 5 to rotate synchronously through the rack transmission belt 4, so that the driven gear 5 can drive the driving roller 7 to rotate, and then the conveyor belt assembly 8 can be driven, so that the particleboard can be transported. When the particleboard is on the inner wall of the installation box 10, the X-ray density scanner 14 can be started to scan the particleboard, so that the surface density and core density of the particleboard can be detected, so that the device can detect the particleboard during the process of conveying the finished particleboard, and can classify the particleboard into qualified and unqualified. When the detection is completed, the corresponding driving motor 1102 starts working, and the corresponding indicator light 1106 lights up, and the driving rod 1103 can drive the rotating handle 1104 to rotate, and the pushing plate 1105 can be rotated in the direction of the pushing plate 1105 at the other end, so that the particle board can be limited during the transportation process, and the particle board can only be transported in one direction, so that the device can classify and transport qualified and unqualified particle boards; And when the transportation is completed, the entire device can maintain normal temperature, and the scale main board 601 will automatically restore the upright state to facilitate the next transportation of the particle board. At the same time, after the transportation is completed, the pixelated electrode piece 8022 can generate a negative electric field, so that it is in dust removal mode and can repel dust through the negative electric field. At the same time, the control panel 12 can transmit a signal to make the pixelated electrode piece 8022 at ±5kV, so that it can perform pulse cleaning after the alternating electric field, thereby achieving the purpose of dust removal.

[0041] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0042] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A finished product conveying device for particleboard production, comprising a first support plate (1) and a second support plate (15), characterized in that: The outer wall of the second support plate (15) is fixedly mounted with a stepper motor (2), the power output shaft of the stepper motor (2) is fixedly equipped with a driving gear (3), the outer wall of the driving gear (3) is meshed with one end of a rack transmission belt (4), and the inner wall of the other end of the rack transmission belt (4) is meshed with a driven gear (5), the center of the driven gear (5) is fixedly sleeved with a driving roller (7) through a rotating shaft (17), the outer wall of the driving roller (7) is provided with a conveyor belt assembly (8), and the top of the conveyor belt assembly (8) is provided with a scale assembly (6), protective shells (9) are installed on both sides of the outer walls of the conveyor belt assembly (8), a mounting box (10) is provided between the support plate 1 (1) and the support plate 2 (15), a control panel (12) and an emergency brake button (13) are fixedly installed on the top of the mounting box (10), mounting frames (16) are installed at both ends of the mounting box (10), a classification assembly (11) is provided on the top of the mounting frame (16), and an X-ray density scanner (14) is fixedly installed on the top of the inner wall of the mounting box (10).

2. The finished product conveying device for particleboard production according to claim 1, characterized in that: The stepper motor (2) and the X-ray density scanner (14) are both electrically connected to the control panel (12). The number of the support plate 1 (1) and the support plate 2 (15) is two, and the two support plates 1 (1) and the support plate 2 (15) are symmetrically distributed on the outer wall of the mounting frame (16). The driving roller (7) is located on the inner wall of the conveyor belt assembly (8).

3. The finished product conveying device for particleboard production according to claim 1, characterized in that: The scale assembly (6) comprises a scale main board (601), the inner wall of the scale main board (601) being inlaid with a pressure sensor (602), a temperature sensor (603), an inclination sensor (604) and a speed encoder (605), respectively; the inner wall of the scale main board (601) being fixedly inlaid with an insulating protective layer (606), and the inner wall of the insulating protective layer (606) being fixedly inlaid with a heating wire layer (607).

4. The finished product conveying device for particleboard production according to claim 3, characterized in that: The temperature sensor (603) is electrically connected to the heating wire layer (607), and the pressure sensor (602), the tilt sensor (604) and the speed encoder (605) are all electrically connected. The number of the scale components (6) is several groups, and the several groups of the scale components (6) are staggered and evenly distributed on the outer wall of the conveyor belt component (8), and the row spacing between the scale main boards (601) and the scale main boards (601) is: 2 to 3 mm. The inner cavity of the scale main board (601) is added with a microwave absorber. The scale main board (601) is prepared by a polyurethane-based shape memory polymer, and the polymer is added with carbon nanotubes, graphene and an anti-UV agent respectively. The surface of the scale main board (601) is coated with a nano coating.

5. The finished product conveying device for particleboard production according to claim 1, characterized in that: The conveyor belt assembly (8) includes a flake conveying layer (801), an electrode array assembly (802) is installed at the bottom of the flake conveying layer (801), an insulating layer (803) is installed at the bottom of the electrode array assembly (802), a magnetorheological elastomer layer (804) is installed at the bottom of the insulating layer (803), an electromagnetic coil array layer (805) is installed at the bottom of the magnetorheological elastomer layer (804), a high-strength fiber base layer (806) is installed at the bottom of the electromagnetic coil array layer (805), and a rotating shaft (807) is fixedly installed at the top outer edge of the flake conveying layer (801).

6. The finished product conveying device for particleboard production according to claim 5, characterized in that: The diameter of the rotating shaft (807) is adapted to the inner wall diameter of the circular groove (608), and the rotating shaft (807) is sleeved on the inner wall of the circular groove (608). The thickness of the insulating layer (803) is 1 mm, and the thickness of the magnetorheological elastomer layer (804) is 5 to 8 mm. The high-strength fiber base layer (806) is prepared by vacuum infusion curing after fiber fabric and embedded electromagnetic coil. The magnetorheological elastomer layer (804) is prepared by hot vulcanization molding of silicone rubber matrix and carbonyl iron powder. The scale transfer layer (801), electrode array assembly (802), insulating layer (803), magnetorheological elastomer layer (804), electromagnetic coil array layer (805) and high-strength fiber base layer (806) are all bonded with conductive adhesive.

7. The finished product conveying device for particleboard production according to claim 6, characterized in that: The electrode array assembly (802) comprises a protective interlayer (8021), the top of the protective interlayer (8021) is inlaid with a pixelated electrode sheet (8022), the bottom of the protective interlayer (8021) is installed with an electrode array layer (8023), the bottom of the electrode array layer (8023) is installed with an insulating interlayer (8024), the bottom of the insulating interlayer (8024) is installed with a grounding conductive layer (8025), and the bottom of the grounding conductive layer (8025) is installed with a baseband layer (8026).

8. The finished product conveying device for particleboard production according to claim 7, characterized in that: The gap between the pixelated electrode sheets (8022) and the pixelated electrode sheets (8022) is two millimeters, and the pixelated electrode sheets (8022) are electrically connected to the control panel (12). The electrode array layer (8023) is made of 0.2 mm copper foil, the insulating interlayer (8024) is made of polyimide, the grounding conductive layer (8025) is made of 0.5 mm aluminum foil, and the baseband layer (8026) is made of 3 mm PVC.

9. The finished product conveying device for particleboard production according to claim 1, characterized in that: The classification component (11) comprises a mounting plate (1101), a driving motor (1102) is fixedly embedded in the inner wall of the mounting plate (1101), a driving rod (1103) is fixedly assembled on the power output shaft of the driving motor (1102), a rotating handle (1104) is fixedly sleeved on the top of the driving rod (1103), a push plate (1105) is fixedly installed on the bottom of the rotating handle (1104), and an indicator light (1106) is embedded on the top of the driving motor (1102).

10. The finished product conveying device for particleboard production according to claim 9, characterized in that: The classification component (11) includes two groups, and the two groups of classification components (11) are symmetrically distributed on the top of the mounting frame (16), the driving motor (1102) is electrically connected to the X-ray density scanner (14), the push plate (1105) is located above the scale component (6), and the indicator light (1106) is electrically connected to the X-ray density scanner (14).