A novel electron accelerator irradiation processing device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-24
- Publication Date
- 2026-08-11
AI Technical Summary
[0005]本发明的目的在于至少解决现有技术中存在的技术问题之一,提供一种新型电子加速器辐照加工装置,能够解决辐照机构工作时,射线易从装置的输送通道、翻转组件间隙泄漏,对操作人员健康造成潜在威胁的问题
(1)、该新型电子加速器辐照加工装置,通过挡板、转动柱、齿轮、延伸板、第一液压杆、滑动板和齿板的配合使用,通过齿板与齿轮啮合,可实现挡板的快速开合,在辐照加工时关闭挡板阻挡射线泄漏,在工件上下料或设备维护时打开挡板,兼顾安全性与操作便捷性,适配批量加工场景下的高频次切换需求。
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Figure CN122552222A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electron accelerator processing technology, and in particular to a novel electron accelerator irradiation processing apparatus. Background Technology
[0002] Chinese patent document CN220411958U discloses an automatic flipping device for electron accelerator irradiation processing, comprising an irradiation mechanism, a rotary drum conveying mechanism, a transmission component, a flipping component, and a pushing component. The transmission component includes a hanger, a rail, and a first driving component. The two ends of the rail are located directly above the input-side conveyor platform and outside the output-side conveyor platform of the irradiation mechanism, respectively. The top of the hanger is slidably connected to the rail. The flipping component includes a flip plate and a third motor. The fixed end of the flip plate is hinged to the bottom of the hanger, and the first driving component drives the hanger to move along the rail. The pushing component includes a push plate and a second driving component. The second driving component drives the push plate to move the irradiated object onto the flip plate. The third motor drives the flip plate to flip the irradiated object onto the drum. The transmission component and the flipping component transport the irradiated object from the output side to the input side of the irradiation mechanism and flip it, shortening the irradiation time on both sides of the object and ensuring the quality of the irradiated product.
[0003] After investigation and analysis, the patent has the following drawbacks in actual use: The device lacks protective structures against radiation. When the irradiation mechanism is in operation, radiation can easily leak from the device's delivery channel and the gaps in the flipping components, posing a potential threat to the health of operators.
[0004] In summary, this application proposes a novel electron accelerator irradiation processing apparatus to solve the aforementioned problems. Summary of the Invention
[0005] The purpose of this invention is to at least solve one of the technical problems existing in the prior art, and to provide a novel electron accelerator irradiation processing device that can solve the problem that when the irradiation mechanism is working, the radiation can easily leak from the device's delivery channel and the gap between the flipping components, posing a potential threat to the health of the operators.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a novel electron accelerator irradiation processing apparatus, comprising: The box has an opening at the top, and an irradiation device is fixedly installed inside the opening. An opening and closing assembly is installed on the housing. The opening and closing assembly includes a baffle, a rotating column, a gear, and a toothed plate. Baffles are provided on both sides of the housing. A rotating column is fixedly installed on the adjacent side walls of the two sets of baffles. Two sets of gears are fixedly installed on the outer wall of the rotating column and are symmetrically distributed. The gears are meshed with the toothed plate. A rotating assembly is mounted on the housing. The rotating assembly includes two sets of clamping plates that are symmetrically distributed. An adjustment assembly is mounted on the housing. The adjustment assembly includes a column, a connecting sleeve, and a second hydraulic rod. The connecting sleeve is slidably mounted on the column, and the free end of the second hydraulic rod passes through the housing and is fixedly mounted to the bottom of the connecting sleeve.
[0007] Preferably, the box body has interconnected through holes on both sides, and a conveying device is fixedly installed inside the through holes. The conveying device passes through the through holes on both sides of the box body and can directly transport the workpiece to be processed from the outside of the box body to the internal rotating component. There is no need for manual handling of the workpiece, which reduces the labor input and avoids the positioning deviation caused by manual placement of the workpiece. After processing, the conveying device can automatically transport the workpiece to the external collection area, realizing a semi-automated process of loading, processing and unloading.
[0008] Preferably, the opening and closing assembly further includes an extension plate, a first hydraulic rod, and a sliding plate. The extension plate is fixedly installed on the rear side of the housing, the first hydraulic rod is fixedly installed on the top of the extension plate, and the sliding plate is fixedly installed on the free end of the first hydraulic rod. The top of the sliding plate is fixedly installed with the bottom of two sets of toothed plates. Through the engagement of the toothed plates, the baffle can be opened and closed quickly. During irradiation processing, the baffle is closed to block radiation leakage, and the baffle is opened when loading or unloading workpieces or during equipment maintenance. This balances safety and ease of operation, and is suitable for the high-frequency switching requirements in batch processing scenarios.
[0009] Preferably, the opposite sidewalls of the two sets of baffles are fitted to the outer walls of both sides of the box, which can fill the gap between them when the baffles are closed, reducing the risk of radiation leakage from both sides of the box when the irradiation equipment is working, meeting the safety protection standards for irradiation processing equipment, protecting the health of operators, and the fitted design ensures that the baffles always remain in contact with the outer walls of the box during rotation, avoiding tilting or deformation of the baffles due to unilateral force.
[0010] Preferably, the rear side of the housing has two sets of sliding grooves that are symmetrically distributed. Sliding blocks are slidably installed inside the sliding grooves. The rear side of the sliding blocks is fixedly installed with the front side of the sliding plate to prevent the sliding plate from shifting or tilting during movement. This ensures that the toothed plate and the gear always maintain precise meshing, prevents gear jamming and damage caused by meshing misalignment, and improves the operational reliability of the opening and closing components.
[0011] Preferably, a translation plate is provided below the through hole. A bidirectional threaded rod is rotatably installed on the front and rear inner walls of the translation plate. A guide rod is fixedly installed on the front and rear inner walls of the translation plate. A first motor is fixedly installed on the front side of the translation plate. One end of the bidirectional threaded rod passes through the translation plate and is fixedly installed with the output shaft of the first motor. Two sets of moving plates are provided on the bidirectional threaded rod and the guide rod and are symmetrically distributed front and rear. The moving plates are threadedly installed with the bidirectional threaded rod and slidably installed with the guide rod. A connecting rod is fixedly installed on the front side of the moving plate, and a fixing plate is fixedly installed on the other end of the connecting rod. The spacing between the two sets of clamping plates can be precisely controlled to adapt to workpieces of different sizes, solving the problem that traditional fixed clamping structures can only adapt to workpieces of a single size, reducing the frequency of clamping component replacement, and reducing the cost of use.
[0012] Preferably, the rotating assembly further includes a second motor. Clamping plates are rotatably mounted on the opposite sidewalls of the two sets of fixed plates. The second motor is fixedly mounted on the front side of one set of fixed plates. A connecting column is fixedly mounted on the output shaft of the second motor. One end of the connecting column passes through the front side of the set of fixed plates and the set of clamping plates, driving the workpiece to rotate horizontally. This allows for irradiation processing of different areas of the workpiece, such as the top, side, and bottom surfaces. This solves the problems of low efficiency and poor accuracy caused by traditional devices that can only irradiate a single side of the workpiece and require manual rotation of the workpiece. It is especially suitable for the all-round irradiation needs of irregularly shaped workpieces. At the same time, the two sets of clamping plates clamp the workpiece synchronously. The clamping force remains stable during the rotation process. In conjunction with the anti-slip texture on the inner wall of the clamping plates, the workpiece can be prevented from slipping, ensuring processing safety.
[0013] Preferably, the columns are fixedly installed on the inner bottom of the housing. There are four sets of columns arranged in a rectangular array. The bottom of the translation plate and the top of the connecting sleeve plate are fixedly installed. The second hydraulic rod is fixedly installed on the housing. The four sets of columns arranged in a rectangular array can provide uniform support from the four corners of the bottom of the translation plate, preventing the translation plate from tilting or swaying during the lifting process. This ensures that the clamped workpiece always remains horizontal, prevents the workpiece from deviating from the irradiation position due to tilting, and improves processing accuracy. The height of the connecting sleeve plate and the translation plate can be adjusted by controlling the extension and retraction of the hydraulic rod, thereby adapting to the irradiation requirements of different heights.
[0014] Preferably, a rectangular slot is provided on the front side of the box, and a transparent window is embedded in the inside of the rectangular slot. The operator can directly observe the positioning, clamping, flipping and irradiation of the workpiece inside the box through the transparent window, and can determine whether the workpiece is in the best processing state without opening the box.
[0015] Preferably, the opposite sidewalls of both sets of clamping plates are fixedly equipped with anti-slip textures. The interlocking action of the anti-slip textures prevents the workpiece from sliding during clamping, flipping, or lifting, ensuring that the workpiece is always in the preset processing position and improving irradiation accuracy.
[0016] Compared with the prior art, the beneficial effects of the present invention are: (1) The new electron accelerator irradiation processing device uses a combination of baffle, rotating column, gear, extension plate, first hydraulic rod, sliding plate and toothed plate. The baffle can be opened and closed quickly by meshing the toothed plate with the gear. The baffle is closed to block radiation leakage during irradiation processing and opened when loading or unloading workpieces or during equipment maintenance. It takes into account both safety and ease of operation and is suitable for high-frequency switching requirements in batch processing scenarios.
[0017] (2) This novel electron accelerator irradiation processing device, through the coordinated use of a translation plate, a bidirectional threaded rod, a guide rod, a first motor, a moving plate, a connecting rod, a fixed plate, a clamping plate, and a second motor, can precisely control the distance between the two sets of clamping plates, adapt to workpieces of different sizes, solve the problem that the traditional fixed clamping structure can only adapt to workpieces of a single size, reduce the frequency of clamping component replacement, reduce the cost of use, drive the workpiece to rotate horizontally, and can perform irradiation processing on different areas such as the top, side, and bottom surfaces of the workpiece, solve the problems of low efficiency and poor accuracy caused by the traditional device being able to irradiate only one side of the workpiece and requiring manual rotation of the workpiece, especially adapting to the all-round irradiation requirements of irregularly shaped workpieces. At the same time, the two sets of clamping plates clamp the workpiece synchronously, and the clamping force remains stable during the rotation process. With the anti-slip texture on the inner wall of the clamping plate, the workpiece can be prevented from slipping, ensuring processing safety.
[0018] (3) The new electron accelerator irradiation processing device uses the columns, connecting sleeves and second hydraulic rods in combination. The four columns are arranged in a rectangular array, which can provide uniform support from the four corners of the bottom of the translation plate, avoid the translation plate from tilting or shaking during the lifting process, ensure that the clamped workpiece always remains horizontal, prevent the workpiece from deviating from the irradiation position due to tilting, and improve the processing accuracy. The height of the connecting sleeve and the translation plate can be adjusted by controlling the extension and retraction of the hydraulic rod, so as to adapt to the irradiation requirements of different heights. Attached Figure Description
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments: Figure 1 The three-dimensional representation of the present invention Figure 1 ; Figure 2 A three-dimensional cross-section of the present invention Figure 1 ; Figure 3 A three-dimensional cross-section of the present invention Figure 2 ; Figure 4 The three-dimensional representation of the present invention Figure 2 ; Figure 5 This is a perspective view of the opening and closing component of the present invention; Figure 6 A perspective view of the opening and closing component of the present invention; Figure 7 This is a partial perspective view of the present invention.
[0020] Reference numerals: 1. Box body; 2. Through hole; 3. Conveying equipment; 4. Irradiation equipment; 5. Opening and closing assembly; 501. Baffle; 502. Rotating column; 503. Gear; 504. Extension plate; 505. First hydraulic rod; 506. Sliding plate; 507. Toothed plate; 6. Slide groove; 7. Sliding block; 8. Translation plate; 9. Bidirectional threaded rod; 10. Guide rod; 11. First motor; 12. Moving plate; 13. Connecting rod; 14. Fixing plate; 15. Rotating assembly; 1501. Clamping plate; 1502. Second motor; 16. Adjusting assembly; 1601. Column; 1602. Connecting sleeve plate; 1603. Second hydraulic rod; 17. Transparent window. Detailed Implementation
[0021] This section will describe in detail specific embodiments of the present invention. Preferred embodiments of the present invention are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and overall technical solution of the present invention, but they should not be construed as limiting the scope of protection of the present invention.
[0022] Please see Figure 1-7 This invention provides a technical solution: a novel electron accelerator irradiation processing device, comprising a housing 1, an opening and closing assembly 5, a rotating assembly 15, and an adjusting assembly 16. The top of the housing 1 has an opening, within which an irradiation device 4 is fixedly installed. The opening and closing assembly 5 is disposed on the housing 1 and includes a baffle 501, a rotating column 502, a gear 503, and a toothed plate 507. Baffles 501 are provided on both sides of the housing 1, and rotating columns 502 are fixedly installed on the adjacent side walls of the two sets of baffles 501. Two gears 503 are fixedly installed on the outer walls of the rotating columns 502. The gears 503 are symmetrically distributed and mesh with the gear plate 507. The rotating assembly 15 is disposed on the housing 1 and includes two sets of clamping plates 1501 that are symmetrically distributed. The adjusting assembly 16 is disposed on the housing 1 and includes a column 1601, a connecting sleeve 1602, and a second hydraulic rod 1603. The connecting sleeve 1602 is slidably mounted on the column 1601, and the free end of the second hydraulic rod 1603 passes through the housing 1 and is fixedly installed at the bottom of the connecting sleeve 1602.
[0023] Furthermore, the two sides of the housing 1 are provided with interconnected through holes 2. A conveying device 3 is fixedly installed inside the through holes 2. The conveying device 3 passes through the through holes 2 on both sides of the housing 1 and can directly transport the workpiece to be processed from the outside of the housing to the internal rotating component 15. There is no need for manual handling of the workpiece, which reduces the input of manpower and avoids the positioning deviation caused by manual placement of the workpiece. After processing, the conveying device 3 can automatically transport the workpiece to the external collection area, realizing a semi-automated process of loading, processing and unloading.
[0024] Furthermore, the opening and closing assembly 5 also includes an extension plate 504, a first hydraulic rod 505, and a sliding plate 506. The extension plate 504 is fixedly installed on the rear side of the housing 1. The first hydraulic rod 505 is fixedly installed on the top of the extension plate 504. The sliding plate 506 is fixedly installed on the free end of the first hydraulic rod 505. The top of the sliding plate 506 is fixedly installed to the bottom of two sets of toothed plates 507. When the first hydraulic rod 505 is activated, its free end retracts, causing the sliding plate 506 to move horizontally. The two sets of toothed plates 507 fixed on the top of the sliding plate 506 move synchronously. Since the toothed plates 507 mesh with the gears 503, the movement of the toothed plates 507 is converted into the rotation of the gears 503, which in turn drives the two sets of baffles 501 to rotate around the rotating column 502, ultimately causing the baffles 501 to rotate upwards. Through the meshing of the toothed plates 507 and the gears 503, the baffles 501 can be opened and closed quickly. During irradiation processing, the baffles 501 are closed to block radiation leakage, and opened when loading and unloading workpieces or during equipment maintenance. The baffle 501 balances safety and ease of operation, adapting to the high-frequency switching requirements in batch processing scenarios. The opposite sidewalls of the two sets of baffles 501 are in close contact with the outer walls of both sides of the housing 1, which can fill the gap between them when the baffles 501 are closed, reducing the risk of radiation leakage from both sides of the housing 1 during the operation of the irradiation equipment 4. This meets the safety protection standards for irradiation processing equipment and protects the health of operators. The close-fitting design ensures that the baffles 501 always maintain contact with the outer walls of the housing 1 during rotation, preventing the baffles 501 from tilting or deforming due to unilateral force. Two sets of sliding grooves 6 are symmetrically distributed on the rear side of the housing 1. Sliding blocks 7 are slidably installed inside the sliding grooves 6. The rear side of the sliding blocks 7 is fixedly installed with the front side of the sliding plate 506, preventing the sliding plate 506 from shifting or tilting during movement. This ensures that the toothed plate 507 and the gear 503 always maintain precise meshing, preventing gear jamming and damage caused by meshing misalignment, and improving the operational reliability of the opening and closing assembly 5.
[0025] Furthermore, a translation plate 8 is provided below the through hole 2. A bidirectional threaded rod 9 is rotatably mounted on the front and rear inner walls of the translation plate 8. A guide rod 10 is fixedly mounted on the front and rear inner walls of the translation plate 8. A first motor 11 is fixedly mounted on the front side of the translation plate 8. One end of the bidirectional threaded rod 9 passes through the translation plate 8 and is fixedly mounted to the output shaft of the first motor 11. Two sets of movable plates 12 are provided on the bidirectional threaded rod 9 and the guide rod 10, symmetrically distributed front and rear. The movable plates 12 are threadedly mounted to the bidirectional threaded rod 9, and slidably mounted to the guide rod 10. The front of the movable plate 12... A connecting rod 13 is fixedly installed on one side, and a fixing plate 14 is fixedly installed on the other end of the connecting rod 13. When the first motor 11 is started, its output shaft drives the bidirectional threaded rod 9 to rotate in the opposite direction. The two sets of moving plates 12 on the bidirectional threaded rod 9 move away from each other along the guide rod 10. The moving plates 12 drive the fixing plate 14 and the rotating assembly 15 to unfold synchronously through the connecting rod 13. The distance between the two sets of clamping plates 1501 can be precisely controlled to adapt to workpieces of different sizes. This solves the problem that traditional fixed clamping structures can only adapt to workpieces of a single size, reduces the frequency of clamping component replacement, and lowers the cost of use. The rotating assembly 15 also includes a second motor 1502. Clamping plates 1501 are rotatably mounted on the opposite sidewalls of both sets of fixed plates 14. The second motor 1502 is fixedly mounted on the front side of one set of fixed plates 14. A connecting column is fixedly mounted on the output shaft of the second motor 1502. One end of the connecting column passes through one set of fixed plates 14 and is fixedly mounted on the front side of one set of clamping plates 1501. When the second motor 1502 is started, its output shaft drives the clamping plates 1501 to rotate via the connecting column. Since both sets of clamping plates 1501 are rotatably connected to the fixed plates 14 and synchronously clamp the workpiece... The rotation of one set of clamping plates 1501 will drive the workpiece and another set of clamping plates 1501 to rotate synchronously, causing the workpiece to flip horizontally. This allows for irradiation processing of different areas of the workpiece, such as the top, side, and bottom surfaces. This solves the problems of low efficiency and poor accuracy caused by traditional devices that can only irradiate a single side of the workpiece and require manual flipping. It is especially suitable for the all-round irradiation needs of irregularly shaped workpieces. At the same time, the two sets of clamping plates 1501 clamp the workpiece synchronously, and the clamping force remains stable during the flipping process. In addition, the anti-slip texture on the inner wall of the clamping plates 1501 can prevent the workpiece from slipping and ensure processing safety.
[0026] Furthermore, the uprights 1601 are fixedly installed on the inner bottom of the housing 1. There are four sets of uprights 1601 arranged in a rectangular array. The bottom of the translation plate 8 is fixedly installed on the top of the connecting sleeve plate 1602. The second hydraulic rod 1603 is fixedly installed on the housing 1. The four sets of uprights 1601 arranged in a rectangular array can provide uniform support from the four corners of the bottom of the translation plate 8, preventing the translation plate 8 from tilting or shaking during the lifting process, ensuring that the clamped workpiece always remains horizontal, preventing the workpiece from deviating from the irradiation position due to tilting, and improving the processing accuracy. The height of the connecting sleeve plate 1602 and the translation plate 8 can be adjusted by controlling the extension and retraction of the hydraulic rod, thereby adapting to the irradiation requirements of different heights.
[0027] Secondly, a rectangular slot is provided on the front side of the box 1, and a transparent window 17 is installed inside the rectangular slot. The operator can directly observe the positioning, clamping, flipping and irradiation of the workpiece inside the box 1 through the transparent window 17, and can determine whether the workpiece is in the best processing state without opening the box 1.
[0028] Secondly, anti-slip textures are fixedly installed on the opposite sidewalls of the two sets of clamping plates 1501. The interlocking action of the anti-slip textures prevents the workpiece from sliding during clamping, flipping or lifting, ensuring that the workpiece is always in the preset processing position and improving the irradiation accuracy.
[0029] Working principle: Activating the first hydraulic rod 505 causes its free end to retract, moving the sliding plate 506 horizontally. The two sets of toothed plates 507 fixed at the top of the sliding plate 506 move synchronously. Since the toothed plates 507 mesh with the gears 503, the movement of the toothed plates 507 is converted into the rotation of the gears 503, which in turn drives the two sets of baffles 501 to rotate around the rotating column 502, ultimately causing the baffles 501 to rotate upwards. Simultaneously, the sliding block 7 on the front side of the sliding plate 506 slides synchronously along the sliding groove 6 on the rear side of the housing 1, ensuring stable meshing between the toothed plates 507 and the gears 503 and preventing jamming. Controlling the retraction of the second hydraulic rod 1603 causes its free end to pull the connecting sleeve 1602 downwards along the column 1601. The translation plate 8 fixed at the top of the connecting sleeve 1602 descends synchronously to its initial height. Start the first motor 11, causing its output shaft to drive the bidirectional threaded rod 9 to rotate in the opposite direction. The two sets of moving plates 12 on the bidirectional threaded rod 9 move away from each other along the guide rod 10. The moving plates 12 drive the fixed plate 14 and the rotating assembly 15 to unfold synchronously through the connecting rod 13, reserving enough space for subsequent workpiece placement. The second motor 1502 is in the stopped state, and the clamping plate 1501 maintains the initial horizontal angle. Open the conveying device 3 and place the workpiece on the conveying device 3. The conveying device 3 passes through the through holes 2 on both sides of the box 1, transporting the workpiece between the rotating assemblies 15 inside the box 1. The operator can observe the position of the workpiece through the transparent window 17 embedded in the rectangular slot on the front side of the box 1. When the workpiece reaches the middle of the two sets of clamping plates 1501, pause. Conveying device 3 completes the initial positioning of the workpiece and restarts the first motor 11. Its output shaft drives the bidirectional threaded rod 9 to rotate in the forward direction. The rotation of the bidirectional threaded rod 9 is converted into the relative sliding of two sets of moving plates 12 along the guide rod 10. The moving plates 12 drive the fixed plate 14 and the clamping plate 1501 to move closer to the workpiece synchronously through the connecting rod 13 until the anti-slip texture on the inner wall of the clamping plate 1501 is tightly attached to the outer wall of the workpiece. At this time, the first motor 11 is turned off. The friction of the anti-slip texture prevents the workpiece from sliding during subsequent flipping or movement, achieving precise clamping and fixing of the workpiece. According to the irradiation range of the irradiation device 4, the second hydraulic rod 1603 is activated. Its free end extends to push the connecting sleeve 1602 to slide upward along the column 1601. The top of the connecting sleeve 1602 moves horizontally. Plate 8 synchronously drives the bidirectional threaded rod 9, guide rod 10, rotating assembly 15, and the clamped workpiece to rise and fall until the workpiece reaches the optimal irradiation height of the irradiation equipment 4. The second hydraulic rod 1603 is then closed. The sliding fit between the connecting sleeve 1602 and the column 1601 allows for stepless height adjustment, adapting to the irradiation requirements of workpieces of different thicknesses. If the workpiece requires multi-angle irradiation, the second motor 1502 is started. Its output shaft drives a set of clamping plates 1501 to rotate via the connecting column. Since both sets of clamping plates 1501 are rotatably connected to the fixed plate 14 and synchronously clamp the workpiece, the rotation of one set of clamping plates 1501 will drive the workpiece and the other set of clamping plates 1501 to rotate synchronously, achieving horizontal flipping of the workpiece. After adjustment, the first hydraulic rod 505 is restarted.Its free end extends to push the sliding plate 506 and the toothed plate 507 to move in opposite directions. Through the meshing transmission of the gear 503 and the toothed plate 507, it drives the two sets of baffles 501 to rotate and close the through hole 2, so that the irradiation area of the irradiation equipment 4 completely covers the workpiece. The irradiation equipment 4 is started to begin irradiation processing on the workpiece. During the processing, the status of the workpiece can be observed in real time through the transparent window 17. If the angle or height needs to be adjusted, the above adjustment steps can be repeated. After the irradiation processing is completed, the irradiation equipment 4 is turned off, and the first hydraulic rod 505 is controlled to retract to drive the baffle 501 to open the through hole 2. The second motor 1502 is started to return the workpiece to its original position. Once the workpiece is positioned at a horizontal angle, the first motor 11 is started, causing its output shaft to drive the bidirectional threaded rod 9 to rotate in the opposite direction. The two sets of moving plates 12 move away from each other, the clamping plate 1501 releases the workpiece, and the clamping fixation is released. The conveyor 3 is then started, transferring the processed workpiece from inside the housing 1 to the external collection area. The second hydraulic rod 1603 is controlled to retract, causing the translation plate 8 and related components to descend to their initial height. The first motor 11 drives the moving plate 12 to reset to the unfolded state, the second motor 1502 stops, the clamping plate 1501 returns to its initial horizontal angle, and the entire device resets, ready for the next batch of workpieces to be processed.
[0030] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A novel electron accelerator irradiation processing apparatus, characterized in that, include: The box (1) has an opening at the top, and an irradiation device (4) is fixedly installed inside the opening. The opening and closing assembly (5) is set on the housing (1). The opening and closing assembly (5) includes a baffle (501), a rotating column (502), a gear (503) and a toothed plate (507). Both sides of the housing (1) are provided with baffles (501). The adjacent side walls of the two sets of baffles (501) are fixedly installed with rotating columns (502). The outer walls of the rotating columns (502) are fixedly installed with two sets of gears (503) and are symmetrically distributed. The gears (503) are meshed with the toothed plate (507). A rotating assembly (15) is disposed on the housing (1). The rotating assembly (15) includes a clamping plate (1501), which has two sets and is symmetrically distributed. Adjustment component (16) is set on housing (1). Adjustment component (16) includes column (1601), connecting sleeve (1602) and second hydraulic rod (1603). Connecting sleeve (1602) is slidably mounted on column (1601). The free end of second hydraulic rod (1603) passes through housing (1) and is fixedly installed at the bottom of connecting sleeve (1602).
2. The novel electron accelerator irradiation processing apparatus according to claim 1, characterized in that: The box (1) has through holes (2) on both sides, and a conveying device (3) is fixedly installed inside the through holes (2).
3. The novel electron accelerator irradiation processing apparatus according to claim 2, characterized in that: The opening and closing assembly (5) also includes an extension plate (504), a first hydraulic rod (505), and a sliding plate (506). The extension plate (504) is fixedly installed on the rear side of the housing (1). The first hydraulic rod (505) is fixedly installed on the top of the extension plate (504). The sliding plate (506) is fixedly installed on the free end of the first hydraulic rod (505). The top of the sliding plate (506) is fixedly installed on the bottom of the two sets of toothed plates (507).
4. The novel electron accelerator irradiation processing apparatus according to claim 3, characterized in that: The opposite sidewalls of the two sets of baffles (501) are in contact with the outer sidewalls of the box (1) on both sides.
5. A novel electron accelerator irradiation processing apparatus according to claim 4, characterized in that: The rear side of the box (1) is provided with two sets of sliding grooves (6) and they are symmetrically distributed. Sliding blocks (7) are slidably installed inside the sliding grooves (6). The rear side of the sliding blocks (7) is fixedly installed with the front side of the sliding plate (506).
6. A novel electron accelerator irradiation processing apparatus according to claim 5, characterized in that: A translation plate (8) is provided below the through hole (2). A bidirectional threaded rod (9) is rotatably installed on the inner walls of the front and rear sides of the translation plate (8). A guide rod (10) is fixedly installed on the inner walls of the front and rear sides of the translation plate (8). A first motor (11) is fixedly installed on the front side of the translation plate (8). One end of the bidirectional threaded rod (9) passes through the translation plate (8) and is fixedly installed with the output shaft of the first motor (11). Two sets of moving plates (12) are provided on the bidirectional threaded rod (9) and the guide rod (10) and are symmetrically distributed in front and back. The moving plate (12) is threadedly installed with the bidirectional threaded rod (9). The moving plate (12) is slidably installed with the guide rod (10). A connecting rod (13) is fixedly installed on the front side of the moving plate (12). A fixing plate (14) is fixedly installed on the other end of the connecting rod (13).
7. A novel electron accelerator irradiation processing apparatus according to claim 6, characterized in that: The rotating assembly (15) also includes a second motor (1502). Clamping plates (1501) are rotatably mounted on the opposite sidewalls of the two sets of fixing plates (14). The second motor (1502) is fixedly mounted on the front side of one set of fixing plates (14). A connecting column is fixedly mounted on the output shaft of the second motor (1502). One end of the connecting column passes through one set of fixing plates (14) and is fixedly mounted on the front side of one set of clamping plates (1501).
8. A novel electron accelerator irradiation processing apparatus according to claim 7, characterized in that: The column (1601) is fixedly installed on the inner bottom of the box (1). There are four sets of columns (1601) arranged in a rectangular array. The bottom of the translation plate (8) is fixedly installed on the top of the connecting sleeve plate (1602). The second hydraulic rod (1603) is fixedly installed on the box (1).
9. A novel electron accelerator irradiation processing apparatus according to claim 8, characterized in that: A rectangular groove is provided on the front side of the box (1), and a transparent window (17) is inlaid inside the rectangular groove.
10. A novel electron accelerator irradiation processing apparatus according to claim 9, characterized in that: The opposing sidewalls of the two sets of clamping plates (1501) are fixedly fitted with anti-slip textures.
Citation Information
Patent Citations
Automatic turnover device for irradiation processing of electron accelerator
CN220411958U