Reciprocating type continuous feeding grinding machining device
By designing a grinding processing device for reciprocating continuous feed, the problem of low machining efficiency of standardized inserts is solved, efficient production of spliced insulation cylinders is achieved, the processing quality and production efficiency of inserts is improved, and the rapid assembly and mass production needs of diverse thermal field structural parts are met.
Patent Information
- Application Number
- CN202422499841.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-16
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-16
AI Technical Summary
In the prior art, the batch processing efficiency of standardized inserts with split-flap structures is low, which has become a bottleneck in the production of spliced insulation cylinders, and it is difficult to meet the demand for rapid and efficient production.
A grinding processing device for reciprocating continuous feeding is designed, including a work bench plate, a conveying bench plate, a reciprocating drive mechanism, a compression limit assembly and a grinding assembly, to realize the continuous conveying of the material sheet and the side grinding operation, and improve the processing efficiency and quality.
The processing efficiency and quality of standard inserts are improved, the efficient preparation of spliced insulation cylinders is met, and the production of standardized inserts is realized in large-scale production, which is suitable for the rapid assembly and mass production needs of various thermal field structural parts.
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Figure CN223236007U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of carbon material processing, in particular to a reciprocating continuous feeding grinding processing device. Background Art
[0002] As the size of the insulation tubes of photovoltaic thermal field structural components becomes larger and larger, the traditional integral insulation tube structure is becoming more and more difficult to form, so that the quality and cost cannot be guaranteed, and the production cycle cannot meet customer needs. For this reason, spliced insulation tubes have emerged in large numbers. By changing the diameter of the upper and lower ring hoops and the combination of standardized inserts, insulation tubes of different sizes and heights can be assembled, effectively solving the above problems.
[0003] Chinese patent CN219637398U discloses a "carbon / carbon spliced insulation cylinder for a single-crystal silicon vertical pulling furnace," which comprises an upper hoop, a lower hoop, and multiple arc petals made of a carbon / carbon composite material; the multiple arc petals are spliced end to end to form a cylinder with upper and lower openings; the upper hoop and the lower hoop are respectively mounted on the upper and lower parts of the cylinder. This carbon / carbon spliced insulation cylinder for a single-crystal silicon vertical pulling furnace significantly reduces the size of the billet through its split-petal structure, thereby fully utilizing the processing of downgraded products, reducing material waste, and saving production costs. While this technical solution can solve the above-mentioned technical difficulties, the batch processing of standardized inserts with a split-petal structure has become an industry bottleneck, and how to quickly increase the production capacity of inserts has become an urgent need for companies. Utility Model Content
[0004] Technical problems solved: In response to the technical problems existing in the background technology, the utility model provides a reciprocating continuous feeding grinding processing device, which can improve the processing efficiency and processing quality of standard inserts, thereby meeting the efficient preparation of spliced insulation cylinders.
[0005] Technical solution: The utility model is a reciprocating continuous feeding grinding device, which includes:
[0006] A work table and a conveying table fixedly connected to the work table, wherein the conveying table is fixedly connected to the work table via a plurality of supporting ribs provided on the bottom surface thereof, and a propulsion chute is provided on the conveying table along its conveying direction;
[0007] The work table is provided with a reciprocating drive mechanism, which is arranged correspondingly below the conveying table, and the reciprocating drive mechanism is provided with a plurality of propulsion blocks which are clamped in the propulsion chute;
[0008] A material box located on a push chute is correspondingly provided at the starting end of the conveying table. A slot for feeding the sheet is provided at the connection between the material box and the conveying table. The push block reciprocates along the push chute along with the reciprocating drive mechanism, and pushes the sheet in the material box from the slot to the conveying table one by one.
[0009] Two groups of pressing and limiting components and grinding components are respectively arranged along both sides of the conveying table. The pressing and limiting components can press the sheet onto the conveying table accordingly, and the grinding components can perform grinding operations on the side edges of the sheet.
[0010] Preferably, the reciprocating drive mechanism comprises a horizontal moving plate, a relay plate and a lifting plate which are arranged in parallel from bottom to top along the conveying direction of the worktable plate;
[0011] A horizontal driving mechanism is correspondingly provided on the bottom surface of the horizontal moving plate, and the horizontal driving mechanism drives the horizontal moving plate and the structure above it to move horizontally along the workbench;
[0012] The horizontal moving plate and the relay plate are fixedly connected via supporting ribs, and at least one lifting drive cylinder is provided on the relay plate, the piston rod of the lifting drive cylinder is fixedly connected to the bottom surface of the lifting plate, and the propulsion block is correspondingly connected to the top surface of the lifting plate.
[0013] Preferably, the horizontal driving mechanism is correspondingly arranged at one end of the horizontal moving plate, and the horizontal moving plate is further provided with a guide sliding component at one end different from the horizontal driving mechanism.
[0014] Preferably, the horizontal drive mechanism includes two supporting shaft seats relatively arranged on the work table and a driving screw rotatably connected between the supporting shaft seats, a transmission screw sleeve is rotatably connected to the driving screw, and the transmission screw sleeve is fixedly connected to the horizontal movable plate, and a reciprocating drive motor is provided at the outer end of the driving screw;
[0015] The guide slide assembly includes a guide rail arranged along the conveying direction of the worktable plate, and a guide slide support block is slidably connected to the guide rail, and the guide slide support block is fixedly connected to the horizontal moving plate.
[0016] Preferably, a plurality of lifting guide sliding components are correspondingly arranged between the relay plate and the lifting plate along the conveying direction, and the lifting guide sliding components include guide sliding rods correspondingly arranged at the bottom of the lifting plate and guide sliding sleeves correspondingly arranged on the relay plate, and the guide sliding rods are correspondingly inserted into the guide sliding sleeves.
[0017] Preferably, the clamping and limiting assembly includes a first side bracket correspondingly arranged on one side of the reciprocating drive mechanism, a first mounting end plate is arranged on the top of the first side bracket above the conveying table, a clamping cylinder is connected to the bottom surface of the first mounting end plate, and a driving end of the clamping cylinder is connected to the driving plate and a clamping rail fixedly connected to the bottom surface of the driving plate;
[0018] The pressing rail is arranged along the conveying table, and the bottom surface of the pressing rail is provided with a mounting groove and a plurality of pressing rollers rotatably connected in the mounting groove; the pressing cylinder drives the pressing rail and the pressing rollers arranged on the bottom surface thereof to perform lifting actions.
[0019] Preferably, the grinding assembly includes a second side bracket corresponding to one side of the reciprocating drive mechanism, the top end of the second side bracket is located at a mounting rib on one side of the conveying table, a second mounting end plate is provided on the front side of the mounting rib, a grinding motor and a grinding head rotatably connected to the lower end of the grinding motor are provided on the second mounting end plate, and the position of the grinding head can be raised and lowered and adjusted.
[0020] Preferably, the conveying platform is provided with limiting guide rails on both sides of the pushing chute, and the working position width between the two limiting guide rails can be adjusted.
[0021] Preferably, the workbench is fixedly mounted on a frame, and leveling pads or walking rollers are respectively provided at the four corners of the frame.
[0022] Compared with the prior art, the present invention has the following beneficial effects:
[0023] 1. The grinding processing device of this utility model can improve the processing efficiency and processing quality of standard inserts, and meet the requirements of efficient preparation of spliced insulation cylinders;
[0024] 2. The sheet can be efficiently processed into standardized inserts, thereby improving its density uniformity and improving the overall performance of modular spliced large-scale thermal field structural components;
[0025] 3. The grinding processing device has a high degree of automation and can produce standardized inserts in large quantities to meet the needs of rapid assembly into thermal field structural parts of various diameters and heights. It can not only meet the customer's needs for rapid verification of non-standard modified parts, but also meet the needs of rapid delivery after mass production. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 This is a schematic diagram of the layout structure of the continuous feeding device in the machining center of the utility model;
[0027] Figure 2 for Figure 1 Schematic diagram of the structure of the continuous feeding device from the first perspective;
[0028] Figure 3 for Figure 2 Schematic diagram of the structure of the continuous feeding device from the second perspective;
[0029] Figure 4 for Figure 3 Schematic diagram of the internal structure of the continuous feeding device;
[0030] Figure 5 for Figure 4 Schematic diagram of the continuous feeding state of the middle sheet on the conveyor table;
[0031] Figure 6 for Figure 5 Schematic diagram of the layout structure of the pusher blocks on the middle conveyor platform;
[0032] Figure 7 for Figure 6 Schematic diagram of the reciprocating drive mechanism structure;
[0033] Figure 8 for Figure 7 The main view of the reciprocating drive mechanism structure;
[0034] Figure 9 for Figure 4 Schematic diagram of the structure of the middle limit conveying component;
[0035] Figure 10 for Figure 4 Schematic diagram of the structure of the grinding component from the first perspective;
[0036] Figure 11 for Figure 4 Schematic diagram of the grinding component from the second perspective.
[0037] Figure numerals: 100, grinding device; 1, frame; 2, work table; 3, reciprocating drive mechanism; 31, horizontal moving plate; 32, relay plate; 33, lifting plate; 34, supporting rib; 35, propulsion block; 36, guide slide rod; 37, guide slide sleeve; 38, lifting drive cylinder; 4, material box; 5, dust collection hood; 6, material sheet; 7, conveying table; 71, propulsion chute; 8, limit guide rail; 9, clamping limit assembly; 91, first side bracket; 92, first mounting end plate ;93. Clamping cylinder; 94. Drive plate; 95. Pressure rail; 96. Pressure roller; 10. Grinding assembly; 101. Second side bracket; 102. Mounting rib; 103. Second mounting end plate; 104. Grinding motor; 105. Grinding head; 11. Support rib; 12. Horizontal drive mechanism; 121. Reciprocating drive motor; 122. Support shaft seat; 123. Transmission wire sleeve; 124. Drive screw; 13. Guide slide assembly; 131. Guide rail; 132. Guide slide support block. DETAILED DESCRIPTION
[0038] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the following Figures 1 to 11 The technical solutions of the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of the present invention.
[0039] like Figures 1 to 8 As shown, the present invention is a reciprocating continuous feeding grinding device, which is used in a machining center to achieve continuous feeding of a sheet and side grinding of the sheet. The grinding device 100 includes a work table 2 and a conveying table 7 fixedly connected to the work table 2. The conveying table 7 is fixedly connected to the work table 2 through a plurality of supporting ribs 11 provided on its bottom surface. A propulsion chute 71 is provided on the conveying table 7 along its conveying direction. The propulsion chute 71 can be a continuous through groove or a plurality of discontinuous through grooves to meet the needs.
[0040] The work table 2 is provided with a reciprocating drive mechanism 3, which is arranged below the conveyor table 7. The reciprocating drive mechanism 3 is equipped with multiple push blocks 35 that are engaged in push chutes 71. The spacing between adjacent push blocks 35 is the length of a sheet. During a single drive operation of the reciprocating drive mechanism 3, the multiple push blocks 35 cooperate to achieve continuous conveying of multiple linearly arranged sheets on the conveyor table 7. A magazine 4 is provided at the starting end of the conveyor table 7, located on the push chute 71. A slot for feeding sheets 6 is provided at the connection between the magazine 4 and the conveyor table 7. Multiple stacked sheets can be pressed into and stored in the magazine 4 for unloading. As the reciprocating drive mechanism 3 reciprocates along the push chute 71, the corresponding push blocks 35 push the sheets in the magazine 4 from the slots onto the conveyor table 7 one by one, thereby achieving continuous conveying of multiple linearly arranged sheets on the conveyor table 7. Two sets of clamping and limiting assemblies 9 and grinding assemblies 10 are arranged on both sides of the conveying plate 7. These are a first set of clamping and limiting assemblies 9 and grinding assemblies 10 and a second set of clamping and limiting assemblies 9 and grinding assemblies 10, which are arranged opposite each other on both sides of the conveying plate 7. The clamping and limiting assemblies 9 and grinding assemblies 10 in the same set are distributed on both sides of the conveying plate 7. The clamping and limiting assemblies 9 can press the sheet against the conveying plate 7, and the grinding assemblies 10 can grind the side of the sheet. The grinding processing device of this utility model can improve the processing efficiency and processing quality of standard inserts, meeting the requirements of efficient preparation of spliced insulation cylinders.
[0041] In a preferred embodiment, if Figures 2-3 As shown, a dust collecting hood 5 is provided on the upper side of the conveying table 7 corresponding to the two groups of clamping limit assemblies 9 and the grinding assembly 10. The dust collecting hood 5 is provided with a connecting pipe end connected to an external negative pressure fan. The dust collecting hood 5 is used to collect dust during the grinding operation.
[0042] In a preferred embodiment, if Figures 7-8As shown, the reciprocating drive mechanism 3 includes a horizontal movable plate 31, a relay plate 32, and a lifting plate 33, which are arranged in parallel from bottom to top along the conveying direction of the worktable 2. A horizontal drive mechanism 12 is correspondingly disposed on the bottom surface of the horizontal movable plate 31. The horizontal drive mechanism 12 drives the horizontal movable plate 31 and the structure above it to move horizontally along the worktable 2. The horizontal movable plate 31 and the relay plate 32 are fixedly connected by support ribs 34. At least one lifting drive cylinder 38 is disposed on the relay plate 32. The piston rod of the lifting drive cylinder 38 is fixedly connected to the bottom surface of the lifting plate 33, and the propulsion block 35 is correspondingly connected to the top surface of the lifting plate 33. During operation, the horizontal drive mechanism 12 drives the horizontal movable plate 31 and the structure above it to reciprocate horizontally along the worktable 2. The lifting drive cylinder 38 drives the lifting plate 33 to move up and down relative to the relay plate 32, thereby causing the propulsion block 35 to move forward and backward and lift and lower, achieving continuous conveying of the sheet.
[0043] In a preferred embodiment, if Figure 8 As shown, the horizontal drive mechanism 12 is correspondingly arranged at one end of the horizontal movable plate 31, and the horizontal movable plate 31 is different from the horizontal drive mechanism 12 and is further provided with a guide slide assembly 13 at one end. The horizontal drive mechanism 12 includes two support shaft seats 122 relatively arranged on the work table 2 and a drive screw 124 rotatably connected between the support shaft seats 122. A transmission wire sleeve 123 is rotatably connected to the drive screw 124, and the transmission wire sleeve 123 is fixedly connected to the horizontal movable plate 31. A reciprocating drive motor 121 is provided at the outer end of the drive screw 124. The reciprocating drive motor 121 can drive the horizontal movable plate 31 and its upper structure to move forward or backward along the work table 2 to perform reciprocating motion through the drive screw 124 by rotating forward or reverse. The guide slide assembly 13 includes a guide rail 131 arranged along the conveying direction of the work table 2, and a guide slide support block is slidably connected to the guide rail. The guide slide support block 132 is fixedly connected to the horizontal movable plate 31. When the horizontal driving mechanism 12 drives the horizontal moving plate 31 , the guide slide assembly 13 provides stable support for the horizontal moving plate 31 and the structure thereon.
[0044] In a preferred embodiment, if Figures 7-8 As shown, a plurality of lifting guide sliding components 13 are correspondingly arranged between the relay plate 32 and the lifting plate 33 along the conveying direction. The lifting guide sliding components 13 include a plurality of guide sliding rods 36 correspondingly arranged at the bottom of the lifting plate 33 and a guide sliding sleeve 37 correspondingly arranged on the relay plate 32. The guide sliding rods 36 are correspondingly inserted into the guide sliding sleeves 37. When the lifting plate 33 is lifted and lowered relative to the relay plate 32, the guide sliding rods 36 provide stable support for the lifting plate 33.
[0045] In a preferred embodiment, if Figure 9As shown, the clamping and limiting assembly 9 includes a first side bracket 91 corresponding to one side of the reciprocating drive mechanism 3. The top of the first side bracket 91 is located above the conveying table and is provided with a first mounting end plate 92. The bottom surface of the first mounting end plate 92 is connected to a clamping cylinder 93, and the driving end of the clamping cylinder 93 is connected to a driving plate 94 and a clamping rail 95 fixedly connected to the bottom surface of the driving plate 94. The clamping rail 95 is arranged along the conveying table 7, and the bottom surface of the clamping rail 95 is provided with a mounting groove and a plurality of clamping rollers 96 rotatably connected to the mounting groove. The clamping cylinder 93 drives the clamping rail 95 and the clamping rollers 96 provided on the bottom surface to perform lifting and lowering movements. When the sheet is conveyed to the bottom of the clamping and limiting assembly 9, the clamping cylinder 93 pushes the clamping rail 95 downward so that the clamping rollers 96 are pressed against the sheet. In addition, during the forward conveying of the sheet, the clamping rollers 96 provide stable support for the sheet and cooperate with the limiting guide rail 8 to prevent the sheet from deflecting when the grinding assembly 10 grinds the side of the sheet.
[0046] In a preferred embodiment, if Figures 10-11 As shown, the grinding assembly 10 includes a second side bracket 101 corresponding to a side of the reciprocating drive mechanism 3, a mounting rib 102 at the top of the second side bracket 101 located on one side of the conveying table, a second mounting end plate 103 is provided on the front side of the mounting rib 102, a grinding motor 104 and a grinding head 105 rotatably connected to the lower end of the grinding motor 104 are provided on the second mounting end plate 103, and the position of the grinding head 105 can be adjusted up and down, and the grinding assembly 10 can realize the grinding operation on the side of the sheet. The two sets of grinding assemblies 10 can be respectively located at the same position on both sides of the conveying table 7, and when the sheet 6 is conveyed to the grinding assembly, the two sets of grinding assemblies 10 can cooperate to realize the synchronous grinding operation of its two ends. In addition, the two sets of grinding assemblies 10 can also be respectively located at different positions on both sides of the conveying table 7, and when the sheet 6 is conveyed to the two sets of grinding assemblies in sequence, the grinding operation of the sheet end can be realized side by side by the two sets of grinding assemblies 10.
[0047] In a preferred embodiment, if Figure 5 As shown, the conveying platform 7 is provided with limit rails 8 on both sides of the advancing chute 71. The working position width between the two limit rails 8 is adjustable. The limit rails 8 can limit the working position of the sheet, prevent the sheet from shaking during the conveying process, and improve the sheet processing accuracy. The two limit rails 8 can be a fixed limit rail and a movable limit rail. The width between the two limit rails 8 can be adjusted by adjusting the position of the movable limit rail. The two limit rails 8 can also be movable limit rails, and the width between the two limit rails 8 can be adjusted by the movable limit rails.
[0048] In a preferred embodiment, if Figure 2 As shown, the workbench 2 is fixedly arranged on the frame 1, and leveling pads or walking rollers are respectively arranged at the four corners of the frame 1.
[0049] The working principle or working method of the present invention is as follows: multiple layers of stacked fixed-size sheets are pressed into the material box 4 in preparation for subsequent grinding operations. In the initial state, the horizontal movable plate 31 of the reciprocating drive mechanism 3 is at the starting end near the reciprocating drive motor 121, and the lifting plate 33 is at a low position so that the top of the propulsion block 35 is received in the propulsion chute 71; after the material preparation is completed, the lifting drive cylinder 38 is started to push the lifting plate 33 through the driving end to drive the propulsion block 35 to move upward along the propulsion chute 71, so that the propulsion block 35 corresponding to the material box 4 at one end of the adjacent reciprocating drive motor is correspondingly engaged with the rear end of the sheet at the bottom layer of the material box 4; then, the reciprocating drive motor 121 is started to drive the horizontal movable plate 31 and the structure above it to move forward by a sheet length position through the driving screw 124 and the transmission wire sleeve 123, so that the propulsion block 35 pushes the sheet corresponding to the bottom layer of the material box 4 forward by one sheet station along the conveying table 7. After one sheet is pushed forward, the lifting drive cylinder 38 is activated, driving the lifting plate 33 and the push block 35 thereon downward along the push chute 71 through the driving end, so that the push block 35 at the rear end of the pushed sheet is out of contact with the sheet; then, the reciprocating drive motor 121 is activated to rotate in the opposite direction, thereby driving the horizontal movable plate 31 and the structure above it to move backward and return to the starting state, thus completing the conveying of one sheet; repeating the above operation process can realize the continuous conveying of the sheets in the magazine 4 one by one. During the continuous unloading of multiple sheets one by one, the reciprocating drive mechanism 3 cooperates with the multiple push blocks 35 arranged at intervals on the lifting plate 33 to continuously advance the sheets at different material levels on the conveying table 7.
[0050] During the continuous conveying of multiple sheets, the sheet conveyed to the first set of pressing and limiting assemblies 9 and grinding assemblies 10 is driven by the pressing cylinder 93 of the corresponding pressing and limiting assemblies 9, pushing the pressing rail 95 downward, causing the pressing roller 96 to press against the top surface of the corresponding sheet. As the corresponding sheet continues to advance, the corresponding grinding assembly 10 is activated to grind one side of the sheet through the grinding head 105. The sheet that has completed grinding on one side is conveyed to the second set of pressing and limiting assemblies 9 and grinding assemblies 10. The corresponding pressing and limiting assemblies 9 are activated to press against the top surface of the corresponding sheet. As the sheet continues to advance, the corresponding grinding assembly 10 grinds the other side of the sheet. During the continuous conveying of multiple sheets through the two sets of pressing and limiting assemblies 9 and grinding assemblies 10, grinding operations on both sides of each sheet can be achieved.
[0051] The grinding processing device of the utility model has a high degree of automation and can produce standardized inserts in large quantities to meet the needs of rapid assembly into thermal field structural parts of various diameters and heights. It can not only meet the customer's needs for rapid verification of non-standard modified parts, but also meet the needs of rapid delivery after mass production.
[0052] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.
Claims
1. A reciprocating continuous feeding grinding device, characterized in that: The grinding processing device (100) comprises a work table (2) and a conveying table (7) fixedly connected above the work table (2); the conveying table (7) is fixedly connected to the work table (2) via a plurality of supporting ribs (11) provided on its bottom surface; and a propulsion chute (71) is provided on the conveying table (7) along its conveying direction; A reciprocating drive mechanism (3) is provided on the work table (2), the reciprocating drive mechanism (3) is arranged correspondingly below the conveying table (7), and a plurality of propulsion blocks (35) that are clamped in the propulsion chute (71) are provided on the reciprocating drive mechanism (3); A material box (4) located on a pushing chute (71) is correspondingly provided at the starting end of the conveying table (7), and a slot for feeding the material sheet (6) is provided at the connection between the material box (4) and the conveying table (7). The pushing block (35) reciprocates along the pushing chute (71) along with the reciprocating drive mechanism (3), and pushes the material sheets in the material box (4) from the slot to the conveying table (7) one by one. Two groups of pressing and limiting components (9) and grinding components (10) are respectively arranged along both sides of the conveying table (7); the pressing and limiting components (9) can press the material sheet onto the conveying table (7); and the grinding components (10) can perform grinding operations on the side edges of the material sheet.
2. The reciprocating continuous feeding grinding device according to claim 1, characterized in that: The reciprocating drive mechanism (3) comprises a horizontal moving plate (31), a relay plate (32) and a lifting plate (33) which are arranged in parallel from bottom to top along the conveying direction of the workbench (2); A horizontal driving mechanism (12) is correspondingly provided on the bottom surface of the horizontal moving plate (31), and the horizontal driving mechanism (12) drives the horizontal moving plate (31) and the structure thereon to move horizontally along the workbench (2); The horizontal moving plate (31) and the relay plate (32) are fixedly connected via a supporting rib (34), and at least one lifting drive cylinder (38) is provided on the relay plate (32), the piston rod of the lifting drive cylinder (38) is fixedly connected to the bottom surface of the lifting plate (33), and the propulsion block (35) is correspondingly connected to the top surface of the lifting plate (33).
3. The reciprocating continuous feeding grinding device according to claim 2, characterized in that: The horizontal driving mechanism (12) is correspondingly arranged at one end of the horizontal moving plate (31), and the horizontal moving plate (31) is further provided with a guide sliding component (13) at one end different from the horizontal driving mechanism (12).
4. The reciprocating continuous feeding grinding device according to claim 3, characterized in that: The horizontal drive mechanism (12) comprises two support shaft seats (122) relatively arranged on the workbench (2) and a driving screw (124) rotatably connected between the support shaft seats (122); a transmission wire sleeve (123) is rotatably connected to the driving screw (124), and the transmission wire sleeve (123) is fixedly connected to the horizontal movable plate (31); and a reciprocating drive motor (121) is provided at the outer end of the driving screw (124); The guide slide assembly (13) comprises a guide rail (131) arranged along the conveying direction of the work table (2); a guide slide support block (132) is slidably connected to the guide rail (131); and the guide slide support block (132) is fixedly connected to the horizontal movable plate (31).
5. The reciprocating continuous feeding grinding device according to claim 2, characterized in that: A plurality of lifting guide slide assemblies (13) are correspondingly arranged between the relay plate (32) and the lifting plate (33) along the conveying direction. The lifting guide slide assemblies (13) include guide slide rods (36) correspondingly arranged at the bottom of the lifting plate (33) and guide slide sleeves (37) correspondingly arranged on the relay plate (32). The guide slide rods (36) are correspondingly inserted into the guide slide sleeves (37).
6. The reciprocating continuous feeding grinding device according to claim 1, characterized in that: The clamping and limiting assembly (9) comprises a first side bracket (91) correspondingly arranged on one side of the reciprocating drive mechanism (3); a first mounting end plate (92) is arranged on the top of the first side bracket (91) above the conveying platform; a clamping cylinder (93) is connected to the bottom surface of the first mounting end plate (92); and a driving end of the clamping cylinder (93) is connected to a driving plate (94) and a clamping rail (95) fixedly connected to the bottom surface of the driving plate (94); The pressure rail (95) is arranged along the conveying table (7), and the bottom surface of the pressure rail (95) is provided with a mounting groove and a plurality of pressure rollers (96) rotatably connected in the mounting groove; the pressure cylinder (93) drives the pressure rail (95) and the pressure rollers (96) arranged on the bottom surface thereof to perform lifting and lowering actions.
7. The reciprocating continuous feeding grinding device according to claim 1, characterized in that: The grinding assembly (10) includes a second side bracket (101) correspondingly arranged on one side of the reciprocating drive mechanism (3); the top end of the second side bracket (101) is located at a mounting rib (102) on one side of the conveying table; a second mounting end plate (103) is arranged on the front side of the mounting rib (102); a grinding motor (104) and a grinding head (105) rotatably connected to the lower end of the grinding motor (104) are arranged on the second mounting end plate (103); and the position of the grinding head (105) can be raised and lowered and adjusted.
8. The reciprocating continuous feeding grinding device according to claim 1, characterized in that: The conveying platform (7) is provided with limiting guide rails (8) on both sides of the pushing chute (71), and the working position width between the two limiting guide rails (8) can be adjusted.
9. The reciprocating continuous feeding grinding device according to any one of claims 1 to 8, characterized in that: The workbench (2) is fixedly arranged on the frame (1), and the four corners of the frame (1) are respectively provided with leveling pads or walking rollers.
Citation Information
Patent Citations
Carbon / carbon spliced thermal insulation cylinder for monocrystalline silicon straight pulling furnace
CN219637398U