Accurate positioning and fastening integrated equipment and method for assembly type floor slab production
Through the distribution of threaded columns and mounting plate arrays and the meshing transmission of components, the problem of unstable positioning in prefabricated floor slabs is solved, and efficient and stable processing of complex structure floor slabs is achieved, avoiding dislocation.
Patent Information
- Application Number
- CN202510877810.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-27
- Publication Date
- 2025-08-08
AI Technical Summary
The existing integrated equipment for precise positioning and fastening is prone to dislocation when processing complex and diverse structures of prefabricated floor slabs, and cannot effectively position and clamp.
The threaded column and mounting plate array are distributed, combined with the slotted box, lower handle, upper screw group, third helical gear group, rotating column, swing frame and other components, and the positioning and tightening of complex structure floor slabs is achieved through precise adjustment and meshing transmission.
It realizes efficient and stable processing of complex and diverse structure floor slabs, avoids dislocation during the processing process, and improves processing accuracy and stability.
Smart Images

Figure CN120443875A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of prefabricated floor slab production, and in particular to integrated precise positioning and fastening equipment and methods for prefabricated floor slab production. Background Art
[0002] Prefabricated floor slabs, also known as prefabricated floor slabs, are a type of floor slabs that are customized and prefabricated in a factory and then transported to the construction site for installation. Compared with traditional brick-concrete floor slabs, they have excellent performance, such as higher strength, faster construction speed, and less time consumption. Prefabricated floor slabs are a common material in modern building construction. There are many types of prefabricated floor slabs, and they can be selected according to actual needs. The use of prefabricated floor slabs can improve construction efficiency and quality, shorten construction period, and are worthy of promotion and application.
[0003] When the existing integrated precision positioning and fastening equipment is in use, such as application number CN202321805021.1 which relates to the technical field of prefabricated floor slabs, it specifically relates to an assembled prefabricated floor slab and its positioning equipment, including a fixed base plate and a load-bearing frame, and also includes a lifting assembly, the lifting assembly includes a fixed bracket, a support plate, a limit frame, a connecting rod, a threaded rod, a sliding block, a connecting frame, a rotating member and a driving member, the fixed bracket is fixedly connected to the fixed base plate, the support plate is fixedly connected to the fixed bracket, the limit frame is fixedly connected to the fixed base plate and the support plate respectively, the connecting rod is connected to the limit frame through a rotating member, the threaded rod is fixedly connected to the connecting rod, and is rotatably connected to the limit frame, the sliding block It is slidably connected to the limit frame and threadedly connected to the threaded rod. The connecting frame is fixedly connected to the sliding block and the supporting frame respectively. The rotating member is arranged on the limit frame and connected to the connecting rod. The driving member is arranged on the fixed base plate and connected to the connecting rod. By driving the left and right ends of the assembled prefabricated floor slab to rise and move synchronously and stably for positioning and installation; however, in the above technology, the supporting frame is a full-length structure, so during the processing process, it cannot achieve a good positioning and clamping function for some products with more complex and diverse structures, and it is easy to fall off during the processing process. For this reason, we propose an integrated equipment and method for precise positioning and fastening of assembled floor slabs to solve the above problems. Summary of the Invention
[0004] In response to the above problems, the present invention proposes an integrated device and method for precise positioning and fastening of prefabricated floor slabs. The waste rubber melting device mainly utilizes threaded columns and carrying pieces to be distributed in an array so that the products can be effectively carried. According to the structure of the product, the output operation of the slotted box, the lower handle, and the upper screw rod group is used, and the angle adjustment of the upper handle, the third bevel gear group, the rotating column, and the swing frame is coordinated. In this way, the end carrying block, the end-to-end box, and the side carrying block cooperate with the output-operated threaded strip and the top carrying block to effectively position and fasten products with relatively complex and diverse structures, thereby facilitating efficient and stable processing and avoiding dislocation during the processing process.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] The integrated precise positioning and fastening equipment for the production of prefabricated floor slabs includes a transfer brake adjustment component and a positioning adjustment fastening mechanism. The top of the transfer brake adjustment component is provided with a shock-absorbing pitch adjustment component assembled with bolts, and the shock-absorbing pitch adjustment component is provided with mounting and dislocation adjustment components assembled with bolts above the four sides. The positioning adjustment fastening mechanism assembled with bolts is provided above the sides of the mounting and dislocation adjustment components.
[0007] As a further technical solution, the indexing brake adjustment assembly includes a pad, a base, a square frame, an inner connecting frame, a pneumatic telescopic rod, a brake rack, a first chassis, a first motor, a first bevel gear set, a first gear set, a second gear set and a gear column. A base is provided above the pad, and a square frame assembled with bolts is provided above the four sides of the base. An inner connecting frame is provided on the inner side of the square frame, and a pneumatic telescopic rod is provided on the inner side of one group of the inner connecting frames, and a brake rack is provided at the output end of the pneumatic telescopic rod.
[0008] As a further technical solution, a first chassis is provided on the inner side of another group of the inner connecting frames, and a first motor is provided at one end of the first chassis, a first helical gear group is provided at the output end of the first motor, and a first gear group is provided at the output end of the first helical gear group, a second gear group is provided at the output end of the first gear group, and a gear column is provided at the output end of the second gear group.
[0009] As a further technical solution, the shock-absorbing pitch adjustment assembly includes an assembly shaft disc, a rotating base, a bolt block, a shock absorber, a rotating plate, a second motor, a lower screw rod group, a lower sliding block, a lower hinge frame and a lower hinge base. The assembly shaft disc is bolted to the top of the square frame, a rotating base is arranged above the assembly shaft disc, and a bolt block for bolt assembly is arranged on the upper outer side of the rotating base, a shock absorber is arranged above the outer end of the bolt block, and a rotating plate is arranged above the shock absorber, a lower screw rod group connected to the output end of the second motor is arranged on the inner side of the rotating plate, and a lower sliding block threadedly connected to the output end of the lower screw rod group, a lower hinge frame is arranged above the lower sliding block, and a lower hinge base is arranged above the lower hinge frame.
[0010] As a further technical solution, the mounting and dislocation adjustment component includes a slotted base plate, a threaded bayonet, a threaded column, a mounting plate, a third motor, a second bevel gear set, a middle screw rod set, a middle sliding block, a middle hinge frame and a dislocation mounting bar. The slotted base plate is bolted to the top of the lower hinged base, and an array of threaded bayonet is provided above the slotted base plate, and a threaded column with a threaded connection is provided above the threaded bayonet, and a mounting plate is provided above the threaded column.
[0011] As a further technical solution, a second bevel gear group connected to the output end of the third motor is provided inside the slotted base plate, and a middle screw rod group is provided at the output end of the second bevel gear group, a middle sliding block with a threaded connection is provided at the output end of the middle screw rod group, and a middle hinge frame is provided above the middle sliding block, and a dislocation mounting bar is provided above the middle hinge frame.
[0012] As a further technical solution, the positioning and adjustment fastening mechanism includes a bolt holder, a slotted box, a lower handle, an upper screw rod group, an upper sliding block, an end carrying block, an end-to-end box, a side carrying block, an upper handle, a third bevel gear group, a rotating column, a swing frame, a set block, a threaded cabin, a second chassis, a fourth motor, a transmission gear group, a threaded bar and a top carrying block. The bolt holder is bolted to the top of the side of the slotted base plate, a slotted box is provided above the bolt holder, a lower handle is provided at one end of the slotted box, and an upper screw rod group is provided at the output end of the lower handle, the upper screw rod group is threadedly connected to the upper sliding block, and an end carrying block is provided above the upper sliding block, an end-to-end box is provided above the outer end of the end carrying block, and a side carrying block is provided on the inner side of the end-to-end box.
[0013] As a further technical solution, an upper handle is provided on the outer side of the end-to-box, and a third bevel gear group is provided at the output end of the upper handle, a rotating column is provided at the output end of the third bevel gear group, and a swing frame is provided above the rotating column, a set block is provided at one end of the swing frame, a threaded cabin is provided on the inner side of the set block, and a second chassis is provided above the threaded cabin, a transmission gear group connected to the output end of the fourth motor is provided inside the second chassis, and a threaded bar is provided at the output end of the transmission gear group, and a top mounting block is provided at the bottom end of the threaded bar.
[0014] As a further technical solution, when it is needed to use it, the size of the plate is processed so that the upper threaded column of the array-distributed threaded bayonet is threadedly installed according to the size of the plate, so that the threaded column and the carrying piece cooperate with each other to achieve the adaptation to the size of the plate. When corresponding processing is needed, the lower handle at one end of the slotted box is used to output the operation, so that the spiral operation of the upper screw rod group is used to make the upper sliding block run so that the end carrying block runs to a suitable position, and then the end carrying block and the side carrying block are positioned for the outer edge of the plate. Then, the upper handle on the outer side of the end-to-box is used to output the operation, so that the third helical gear group is engaged and driven, so that the operation of the rotating column adjusts the swing frame to a suitable angle position. Then, the fourth motor at one end of the second chassis is used to output power to drive the output end to run, so that the transmission gear group is engaged and driven, so that the thread strip is spirally driven in the threaded cabin, so that the top carrying block positions and clamps the top of the processed plate. When it is necessary to transfer the processing direction and angle, the first motor at one end of the first chassis is used. The output power drives the output end to operate, so that the first bevel gear group on the first chassis engages with the first gear group to transmit the operation, so that the second gear group and the gear column rotate, thereby driving the rotating base to operate the product to a suitable processing direction. Then, the pneumatic telescopic rod on the inner side of the inner connecting frame is used to output power to drive the output end to telescope, so that the brake rack brakes the gear column for subsequent precise processing. When the pitch angle needs to be adjusted, the second motor on the turn plate is used to output and operate to drive the output of the lower screw rod group to make the sliding operation of the lower sliding block adjust the hinge of the lower hinge frame and the lower hinge base, so that the slotted base plate is adjusted to a suitable angle position as needed. When it is necessary to detach from the product, the positioning adjustment fastening mechanism is used to loosen the product, and the third motor under the slotted base plate is used to output and operate to make the output of the second bevel gear group inside the slotted base plate run, so that the middle screw rod group is operated, so that the middle sliding block and the hinge of the middle hinge frame are driven to cause the dislocation carrying bar to lift the product for user access.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] The device of the invention mainly utilizes the array distribution of threaded columns and carrying pieces to enable the products to be effectively carried out. According to the structure of the product, the output operation of the slotted box, lower handle, and upper screw rod group is used in conjunction with the upper handle, the third bevel gear group, the rotating column, and the angle adjustment of the swing frame. In this way, the end carrying block, the end-to-end box, and the side carrying block cooperate with the output-operated threaded strip and the top carrying block to operate together, so that products with relatively complex and diverse structures can be effectively positioned and tightened, thereby facilitating efficient and stable processing and avoiding dislocation during the processing process. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 A schematic diagram of the structure of an integrated precision positioning and fastening device and method for producing prefabricated floor slabs;
[0018] Figure 2 It is a schematic diagram of the structure of the present invention when viewed from above;
[0019] Figure 3 Schematic diagram of the structure of the transfer brake adjustment assembly of the present invention;
[0020] Figure 4 Schematic diagram of the structure of the shock-absorbing pitch adjustment assembly of the present invention;
[0021] Figure 5 This is a schematic diagram of the structure of the present invention equipped with a dislocation adjustment component;
[0022] Figure 6 Schematic diagram of the structure of the positioning, adjusting and fastening mechanism of the present invention;
[0023] Figure 7 It is a structural schematic diagram of the threaded strip and the top carrying block in the present invention.
[0024] In the figure: 1. Indexing brake adjustment assembly; 101. Pad; 102. Base; 103. Square frame; 104. Inner connecting frame; 105. Pneumatic telescopic rod; 106. Braking rack; 107. First chassis; 108. First motor; 109. First helical gear set; 1010. First gear set; 1011. Second gear set; 1012. Gear column; 2. Shock absorption pitch adjustment assembly; 201. Assembly shaft disc; 202. Rotating base; 203. Bolt block; 204. Shock absorber; 205. Rotating plate; 206. Second motor; 207. Lower screw rod assembly; 208. Lower sliding block; 209. Lower hinge frame; 2010. Lower hinge base; 3. Mounting dislocation adjustment component; 301. Slotted base plate; 302. Threaded bayonet; 303 , threaded column; 304, carrying piece; 305, third motor; 306, second bevel gear group; 307, middle screw rod group; 308, middle sliding block; 309, middle hinge frame; 3010, dislocation carrying strip; 4, positioning adjustment and fastening mechanism; 401, bolt bracket; 402, slotted box; 403, lower handle; 404, upper screw rod group; 405, upper sliding block; 406, end carrying block; 407, end-to-end box; 408, side carrying block; 409, upper handle; 4010, third bevel gear group; 4011, rotating column; 4012, swing frame; 4013, set block; 4014, threaded cabin; 4015, second chassis; 4016, fourth motor; 4017, transmission gear group; 4018, threaded strip; 4019, top carrying block. DETAILED DESCRIPTION
[0025] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, features defined as "first", "second", etc. may explicitly or implicitly include one or more of the features. In the description of the present invention, unless otherwise specified, "multiple" means two or more.
[0026] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0027] 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.
[0028] See also Figure 1-7 In an embodiment of the present invention, a precise positioning and fastening integrated device for the production of prefabricated floor slabs includes a transfer brake adjustment component 1 and a positioning adjustment fastening mechanism 4. A shock-absorbing pitch adjustment component 2 assembled with bolts is provided on the top of the transfer brake adjustment component 1, and a mounting and dislocation adjustment component 3 assembled with bolts is provided above the four sides of the shock-absorbing pitch adjustment component 2, and a positioning adjustment fastening mechanism 4 assembled with bolts is provided above the sides of the mounting and dislocation adjustment component 3.
[0029] The indexing brake adjustment assembly 1 includes a pad 101, a base 102, a square frame 103, an inner connecting frame 104, a pneumatic telescopic rod 105, a brake rack 106, a first chassis 107, a first motor 108, a first bevel gear set 109, a first gear set 1010, a second gear set 1011 and a gear column 1012. The base 102 is arranged above the pad 101, and a square frame 103 assembled with bolts is arranged above the four sides of the base 102. The inner connecting frame 104 is arranged on the inner side of the square frame 103, and a pneumatic telescopic rod 105 is arranged on the inner side of a group of the inner connecting frames 104. The output end of the pneumatic telescopic rod 105 is provided with a brake rack 106.
[0030] In the embodiment of the present invention, a group of pneumatic telescopic rods 105 on the inner side of the inner connecting frame 104 are then used to output power to drive the output end to telescope, so that the brake rack 106 brakes the gear column 1012 to facilitate subsequent precise processing.
[0031] A first chassis 107 is provided on the inner side of another group of the inner connecting frames 104, and a first motor 108 is provided at one end of the first chassis 107, a first bevel gear set 109 is provided at the output end of the first motor 108, and a first gear set 1010 is provided at the output end of the first bevel gear set 109, a second gear set 1011 is provided at the output end of the first gear set 1010, and a gear column 1012 is provided at the output end of the second gear set 1011.
[0032] In an embodiment of the present invention, when it is necessary to transfer the processing direction and angle, the first motor 108 at one end of the first chassis 107 is used to output power to drive the output end to operate, so that the first bevel gear set 109 on the first chassis 107 is engaged with the first gear set 1010 for transmission operation, so that the second gear set 1011 and the gear column 1012 are rotated, thereby driving the rotating base 202 to move the product to a suitable processing direction.
[0033] The shock-absorbing pitch adjustment assembly 2 includes an assembly shaft disc 201, a rotating base 202, a bolt block 203, a shock absorber 204, a rotating plate 205, a second motor 206, a lower screw rod group 207, a lower sliding block 208, a lower hinge frame 209 and a lower hinge base 2010. The assembly shaft disc 201 is bolted to the top of the square frame 103. The rotating base 202 is provided above the assembly shaft disc 201, and a bolt assembly is provided on the outer side of the rotating base 202. The bolt block 203 is provided with a shock absorber 204 above the outer end of the bolt block 203, and a rotating plate 205 is provided above the shock absorber 204. A lower screw rod group 207 connected to the output end of the second motor 206 is provided on the inner side of the rotating plate 205, and the output end of the lower screw rod group 207 is threadedly connected to the lower sliding block 208. A lower hinge frame 209 is provided above the lower sliding block 208, and a lower hinge base 2010 is provided above the lower hinge frame 209.
[0034] In an embodiment of the present invention, when it is necessary to adjust the pitch angle, the second motor 206 on the rotating plate 205 is used to drive the output operation of the lower screw group 207 so that the sliding operation of the lower sliding block 208 adjusts the hinge of the lower hinge frame 209 and the lower hinge base 2010, so that the slotted base plate 301 is adjusted to a suitable angle position as needed.
[0035] The mounting and dislocation adjustment component 3 includes a slotted base plate 301, a threaded bayonet 302, a threaded column 303, a mounting plate 304, a third motor 305, a second bevel gear group 306, a middle screw rod group 307, a middle sliding block 308, a middle hinge frame 309 and a dislocation mounting bar 3010. The slotted base plate 301 is bolted to the top of the lower hinged base 2010. An array of threaded bayonet 302 is provided above the slotted base plate 301, and a threaded column 303 with a threaded connection is provided above the threaded bayonet 302. A mounting plate 304 is provided above the threaded column 303.
[0036] In an embodiment of the present invention, when it is needed to be used, the size of the plate is processed so that the threaded column 303 is threadedly installed above the array-distributed threaded bayonet 302 according to the size of the plate, so that the threaded column 303 and the mounting plate 304 cooperate with each other to achieve the adaptation to the size of the plate.
[0037] A second bevel gear set 306 connected to the output end of the third motor 305 is provided inside the slotted base plate 301, and a middle screw rod set 307 is provided at the output end of the second bevel gear set 306, a middle sliding block 308 with a threaded connection is provided at the output end of the middle screw rod set 307, and a middle hinge frame 309 is provided above the middle sliding block 308, and a dislocation mounting bar 3010 is provided above the middle hinge frame 309.
[0038] In an embodiment of the present invention, when it is necessary to detach the product, the positioning adjustment and fastening mechanism 4 is used to loosen the product, and the third motor 305 under the slotted base plate 301 is output and operated, so that the output of the second bevel gear group 306 inside the slotted base plate 301 is operated, and the operation of the middle screw rod group 307 causes the hinge of the middle sliding block 308 and the middle hinge frame 309 to be driven, so that the dislocation carrying bar 3010 lifts the product for the user to take it.
[0039] The positioning adjustment and fastening mechanism 4 includes a bolt holder 401, a slotted box 402, a lower handle 403, an upper screw rod group 404, an upper sliding block 405, an end mounting block 406, an end-to-end box 407, a side mounting block 408, an upper handle 409, a third helical gear group 4010, a rotating column 4011, a swing frame 4012, a set block 4013, a threaded cabin 4014, a second chassis 4015, a fourth motor 4016, a transmission gear group 4017, a threaded strip 4018 and a top mounting block 4019. The bracket 401 is bolted to the upper side of the slotted base plate 301, and a slotted box 402 is provided above the bolt bracket 401. A lower handle 403 is provided at one end of the slotted box 402, and an upper screw rod group 404 is provided at the output end of the lower handle 403. The upper screw rod group 404 is threadedly connected to an upper sliding block 405, and an end mounting block 406 is provided above the upper sliding block 405. An end-to-end box 407 is provided above the outer end of the end mounting block 406, and a side mounting block 408 is provided on the inner side of the end-to-end box 407.
[0040] In an embodiment of the present invention, when corresponding processing is required, the lower handle 403 at one end of the slotted box 402 is used to output the operation, so that the upper screw group 404 spirally operates, and the upper sliding block 405 operates, so that the end carrying block 406 runs to a suitable position, and the end carrying block 406 and the side carrying block 408 are positioned relative to the outer edge of the plate.
[0041] An upper handle 409 is provided on the outer side of the end-to-end box 407, and a third bevel gear set 4010 is provided at the output end of the upper handle 409, a rotating column 4011 is provided at the output end of the third bevel gear set 4010, and a swing frame 4012 is provided above the rotating column 4011, a set block 4013 is provided at one end of the swing frame 4012, a threaded cabin 4014 is provided on the inner side of the set block 4013, and a second chassis 4015 is provided above the threaded cabin 4014, a transmission gear set 4017 connected to the output end of the fourth motor 4016 is provided inside the second chassis 4015, and a threaded bar 4018 is provided at the output end of the transmission gear set 4017, and a top mounting block 4019 is provided at the bottom end of the threaded bar 4018.
[0042] In an embodiment of the present invention, the upper handle 409 on the outer side of the end-to-box 407 is used to output the operation, so that the third bevel gear set 4010 is engaged and transmitted, and the operation of the rotating column 4011 adjusts the swing frame 4012 to a suitable angle position, and then the fourth motor 4016 at one end of the second chassis 4015 is used to output power to drive the output end to operate, so that the transmission gear set 4017 is engaged and transmitted, and the threaded strip 4018 is spirally transmitted in the threaded chamber 4014, so that the top carrying block 4019 positions and clamps the top of the processed plate.
[0043] The method of the integrated precise positioning and fastening equipment for the production of prefabricated floor slabs is that when it is needed to be used, the size of the plate is processed so that the upper threaded column 303 is threadedly installed on the upper portion of the array-distributed threaded bayonet 302 according to the size of the plate, and the threaded column 303 and the carrying piece 304 cooperate with each other to achieve the size of the plate. When corresponding processing is needed, the lower handle 403 at one end of the slotted box 402 is used to output the operation so that the spiral operation of the upper screw rod group 404 is caused to cause the upper sliding block 405 to operate and the end carrying block 406 to operate to a suitable position, and the end carrying block 406 is aligned with the side carrying block 408 of the plate. The outer edge of the material is positioned, and then the upper handle 409 on the outer side of the end-to-box 407 is used to output the operation, so that the third bevel gear set 4010 is engaged and transmitted, and the operation of the rotating column 4011 adjusts the swing frame 4012 to a suitable angle position, and then the fourth motor 4016 at one end of the second chassis 4015 is used to output power to drive the output end to operate, so that the transmission gear set 4017 is engaged and transmitted, so that the thread strip 4018 is spirally transmitted in the threaded chamber 4014, so that the top carrying block 4019 positions and clamps the top of the processed plate. When it is necessary to transfer the processing direction and angle, the third motor 4016 at one end of the first chassis 107 is used. A motor 108 outputs power to drive the output end to operate, so that the first bevel gear set 109 on the first chassis 107 is meshed with the first gear set 1010 to drive the second gear set 1011 and the gear column 1012 to rotate, thereby driving the rotating base 202 to move the product to a suitable processing direction, and then using the pneumatic telescopic rod 105 on the inner side of the inner frame 104 to output power to drive the output end to telescope, so that the brake rack 106 brakes the gear column 1012, which is convenient for subsequent precise processing. When the pitch angle needs to be adjusted, the second motor 206 on the rotating plate 205 is used to output power to drive the output end to telescope. The output operation of the lower screw rod group 207 causes the sliding operation of the lower sliding block 208 to adjust the hinges of the lower hinge frame 209 and the lower hinge base 2010, so that the slotted base plate 301 is adjusted to a suitable angle position as needed. When it is necessary to detach the product, the positioning adjustment fastening mechanism 4 is used to loosen the product, and the output operation of the third motor 305 below the slotted base plate 301 causes the output operation of the second bevel gear group 306 inside the slotted base plate 301 to cause the operation of the middle screw rod group 307 to drive the hinges of the middle sliding block 308 and the middle hinge frame 309, so that the dislocation carrying bar 3010 lifts the product for user access.
[0044] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0045] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. An integrated precision positioning and fastening device for the production of assembled floor panels, comprising a position-adjusting brake assembly (1) and a positioning-adjusting fastening mechanism (4), characterized in that: The top of the indexing brake adjustment component (1) is provided with a shock-absorbing pitch adjustment component (2) assembled with bolts, and the four sides of the shock-absorbing pitch adjustment component (2) are provided with mounting and dislocation adjustment components (3) assembled with bolts, and the sides of the mounting and dislocation adjustment components (3) are provided with positioning adjustment fastening mechanisms (4) assembled with bolts.
2. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 1 is characterized in that: The indexing brake adjustment assembly (1) comprises a pad (101), a base (102), a square frame (103), an inner connecting frame (104), a pneumatic telescopic rod (105), a brake rack (106), a first chassis (107), a first motor (108), a first bevel gear group (109), a first gear group (1010), a second gear group (1011) and a gear column (1012); a base (102) is arranged above the pad (101), and a square frame (103) assembled with bolts is arranged above the four sides of the base (102); an inner connecting frame (104) is arranged on the inner side of the square frame (103), and a pneumatic telescopic rod (105) is arranged on the inner side of a group of the inner connecting frames (104); and a brake rack (106) is arranged at the output end of the pneumatic telescopic rod (105).
3. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 2 is characterized in that: A first chassis (107) is provided on the inner side of another group of the inner connecting frames (104), and a first motor (108) is provided at one end of the first chassis (107), a first helical gear set (109) is provided at the output end of the first motor (108), and a first gear set (1010) is provided at the output end of the first helical gear set (109), a second gear set (1011) is provided at the output end of the first gear set (1010), and a gear column (1012) is provided at the output end of the second gear set (1011).
4. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 3 is characterized in that: The shock-absorbing pitch adjustment assembly (2) comprises an assembly shaft disc (201), a rotating base (202), a bolt block (203), a shock absorber (204), a rotating plate (205), a second motor (206), a lower screw rod group (207), a lower sliding block (208), a lower hinge frame (209) and a lower hinge base (2010), wherein the assembly shaft disc (201) is bolted to the top of the square frame (103), a rotating base (202) is arranged above the assembly shaft disc (201), and a bolt assembly is arranged on the outer side of the upper side of the rotating base (202). A bolt clamping block (203) is provided, a shock absorber (204) is provided above the outer end of the bolt clamping block (203), and a rotating plate (205) is provided above the shock absorber (204), a lower screw rod group (207) connected to the output end of the second motor (206) is provided on the inner side of the rotating plate (205), and a lower sliding block (208) is threadedly connected to the output end of the lower screw rod group (207), a lower hinge frame (209) is provided above the lower sliding block (208), and a lower hinge base (2010) is provided above the lower hinge frame (209).
5. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 4 is characterized in that: The mounting and dislocation adjustment component (3) comprises a slotted base plate (301), a threaded bayonet (302), a threaded column (303), a mounting plate (304), a third motor (305), a second bevel gear group (306), a middle screw rod group (307), a middle sliding block (308), a middle hinge frame (309) and a dislocation mounting bar (3010); the slotted base plate (301) is bolted to the top of the lower hinged base (2010); an array of threaded bayonet (302) is provided above the slotted base plate (301); a threaded column (303) connected by thread is provided above the threaded bayonet (302); and a mounting plate (304) is provided above the threaded column (303).
6. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 5 is characterized in that: A second helical gear set (306) connected to the output end of the third motor (305) is provided inside the slotted base plate (301), and a middle screw rod set (307) is provided at the output end of the second helical gear set (306), a middle sliding block (308) connected by a thread is provided at the output end of the middle screw rod set (307), and a middle hinge frame (309) is provided above the middle sliding block (308), and a dislocation mounting bar (3010) is provided above the middle hinge frame (309).
7. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 5 is characterized in that: The positioning adjustment and fastening mechanism (4) comprises a bolt support (401), a slotted box (402), a lower handle (403), an upper screw rod group (404), an upper sliding block (405), an end mounting block (406), an end-to-end box (407), a side mounting block (408), an upper handle (409), a third helical gear group (4010), a rotating column (4011), a swing frame (4012), a set block (4013), a threaded cabin (4014), a second chassis (4015), a fourth motor (4016), a transmission gear group (4017), a threaded strip (4018) and a top mounting block (4019). (401) is bolted to the upper side of the slotted base plate (301), a slotted box (402) is provided above the bolt holder (401), a lower handle (403) is provided at one end of the slotted box (402), and an upper screw rod group (404) is provided at the output end of the lower handle (403), an upper sliding block (405) is threadedly connected to the upper screw rod group (404), and an end mounting block (406) is provided above the upper sliding block (405), an end-to-end box (407) is provided above the outer end of the end-to-end box (406), and a side mounting block (408) is provided on the inner side of the end-to-end box (407).
8. The integrated precise positioning and fastening equipment for prefabricated floor production according to claim 7 is characterized in that: An upper handle (409) is provided on the outer side of the end-to-end box (407), and a third bevel gear set (4010) is provided on the output end of the upper handle (409), a rotating column (4011) is provided on the output end of the third bevel gear set (4010), and a swing frame (4012) is provided above the rotating column (4011), a set block (4013) is provided at one end of the swing frame (4012), a threaded chamber (4014) is provided on the inner side of the set block (4013), and a second chassis (4015) is provided above the threaded chamber (4014), a transmission gear set (4017) connected to the output end of the fourth motor (4016) is provided inside the second chassis (4015), and a threaded bar (4018) is provided at the output end of the transmission gear set (4017), and a top mounting block (4019) is provided at the bottom end of the threaded bar (4018).
9. A method for producing an integrated precision positioning and fastening device for prefabricated floor slabs, using the integrated precision positioning and fastening device for prefabricated floor slabs according to any one of claims 1 to 8, characterized in that: When it is necessary to use the plate, the size of the plate is processed so that the upper threaded column (303) is threadedly installed on the upper portion of the array-distributed threaded bayonet (302) according to the size of the plate, so that the threaded column (303) and the carrying piece (304) cooperate with each other to achieve the size of the plate. When it is necessary to perform corresponding processing, the lower handle (403) at one end of the slotted box (402) is used to output the operation so that the spiral operation of the upper screw rod group (404) is allowed to operate and the upper sliding block (405) is allowed to operate so that the end carrying block (406) is moved to a suitable position. The end carrying block (406) and the side carrying block (408) are positioned with respect to the outer edge of the plate, and then the end-to-end box (407) is used to output the operation. ) After the upper handle (409) on the outer side is output and operated, the meshing transmission of the third helical gear set (4010) is made, and the operation of the rotating column (4011) adjusts the swing frame (4012) to a suitable angle position, and then the fourth motor (4016) at one end of the second chassis (4015) is used to output power to drive the output end to operate, so that the transmission gear set (4017) is meshed and driven, so that the threaded strip (4018) is spirally driven in the threaded chamber (4014), so that the top carrying block (4019) positions and clamps the top of the processing plate. When it is necessary to transfer the processing direction and angle, the first motor (108) at one end of the first chassis (107) is used to output power to drive the output end The first helical gear set (109) on the first chassis (107) is meshed with the first gear set (1010) to drive the second gear set (1011) and the gear column (1012) to rotate, thereby driving the rotating base (202) to move the product to a suitable processing direction. Then, the pneumatic telescopic rod (105) on the inner side of the inner connecting frame (104) is used to output power to drive the output end to perform telescopic operation, so that the brake rack (106) brakes the gear column (1012) to facilitate subsequent precise processing. When the pitch angle needs to be adjusted, the second motor (206) on the rotating plate (205) is used to output power to drive the lower screw rod group (207). The output operation causes the sliding operation of the lower sliding block (208) to adjust the hinges of the lower hinge frame (209) and the lower hinged base (2010), so that the slotted base plate (301) is adjusted to a suitable angle position as needed. When it is necessary to detach the product, the positioning adjustment fastening mechanism (4) is used to loosen the product, and the output operation of the third motor (305) below the slotted base plate (301) causes the output operation of the second bevel gear group (306) inside the slotted base plate (301) to cause the operation of the middle screw rod group (307), which causes the hinges of the middle sliding block (308) and the middle hinge frame (309) to be driven, so that the dislocation carrying bar (3010) lifts the product to facilitate the user to take it.
Citation Information
Patent Citations
An assembled prefabricated floor slab and positioning equipment thereof
CN220978869U