Machining device for fixing magnetic box based on concrete formwork

By designing a processing device for fixed magnetic box for concrete formwork, using multi-direction clamping and extrusion installation technology, the problems of cumbersome operation of existing devices and loose magnets are solved, and stable installation and loose detection are achieved, improving the functionality and emergency effect of the equipment.

CN120038654APending Publication Date: 2025-05-27SUZHOU DANQIAO INTELLIGENT TECHNOLOGY CO LTD

Patent Information

Application Number
CN202510327880.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

The existing processing equipment is complicated to operate and cannot detect the loosening of the magnet, which causes the magnet to loosen or even fall off during the subsequent sound test, affecting its use.

Method used

A processing device based on a concrete formwork fixed magnetic box is designed, and the first clamping assembly, the second clamping assembly and the polishing assembly are used to realize multi-direction clamping of the formwork blank and the extrusion installation of magnets, and has loose detection and emergency polishing functions.

Benefits of technology

It improves the clamping stability of the template blank, realizes the stable installation and loose detection of magnets, reduces operating steps, and improves the functionality and emergency effects of the equipment.

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Abstract

The invention provides a machining device based on a concrete formwork fixing magnetic box, and relates to the technical field of formwork machining. A template blank is placed on the top end face of the equipment body, two first connecting blocks are symmetrically fixed to the top end face of the equipment body, two first guide rods are arranged on each first connecting block in a sliding mode, and one ends of the rear sides of the two first guide rods on the front side are welded to one first clamping block. One ends of the front sides of the two first guide rods on the rear side are welded to the other first clamping block, and the two first clamping blocks make contact with the front end face and the rear end face of the template blank correspondingly. A first hydraulic cylinder is fixed to the inner side of each first connecting block. The template blank is clamped in multiple directions through the first clamping assembly and the second clamping assembly, so that the clamping stability can be improved; and through cooperation of the first clamping assembly and the second clamping assembly, extrusion installation of the magnet can be achieved, subsequent independent installation is not needed, the functionality of the equipment is improved, and time is saved.
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Description

Technical Field

[0001] The present invention relates to the technical field of template processing, and particularly relates to a processing device for a fixing magnetic box of a concrete template. Background Art

[0002] A fixing magnetic box for a concrete template is a magnetic fixing device specifically used for fixing a precast concrete template; the fixing magnetic box for a concrete template usually consists of a high-performance permanent magnet material (such as a rare earth neodymium iron boron permanent magnet material) and an iron box; during the processing of the magnetic box, a processing device is required.

[0003] The existing processing device needs to first open holes through a drilling machine, and then needs to be transferred to an extrusion machine to press the magnet into the template through the extrusion machine, with cumbersome operations; after the existing device presses the magnet into the template, it cannot perform looseness detection of the magnet, and during the subsequent sound testing process, the magnet is prone to looseness or even falling off, ultimately affecting the use.

[0004] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and a processing device for a fixing magnetic box of a concrete template is provided, with the expectation of achieving a more practical value. Summary of the Invention

[0005] In order to solve the above technical problems, the present invention provides a processing device for a fixing magnetic box of a concrete template to solve the problems that the existing processing device needs to first open holes through a drilling machine, and then needs to be transferred to an extrusion machine to press the magnet into the template through the extrusion machine, with cumbersome operations; after the existing device presses the magnet into the template, it cannot perform looseness detection of the magnet, and during the subsequent sound testing process, the magnet is prone to looseness or even falling off, ultimately affecting the use.

[0006] The present invention provides a processing device for a fixing magnetic box of a concrete template, which specifically includes: a device main body; a template blank is placed on the top surface of the device main body, two first connection blocks are symmetrically fixed on the top surface of the device main body, two first guide rods slide on each first connection block, the rear ends of the two front first guide rods are welded to a first clamping block, the front ends of the two rear first guide rods are welded to another first clamping block, and the two first clamping blocks are respectively in contact with the front end face and the rear end face of the template blank; a first hydraulic cylinder is fixed inside each first connection block, and the extending ends of the two first hydraulic cylinders are respectively fixed on the two first clamping blocks.

[0007] Furthermore, the first connecting block, the first guide rod, the first clamping block, and the first hydraulic cylinder together form the first clamping assembly; the equipment main body is equipped with four grooving assemblies. The grooving assembly is composed of a first sliding seat, a mounting arm, a first threaded rod, a first motor, a second sliding seat, a first electric cylinder, a third sliding seat, a second electric cylinder, and a drilling machine. Four first sliding seats are fixed on the top end surface of the equipment main body. An L-shaped mounting arm slides on each first sliding seat. A first threaded rod rotates on each first sliding seat. The four first threaded rods are respectively threadedly connected to the four mounting arms. A first motor is fixed on each first sliding seat. The output shafts of the four first motors are respectively fixed on the four first threaded rods.

[0008] Furthermore, a second sliding seat slides on each of the mounting arms. A first electric cylinder is fixed on each mounting arm. The extending end of the first electric cylinder is fixed on the second sliding seat.

[0009] Furthermore, a third sliding seat slides on each of the second sliding seats. A second electric cylinder is fixed on the inner side of each second sliding seat. The extending ends of the four second electric cylinders are respectively fixed on the four third sliding seats. A drilling machine is fixed on the inner side of each third sliding seat.

[0010] Furthermore, a polishing assembly is installed on the equipment main body. The polishing assembly is composed of a frame body, a second connecting block, a second threaded rod, a second motor, a second hydraulic cylinder, and a polishing machine. A concave-shaped frame body is fixed on the top end surface of the equipment main body. A second connecting block slides on the frame body. A second threaded rod rotates on the frame body. The second threaded rod is threadedly connected to the second connecting block. A second motor is fixed on the right end surface of the frame body. The output shaft of the second motor is fixed on the second threaded rod.

[0011] Furthermore, two second hydraulic cylinders are fixed on the bottom end surface of the second connecting block. The extending ends of the two second hydraulic cylinders are both fixed on the polishing machine, and the polishing machine is located directly above the template blank.

[0012] Furthermore, a second clamping assembly is installed on the frame, and the second clamping assembly consists of a third hydraulic cylinder, a third connecting block, a second guide rod, a second clamping block and a fourth hydraulic cylinder. Four third hydraulic cylinders are fixed on the top surface of the inner wall of the frame, and the protruding ends of the two third hydraulic cylinders on the left are fixed on a third connecting block, and the protruding ends of the two third hydraulic cylinders on the right are fixed on another third connecting block. Two second guide rods are slid on each third connecting block, and the protruding ends of the two second guide rods on the left are fixed on a second clamping block, and the protruding ends of the two second guide rods on the right are fixed on another second clamping block. The two second clamping blocks are respectively in contact with the left end face and the right end face of the template blank, and a fourth hydraulic cylinder is fixed on each third connecting block. The protruding ends of the two fourth hydraulic cylinders are respectively fixed on the two second clamping blocks. When the template blank is auxiliary clamped, the two fourth hydraulic cylinders can be driven to extend. At this time, the auxiliary clamping of the template blank can be completed by the two second clamping blocks.

[0013] Furthermore, an auxiliary component is installed on the equipment body, and the auxiliary component consists of a rotating shaft, a toggle block and a third motor. There are two rotating shafts rotating on the equipment body, and a toggle block is welded on each rotating shaft. The two toggle blocks are located below the template blank.

[0014] Furthermore, two third motors are fixed to the front end of the equipment body, and the output shafts of the two third motors are respectively fixed on two rotating shafts. When the rotating shafts rotate, the template blank is in a state of reciprocating vibration up and down under the toggle of the toggle block.

[0015] Compared with the prior art, the present invention has the following beneficial effects: Through the arrangement of the first clamping assembly, the second clamping assembly and the polishing assembly, firstly, the multi-directional clamping of the template blank by the first clamping assembly and the second clamping assembly can improve the clamping stability; Second, through the cooperation of the first clamping assembly and the second clamping assembly, the magnet can be extruded and installed without the need for subsequent separate installation, thereby improving the functionality of the device and saving time; Third, when it is necessary to test the stability of the magnet installation, loosen the first clamping assembly, drive the two fourth hydraulic cylinders to extend to complete the clamping of the template blank, and then drive the four third hydraulic cylinders to retract. When the template blank is separated from the top surface of the equipment body, drive the two fourth hydraulic cylinders to retract. At this time, the template blank falls on the equipment body. After this reciprocating process, it can be observed whether the magnet is loose in the installation slot; Fourth, when the second motor is damaged and the polishing machine cannot move left and right, release the first clamping assembly, drive the two fourth hydraulic cylinders on the left to extend, and drive the two fourth hydraulic cylinders on the right to contract, and then vice versa. At this time, the template blank can be moved left and right, and emergency polishing is achieved, which improves the emergency effect of the device.

[0016] Through the setting of the auxiliary components, when the third motor rotates, the template blank can be continuously vibrated under the toggling of the two toggle blocks. Through the continuous vibration of the template blank, the looseness detection of the magnet can be completed. If looseness occurs, timely remedial measures are taken to avoid the phenomenon of loosening and falling off of the magnet during subsequent use. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solution of the embodiment of the present invention, the drawings of the embodiment are briefly introduced below.

[0018] In the attached picture: Figure 1 It shows an axial structural schematic diagram of a processing device for fixing a magnetic box based on a concrete formwork according to the present invention; Figure 2 It shows a schematic diagram of the main structure of the processing device for fixing the magnetic box based on the concrete template according to the present invention; Figure 3 It shows a schematic diagram of the axial structure of a partially cut-away processing device for fixing a magnetic box based on a concrete formwork according to the present invention; Figure 4 It is shown that according to the present invention Figure 3 A schematic diagram of the enlarged structure at point A; Figure 5 It is shown that according to the present invention Figure 3 Schematic diagram of the axial structure after rotation; Figure 6 It shows an axial structural schematic diagram of an auxiliary component according to the present invention; Figure 7 It shows an axial structural schematic diagram of a first clamping assembly and a second clamping assembly according to the present invention; Figure 8 The figure shows an axial structural schematic diagram of the slotting assembly according to the present invention.

[0019] Reference numerals list 1. Equipment main body; 2. Template blank; 3. First clamping assembly; 301. First connecting block; 302. First guide rod; 303. First clamping block; 304. First hydraulic cylinder; 4. Grooving assembly; 401. First sliding seat; 402. Mounting arm; 403. First threaded rod; 404. First motor; 405. Second sliding seat; 406. First electric cylinder; 407. Third sliding seat; 408. Second electric cylinder; 409. Drill; 5. Polishing assembly; 501. Frame; 502. Second connecting block; 503. Second threaded rod; 504. Second motor; 505. Second hydraulic cylinder; 506. Polishing machine; 6. Second clamping assembly; 601. Third hydraulic cylinder; 602. Third connecting block; 603. Second guide rod; 604. Second clamping block; 605. Fourth hydraulic cylinder; 7. Auxiliary assembly; 701. Rotating shaft; 702. Poking block; 703. Third motor. Detailed implementation manners

[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0021] Unless otherwise defined, all terms (including technical and scientific terms) used in the embodiments of the present invention have the same meaning as commonly understood by those of ordinary skill in the art to which the present invention belongs. It should also be understood that terms such as those defined in a commonly used dictionary should be interpreted as having a meaning consistent with their meaning in the context of the relevant art, and should not be interpreted in an idealized or overly formal sense unless clearly defined in the embodiments of the present invention.

[0022] In the embodiments of the present invention, words such as "first", "second" and the like do not denote any order, quantity or importance, but are only used to distinguish different components. Words such as "a", "an" or "the" do not denote a quantity limitation either, but indicate that there is at least one. Similarly, words such as "comprising" or "including" mean that the elements or items appearing before this word cover the elements or items listed after this word and their equivalents, without excluding other elements or items. In the following description, spatial and orientation terms such as "upper", "lower", "front", "rear", "top", "bottom", "vertical" and "horizontal" may be used to describe the embodiments of the present invention, but it should be understood that these terms are only for the convenience of describing the embodiments shown in the drawings, and do not require the actual device to be constructed or operated in a specific orientation. In the following description, the use of terms such as "connected", "coupled", "fixed" and "attached" may mean that two elements or structures are directly connected without other elements or structures therebetween, or may mean that two elements or structures are indirectly connected through intermediate elements or structures, unless otherwise explicitly stated herein.

[0023] Embodiment 1: As shown in the Figure 1 to Figure 8 accompanying drawings: The present invention provides a processing device for fixing a magnetic box based on a concrete formwork, including: a device main body 1; a formwork blank 2 is placed on the top surface of the device main body 1, two first connection blocks 301 are symmetrically fixed on the top surface of the device main body 1, two first guide rods 302 are slidably arranged on each first connection block 301, the rear ends of the two front first guide rods 302 are welded to a first clamping block 303, and the front ends of the two rear first guide rods 302 are welded to another first clamping block 303. The two first clamping blocks 303 are respectively in contact with the front end face and the rear end face of the formwork blank 2; a first hydraulic cylinder 304 is fixed inside each first connection block 301, and the extending ends of the two first hydraulic cylinders 304 are respectively fixed on the two first clamping blocks 303. When fixing the formwork blank 2, just drive the two first hydraulic cylinders 304 to extend, and the two first hydraulic cylinders 304 drive the two first clamping blocks 303 to move inward to complete the clamping and fixing of the formwork blank 2.

[0024] Among them, the first connecting block 301, the first guiding rod 302, the first clamping block 303 and the first hydraulic cylinder 304 together form the first clamping assembly 3; the equipment main body 1 is equipped with four grooving assemblies 4, and the grooving assembly 4 is composed of a first sliding seat 401, a mounting arm 402, a first threaded rod 403, a first motor 404, a second sliding seat 405, a first electric cylinder 406, a third sliding seat 407, a second electric cylinder 408 and a drill 409. Four first sliding seats 401 are fixed on the top end surface of the equipment main body 1, and an L-shaped mounting arm 402 slides on each first sliding seat 401. A first threaded rod 403 rotates on each first sliding seat 401, and the four first threaded rods 403 are respectively threadedly connected to the four mounting arms 402. A first motor 404 is fixed on each first sliding seat 401, and the output shafts of the four first motors 404 are respectively fixed on the four first threaded rods 403.

[0025] Among them, a second sliding seat 405 slides on each mounting arm 402, and a first electric cylinder 406 is fixed on each mounting arm 402. The extending end of the first electric cylinder 406 is fixed on the second sliding seat 405.

[0026] Among them, a third sliding seat 407 slides on each second sliding seat 405, and a second electric cylinder 408 is fixed on the inner side of each second sliding seat 405. The extending ends of the four second electric cylinders 408 are respectively fixed on the four third sliding seats 407, and a drill 409 is fixed on the inner side of each third sliding seat 407. When two card slots are opened on the front end face and the rear end face of the template blank 2, drive the drill 409 to rotate, and then drive the first motor 404 to rotate to adjust the left and right positions of the drill 409, drive the first electric cylinder 406 to extend and retract to adjust the height of the drill 409, and drive the second electric cylinder 408 to extend and retract to adjust the front and rear positions of the drill 409.

[0027] Among them, a polishing assembly 5 is installed on the equipment main body 1, and the polishing assembly 5 is composed of a frame body 501, a second connecting block 502, a second threaded rod 503, a second motor 504, a second hydraulic cylinder 505 and a polishing machine 506. A concave-shaped frame body 501 is fixed on the top end surface of the equipment main body 1, a second connecting block 502 slides on the frame body 501, a second threaded rod 503 rotates on the frame body 501, and the second threaded rod 503 is threadedly connected to the second connecting block 502. A second motor 504 is fixed on the right end face of the frame body 501, and the output shaft of the second motor 504 is fixed on the second threaded rod 503.

[0028] Among them, two second hydraulic cylinders 505 are fixed to the bottom end surface of the second connection block 502. The extending ends of the two second hydraulic cylinders 505 are both fixed to the polishing machine 506. The polishing machine 506 is located directly above the template blank 2. When it is necessary to polish the top end surface of the template blank 2, start the polishing machine 506, and then drive the two second hydraulic cylinders 505 to extend until the polishing machine 506 contacts the template blank 2. Then drive the second motor 504 to rotate. Driven by the thread of the second threaded rod 503, the second connection block 502 can move left and right, thus realizing the polishing of the template blank 2.

[0029] Among them, a second clamping assembly 6 is installed on the frame 501, and the second clamping assembly 6 is composed of a third hydraulic cylinder 601, a third connecting block 602, a second guide rod 603, a second clamping block 604 and a fourth hydraulic cylinder 605. Four third hydraulic cylinders 601 are fixed to the top surface of the inner wall of the frame 501, and the protruding ends of the two third hydraulic cylinders 601 on the left are fixed to a third connecting block 602, and the protruding ends of the two third hydraulic cylinders 601 on the right are fixed to another third connecting block 602. Two second guide rods 603 are slidably arranged on each third connecting block 602, and the two second guide rods 603 on the left are fixed to the protruding ends of the two third hydraulic cylinders 601 on the right. The extended ends of the rods 603 are fixed on a second clamping block 604, and the extended ends of the two second guide rods 603 on the right are fixed on another second clamping block 604. The two second clamping blocks 604 are in contact with the left end face and the right end face of the template blank 2 respectively. A fourth hydraulic cylinder 605 is fixed on each third connecting block 602, and the extended ends of the two fourth hydraulic cylinders 605 are respectively fixed on the two second clamping blocks 604. When the template blank 2 is auxiliary clamped, the two fourth hydraulic cylinders 605 can be driven to extend. At this time, the template blank can be clamped by the two second clamping blocks 604. Auxiliary clamping of the blank 2. During the polishing process, when the second motor 504 is damaged and the polishing machine 506 cannot move left and right, the first clamping assembly 3 is released, and the two fourth hydraulic cylinders 605 on the left are driven to extend, and the two fourth hydraulic cylinders 605 on the right are driven to contract, and then vice versa. At this time, the template blank 2 can be moved left and right, and emergency polishing is finally achieved; when it is necessary to embed the magnet into the groove opened by the drilling rig 409, the first clamping assembly 3 is released, and the two fourth hydraulic cylinders 605 on the left are driven to extend, and the two fourth hydraulic cylinders 605 on the right are driven to contract, until the groove opened by the drilling rig 409 Align with the first clamping block 303, and then drive the first hydraulic cylinder 304 to extend. At this time, the magnet can be pressed into the groove opened by the drill rig 409 through the two first clamping blocks 303; when it is necessary to detect the stability of the magnet installation, release the first clamping assembly 3, drive the two fourth hydraulic cylinders 605 to extend to complete the clamping of the template blank 2, and then drive the four third hydraulic cylinders 601 to contract. When the template blank 2 is separated from the top surface of the equipment body 1, drive the two fourth hydraulic cylinders 605 to contract. At this time, the template blank 2 falls on the equipment body 1. After repeating this process, it can be observed whether the magnet is loose in the installation groove.

[0030] Among them, an auxiliary component 7 is installed on the equipment body 1, and the auxiliary component 7 is composed of a rotating shaft 701, a toggle block 702 and a third motor 703. There are two rotating shafts 701 rotating on the equipment body 1, and a toggle block 702 is welded on each rotating shaft 701. The two toggle blocks 702 are both located below the template blank 2.

[0031] Embodiment 2: On the basis of the first embodiment, it also includes: two third motors 703 are fixed on the front end face of the equipment body 1, and the output shafts of the two third motors 703 are respectively fixed on two rotating shafts 701. When the rotating shafts 701 rotate, the template blank 2 is in a state of reciprocating vibration up and down under the toggle block 702. The continuous vibration of the template blank 2 can complete the detection of the stability of the magnet installation.

[0032] The specific usage and function of this embodiment are as follows: When grooving, the two first hydraulic cylinders 304 are driven to extend, and the two first hydraulic cylinders 304 drive the two first clamping blocks 303 to move inward to complete the clamping and fixing of the template blank 2; the four fourth hydraulic cylinders 605 are driven to extend, and the two second clamping blocks 604 are used for auxiliary clamping at this time; when it is necessary to polish the top surface of the template blank 2, the polishing machine 506 is started, and then the two second hydraulic cylinders 505 are driven to extend until the polishing machine 506 contacts the template blank 2, and then the second motor 504 is driven to rotate, and the second connecting block 502 can move left and right under the thread drive of the second threaded rod 503, so that the polishing of the template blank 2 is realized; during the polishing process, when the second motor 504 is damaged and the polishing machine 506 cannot move left and right, the first clamping assembly 3 is released, the two fourth hydraulic cylinders 605 on the left are driven to extend, and the two fourth hydraulic cylinders 605 on the right are driven to contract at the same time, and then vice versa, the left and right movement of the template blank 2 can be realized at this time, and emergency polishing is finally realized; when it is necessary to embed the magnet into the drilling rig 409 to open When the groove opened by the drilling rig 409 is aligned with the first clamping block 303, the first clamping assembly 304 is driven to extend, and the two fourth hydraulic cylinders 605 on the right are driven to retract at the same time, until the groove opened by the drilling rig 409 is aligned with the first clamping block 303, and then the first hydraulic cylinder 304 is driven to extend. At this time, the magnet can be pressed into the groove opened by the drilling rig 409 through the two first clamping blocks 303; when it is necessary to detect the stability of the magnet installation, the first clamping assembly 3 is released, and the two fourth hydraulic cylinders 605 are driven to extend to complete the clamping of the template blank 2. Then drive the four third hydraulic cylinders 601 to retract. When the template blank 2 is separated from the top surface of the equipment body 1, drive the two fourth hydraulic cylinders 605 to retract. At this time, the template blank 2 falls on the equipment body 1. After such reciprocating movement, it can be observed whether the magnet is loose in the installation groove; when the third hydraulic cylinder 601 is damaged and cannot be retracted, drive the two third motors 703 to rotate, and the template blank 2 can be continuously vibrated under the manipulation of the two toggle blocks 702. Through the continuous vibration of the template blank 2, the looseness detection of the magnet can be completed.

[0033] The above are only specific implementations of the present disclosure, but the protection scope of the present disclosure is not limited thereto, and the protection scope of the present disclosure shall be based on the protection scope of the claims.

Claims

1. A processing device for fixing magnetic boxes based on concrete formwork, characterized in that: include: An equipment body (1); a template blank (2) is placed on the top surface of the equipment body (1); two first connection blocks (301) are symmetrically fixed on the top surface of the equipment body (1); two first guide rods (302) are slidably mounted on each first connection block (301); the rear ends of the two front first guide rods (302) are welded to a first clamping block (303); the front ends of the two rear first guide rods (302) are welded to another first clamping block (303); the two first clamping blocks (303) are respectively in contact with the front end surface and the rear end surface of the template blank (2); a first hydraulic cylinder (304) is fixed on the inner side of each first connection block (301); the protruding ends of the two first hydraulic cylinders (304) are respectively fixed to the two first clamping blocks (303).

2. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 1 is characterized in that: The first connecting block (301), the first guide rod (302), the first clamping block (303) and the first hydraulic cylinder (304) together form a first clamping assembly (3); the equipment body (1) is equipped with four slotting assemblies (4), and the slotting assemblies (4) are composed of a first sliding seat (401), a mounting arm (402), a first threaded rod (403), a first motor (404), a second sliding seat (405), a first electric cylinder (406), a third sliding seat (407), a second electric cylinder (408) and a drilling machine (409). Four first sliding seats (401) are fixed on the top surface of the device body (1), an L-shaped mounting arm (402) is slidably mounted on each first sliding seat (401), a first threaded rod (403) is rotatably mounted on each first sliding seat (401), the four first threaded rods (403) are respectively threadedly connected to the four mounting arms (402), a first motor (404) is fixed on each first sliding seat (401), and the output shafts of the four first motors (404) are respectively fixed on the four first threaded rods (403).

3. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 2 is characterized in that: A second sliding seat (405) is slidably mounted on each of the mounting arms (402), a first electric cylinder (406) is fixed on each of the mounting arms (402), and an extended end of the first electric cylinder (406) is fixed on the second sliding seat (405).

4. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 3 is characterized in that: A third sliding seat (407) is slidably mounted on each of the second sliding seats (405), a second electric cylinder (408) is fixed on the inner side of each second sliding seat (405), the extended ends of the four second electric cylinders (408) are respectively fixed on the four third sliding seats (407), and a drilling rig (409) is fixed on the inner side of each third sliding seat (407).

5. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 4 is characterized in that: A polishing assembly (5) is installed on the equipment body (1), and the polishing assembly (5) is composed of a frame (501), a second connecting block (502), a second threaded rod (503), a second motor (504), a second hydraulic cylinder (505) and a polishing machine (506). A frame (501) with a concave structure is fixed on the top surface of the equipment body (1), a second connecting block (502) is slidably arranged on the frame (501), a second threaded rod (503) is rotatably arranged on the frame (501), the second threaded rod (503) is threadedly connected to the second connecting block (502), a second motor (504) is fixed on the right end surface of the frame (501), and an output shaft of the second motor (504) is fixed to the second threaded rod (503).

6. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 5, characterized in that: Two second hydraulic cylinders (505) are fixed to the bottom end surface of the second connecting block (502), and the protruding ends of the two second hydraulic cylinders (505) are fixed to a polishing machine (506), and the polishing machine (506) is located directly above the template blank (2).

7. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 6, characterized in that: The frame (501) is provided with a second clamping assembly (6), which is composed of a third hydraulic cylinder (601), a third connecting block (602), a second guide rod (603), a second clamping block (604) and a fourth hydraulic cylinder (605). Four third hydraulic cylinders (601) are fixed to the top surface of the inner wall of the frame (501), the extended ends of the two third hydraulic cylinders (601) on the left are fixed to one third connecting block (602), and the extended ends of the two third hydraulic cylinders (601) on the right are fixed to another third connecting block (602), and two second guide rods (603) are slidably mounted on each third connecting block (602). The two second guide rods (603) on the left are fixed to one third connecting block (602). 03), the extended ends of the two second guide rods (603) on the right are fixed on a second clamping block (604), the extended ends of the two second guide rods (603) on the right are fixed on another second clamping block (604), the two second clamping blocks (604) are in contact with the left end face and the right end face of the template blank (2), respectively, each third connecting block (602) is fixed with a fourth hydraulic cylinder (605), the extended ends of the two fourth hydraulic cylinders (605) are respectively fixed on the two second clamping blocks (604), when auxiliary clamping of the template blank (2) is performed, the two fourth hydraulic cylinders (605) are driven to extend, and at this time, the auxiliary clamping of the template blank (2) can be completed through the two second clamping blocks (604).

8. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 7, characterized in that: An auxiliary component (7) is installed on the equipment body (1), and the auxiliary component (7) is composed of a rotating shaft (701), a toggle block (702) and a third motor (703). Two rotating shafts (701) are rotatable on the equipment body (1), and a toggle block (702) is welded to each rotating shaft (701). The two toggle blocks (702) are both located below the template blank (2).

9. The processing device for fixing magnetic boxes based on concrete formwork as claimed in claim 8, characterized in that: Two third motors (703) are fixed to the front end surface of the equipment body (1), and the output shafts of the two third motors (703) are respectively fixed to two rotating shafts (701). When the rotating shafts (701) rotate, the template blank (2) is in a state of reciprocating vibration up and down under the toggle of the toggle block (702).

Citation Information

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