Laminated slab mounting device based on low loss and use method
By using magnetic adsorption components and telescopic components in the laminated plate installation device, the problems of low construction efficiency, large material damage and difficulty in precise positioning in the traditional laminated plate installation method are solved, and the efficient, precise installation and construction safety of laminated plates are improved.
Patent Information
- Application Number
- CN202510447747.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2025-06-06
AI Technical Summary
The traditional stacked panel installation method has problems such as low construction efficiency, large material damage, difficulty in precise positioning and construction safety hazards, making it difficult to meet the high precision and high efficiency needs of modern building construction.
A low-loss type laminated plate installation device is adopted. This device absorbs the embedded metal components of the laminated plate through a magnetic adsorption assembly, and combines the telescopic assembly and drive unit to achieve efficient and accurate installation of the laminated plate and reduces damage to the laminated plate.
It realizes efficient and precise installation of laminated plates, reduces material damage, improves construction safety and quality, and meets the high precision and efficiency needs of modern building construction.
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Figure CN120100202A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of construction engineering installation, and in particular to a low-loss composite plate installation device and a use method thereof. Background Art
[0002] In modern construction projects, composite panels are widely used in structures such as floor slabs and roof panels as a prefabricated component. Its prefabricated production method improves construction efficiency, but the installation process still faces many challenges. The installation method of traditional composite panels mainly relies on manual lifting and on-site splicing, which has the following problems: First, the manual lifting and positioning process is cumbersome, the construction efficiency is low, and it is easily affected by the weather and the operator's proficiency, resulting in slow construction progress. Secondly, the composite panels are easily damaged by collision or improper operation during the installation process, which increases material waste and maintenance costs. In addition, the traditional installation method is difficult to ensure the precise positioning of the composite panels, and installation deviations are prone to occur, affecting the integrity and stability of the structure. Finally, there are certain safety hazards in high-altitude operations, and accidents are prone to occur.
[0003] At present, although there are some composite board installation tools on the market, most of them still have problems such as complex operation and limited applicability, and it is difficult to meet the high precision and high efficiency requirements of modern construction. Therefore, the present invention aims to provide a composite board installation device based on a low-loss method, which realizes efficient and accurate installation of composite boards, reduces damage to composite boards, and improves construction safety and quality. Summary of the invention
[0004] In view of the problems existing in the prior art, the present invention is proposed.
[0005] Therefore, the object of the present invention is to provide a low-loss composite board installation device, which can reduce damage to the composite boards through magnetic adsorption during the installation of the composite boards, thereby improving construction safety and quality.
[0006] In order to solve the above technical problems, the present invention provides the following technical solutions: a low-loss composite board installation device, comprising a control unit, including a support component, a telescopic component inserted and arranged inside the support component, a fixed component slidably connected and arranged on one side of the support component, and an adsorption component sleeved and arranged inside the fixed component;
[0007] The supporting assembly is used to provide stability for the telescopic assembly and the adsorption assembly; the telescopic assembly is used to carry the overlapping plate; the adsorption assembly is used to fix the overlapping plate by magnetic force to ensure its precise positioning and stability during the installation process; the fixing assembly is used to enhance the stability of the adsorption assembly.
[0008] As a preferred solution of the low-loss composite plate installation device described in the present invention, the support assembly includes a bracket, a telescopic opening penetrating the upper end of the bracket, and a first sliding groove opened on the right side of the bracket.
[0009] As a preferred solution of the low-loss composite plate installation device described in the present invention, the telescopic plate includes an anti-slip pad fixedly arranged on the upper surface of the telescopic plate, and a second sliding groove symmetrically arranged at both ends of the telescopic plate, and the second sliding groove is slidably connected to the two groups of sliding bars.
[0010] As a preferred solution of the low-loss composite plate installation device described in the present invention, the telescopic plate includes an anti-slip pad fixedly arranged on the upper surface of the telescopic plate, and a second sliding groove symmetrically arranged at both ends of the telescopic plate, and the second sliding groove is slidably connected to the two sets of sliding bars.
[0011] As a preferred solution of the low-loss composite plate installation device described in the present invention, the fixing component includes a sliding seat slidably connected to the first sliding groove, a magnetic seat fixedly arranged on the sliding seat, and a rubber pad fixedly arranged on the magnetic seat.
[0012] As a preferred solution of the low-loss composite plate installation device described in the present invention, the adsorption component includes a magnetic device, a rotating shaft connected to the magnetic device, a rotating button plugged into one end of the rotating shaft, and a cover plate sleeved on the rotating button.
[0013] As a preferred solution of the low-loss composite plate installation device described in the present invention, a circular hole is provided at one end of the magnetic base away from the sliding base, and the rotating shaft passes through the circular hole; the interior of the magnetic base is configured as a hollow frame structure, and the magnetic attraction device is fixedly disposed inside the magnetic base.
[0014] As a preferred solution of the low-loss composite plate installation device described in the present invention, it also includes a driving unit; the driving unit includes a base arranged at the bottom end of the bracket, a motor arranged above the base, a connecting rod arranged on one side of the motor, and a sleeve rotatably connected to one end of the connecting rod.
[0015] As a preferred solution of the low-loss composite plate installation device described in the present invention, the driving unit and the control unit are respectively provided in four groups and distributed in four corners in a rectangular array.
[0016] A second object of the present invention is to provide a method for using a low-loss composite panel installation device, comprising the following steps:
[0017] The sleeve is rotated to adjust the length of the connecting rod to adapt to composite plates of different specifications;
[0018] Hoisting the superimposed plate onto the telescopic plate of the telescopic assembly for preliminary positioning;
[0019] The motor is started to drive the telescopic assembly to contract, and the magnetic attraction device of the adsorption assembly is started to adsorb the embedded metal components of the stacking plate by magnetic force to firmly fix the stacking plate;
[0020] The driving unit is used to steadily lower the stacking plate to the installation position, and the magnetic suction device is closed to release the stacking plate to complete the installation.
[0021] The beneficial effects of the present invention are as follows: the magnetic adsorption component uses strong magnets to adsorb the embedded metal components of the superimposed plates, firmly fixes the superimposed plates, and ensures their stability during lifting and transportation; the telescopic component can not only carry and preliminarily position the superimposed plates, but also realize the adsorption and release of the superimposed plates through cooperation with the adsorption component, and coupled with the synergistic effect of the driving unit, efficient and precise installation of the superimposed plates is achieved, while reducing damage to the superimposed plates and improving construction efficiency and safety. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work. Among them:
[0023] Figure 1 It is a schematic diagram of the overall structure of the low-loss composite plate installation device.
[0024] Figure 2 It is a top view of the overall structure of the low-loss composite plate installation device.
[0025] Figure 3 It is a partial structural schematic diagram of a low-loss composite plate installation device.
[0026] Figure 4 It is a partial structural schematic diagram of a low-loss composite plate installation device.
[0027] Figure 5 A partial cutaway view of a low-loss composite panel installation.
[0028] Figure 6 It is a partial structural exploded diagram of the low-loss composite plate installation device.
[0029] Figure 7It is a partial structural exploded diagram of the low-loss composite plate installation device.
[0030] Figure 8 It is a partial structural schematic diagram of a low-loss composite plate installation device. DETAILED DESCRIPTION
[0031] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.
[0032] In the following description, many specific details are set forth to facilitate a full understanding of the present invention, but the present invention may also be implemented in other ways different from those described herein, and those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0033] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The term "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive with other embodiments.
[0034] Example 1
[0035] Reference Figures 1 to 8 , which is the first embodiment of the present invention, provides a low-loss composite plate installation device, which can reduce mechanical damage to the composite plates by magnetically adsorbing the composite plates through a magnetic device.
[0036] Specifically, it includes a control unit 100, including a support component 101, a telescopic component 102 inserted in the support component 101, a fixed component 103 slidably connected to one side of the support component 101, and an adsorption component 104 sleeved in the fixed component 103;
[0037] The support component 101 is used to provide stability for the telescopic component 102 and the adsorption component 104; the telescopic component 102 is used to support the overlapping plate; the adsorption component 104 is used to fix the overlapping plate by magnetic force to ensure its precise positioning and stability during the installation process; the fixing component 103 is used to enhance the stability of the adsorption component 104.
[0038] Furthermore, the support assembly 101 includes a bracket 101a, a telescopic opening 101b penetrating through the upper end of the bracket 101a, and a first sliding groove 101c opened on the right side of the bracket 101a.
[0039] Furthermore, the telescopic assembly 102 includes a housing 102a, two groups of sliding bars 102b fixedly disposed inside the housing 102a, and a telescopic plate 102c disposed on the two groups of sliding bars 102b.
[0040] Furthermore, the telescopic plate 102c includes an anti-slip pad 102c-1 fixedly disposed on the upper surface of the telescopic plate 102c, and second sliding grooves 102c-2 symmetrically disposed at both ends of the telescopic plate 102c, and the second sliding grooves 102c-2 are slidably connected to the two sets of sliding bars 102b.
[0041] Furthermore, the fixing assembly 103 includes a sliding seat 103a slidably connected to the first sliding groove 101c, a magnetic seat 103b fixedly arranged on the sliding seat 103a, and a rubber pad 103c fixedly arranged on the magnetic seat 103b.
[0042] Furthermore, the adsorption component 104 includes a magnetic device 104a, a rotating shaft 104b connected to the magnetic device 104a, a rotating button 104c plugged into one end of the rotating shaft 104b, and a cover plate 104d sleeved on the rotating button 104c.
[0043] Furthermore, a circular hole 103b-1 is formed at one end of the magnetic base 103b away from the sliding base 103a, and the rotating shaft 104b passes through the circular hole 103b-1; the interior of the magnetic base 103b is configured as a hollow frame structure, and the magnetic attraction device 104a is fixedly disposed inside the magnetic base 103b.
[0044] It should be noted that the telescopic opening 101b is used to accommodate the telescopic component 102, and the first sliding groove 101c provides a sliding path for the fixed component 103. The upper surface of the telescopic plate 102c is provided with an anti-skid pad 102c-1, which is used to carry the composite plate and prevent it from sliding. The telescopic plate 102c is slidably connected to the sliding bar 102b through the second sliding groove 102c-2 to achieve the telescopic function. The rubber pad 103c provides additional buffering and anti-skid functions. The rotating button 104c is used to control the magnetic switch of the magnetic suction device 104a.
[0045] When in use, first, the superimposed plate is hoisted and placed on the telescopic plate 102c of the telescopic assembly 102, and is initially positioned and carried by the anti-slip pad 102c-1. Subsequently, the magnetic suction device 104a of the adsorption assembly 104 is activated, and the embedded metal components of the superimposed plate are adsorbed by magnetic force to firmly fix the superimposed plate. At this time, the telescopic assembly 102 contracts, so that the superimposed plate is completely fixed by the adsorption assembly 104, and space is provided for subsequent operations. The fixing assembly 103 provides stable support for the adsorption assembly 104 through the magnetic seat 103b and the rubber pad 103c.
[0046] In summary, the control unit 100 in the present invention realizes a series of operations such as bearing, adsorption, adjustment, lowering, placement and release of the composite plates through the coordinated work of various components, ensuring efficient and accurate installation of the composite plates, while reducing damage to the composite plates and improving construction efficiency and safety.
[0047] Example 2
[0048] Reference Figure 1 to Figure 5 , which is the second embodiment of the present invention, is different from the first embodiment in that it also includes a structural design in which a sleeve 204 rotates the connecting rod 203, so that the device can adapt to the installation of composite plates of different specifications and sizes, thereby greatly improving work efficiency.
[0049] Specifically, it includes a control unit 100, including a support component 101, a telescopic component 102 inserted in the support component 101, a fixed component 103 slidably connected to one side of the support component 101, and an adsorption component 104 sleeved in the fixed component 103;
[0050] The support component 101 is used to provide stability for the telescopic component 102 and the adsorption component 104; the telescopic component 102 is used to support the overlapping plate; the adsorption component 104 is used to fix the overlapping plate by magnetic force to ensure its precise positioning and stability during the installation process; the fixing component 103 is used to enhance the stability of the adsorption component 104.
[0051] Furthermore, it also includes a driving unit 200; the driving unit 200 includes a base 201 arranged at the bottom end of the bracket 101a, a motor 202 arranged above the base 201, a connecting rod 203 arranged on one side of the motor 202, and a sleeve 204 rotatably connected to one end of the connecting rod 203.
[0052] Furthermore, the driving units 200 and the control units 100 are respectively provided in four groups and distributed at four corners in a rectangular array.
[0053] When in use, the sleeve 204 is manually rotated to control the extension or contraction of the connecting rod 203, thereby adjusting the width and length between the four devices. This design enables the device to be adapted to the installation of laminated boards of different specifications and sizes. The rotation of the sleeve 204 is transmitted to the connecting rod 203 through a mechanical connection, thereby changing the overall size of the device to match laminated boards of different sizes.
[0054] Example 3
[0055] Reference Figures 1 to 8, which is the third embodiment of the present invention, provides a low-loss composite plate installation device, which can reduce damage to the composite plates through magnetic adsorption, thereby improving construction safety and quality; the structural design of the sleeve 204 rotating connecting rod 203 enables the device to adapt to the installation of composite plates of different specifications and sizes, thereby greatly improving work efficiency.
[0056] Specifically, it includes a control unit 100, including a support component 101, a telescopic component 102 inserted in the support component 101, a fixed component 103 slidably connected to one side of the support component 101, and an adsorption component 104 sleeved in the fixed component 103;
[0057] The support component 101 is used to provide stability for the telescopic component 102 and the adsorption component 104; the telescopic component 102 is used to support the overlapping plate; the adsorption component 104 is used to fix the overlapping plate by magnetic force to ensure its precise positioning and stability during the installation process; the fixing component 103 is used to enhance the stability of the adsorption component 104.
[0058] Furthermore, the support assembly 101 includes a bracket 101a, a telescopic opening 101b penetrating through the upper end of the bracket 101a, and a first sliding groove 101c opened on the right side of the bracket 101a.
[0059] Furthermore, the telescopic assembly 102 includes a housing 102a, two sets of sliding bars 102b fixedly disposed inside the housing 102a, and a telescopic plate 102c disposed on the two sets of sliding bars 102b.
[0060] Furthermore, the telescopic plate 102c includes an anti-slip pad 102c-1 fixedly disposed on the upper surface of the telescopic plate 102c, and second sliding grooves 102c-2 symmetrically disposed at both ends of the telescopic plate 102c, and the second sliding grooves 102c-2 are slidably connected to the two sets of sliding bars 102b.
[0061] Furthermore, the fixing assembly 103 includes a sliding seat 103a slidably connected to the first sliding groove 101c, a magnetic seat 103b fixedly arranged on the sliding seat 103a, and a rubber pad 103c fixedly arranged on the magnetic seat 103b.
[0062] Furthermore, the adsorption component 104 includes a magnetic device 104a, a rotating shaft 104b connected to the magnetic device 104a, a rotating button 104c plugged into one end of the rotating shaft 104b, and a cover plate 104d sleeved on the rotating button 104c.
[0063] Furthermore, a circular hole 103b-1 is formed at one end of the magnetic base 103b away from the sliding base 103a, and the rotating shaft 104b passes through the circular hole 103b-1; the interior of the magnetic base 103b is configured as a hollow frame structure, and the magnetic attraction device 104a is fixedly disposed inside the magnetic base 103b.
[0064] Furthermore, it also includes a driving unit 200; the driving unit 200 includes a base 201 arranged at the bottom end of the bracket 101a, a motor 202 arranged above the base 201, a connecting rod 203 arranged on one side of the motor 202, and a sleeve 204 rotatably connected to one end of the connecting rod 203.
[0065] Furthermore, the driving units 200 and the control units 100 are respectively provided in four groups and distributed at four corners in a rectangular array.
[0066] Preferably, a method for using a low-loss composite panel installation device comprises the following steps:
[0067] The sleeve 204 is rotated to adjust the length of the connecting rod 203 to adapt to composite plates of different specifications;
[0068] The stacked plate is hoisted onto the telescopic plate 102c of the telescopic assembly 102 for preliminary positioning;
[0069] The motor 202 is started to drive the telescopic component 102 to contract, and the magnetic attraction device 104a of the adsorption component 104 is started to adsorb the embedded metal components of the stacking plate by magnetic force to firmly fix the stacking plate;
[0070] The superimposed plate is smoothly lowered to the installation position by the driving unit 200, and the magnetic attraction device 104a is closed to release the superimposed plate to complete the installation.
[0071] When in use, first, the superimposed plate is placed on the telescopic plate 102c of the telescopic assembly 102 by the lifting equipment. The telescopic plate 102c provides friction through the anti-slip pad 102c-1 on its surface to prevent the superimposed plate from sliding during the placement process. At this time, the telescopic assembly 102 is in an extended state so that the superimposed plate can be placed on it stably. Subsequently, the magnetic suction device 104a of the adsorption assembly 104 is started, and the embedded metal components of the superimposed plate are adsorbed by magnetic force to firmly fix the superimposed plate. The magnetic suction device 104a is installed in the magnetic seat 103b, and the magnetic force is turned on and off by the rotating shaft 104b and the rotating button 104c. When the magnetic force is turned on, the superimposed plate is firmly adsorbed to ensure that it will not shift in subsequent operations. After the superimposed plate is firmly adsorbed, the motor 202 drives the telescopic assembly 102 to contract and provides power output for the entire device. The telescopic plate 102c is smoothly retracted backwards through the cooperation of the sliding bar 102b and the second sliding groove 102c-2, and the superimposed plate is completely handed over to the adsorption component 104 for fixing. This process not only releases the space of the telescopic plate 102c, but also facilitates the subsequent installation operation. The fixing component 103 provides stable support for the adsorption component 104 during the whole process. The sliding seat 103a slides in the first sliding groove 101c, thereby driving the adsorption component 104 to move downward in the first sliding groove 101c, and the superimposed plate is placed in the installation position. When the superimposed plate reaches the installation position, the rotating button 104c is turned to turn off the magnetic force, release the superimposed plate, and complete the installation. The hollow frame structure inside the magnetic seat 103b provides installation space for the magnetic suction device 104a, and the rubber pad 103c further enhances the stability of the adsorption component 104. By manually rotating the sleeve 204, the extension or shortening of the connecting rod 203 is controlled, thereby adjusting the width and length between the four devices. This design enables the device to be adapted to the installation of laminated boards of different sizes. The rotation of the sleeve 204 is transmitted to the connecting rod 203 through a mechanical connection, thereby changing the overall size of the device to match laminated boards of different sizes.
[0072] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A low-loss composite plate installation device, characterized in that: include, A control unit (100) comprises a support component (101), a telescopic component (102) inserted into the support component (101), a fixing component (103) slidably connected to one side of the support component (101), and an adsorption component (104) sleeved inside the fixing component (103); The support component (101) is used to provide stability for the telescopic component (102) and the adsorption component (104); the telescopic component (102) is used to support the stacking plate; the adsorption component (104) is used to fix the stacking plate by magnetic force to ensure its precise positioning and stability during installation; the fixing component (103) is used to enhance the stability of the adsorption component (104).
2. The low-loss composite plate installation device according to claim 1, characterized in that: The support assembly (101) comprises a bracket (101a), a telescopic opening (101b) penetrating the upper end of the bracket (101a), and a first sliding groove (101c) opened on the right side of the bracket (101a).
3. The low-loss composite plate installation device according to claim 2, characterized in that: The telescopic assembly (102) comprises a shell (102a), two groups of sliding bars (102b) fixedly arranged inside the shell (102a), and a telescopic plate (102c) arranged on the two groups of sliding bars (102b).
4. The low-loss composite plate installation device according to claim 3, characterized in that: The telescopic plate (102c) comprises an anti-slip pad (102c-1) fixedly arranged on the upper surface of the telescopic plate (102c), and second sliding grooves (102c-2) symmetrically arranged at both ends of the telescopic plate (102c), and the second sliding grooves (102c-2) are slidably connected to the two groups of sliding bars (102b).
5. The low-loss composite plate installation device according to claim 4, characterized in that: The fixing assembly (103) comprises a sliding seat (103a) slidably connected to the first sliding groove (101c), a magnetic seat (103b) fixedly arranged on the sliding seat (103a), and a rubber pad (103c) fixedly arranged on the magnetic seat (103b).
6. The low-loss composite plate installation device according to claim 5, characterized in that: The adsorption component (104) comprises a magnetic attraction device (104a), a rotating shaft (104b) arranged on the magnetic attraction device (104a), a rotating button (104c) inserted at one end of the rotating shaft (104b), and a cover plate (104d) sleeved on the rotating button (104c).
7. The low-loss composite plate installation device according to claim 6, characterized in that: A circular hole (103b-1) is provided at one end of the magnetic base (103b) away from the sliding base (103a), and the rotating shaft (104b) passes through the circular hole (103b-1); the interior of the magnetic base (103b) is configured as a hollow frame structure, and the magnetic attraction device (104a) is fixedly disposed inside the magnetic base (103b).
8. The low-loss composite plate installation device according to claim 7, characterized in that: It also includes a driving unit (200); the driving unit (200) includes a base (201) arranged at the bottom end of the bracket (101a), a motor (202) arranged above the base (201), a connecting rod (203) arranged at one side of the motor (202), and a sleeve (204) rotatably connected to one end of the connecting rod (203).
9. The low-loss composite plate installation device according to claim 8, characterized in that: The driving units (200) and the control units (100) are respectively provided in four groups and distributed at four corners in a rectangular array.
10. A method for using a low-loss composite panel installation device, characterized in that: The low-loss composite plate installation device according to any one of claims 8 to 9 is provided, and the method is as follows: The sleeve (204) is rotated to adjust the length of the connecting rod (203) to adapt to laminated plates of different specifications; The stacked plate is hoisted onto the telescopic plate (102c) of the telescopic assembly (102) for preliminary positioning; The motor (202) is started to drive the telescopic component (102) to contract, and the magnetic attraction device (104a) of the adsorption component (104) is started to adsorb the embedded metal components of the stacking plate by magnetic force to firmly fix the stacking plate; The superimposed plate is smoothly lowered to the installation position by the driving unit (200), and the magnetic attraction device (104a) is closed to release the superimposed plate, thereby completing the installation.
Citation Information
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