Fabricated aluminum veneer anti-deformation splicing supporting device

Through the magnetic coupling guide components and energy recovery closed-loop enhancement components, the deformation problem of aluminum veneer under temperature changes and wind force is solved, seamless splicing and energy recovery are achieved, and the installation efficiency and structural stability are improved.

CN120649682AActive Publication Date: 2025-09-16XIAMEN SHINEJOY HOUSING IND CO LTD
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Patent Information

Application Number
CN202511164776.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2025-09-16
Estimated Expiration
2045-08-20

AI Technical Summary

Technical Problem

The existing prefabricated aluminum veneer anti-deformation splicing support device is prone to thermal stress under temperature changes, resulting in warping and joint misalignment. It also has low installation efficiency, is easily affected by wind, has insufficient connection strength, and causes serious energy waste.

Method used

It adopts magnetic coupling guide components and energy recovery closed-loop enhancement components, and utilizes low-friction Teflon-coated slide rails and permanent magnet arrays to achieve automatic alignment and tight fitting of aluminum panels, and convert mechanical energy into electrical energy.

Benefits of technology

It achieves seamless splicing and wind-resistant aluminum panels, enhances structural stability and safety, improves energy efficiency, and simplifies the installation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an assembly type aluminum veneer anti-deformation splicing supporting device, and relates to the technical field of building decoration material installation, a magnetic attraction coupling guide assembly is adopted, a Teflon coating longitudinal sliding rail with a low friction coefficient is utilized, aluminum veneers can freely stretch out and draw back in the direction of the sliding rail when the temperature changes, no mechanical constraint exists, and the thermal expansion and cold contraction behaviors of the aluminum veneers are hindered; the edge permanent magnet array generates strong attraction force, so that the adjacent aluminum veneers are automatically aligned and tightly attached to form a visual seamless effect during splicing, the magnets are arranged in the pluggable clamping box, rapid locking is achieved through the elastic clamping pins, the installation process can be simplified, later replacement or maintenance can be facilitated, and the production efficiency is improved. And non-contact auxiliary positioning and wind uplift resistance are achieved through strong magnetic attraction force, the thermal deformation direction can be accurately guided by combining the guiding sliding rail with the low friction coefficient, constraint stress caused by mechanical connection can be thoroughly eliminated, and the magnetic attraction force can provide the splicing alignment capacity.
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Description

Technical Field

[0001] The invention relates to the technical field of building decoration material installation, in particular to an assembled aluminum single plate anti-deformation splicing support device. Background Art

[0002] A set of assembled aluminum veneer anti-deformation splicing support devices is a support system designed specifically for aluminum veneers during processing or installation. Its core function is to prevent the aluminum veneer from deforming due to force or thermal effects, thereby ensuring splicing accuracy and flatness.

[0003] However, the existing assembled aluminum veneer anti-deformation splicing support device has the following shortcomings: The traditional mechanical connection method can limit the free expansion or contraction of the aluminum veneer under temperature changes, thereby causing significant thermal stress inside. The long-term accumulated thermal stress will cause the aluminum veneer to warp, the joints to be misaligned, and cause fatigue damage to the keel structure. At the same time, heavy reliance on manual alignment during installation will lead to low construction efficiency. Manual splicing is time-consuming and labor-intensive. Under the influence of external forces such as strong winds, the splicing parts may shift, which can further expand the gap and affect the overall appearance of the building. The occurrence of problems such as loose bolts and weld fatigue will weaken the connection strength between the plate and the supporting structure. In addition, the kinetic energy generated by the wind-induced vibration of the slide rail will be wasted and cannot be converted into usable electrical energy, resulting in the thermal deformation movement that could have been utilized becoming a burden, and instead increasing the risk of structural stress accumulation and splicing failure.

[0004] Therefore, we propose an assembled aluminum veneer anti-deformation splicing support device to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide an assembled aluminum veneer anti-deformation splicing support device, a magnetic coupling guide component, and a low-friction Teflon-coated longitudinal slide rail. The aluminum veneer can freely expand and contract along the slide rail when the temperature changes, without any mechanical constraints hindering its thermal expansion and contraction behavior. The edge permanent magnet array generates a strong attraction, so that adjacent aluminum veneers are automatically aligned and tightly fitted when spliced.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: an assembled aluminum veneer anti-deformation splicing support device, comprising two supporting gantries, two sets of magnetic coupling guide components and two sets of energy recovery closed-loop reinforcement components; Two groups of magnetic coupling guide assemblies are symmetrically arranged between the inner surface walls of the two support gantries, two groups of energy recovery closed-loop enhancement assemblies are arranged on the side walls of the two support gantries, and the energy recovery closed-loop enhancement assemblies are located on one side of the outer wall of the magnetic coupling guide assembly; comprising two support gantries, two groups of magnetic coupling guide assemblies are symmetrically arranged up and down between the inner surface walls of the two support gantries, two groups of energy recovery closed-loop enhancement assemblies are arranged on one side of the outer wall of the two support gantries, and the energy recovery closed-loop enhancement assembly is arranged on one side of the outer wall of the magnetic coupling guide assembly; The magnetic coupling guide assembly includes a group of permanent magnets and an aluminum plate. The group of permanent magnets is used to generate a strong attraction. Sliders are fixedly connected to both sides of the outer wall of the aluminum plate. The outer surfaces of the two slides are slidably connected to slide rails. The surfaces of the two slide rails are coated with Teflon coating. The energy recovery closed-loop enhancement component includes a group of piezoelectric ceramics, a group of copper coils, and a group of neodymium iron boron magnets. The group of piezoelectric ceramics is used to convert mechanical energy into electrical energy, the group of copper coils is used to generate induced electromotive force, and the group of neodymium iron boron magnets is used to provide a high-intensity constant magnetic field.

[0007] Preferably, one side of the outer wall of the two supporting gantries is connected by bolts with a fixed frame, and the two supporting gantries are placed symmetrically.

[0008] Preferably, the magnetic coupling guide assembly further comprises an aluminum plate, a slot is provided inside the aluminum plate, holes are provided on both sides of the inner wall of the slot, and a cartridge is movably inserted between the inner surface walls of the slot.

[0009] Preferably, grooves are formed on both sides of the outer wall of the cassette, the inner walls of the two grooves are elastically connected to two first springs, and one side of the outer walls of the two first springs are elastically connected to a support plate.

[0010] Preferably, one side of the outer wall of each of the two support plates is fixedly connected with a pin, and the two pins pass through a corresponding hole and extend to the outside of the aluminum plate, and the two pins are used to provide locking force, the inner wall of the cassette is connected to the outer wall of a group of permanent magnets, and one side of the outer wall of a group of permanent magnets is fixedly connected with a group of low thermal conductivity ceramics, and the group of low thermal conductivity ceramics is used to block the thermal bridge effect.

[0011] Preferably, the upper and lower ends of the two sliding rails are bolted to fixing parts, one side of the outer wall of the four fixing parts is elastically connected to a group of second springs, one side of the outer wall of the four groups of second springs is elastically connected to a connecting plate, the outer walls of the four connecting plates are covered with silicone sleeves, and the four silicone sleeves are used to provide elastic buffering, and the outer walls of the two sliding rails are bolted to the inner walls of the two supporting gantries.

[0012] Preferably, the energy recovery closed-loop enhancement component also includes a group of electromagnetic compensation coils, capacitors, a power distribution module, and a gap sensor. A group of the electromagnetic compensation coils is installed on one side of the outer wall of a group of low thermal conductivity ceramics, and one side of the outer wall of a group of low thermal conductivity ceramics is connected to one side of the inner wall of the cassette. A group of electromagnetic compensation coils is used to enhance the attraction of a group of permanent magnets, the capacitor is used to store electrical energy, and the power distribution module is used to control the direction of electrical energy.

[0013] Preferably, both sides of the outer walls of a group of the piezoelectric ceramics are respectively connected to a supporting gantry and an outer wall of the fixed frame.

[0014] Preferably, one side of the outer wall of a group of the copper coils is connected to one side of the inner wall of a slide rail, and one side of the outer wall of a group of the NdFeB magnets is connected to one side of the outer wall of a slider.

[0015] Preferably, the outer wall side of the capacitor and the power distribution module is connected to the inner wall side of a slide rail, the gap sensor is used to monitor the splicing status, and the outer wall side of the gap sensor is connected to the inner wall side of a slide rail.

[0016] Compared with the prior art, the present invention has the following beneficial effects: 1. In the present invention, by setting a magnetic coupling guide component and utilizing a low-friction Teflon-coated longitudinal slide rail, the aluminum veneer can freely expand and contract along the slide rail when the temperature changes, without any mechanical constraints hindering its thermal expansion and contraction behavior. The edge permanent magnet array generates a strong attractive force, so that adjacent aluminum veneers are automatically aligned and tightly fitted when spliced, forming a visually seamless effect. The magnets are installed in a pluggable cartridge and quickly locked by an elastic latch, which can simplify the installation process and facilitate later replacement or maintenance. In addition, strong magnetic attraction is used to achieve non-contact auxiliary positioning and wind resistance. By combining a low-friction guide rail, the direction of thermal deformation can be accurately guided, and the constraint stress caused by mechanical connection can be completely eliminated. This magnetic attraction not only provides splicing alignment capability, but also gives the plate sufficient wind resistance and the ability to resist lateral displacement, thereby enhancing the stability and safety of the overall structure.

[0017] 2. In the present invention, by setting up an energy recovery closed-loop enhancement component, mechanical energy that was originally wasted, such as wind blowing and vibration, can be converted into electrical energy, providing basic power supply for electronic components such as sensors and electromagnetic compensation coils. When the sliding movement of the aluminum single plate due to thermal deformation or wind action can be converted into electrical energy, the scope of recyclable energy is expanded. At the same time, energy consumption is reduced through the energy recovery component, and the overall energy efficiency of the building is improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a three-dimensional diagram of the main structure of an assembled aluminum single plate anti-deformation splicing support device of the present invention; Figure 2 This is a bottom-up structural perspective diagram of an assembled aluminum single panel anti-deformation splicing support device of the present invention; Figure 3 This is a partial cross-sectional structural perspective diagram of an assembled aluminum single plate anti-deformation splicing support device of the present invention; Figure 4 This is an exploded view of the positional relationship between the magnetic coupling guide component and the energy recovery closed-loop reinforcement component in an assembled aluminum single panel anti-deformation splicing support device of the present invention; Figure 5 This is an exploded view of the structure of a magnetic coupling guide component in an assembled aluminum single panel anti-deformation splicing support device of the present invention; Figure 6 This invention is an assembled aluminum veneer anti-deformation splicing support device Figure 5 A magnified view of the structure A; Figure 7 This invention is an assembled aluminum veneer anti-deformation splicing support device Figure 5 A magnified view of the structure B in FIG; Figure 8 This is an exploded view of the energy recovery closed-loop reinforcement component structure in an assembled aluminum single panel anti-deformation splicing support device of the present invention; Figure 9 This is a schematic diagram of the installation position structure of the capacitor and the power distribution module in an assembled aluminum single plate anti-deformation splicing support device of the present invention; Figure 10 This is a schematic diagram of the installation position structure of the copper coil and the electromagnetic compensation coil in an assembled aluminum single plate anti-deformation splicing support device of the present invention; Figure 11 This is a schematic diagram of the installation position structure of a gap sensor in an assembled aluminum single panel anti-deformation splicing support device of the present invention.

[0019] In the figure: 100, supporting gantry; 200, fixing frame; 300, magnetic coupling guide assembly; 301, aluminum veneer; 302, slot; 303, cassette; 304, groove; 305, first spring; 306, supporting plate; 307, latch; 308, permanent magnet; 309, low thermal conductivity ceramic; 310, slider; 311, slide rail; 312, fixing part; 313, second spring; 314, connecting plate; 315, silicone sleeve; 400, energy recovery closed-loop enhancement assembly; 401, piezoelectric ceramic; 402, copper coil; 403, NdFeB magnet; 404, electromagnetic compensation coil; 405, capacitor; 406, power distribution module; 407, gap sensor. DETAILED DESCRIPTION

[0020] 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 implementation regulations described are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0021] In the embodiments of the present invention, please refer to the attached Figure 1 -Attached Figure 3 As shown, the present invention provides a technical solution: an assembled aluminum single plate anti-deformation splicing support device, comprising two supporting gantries 100, two sets of magnetic coupling guide components 300 and two sets of energy recovery closed-loop reinforcement components 400; Two groups of magnetic coupling guide assemblies 300 are symmetrically arranged between the inner walls of the two supporting gantries 100. Two groups of magnetic coupling guide assemblies 300 are symmetrically arranged between the inner walls of the two supporting gantries 100. The two groups of magnetic coupling guide assemblies 300 symmetrically fitted together by magnetic attraction. Two groups of energy recovery closed-loop enhancement assemblies 400 are arranged on the side walls of the two supporting gantries 100. Two groups of energy recovery closed-loop enhancement assemblies 400 are arranged on one side of the outer wall of the two supporting gantries 100, and the energy recovery closed-loop enhancement assembly 400 is located on one side of the outer wall of the magnetic coupling guide assembly 300. The energy recovery closed-loop enhancement assembly 400 is arranged on one side of the outer wall of the magnetic coupling guide assembly 300. The energy recovery closed-loop enhancement assembly 400 can collect the mechanical energy generated by the magnetic coupling guide assembly 300 during the application process and convert it into electrical energy for energy recovery and targeted use.

[0022] Specifically: first determine the specific installation positions of the two supporting gantries 100, then connect the two supporting gantries 100 and the fixed frame 200 to form a complete supporting structure. This complete supporting structure can provide effective support for the magnetic coupling guide component 300 and the energy recovery closed-loop enhancement component 400. During use, the aluminum single plate 301 will expand or contract freely under temperature changes, resulting in significant thermal stress inside. The long-term accumulation of thermal stress will cause the aluminum single plate 301 to warp, the joints to be misaligned, and cause fatigue damage to the keel structure. At this time, the magnetic coupling guide component 300 plays a role. First, the aluminum single plate 301 can freely expand and contract along the slide rail 311 when the temperature changes, without any mechanical constraints hindering its thermal expansion and contraction behavior. The permanent magnet 308 array on one side can generate a strong attraction, so that the adjacent aluminum single plates 301 are automatically aligned and tightly fitted when spliced, thereby completely eliminating the constraint stress caused by mechanical connection. At the same time, the energy recovery closed-loop enhancement component 400 converts the originally wasted mechanical energy such as wind and vibration to which the aluminum single plate 301 is subjected during use into electrical energy, providing basic power supply for electronic components such as the gap sensor 407 and the electromagnetic compensation coil 404, thereby forming a complete energy recovery closed loop.

[0023] In some embodiments, according to Figure 1-Figure 7 As shown, the magnetic coupling guide assembly 300 includes a group of permanent magnets 308 and an aluminum plate 301. The group of permanent magnets 308 is used to generate strong attraction. Sliders 310 are fixedly connected on both sides of the outer wall of the aluminum plate 301. The outer surfaces of the two sliders 310 are slidably connected to slide rails 311. The surfaces of the two slide rails 311 are coated with Teflon coating.

[0024] The magnetic coupling guide assembly 300 further includes an aluminum plate 301 , wherein a slot 302 is provided inside the aluminum plate 301 , holes are provided on both sides of the inner wall of the slot 302 , and a cartridge 303 is movably inserted between the inner walls of the slot 302 .

[0025] Grooves 304 are formed on both sides of the outer wall of the cartridge 303 . The inner walls of the two grooves 304 are elastically connected to two first springs 305 . One side of the outer walls of the two first springs 305 are elastically connected to a support plate 306 .

[0026] One side of the outer wall of each of the two support plates 306 is fixedly connected with a pin 307, and the two pins 307 pass through a corresponding hole and extend to the outside of the aluminum single plate 301, and the two pins 307 are used to provide locking force. The inner wall of the cassette 303 is connected to the outer wall of a group of permanent magnets 308, and one side of the outer wall of a group of permanent magnets 308 is fixedly connected with a group of low thermal conductivity ceramics 309, and the group of low thermal conductivity ceramics 309 is used to block the thermal bridge effect.

[0027] The upper and lower ends of the two sliding rails 311 are bolted to fixed parts 312, and one side of the outer wall of the four fixing parts 312 is elastically connected to a group of second springs 313, and one side of the outer wall of the four groups of second springs 313 is elastically connected to a connecting plate 314. The outer walls of the four connecting plates 314 are covered with silicone sleeves 315, and the four silicone sleeves 315 are used to provide elastic buffering. The outer walls of the two sliding rails 311 are bolted to the inner walls of the two supporting gantries 100.

[0028] The effect achieved by the entire embodiment is as follows: through the above components, a complete magnetic coupling guide component 300 is formed, first the aluminum single plate 301 is pre-processed, and holes of specific size and position are opened on both sides of the inner wall of the aluminum single plate 301 according to the design requirements, and these holes are used for the subsequent installation and locking of the cassette 303, and then the permanent magnet 308 array is installed in the customized cassette 303, and grooves 304 are opened on both sides of the outer wall of the cassette 303, and two first springs 305 are elastically connected to the inner surface wall of the groove 304, and then the outer wall side of the two first springs 305 are elastically connected to the support plate 306, and the outer wall side of the two support plates 306 are fixedly connected to the latch 307, and the cassette 303 equipped with the permanent magnet 308 array is inserted After the cassette 303 is inserted into the hole pre-opened at the edge of the aluminum single plate 301, the elastic latches 307 on both sides thereof will pop out from the hole and tightly clamp the aluminum single plate 301, thereby realizing the stable locking of the cassette 303 inside the aluminum single plate 301. By rationally designing the magnetic pole distribution and arrangement of the permanent magnet 308 array, the edges of the two adjacent aluminum single plates 301 can generate a magnetic force that attracts each other after installation. Secondly, a low thermal conductivity ceramic 309 interlayer is installed between the permanent magnet 308 and the aluminum single plate 301. This low thermal conductivity ceramic 309 can effectively block the thermal bridge effect, preventing the aluminum single plate 301 from transferring heat to the permanent magnet 308 due to changes in ambient temperature during use, thereby avoiding the demagnetization of the permanent magnet 308 due to temperature influence, ensuring The long-term stability of the performance of the permanent magnet 308 is achieved by installing a slide rail 311 coated with Teflon coating on the supporting gantry 100. By utilizing the extremely low friction coefficient of Teflon coating, the friction force suffered by the aluminum single plate 301 when sliding on the slide rail 311 can be greatly reduced. At the same time, a slider 310 matching the slide rail 311 is installed on one side of the aluminum single plate 301. The slider 310 is firmly connected to the aluminum single plate 301, so that the aluminum single plate 301 can be quickly installed on the slide rail 311 through the slider 310. On the one hand, when adjacent aluminum single plates 301 are spliced, the permanent magnet 308 array inside the aluminum single plate 301 can generate a magnetic force of mutual attraction. The two aluminum single plates 301 will automatically be pulled together under the action of the magnetic attraction force. During the installation process, the slider 310 at the bottom of the aluminum single plate 301 slides along the slide rail 311 on the supporting gantry 100, and the slide rail 311 is used to accurately guide the moving direction of the aluminum single plate 301, so that the two aluminum single plates 301 can be accurately aligned. As the magnetic attraction force continues to pull the aluminum single plates 301 closer, a visually seamless splicing effect is achieved. The mutual attraction of the permanent magnets 308 can make the aluminum single plates 301 fit tightly together, and provide sufficient wind resistance, which can effectively resist the upward force of the external wind on the aluminum single plate 301 and fully prevent the aluminum single plate 301 from being lifted by the wind, thereby ensuring that the aluminum single plate 301 will not undergo obvious lateral movement under the action of lateral wind or other external forces. When the aluminum single plate 301 is installed,In the subsequent use of the aluminum veneer 301, changes in ambient temperature will cause the aluminum veneer 301 to expand and contract with heat. When the temperature rises, the aluminum veneer 301 will expand and become longer, and when the temperature drops, the aluminum veneer 301 will shrink and become shorter. Because the aluminum veneer 301 is installed on the slide rail 311 through the slider 310, the slider 310 can cause the aluminum veneer 301 to slide freely along the limited direction of the slide rail 311. There is no mechanical constraint to hinder the expansion and contraction of the aluminum veneer 301 during the entire process. During the expansion and contraction of the aluminum veneer 301, the distance between the aluminum veneer 301 will change with the thermal deformation. The magnetic attraction generated by the permanent magnet 308 array always maintains the close fit between the two aluminum veneer panels 301. The magnetic attraction will not prevent the sliding of the aluminum veneer panels 301, but will continue to play a role during the sliding process of the aluminum veneer 301, ensuring that there will be no gaps between the aluminum veneer panels 301 due to thermal deformation, and no gaps will be formed due to thermal deformation. In order to generate internal stress by mutual extrusion, a distance sensor is installed inside the slider 310. The distance sensor will monitor the displacement of the aluminum single plate 301 in real time. At the same time, the RFID chip inside the slider 310 can promptly detect whether the slider 310 is stuck. An elastic buffer limit assembly composed of a fixing part 312, a second spring 313, a connecting plate 314, and a silicone sleeve 315 is arranged at the end of the slide rail 311. When the aluminum single plate 301 slides beyond the normal range on the slide rail 311 due to extreme conditions, such as encountering special external forces such as super strong winds and strong earthquakes, the elastic buffer limit block can play a blocking and buffering role. The elastic material of the elastic buffer limit block can absorb the impact force caused by the sliding of the aluminum single plate 301, avoiding damage caused by rigid collision between the aluminum single plate 301 and the end of the slide rail 311, and effectively preventing the aluminum single plate 301 from derailing from the slide rail 311 under extreme conditions.

[0029] The magnetic coupling guide assembly 300 is set up, and the longitudinal slide rail 311 with a low friction coefficient of Teflon coating is utilized. The aluminum single plate 301 can freely expand and contract along the slide rail 311 when the temperature changes, without any mechanical constraints hindering its thermal expansion and contraction behavior. The edge permanent magnet 308 array generates a strong attraction, so that the adjacent aluminum single plates 301 are automatically aligned and tightly fitted when spliced, forming a visually seamless effect. The magnets are installed in the pluggable card box 303 and quickly locked by the elastic pin 307, which can simplify the installation process and facilitate later replacement or maintenance. In addition, strong magnetic attraction is used to achieve non-contact auxiliary positioning and wind resistance. By combining the guide slide rail 311 with a low friction coefficient, the direction of thermal deformation can be accurately guided, and the constraint stress caused by mechanical connection can be completely eliminated. This magnetic attraction not only provides splicing alignment capability, but also gives the plate sufficient wind resistance and the ability to resist lateral displacement, thereby enhancing the stability and safety of the overall structure.

[0030] according to Figure 3 as well as Figures 8-11 As shown, the energy recovery closed-loop enhancement component 400 includes a group of piezoelectric ceramics 401, a group of copper coils 402, and a group of neodymium iron boron magnets 403. The group of piezoelectric ceramics 401 is used to convert mechanical energy into electrical energy, the group of copper coils 402 is used to generate induced electromotive force, and the group of neodymium iron boron magnets 403 is used to provide a high-intensity constant magnetic field.

[0031] The energy recovery closed-loop enhancement component 400 also includes a set of electromagnetic compensation coils 404, a capacitor 405, a distribution module 406, and a gap sensor 407. The set of electromagnetic compensation coils 404 is installed on one side of the outer wall of a set of low thermal conductivity ceramics 309, and the outer wall of a set of low thermal conductivity ceramics 309 is connected to the inner wall of the cartridge 303. The set of electromagnetic compensation coils 404 is used to enhance the attraction of a set of permanent magnets 308. The capacitor 405 is used to store electrical energy, and the distribution module 406 is used to control the direction of electrical energy.

[0032] Both sides of the outer wall of a group of piezoelectric ceramics 401 are connected to the outer walls of a supporting gantry 100 and a fixed frame 200 respectively.

[0033] One side of the outer wall of a group of copper coils 402 is connected to one side of the inner wall of a slide rail 311 , and one side of the outer wall of a group of NdFeB magnets 403 is connected to one side of the outer wall of a slider 310 .

[0034] The outer wall of the capacitor 405 and the power distribution module 406 is connected to the inner wall of a slide rail 311 . The gap sensor 407 is used to monitor the splicing status, and the outer wall of the gap sensor 407 is connected to the inner wall of a slide rail 311 .

[0035] The effect achieved by the entire embodiment is as follows: through the above components, a complete energy recovery closed-loop enhancement component 400 is formed. During the use of the aluminum single plate 301, due to external environmental factors such as wind blowing, the shaking of the building itself, etc., the slide rail 311 will vibrate. This vibration can be transmitted to the supporting gantry 100 and the fixed frame 200 through the slide rail 311. At this time, the piezoelectric ceramic 401 located between the supporting gantry 100 and the fixed frame 200 can convert the vibration energy generated by the slide rail 311 into electrical energy based on the piezoelectric effect. When the slide rail 311 vibrates, it will drive the supporting gantry 100 to vibrate synchronously. At this time, the piezoelectric ceramic 401 is subjected to mechanical stress, and its internal polarization state changes, thereby generating equal amounts of different polarization on the two surfaces of the ceramic layer. The electric charge of the copper coil 402 forms an electric potential difference, thereby realizing the conversion of mechanical energy into electrical energy and providing initial electrical energy input for the system. The copper coil 402 and the NdFeB magnet 403 form a linear generator. When the ambient temperature changes and causes the aluminum single plate 301 to expand and contract, or under the action of external forces such as wind, the aluminum single plate 301 drives the slider 310 to slide on the slide rail 311, and the NdFeB magnet 403 on one side of the slider 310 shuttles in the slide rail 311 equipped with the copper coil 402. According to the principle of electromagnetic induction, the movement of the magnetic ring cuts the magnetic flux lines of the copper coil 402, so that an induced electromotive force is generated in the copper coil 402, and then electrical energy is generated. The electrical energy generated by the piezoelectric ceramic 401 and the linear generator will be transmitted to the supercapacitor 405 installed on one side of the slide rail 311. , taking advantage of the high power density and fast charging and discharging characteristics of the supercapacitor 405, it can quickly absorb the excess electrical energy generated by the power generation components and store it. When the system power generation power is greater than the power consumption, the supercapacitor 405 will continue to charge to ensure that the electrical energy will not be wasted. The gap sensor 407 installed on one side of the slide rail 311 and aimed at the joint gap of the two aluminum veneers 301 will monitor the width changes of the joint gap in real time. When the ambient temperature changes drastically or encounters strong winds, the deformation of the aluminum veneer 301 will cause the joint gap to become abnormal. At this time, the gap sensor 407 can detect this abnormality in real time and immediately send a signal to the distribution module 406. At this time, the distribution module 406 receives signals from the gap sensor 407 and the signal installed on the permanent magnet. The information fed back by the Hall sensor inside the body 308 will be used to conduct a comprehensive analysis and decision-making on the system status. When an abnormal splicing gap is detected, the power distribution module 406 determines that it is necessary to enhance the attraction of the magnetic module to pull the aluminum single plate 301 closer and reduce the gap. When the Hall sensor detects that the magnetic attraction force is insufficient, it also triggers the instruction to enhance the magnetic force. At this time, the power distribution module 406 is a power controller. When the power distribution module 406 receives a signal, the power distribution module 406 will call the stored electrical energy from the supercapacitor 405 and transmit the electrical energy to the electromagnetic compensation coil 404 installed at one end of the magnetic module through a wire. When the electromagnetic compensation coil 404 is energized, it will generate an additional magnetic field, which can cause the magnetic field to be superimposed on the magnetic field generated by the permanent magnet 308 in the magnetic module.The magnetic attraction module strengthens the attraction of adjacent aluminum panels 301. Under the enhanced magnetic attraction, adjacent aluminum panels 301 are further pulled together, and the splicing gap gradually returns to the normal range. At the same time, the magnetic attraction is kept stable at an appropriate level, effectively responding to the impact of environmental changes. It can also provide power to the RFID chip and strain sensor inside the slider 310, thereby achieving closed-loop enhancement of the system.

[0036] By setting up the energy recovery closed-loop enhancement component 400, mechanical energy that would otherwise be wasted, such as wind and vibration, can be converted into electrical energy, providing basic power supply for electronic components such as the gap sensor 407, the electromagnetic compensation coil 404, and the RFID chip. When the sliding movement of the aluminum single plate 301 due to thermal deformation or wind action can be converted into electrical energy, the scope of recyclable energy is expanded. At the same time, energy consumption is reduced through the energy recovery component, and the overall energy efficiency of the building is improved.

[0037] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An assembled aluminum veneer anti-deformation splicing support device, characterized by: It comprises two supporting gantries (100), two sets of magnetic coupling guide components (300) and two sets of energy recovery closed-loop enhancement components (400); Two groups of magnetic coupling guide assemblies (300) are symmetrically arranged between the inner surface walls of the two supporting gantries (100), and two groups of energy recovery closed-loop enhancement assemblies (400) are arranged on the side walls of the two supporting gantries (100), and the energy recovery closed-loop enhancement assembly (400) is located on one side of the outer wall of the magnetic coupling guide assembly (300); The invention comprises two supporting gantries (100), characterized in that: two groups of magnetic coupling guide assemblies (300) are symmetrically arranged between the inner surface walls of the two supporting gantries (100), the two groups of energy recovery closed-loop enhancement assemblies (400) are arranged on the side walls of the two supporting gantries (100), and the energy recovery closed-loop enhancement assembly (400) is arranged on one side of the outer wall of the magnetic coupling guide assembly (300); The magnetic coupling guide assembly (300) comprises a group of permanent magnets (308) and an aluminum single plate (301), wherein the group of permanent magnets (308) is used to generate a strong attraction force, and sliders (310) are fixedly connected to both sides of the outer wall of the aluminum single plate (301), and the outer surfaces of the two sliders (310) are slidably connected to slide rails (311), and the surfaces of the two slide rails (311) are coated with a Teflon coating; The energy recovery closed-loop enhancement component (400) comprises a group of piezoelectric ceramics (401), a group of copper coils (402), and a group of neodymium iron boron magnets (403). The group of piezoelectric ceramics (401) is used to convert mechanical energy into electrical energy, the group of copper coils (402) is used to generate induced electromotive force, and the group of neodymium iron boron magnets (403) is used to provide a high-intensity constant magnetic field.

2. The assembled aluminum veneer anti-deformation splicing support device according to claim 1 is characterized in that: One side of the outer wall of the two supporting gantries (100) is bolted to a fixing frame (200), and the two supporting gantries (100) are symmetrically placed.

3. The assembled aluminum veneer anti-deformation splicing support device according to claim 1 is characterized in that: A slot (302) is provided inside the aluminum single plate (301), holes are provided on both sides of the inner wall of the slot (302), and a cassette (303) is movably inserted between the inner surface walls of the slot (302).

4. The assembled aluminum veneer anti-deformation splicing support device according to claim 3 is characterized in that: Grooves (304) are provided on both sides of the outer wall of the cartridge (303), the inner walls of the two grooves (304) are elastically connected to two first springs (305), and one side of the outer wall of the two first springs (305) is elastically connected to a support plate (306).

5. The assembled aluminum veneer anti-deformation splicing support device according to claim 4 is characterized in that: One side of the outer wall of each of the two support plates (306) is fixedly connected with a latch (307), and the two latches (307) pass through a corresponding hole and extend to the outside of the aluminum single plate (301), and the two latches (307) are used to provide a locking force, the inner surface wall of the cassette (303) is connected to the outer surface wall of a group of permanent magnets (308), and one side of the outer wall of the group of permanent magnets (308) is fixedly connected with a group of low thermal conductivity ceramics (309), and the group of low thermal conductivity ceramics (309) is used to block the thermal bridge effect.

6. The assembled aluminum veneer anti-deformation splicing support device according to claim 1 is characterized in that: The upper and lower ends of the two slide rails (311) are bolted to fixing members (312), one side of the outer wall of the four fixing members (312) is elastically connected to a group of second springs (313), the bottoms of the four groups of second springs (313) are elastically connected to connecting plates (314), the outer walls of the four connecting plates (314) are covered with silicone sleeves (315), and the four silicone sleeves (315) are used to provide elastic buffering, and the outer walls of the two slide rails (311) are bolted to the inner walls of the two supporting gantries (100).

7. The assembled aluminum veneer anti-deformation splicing support device according to claim 1 is characterized in that: The energy recovery closed-loop enhancement component (400) further includes a group of electromagnetic compensation coils (404), a capacitor (405), a power distribution module (406), and a gap sensor (407). A group of the electromagnetic compensation coils (404) is installed on one side of the outer wall of a group of low thermal conductivity ceramics (309), a group of the low thermal conductivity ceramics (309) is connected to one side of the inner wall of the cartridge (303) close to the electromagnetic compensation coils (404), and a group of the electromagnetic compensation coils (404) is used to enhance the attraction of a group of permanent magnets (308). The capacitor (405) is used to store electrical energy, and the power distribution module (406) is used to control the direction of electrical energy.

8. The assembled aluminum veneer anti-deformation splicing support device according to claim 1 is characterized in that: Both sides of the outer walls of a group of piezoelectric ceramics (401) are respectively connected to a supporting gantry (100) and an outer wall of a fixed frame (200).

9. The assembled aluminum veneer anti-deformation splicing support device according to claim 1, characterized in that: One side of the outer wall of a group of the copper coils (402) is connected to one side of the inner wall of a slide rail (311), and one side of the outer wall of a group of the NdFeB magnets (403) is connected to one side of the outer wall of a slider (310).

10. The assembled aluminum veneer anti-deformation splicing support device according to claim 7, characterized in that: The outer wall side of the capacitor (405) and the power distribution module (406) is connected to the inner wall side of a slide rail (311), and the gap sensor (407) is used to monitor the splicing state, and the outer wall side of the gap sensor (407) is connected to the inner wall side of a slide rail (311).

Citation Information

Patent Citations

  • Movable support system for an energy recovery device

    CN101970950A

  • Electromagnetic-friction composite power generation floor based on sliding rail rotation

    CN213684412U

  • Partition wall

    DE9218938U1

  • friction locking device for sliding members

    FR1289544A

  • Movable energy recovery device e.g. solar water heater, support system for e.g. inclined roof of building, has panel supporting device and opened towards bottom in manner to permit operator to access to device through interior of building

    FR2912443A1