Insulated decorative aluminum panels
By connecting the drive components and the support rods in the connection structure, a tight connection of the aluminum plates is achieved, which solves the heat transfer problem caused by the installation deviation between the aluminum plates and the insulation boards, improves the heat insulation effect and simplifies the installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI PENGCHUANG ALUMINUM CO LTD
- Filing Date
- 2025-04-08
- Publication Date
- 2026-07-17
Smart Images

Figure CN224514625U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of thermal insulation and decorative aluminum panels, and in particular to a thermal insulation and decorative aluminum panel. Background Technology
[0002] Aluminum sheet is a type of aluminum material. It refers to aluminum products made by rolling, extruding, stretching and forging aluminum billets using plastic processing methods. Aluminum sheets are widely used in various industries, with the most common application being as building exterior walls.
[0003] As a metal material, aluminum panels are typically exposed outdoors to direct sunlight from solar tubes. Heat can easily be conducted through the aluminum panels to the interior of the building's exterior walls, causing indoor temperatures to rise. Therefore, a heat insulation board is installed between the aluminum panels and the curtain wall to block heat transfer into the interior of the wall. However, during installation, there may be some misalignment between the aluminum panels and the heat insulation board, creating gaps. Heat can then transfer into the wall through these gaps, resulting in poor insulation performance, increased installation steps, reduced installation efficiency, and higher costs, consuming a significant amount of manpower and resources. Utility Model Content
[0004] The main purpose of this utility model is to propose a heat-insulating decorative aluminum plate, which aims to improve the sealing of the connection between aluminum plates and enhance the heat insulation effect.
[0005] To achieve the above objectives, the thermal insulation and decorative aluminum panel proposed in this utility model includes:
[0006] The substrate has a connecting groove formed on one end in a first direction, and an abutment block is disposed within the connecting groove; and,
[0007] The connection structure includes a connector, a drive assembly, and a retaining rod. The connector is disposed on the other side of the substrate in a first direction and is movably disposed within the connection groove. The connector is used to be sleeved on the outside of the abutment block. The drive assembly is mounted on the connector. The retaining rod is disposed on the drive assembly and extends toward the abutment block. The drive assembly is used to drive the retaining rod to move closer to or away from the abutment block.
[0008] Preferably, the connector has a cavity, and the abutment block is movably connected within the cavity to connect the two aluminum plates.
[0009] Preferably, a mounting cavity is formed within the connector, and the drive assembly is mounted within the mounting cavity. The drive assembly includes:
[0010] A threaded rod is rotatably mounted in the mounting cavity and extends along a first direction;
[0011] The movable plate is threaded to the outer periphery of the threaded rod and connected to the end of the abutment rod away from the abutment block;
[0012] A worm gear is fixed to one end of the threaded rod;
[0013] The worm gear is rotatably installed in the mounting cavity and meshes with the worm wheel to drive the worm wheel to rotate.
[0014] Preferably, the mounting cavity has a movable hole communicating with the outside on one side in the first direction, and the abutment rod is slidably connected in the movable hole to restrict the rotation of the movable rod.
[0015] Preferably, a stop is provided in the mounting cavity, and the stop contacts one side end of the movable plate in the first direction to limit the movement distance of the movable plate.
[0016] Preferably, one end of the worm gear is provided with an auxiliary component, so that rotating the auxiliary component will drive the worm gear to rotate.
[0017] Preferably, the length of the mounting cavity extending along the first direction is greater than the length of the abutment block extending along the first direction.
[0018] Preferably, a shielding cover is detachably provided in the connecting groove, and the shielding cover is used to prevent the connector from detaching from the connecting groove.
[0019] Preferably, the substrate is provided with a heat insulation component, which includes a heat insulation layer and a heat insulation layer arranged sequentially from the substrate. The heat insulation layer is a fluorocarbon coating, and the heat insulation layer is an aerogel felt layer. The heat insulation layer and the heat insulation layer are used to prevent heat loss.
[0020] Preferably, the thermal insulation component further includes a wear-resistant layer, which is used to cover the thermal insulation layer.
[0021] In the technical solution provided by this utility model, the inner side of the hinge mounting part is provided with two water-blocking ribs extending along the left and right side edges. The two water-blocking ribs define a flow channel on the inner side of the hinge mounting part. The flow channel limits and guides the condensed oil and water, reducing the amount of oil and water overflowing from the inner side of the hinge mounting part, so that more of the condensed oil and water on the pot lid can be collected. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0023] Figure 1 A perspective view of an embodiment of the thermal insulation and decorative aluminum plate provided by this utility model;
[0024] Figure 2 for Figure 1 Cross-sectional view of the connecting mechanism;
[0025] Figure 3 for Figure 1 Cross-sectional view of the thermal insulation component.
[0026] Explanation of icon numbers:
[0027] 100. Aluminum plate; 1. Connecting structure; 11. Connector; 12. Threaded rod; 13. Worm gear; 14. Worm wheel; 15. Movable plate; 16. Supporting rod; 2. Base plate; 3. Thermal insulation component; 31. Thermal insulation layer; 32. Thermal insulation layer; 33. Wear-resistant layer; 4. Shielding cover; 5. Abutment block; 6. Connecting groove.
[0028] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.
[0031] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of indicated technical features. Therefore, features defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0032] This utility model provides a heat-insulating decorative aluminum plate 100. Figures 1 to 3 This is an embodiment of the thermal insulation and decorative aluminum plate 100 provided by the present utility model.
[0033] Please refer to the following: Figures 1 to 3 The thermal insulation decorative aluminum plate 100 includes a base plate 2 and a connecting structure 1. The base plate 2 has a connecting groove 6 formed on one side in a first direction, and an abutment block 5 is provided in the connecting groove 6. The connecting structure 1 includes a connector 11, a driving assembly, and a holding rod 16. The connector 11 is disposed on the other side of the base plate 2 in the first direction and is movably disposed in the connecting groove 6. The connector 11 is used to be sleeved on the outside of the abutment block 5. The driving assembly is mounted on the connector 11. The holding rod 16 is disposed on the driving assembly and extends toward the abutment block 5. The driving assembly is used to drive the holding rod 16 to move toward or away from the abutment block 5.
[0034] When connecting two aluminum plates 100, first align the side of one substrate 2 with the connecting structure 1 with the side of the other with the connecting groove 6. Then, fit the connector 11 onto the outside of the abutment block 5 inside the connecting groove 6, and let the connector 11 slide completely into the connecting groove 6. At this time, the movement of the connector 11 is restricted, and it cannot move in the first direction, so that the two aluminum plates 100 are temporarily connected together, but there is still a certain gap between the two aluminum plates 100. Activate the drive assembly, which drives the abutment rod 16 to move towards the abutment block 5. The abutment rod 16 continues to move until it contacts the abutment block 5. At this point, the abutment rod 16 continues to move, pushing the abutment block 5 closer to the other aluminum plate 100, thereby causing the aluminum plate 100 where the abutment block 5 is located to move closer to the other aluminum plate 100 until the sides of the two aluminum plates 100 are tightly fitted together. Sealing gaskets can be provided on the sides of the two aluminum plates 100 so that the sides of the two aluminum plates 100 are in close contact through the two sealing gaskets. This makes the gap between the two aluminum plates 100 smaller after they are connected, thereby preventing heat loss through the gap between the aluminum plates 100 and the problem of reduced heat insulation effect.
[0035] The function of the drive assembly is to push the abutting rod 16 toward the abutting block 5, causing the abutting rod 16 to move closer to or away from the abutting block 5, thereby making the two aluminum plates 100 more tightly connected or separated. The drive assembly has various specific structures. For example, a movable member that can move along a first direction is provided inside the connector 11, movably mounted at the end of the abutting rod 16 away from the abutting block 5. Then, an elastic member is provided between the movable member and the inner wall of the connector 11, extending along the first direction. Pushing the movable member toward the abutting block 5 simultaneously drives the abutting rod 16 toward the abutting block 5, thus ensuring that after the initial connection of the two aluminum plates 100, the two adjacent sides can fit tightly together, reducing the gap at the connection point to a level where the heat loss is negligible.
[0036] Therefore, in the technical solution provided by this utility model, the connecting structure 1 includes a connector 11, a driving assembly, and a holding rod 16. The connector 11 is disposed on the other side of the substrate 2 in the first direction, and the connector 11 is movably disposed in the connecting groove 6. The connector 11 is used to sleeve on the outside of the abutting block 5. The driving assembly is installed on the connector 11. The holding rod 16 is disposed on the driving assembly and extends toward the abutting block 5. The driving assembly is used to drive the holding rod 16 to move closer to or away from the abutting block 5. By driving the holding rod 16 toward the abutting block 5 through the driving assembly, the holding rod 16 pushes the abutting block 5 to move in the first direction, so that the two aluminum plates 100 continuously move closer to each other, thereby reducing the gap at the connection of the two aluminum plates 100 to a minimum, thereby preventing a large amount of heat from being lost through the gap.
[0037] The connector 11 is used to initially connect the two aluminum plates 100, so that the sides of the two aluminum plates 100 at the connection point are initially attached together. The cooperation between the connector 11 and the abutment block 5 restricts the two aluminum plates 100 from moving apart in the first direction. After the connector 11 slides into the connecting groove 6 and is sleeved on the outside of the abutment block 5, the two aluminum plates 100 form a movable whole when moving in the first direction. Specifically, in the embodiment of this utility model, the connector 11 forms a cavity, and the abutment block 5 is movably connected in the cavity to connect the two aluminum plates 100.
[0038] While the connector 11 is movably connected to the connecting groove 6, the abutment block 5 is also movably connected to the cavity. The cavity is closed in the first direction towards the side wall where the abutment block 5 is located, so that the two aluminum plates 100 can not move away from each other because the abutment block 5 is restricted from moving and cannot be separated, thus completing the initial connection work.
[0039] In an embodiment of this utility model, a mounting cavity is formed within the connector 11, and the driving assembly is installed within the mounting cavity. The driving assembly includes a threaded rod 12, a movable plate 15, a worm gear 14, and a worm 13. The threaded rod 12 is rotatably mounted within the mounting cavity and extends along a first direction. The movable plate 15 is threadedly connected to the outer periphery of the threaded rod 12 and connected to the end of the abutment rod 16 away from the abutment block 5. The worm gear 14 is fixed to one end of the threaded rod 12. The worm 13 is rotatably mounted within the mounting cavity and meshes with the worm gear 14 to drive the worm gear 14 to rotate.
[0040] When the abutment rod 16 moves, the worm gear 13 is rotated first. The worm gear 13 drives the worm wheel 14 to rotate, and the worm wheel 14 drives the threaded rod 12 to rotate. After the threaded rod 12 rotates, the movable plate 15 moves along the first direction. Then, the movable plate 15 drives the abutment rod 16 to move along the first direction. Depending on the direction in which the abutment rod 16 needs to move, the worm gear 13 is rotated clockwise or counterclockwise so that the abutment rod 16 can move closer to or further away from the abutment block 5.
[0041] The method of moving the movable plate 15 by the screw and then moving the abutment rod 16 allows the abutment rod 16 to remain unchanged after moving to the appropriate position, and to maintain the same position for a long time without the worm gear 13 being rotated by external force. However, if the abutment rod 16 is moved by the elastic potential energy of the elastic element, once the aluminum plate 100 is impacted and the vibration is transmitted to the elastic element, the elastic element will move, which will cause the abutment rod 16 to move as well, losing its continuous abutment and pressing effect on the abutment block 5. This may cause the gap at the connection between the two aluminum plates 100 to become larger, resulting in accelerated heat loss.
[0042] Furthermore, the mounting cavity has an opening on one side in the first direction that communicates with the outside, and the abutment rod 16 is slidably connected in the opening to restrict the rotation of the movable plate 15.
[0043] The abutment rod 16 is always movable within the movable hole, thereby restricting the movable plate 15. This prevents the threaded rod 12 from rotating and causing the movable plate 15 to rotate as well, ensuring that the movable plate 15 can move stably along the first direction. This, in turn, causes the abutment rod 16 to move closer to or away from the abutment block 5. At the same time, by opening a movable hole that communicates with the mounting cavity, the abutment rod 16 can be mostly retracted into the mounting cavity when not in use, so as not to obstruct the abutment block 5 from being placed into the cavity to complete the initial connection work.
[0044] Furthermore, a stop is provided inside the mounting cavity, and the stop contacts one side end of the movable plate 15 in the first direction to limit the movement distance of the movable plate 15.
[0045] The movement distance of the movable plate 15 is limited by the stop block to prevent the movable plate 15 from moving too far and causing the holding rod 16 to enter the installation cavity completely, or to collide with the worm gear 14 or worm 13, which would damage the movable plate 15 or the worm gear 14 or worm 13 and render it unusable.
[0046] It is convenient to drive the worm wheel 14 to rotate by rotating the worm 13. However, the size of the worm 13 is limited by the size of the connecting member 11. Sometimes the designed worm 13 is not large enough, making it inconvenient to apply force simply by rotating it, and it is also inconvenient to rotate it with the help of tools. This can easily cause the worm 13 to break inside the connecting member 11. Therefore, an additional structure is needed to facilitate the application of force while driving the worm 13 to rotate. Specifically, in the embodiment of this utility model, an auxiliary member is provided at one end of the worm 13 so that the worm 13 can be rotated when the auxiliary member is rotated. By setting the auxiliary member, the operator can set a corresponding structure on the worm 13 according to the shape of the tool needed, so as to facilitate the use of the tool to rotate the worm 13, thereby driving the movement of the retaining rod 16.
[0047] The abutment rod 16 is movably connected in the movable hole, so a portion of the abutment rod 16 may be located outside the mounting cavity, i.e. inside the cavity. In order to ensure that the abutment block 5 can be smoothly placed into the cavity, the length of the abutment block 5 needs to be limited to a certain extent to ensure that the abutment rod 16 will not obstruct the placement of the abutment block 5. Specifically, in the embodiment of this utility model, the length of the mounting cavity extending along the first direction is greater than the length of the abutment block 5 extending along the first direction.
[0048] After the connector 11 is placed into the connecting groove 6, there is still an opening in the connecting groove 6, which may cause the two aluminum plates 100 to separate. Therefore, this opening needs to be sealed. Specifically, in this embodiment of the present invention, a shielding cover 4 is detachably provided in the connecting groove 6. The shielding cover 4 is used to restrict the connector 11 from detaching from the connecting groove 6. By preventing the connector 11 from moving outward from the connecting groove 6, the connector 11 can be stably installed in the connecting groove 6, thereby making the two aluminum plates 100 stably connected together. At the same time, a single connector 11 cannot guarantee that the two aluminum plates 100 will not wobble after being connected. Therefore, at least two connecting structures 1 symmetrically arranged on the same side are required to make the connection of the two aluminum plates 100 more stable.
[0049] Separating the aluminum plate 100 and the insulation board not only increases the installation process but also is time-consuming and labor-intensive. Therefore, it is more appropriate to integrate the insulation board and the aluminum plate 100. Specifically, in the embodiment of this utility model, the substrate 2 is provided with a heat insulation component 3. The heat insulation component 3 includes a heat insulation layer 31 and a heat insulation layer 32 arranged sequentially from the substrate 2. The heat insulation layer 31 is a fluorocarbon coating, and the heat insulation layer 32 is an aerogel felt layer. The heat insulation layer 31 and the heat insulation layer 32 are used to prevent heat loss. The fluorocarbon coating can adhere well to the surface of various substrates such as aluminum, copper, magnesium and their alloys, steel, plastic, and cement, forming a strong coating. At the same time, it can reflect some solar radiation heat, reduce the absorption of heat by the aluminum plate 100, and make the surface temperature of the aluminum plate 100 less likely to rise, thereby reducing the heat transfer to the room or other spaces. The aerogel felt has an extremely low thermal conductivity and is one of the best heat insulation materials known to date. Moreover, it is lightweight and thin, which can effectively reduce the overall weight and thickness of the composite aluminum plate 100, while providing good heat insulation effect.
[0050] The insulation layer 32 and the heat insulation layer 31 lack sufficient wear and corrosion resistance, making them prone to wear or corrosion during long-term use. This can cause the aluminum plate 100 to lose the insulation layer 32 and the heat insulation layer 31. Therefore, it is necessary to protect the insulation layer 32 and the heat insulation layer 31. Specifically, in this embodiment of the invention, the insulation component 3 further includes a wear-resistant layer 33, which comprises glass fiber. The wear-resistant layer 33 is used to cover the insulation layer 32. Glass fiber is relatively inexpensive, has good chemical stability and a certain strength, and can provide better support and protection for the aerogel felt, improving its wear resistance.
[0051] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the concept of the present utility model and using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included in the patent protection scope of the present utility model.
Claims
1. A thermal decorative aluminum sheet, characterized by, The utility model relates to a connecting structure of two aluminum plates, comprising: a substrate, a connecting groove is formed on one side end of the substrate in a first direction, and an abutting block is arranged in the connecting groove; a connecting structure, comprising a connecting piece, a driving assembly and an abutting rod, the connecting piece is arranged on the other side end of the substrate in the first direction, and the connecting piece is movably arranged in the connecting groove, the connecting piece is used to be sleeved outside the abutting block, the driving assembly is installed on the connecting piece, the abutting rod is arranged on the driving assembly and extends towards the abutting block, and the driving assembly is used to drive the abutting rod to move towards or away from the abutting block. The connecting piece is formed with a cavity, and the abutting block is movably connected in the cavity to connect two aluminum plates.
2. The thermal decorative aluminum panel of claim 1, wherein, The connecting piece is formed with an installation cavity, and the driving assembly is installed in the installation cavity, the driving assembly comprises:
3. The thermal decorative aluminum panel of claim 1, wherein a threaded rod, which is rotatably installed in the installation cavity and extends in the first direction; a movable plate, which is threadedly connected to the outer circumferential side of the threaded rod and connected to one end of the abutting rod away from the abutting block; a worm wheel, which is fixed to one end of the threaded rod; a worm, which is rotatably installed in the installation cavity and engaged with the worm wheel to drive the worm wheel to rotate. The installation cavity is provided with a movable hole in communication with the outside on one side in the first direction, and the abutting rod is slidably connected in the movable hole to limit the rotation of the movable plate.
4. The thermal decorative aluminum panel of claim 3, wherein The installation cavity is provided with a stop block, and the stop block contacts the movable plate on one side in the first direction to limit the movement distance of the movable plate.
5. The thermal decorative aluminum panel of claim 3, wherein the decorative layer is formed by a process of vacuum deposition. One end of the worm is provided with an auxiliary piece to drive the worm to rotate when the auxiliary piece is rotated.
6. The thermal decorative aluminum panel of claim 3, wherein The length of the installation cavity extending in the first direction is greater than the length of the abutting block extending in the first direction.
7. The thermal decorative aluminum panel of claim 3, wherein the decorative layer is formed by a process of vacuum deposition. A shielding cover is detachably arranged in the connecting groove, and the shielding cover is used to limit the connecting piece from being separated from the connecting groove.
8. The thermal decorative aluminum panel of claim 1, wherein The substrate is provided with a heat preservation assembly, the heat preservation assembly comprises a heat insulation layer and a heat preservation layer arranged in sequence from the substrate, the heat insulation layer is a fluorocarbon coating, the heat preservation layer is an aerogel felt layer, and the heat insulation layer and the heat preservation layer are used to prevent heat loss.
9. The thermal decorative aluminum panel of claim 1, wherein The heat preservation assembly further comprises a wear-resistant layer, the wear-resistant layer comprises glass fibers, and the wear-resistant layer is used to cover the heat preservation layer.
10. The thermal decorative aluminum panel of claim 9, wherein,