Composite heat-conducting wooden board
By employing adhesive structures in the thermally conductive composite wood board, including quick-connect grooves, inserts, and clips, the alignment problem during assembly of the thermally conductive composite wood board is solved, achieving a fast and low-cost composite effect.
Patent Information
- Application Number
- CN202423282805.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Existing thermally conductive composite wood panels require precise alignment during assembly, which makes the assembly process complex and prone to misalignment.
The adhesive structure includes quick-connect grooves, insert rods, clips, slots, posts, edge sealing grooves, and splicing rods. These structures enable the quick alignment and bonding of the upper and lower panels, which are then fixed using adhesives.
It enables rapid bonding of the upper and lower plates, improves the efficiency and compressive strength of the composite process, reduces the possibility of misalignment, and has a lower cost.
Smart Images

Figure CN223904158U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the field of composite wood board, concretely relates to a composite heat-conducting wood board. BACKGROUND
[0002] The heat-conducting composite wood board is a new type of composite material which combines the lightness, beauty and high-efficiency heat dissipation performance of wood and heat-conducting materials.
[0003] The common heat-conducting wood board is formed by the upper and lower adhering and pasting mode during the composite forming, and the conventional heat-conducting composite wood board needs to be precisely aligned and compounded during the combination, so the process needs to be paid great attention to, and therefore, the wood board which can be conveniently compounded and formed is urgently needed.
[0004] In view of this, the utility model is provided. UTILITY MODEL CONTENTS
[0005] To solve the technical problems existing in the wood board compounding, the basic concept of the technical scheme of the utility model is as follows:
[0006] A composite heat-conducting wood board comprises:
[0007] An upper plate, which is a rectangular plate, is made of wood material, a rectangular groove is formed in the center of the bottom of the upper plate, and a heat-conducting copper sheet is installed in the rectangular groove;
[0008] A lower plate, which is arranged below the upper plate, is provided with a rectangular groove in the center of the top thereof, and the rectangular groove is adapted to the heat-conducting copper sheet;
[0009] An adhesive structure, which is arranged on the wall surface of the upper plate and the lower plate, is used to adhere and compound the upper plate and the lower plate.
[0010] As a preferred embodiment of the utility model, the adhesive structure comprises a quick-connection groove, a plug rod and a clamping rod, the quick-connection groove is formed on the wall surface of the top of the lower plate, the plug rod is fixedly connected to the wall surface of the bottom of the upper plate, and the clamping rod is clamped in the quick-connection groove.
[0011] As a preferred embodiment of the utility model, the quick-connection groove is a groove with a convex section, each plug rod is composed of two parallel rectangular rods, each plug rod can be inserted into the quick-connection groove, and the clamping rod can also be inserted into the quick-connection groove.
[0012] As a preferred embodiment of the utility model, the clamping rod is a rod with a convex section, half of the clamping rod can be clamped between the symmetrical rectangular rods of the plug rod, and the bottom of the clamping rod can be flush with the lower plate when the clamping rod is clamped into the quick-connection groove.
[0013] As a preferred embodiment of the utility model, the bonding structure comprises: a plug-in post and a plug-in slot, the plug-in post is fixedly connected at the bottom of the upper plate at eccentric positions of four sides, a plurality of plug-in posts are evenly arranged at each position, the plug-in post is in a cylindrical shape, the plug-in slot is arranged at the top of the lower plate, the number of the plug-in slot is consistent with that of the plug-in post, the position of each plug-in slot can correspond to that of the plug-in post, and the plug-in post can be clamped into the plug-in slot.
[0014] As a preferred embodiment of the utility model, the bonding structure comprises: a sealing groove, the sealing groove is a groove formed by a trapezoidal section and a rectangular section, the sealing groove is arranged on the peripheral wall surface of each upper plate and lower plate, and the sealing grooves on the periphery of the upper plate and the lower plate can be connected to form a groove with a dovetail-shaped section.
[0015] As a preferred embodiment of the utility model, the bonding structure further comprises an adaptive slot and a splicing rod, the adaptive slot is arranged on the top of the upper plate, the bottom of the lower plate is also provided with the same adaptive slot, the splicing rod is clamped in the adaptive slot, the splicing rod is in the shape of an I-shaped section, and the opening of the side wall surface of the splicing rod can adapt to the size of the adaptive slot of the lower plate and the upper plate.
[0016] Compared with the prior art, the utility model has the following beneficial effects:
[0017] 1. The bonding structure can realize quick position fitting by aligning and quick connecting the plug-in post and the slot when the lower plate and the upper plate are bonded, the fitting rod is clamped into the quick connecting slot, and the quick connecting slot is injected with adhesive, so that the bonding degree of the upper plate and the lower plate is improved, and the effect of preventing misalignment is achieved.
[0018] 2. The bonding structure can make the lower plate and the upper plate have high bonding and pressure resistance at low cost by injecting adhesive into the slot and then inserting the plug-in post into the slot.
[0019] 3. The bonding structure can inject adhesive into the coinciding sealing grooves of the upper plate and the lower plate after the sealing grooves of the upper plate and the lower plate are aligned and coincided, so that the upper plate and the lower plate are quickly bonded and combined.
[0020] 4. The bonding structure can not only combine the upper plate and the lower plate by injecting adhesive into the opening of the splicing rod and clamping the splicing rod in the adaptive slot, but also can combine another group of upper plate and lower plate by injecting adhesive into the opening on the other side of the splicing rod, so that the splicing of multiple groups of upper plate and lower plate is facilitated.
[0021] The specific embodiments of the utility model will be further described in detail below with reference to the drawings. BRIEF DESCRIPTION OF DRAWINGS
[0022] In the drawings:
[0023] Figure 1The utility model discloses a perspective view;
[0024] Figure 2 The utility model discloses quick -joint groove structure exploded view;
[0025] Figure 3 The utility model discloses the insertion column and insertion slot's exploded view;
[0026] Figure 4 The utility model discloses the edge sealing groove's perspective view;
[0027] Figure 5 The utility model discloses the adaptation slot and splicing pole's exploded view.
[0028] In the drawing: 20, upper plate, 21, lower plate, 30, quick -joint groove, 31, insertion pole, 32, clamping rod, 40, insertion column, 41, insertion slot, 50, edge sealing groove, 60, adaptation slot, 61, splicing pole. Specific implementation
[0029] In order to make the purpose, technical scheme and advantage of the utility model embodiment more clear, the following will be combined with the drawing in the utility model embodiment, and the technical scheme in the embodiment is clearly and completely described, and the following embodiment is used to explain the utility model.
[0030] Embodiment one: as Figure 1 And Figure 2 The utility model discloses a composite heat conducting wooden board, which comprises an upper plate 20, the upper plate 20 is a rectangular plate, the material of the upper plate 20 is wood material, a rectangular groove is formed in the bottom center of the upper plate 20, and a heat conducting copper sheet is arranged in the rectangular groove; a lower plate 21 is arranged below the upper plate 20, a rectangular groove suitable for the heat conducting copper sheet is formed in the top center of the lower plate 21; an adhesive structure is arranged on the wall surface of the upper plate 20 and the lower plate 21 and is used for adhesively combining the upper plate 20 and the lower plate 21, the adhesive structure comprises a quick -joint groove 30, an insertion pole 31 and a clamping rod 32, the quick -joint groove 30 is formed on the top wall surface of the lower plate 21, the insertion pole 31 is fixedly connected to the bottom wall surface of the upper plate 20, the clamping rod 32 is clamped in the quick -joint groove 30, the quick -joint groove 30 is a groove with a convex section, each insertion pole 31 is composed of two parallel rectangular rods, each insertion pole 31 can be inserted into the quick -joint groove 30, and the clamping rod 32 can also be inserted into the quick -joint groove 30; the clamping rod 32 is a rod with a convex section, half of the clamping rod 32 can be clamped between the symmetrical rectangular rods of the insertion pole 31, and the bottom of the clamping rod 32 can be flush with the lower plate 21 when the clamping rod 32 is clamped into the quick -joint groove 30.
[0031] By setting the bonding structure, the lower plate 21 and the upper plate 20 can be bonded by aligning the quick connection slot 30 with the insertion rod 31, and the quick connection slot 30 can be inserted into the quick connection slot 30. The effect of preventing misalignment can be effectively improved by injecting adhesive into the quick connection slot 30.
[0032] Embodiment two: as shown in Figure 1 and Figure 3 The upper plate 20 is a rectangular plate, and the upper plate 20 is made of wood material. A rectangular slot is formed in the center of the bottom of the upper plate 20, and a heat-conducting copper sheet is installed in the rectangular slot. The lower plate 21 is arranged below the upper plate 20, and a rectangular slot adapted to the heat-conducting copper sheet is formed in the center of the top of the lower plate 21. The bonding structure is arranged on the wall surface of the upper plate 20 and the lower plate 21 for bonding and combining the upper plate 20 and the lower plate 21. The bonding structure comprises: an insertion column 40 and an insertion slot 41. The insertion column 40 is fixedly connected at the eccentric position of the bottom of the upper plate 20. Multiple insertion columns 40 are uniformly arranged at each position. The insertion column 40 is in a cylindrical shape. The insertion slot 41 is formed in the top of the lower plate 21. The number of insertion slots 41 is consistent with the number of insertion columns 40. The position of each insertion slot 41 can correspond to the insertion column 40. The insertion column 40 can be inserted into the insertion slot 41.
[0033] By setting the bonding structure, the lower plate 21 and the upper plate 20 can be bonded by aligning the quick connection slot 30 with the insertion rod 31, and the quick connection slot 30 can be inserted into the quick connection slot 30. The effect of preventing misalignment can be effectively improved by injecting adhesive into the quick connection slot 30.
[0034] Embodiment three: as shown in Figure 1 and Figure 4 The upper plate 20 is a rectangular plate, and the upper plate 20 is made of wood material. A rectangular slot is formed in the center of the bottom of the upper plate 20, and a heat-conducting copper sheet is installed in the rectangular slot. The lower plate 21 is arranged below the upper plate 20, and a rectangular slot adapted to the heat-conducting copper sheet is formed in the center of the top of the lower plate 21. The bonding structure is arranged on the wall surface of the upper plate 20 and the lower plate 21 for bonding and combining the upper plate 20 and the lower plate 21. The bonding structure comprises: an insertion column 40 and an insertion slot 41. The insertion column 40 is fixedly connected at the eccentric position of the bottom of the upper plate 20. Multiple insertion columns 40 are uniformly arranged at each position. The insertion column 40 is in a cylindrical shape. The insertion slot 41 is formed in the top of the lower plate 21. The number of insertion slots 41 is consistent with the number of insertion columns 40. The position of each insertion slot 41 can correspond to the insertion column 40. The insertion column 40 can be inserted into the insertion slot 41.
[0035] By setting the bonding structure, the lower plate 21 and the upper plate 20 can be bonded by aligning the quick connection slot 30 with the insertion rod 31, and the quick connection slot 30 can be inserted into the quick connection slot 30. The effect of preventing misalignment can be effectively improved by injecting adhesive into the quick connection slot 30.
[0036] Embodiment four: as shown in Figure 1 and Figure 5As shown, the upper plate 20 is a rectangular plate made of wood, and a rectangular slot is formed in the bottom center of the upper plate 20, and a heat-conducting copper sheet is installed in the rectangular slot; the lower plate 21 is arranged below the upper plate 20, and a rectangular slot adapted to the heat-conducting copper sheet is formed in the top center of the lower plate 21; the bonding structure is arranged on the wall surface of the upper plate 20 and the lower plate 21 to bond and combine the upper plate 20 and the lower plate 21, and the bonding structure further comprises an adaptive slot 60 and a splicing rod 61, the adaptive slot 60 is formed on the top four edges of the upper plate 20, and the same adaptive slot 60 is also formed on the bottom four edges of the lower plate 21, and the splicing rod 61 is clamped in the adaptive slot 60, and the splicing rod 61 is a I-shaped section rod, and the side wall opening of the splicing rod 61 can adapt to the size of the adaptive slot 60 of the lower plate 21 and the upper plate 20;
[0037] By setting the bonding structure, when the lower plate 21 and the upper plate 20 are combined, the bonding agent can be injected into the opening of the splicing rod 61 and clamped in the adaptive slot 60 to combine the upper plate 20 and the lower plate 21, and the bonding agent can also be injected into the opening on the other side of the splicing rod 61 to combine and bond another group of upper plate 20 and lower plate 21, thereby facilitating the splicing of multiple groups of upper plate 20 and lower plate 21.
[0038] It can be understood that the present application is described through some embodiments, and those skilled in the art know that various changes or equivalent replacements can be made to these features and embodiments without departing from the spirit and scope of the present application. In addition, under the guidance of the present application, these features and embodiments can be modified to adapt to specific conditions and materials without departing from the spirit and scope of the present application. Therefore, the present application is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of the present application belong to the scope of the present application.
Claims
1. A composite thermally conductive wood-based panel, characterized in that, Include: The upper plate (20) is a rectangular plate, and the upper plate (20) is made of wood. A rectangular slot is formed in the center of the bottom of the upper plate (20), and a heat-conducting copper sheet is installed in the rectangular slot. The lower plate (21) is arranged below the upper plate (20), and a rectangular slot is formed in the center of the top of the lower plate (21) to fit the heat-conducting copper sheet. The adhesive structure is arranged on the wall surface of the upper plate (20) and the lower plate (21) to bond and composite the upper plate (20) and the lower plate (21).
2. The composite thermally conductive wood-based panel according to claim 1, characterized in that, The adhesive structure includes a quick connection slot (30), a plug rod (31) and a clamping rod (32). The quick connection slot (30) is formed on the top wall surface of the lower plate (21). The plug rod (31) is fixedly connected to the bottom wall surface of the upper plate (20). The clamping rod (32) is clamped in the quick connection slot (30).
3. The composite thermally conductive wood-based panel according to claim 2, characterized in that, The quick connection slot (30) is a groove with a convex section. Each plug rod (31) is composed of two parallel rectangular rods. Each plug rod (31) can be inserted into the quick connection slot (30), and the clamping rod (32) can also be inserted into the quick connection slot (30).
4. The composite thermally conductive wood-based board according to claim 3, characterized in that, The clamping rod (32) is a rod with a convex section. Half of the clamping rod (32) can be clamped between the symmetrical rectangular rods of the plug rod (31). When the clamping rod (32) is clamped into the quick connection slot (30), the bottom can be flush with the lower plate (21).
5. The composite thermally conductive wood-based panel according to claim 1, wherein The adhesive structure includes a plug column (40) and a plug slot (41). The plug column (40) is fixedly connected to the bottom of the upper plate (20) at four eccentric positions. Multiple plug columns (40) are arranged at each position. The plug column (40) is cylindrical. The plug slot (41) is formed on the top of the lower plate (21). The number of plug slots (41) is consistent with the number of plug columns (40). The position of each plug slot (41) corresponds to the position of the plug column (40). The plug column (40) can be clamped into the plug slot (41).
6. The composite thermally conductive wood-based panel according to claim 1, wherein The adhesive structure includes an edge sealing slot (50). The edge sealing slot (50) is a groove with a cross section formed by a right trapezoid and a rectangle. The edge sealing slot (50) is formed on the wall surface of each upper plate (20) and lower plate (21). The edge sealing slots (50) on the periphery of the upper plate (20) and the lower plate (21) can be connected to form a groove with a dovetail section.
7. The composite thermally conductive wood-based panel according to claim 1, wherein the thermally conductive wood-based panel has a thermal conductivity of 0.5 W / mK or more. The adhesive structure also includes an adaptive slot (60) and a splicing rod (61). The adaptive slot (60) is formed on the top of the upper plate (20). The bottom of the lower plate (21) also has the same adaptive slot (60). The splicing rod (61) is clamped in the adaptive slot (60). The splicing rod (61) is a rod with an I-shaped section. The opening of the side wall of the splicing rod (61) can adapt to the size of the adaptive slot (60) of the lower plate (21) and the upper plate (20).