Thermal insulation floor made of straw fibers
By introducing connecting strips and glue capsule structures into the straw fiber floor, combining the carbon fiber fabric layer and the hard resin curing layer, the problem of skewed floor laying is solved, and the floor is tightly connected, durable and good thermal insulation effect is achieved.
Patent Information
- Application Number
- CN202422179065.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-05
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-05
AI Technical Summary
The existing straw fiber insulation floor is prone to skew when laying, resulting in gaps between different floors.
Install the connecting strips in the connection groove of the wear-resistant material layer, and set up a flow glue groove around the grounding plate. The grounding plate is fixed with adhesive glue. The glue leaks out the adhesive floor by blocking the pad and micro-punctured glue capsules. The glue leaks into the adhesive floor, and combines the carbon fiber fabric layer and the hard resin curing layer to improve the floor strength and insulation effect.
Effectively prevent the floor laying from crookedly, enhance the durability and thermal insulation performance of the floor, ensure the close connection between the floors, and have good heat insulation and waterproof performance.
Smart Images

Figure CN223151566U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heat-insulating floors, in particular to a heat-insulating floor made of straw fiber material. Background Technique
[0002] With the rapid development of China's economy and work, people's requirements for the quality of life have increased. Many people like to use wooden floors when decorating, which requires cutting down a large number of trees. Using wooden floors or ceramic tiles is neither energy-saving nor environmentally friendly.
[0003] After retrieval, in a heat-insulating floor made of straw fiber material with the publication number of CN205206243U, the utility model provides a heat-insulating floor made of straw fiber material, which includes a straw fiber board body, a carbon fiber fabric layer, a hard resin curing layer, a waterproof material layer, and a wear-resistant material layer. The straw fiber board body is formed by fully mixing straw powder fragments and an adhesive and then hot-pressing. Carbon fiber fabric layers are arranged on both the upper and lower surfaces of the straw fiber board body, and the carbon fiber fabric layers wrap the straw fiber board body together. A waterproof material layer is coated on the surface of the upper carbon fiber fabric layer, and a wear-resistant material layer is bonded on the surface of the waterproof material layer. A hard resin curing layer is cured on the surface of the lower carbon fiber fabric layer. The utility model has low cost, energy conservation and environmental protection.
[0004] An existing heat-insulating floor made of straw fiber material is formed by fully mixing straw powder fragments and an adhesive and then hot-pressing to form a board. However, when the existing heat-insulating board is laid, it is not easy to lay straight without guidance, resulting in gaps easily appearing between different floor blocks. For this reason, we propose a heat-insulating floor made of straw fiber material. Content of the Utility Model
[0005] The purpose of the utility model is to provide a heat-insulating floor made of straw fiber material to solve the problems raised in the above background technique.
[0006] In order to solve the above technical problems, the utility model adopts the following technical scheme: A heat-insulating floor made of straw fiber material, including:
[0007] A wear-resistant material layer, the surface of the wear-resistant material layer is provided with anti-slip lines, connection grooves are opened on both sides of the wear-resistant material layer, connection strips are installed inside the connection grooves, a glue bladder is arranged below the wear-resistant material layer, a compression layer is arranged at the bottom of the glue bladder, penetration holes are opened inside the compression layer, a plugging pad is arranged inside the penetration holes, micro thorns are arranged on the top of the plugging pad, a grounding board is arranged below the plugging pad, glue flow grooves are opened around the grounding board, connection bands are connected between the grounding boards, and adhesive tape is arranged at the bottom of the grounding board.
[0008] Preferably, the wear-resistant material layer further includes:
[0009] A waterproof material layer is installed at the bottom of the wear-resistant material layer. A carbon fiber fabric layer is provided at the bottom of the waterproof material layer. A straw fiber board is provided at the bottom of the carbon fiber fabric layer. A hard resin curing layer is provided below the straw fiber board.
[0010] Preferably, the straw fiber board and the carbon fiber fabric layer are adhesively connected, and two layers of carbon fiber fabric layers are provided.
[0011] Preferably, the waterproof material layer and the carbon fiber fabric layer are adhesively connected, and the hard resin curing layer and the carbon fiber fabric layer are adhesively connected.
[0012] Preferably, the plugging pad and the grounding plate are fixedly connected, and the connecting belt and the grounding plate are fixedly connected.
[0013] Preferably, the size of the penetration hole is larger than the size of the plugging pad, and the compression layer and the glue capsule are adhesively connected.
[0014] Preferably, the size of the connecting strip and the connecting groove match, and the connecting groove penetrates into the wear-resistant material layer.
[0015] As can be seen from the above description, through the above technical solution of the present application, the technical problem to be solved by the present application can surely be solved.
[0016] At the same time, through the above technical solutions, the present utility model has at least the following beneficial effects:
[0017] The present utility model can first lay the grounding plate and the connecting belt on the ground, fix the grounding plate by using the adhesive, and the grounding plate can provide an indication for laying the heat-insulating floor, thereby preventing the floor from being laid obliquely;
[0018] The present utility model can cover the heat-insulating floor on the grounding plate, let the plugging pad enter the penetration hole, and then press the heat-insulating floor to make the compression layer shrink, so that the micro thorns will pierce through the glue capsule, and the rupture of the glue capsule can make the glue inside leak, thereby bonding the heat-insulating floor to the ground;
[0019] In the present utility model, the straw fiber board is formed by fully mixing straw powder fragments and an adhesive and hot pressing. It has good heat insulation effect. The carbon fiber fabric layer increases the strength of the straw fiber board. The hard resin curing layer can cure the carbon fiber fabric layer. The waterproof material layer can play a waterproof role. The waterproof material layer and the hard resin curing layer together block the heat exchange of the straw fiber board, making the floor have good heat preservation effect. The wear-resistant material layer on the surface makes the heat-insulating floor more durable. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic structural diagram of the present utility model;
[0021] Figure 2 Schematic diagram of the grounding plate structure of the present utility model;
[0022] Figure 3 Schematic diagram of the bottom structure of the grounding plate of the present utility model;
[0023] Figure 4 Schematic cross-sectional view of the heat insulation board of the present utility model.
[0024] In the figure: 1, wear-resistant material layer; 2, anti-slip pattern; 3, waterproof material layer; 4, carbon fiber fabric layer; 5, straw fiber board; 6, glue capsule; 7, penetration hole; 8, compression layer; 9, hard resin curing layer; 10, grounding plate; 11, glue flow groove; 12, connecting band; 13, micro thorn; 14, plugging pad; 15, adhesive; 16, connecting strip; 17, connecting groove. Specific implementation manners
[0025] In order to make the objectives, technical solutions and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0026] Embodiment 1
[0027] As shown in the attached Figures 1 - 4As shown, the present utility model provides a technical solution: a heat-insulating floor made of straw fiber material, comprising: a wear-resistant material layer 1, on the surface of which anti-slip lines 2 are provided, and connection grooves 17 are provided on both sides of the wear-resistant material layer 1. A connection strip 16 is installed inside the connection groove 17. The dimensions of the connection strip 16 and the connection groove 17 match, and the connection groove 17 penetrates into the wear-resistant material layer 1; a glue bladder 6 is arranged below the wear-resistant material layer 1, a compression layer 8 is arranged at the bottom of the glue bladder 6, penetration holes 7 are provided inside the compression layer 8, and a plugging pad 14 is arranged inside the penetration holes 7. The size of the penetration holes 7 is larger than that of the plugging pad 14, and the compression layer 8 and the glue bladder 6 are adhesively connected; a micro thorn 13 is arranged at the top of the plugging pad 14, a floor connecting plate 10 is arranged below the plugging pad 14, the plugging pad 14 and the floor connecting plate 10 are fixedly connected, and a connecting belt 12 and the floor connecting plate 10 are fixedly connected. The heat-insulating floor can be covered on the floor connecting plate 10, so that the plugging pad 14 enters the penetration holes 7, and then the heat-insulating floor is pressed to make the compression layer 8 contract. In this way, the micro thorn 13 will pierce through the glue bladder 6, and the rupture of the glue bladder 6 can cause the glue inside to leak, thereby bonding the heat-insulating floor to the ground; glue flow grooves 11 are provided around the floor connecting plate 10, connecting belts 12 are connected between the floor connecting plates 10, and an adhesive 15 is arranged at the bottom of the floor connecting plate 10. First, the floor connecting plates 10 and the connecting belts 12 are laid on the ground, and the floor connecting plates 10 are fixed by using the adhesive 15. The floor connecting plates 10 can provide instructions for laying the heat-insulating floor, thereby preventing the floor from being laid obliquely.
[0028] Embodiment 2
[0029] The solution in Embodiment 1 will be further introduced below in combination with the specific working mode, as described in detail below:
[0030] Such as Figure 1 And Figure 4As shown, as a preferred embodiment, on the basis of the above method, further, the waterproof material layer 3 is installed at the bottom of the wear-resistant material layer 1. A carbon fiber fabric layer 4 is provided at the bottom of the waterproof material layer 3, and a straw fiber board 5 is provided at the bottom of the carbon fiber fabric layer 4. The straw fiber board 5 and the carbon fiber fabric layer 4 are adhesively connected, and two layers of carbon fiber fabric layer 4 are provided; a hard resin curing layer 9 is provided below the straw fiber board 5. The waterproof material layer 3 and the carbon fiber fabric layer 4 are adhesively connected, and the hard resin curing layer 9 and the carbon fiber fabric layer 4 are adhesively connected. The straw fiber board 5 is formed by fully mixing straw powder fragments and an adhesive and hot pressing, and it has good heat insulation effect. The carbon fiber fabric layer 4 increases the strength of the straw fiber board 5. The hard resin curing layer 9 can cure the carbon fiber fabric layer 4. The waterproof material layer 3 can play a waterproof role. The waterproof material layer 3 and the hard resin curing layer 9 together block the heat exchange of the straw fiber board 5, making the floor have good heat preservation effect. The surface wear-resistant material layer 1 makes the heat preservation floor more durable.
[0031] Based on the above, it can be seen that:
[0032] The technical problem of the present utility model is that when laying existing heat preservation boards, there is no guidance and it is easy to lay them crookedly, resulting in gaps easily appearing between different floor boards; the technical solutions of the above embodiments are adopted. At the same time, the implementation process of the above technical solutions is as follows:
[0033] First, tear off the protective film on the surface of the adhesive tape 15, then lay the grounding board 10 and the connecting belt 12 on the ground. The grounding board 10 can provide guidance for laying the heat preservation floor; then, stuff the blocking pad 14 into the penetration hole 7, and then press the heat preservation floor to make the compression layer 8 contract, so that the micro thorns 13 will pierce through the glue capsule 6. The rupture of the glue capsule 6 can cause the glue inside to leak, and the glue will flow out from the glue flow groove 11 to bond the heat preservation floor to the ground; then, the surface wear-resistant material layer 1 makes the heat preservation floor more durable. The waterproof material layer 3 can play a waterproof role. The carbon fiber fabric layer 4 increases the strength of the straw fiber board 5. The hard resin curing layer 9 can cure the carbon fiber fabric layer 4. The straw fiber board 5 is formed by fully mixing straw powder fragments and an adhesive and hot pressing, and it has good heat insulation and heat preservation effects; finally, the anti-slip pattern 2 can prevent people from falling, and the connecting strip 16 can be inserted into the connecting groove 17 to connect two heat preservation boards.
[0034] Through the above settings, this application can surely solve the above technical problems. At the same time, the following technical effects can be achieved:
[0035] The present utility model can first lay the grounding board 10 and the connecting belt 12 on the ground, fix the grounding board 10 with the adhesive tape 15, and the grounding board 10 can provide indication for laying the heat preservation floor, thereby preventing the floor from being laid crookedly;
[0036] The utility model can cover the heat-insulating floor on the grounding plate 10, enable the plugging pad 14 to enter the penetration holes 7, and then press the heat-insulating floor to make the compression layer 8 contract, so that the micro thorns 13 will pierce through the glue capsule 6. The rupture of the glue capsule 6 can cause the glue inside to leak, thereby bonding the heat-insulating floor to the ground;
[0037] In the utility model, the straw fiber board 5 is formed by fully mixing straw powder fragments and an adhesive and then hot-pressing. It has good heat insulation effect. The carbon fiber fabric layer 4 increases the strength of the straw fiber board 5. The hard resin curing layer 9 can cure the carbon fiber fabric layer 4. The waterproof material layer 3 can play a waterproof role. The waterproof material layer 3 and the hard resin curing layer 9 together block the heat exchange of the straw fiber board 5, making the floor have good heat insulation effect. The surface wear-resistant material layer 1 makes the heat-insulating floor more durable.
[0038] Although the embodiments of the utility model have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the utility model. The scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. A heat-insulating floor made of straw fiber material, characterized in that, Comprising: A wear-resistant material layer (1), on the surface of the wear-resistant material layer (1) there are anti-slip patterns (2), on both sides of the wear-resistant material layer (1) there are connecting grooves (17), inside the connecting grooves (17) there are connecting bars (16) installed, below the wear-resistant material layer (1) there is a glue capsule (6), at the bottom of the glue capsule (6) there is a compression layer (8), inside the compression layer (8) there are penetration holes (7), inside the penetration holes (7) there are plugging pads (14), on the top of the plugging pads (14) there are micro thorns (13), below the plugging pads (14) there is a grounding plate (10), around the grounding plate (10) there are glue flow grooves (11), between the grounding plates (10) there are connecting bands (12) connected, at the bottom of the grounding plate (10) there is an adhesive paste (15).
2. The heat-insulating floor made of straw fiber material according to claim 1, characterized in that, The wear-resistant material layer (1) further comprises: A waterproof material layer (3), which is installed at the bottom of the wear-resistant material layer (1), at the bottom of the waterproof material layer (3) there is a carbon fiber fabric layer (4), at the bottom of the carbon fiber fabric layer (4) there is a straw fiber board (5), below the straw fiber board (5) there is a hard resin curing layer (9).
3. The thermal insulation floor made of straw fiber material according to claim 2, characterized in that, The straw fiber board (5) and the carbon fiber fabric layer (4) are adhesively connected, and the carbon fiber fabric layer (4) is provided with two layers.
4. The insulating floor made of straw fiber material according to claim 2, wherein The waterproof material layer (3) and the carbon fiber fabric layer (4) are adhesively connected, and the hard resin curing layer (9) and the carbon fiber fabric layer (4) are adhesively connected.
5. The heat-insulating floor made of straw fiber material according to claim 1, characterized in that, The plugging pad (14) and the grounding plate (10) are fixedly connected, and the connecting band (12) and the grounding plate (10) are fixedly connected.
6. The heat-insulating floor made of straw fiber material according to claim 1, characterized in that, The size of the penetration hole (7) is larger than the size of the plugging pad (14), and the compression layer (8) and the glue capsule (6) are adhesively connected.
7. The heat-insulating floor made of straw fiber material according to claim 1, wherein The size of the connecting bar (16) and the connecting groove (17) match, and the connecting groove (17) penetrates into the wear-resistant material layer (1) internally.
Citation Information
Patent Citations
Heat preservation floor of straw fiber material
CN205206243U