Energy-saving framework, energy-saving floor slab and energy-saving wall
By designing an energy-saving skeleton structure including an installation mechanism and a limiting mechanism, the problem of low assembly efficiency during installation is solved, and more efficient construction and more stable energy-saving effects are achieved.
Patent Information
- Application Number
- CN202421231269.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-31
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-05-31
AI Technical Summary
When installing energy-saving skeletons, floor slabs and walls, it is difficult to achieve good assembly efficiency, resulting in a decrease in working efficiency.
A structure including a skeleton body, a mounting mechanism and a limit mechanism is designed. The installation mechanism consists of a mounting seat, a connecting box, a supporting column, a spring, a moving plate, a connecting shaft and a clamp. Through the synergy of these components, the stable connection between the skeleton and the floor slab is achieved. The limiting mechanism ensures the correct installation and adjustment of the floor slabs through the cooperation of bolts, threaded sleeves and connecting blocks.
Through this structural design, the assembly efficiency during the installation process is improved, the human resource demand and construction time are reduced, and the structure stability and energy-saving effect are ensured.
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Figure CN222862582U_ABST
Abstract
Description
Technical Field
[0001] The present disclosure belongs to the field of building technology, and particularly relates to an energy-saving frame, an energy-saving floor slab and an energy-saving wall. Background Art
[0002] Energy-saving frames, energy-saving floors and energy-saving walls are the structures of buildings, which can effectively isolate the temperature difference between indoor and outdoor, reduce heat transfer, thereby reducing the frequency of use of air conditioning and heating systems, and achieve the purpose of saving energy.
[0003] However, installing these energy-saving frames, floors, and walls can be challenging: achieving optimal assembly efficiency, which can reduce work efficiency. Because these structures require precise assembly and installation, errors and delays can easily occur due to poor workmanship or lack of experience. Furthermore, because these structures are often complex and require specialized tools for installation, they can require additional time and manpower to complete the task. Summary of the Invention
[0004] In view of this, the embodiments of the present disclosure provide an energy-saving frame, an energy-saving floor slab and an energy-saving wall, which at least partially solve the problems existing in the prior art.
[0005] An energy-saving frame disclosed herein comprises a frame body, the bottom of the frame body is fixedly connected to a wall, the top of the frame body is provided with a mounting mechanism, and the top of the mounting mechanism is provided with a floor body;
[0006] The mounting mechanism includes a mounting base, which is fixedly connected to the bottom of the floor slab body, a connection box is fixedly connected to one side of the mounting base, and a support column is inserted into the interior of the mounting base;
[0007] The inner wall of the connection box is fixedly connected to a spring, and one end of the spring away from the inner wall of the connection box is fixedly connected to a movable plate;
[0008] One side of the movable plate is fixedly connected with a connecting shaft, and the side of the movable plate close to the mounting seat is fixedly connected with a clamping block.
[0009] Preferably, a long slot is provided on one side of the connection box, and the connection shaft passes through the long slot.
[0010] Preferably, the movable plate is slidably connected to the inner wall of the connection box, and one side of the movable plate is in contact with one side of the mounting seat.
[0011] Preferably, a through opening is provided on a side of the mounting seat close to the connection box, the clamping block passes through the through opening, a clamping opening is provided on one side of the support column, and the clamping block is plugged into an inner wall of the clamping opening.
[0012] Preferably, the support column is fixedly connected to the inner top of the skeleton body, and the top of the skeleton body is in close contact with the bottom of the floor body.
[0013] The utility model also provides an energy-saving floor slab, comprising the skeleton body as described above, and a limiting mechanism is provided on the outer side of the floor slab body;
[0014] The limiting mechanism includes a connecting block, which is fixedly connected to the outside of the floor slab body. A bolt A passes through the inside of the connecting block, and a threaded sleeve is threadedly connected to the outer wall of the bolt A. A long block is fixedly connected to the outside of the floor slab body, and a limiting groove is provided on the side of the floor slab body away from the long block.
[0015] Preferably, the long block is inserted into the inner wall of the limiting groove, and the bolt A passes through the connecting block and the threaded sleeve.
[0016] The utility model also provides an energy-saving wall, comprising the skeleton body as described above, wherein a reinforcement mechanism is provided on the top of the wall;
[0017] The reinforcement mechanism includes a reinforcement seat, two of which are provided on the wall. The tops of the two reinforcement seats are fixedly connected with a reinforcement seat and a reinforcement block respectively, and bolts B are provided inside the reinforcement seat.
[0018] Preferably, threaded holes are provided on one side of the reinforcement seat and one side of the reinforcement block, and the bolts B are threadedly connected to the inner walls of the threaded holes.
[0019] The disclosed embodiment provides an energy-saving frame, comprising a frame body, wherein the bottom of the frame body is fixedly connected to a wall, the top of the frame body is provided with a mounting mechanism, and the top of the mounting mechanism is provided with a floor body; the mounting mechanism comprises a mounting seat, the mounting seat is fixedly connected to the bottom of the floor body, one side of the mounting seat is fixedly connected to a connection box, and a support column is plugged into the inside of the mounting seat; the inner wall of the connection box is fixedly connected to a spring, and the end of the spring away from the inner wall of the connection box is fixedly connected to a movable plate; one side of the movable plate is fixedly connected to a connecting shaft, and the side of the movable plate close to the mounting seat is fixedly connected to a clamping block. The solution of the disclosed embodiment can solve the problem that good assembly efficiency may not be achieved during the installation process, thereby reducing work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions of the exemplary implementation methods of the embodiments of the present disclosure, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the embodiments of the present disclosure and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.
[0021] Figure 1 This is a front view of the structure of the utility model;
[0022] Figure 2 This is a cross-sectional view looking up at the connection box;
[0023] Figure 3 This is a structural diagram of the floor slab itself;
[0024] Figure 4 Schematic diagram of the wall structure;
[0025] Figure 5 for Figure 2 Enlarged structural diagram at point A in the middle.
[0026] Figure 6 This is a top-down cross-sectional view of the connection box.
[0027] Figure markings: 1-skeleton body; 2-wall; 3-floor body; 4-installation mechanism; 41-support column; 42-installation seat; 43-connecting box; 44-spring; 45-movable plate; 46-connecting shaft; 47-block; 5-limiting mechanism; 51-connecting block; 52-bolt A; 53-threaded sleeve; 54-limiting groove; 55-long block; 6-reinforcement mechanism; 61-reinforcement seat; 62-reinforcement block; 63-bolt B. DETAILED DESCRIPTION
[0028] In order to make the objectives, technical solutions and advantages of the embodiments of the present disclosure more clear, the embodiments of the present disclosure are further described in detail below in combination with the embodiments and drawings. The schematic implementation methods of the embodiments of the present disclosure and their descriptions are only used to explain the embodiments of the present disclosure and are not intended to limit the embodiments of the present disclosure.
[0029] First, refer to Figure 1 , describing an energy-saving frame of the utility model, which includes a frame body 1, the bottom of the frame body 1 is fixedly connected to the wall 2, the top is provided with a mounting mechanism 4, and the top of the mounting mechanism 4 is provided with a floor body 3.
[0030] Specifically, refer to Figure 2 、 Figure 4 、 Figure 5 and Figure 6 This energy-saving frame design adopts an innovative mounting mechanism 4. The mounting mechanism 4 includes a mounting base 42, which is fixedly connected to the bottom of the floor slab body 3. A connection box 43 is fixedly connected to one side of the mounting base 42, and a support column 41 is inserted into the mounting base 42.
[0031] The inner wall of the connection box 43 is fixedly connected with a spring 44, and one end of the spring 44 away from the inner wall of the connection box 43 is fixedly connected with a movable plate 45. One side of the movable plate 45 is fixedly connected with a connecting shaft 46, and a side close to the mounting seat 42 is also fixedly connected with a block 47.
[0032] In the disclosed embodiment, a simple and easy fixing method can be used to connect the mounting base 42 and the connection box 43. In one embodiment, common fasteners such as bolts and nuts can be used for fastening. This makes assembly more convenient and quick in actual operation.
[0033] Secondly, in the design of the movable plate 45 and the connecting shaft 46, it is possible to consider adopting a structure with adjustable length or angle. In this way, fine-tuning and adaptation can be carried out according to specific circumstances during installation to ensure the tight connection between the various components.
[0034] In addition, when filling the space between the frame body 1 and the wall 2 with insulation material, attention should be paid to material selection and construction techniques. High-quality insulation materials should be selected and construction operations should be carried out in strict accordance with relevant standards to ensure a good filling effect and achieve the expected energy-saving effect.
[0035] Specifically, the wall 2 can be fixedly connected to the bottom of the frame body 1 to ensure the stability of the entire structure. Secondly, a mounting mechanism 4 is provided on the top of the frame body 1 to support and secure the floor slab 3. The mounting mechanism 4 includes a mounting base 42, which is fixedly connected to the bottom of the floor slab 3 and has a connection box 43 fixedly connected to one side. A support column 41 is inserted into the mounting base 42 to provide additional support.
[0036] Furthermore, a spring 44 is fixedly connected to the inner wall of the connection box 43. One end of the spring 44 away from the inner wall of the connection box 43 is also fixedly connected to a movable plate 45. One side of the movable plate 45 is connected to a clamping block 47 through a connecting shaft 46.
[0037] With such a designed structure, the various parts can be easily spliced together, thereby improving efficiency.
[0038] In a specific embodiment, the connection box 43 of the energy-saving frame, energy-saving floor and energy-saving wall disclosed in the present invention has a long slot, and the connection shaft 46 passes through the long slot.
[0039] In one embodiment, during the design and manufacturing process, a narrow slot can be formed on one side of the connection box 43. This slot can be straight or curved, depending on specific needs. During assembly, the connecting shaft 46 is passed through this slot, securing the connecting shaft 46 to the connection box 43 and forming a stable structure. This design and assembly method effectively connects the energy-saving frame, energy-saving floor, and energy-saving wall, providing sufficient support and stability.
[0040] In a specific embodiment, the movable plate 45 of the present disclosure is slidably connected to the inner wall of the connection box 43 , and one side of the movable plate 45 is in close contact with one side of the mounting seat 42 .
[0041] For example, the connection box 43 can be designed to have an appropriate shape and size to accommodate the movable plate 45. The inner wall of the connection box 43 can be provided with a smooth surface or treated with a lubricating material to ensure that the movable plate 45 can slide and connect smoothly. At the same time, corresponding grooves or protrusions are provided on the mounting base 42 to ensure that the movable plate 45 can be stably fixed when in contact. In this way, by adjusting the positional relationship between the movable plate 45 and the mounting base 42, the overall structure of the energy-saving frame, energy-saving floor slab, and energy-saving wall can be flexibly adjusted and assembled.
[0042] In a specific embodiment, a mounting seat 42 of an energy-saving frame disclosed herein has a through opening on one side close to the connection box 43, through which a block 47 passes, and a bayonet is provided on one side of the support column 41, and the block 47 is inserted into the inner wall of the bayonet.
[0043] In one embodiment, a space can be created between the mounting base 42 and the connection box 43, with a through-hole formed on the mounting base 42 to connect to this space. Simultaneously, a groove or raised portion can be designed on one side of the support column 41 to serve as a snap-in. A snap-in block 47 of appropriate size and shape can then be manufactured, inserted through the through-hole, and plugged into the inner wall of the snap-in on the support column 41. This allows the energy-saving frame, energy-saving floor slab, or energy-saving wall component to be securely and reliably fixed to the connection box 43.
[0044] In a specific embodiment, an energy-saving frame disclosed herein includes a support column 41 and a frame body 1, wherein the support column 41 is fixedly connected to the inner top of the frame body 1. In addition, the structure also includes a floor body 3, the bottom of which is in contact with the top of the frame body 1.
[0045] In one embodiment, support columns 41 can be fixedly attached to the inner top of the frame body 1 during the manufacturing process. This can be achieved by welding, bolting, or other appropriate means. Then, during installation, the floor slab 3 is placed on top of the frame body 1, ensuring a close fit and contact between the two. This can be achieved by adjusting the position of the support columns 41 and the frame body 1 or using auxiliary materials such as gaskets.
[0046] Return Reference Figure 1 and Figure 2 , describes an energy-saving floor slab disclosed in the present invention, which includes a skeleton body 1 and a limiting mechanism 5. The skeleton body 1 can be the above reference Figure 1 、 Figure 2 、 Figure 5 and Figure 6 In addition, the floor is provided with a limiting mechanism 5 on the outside of the floor body 3.
[0047] The limiting mechanism 5 consists of a connecting block 51, which is fixedly connected to the outside of the floor slab body 3. A bolt A52 runs through the connecting block 51, and the outer wall of the bolt A52 is connected to a threaded sleeve 53. Furthermore, a long block 55 is fixedly connected to the outside of the floor slab body 3, and a limiting slot 54 is defined on the side away from the long block 55.
[0048] To install or adjust the energy-saving floor slab, the threaded sleeve 53 is tightened or loosened with the bolt A52, allowing the connecting block 51 to move up and down along the bolt A52. By moving the connecting block 51, the floor slab body 3 can be adjusted relative to the long block 55 and locked in the desired position. Furthermore, a limit slot 54, located on the side away from the long block 55, ensures that the floor slab body 3 can be adjusted only within a preset range.
[0049] In one embodiment, during installation, the threaded sleeve 53 and bolt A52 are first tightened to clamp the connecting block 51. The connecting block 51 can then be moved up and down along the bolt A52 by adjusting the direction and degree of rotation of the bolt A52. When the floor slab body 3 is aligned with the long block 55, the threaded sleeve 53 and bolt A52 are loosened to secure the connecting block 51 in the desired position. Furthermore, a limit slot 54 is provided on the side of the floor slab body 3 away from the long block 55 to ensure that the floor slab body 3 can be adjusted only within a predetermined range and prevent it from exceeding the specified range.
[0050] Through the implementation of the above technical solutions, the energy-saving floor slab can be flexibly installed and adjusted to meet different building requirements, and has high stability and energy-saving effects.
[0051] In a specific embodiment, the long block 55 is fixed by being inserted into the inner wall of the limiting groove 54, and the bolt A52 passes through the connecting block 51 and the threaded sleeve 53 to strengthen the connection.
[0052] Specifically, the long block 55 can be designed to fit into the retaining groove 54, ensuring that its dimensions match the retaining groove 54. A through hole is then reserved between the connecting block 51 and the threaded sleeve 53, through which bolts A52 of appropriate size are inserted. When securing the frame, floor, or wall 2, the long block 55 is inserted into the inner wall of the retaining groove 54, and the connecting block 51 and the threaded sleeve 53 are tightly connected using the bolts A52 passing through the through hole. This creates a stable structure and provides good support.
[0053] refer to Figure 1 , describes the structure of an energy-saving wall disclosed in the present invention, which includes a skeleton body 1. This skeleton body 1 can be the skeleton body 1 described above. In addition, a reinforcement mechanism 6 is provided on the top of the wall body 2 of the energy-saving wall structure.
[0054] Specifically, the reinforcement mechanism 6 is composed of a reinforcement seat 61 and a reinforcement block 62, and two such reinforcement seats 61 are provided on the wall 2. The top of each reinforcement seat 61 is connected to and fixed with a corresponding reinforcement block 62. Bolts B63 are also provided inside the reinforcement seat 61.
[0055] In one embodiment, this feature can be achieved through the following steps: First, during the manufacturing process, the skeleton body 1 is made of appropriate materials. Then, the positions of the two reinforcement mechanisms 6 are determined and installed on the top of the wall 2. Each reinforcement seat 61 is connected to the corresponding reinforcement block 62 and securely installed. Finally, bolts B63 are installed inside each reinforcement seat 61 to enhance the stability of the entire structure.
[0056] Through the above technical measures, the structure described by the energy-saving wall characteristics can be effectively realized, and better support and stability can be provided, thereby meeting the design requirements of energy-saving buildings.
[0057] In a specific embodiment, threaded holes are provided on both sides of the reinforcement base 61 and the reinforcement block 62 of the energy-saving wall of the present disclosure, and the bolts B63 are connected to the inner walls of these threaded holes through threads.
[0058] In one embodiment, the reinforcement base 61 and reinforcement block 62 can be made of metal, with threaded holes on one side of each having matching bolts B63. Bolt B63 is then inserted into a threaded hole on one reinforcement base 61 and rotated to securely connect with the inner wall of the hole. Similarly, a bolt B63 with matching threads on the other end is inserted into a corresponding threaded hole on the other reinforcement block 62 and rotated to securely connect with the inner wall of the hole. In this way, the reinforcement base 61 and reinforcement block 62 can be securely connected using these connectors.
[0059] Furthermore, other forms or materials may be used to achieve similar functions during implementation. In one embodiment, a plastic material may be used to manufacture a component having a corresponding shape and bending properties to accommodate the desired connection method. Other types of connectors (such as nuts, embedded threads, etc.) may also be used to achieve similar connection effects. These examples are merely illustrative of how to technically implement this feature and do not limit the specific implementation of this feature.
[0060] The specific implementation methods described above further illustrate the purpose, technical solutions and beneficial effects of the embodiments of the present disclosure. It should be understood that the above description is only a specific implementation method of the embodiments of the present disclosure and is not intended to limit the scope of protection of the embodiments of the present disclosure. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the embodiments of the present disclosure should be included in the scope of protection of the embodiments of the present disclosure.
Claims
1. An energy-saving frame, comprising a frame body (1), characterized in that: The bottom of the skeleton body (1) is fixedly connected to a wall body (2), the top of the skeleton body (1) is provided with a mounting mechanism (4), and the top of the mounting mechanism (4) is provided with a floor body (3); The mounting mechanism (4) comprises a mounting seat (42), the mounting seat (42) being fixedly connected to the bottom of the floor slab body (3), a connection box (43) being fixedly connected to one side of the mounting seat (42), and a support column (41) being inserted into the interior of the mounting seat (42); The inner wall of the connection box (43) is fixedly connected with a spring (44), and one end of the spring (44) away from the inner wall of the connection box (43) is fixedly connected with a moving plate (45); A connecting shaft (46) is fixedly connected to one side of the movable plate (45), and a clamping block (47) is fixedly connected to one side of the movable plate (45) close to the mounting seat (42).
2. The energy-saving frame according to claim 1, characterized in that: A long slot is provided on one side of the connection box (43), and the connection shaft (46) passes through the long slot.
3. The energy-saving frame according to claim 1, characterized in that: The movable plate (45) is slidably connected to the inner wall of the connection box (43), and one side of the movable plate (45) is in close contact with one side of the mounting seat (42).
4. The energy-saving frame according to claim 1, characterized in that: A through opening is provided on one side of the mounting seat (42) close to the connection box (43), the clamping block (47) passes through the through opening, a clamping opening is provided on one side of the support column (41), and the clamping block (47) is plugged into the inner wall of the clamping opening.
5. The energy-saving frame according to claim 1, characterized in that: The support column (41) is fixedly connected to the top of the inner side of the frame body (1), and the top of the frame body (1) is in close contact with the bottom of the floor slab body (3).
6. An energy-saving floor, comprising a skeleton body (1), wherein the skeleton body (1) is any one of claims 1 to 5, characterized in that: A limiting mechanism (5) is arranged outside the floor slab body (3); The limiting mechanism (5) comprises a connecting block (51), the connecting block (51) is fixedly connected to the outside of the floor slab body (3), a bolt A (52) passes through the inside of the connecting block (51), a threaded sleeve (53) is threadedly connected to the outer wall of the bolt A (52), a long block (55) is fixedly connected to the outside of the floor slab body (3), and a limiting groove (54) is provided on a side of the floor slab body (3) away from the long block (55).
7. The energy-saving floor slab according to claim 6, characterized in that: The long block (55) is inserted into the inner wall of the limiting groove (54), and the bolt A (52) passes through the connecting block (51) and the threaded sleeve (53).
8. An energy-saving wall, comprising a skeleton body (1), wherein the skeleton body (1) is any one of claims 1 to 5, characterized in that: A reinforcement mechanism (6) is provided on the top of the wall (2); The reinforcement mechanism (6) comprises a reinforcement seat (61), two of which are provided on the wall (2), the tops of the two reinforcement seats (61) being respectively fixedly connected with the reinforcement seat (61) and the reinforcement block (62), and bolts B (63) are provided inside the reinforcement seat (61).
9. The energy-saving wall according to claim 8, characterized in that: One side of the reinforcement seat (61) and one side of the reinforcement block (62) are both provided with threaded holes, and the bolts B (63) are threadedly connected to the inner walls of the threaded holes.