A planar embedded magnet structure and a construction process thereof
By embedding magnets in the fixed keel and stainless steel frame, and using magnets with opposite magnetic poles to achieve rapid positioning and reinforcement, the problem of cumbersome construction of existing glass partition structures is solved, and a rapid installation and efficient construction process is achieved.
Patent Information
- Application Number
- CN202211301970.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-24
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2042-10-24
AI Technical Summary
The existing glass partition structure has a complicated construction process and low construction efficiency. In addition, it requires measurement and drilling when calibrating the position of the glass partition, which makes it difficult to meet the needs of rapid assembly.
The structure employs a planar pre-embedded magnet structure. By setting pre-embedded magnets on the fixed keel and stainless steel frame, the first and second pre-embedded magnets with opposite magnetic poles are used to achieve rapid positioning. The structure is then fixed by positioning protrusions, holes, and reinforcing adhesive, simplifying the construction process.
It enables rapid installation and position calibration of glass partitions without the need for on-site measurement and drilling, significantly improving construction speed and efficiency.
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Figure CN115787892B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of interior decoration, in particular to a plane pre-embedded magnet structure and a construction process thereof. BACKGROUND
[0002] In prefabricated buildings, in order to better partition the indoor space, a partition structure is generally needed, and in order to better communicate between the two sides of the partition area, a glass partition structure is usually used for indoor space partitioning.
[0003] At present, the construction structure of the existing indoor glass partition is generally as follows: a fixed keel is pre-embedded at the top and bottom of the wall, then the glass partition plate of the frame is placed in the keel, and after the installation position of the glass partition plate is aligned, the keel and the frame of the glass partition plate are fixed by screwing or welding.
[0004] However, in the above construction process, the inventor found that whether screwing or welding is used, there are problems of complicated construction and low construction efficiency, and when the position of the glass partition plate is aligned, it is necessary to measure and then drill holes, which is relatively complicated and cannot meet the actual needs of rapid assembly partitioning. Therefore, the present application provides a plane pre-embedded magnet structure and a construction process thereof. SUMMARY
[0005] The purpose of the present application is to provide a plane pre-embedded magnet structure and a construction process thereof to solve the problems of complicated construction and low construction efficiency of the existing glass partition structure as mentioned in the background.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a plane pre-embedded magnet structure, comprising a fixed keel, one side of the fixed keel is fixed with a positioning keel, the positioning keel is internally provided with a first pre-embedded magnet, the fixed keel is internally provided with a stainless steel frame fixed outside the glass, the stainless steel frame is internally fixed with a second pre-embedded magnet, and the magnetic poles of the second pre-embedded magnet and the first pre-embedded magnet on the same side are opposite, and the stainless steel frame and the fixed keel are fixed by a reinforcing glue;
[0007] Both sides of the first pre-embedded magnet are provided with auxiliary pre-embedded magnets, and the auxiliary pre-embedded magnets are fixed inside the positioning keel, and the magnetic poles of the auxiliary pre-embedded magnets and the second pre-embedded magnet on the same side are the same;
[0008] One side surface of the stainless steel frame is provided with a clamping strip, and a corresponding clamping hole is formed in the inner wall of one side of the fixed keel close to the clamping strip;
[0009] One side surface of the stainless steel frame away from the clamping strip is provided with a positioning protrusion, and a corresponding positioning groove is formed in the inner wall of one side of the fixed keel close to the positioning protrusion;
[0010] The positioning protrusion is internally provided with a insertion hole, the insertion hole is internally provided with a supporting insertion column, and one end of the supporting insertion column away from the insertion hole is arranged in the positioning groove;
[0011] The reinforcing glue comprises a first glue layer and a second glue layer, the fixed keel is further provided with a protruding part, the first glue layer is arranged outside the protruding part, and the second glue layer is arranged outside the supporting insertion column.
[0012] As a preferred technical scheme of the present application, the first embedded magnet, the auxiliary embedded magnet and the second embedded magnet are all embedded magnets, the embedded magnets are internally provided with through holes, the through holes are internally provided with threaded outer sleeve parts, one side of the threaded outer sleeve parts is provided with threaded holes, and threaded inner sleeve parts are threadedly connected in the threaded holes.
[0013] As a preferred technical scheme of the present application, the cross-sectional shapes of the threaded outer sleeve parts and the threaded inner sleeve parts are both T-shaped.
[0014] A construction process of a planar embedded magnet structure comprises the following steps:
[0015] S1: Before construction, the fixed positions of the first embedded magnet and the auxiliary embedded magnet are measured in advance, and the first embedded magnet and the auxiliary embedded magnet are fixed on the positioning keel by using the threaded outer sleeve part and the threaded inner sleeve part.
[0016] S2: The fixed keel and the positioning keel fixed thereto are both fixedly installed at the top and the bottom of the wall body.
[0017] S3: The second embedded magnet is fixed on the stainless steel frame, then the glass and the steel structure (i.e. the glass partition plate with the stainless steel frame) are slid into the fixed keel, under the action of the first embedded magnet, the stainless steel frame can be quickly positioned in the fixed keel, and the auxiliary embedded magnet can help the constructor to quickly find the approximate installation position of the glass partition plate, and then the constructor only needs to push the glass partition plate again to install the stainless steel frame in place.
[0018] S4: Whether the glass and the steel structure are installed in place can be determined by using the positioning protrusion and the insertion hole, then the glass and the steel structure are pushed to move in the fixed keel, so that the clamping strip is clamped into the clamping hole in the corresponding position, and the protruding part can make the fixed keel and the stainless steel frame have a certain gap, thereby facilitating the injection of the first glue layer.
[0019] S5: When the stainless steel frame abuts against the surface of the protruding part, the supporting insertion column is inserted into the insertion hole of the positioning protrusion, and the other end of the supporting insertion column is arranged in the positioning groove, so as to ensure that the supporting insertion column supports the stainless steel frame and the fixed keel, thereby facilitating the injection of the second glue layer, and after the first glue layer and the second glue layer are cured, the indoor assembly work of the glass and the steel structure is completed.
[0020] Compared with the prior art, the present application has the following advantages:
[0021] 1、The plane pre-embedded magnet structure provided by the present application can realize the rapid installation of glass and steel structure in the room, and has the advantages of short construction speed, small construction difficulty, and greatly improved construction speed and efficiency.
[0022] 2、The plane pre-embedded magnet structure provided by the present application can realize the rapid positioning and calibration of the position of glass and steel structure, and has the advantage of being more convenient without the need for on-site measurement and punching.
[0023] Other features and advantages of the present application will be described in detail in the following specific embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 is a schematic diagram of the overall structure of the present application;
[0025] Figure 2 is a schematic diagram of the overall structure of the present application; Figure 1 is an enlarged schematic diagram of structure A after the clamping strip is clamped into the clamping hole;
[0026] Figure 3 is a schematic diagram of the overall structure of the present application; Figure 2 is an enlarged schematic diagram of structure A after the clamping strip is clamped into the clamping hole;
[0027] Figure 4 is a schematic diagram of the overall structure of the present application; Figure 3 is an enlarged schematic diagram of structure B;
[0028] Figure 5 is an enlarged schematic diagram of structure C; Figure 3 is an enlarged schematic diagram of structure C;
[0029] Figure 6 is a schematic diagram of the structure of the pre-embedded magnet of the present application;
[0030] In the figure: 1, positioning keel; 2, fixed keel; 3, first pre-embedded magnet; 4, auxiliary pre-embedded magnet; 5, stainless steel frame; 6, second pre-embedded magnet; 7, clamping strip; 8, clamping hole; 9, positioning groove; 10, positioning protrusion; 11, support column; 12, insertion hole; 13, protruding part; 14, through hole; 15, threaded outer sleeve; 16, threaded inner sleeve; 17, threaded hole; 18, first adhesive layer; 19, second adhesive layer. DETAILED DESCRIPTION
[0031] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments of the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0032] In the description of the present application, it should be noted that the orientations or positional relationships indicated by the terms "vertical", "upper", "lower", "horizontal" and the like are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0033] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "arrangement", "installation", "connection", "connection" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be the communication inside two elements. For a person of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0034] Please refer to Figures 1-2 In the first embodiment, a flat embedded magnet structure is provided, which comprises a fixed keel 2, a positioning keel 1 fixed on one side of the fixed keel 2, a first embedded magnet 3 arranged in the positioning keel 1, a stainless steel frame 5 fixed on the outside of the glass arranged in the fixed keel 2, a second embedded magnet 6 fixed in the stainless steel frame 5, and the magnetic poles of the second embedded magnet 6 and the first embedded magnet 3 are opposite to each other, the stainless steel frame 5 and the fixed keel 2 are fixed by reinforcing glue, the surface of one side of the stainless steel frame 5 is provided with a clamping strip 7, the inner wall of the side of the fixed keel 2 close to the clamping strip 7 is provided with a corresponding clamping hole 8, the surface of the side of the stainless steel frame 5 away from the clamping strip 7 is provided with a positioning protrusion 10, and the inner wall of the side of the fixed keel 2 close to the positioning protrusion 10 is provided with a corresponding positioning groove 9.
[0035] In use, the fixed keel 2 and the fixed positioning keel 1 fixed therewith are fixedly installed at the top and bottom of the wall body, the second embedded magnet 6 is fixed on the stainless steel frame 5, then the glass and the steel structure (i.e. the glass partition plate with the stainless steel frame 5) are slid into the fixed keel 2, and under the action of the first embedded magnet 3, the stainless steel frame 5 can be quickly positioned in the fixed keel 2. By means of the positioning protrusion 10 and the insertion hole 12, it can be determined whether the glass and the steel structure are installed in place, then the glass and the steel structure are pushed to move in the fixed keel 2, so that the clamping strip 7 is clamped into the clamping hole 8 in the corresponding position.
[0036] Example two
[0037] As an optimization scheme of example one, please refer to Figure 1 The two sides of the first embedded magnet 3 are provided with auxiliary embedded magnets 4, and the auxiliary embedded magnets 4 are fixed in the inside of the positioning keel 1, and the auxiliary embedded magnets 4 have the same magnetic pole as the side surface of the second embedded magnet 6.
[0038] By means of the auxiliary embedded magnets 4, the installer can quickly find the approximate installation position of the glass partition plate, and then the installer only needs to push the glass partition plate again, so that the stainless steel frame 5 can be installed in place, and the fixing effect after the first embedded magnet 3 and the second embedded magnet 6 are attracted can be improved, the loosening between the fixed keel 2 and the stainless steel frame 5 can be prevented, and the stability of the structure can be improved.
[0039] Example three
[0040] As an optimization scheme of example one, please refer to Figures 1-5 The insertion hole 12 is provided in the positioning protrusion 10, the support insertion column 11 is arranged in the insertion hole 12, one end of the support insertion column 11 away from the insertion hole 12 is arranged in the positioning recess 9, the reinforcing glue includes the first glue layer 18 and the second glue layer 19, the fixed keel 2 is further provided with the protruding part 13, the first glue layer 18 is arranged outside the protruding part 13, and the second glue layer 19 is arranged outside the support insertion column 11.
[0041] This embodiment is implemented as follows:
[0042] In use, by means of the protruding part 13, there is a gap between the fixed keel 2 and the stainless steel frame 5, so that the first glue layer 18 can be injected, when the stainless steel frame 5 abuts against the surface of the protruding part 13, the support insertion column 11 is inserted into the insertion hole 12 of the positioning protrusion 10, and the other end of the support insertion column 11 is arranged in the positioning recess 9, so that the support insertion column 11 supports the stainless steel frame 5 and the fixed keel 2, the second glue layer 19 can be injected, and after the first glue layer 18 and the second glue layer 19 are cured, the indoor assembly of the glass and the steel structure is completed.
[0043] Example four
[0044] As an optimization scheme of the first embodiment, please refer to Figure 6 The first embedded magnet 3, the auxiliary embedded magnet 4 and the second embedded magnet 6 are all embedded magnets, the embedded magnets are internally provided with through holes 14, the through holes 14 are internally provided with threaded outer sleeve parts 15, one side of the threaded outer sleeve parts 15 is provided with threaded holes 17, and the threaded holes 17 are threadedly connected with threaded inner sleeve parts 16, and the cross-sectional shapes of the threaded outer sleeve parts 15 and the threaded inner sleeve parts 16 are both T-shaped.
[0045] It should be noted that, before the construction of the present application, the fixing positions of the first embedded magnet 3 and the auxiliary embedded magnet 4 can be measured in advance, and the first embedded magnet 3 and the auxiliary embedded magnet 4 are fixed on the positioning batten 1 by using the threaded outer sleeve parts 15 and the threaded inner sleeve parts 16, so as to improve the assembly construction speed and efficiency of the on-site construction.
[0046] A construction process of a planar embedded magnet structure, comprising the following steps:
[0047] S1: Before the construction, the fixing positions of the first embedded magnet 3 and the auxiliary embedded magnet 4 are measured in advance, and the first embedded magnet 3 and the auxiliary embedded magnet 4 are fixed on the positioning batten 1 by using the threaded outer sleeve parts 15 and the threaded inner sleeve parts 16.
[0048] S2: The fixed batten 2 and the positioning batten 1 fixed thereto are both fixedly installed on the top and the bottom of the wall body.
[0049] S3: The second embedded magnet 6 is fixed on the stainless steel frame 5, then the glass and the steel structure (i.e. the glass partition plate with the stainless steel frame 5) are slid into the fixed batten 2, under the action of the first embedded magnet 3, the stainless steel frame 5 can be quickly positioned in the fixed batten 2, and the auxiliary embedded magnet 4 can assist the constructor to quickly find the approximate installation position of the glass partition plate, and then the constructor only needs to push the glass partition plate again, so as to install the stainless steel frame 5 in place.
[0050] S4: Whether the glass and the steel structure are installed in place can be determined by using the positioning protrusions 10 and the insertion holes 12, then the glass and the steel structure are pushed to move in the fixed batten 2, so that the clamping strip 7 is clamped into the clamping holes 8 in the corresponding position, and the protrusions 13 can make the fixed batten 2 and the stainless steel frame 5 have a certain gap, so as to facilitate the injection of the first glue layer 18.
[0051] S5: When the stainless steel frame 5 abuts against the surface of the convex part 13, the support column 11 is inserted into the insertion hole 12 of the positioning block 10, and the other end of the support column 11 is placed in the positioning groove 9, so that the support column 11 supports the stainless steel frame 5 and the fixed keel 2, facilitating the injection of the second glue layer 19. After the first glue layer 18 and the second glue layer 19 are cured, the indoor assembly of the glass and the steel structure is completed.
[0052] While embodiments of the application have been shown and described, it is to be understood that the embodiments described are merely divergences of the principles and spirit of the application and that numerous modifications, changes, replacements, and adaptations will occur to those skilled in the art. Therefore, the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A planar embedded magnet structure, characterized in that, Includes a fixed keel (2), a positioning keel (1) is fixed on one side of the fixed keel (2), a first pre-embedded magnet (3) is provided inside the positioning keel (1), a stainless steel frame (5) is fixed to the outside of the glass inside the fixed keel (2), a second pre-embedded magnet (6) is fixed inside the stainless steel frame (5), and the magnetic poles of the second pre-embedded magnet (6) and the first pre-embedded magnet (3) are opposite on the side with the same proximity. The stainless steel frame (5) and the fixed keel (2) are fixed together by reinforcing adhesive. The first embedded magnet (3) is provided with auxiliary embedded magnets (4) on both sides, and the auxiliary embedded magnets (4) are fixed inside the positioning keel (1). The auxiliary embedded magnets (4) have the same magnetic poles on the side close to the second embedded magnet (6). The stainless steel frame (5) has a clip (7) on one side surface, and the fixing keel (2) has a corresponding clip hole (8) on the inner wall of the side near the clip (7). The stainless steel frame (5) has a positioning protrusion (10) on the side surface away from the card strip (7), and the fixed keel (2) has a corresponding positioning groove (9) on the inner wall of the side near the positioning protrusion (10). The positioning protrusion (10) has an insertion hole (12) and a support post (11) is provided in the insertion hole (12). The end of the support post (11) away from the insertion hole (12) is located in the positioning groove (9). The reinforcing adhesive includes a first adhesive layer (18) and a second adhesive layer (19). The fixed keel (2) is also provided with a protrusion (13). The first adhesive layer (18) is located outside the protrusion (13), and the second adhesive layer (19) is located outside the supporting insert (11).
2. The planar embedded magnet structure according to claim 1, characterized in that, The first embedded magnet (3), the auxiliary embedded magnet (4), and the second embedded magnet (6) are all embedded magnets. The embedded magnet has a through hole (14) inside. The through hole (14) has a threaded outer sleeve (15) inside. The threaded outer sleeve (15) has a threaded hole (17) on one side, and a threaded inner sleeve (16) is threaded inside the threaded hole (17).
3. The planar embedded magnet structure according to claim 2, characterized in that, The cross-sectional shape of both the threaded outer fitting (15) and the threaded inner fitting (16) is T-shaped.
4. The construction process of a planar pre-embedded magnet structure according to claim 2, characterized in that, Includes the following steps: S1: Before construction, measure the fixed positions of the first embedded magnet (3) and the auxiliary embedded magnet (4) in advance, and use the threaded outer fitting (15) and the threaded inner fitting (16) to fix the first embedded magnet (3) and the auxiliary embedded magnet (4) on the positioning keel (1) respectively. S2: Fix the fixed keel (2) and the positioning keel (1) fixed thereto to the top and bottom of the wall; S3: Fix the second embedded magnet (6) on the stainless steel frame (5), and then slide the glass partition with the stainless steel frame (5) into the fixed keel (2). Under the action of the first embedded magnet (3), the stainless steel frame (5) can be quickly positioned in the fixed keel (2). The auxiliary embedded magnet (4) can help the construction worker to quickly find the approximate installation position of the glass partition. After that, the construction worker only needs to push the glass partition again to install the stainless steel frame (5) in place. S4: Using the positioning protrusion (10) and the insertion hole (12), it can be determined whether the glass and its steel structure are installed in place. Then, push the glass and its steel structure to move in the fixed keel (2) so that the clip (7) is inserted into the corresponding position of the clip hole (8). Using the protrusion (13), there can be a certain gap between the fixed keel (2) and the stainless steel frame (5), which facilitates the injection of the first adhesive layer (18). S5: When the stainless steel frame (5) abuts against the surface of the protrusion (13), insert the support post (11) into the insertion hole (12) of the positioning protrusion (10) and place the other end of the support post (11) in the positioning groove (9) to ensure that the support post (11) supports the stainless steel frame (5) and the fixed keel (2), so as to facilitate the injection of the second adhesive layer (19). After the first adhesive layer (18) and the second adhesive layer (19) are cured, the indoor assembly of the glass and its steel structure is completed.
Citation Information
Patent Citations
Large-span glass curtain wall
CN215519412U