Core material arrangement structure and composite insulation board with pre-buried perforated pre-buried anti-bending piece
By staggered core materials and embedded perforated flexural resistance design, the problem of insufficient flexural resistance of existing insulation core materials is solved, and the flexural strength and earthquake resistance of the insulation wall are significantly improved.
Patent Information
- Application Number
- CN202422072242.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-26
AI Technical Summary
The existing insulation core material has weak flexural resistance during construction, resulting in a slightly lower strength of the insulation wall formed.
The core material structure is adopted in an interlaced arrangement, and the insulation slurry is filled in the gap of the core material, while the perforated anti-flexural parts are embedded to connect the adjacent insulation core material.
Through the design of interlaced arrangement and embedded flexural resistance parts, the flexural strength and stability of the core material arrangement structure are significantly improved, and the overall earthquake resistance of the insulation wall is enhanced.
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Figure CN223034231U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of thermal insulation buildings, and particularly relates to a core material arrangement structure and a composite thermal insulation board pre-embedded with perforated pre-embedded anti-flexure members. Background Art
[0002] The external thermal insulation wall is a technology that can improve the thermal insulation performance of buildings, mainly realizing the thermal insulation function by cooperating the external wall with the thermal insulation core material; among them, the thermal insulation core material is an important link. The thermal insulation core material has functions such as fire prevention and heat insulation, and it can not only reduce energy consumption but also improve the living comfort.
[0003] In the construction process of the existing thermal insulation core materials, a plurality of thermal insulation core materials are connected by using thermal insulation slurry. The thermal insulation core materials are arranged horizontally and orderly, so that the slurry gaps are on the same horizontal line, and the overall anti-flexure ability is weak, and the strength of the formed thermal insulation wall is slightly low. Summary of the Utility Model
[0004] In order to solve the problems existing in the above-mentioned prior art, a core material arrangement structure and a composite thermal insulation board pre-embedded with perforated pre-embedded anti-flexure members are provided.
[0005] The technical solution adopted by the utility model to solve its technical problems is as follows:
[0006] The utility model proposes a core material arrangement structure, which is composed of several groups of thermally insulated core materials arranged in an interleaved manner. There are gaps between several groups of the thermally insulated core materials, and thermal insulation slurry is filled in the gaps and around all the thermally insulated core materials.
[0007] Preferably, the core material arrangement structure composed of several groups of the thermally insulated core materials is in a rectangular structure as a whole.
[0008] Preferably, the thermally insulated core material is in a rectangular structure.
[0009] Preferably, the width of the gap is not more than 50 mm; the width of the thermal insulation slurry filled around the thermally insulated core material is not more than 30 mm.
[0010] The utility model also proposes a composite thermal insulation board pre-embedded with perforated anti-flexure members, including: the core material arrangement structure described in any one of the above; wherein, several groups of pre-embedded perforated anti-flexure members are arranged in the gap to connect adjacent thermally insulated core materials.
[0011] Preferably, several groups of the pre-embedded perforated anti-flexure members are placed vertically between the upper and lower adjacent thermally insulated core materials, and other pre-embedded perforated anti-flexure members are placed horizontally between two columns of thermally insulated core materials to connect three adjacent groups of thermally insulated core materials.
[0012] Preferably, the embedded perforated flexural member includes an embedded cylinder placed in the gap. Both ends of the embedded cylinder are respectively connected with a resisting plate, and the inner sides of the two resisting plates are respectively attached to the two side walls of the thermal insulation core material.
[0013] Preferably, two convex platforms are connected to the outer side of the resisting plate. The two convex platforms are respectively located on both sides of the resisting plate, and a plurality of groups of through holes are formed in the convex platforms and the resisting plate.
[0014] Preferably, the convex platform is in an isosceles trapezoid structure, and a plurality of groups of protrusions are fixed on the two inclined sides of the convex platform.
[0015] Preferably, the embedded cylinder and one of the resisting plates are detachably connected. A snap ring is fixed at one end of the embedded cylinder, a clamping groove is formed in one of the resisting plates, and the snap ring is clamped with the clamping groove.
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0017] 1. In the core material arrangement structure of the present utility model, the thermal insulation core materials are arranged in a staggered manner, and thermal insulation slurry is filled in the gaps between the thermal insulation core materials. By adopting this layout, the gaps between adjacent thermal insulation core materials are staggered, further improving the overall flexural strength of the core material arrangement structure, enhancing the stability and tightness of the core material arrangement structure, and enabling it to have stronger earthquake resistance performance.
[0018] 2. The present utility model embeds the embedded perforated flexural member into the gap between adjacent thermal insulation core materials, and the thermal insulation slurry is poured to fix it. After fixing, the adjacent thermal insulation core materials are clamped and positioned. Through this structure, the adjacent thermal insulation core materials are connected, enhancing the overall flexural capacity. The embedded cylinder forms a reserved hole, which is convenient for subsequent installation of connecting pieces such as tie bolts, eliminating the drilling step, reducing the construction process, ensuring the integrity of the thermal insulation slurry after forming, and maintaining its high-strength flexural capacity.
[0019] 3. In the present utility model, the embedded cylinder and one of the resisting plates are detachably connected, which is convenient for quickly clamping and positioning the thermal insulation core material between the two resisting plates, saving the overall construction time. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The above and / or additional aspects and advantages of the present utility model will become obvious and easy to understand from the following description of the embodiments in conjunction with the accompanying drawings, in which:
[0021] Figure 1 is a schematic structural diagram of the core material arrangement structure of the present utility model.
[0022] Figure 2 is a schematic diagram of the perforated embedded flexural strengthening member of the present utility model.
[0023] Figure 3 is a three-dimensional structural schematic diagram of the embedded perforated flexural member of the present utility model.
[0024] Figure 4 is Figure 3 the front view (the dotted lines represent the internal structure) in
[0025] Description of the reference numerals in the drawings:
[0026] a. Core material arrangement structure;
[0027] a1. Thermal insulation core material; a2. Gap; a3. Thermal insulation slurry;
[0028] b. Embedded perforated flexural member;
[0029] b1. Embedded cylinder; b2. Bottom plate; b3. Boss; b4. Barbs; b5. Snap ring; b6. Card slot. Specific embodiments
[0030] In the description of the present utility model, it should be understood that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component.
[0031] In addition, the terms "long", "short", "inner", "outer", etc. indicating the orientation or position relationship are based on the orientation or position relationship shown in the drawings, and are only for the convenience of describing the present utility model, rather than indicating or implying that the component or element referred to must have this specific orientation or be constructed and operated in this specific orientation, so it should not be understood as a limitation of the present utility model.
[0032] The following will describe the present utility model in detail with reference to the specific embodiments shown in the drawings. However, these embodiments do not limit the present utility model, and any structural, method, or functional transformation made by those of ordinary skill in the art based on these embodiments is included in the protection scope of the present utility model.
[0033] As Figures 1-4 shown, this embodiment proposes a core material arrangement structure. The core material arrangement structure a is composed of several groups of thermally insulating core materials a1 arranged in an alternating manner. There is a gap a2 between several groups of thermally insulating core materials a1, and a thermal insulation slurry a3 is filled in the gap a2 and around all the thermally insulating core materials a1. The thermal insulation slurry a3 preferably uses GAEPS non-combustible thermal insulation slurry.
[0034] During the actual construction process, the gap a2 between the upper and lower thermal insulation core materials a1 is located between adjacent thermal insulation core materials a1, so that the horizontal gaps a2 in the two columns of thermal insulation core materials a1 are staggered. Thermal insulation slurry a3 is filled in the gap a2. Adopting this layout can further improve the flexural strength of the overall core material arrangement structure, enhance the stability and tightness of the core material arrangement structure, and endow it with stronger earthquake resistance performance.
[0035] In some embodiments, the overall core material arrangement structure a composed of several groups of thermal insulation core materials a1 is in a rectangular structure, which can maintain a certain aesthetic appearance and has a wider applicability; in some embodiments, the thermal insulation core material a1 is in a rectangular structure. There will be protruding parts in the core material arrangement structure a after the staggered arrangement and splicing of several thermal insulation core materials a1. The protruding parts are cut to make the core material arrangement structure a maintain a rectangular structure. The length of the thermal insulation core material a1 is 60 - 80 mm, and the width of the thermal insulation core material a1 is 26 - 30 mm. This plate type has a wider applicability, and the core material arrangement structure a formed by splicing is applicable to most construction environments.
[0036] In some embodiments, the width of the gap a2 and the thermal insulation slurry a3 filled therein is not more than 50 mm; the width of the thermal insulation slurry a3 filled around the thermal insulation core material a1 is not more than 30 mm; on the one hand, this width is used to better connect adjacent thermal insulation core materials a1 to make them an integral whole, and on the other hand, it reserves enough space for subsequent construction such as drilling.
[0037] The present utility model also proposes a pre-embedded composite thermal insulation board with a perforated flexural member, which includes any one of the above-mentioned core material arrangement structures. Among them, several groups of pre-embedded perforated flexural members b are arranged in the gap a2 to connect adjacent thermal insulation core materials a1; through this design, the stability between adjacent thermal insulation core materials a1 is further enhanced. By means of the reserved holes of the pre-embedded perforated flexural members b, subsequent cumbersome steps such as drilling are eliminated, which is convenient for subsequent rapid construction and shortens the overall construction period.
[0038] In some embodiments, several groups of pre-embedded perforated flexural members b are arranged vertically between the upper and lower adjacent thermal insulation core materials a1, and other pre-embedded perforated flexural members b are placed horizontally between two columns of thermal insulation core materials a1 to connect three adjacent groups of thermal insulation core materials a1; in this layout, the upper and lower two thermal insulation core materials a1 between columns are connected, and then the three adjacent groups of thermal insulation core materials a1 between two columns are connected to make them an integral whole, further enhancing the stability between the thermal insulation core materials a1 and improving its flexural strength.
[0039] As Figure 3As described above, in some embodiments, the embedded perforated flexural member b includes an embedded cylinder b1 embedded in the gap a2. At both ends of the embedded cylinder b1, there are respectively connected abutment plates b2. After the embedded cylinder b1 is connected to the abutment plates b2, there is a reserved hole position in the middle. The inner sides of the two abutment plates b2 are respectively attached to the two inner walls of the thermal insulation core material a1. During the process of filling the thermal insulation slurry a3, the embedded perforated flexural member b is placed therein. After the thermal insulation slurry a3 solidifies and forms, it is fixed in the gap a2, and the thermal insulation core material a1 is placed between the two abutment plates b2. The adjacent thermal insulation core materials a1 are clamped and connected through the abutment plates b2.
[0040] Furthermore, the abutment plate b2 has a rectangular structure. On the outer side of the abutment plate b2, there are two convex platforms b3. The convex platforms b3 are respectively located on both sides of the abutment plate b2 and are at the two long sides of the abutment plate b2. The convex platform b3 as a whole is a sheet-like structure and protrudes slightly, which is used to prevent the connecting member from directly contacting the thermal insulation slurry a3 and causing certain damage to it. A number of groups of through holes are provided on the convex platform b3 and the abutment plate b2. When pouring slurries such as cement, it is convenient for the slurry to pass through the through holes and contact the formed thermal insulation slurry a3, enhancing the tightness among the three and improving the overall strength.
[0041] Furthermore, the convex platform b3 has an isosceles trapezoidal structure. A number of groups of barbs b4 are fixed on the two inclined sides of the convex platform b3. By means of the convex platform b3, other connecting members are prevented from directly contacting the thermal insulation slurry a3 and causing certain damage to it. The barbs b4 are provided to increase the friction with other connecting members and prevent the connecting members from being deflected or the like.
[0042] As Figure 4 shown, in this embodiment, the embedded cylinder b1 and one of the abutment plates b2 are detachably connected. One end of the embedded cylinder b1 is fixed with a snap ring b5. The cross-section of the snap ring b5 is triangular and is made of plastic material. A slot b6 is provided in one of the abutment plates b2. The slot b6 includes an inclined inlet at the bottom and a placement groove, and the two are connected. The snap ring b5 enters the inclined inlet and the placement groove in sequence and is clamped with the slot b6 to become an integral body. Through the split structure, it is convenient for rapid construction to clamp the thermal insulation core material a1 between the two abutment plates b2, saving the overall construction time.
[0043] It should be noted that the overall embedded perforated flexural member b in this embodiment is made of plastic material, which is convenient for processing and forming and can save certain costs.
[0044] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and purposes of the present invention. The scope of the present invention is defined by the claims and their equivalents.
Claims
1. A core material arrangement structure (a), characterized in that: The core material arrangement structure (a) is composed of a plurality of groups of thermal insulation core materials (a1) arranged in a staggered manner, and there are gaps (a2) between the plurality of groups of the thermal insulation core materials (a1). The gaps (a2) and the periphery of all the thermal insulation core materials (a1) are filled with thermal insulation slurry (a3).
2. A core material arrangement structure according to claim 1, characterized in that: The core material arrangement structure (a) composed of several groups of the thermal insulation core materials (a1) is in a rectangular structure as a whole.
3. A core material arrangement structure according to claim 1, characterized in that: The thermal insulation core material (a1) has a rectangular structure.
4. The core material arrangement structure according to claim 1, characterized in that: The width of the gap (a2) is not greater than 50 mm; the width of the thermal insulation slurry (a3) filled around the thermal insulation core material (a1) is not greater than 30 mm.
5. A composite insulation board with pre-embedded perforated anti-bending parts, characterized in that: include: The core material arrangement structure according to any one of claims 1 to 4; Wherein, a plurality of groups of pre-buried perforated anti-bending parts (b) are arranged in the gap (a2) to connect adjacent thermal insulation core materials (a1).
6. The composite thermal insulation board with pre-embedded perforated anti-bending parts according to claim 5 is characterized in that: Several groups of the pre-buried perforated anti-folding members (b) are vertically placed between upper and lower adjacent thermal insulation core materials (a1), and other pre-buried perforated anti-folding members (b) are horizontally placed between two rows of thermal insulation core materials (a1) to connect three adjacent groups of thermal insulation core materials (a1).
7. The composite thermal insulation board with pre-embedded perforated anti-bending parts according to claim 5 is characterized in that: The embedded perforated anti-bending member (b) comprises an embedded tube (b1) placed in the gap (a2), and both ends of the embedded tube (b1) are respectively connected to abutment plates (b2), and the inner sides of the two abutment plates (b2) are respectively in contact with the two side walls of the thermal insulation core material (a1).
8. The composite thermal insulation board with pre-embedded perforated anti-bending parts according to claim 7 is characterized in that: Two bosses (b3) are connected to the outer side of the abutment plate (b2), and the two bosses (b3) are respectively located on both sides of the abutment plate (b2), and a plurality of through holes are opened on the bosses (b3) and the abutment plate (b2).
9. The composite thermal insulation board with pre-embedded perforated anti-bending parts according to claim 8 is characterized in that: The boss (b3) is in an isosceles trapezoidal structure, and a plurality of groups of protrusions (b4) are fixed on two oblique sides of the boss (b3).
10. The composite thermal insulation board with pre-embedded perforated anti-bending parts according to any one of claims 7 to 9, characterized in that: The embedded tube (b1) is detachably connected to one of the abutment plates (b2); a clamping ring (b5) is fixed to one end of the embedded tube (b1); a clamping groove (b6) is provided in one of the abutment plates (b2); and the clamping ring (b5) is clamped to the clamping groove (b6).