Insulating panel with a water droplet-shaped bonding structure

The teardrop-shaped connecting structure in heat insulation panels enables easy assembly and stable bonding, addressing installation delays and improving insulation performance by maximizing coupling force and airtightness.

JP2026525365APending Publication Date: 2026-07-29ヒョンヨン グン
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
ヒョンヨン グン
Filing Date
2024-10-18
Publication Date
2026-07-29

AI Technical Summary

Technical Problem

Conventional heat insulation panels experience installation delays and reduced insulation performance due to steps formed during construction, which are difficult to avoid without skilled labor and require additional processes to rectify.

Method used

A teardrop-shaped connecting structure with flexible insulating members and connecting means that allow easy assembly, maximize coupling force and airtightness, and utilize a foamed material for stable bonding, preventing steps and enhancing insulation performance.

Benefits of technology

Facilitates quick and efficient installation by beginners, maintains airtight connections, and enhances insulation performance by stable bonding with a foamed material, reducing material usage and construction time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention is characterized by comprising: a heat insulating member 100 made of rigid urethane or rigid foam; a first connecting means 210 comprising a first fixing projection 212 configured at one end of the heat insulating member 100 and spaced apart at predetermined intervals, and a first projection coupling groove 216 formed between the first fixing projections 212; and a second connecting means 220 comprising a second projection coupling groove 226 configured at the other end of the heat insulating member 100 into which the first fixing projections 212 are inserted so as to connect the first connecting means 210 when heat insulating panels are connected; a second fixing projection 222 that supports the first fixing projection 212 so as to be inserted into and fixed in the second projection coupling groove 226; and a third fixing projection 224 configured between the second fixing projections 222 and inserted into the first projection coupling groove 216.
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Description

Technical Field

[0001] The present invention relates to a heat insulation panel having a water droplet-shaped coupling structure. More specifically, it relates to a soft heat insulation member and both side end portions of the heat insulation member, which are respectively configured to easily and simply connect a large number of heat insulation members by a connecting member. Of course, it is possible to prevent the occurrence of a step during connection, so that the time and process for constructing the heat insulation panel can be shortened. The present invention relates to a heat insulation panel having a water droplet-shaped coupling structure.

Background Art

[0002] Generally, as building heat insulation panels, plywood using wood, fiber boards using glass fibers, EPS panels using foamed polystyrene, urethane panels using polyurethane foam, sandwich panels, etc. are used.

[0003] In the case of such a heat insulation panel according to the conventional technology, in order to fix it to the outer wall, after injecting or filling urethane foam between the heat insulation panels and waiting for a certain period of time until it hardens, the urethane foam exposed outside the heat insulation panel is removed, and then it is constructed on the outer wall.

[0004] However, as shown in FIG. 1, in the case of a heat insulation panel 20 according to the conventional technology, when constructing it on the outer wall 10, if it is not a skilled expert, a step 22 will occur between the heat insulation panels 20, and another process for solving the problem of this step 22 must be carried out. This will not only delay the construction of the heat insulation panel 20, but also not only reduce the construction completion degree of the heat insulation panel 20 due to the step 22, but also significantly reduce the heat insulation effect.

Summary of the Invention

Problems to be Solved by the Invention

[0005] To solve these problems, the present invention was devised based on the aforementioned background technology and aims to provide an insulating panel having a teardrop-shaped connecting structure that allows even beginners to easily and simply connect a large number of insulating members using a flexible insulating member and connecting members formed on both ends of the insulating member, each having a teardrop shape.

[0006] Furthermore, the present invention aims to provide an insulating panel having a teardrop-shaped bonding structure that can prevent the occurrence of steps when connecting a large number of insulating panels, thereby shortening the time and process required for the installation of insulating panels.

[0007] Furthermore, the present invention aims to provide a heat insulating panel having a teardrop-shaped coupling structure in which the teardrop-shaped coupling means, whose cross-sectional area gradually widens towards the ends, are connected to each other by a fitting method, thereby maximizing the coupling force and airtightness between the coupling means.

[0008] Furthermore, the present invention aims to provide an insulating panel having a droplet-shaped bonding structure in which a foamed material such as urethane foam is filled between the bonding means that are fitted together, thereby allowing the bonding means to be more tightly bonded by the foamed material, maintaining the bonded state stably for a long period of time, and further maximizing the heat insulation performance. [Means for solving the problem]

[0009] According to one embodiment of the present invention for achieving the above objectives, the present invention is characterized by comprising: a heat insulating member 100 made of rigid urethane or rigid foam; a first connecting means 210 comprising a first fixing projection 212 configured at one end of the heat insulating member 100 and spaced apart at predetermined intervals, and a first projection coupling groove 216 formed between the first fixing projections 212; a second connecting means 220 comprising a second projection coupling groove 226 configured at the other end of the heat insulating member 100 into which the first fixing projections 212 are inserted so as to connect the first connecting means 210 when the heat insulating panels are connected; a second fixing projection 222 that supports the first fixing projection 212 so as to be inserted into and fixed in the second projection coupling groove 226; and a third fixing projection 224 configured between the second fixing projections 222 and inserted into the first projection coupling groove 216.

[0010] According to one embodiment of the present invention, the first to third fixing protrusions 212, 222, and 224 are configured to have a shape in which their cross-sectional area gradually widens towards the tip.

[0011] According to one embodiment of the present invention, the first connecting means 210 is further provided with first projection attachment portions 214, which are configured on the upper and lower parts of the outer tip and are configured to have a predetermined curvature so that the second fixing projection 222 is tightly attached to them.

[0012] According to one embodiment of the present invention, the first fixing projection 212 is further provided with a first recessed groove portion 212a that forms a filling groove 420 so that a filling member is filled after it is connected with the second connecting means 220.

[0013] According to one embodiment of the present invention, the second fixing projection 222 is further provided with a second recessed groove 222a that supports the first fixing projection 212 so that when the first and second connecting means 210 and 220 are connected, the outer surface of one end of the first fixing projection 212 is in close contact with it, and a filling groove 420 is formed so that the filling material is filled.

[0014] According to one embodiment of the present invention, the third fixing projection 224 is further provided with a third groove portion 224a into which the outer surface of one end portion of the first fixing projection 212 is joined while in close contact.

[0015] According to one embodiment of the present invention, the heat insulating member 100 is further characterized in that a panel member 300 including an exterior board is provided. [Effects of the Invention]

[0016] According to the embodiments of the present invention described above, a soft heat insulating member and connecting members formed at both ends of the heat insulating member, each having a teardrop-shaped connecting means, allow even beginners to easily and simply connect a large number of heat insulating members.

[0017] Furthermore, according to the embodiment of the present invention, it is possible to prevent the occurrence of steps when connecting a large number of insulation panels, thus having the effect of shortening the time and process required for the installation of insulation panels.

[0018] Furthermore, according to the above embodiment of the present invention, the teardrop-shaped connecting means, which have a shape in which the cross-sectional area gradually widens towards the tip, are configured to be joined to each other by a fitting method, thereby maximizing the bonding force and airtightness between the connecting means.

[0019] Furthermore, according to the above embodiment of the present invention, by configuring the connection means to be filled with a foamed material such as urethane foam between them, the connection means are more tightly bonded by the foamed material, and the bonded state can be stably maintained for a long period of time, as well as the effect of further maximizing the heat insulation performance. [Brief explanation of the drawing]

[0020] [Figure 1] This diagram schematically shows the installation status of insulation panels using conventional technology. [Figure 2]A cross-sectional view showing a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 3] A cross-sectional view showing a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 4] An enlarged view showing a connecting member of a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 5] A view schematically showing a state in which a filling member is filled in a space portion between heat insulation panels having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 6] Another embodiment showing a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 7] Another embodiment showing a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 8] Another embodiment showing a heat insulation panel having a water droplet-shaped coupling structure according to an embodiment of the present invention. [Figure 9] A view schematically showing a process in which heat insulation panels having a water droplet-shaped coupling structure according to an embodiment of the present invention are coupled.

Mode for Carrying Out the Invention

[0021] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.

[0022] As shown in the figure, the heat insulation panel having a water droplet-shaped coupling structure of the present invention includes a heat insulation member 100 made of a hard heat insulation material, and a connecting member 200 that is coupled to both end portions of the heat insulation member 100 and connects a plurality of heat insulation members 100 in a fitting manner.

[0023] The heat insulation member 100 is made of a material such as rigid urethane or rigid foam, and is made of a material that has a predetermined elastic force and does not easily break.

[0024] Such a thermal insulation member 100 may be configured to have a rectangular shape, but is not limited thereto.

[0025] The connecting member 200 includes a first connecting means 210 which is connected to one end of the heat insulating member 100, and a second connecting means 220 which is connected to the other end of the heat insulating member 100 at a position opposite to the first connecting means 210 and is connected to the first connecting means 210 by a fitting method when the heat insulating members 100 are connected to each other.

[0026] Such a connecting member 200 is preferably formed to be long along the vertical longitudinal direction of the heat insulating member 100, but is not limited thereto.

[0027] Furthermore, the first and second connecting means 210 and 220 that connect the insulation panels to each other are configured to have a roughly teardrop-shaped cross-section.

[0028] Furthermore, it is preferable that the thermal insulation member 100 be made of the same material, but it is not limited to this.

[0029] The first connecting means 210 includes a first fixed projection 212 formed in the shape of a water droplet and configured at predetermined intervals to be detachably coupled to a second projection coupling groove 226 of the second connecting means 220, which will be described later; a first projection attachment portion 214 configured on the outer surface side of the first fixed projection 212 to which the second fixed projection 222 of the second connecting means 220 is attached; and a first projection coupling groove 216 formed between the first fixed projections 212 to which the third fixed projection 216 of the second connecting means 220 is detachably coupled.

[0030] Here, the first projection attachment portion 214 is configured on the upper and lower parts of the outer tip of the first connecting means 210, respectively, and is configured to have a predetermined curvature to support the second fixing projection 222 of the second connecting means 220, which will be described later, so that it can be tightly attached.

[0031] In other words, the first projection attachment portion 214 is configured with a curvature corresponding to the curvature of the outer surface of the second fixing projection 222, which has a water droplet shape, and supports the first and second connecting means 210 and 220 so that a tight connection is made when they are joined.

[0032] The first fixing projection 212 is configured to be spaced apart in the thickness direction of the connecting member 200, and in this invention, it may consist of two projections.

[0033] The first fixing projection 212 is configured such that its cross-sectional area gradually widens towards one end portion which is configured to connect and tightly adhere to the second projection coupling groove 226. On the other end portion opposite to this, a first recessed groove portion 212a is formed which forms a filling groove 420 so that a filling material such as urethane foam or silicone is filled into it after it is connected to the second connecting means 220.

[0034] The second connecting means 220 is configured to have the same shape as the first fixing projection 212, the first projection attachment portion 214, and the first projection coupling groove 216 of the first connecting means 210, and includes a second fixing projection 222, a third fixing projection 224, and a second projection coupling groove 226 so that the first connecting means 210 is detachably connected.

[0035] Here, the second fixing projection 222 is configured on the upper and lower parts of the outer tip of the second connecting means 220, respectively, and is attached to the first projection attachment portion 214 of the first connecting means 210, and supports the first fixing projection 212 so that it can be inserted into and fixed in the second projection coupling groove 226.

[0036] Similar to the first fixing projection 212, the second fixing projection 222 has a second groove 222a formed therein, which ensures a tight connection between the first and second connecting means 210 and 220 when the first fixing projection 212 is joined, with the outer surface of one end of the first fixing projection 212 in close contact with it.

[0037] Furthermore, the third fixing projection 224 is formed between the second fixing projections 222 and is formed coaxially with the first projection coupling groove 216 of the first connecting means 210.

[0038] Such a third fixing projection 224 is coupled to a first projection coupling groove 216 configured in the first connecting means 210, and a third recessed groove portion 224a is formed in which the outer surface of one end of the first fixing projection 212 is tightly coupled while in close contact.

[0039] Specifically, the first and second fixing protrusions 212 and 222 are configured such that when the first and second connecting means 210 and 220 are connected, their respective outer surfaces interlock with each other via the first and second groove portions 212a and 222a, so that the first fixing protrusion 212 is connected to the second protrusion connecting groove 226. The first fixing protrusion 212 and the third fixing protrusion 224 are configured such that they interlock with each other via the first and third groove portions 212a and 224a, so that the third fixing protrusion 224 is connected to the second protrusion connecting groove 226.

[0040] Furthermore, the second and third grooves 222a and 224a can also form filling grooves 420 in the same way as the first groove 212a, so that a filling material can be filled into them.

[0041] Here, the filling groove 420 is formed in the first and second projection coupling grooves 216, 226 and the first and second projection attachment portions 216, 226, and consists of a predetermined separation space formed when the first to third fixing projections 212, 222, 224 are coupled, thereby enabling a tighter coupling between the first to third fixing projections 212, 222, 224 when the filling member is filled.

[0042] With the present invention configured in this way, the interlocking and fitted first to third fixing protrusions 212, 222, and 224 form a perfect air-blocking structure in the teardrop shape, significantly reducing the use of urethane foam or silicone used in conventional insulation boards or interior / exterior materials.

[0043] As configured in this way, the present invention is configured such that when the first connecting means 210 is connected to the second connecting means 220, a predetermined compression occurs from the parts that come into contact with each other, and when the connection is made by complete insertion, the compressed first and second connecting means 210 and 220 are restored to their original state, resulting in a tighter connection, thereby maximizing airtightness.

[0044] On the other hand, as shown in Figure 6, the thermal insulation member 100 of the present invention may further be configured with panel members 300 including exterior boards on its upper and lower surfaces, respectively.

[0045] In this configuration, the panel member 300 can be configured to be connected to the connecting member 200, which will be described later. Preferably, the tip of the panel member 300 can be configured to be on the same line as the tip of the first fixing projection 212 on the first connecting means 210 side of the connecting member 200, and on the second connecting means 220 side of the connecting member 200 opposite to this, a groove can be formed up to the point where the first recessed groove 212a of the second fixing projection 222 begins. When the heat insulating panels are connected, the panel member 300 configured on the first connecting means 210 side and the panel member 300 configured on the second connecting means 220 side can be connected so that they are in contact with each other, as shown in Figure 8.

[0046] Furthermore, the present invention may include insertion grooves 230 into which both ends of the heat insulating member 100 are inserted, so that the heat insulating member 100 is inserted and fixed into the connecting member 200.

[0047] In other words, the present invention allows the heat insulating member 100 and the connecting member 200 to be configured as a single unit, but is not limited thereto, and the connecting member 200 can be detachably connected to the heat insulating member 100.

[0048] On the other hand, in the present invention, the panel member 300 can be configured to be inserted into and fixed in an insertion groove 230 formed in the connecting member 200.

[0049] In this case, it is preferable that the panel member 300 is further provided with a stepped portion 310 formed on the end side that is in contact with the connecting member 200, and configured so that its outer surface is aligned with the connecting member 200. [Explanation of Symbols]

[0050] 100: Insulation material 200: Connecting member 210: First connection means 212: 1st fixing protrusion 212a: First groove part 214: 1st protrusion seating part 216: 1st protrusion coupling groove 220:Second connection means 222:Second fixed protrusion 222a: Second groove part 224:Third fixed protrusion 224a: Third groove part 226: 2nd protrusion coupling groove 230: Insertion groove 300: Panel component 310: Stepped section 420: Filling groove

Claims

1. An insulating member 100 made of rigid urethane or rigid foam, The first connecting means 210 includes a first fixing projection 212 formed on one end of the heat insulating member 100 and spaced apart at a predetermined interval, and a first projection coupling groove 216 formed between the first fixing projections 212, The second connecting means 220 includes a second projection coupling groove 226 formed at the other end of the heat insulating member 100 into which the first fixing projection 212 is inserted so that the first connecting means 210 is connected when the heat insulating panels are connected, a second fixing projection 222 that supports the first fixing projection 212 so that it is inserted into and fixed in the second projection coupling groove 226, and a third fixing projection 224 formed between the second fixing projections 222 and inserted into the first projection coupling groove 216, A thermal insulation panel having a droplet-shaped bonding structure, characterized by including the following:

2. The first to third fixed protrusions 212, 222, and 224 are, A heat insulating panel having a teardrop-shaped bonding structure as described in claim 1, characterized in that its cross-sectional area gradually widens towards the tip.

3. The first connecting means 210 includes, The first projection attachment portion 214 is formed on the upper and lower parts of the outer tip, respectively, and is configured to have a predetermined curvature so that the second fixing projection 222 is tightly attached to it. A thermal insulation panel having a droplet-shaped bonding structure according to claim 1, characterized in that it is further composed of the above.

4. The first fixing projection 212 has, The heat insulating panel having a droplet-shaped coupling structure according to claim 1, further characterized in that a first recessed groove portion 212a is provided to form a filling groove 420 so that a filling member is filled after coupling with the second coupling means 220.

5. The second fixed projection 222 has, A heat insulating panel having a teardrop-shaped coupling structure according to claim 1, further characterized in that when the first and second coupling means 210 and 220 are coupled, a second recessed groove portion 222a is provided to support the coupling so that the outer surface of one end of the first fixing projection 212 is in close contact with the coupling, and to form a filling groove 420 so that a filling material is filled.

6. The third fixing projection 224 has, The heat insulating panel having a teardrop-shaped bonding structure according to claim 1, further characterized in that a third recessed groove portion 224a is formed, into which the outer surface of one end portion of the first fixing projection 212 is joined while in close contact.

7. The aforementioned heat insulating member 100 includes, The thermal insulation panel having a droplet-shaped bonding structure according to claim 1, further characterized in that a panel member 300 including an exterior board is also included.