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JP2008121757A - Vacuum insulation material and refrigerator - Google Patents

Vacuum insulation material and refrigerator Download PDF

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JP2008121757A
JP2008121757A JP2006305072A JP2006305072A JP2008121757A JP 2008121757 A JP2008121757 A JP 2008121757A JP 2006305072 A JP2006305072 A JP 2006305072A JP 2006305072 A JP2006305072 A JP 2006305072A JP 2008121757 A JP2008121757 A JP 2008121757A
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outer packaging
heat insulating
packaging material
vacuum heat
box
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JP2008121757A5 (en
JP4781235B2 (en
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Shinichi Ohori
進一 大堀
Takeshi Uchida
武 内田
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Sharp Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a vacuum insulation material using a commercial laminate film to integrally form a heat insulating box body without requiring a large machining device and a machining space. <P>SOLUTION: The vacuum insulation material 100 comprises a core material 10, and a gas-barrier capsule material 20 arranged over both faces of the core material 10 to cover the core material 10. The core material 10 is shaped as the box body opened at one face and developed with its side face 12 extending around a bottom face 11. The capsule material 20 includes a first capsule material 20a and a second capsule material 20b arranged on one face of the core material 10, and a third capsule material 20c and a fourth capsule material 20d arranged on the other face of the core material. The end of the first capsule material 20a and the end of the second capsule material 20b are joined to each other with thermal deposition to form a first lug portion 22a, and the end of the third capsule material 20c and the end of the fourth capsule material 20d are joined to each other with thermal deposition to form a second lug portion 22b. The core material 10 covered with the capsule material 20 has a bent portion 13 formed by compression molding. <P>COPYRIGHT: (C)2008,JPO&INPIT

Description

この発明は、真空断熱材と、それを用いた冷蔵庫に関する。   The present invention relates to a vacuum heat insulating material and a refrigerator using the same.

冷蔵庫、保冷庫、保温庫等、各種食品等を加温、冷却してその温度を保つことを目的として使用される箱体には、種々の構造・性能を有する断熱材が使用されている。特に、真空断熱材は非常に優れた断熱性を実現することができるため、多くの用途に使用されている。   Insulators having various structures and performances are used for boxes used for the purpose of heating and cooling various foods, such as refrigerators, cold storages, and heat storages, to maintain the temperature. In particular, the vacuum heat insulating material can realize a very good heat insulating property, and is used in many applications.

真空断熱材は、一般的に、芯材を外包材に充填した後密閉し、外包材の内部を減圧し、外包材内部の減圧状態を維持することで断熱性能を発揮するものである。   The vacuum heat insulating material generally exhibits heat insulating performance by filling a core material into an outer packaging material and then sealing, depressurizing the inside of the outer packaging material, and maintaining a reduced pressure inside the outer packaging material.

従来、冷蔵庫において、樹脂フィルムと金属箔を積層したラミネートフィルムや、樹脂フィルムと金属材料または無機材料の蒸着層を有するフィルムを積層したラミネートフィルムを外包材とした真空断熱材が多く使用されている。   Conventionally, in a refrigerator, a vacuum insulating material using a laminate film obtained by laminating a resin film and a metal foil or a laminate film obtained by laminating a resin film and a film having a vapor deposition layer of a metal material or an inorganic material has been widely used. .

例えば、特開2001−336691号公報(特許文献1)と特開2003−293256号公報(特許文献2)には、折り曲げて加工をすることが可能な真空断熱材が記載されている。
特開2001−336691号公報 特開2003−293256号公報
For example, JP 2001-336691 A (Patent Document 1) and JP 2003-293256 A (Patent Document 2) describe a vacuum heat insulating material that can be bent and processed.
JP 2001-336691 A JP 2003-293256 A

しかしながら、真空断熱材の外包材を金属または樹脂成型体とした場合、商品モデル展開における真空断熱材の形状変更の都度、成型体の成型金型が必要となるなど汎用性に乏しいという問題がある。   However, when the outer packaging material of the vacuum heat insulating material is a metal or resin molded body, there is a problem that it is poor in versatility, for example, a molding die for the molded body is required every time the shape of the vacuum heat insulating material is changed in product model development. .

また、現在市販されているラミネートフィルムの幅は1600mm以下であることから、上記の真空断熱材をはじめとして、大判の真空断熱材は作製されていない。そのため、冷蔵庫本体のような大きな機器全体の断熱性能を向上させるためには、複数枚の真空断熱材を冷蔵庫本体等の各面に合わせて貼り付ける必要があった。真空断熱材の外周部、すなわち余剰な外包材の処理部にはきれいな辺を形成することが難しいため、このように複数枚の真空断熱材を貼り付けて断熱箱体を形成すると、各真空断熱材の隣接部には少なからず隙間が生じる。そのため、隣接する真空断熱材の境界での熱漏洩量が多くなる。   Moreover, since the width | variety of the laminate film marketed now is 1600 mm or less, the large-sized vacuum heat insulating material including said vacuum heat insulating material is not produced. Therefore, in order to improve the heat insulation performance of the entire large device such as the refrigerator main body, it is necessary to attach a plurality of vacuum heat insulating materials to each surface of the refrigerator main body or the like. Since it is difficult to form a clean side at the outer peripheral portion of the vacuum heat insulating material, that is, the processing portion of the excess outer packaging material, if a plurality of vacuum heat insulating materials are attached in this way to form a heat insulating box, each vacuum heat insulating material Not a few gaps occur in adjacent parts of the material. Therefore, the amount of heat leakage at the boundary between adjacent vacuum heat insulating materials increases.

さらに、特開2001−336691号公報(特許文献1)と特開2003−293256号公報(特許文献2)に記載の真空断熱材を折り曲げて形成される箱体は、2つの開口面が対向した筒状となり、1面のみを開口面とする箱体を形成するためには、2つの開口面のうちのどちらか一方を、別の真空断熱材で覆う必要がある。また、特開2001−336691号公報(特許文献1)と特開2003−293256号公報(特許文献2)に記載の真空断熱材を利用して、例えば冷蔵庫等の大きな機器の天面、底面、両側面を覆うためには、長尺の真空断熱材を形成する必要があるとともに、このような長尺の真空断熱材の折り曲げ加工においては、折り曲げによる真空断熱材の立上げ面の長さが長くなるために、加工装置および加工スペースの大型化が余儀なくされる。   Furthermore, the box body formed by bending the vacuum heat insulating material described in Japanese Patent Application Laid-Open No. 2001-336691 (Patent Document 1) and Japanese Patent Application Laid-Open No. 2003-293256 (Patent Document 2) has two opening surfaces facing each other. In order to form a cylindrical body having only one surface as an opening surface, it is necessary to cover one of the two opening surfaces with another vacuum heat insulating material. Moreover, using the vacuum heat insulating materials described in JP 2001-336691 A (Patent Document 1) and JP 2003-293256 A (Patent Document 2), for example, the top surface, bottom surface, In order to cover both side surfaces, it is necessary to form a long vacuum heat insulating material, and in the bending process of such a long vacuum heat insulating material, the length of the rising surface of the vacuum heat insulating material by bending is long. In order to increase the length, the processing apparatus and the processing space must be enlarged.

そこで、本発明の目的は、市販のラミネートフィルムを用いて、大型の加工装置や加工スペースを必要とすることなく、断熱箱体を一体的に形成することができる大判の真空断熱材を提供することである。   Therefore, an object of the present invention is to provide a large-sized vacuum heat insulating material capable of integrally forming a heat insulating box using a commercially available laminate film without requiring a large processing apparatus or processing space. That is.

この発明に従った真空断熱材は、芯材と、芯材の両面に配置されて芯材を覆うガスバリヤ性の外包材とを備え、芯材は、一面が開口している箱体の展開図として、底面を中心として底面の周囲に側面が延在する形状を有し、外包材は、芯材の一方の面に配置される第一の外包材と第二の外包材と、芯材の他方の面に配置される第三の外包材と第四の外包材とを含み、第一の外包材の端部と第二の外包材の端部とが熱溶着によって接合されて第一の接合面が形成され、第三の外包材の端部と前記第四の外包材の端部とが熱溶着によって接合されて第二の接合面が形成され、外包材で覆われた芯材には、圧縮成型によって凹部が形成されている。   A vacuum heat insulating material according to the present invention includes a core material and a gas barrier outer packaging material that is disposed on both sides of the core material and covers the core material, and the core material is a developed view of a box body that is open on one side. As described above, the outer packaging material has a shape extending around the bottom surface around the bottom surface, and the outer packaging material includes a first outer packaging material and a second outer packaging material arranged on one surface of the core material, A third outer packaging material and a fourth outer packaging material disposed on the other surface, wherein the end of the first outer packaging material and the end of the second outer packaging material are joined by thermal welding to form the first outer packaging material. A joining surface is formed, and an end of the third outer packaging material and an end of the fourth outer packaging material are joined by thermal welding to form a second joining surface, and the core material covered with the outer packaging material Has a recess formed by compression molding.

このようにすることにより、市販のラミネートフィルムを用いて、大判の真空断熱材を作製することができる。大判の真空断熱材を用いることによって、断熱性能及び省エネルギーに優れた冷蔵庫等の機器を提供することができる。また、凹部で折り曲げることができるので、一枚の真空断熱材で断熱箱体を形成することができる。   By doing in this way, a large-sized vacuum heat insulating material can be produced using a commercially available laminate film. By using a large-sized vacuum heat insulating material, a device such as a refrigerator excellent in heat insulating performance and energy saving can be provided. Moreover, since it can bend | folded by a recessed part, a heat insulation box can be formed with one vacuum heat insulating material.

また、芯材は、一面が開口している箱体の展開図として、底面を中心として底面の周囲に側面が延在する形状を有するので、折り曲げによる真空断熱材の立ち上げ面の長さを短くすることができる。このため、市販のラミネートフィルムを用いて、大型の加工装置や加工スペースを必要とすることなく、断熱箱体を一体的に形成することができる大判の真空断熱材を提供することができる。   In addition, the core material has a shape in which the side surface extends around the bottom surface with the bottom surface as the center as a development view of the box with one surface open, so the length of the rising surface of the vacuum heat insulating material by bending is Can be shortened. For this reason, the large-sized vacuum heat insulating material which can form a heat insulation box integrally can be provided, without using a large sized processing apparatus and processing space using a commercially available laminate film.

この発明に従った真空断熱材においては、熱溶着された第一と第二の接合面のそれぞれは、外包材の表面に沿うように折り畳まれて外包材の表面に接着され、外包材の表面に接着された第一の接合面は、外包材の表面に接着された第二の接合面と対向しないように配置されていることが好ましい。   In the vacuum heat insulating material according to the present invention, each of the heat-welded first and second joining surfaces is folded along the surface of the outer packaging material and bonded to the surface of the outer packaging material, and the surface of the outer packaging material It is preferable that the first bonding surface bonded to the second bonding surface is disposed so as not to face the second bonding surface bonded to the surface of the outer packaging material.

このようにすることにより、熱溶着部を含む辺の熱溶着性と真空断熱材の加工性を向上させることができる。   By doing in this way, the heat weldability of the edge | side including a heat welding part and the workability of a vacuum heat insulating material can be improved.

この発明に従った真空断熱材においては、外包材は、芯材の形状に沿って熱溶着されて製袋されていることが好ましい。   In the vacuum heat insulating material according to the present invention, it is preferable that the outer packaging material is heat-sealed along the shape of the core material to form a bag.

このようにすることにより、真空断熱材の加工性を向上させることができる。   By doing in this way, the workability of a vacuum heat insulating material can be improved.

この発明に従った真空断熱材においては、外包材は、芯材の周囲において周の長さが最短になるように熱溶着されて製袋されていることが好ましい。   In the vacuum heat insulating material according to the present invention, it is preferable that the outer packaging material is heat-sealed so as to have the shortest circumference around the core material.

このようにすることにより、真空断熱材の加工性を向上させることができる。   By doing in this way, the workability of a vacuum heat insulating material can be improved.

この発明に従った冷蔵庫は、凹部に沿って折られて箱状に形成された上記のいずれかの真空断熱材を備え、外包材において熱溶着された部分は、芯材が存在しない部分を含み、芯材が存在しない外包材の熱溶着部分の一部に孔が形成されていることが好ましい。   A refrigerator according to the present invention includes any one of the above vacuum heat insulating materials formed in a box shape by being folded along a concave portion, and the heat-sealed portion of the outer packaging material includes a portion where no core material is present. In addition, it is preferable that a hole is formed in a part of the heat-welded portion of the outer packaging material in which no core material is present.

上記のいずれかの真空断熱材を用いて形成した断熱箱体を冷蔵庫に利用することにより、断熱性能の良い真空断熱材が覆う面積を従来より大幅に向上することができる。   By using the heat insulation box formed using any one of the above vacuum heat insulating materials for the refrigerator, the area covered by the vacuum heat insulating material having good heat insulating performance can be significantly improved as compared with the conventional case.

このようにすることにより、ドレンパイプや電気配線の配置が容易で、断熱性能と省エネルギーに優れた冷蔵庫を提供することができる。   By doing in this way, arrangement | positioning of a drain pipe or an electrical wiring is easy, and the refrigerator excellent in heat insulation performance and energy saving can be provided.

この発明に従った冷蔵庫は、外箱と、外箱の内側に配置される内箱とを備え、外箱と内箱との間に空間を有し、空間内には、凹部に沿って折られて箱状に形成された上記のいずれかの真空断熱材が挿入されて、空間内には、発泡断熱材が充填されていることが好ましい。   The refrigerator according to the present invention includes an outer box and an inner box disposed inside the outer box, and has a space between the outer box and the inner box, and the space is folded along the recess. It is preferable that any one of the above-described vacuum heat insulating materials formed in a box shape is inserted and the space is filled with a foam heat insulating material.

上記のいずれかの真空断熱材を用いて形成した断熱箱体を冷蔵庫に利用することにより、断熱性能の良い真空断熱材が覆う面積を従来より大幅に向上することができる。   By using the heat insulation box formed using any one of the above vacuum heat insulating materials for the refrigerator, the area covered by the vacuum heat insulating material having good heat insulating performance can be significantly improved as compared with the conventional case.

このようにすることにより、断熱性能と省エネルギーに優れた冷蔵庫を提供することができる。   By doing in this way, the refrigerator excellent in heat insulation performance and energy saving can be provided.

この発明に従った冷蔵庫は、外箱と、外箱の内側に配置される内箱とを備え、外箱と内箱との間に空間を有し、空間内には、凹部に沿って折られて箱状に形成された上記のいずれかの真空断熱材を備え、真空断熱材は、発泡断熱材によって覆われていることが好ましい。   The refrigerator according to the present invention includes an outer box and an inner box disposed inside the outer box, and has a space between the outer box and the inner box, and the space is folded along the recess. It is preferable that any one of the above vacuum heat insulating materials formed in a box shape is provided, and the vacuum heat insulating material is covered with a foam heat insulating material.

上記のいずれかの真空断熱材を用いて形成した断熱箱体を冷蔵庫に利用することにより、断熱性能の良い真空断熱材が覆う面積を従来より大幅に向上することができる。   By using the heat insulation box formed using any one of the above vacuum heat insulating materials for the refrigerator, the area covered by the vacuum heat insulating material having good heat insulating performance can be significantly improved as compared with the conventional case.

このようにすることにより、断熱性能と省エネルギーに優れた冷蔵庫を提供することができる。   By doing in this way, the refrigerator excellent in heat insulation performance and energy saving can be provided.

以上のように、この発明によれば、市販のラミネートフィルムを用いて、大型の加工装置や加工スペースを必要とすることなく、断熱箱体を一体的に形成することができる大判の真空断熱材を提供することができる。   As described above, according to the present invention, a large-sized vacuum heat insulating material capable of integrally forming a heat insulating box body without using a large processing apparatus or a processing space using a commercially available laminate film. Can be provided.

以下、この発明の実施の形態を図面に基づいて説明する。   Hereinafter, embodiments of the present invention will be described with reference to the drawings.

図1は、この発明の第一の実施の形態として、真空断熱材の全体を示す平面図である。   FIG. 1 is a plan view showing an entire vacuum heat insulating material as a first embodiment of the present invention.

図1に示すように、真空断熱材100は、芯材10と、芯材10の両面に配置されて芯材10を覆うガスバリヤ性の外包材20を備える。芯材10は、一面が開口している箱体の展開図として、底面11を中心として底面11の周囲に側面12が延在する形状を有する。外包材20は、芯材10の一方の面に配置される第一の外包材20aと第二の外包材20bと、芯材10の他方の面に配置される第三の外包材と第四の外包材とを含む。第一の接合面として第一のシール部22aは、第一の外包材20aの端部と第二の外包材20bの端部とが熱溶着によって接合されて形成され、外包材20の表面に沿うように折り畳んで、外包材20の表面に接着されている。第二の接合面として第二のシール部22bは、第三の外包材の端部と第四の外包材の端部とが熱溶着によって接合されて形成され、外包材20の表面に沿うように折り畳んで、外包材20の表面に接着されている。シール部21は、外包材20の周囲であって芯材10が存在しない部分において、芯材10の両面に配置された外包材20が熱溶着されて形成されている。真空断熱材100は、減圧密封されている。   As shown in FIG. 1, the vacuum heat insulating material 100 includes a core material 10 and a gas barrier outer packaging material 20 that is disposed on both surfaces of the core material 10 and covers the core material 10. The core material 10 has a shape in which the side surface 12 extends around the bottom surface 11 with the bottom surface 11 as the center, as a development view of the box body with one surface opened. The outer packaging material 20 includes a first outer packaging material 20 a and a second outer packaging material 20 b arranged on one surface of the core material 10, a third outer packaging material arranged on the other surface of the core material 10, and a fourth. And outer packaging materials. The first sealing portion 22a as the first joining surface is formed by joining the end portion of the first outer packaging material 20a and the end portion of the second outer packaging material 20b by thermal welding, and is formed on the surface of the outer packaging material 20. Folded along, it is bonded to the surface of the outer packaging material 20. The second seal portion 22b as the second joining surface is formed by joining the end portion of the third outer packaging material and the end portion of the fourth outer packaging material by thermal welding so as to be along the surface of the outer packaging material 20. And is bonded to the surface of the outer packaging material 20. The seal portion 21 is formed by heat-sealing the outer packaging material 20 disposed on both surfaces of the core material 10 at a portion around the outer packaging material 20 where the core material 10 does not exist. The vacuum heat insulating material 100 is sealed under reduced pressure.

芯材10は、グラスウールなどの無機繊維あるいは有機繊維といった繊維材料、または発泡ウレタンなどの発泡材料を単独若しくは複合して用いられるものである。芯材10の側面12には、凹部として折り曲げ部13が形成されている。折り曲げ部13は、減圧密封した真空断熱材100を圧縮成型することによって形成される。真空断熱材100を折り曲げ部13で折り曲げて断熱箱体を作製することができる。   The core material 10 is used alone or in combination with fiber materials such as inorganic fibers such as glass wool or organic fibers, or foam materials such as urethane foam. A bent portion 13 is formed as a concave portion on the side surface 12 of the core material 10. The bent portion 13 is formed by compression molding the vacuum heat insulating material 100 sealed under reduced pressure. The vacuum heat insulating material 100 can be bent at the bending portion 13 to produce a heat insulating box.

外包材20を形成するガスバリヤ性フィルムは、ガスバリヤ層、熱溶着のための熱融着層、傷などを防ぐための保護層を有し、長期にわたり外包材20内を減圧状態に保つことが可能なものである。外包材20は、このような特性を持つフィルムを複数積層して形成されてもよい。具体的な外包材20の構成例としては、最外層をポリエチレンテレフタレート(PET)樹脂とし、中間層にアルミニウム蒸着層を有するエチレン‐ビニルアルコール共重合体樹脂を用い、最内層に高密度ポリエチレン樹脂からなるガスバリヤ性フィルムを用いる。また外包材20の別の構成例としては、最外層をナイロンとし、中間層をアルミニウム箔、最内層に高密度ポリエチレン樹脂からなるガスバリヤ性フィルムを用いる等が挙げられる。上記の特性が得られる構成であれば、外包材20の構成は特に限定されるものではないが、アルミニウム箔を使用しないフィルムを外包材の最外層である上面および下面とすることにより、ヒートブリッジの影響を抑制することができる。   The gas barrier film forming the outer packaging material 20 has a gas barrier layer, a heat-sealing layer for heat welding, a protective layer for preventing scratches, etc., and can keep the inside of the outer packaging material 20 in a reduced pressure state for a long period of time. It is a thing. The outer packaging material 20 may be formed by laminating a plurality of films having such characteristics. As a specific configuration example of the outer packaging material 20, an outermost layer is made of polyethylene terephthalate (PET) resin, an intermediate layer is made of an ethylene-vinyl alcohol copolymer resin having an aluminum vapor deposition layer, and an innermost layer is made of a high-density polyethylene resin. A gas barrier film is used. Another example of the structure of the outer packaging material 20 includes using nylon as the outermost layer, aluminum foil as the intermediate layer, and a gas barrier film made of high-density polyethylene resin as the innermost layer. As long as the above characteristics are obtained, the structure of the outer packaging material 20 is not particularly limited. However, by using a film that does not use aluminum foil as an upper surface and a lower surface that are the outermost layers of the outer packaging material, The influence of can be suppressed.

真空断熱材100の作製方法としては、まず、上記の構成の外包材20を作製し、外包材20の対向する2辺または外包材20の3辺について、熱溶着によって2方シールまたは3方シールを施し、外包材20を袋状とする。次に、予め準備しておいた箱体の展開形状をなす芯材10を袋状にした外包材20内に挿入する。このとき、外包材20上に芯材10を乗せた状態で2方シールまたは3方シールを施しても良い。このように芯材10を外包材20で覆ったものを真空チャンバー内に配置して減圧し、外包材20の開口している辺を熱溶着でシールすることによって、真空断熱材100を作製する。   As a manufacturing method of the vacuum heat insulating material 100, first, the outer packaging material 20 having the above-described configuration is manufactured, and two-side seal or three-side sealing is performed by thermal welding on two opposite sides of the outer packaging material 20 or three sides of the outer packaging material 20. The outer packaging material 20 is formed into a bag shape. Next, the core material 10 which forms the unfolded shape of the box prepared in advance is inserted into the bag-shaped outer packaging material 20. At this time, a two-side seal or a three-side seal may be applied in a state where the core material 10 is placed on the outer packaging material 20. Thus, the thing which covered the core material 10 with the outer packaging material 20 is arrange | positioned in a vacuum chamber, it decompresses, and the side which the outer packaging material 20 has opened is sealed by heat welding, and the vacuum heat insulating material 100 is produced. .

なお、真空断熱材100の初期断熱性能及び経時断熱性能を保持するために、真空断熱材100内にガス吸着剤、水分吸着剤等のゲッター剤を配置することが好ましい。   In order to maintain the initial heat insulation performance and the temporal heat insulation performance of the vacuum heat insulating material 100, it is preferable to arrange a getter agent such as a gas adsorbent or a moisture adsorbent in the vacuum heat insulating material 100.

真空断熱材100の作製方法は以上に述べた方法に特に限定されるものではなく、上記の構成の外包材20で箱体の展開図の形状の芯材10を覆い、減圧密閉して作製される方法であればよい。   The manufacturing method of the vacuum heat insulating material 100 is not particularly limited to the above-described method. Any method can be used.

図2は、この発明の一つの実施の形態として、図1の真空断熱材をII−II線の方向から見た断面図(A)と、外包材を別の配置にしたときの図1のII−II線の方向から見た断面図(B)である。折り曲げ部は図示を省略している。   FIG. 2 shows, as one embodiment of the present invention, a cross-sectional view (A) of the vacuum heat insulating material of FIG. 1 viewed from the direction of the II-II line, and FIG. It is sectional drawing (B) seen from the direction of II-II line. The bent portion is not shown.

図2(A)に示すように、シール部22aは、第一の外包材20aの端部と第二の外包材20bの端部とが熱溶着によって接合されて形成され、外包材20の表面に沿うように、図中の矢印の方向に折り畳んで、外包材20の表面に接着される。シール部22bは、第三の外包材20cの端部と第四の外包材20dの端部とが熱溶着によって接合されて形成され、外包材20の表面に沿うように、図中の矢印の方向に折り畳んで、外包材20の表面に接着される。外包材20の周囲であって芯材10が存在しない部分において、芯材10の両面に配置された外包材20が熱溶着されて、シール部21が形成されている。   As shown in FIG. 2A, the seal portion 22a is formed by joining the end portion of the first outer packaging material 20a and the end portion of the second outer packaging material 20b by heat welding. Is folded in the direction of the arrow in the figure so as to adhere to the surface of the outer packaging material 20. The seal portion 22b is formed by joining the end portion of the third outer packaging material 20c and the end portion of the fourth outer packaging material 20d by thermal welding. It is folded in the direction and adhered to the surface of the outer packaging material 20. In a portion around the outer packaging material 20 where the core material 10 does not exist, the outer packaging material 20 disposed on both surfaces of the core material 10 is thermally welded to form a seal portion 21.

図2(B)に示すように、真空断熱材100の外包材は、図1に示す配置とは別の配置をされてもよく、第一の外包材として外包材20eの端部と第二の外包材として外包材20fの端部とが熱溶着されて第一の接合面として第一のシール部22cを形成し、また、第一の外包材として外包材20gの端部と第二の外包材として外包材20fの端部とが熱溶着されて第一の接合面として第一のシール部22dを形成し、第三の外包材として外包材20eの端部と第四の外包材として外包材20gの端部が熱溶着されて第二の接合面として第二のシール部22eを形成している。シール部22c、シール部22d、シール部22eは、それぞれ、図中の矢印の方向に折り畳まれて外包材20の表面に接着される。   As shown in FIG. 2B, the outer packaging material of the vacuum heat insulating material 100 may be arranged differently from the arrangement shown in FIG. 1, and the end portion of the outer packaging material 20e and the second outer packaging material are used as the first outer packaging material. As the outer packaging material, the end portion of the outer packaging material 20f is heat-welded to form the first sealing portion 22c as the first joint surface, and the end portion of the outer packaging material 20g and the second sealing material as the first outer packaging material As the outer packaging material, the end portion of the outer packaging material 20f is thermally welded to form the first sealing portion 22d as the first joint surface, and as the third outer packaging material, the end portion of the outer packaging material 20e and the fourth outer packaging material are used. The end portion of the outer packaging material 20g is thermally welded to form the second seal portion 22e as the second joint surface. The seal portion 22c, the seal portion 22d, and the seal portion 22e are each folded in the direction of the arrow in the figure and bonded to the surface of the outer packaging material 20.

このように、外包材であるガスバリヤ性フィルムの枚数は、作製する真空断熱材の大きさに合わせて変更されるものであり、上記例に限定されるものではない。   Thus, the number of gas barrier films as the outer packaging material is changed according to the size of the vacuum heat insulating material to be produced, and is not limited to the above example.

シール部(22a〜22e)は、いずれも、外包材20の表面に沿うように折り畳まれて、外包材20の表面にテープや接着剤などで接着されて固定される。   All of the seal portions (22a to 22e) are folded along the surface of the outer packaging material 20, and are bonded and fixed to the surface of the outer packaging material 20 with a tape or an adhesive.

以上のように、真空断熱材100は、芯材10と、芯材10の両面に配置されて芯材10を覆うガスバリヤ性の外包材20とを備え、芯材10は、一面が開口している箱体の展開図として、底面11を中心として底面11の周囲に側面12が延在する形状を有し、外包材20は、芯材10の一方の面に配置される第一の外包材20aと第二の外包材20bと、芯材10の他方の面に配置される第三の外包材20cと第四の外包材20dとを含み、第一の外包材20aの端部と第二の外包材20bの端部とが熱溶着によって接合されて第一のシール部22aが形成され、第三の外包材20cの端部と前記第四の外包材20dの端部とが熱溶着によって接合されて第二のシール部22bが形成され、外包材20で覆われた芯材10には、圧縮成型によって折り曲げ部13が形成されている。   As described above, the vacuum heat insulating material 100 includes the core material 10 and the gas barrier outer packaging material 20 that is disposed on both surfaces of the core material 10 and covers the core material 10, and the core material 10 is open on one side. As a developed view of the box body, the outer packaging material 20 has a shape in which the side surface 12 extends around the bottom surface 11 around the bottom surface 11, and the outer packaging material 20 is a first outer packaging material disposed on one surface of the core material 10. 20a, the second outer packaging material 20b, the third outer packaging material 20c and the fourth outer packaging material 20d arranged on the other surface of the core material 10, and the end portion of the first outer packaging material 20a and the second outer packaging material 20d. The end portion of the outer packaging material 20b is joined by thermal welding to form a first seal portion 22a, and the end portion of the third outer packaging material 20c and the end portion of the fourth outer packaging material 20d are joined by thermal welding. The core material 10 which is joined to form the second seal portion 22b and is covered with the outer packaging material 20 is compression-molded. Therefore bent portion 13 is formed.

このようにすることにより、市販のラミネートフィルムを用いて、大判の真空断熱材100を作製することができる。大判の真空断熱材100を用いることによって、断熱性能及び省エネルギーに優れた冷蔵庫等の機器を提供することができる。また、折り曲げ部13で折り曲げることができるので、一枚の真空断熱材100で断熱箱体を形成することができる。   By doing in this way, the large-sized vacuum heat insulating material 100 can be produced using a commercially available laminate film. By using the large-sized vacuum heat insulating material 100, a device such as a refrigerator excellent in heat insulating performance and energy saving can be provided. Moreover, since it can be bend | folded in the bending part 13, the heat insulation box can be formed with the single vacuum heat insulating material 100. FIG.

また、芯材10は、一面が開口している箱体の展開図として、底面11を中心として底面11の周囲に側面12が延在する形状を有するので、折り曲げによる真空断熱材100の立ち上げ面の長さを短くすることができる。このため、市販のラミネートフィルムを用いて、大型の加工装置や加工スペースを必要とすることなく、断熱箱体を一体的に形成することができる大判の真空断熱材100を提供することができる。     Moreover, since the core material 10 has a shape in which the side surface 12 extends around the bottom surface 11 around the bottom surface 11 as a developed view of the box having one surface open, the vacuum heat insulating material 100 is started up by bending. The length of the surface can be shortened. For this reason, the large-sized vacuum heat insulating material 100 which can form a heat insulation box integrally can be provided using a commercially available laminated film, without requiring a large sized processing apparatus and processing space.

図3は、この発明の一つの実施の形態として、図1に示す真空断熱材をIII−III線の方向から見た断面図である。   FIG. 3 is a cross-sectional view of the vacuum heat insulating material shown in FIG. 1 as viewed from the direction of the III-III line as one embodiment of the present invention.

図3に示すように、外包材20の表面に沿うように折り畳まれて外包材20の表面に接着されている第一のシール部22aと第二のシール部22bは、互いに対向しないように配置されている。このとき、外包材と外包材との間には、空隙23が形成される。   As shown in FIG. 3, the first seal portion 22a and the second seal portion 22b that are folded along the surface of the outer packaging material 20 and bonded to the surface of the outer packaging material 20 are arranged so as not to face each other. Has been. At this time, a gap 23 is formed between the outer packaging material and the outer packaging material.

図4は、第一のシール部と第二のシール部が対向するように配置したときの図1のIII−III線の方向から見た断面図である。   FIG. 4 is a cross-sectional view seen from the direction of the line III-III in FIG. 1 when the first seal part and the second seal part are arranged to face each other.

図4に示すように、外包材20上において第一のシール部22aと第二のシール部22bが対向するように配置すると、空隙23が大きくなるため、真空断熱材について、ヒーターなどの熱溶着機による熱溶着性および信頼性に問題が生じる。また、シール部が対向している部分では、部分的にガスバリヤ性フィルムが厚くなるため、その部分では真空断熱材の剛性が高くなり、柔軟性が悪くなる。そのため、後述の圧縮成型による均一な凹部の形成、箱体を作製するための折り曲げ加工および外包材の余剰部分の折畳み加工において、真空断熱材の加工性が悪くなる。   As shown in FIG. 4, when the first sealing portion 22a and the second sealing portion 22b are arranged on the outer packaging material 20 so as to face each other, the gap 23 becomes large. Problems arise in heat weldability and reliability of the machine. Moreover, since the gas barrier film is partially thick at the portion where the seal portions are opposed to each other, the rigidity of the vacuum heat insulating material is increased and the flexibility is deteriorated at that portion. For this reason, the workability of the vacuum heat insulating material is deteriorated in the formation of a uniform recess by compression molding, which will be described later, the folding process for producing the box and the folding process of the surplus portion of the outer packaging material.

そこで、真空断熱材100においては、熱溶着された第一のシール部22aと第二のシール部22bのそれぞれは、外包材20の表面に沿うように折り畳まれて外包材20の表面に接着され、外包材20の表面に接着された第一のシール部22aは、外包材20の表面に接着された第二のシール部22bと対向しないように配置されていることが好ましい。   Therefore, in the vacuum heat insulating material 100, each of the heat-sealed first seal portion 22a and second seal portion 22b is folded along the surface of the outer packaging material 20 and bonded to the surface of the outer packaging material 20. The first seal portion 22 a bonded to the surface of the outer packaging material 20 is preferably disposed so as not to face the second seal portion 22 b bonded to the surface of the outer packaging material 20.

このようにすることにより、熱溶着部を含む辺の熱溶着性と真空断熱材100の加工性を向上させることができる。   By doing in this way, the heat weldability of the edge | side including a heat welding part and the workability of the vacuum heat insulating material 100 can be improved.

図5と図6は、シール部の配置が異なる真空断熱材を示す図である。   FIG. 5 and FIG. 6 are diagrams showing vacuum heat insulating materials having different seal portions.

図5に示すように、真空断熱材101においては、芯材10の折り曲げ部13にシール部22aとシール部22bが重ならないように配置されている。このようにすることにより、真空断熱材101を折り曲げ部13で折り曲げて断熱箱体を作製する場合に、加工しやすい。   As shown in FIG. 5, in the vacuum heat insulating material 101, the seal portion 22 a and the seal portion 22 b are arranged so as not to overlap the bent portion 13 of the core material 10. By doing in this way, when manufacturing the heat insulation box body by bending the vacuum heat insulating material 101 in the bending part 13, it is easy to process.

図6に示すように、真空断熱材102においては、第一のシール部22aと第二のシール部22bがそれぞれ複数、芯材10の短辺方向に形成されている。この場合にも、芯材10の折り曲げ部13にシール部22aとシール部22bが重ならないように配置されることが好ましい。このようにすることにより、幅の短い市販のラミネートフィルムを用いても大判の真空断熱材を作製することができる。   As shown in FIG. 6, in the vacuum heat insulating material 102, a plurality of first seal portions 22 a and a plurality of second seal portions 22 b are formed in the short side direction of the core material 10. Also in this case, it is preferable that the sealing portion 22a and the sealing portion 22b are arranged so as not to overlap the bent portion 13 of the core material 10. By doing in this way, a large-sized vacuum heat insulating material can be produced even if it uses a commercial laminate film with a short width.

図7は、折り曲げ部を形成された真空断熱材の断面を示す図である。シール部は図示を省略している。   FIG. 7 is a view showing a cross section of the vacuum heat insulating material in which the bent portion is formed. The seal part is not shown.

図7(A)に示すように、折り曲げ部13は、真空断熱材100の一方の面にのみ形成されてもよく、図7(B)に示すように真空断熱材100の両面に形成されてもよい。また、図7(C)に示すように、真空断熱材100の一方の面に、複数の凹部によって一つの折り曲げ部13が形成されてもよい。   As shown in FIG. 7A, the bent portion 13 may be formed only on one surface of the vacuum heat insulating material 100, and is formed on both surfaces of the vacuum heat insulating material 100 as shown in FIG. Also good. Moreover, as shown in FIG.7 (C), the one bending part 13 may be formed in one surface of the vacuum heat insulating material 100 by several recessed part.

このような折り曲げ部13の数と形状は、芯材10の材質や厚みによって最適化されるものであるため、使用する芯材10によっては特に折り曲げ部13を形成する必要がない。例えば、芯材10として厚さ12mmのグラスウールを用いる場合には、芯材10の両面に3本ずつの折り曲げ部13を形成することが望ましく、一方、芯材10を厚さ3mmのポリエステル繊維とした場合は、折り曲げ部13を形成する必要ない。   Since the number and shape of the bent portions 13 are optimized depending on the material and thickness of the core material 10, it is not necessary to form the bent portions 13 depending on the core material 10 to be used. For example, when glass wool having a thickness of 12 mm is used as the core material 10, it is desirable to form three bent portions 13 on both sides of the core material 10, while the core material 10 is made of polyester fiber having a thickness of 3 mm. In this case, it is not necessary to form the bent portion 13.

図8から図10には、この発明のもう一つの実施の形態として、この発明に従った真空断熱材を用いた断熱箱体の作製方法の各段階を示す。   FIG. 8 to FIG. 10 show each stage of a method for manufacturing a heat insulating box using a vacuum heat insulating material according to the present invention as another embodiment of the present invention.

図8は、この発明のもう一つの実施の形態として、断熱箱体の作製の第一工程を示す図である。   FIG. 8 is a diagram showing a first step of manufacturing a heat insulating box as another embodiment of the present invention.

図8に示すように、真空断熱材100の外包材20において、芯材10の周囲で熱溶着される部分が最短となるように、芯材10の頂点と頂点とを結ぶようにシール部21aを形成する。シール部21aを熱溶着して外包材20を製袋した後、真空断熱材100を、図中の二点鎖線に沿って切断し、芯材10が存在しない部分の外包材20を切り落とす。   As shown in FIG. 8, in the outer packaging material 20 of the vacuum heat insulating material 100, the seal portion 21 a is formed so as to connect the apex of the core material 10 so that the portion to be thermally welded around the core material 10 is the shortest. Form. After the sealing portion 21a is heat-welded and the outer packaging material 20 is made, the vacuum heat insulating material 100 is cut along the two-dot chain line in the drawing, and the outer packaging material 20 where the core material 10 does not exist is cut off.

このように、真空断熱材100においては、外包材20は、芯材10の周囲において周の長さが最短になるように熱溶着されて製袋されていることにより、真空断熱材100の加工性を向上させることができる。   Thus, in the vacuum heat insulating material 100, the outer packaging material 20 is heat-welded so as to have the shortest circumferential length around the core material 10, thereby forming the bag. Can be improved.

また、芯材10の各辺に平行にシール部21aを形成し、シール部21aに沿って平行に外包材20を切り落としてもよい。   Alternatively, the seal portion 21a may be formed in parallel with each side of the core material 10, and the outer packaging material 20 may be cut off in parallel along the seal portion 21a.

このように、真空断熱材100においては、外包材20は、芯材10の形状に沿って熱溶着されて製袋されることにより、真空断熱材100の加工性を向上させることができる。   As described above, in the vacuum heat insulating material 100, the outer packaging material 20 is heat-welded along the shape of the core material 10 to form a bag, thereby improving the workability of the vacuum heat insulating material 100.

図9は、この発明のもう一つの実施の形態として、断熱箱体の作製の第二工程を示す図である。   FIG. 9 is a diagram showing a second step of manufacturing a heat insulating box as another embodiment of the present invention.

図9に示すように、真空断熱材100には、外包材20には、芯材10が存在しない部分である耳部24が残っている。図中に示す二点鎖線に沿って、耳部24を外包材20の表面に沿うように折り畳み、外包材20上にテープや接着剤などで固定する。   As shown in FIG. 9, in the vacuum heat insulating material 100, the outer packaging material 20 has an ear portion 24 that is a portion where the core material 10 does not exist. The ear portion 24 is folded along the surface of the outer packaging material 20 along the two-dot chain line shown in the figure, and fixed on the outer packaging material 20 with a tape or an adhesive.

図10は、この発明のもう一つの実施の形態として、断熱箱体の作製の第三工程を示す図である。図10(A)〜(C)には、真空断熱材において、耳部の処理方法を概略的に示す。図10(C)には、図10(A)の真空断熱材を図10(A)の右下方向から見た図を示す。図10(B)には、外包材のみを図示している。   FIG. 10 is a diagram showing a third step of manufacturing a heat insulating box as another embodiment of the present invention. 10 (A) to 10 (C) schematically show a method of treating the ears in the vacuum heat insulating material. FIG. 10C shows a view of the vacuum heat insulating material of FIG. 10A viewed from the lower right direction of FIG. FIG. 10B shows only the outer packaging material.

図10(A)と(B)に示すように、真空断熱材100を折り曲げ部13に沿って所定の箱体形状に折り曲げた後、二重に重なっている耳部24を図中の二点斜線に沿って矢印の方向に折畳み、外包材20上に接着剤等で固定する。   As shown in FIGS. 10A and 10B, after the vacuum heat insulating material 100 is bent into a predetermined box shape along the bent portion 13, two overlapping ear portions 24 are shown in the figure. Fold along the oblique line in the direction of the arrow and fix on the outer packaging material 20 with an adhesive or the like.

次に、図10(C)に示すように、耳部24を芯材10の形状に沿って折り畳み、外包材20上に接着剤等で固定する。このようにして、すべての耳部24が芯材10の存在する部分に固定される。耳部24の処理方法は特に限定されるものではなく、すべての耳部24が外包材20上において芯材10の存在する部分に固定される方法であれば、他の方法でもよい。   Next, as shown in FIG. 10C, the ear portion 24 is folded along the shape of the core material 10 and fixed on the outer packaging material 20 with an adhesive or the like. Thus, all the ear | edge parts 24 are fixed to the part in which the core material 10 exists. The processing method of the ear | edge part 24 is not specifically limited, The other method may be sufficient as long as all the ear | edge parts 24 are fixed to the part in which the core material 10 exists on the outer packaging material 20. FIG.

このようにして、本発明の真空断熱材を用いた断熱箱体が作製される。   Thus, the heat insulation box using the vacuum heat insulating material of this invention is produced.

図11は、この発明の真空断熱材を用いた断熱箱体の組み立て方を概略的に示す図である。外包材は図示を省略している。この真空断熱材の外包材とシール部の配置は、図1に示す真空断熱材と同様である。   FIG. 11 is a diagram schematically showing how to assemble a heat insulating box using the vacuum heat insulating material of the present invention. The outer packaging material is not shown. The arrangement of the outer packaging material and the seal portion of this vacuum heat insulating material is the same as that of the vacuum heat insulating material shown in FIG.

図11(A)に示すように、真空断熱材100は、一面が開口している箱体の展開図として、底面11を中心として底面11の周囲に側面12が延在する形状を有する。側面12と底面11との境界には、圧縮成型によって折り曲げ部13が形成されている。図11(B)に示すように、側面12を、底面11の周りに、折り曲げ部13に沿って折り曲げることによって、真空断熱材100で一面が開口している断熱箱体200を作成することができる。加工の際には、真空断熱材100を立ち上げる高さは、高さh1となり、これは、作製される断熱箱体200の高さに等しい。   As shown in FIG. 11A, the vacuum heat insulating material 100 has a shape in which the side surface 12 extends around the bottom surface 11 with the bottom surface 11 as the center, as a development view of the box having one surface open. A bent portion 13 is formed at the boundary between the side surface 12 and the bottom surface 11 by compression molding. As shown in FIG. 11 (B), the heat insulating box 200 having one surface opened by the vacuum heat insulating material 100 can be created by bending the side surface 12 around the bottom surface 11 along the bent portion 13. it can. At the time of processing, the height at which the vacuum heat insulating material 100 is raised becomes a height h1, which is equal to the height of the heat insulating box 200 to be manufactured.

図12は、従来の真空断熱材を用いた断熱箱体の組み立て方を概略的に示す図である。   FIG. 12 is a diagram schematically showing how to assemble a heat insulating box using a conventional vacuum heat insulating material.

図12(A)に示すように、真空断熱材110は、対向する二面が開口している箱体の展開図として、面12a、面12b、面12c、面12dが一列に並べられた形状を有する。   As shown in FIG. 12 (A), the vacuum heat insulating material 110 has a shape in which the surfaces 12a, 12b, 12c, and 12d are arranged in a line as a developed view of a box body in which two opposing surfaces are open. Have

図12(B)に示すように、面12bを底面として、面12aを折り曲げ部13aで折って立ち上げ、面12cを折り曲げ部13bで折って立ち上げる。このとき、面12cとともに面12dが立ち上げられる。最後に、図12(C)に示すように、折り曲げ部13cで面12dを折って、断熱箱体210が作製される。   As shown in FIG. 12B, with the surface 12b as the bottom surface, the surface 12a is folded and raised at the bent portion 13a, and the surface 12c is folded and raised at the bent portion 13b. At this time, the surface 12d is raised together with the surface 12c. Finally, as shown in FIG. 12C, the heat insulating box 210 is manufactured by folding the surface 12d at the bent portion 13c.

従来の真空断熱材110を用いて断熱箱体を形成するとき、加工の際に真空断熱材110を立ち上げる高さは、高さh2となる。高さh2は、最終的に作製される断熱箱体210の高さh1よりも高い。これに対して、この発明の真空断熱材100を用いて断熱箱体を形成するとき、加工の際に真空断熱材100を立ち上げる高さは、高さh1となる。したがって、この発明の真空断熱材100を用いて断熱箱体200を作製するときには、従来の真空断熱材110を用いて断熱箱体210を作製する場合と比べて、大型の加工装置や加工スペースを必要としない。   When a heat insulation box is formed using the conventional vacuum heat insulating material 110, the height at which the vacuum heat insulating material 110 is raised during processing is the height h2. The height h2 is higher than the height h1 of the heat insulating box 210 finally produced. On the other hand, when forming a heat insulation box using the vacuum heat insulating material 100 of this invention, the height which raises the vacuum heat insulating material 100 in the process becomes height h1. Therefore, when manufacturing the heat insulation box 200 using the vacuum heat insulating material 100 of this invention, compared with the case where the heat insulation box 210 is produced using the conventional vacuum heat insulating material 110, a large-sized processing apparatus and processing space are required. do not need.

このように、真空断熱材100は、芯材10と、芯材10の両面に配置されて芯材10を覆うガスバリヤ性の外包材20とを備え、芯材10は、一面が開口している箱体の展開図として、底面11を中心として底面11の周囲に側面12が延在する形状を有し、外包材20は、芯材10の一方の面に配置される第一の外包材20aと第二の外包材20bと、芯材10の他方の面に配置される第三の外包材20cと第四の外包材20dとを含み、第一の外包材20aの端部と第二の外包材20bの端部とが熱溶着によって接合されて第一のシール部22aが形成され、第三の外包材20cの端部と前記第四の外包材20dの端部とが熱溶着によって接合されて第二のシール部22bが形成され、外包材20で覆われた芯材10には、圧縮成型によって折り曲げ部13が形成されている。   Thus, the vacuum heat insulating material 100 includes the core material 10 and the gas barrier outer packaging material 20 that is disposed on both surfaces of the core material 10 and covers the core material 10, and the core material 10 is open on one side. As a developed view of the box, the side surface 12 extends around the bottom surface 11 around the bottom surface 11, and the outer packaging material 20 is a first outer packaging material 20 a disposed on one surface of the core material 10. And the second outer packaging material 20b, the third outer packaging material 20c and the fourth outer packaging material 20d disposed on the other surface of the core material 10, and the end portion of the first outer packaging material 20a and the second outer packaging material 20d. The end portion of the outer packaging material 20b is joined by thermal welding to form the first seal portion 22a, and the end portion of the third outer packaging material 20c and the end portion of the fourth outer packaging material 20d are joined by thermal welding. Thus, the second seal portion 22b is formed, and the core material 10 covered with the outer packaging material 20 is subjected to compression molding. Bent portion 13 is formed me.

このようにすることにより、市販のラミネートフィルムを用いて、大判の真空断熱材100を作製することができ、また、折り曲げ部13で折り曲げることができるので、一枚の真空断熱材100で断熱箱体200を形成することができる。   By doing in this way, since the large-sized vacuum heat insulating material 100 can be produced using a commercially available laminate film, and it can be bent at the folding part 13, the heat insulating box is formed with a single vacuum heat insulating material 100. A body 200 can be formed.

このようにすることにより、市販のラミネートフィルムを用いて、大型の加工装置や加工スペースを必要とすることなく、断熱箱体200を一体的に形成することができる大判の真空断熱材100を提供することができる。   By doing in this way, the large-sized vacuum heat insulating material 100 which can form the heat insulation box 200 integrally using a commercially available laminate film, without requiring a large sized processing apparatus and processing space is provided. can do.

図13は、この発明のさらにもう一つの実施の形態として、真空断熱材の全体を示す平面図である。   FIG. 13 is a plan view showing the entire vacuum heat insulating material as still another embodiment of the present invention.

図13に示すように、真空断熱材103が図1に示す真空断熱材100と異なる点としては、芯材10の所定の箇所に芯材が存在しない部分として穴25が形成されている。真空断熱材103のその他の構成は、真空断熱材100と同様である。   As shown in FIG. 13, the vacuum heat insulating material 103 is different from the vacuum heat insulating material 100 shown in FIG. 1 in that a hole 25 is formed as a portion where the core material does not exist in a predetermined portion of the core material 10. Other configurations of the vacuum heat insulating material 103 are the same as those of the vacuum heat insulating material 100.

図14は、真空断熱材の芯材に形成された穴の周囲を示す図である。   FIG. 14 is a view showing the periphery of a hole formed in the core material of the vacuum heat insulating material.

図14(A)に示すように、真空断熱材103を減圧処理すると、穴25においては、芯材10の上面および下面に配置されたそれぞれの外包材20が密着する。このように、外包材20が穴25において密着した状態で、穴25を覆う外包材20を熱溶着し、図中の二点鎖線に沿って、外包材20を切り抜く。このようにすることにより、図14(B)に示すように、芯材10が存在しない外包材20の熱溶着部分に形成された孔として貫通孔26が形成される。貫通孔26の大きさおよび形状は、その目的によって決定されるものであり特に限定されるものではない。   As shown in FIG. 14A, when the vacuum heat insulating material 103 is decompressed, the outer packaging materials 20 disposed on the upper surface and the lower surface of the core material 10 are in close contact with each other in the hole 25. Thus, with the outer packaging material 20 in close contact with the hole 25, the outer packaging material 20 covering the hole 25 is thermally welded, and the outer packaging material 20 is cut out along the two-dot chain line in the figure. By doing in this way, as shown in FIG.14 (B), the through-hole 26 is formed as a hole formed in the heat welding part of the outer packaging material 20 in which the core material 10 does not exist. The size and shape of the through hole 26 are determined according to the purpose and are not particularly limited.

図15は、この発明のさらに別の実施の形態として、図13に示す真空断熱材を備える冷蔵庫の断面を概略的に示す図である。   FIG. 15 is a diagram schematically showing a cross section of a refrigerator provided with the vacuum heat insulating material shown in FIG. 13 as still another embodiment of the present invention.

図15に示すように、冷蔵庫300においては、本体310と、前扉320と、隔壁330とによって庫内空間301が形成されている。本体310は、外箱としてアウター312と、外箱312の内側に配置される内箱311を備え、外箱312と内箱311との間に空間を有する。外箱312と内箱311との間の空間には、真空断熱材103を折り曲げ部に沿って折り曲げて作製した断熱箱体203が備えられている。断熱箱体203は、断熱箱体203の両側にスペーサ材(図示しない)などを配して、インナー311とアウター312で形成される空間の略中心に配置される。断熱箱体203の貫通孔26を通して、電気配線(図示しない)やドレンパイプ340が付設され、発泡ウレタンなどの発泡材料が断熱箱体203の両側に注入されて、インナー311とアウター312の間の空間が充填されている。   As shown in FIG. 15, in the refrigerator 300, an interior space 301 is formed by the main body 310, the front door 320, and the partition wall 330. The main body 310 includes an outer 312 as an outer box and an inner box 311 disposed inside the outer box 312, and has a space between the outer box 312 and the inner box 311. A space between the outer box 312 and the inner box 311 is provided with a heat insulating box 203 produced by folding the vacuum heat insulating material 103 along the bent portion. The heat insulation box 203 is arranged at the approximate center of the space formed by the inner 311 and the outer 312 with spacer materials (not shown) or the like disposed on both sides of the heat insulation box 203. Electrical wiring (not shown) and a drain pipe 340 are attached through the through-hole 26 of the heat insulation box 203, and a foam material such as urethane foam is injected into both sides of the heat insulation box 203, and between the inner 311 and the outer 312. The space is filled.

このように、冷蔵庫300は、折り曲げ部13に沿って折られて箱状に形成された真空断熱材103を備え、外包材20において熱溶着された部分は、芯材10が存在しない部分25を含み、芯材10が存在しない外包材20の熱溶着部分の一部に貫通孔26が形成されている。   As described above, the refrigerator 300 includes the vacuum heat insulating material 103 formed in a box shape by being folded along the bent portion 13, and the portion thermally bonded in the outer packaging material 20 is a portion 25 where the core material 10 does not exist. A through hole 26 is formed in a part of the heat-welded portion of the outer packaging material 20 that does not include the core material 10.

また、冷蔵庫300は、アウター312と、アウター312の内側に配置されるインナー311とを備え、アウター312とインナー311との間に空間を有し、空間内には、折り曲げ部13に沿って折られて箱状に形成された真空断熱材103が挿入されて、空間内には、発泡断熱材400が充填されている。   The refrigerator 300 includes an outer 312 and an inner 311 disposed inside the outer 312. The refrigerator 300 has a space between the outer 312 and the inner 311. The refrigerator 300 is folded along the bent portion 13. The vacuum heat insulating material 103 formed in a box shape is inserted, and the space is filled with the foam heat insulating material 400.

真空断熱材103を用いて形成した断熱箱体203を冷蔵庫300に利用することにより、断熱性能の良い真空断熱材103が覆う面積を従来より大幅に向上することができる。   By using the heat insulating box 203 formed by using the vacuum heat insulating material 103 for the refrigerator 300, the area covered by the vacuum heat insulating material 103 with good heat insulating performance can be significantly improved as compared with the conventional case.

このようにすることにより、ドレンパイプ340や電気配線の配置が容易で、断熱性能と省エネルギーに優れた冷蔵庫300を提供することができる。   By doing in this way, the arrangement | positioning of the drain pipe 340 and an electrical wiring is easy, and the refrigerator 300 excellent in heat insulation performance and energy saving can be provided.

冷蔵庫300は、アウター312と、アウター312の内側に配置されるインナー311とを備え、アウター312とインナー311との間に空間を有し、空間内には、折り曲げ部13に沿って折られて箱状に形成された真空断熱材103を備え、真空断熱材103は、発泡断熱材400によって覆われていてもよい。   The refrigerator 300 includes an outer 312 and an inner 311 disposed inside the outer 312. The refrigerator 300 has a space between the outer 312 and the inner 311, and is folded along the bent portion 13 in the space. A vacuum heat insulating material 103 formed in a box shape is provided, and the vacuum heat insulating material 103 may be covered with a foam heat insulating material 400.

このようにすることにより、断熱性能の良い真空断熱材が覆う面積を従来より大幅に向上することができ、断熱性能と省エネルギーに優れた冷蔵庫を提供することができる。   By doing in this way, the area which a vacuum heat insulating material with favorable heat insulation performance covers can be improved significantly conventionally, and the refrigerator excellent in heat insulation performance and energy saving can be provided.

以上に開示された実施の形態はすべての点で例示であって制限的なものではないと考慮されるべきである。本発明の範囲は、以上の実施の形態ではなく、特許請求の範囲によって示され、特許請求の範囲と均等の意味および範囲内でのすべての修正と変形を含むものである。   The embodiment disclosed above should be considered as illustrative in all points and not restrictive. The scope of the present invention is shown not by the above embodiments but by the scope of claims, and includes all modifications and variations within the meaning and scope equivalent to the scope of claims.

この発明の第一の実施の形態として、真空断熱材の全体を示す平面図である。It is a top view which shows the whole vacuum heat insulating material as 1st embodiment of this invention. この発明の一つの実施の形態として、図1の真空断熱材をII−II線の方向から見た断面図(A)と、外包材を別の配置にしたときの図1のII−II線の方向から見た断面図(B)である。As one embodiment of the present invention, a cross-sectional view (A) of the vacuum heat insulating material of FIG. 1 viewed from the direction of the line II-II, and a line II-II of FIG. It is sectional drawing (B) seen from this direction. この発明の一つの実施の形態として、図1に示す真空断熱材をIII−III線の方向から見た断面図である。As one embodiment of this invention, it is sectional drawing which looked at the vacuum heat insulating material shown in FIG. 1 from the direction of the III-III line. 第一のシール部と第二のシール部が対向するように配置したときの図1のIII−III線の方向から見た断面図である。It is sectional drawing seen from the direction of the III-III line | wire of FIG. 1 when arrange | positioning so that a 1st seal | sticker part and a 2nd seal | sticker part may oppose. シール部の配置が異なる真空断熱材を示す図である。It is a figure which shows the vacuum heat insulating material from which arrangement | positioning of a seal part differs. シール部の配置が異なる真空断熱材を示す図である。It is a figure which shows the vacuum heat insulating material from which arrangement | positioning of a seal part differs. 折り曲げ部を形成された真空断熱材の断面を示す図である。It is a figure which shows the cross section of the vacuum heat insulating material in which the bending part was formed. この発明のもう一つの実施の形態として、断熱箱体の作製の第一工程を示す図である。It is a figure which shows the 1st process of preparation of a heat insulation box as another embodiment of this invention. この発明のもう一つの実施の形態として、断熱箱体の作製の第二工程を示す図である。It is a figure which shows the 2nd process of preparation of a heat insulation box as another embodiment of this invention. この発明のもう一つの実施の形態として、断熱箱体の作製の第三工程を示す図である。It is a figure which shows the 3rd process of preparation of a heat insulation box as another embodiment of this invention. この発明の真空断熱材を用いた断熱箱体の組み立て方を概略的に示す図である。It is a figure which shows roughly how to assemble the heat insulation box using the vacuum heat insulating material of this invention. 従来の真空断熱材を用いた断熱箱体の組み立て方を概略的に示す図である。It is a figure which shows roughly how to assemble the heat insulation box using the conventional vacuum heat insulating material. この発明のさらにもう一つの実施の形態として、真空断熱材の全体を示す平面図である。As yet another embodiment of the present invention, it is a plan view showing the entire vacuum heat insulating material. 真空断熱材の芯材に形成された穴の周囲を示す図である。It is a figure which shows the circumference | surroundings of the hole formed in the core material of a vacuum heat insulating material. この発明のさらに別の実施の形態として、図13に示す真空断熱材を備える冷蔵庫の断面を概略的に示す図である。As another embodiment of this invention, it is a figure which shows schematically the cross section of a refrigerator provided with the vacuum heat insulating material shown in FIG.

符号の説明Explanation of symbols

10:芯材、11:底面、12:側面、13:折り曲げ部、20:外包材、20a:第一の外包材、20b:第二の外包材、20c:第三の外包材、20d:第四の外包材、21,22a,22b:シール部、24:貫通孔、30〜34:凹部、100〜103:真空断熱材、200:断熱箱体、300:冷蔵庫、311:内箱、312:外箱、400:発泡材料。   10: core material, 11: bottom surface, 12: side surface, 13: bent portion, 20: outer packaging material, 20a: first outer packaging material, 20b: second outer packaging material, 20c: third outer packaging material, 20d: first Four outer packaging materials, 21, 22a, 22b: seal part, 24: through hole, 30-34: recess, 100-103: vacuum heat insulating material, 200: heat insulating box, 300: refrigerator, 311: inner box, 312: Outer box, 400: foam material.

Claims (7)

芯材と、
前記芯材の両面に配置されて前記芯材を覆うガスバリヤ性の外包材とを備え、
前記芯材は、一面が開口している箱体の展開図として、底面を中心として底面の周囲に側面が延在する形状を有し、
前記外包材は、前記芯材の一方の面に配置される第一の外包材と第二の外包材と、前記芯材の他方の面に配置される第三の外包材と第四の外包材とを含み、
前記第一の外包材の端部と前記第二の外包材の端部とが熱溶着によって接合されて第一の接合面が形成され、前記第三の外包材の端部と前記第四の外包材の端部とが熱溶着によって接合されて第二の接合面が形成され、
前記外包材で覆われた前記芯材には、圧縮成型によって凹部が形成されている、真空断熱材。
A core material,
A gas barrier outer packaging material disposed on both sides of the core material and covering the core material;
The core material has a shape in which a side surface extends around the bottom surface with the bottom surface as a center, as a development view of a box having one surface opened,
The outer packaging material includes a first outer packaging material and a second outer packaging material arranged on one side of the core material, a third outer packaging material and a fourth outer packaging arranged on the other surface of the core material. Including materials,
The end of the first outer packaging material and the end of the second outer packaging material are joined by heat welding to form a first joining surface, and the end of the third outer packaging material and the fourth outer packaging material The end of the outer packaging material is joined by thermal welding to form a second joining surface,
A vacuum heat insulating material, wherein the core material covered with the outer packaging material has a recess formed by compression molding.
熱溶着された前記第一と第二の接合面のそれぞれは、前記外包材の表面に沿うように折り畳まれて前記外包材の表面に接着され、
前記外包材の表面に接着された前記第一の接合面は、前記外包材の表面に接着された前記第二の接合面と対向しないように配置されている、請求項1に記載の真空断熱材。
Each of the first and second joining surfaces heat-welded is folded along the surface of the outer packaging material and bonded to the surface of the outer packaging material,
2. The vacuum heat insulation according to claim 1, wherein the first bonding surface bonded to the surface of the outer packaging material is disposed so as not to face the second bonding surface bonded to the surface of the outer packaging material. Wood.
前記外包材は、前記芯材の形状に沿って熱溶着されて製袋されている、請求項1または請求項2に記載の真空断熱材。   The said outer packaging material is a vacuum heat insulating material of Claim 1 or Claim 2 heat-welded along the shape of the said core material, and is bag-made. 前記外包材は、前記芯材の周囲において周の長さが最短になるように熱溶着されて製袋されている、請求項1または請求項2に記載の真空断熱材。   3. The vacuum heat insulating material according to claim 1, wherein the outer packaging material is heat-welded so as to have a shortest circumference around the core material. 前記凹部に沿って折られて箱状に形成された請求項1から請求項4までのいずれか1項に記載の真空断熱材を備え、前記外包材において熱溶着された部分は、前記芯材が存在しない部分を含み、前記芯材が存在しない前記外包材の熱溶着部分の一部に孔が形成されている、冷蔵庫。   5. The vacuum heat insulating material according to claim 1, wherein the core material is provided with the vacuum heat insulating material according to claim 1, which is folded along the concave portion and formed in a box shape. A refrigerator including a portion where no core exists and a hole is formed in a part of the heat-welded portion of the outer packaging material where the core material does not exist. 外箱と、前記外箱の内側に配置される内箱とを備え、前記外箱と前記内箱との間に空間を有し、前記空間内には、前記凹部に沿って折られて箱状に形成された請求項1から請求項4までのいずれか1項に記載の真空断熱材が挿入されて、前記空間内には、発泡断熱材が充填されている、冷蔵庫。   An outer box and an inner box disposed inside the outer box, and has a space between the outer box and the inner box, and the box is folded along the recess in the box The refrigerator with which the vacuum heat insulating material of any one of Claim 1- Claim 4 formed in the shape is inserted, and the foaming heat insulating material is filled in the said space. 外箱と、前記外箱の内側に配置される内箱とを備え、前記外箱と前記内箱との間に空間を有し、前記空間内には、前記凹部に沿って折られて箱状に形成された請求項1から請求項4までのいずれか1項に記載の真空断熱材を備え、前記真空断熱材は、発泡断熱材によって覆われている、冷蔵庫。
An outer box and an inner box disposed inside the outer box, and has a space between the outer box and the inner box, and the box is folded along the recess in the box The refrigerator provided with the vacuum heat insulating material of any one of Claim 1- Claim 4 formed in the shape, and the said vacuum heat insulating material is covered with the foam heat insulating material.
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