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JP2015215020A - Composite heat insulating material and manufacturing method of composite heat insulating material - Google Patents

Composite heat insulating material and manufacturing method of composite heat insulating material Download PDF

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Publication number
JP2015215020A
JP2015215020A JP2014097543A JP2014097543A JP2015215020A JP 2015215020 A JP2015215020 A JP 2015215020A JP 2014097543 A JP2014097543 A JP 2014097543A JP 2014097543 A JP2014097543 A JP 2014097543A JP 2015215020 A JP2015215020 A JP 2015215020A
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hole
heat insulating
insulating material
vacuum
composite heat
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Inventor
富男 大崎
Tomio Osaki
富男 大崎
真作 富田
Shinsaku Tomita
真作 富田
坂田 知昭
Tomoaki Sakata
知昭 坂田
公夫 大畠
Kimio Ohata
公夫 大畠
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Uwa Dannetsu Kogyo Co Ltd
Gunma Prefecture
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Uwa Dannetsu Kogyo Co Ltd
Gunma Prefecture
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Priority to JP2014097543A priority Critical patent/JP2015215020A/en
Publication of JP2015215020A publication Critical patent/JP2015215020A/en
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Abstract

PROBLEM TO BE SOLVED: To provide a composite heat insulating material including through-holes and having high heat insulation performance, and a manufacturing method of the composite heat insulating material.SOLUTION: A composite heat insulating material 22 comprises: a vacuum heat insulating material 26 that comprises a core material 32 including through-holes 36, a packing material 34 vacuum-packing the core material 32, and holes 39 formed in a state where the core material 32 is vacuum-packed; and a foamed heat insulating material 30 covering at least one surface of the vacuum heat insulating material 26 and surrounding areas of the holes 39.

Description

本発明は、複合断熱材及び複合断熱材の製造方法に関する。   The present invention relates to a composite heat insulating material and a method for manufacturing the composite heat insulating material.

近年、冷蔵庫や自動販売機等の側壁を囲う断熱箱体の断熱材として真空断熱材(VIP:Vacuum Insulation Panel)が用いられ、断熱性能の向上を図っている。真空断熱材は、ウレタンの10分の1程の厚さで同一の断熱性能を有するものである。   In recent years, a vacuum insulation material (VIP: Vacuum Insulation Panel) has been used as a heat insulation material for a heat insulation box surrounding a side wall of a refrigerator, a vending machine or the like, and the heat insulation performance has been improved. The vacuum heat insulating material has the same heat insulating performance with a thickness of about one tenth of that of urethane.

特許文献1は、包装材6で形成された袋体の内部に芯材7が真空封入された真空断熱材であって、この真空断熱材20に貫通穴21が形成され、貫通穴21と芯材7との間に芯材カバー8を備えた構成を開示する。
また、特許文献2は、貫通孔を有する真空断熱材において、芯材2の貫通孔の縁と外被材3の穴との間の外被材3同士が熱溶着された熱溶着部7に、ガスバリア層に挟まれた熱溶着層の厚みが部分的に薄くなった薄肉部8を、穴の周方向に連続して設けることで、熱溶着部からのガス浸入量を抑制する構成を開示する。
Patent Document 1 is a vacuum heat insulating material in which a core material 7 is vacuum-sealed inside a bag body formed of a packaging material 6. A through hole 21 is formed in the vacuum heat insulating material 20, and the through hole 21 and the core are formed. The structure which provided the core material cover 8 between the materials 7 is disclosed.
Further, in Patent Document 2, in a vacuum heat insulating material having a through-hole, a heat-welded portion 7 in which the outer cover materials 3 between the edge of the through-hole of the core material 2 and the hole of the outer cover material 3 are heat-welded. The structure which suppresses the gas permeation amount from a heat welding part by providing the thin part 8 in which the thickness of the heat welding layer pinched | interposed into the gas barrier layer partially became thin continuously is provided. To do.

特開2013−200014号公報JP 2013-200014 A 特開2011−208762号公報JP 2011-208762 A

冷蔵庫や自動販売機等の内部には、配管や、配線等が混在しており、冷蔵庫や自動販売機等の機材収納部と製品収納部の断熱に真空断熱材を使用するには、配管や配線等を通すために、穴径及び穴ピッチを精度良く開ける必要がある。   Piping, wiring, etc. are mixed inside refrigerators, vending machines, etc. In order to use vacuum insulation for heat insulation of equipment storage parts and product storage parts such as refrigerators, vending machines, etc. In order to pass wiring or the like, it is necessary to open the hole diameter and the hole pitch with high accuracy.

しかしながら、真空断熱材の製造工程において、真空包装時の収縮による影響により、穴径や穴ピッチを精度よく開けることが困難であった。また、穴の周囲の断熱性にも課題があり、さらに、長期にわたって冷蔵庫や自動販売機等を稼働させることによって、穴の周囲の溶着部からガスが浸入し、断熱性能が低下するといった問題もある。   However, in the manufacturing process of the vacuum heat insulating material, it was difficult to accurately open the hole diameter and the hole pitch due to the influence of shrinkage during vacuum packaging. In addition, there is also a problem in the heat insulation around the hole, and further, there is a problem that the gas intrudes from the welded part around the hole and the heat insulation performance is lowered by operating the refrigerator or the vending machine for a long time. is there.

これらの断熱性能の低下は、自動販売機等の内部を一定の温度に保持するためのエネルギー消費を大きくする。また、自動販売機等の更なる省エネルギー及び小型化を図るためには、薄くて断熱性能の高い真空断熱材の使用部位を増やすのが効果的である。   These reductions in heat insulation performance increase energy consumption for maintaining the inside of a vending machine or the like at a constant temperature. In order to further save energy and reduce the size of a vending machine or the like, it is effective to increase the number of use parts of the vacuum heat insulating material that is thin and has high heat insulating performance.

本発明は、貫通孔を有し、断熱性能の高い複合断熱材及び複合断熱材の製造方法を提供することを目的とする。   An object of this invention is to provide the manufacturing method of the composite heat insulating material which has a through-hole, and has high heat insulation performance, and a composite heat insulating material.

本発明の一つの態様は複合断熱材にあり、この複合断熱材は、貫通孔を有する芯材と、前記芯材を真空包装する包装材と、前記芯材が真空包装された状態で形成される孔と、からなる真空断熱材と、前記真空断熱材の少なくとも1面と前記孔の周囲を覆う発泡系断熱材と、を有する。   One aspect of the present invention resides in a composite heat insulating material, and the composite heat insulating material is formed in a state where a core material having a through hole, a packaging material for vacuum packaging the core material, and the core material being vacuum packaged. A vacuum heat insulating material, and a foam heat insulating material covering at least one surface of the vacuum heat insulating material and the periphery of the hole.

好適には、前記孔は、円形状、円弧状、U字状又は切欠きである。   Suitably, the said hole is circular shape, circular arc shape, U shape, or a notch.

好適には、前記真空断熱材の他の面は、保護部材で覆われる。   Preferably, the other surface of the vacuum heat insulating material is covered with a protective member.

本発明の他の態様は複合断熱材の製造方法にあり、この複合断熱材の製造方法は、芯材に貫通孔を形成する工程と、前記芯材を包装材で包み込み真空包装する工程と、真空包装された前記包装材の前記貫通孔部分以外の開口部を含む前記包装材の周囲を熱溶着する工程と、前記貫通孔部分を熱溶着する工程と、熱溶着された前記貫通孔部分に第1の孔を形成する工程と、前記包装材の少なくとも1面と前記第1の孔の周囲を発泡系断熱材で覆う工程と、前記発泡断熱材で覆われた前記第1の孔部分を切断して第2の孔を形成する工程と、を有する。   Another aspect of the present invention resides in a method for manufacturing a composite heat insulating material, which includes a step of forming a through hole in a core material, a step of wrapping the core material with a packaging material and vacuum packaging it, A step of heat-welding the periphery of the packaging material including an opening other than the through-hole portion of the packaging material vacuum-packed, a step of heat-welding the through-hole portion, and the heat-welded through-hole portion. A step of forming a first hole, a step of covering at least one surface of the packaging material and the periphery of the first hole with a foam heat insulating material, and the first hole portion covered with the foam heat insulating material. Cutting to form a second hole.

好適には、前記第2の孔は、前記第1の孔より孔径が小さく、前記第1の孔は、前記貫通孔よりも孔径が小さい。   Preferably, the hole diameter of the second hole is smaller than that of the first hole, and the hole diameter of the first hole is smaller than that of the through hole.

好適には、前記第1の孔の孔ピッチは、前記貫通孔の孔ピッチよりも小さい。   Preferably, the hole pitch of the first hole is smaller than the hole pitch of the through hole.

好適には、前記貫通孔は、前記芯材を包装材で真空包装する工程における孔ピッチ及び孔径の収縮を見込んで形成される。   Suitably, the said through-hole is formed in anticipation of shrinkage | contraction of the hole pitch and the hole diameter in the process of vacuum-packaging the said core material with a packaging material.

本発明によれば、貫通孔を有し、断熱性能の高い複合断熱材及び複合断熱材の製造方法を提供することができる。   ADVANTAGE OF THE INVENTION According to this invention, it has a through-hole and can provide the manufacturing method of a composite heat insulating material with a high heat insulation performance, and a composite heat insulating material.

本発明の一実施形態に係る複合断熱材が用いられる自動販売機を示す斜視図である。It is a perspective view which shows the vending machine in which the composite heat insulating material which concerns on one Embodiment of this invention is used. 本発明の一実施形態に係る複合断熱材を示す上面図である。It is a top view which shows the composite heat insulating material which concerns on one Embodiment of this invention. 本発明の一実施形態に係る複合断熱材の孔周辺を示す断面図である。It is sectional drawing which shows the hole periphery of the composite heat insulating material which concerns on one Embodiment of this invention. 本発明の一実施形態に係る複合断熱材の製造方法を示す図である。It is a figure which shows the manufacturing method of the composite heat insulating material which concerns on one Embodiment of this invention. 本発明の他の実施形態に係る複合断熱材を示す上面図である。It is a top view which shows the composite heat insulating material which concerns on other embodiment of this invention.

以下、本発明の実施の形態を添付図面を参照して説明する。
図1は、本発明の一実施形態に係る複合断熱材を備えた自動販売機10を示す斜視図である。
Embodiments of the present invention will be described below with reference to the accompanying drawings.
FIG. 1 is a perspective view showing a vending machine 10 including a composite heat insulating material according to an embodiment of the present invention.

自動販売機10は、筺体12と、筺体12の前面を開閉する前扉14と、前扉14の内側に設けられた中扉16と、を有する。
筺体12内は、製品を収納する製品収納部18と、コンプレッサ等の機材を収納する機材収納部20に分けられる。
製品収納部18は上面及び側面を不図示の真空断熱材等の断熱パネルで覆われている。
また、製品収納部18と機材収納部20は、複合断熱材としての複合断熱パネル22で仕切られている。
The vending machine 10 includes a housing 12, a front door 14 that opens and closes the front surface of the housing 12, and a middle door 16 provided inside the front door 14.
The inside of the housing 12 is divided into a product storage section 18 that stores products and a equipment storage section 20 that stores equipment such as a compressor.
The product storage unit 18 is covered at its upper surface and side surfaces with a heat insulating panel such as a vacuum heat insulating material (not shown).
The product storage unit 18 and the equipment storage unit 20 are partitioned by a composite heat insulation panel 22 as a composite heat insulating material.

図2は、本発明の一実施形態に係る複合断熱パネル22を示す上面図であり、図3は、図2の複合断熱パネル22の孔24周辺を示す断面図である。   2 is a top view showing the composite heat insulation panel 22 according to one embodiment of the present invention, and FIG. 3 is a cross-sectional view showing the periphery of the hole 24 of the composite heat insulation panel 22 in FIG.

複合断熱パネル22には、複数の孔24が形成され、この孔24内を貫通して、筺体12内で製品収納部18から機材収納部20へ電気配線、冷媒ガス配管等が設けられる。   A plurality of holes 24 are formed in the composite heat insulation panel 22, and electric wiring, refrigerant gas piping, and the like are provided from the product storage portion 18 to the equipment storage portion 20 in the housing 12 through the holes 24.

複合断熱パネル22は、真空断熱材26と、この真空断熱材26の一面に接着して設けられた保護部材としての保護シート28と、真空断熱材26の他の面と後述する孔39の周囲を覆う発泡系断熱材30と、を有する。   The composite heat insulating panel 22 includes a vacuum heat insulating material 26, a protective sheet 28 as a protective member adhered to one surface of the vacuum heat insulating material 26, the other surface of the vacuum heat insulating material 26, and a hole 39 described later. And a foam-type heat insulating material 30 covering the.

真空断熱材26は、芯材32と、芯材32を内包するガスバリア製の包装材34と、を有する。真空断熱材26には、孔39が形成されている。   The vacuum heat insulating material 26 includes a core material 32 and a gas barrier packaging material 34 that encloses the core material 32. A hole 39 is formed in the vacuum heat insulating material 26.

芯材32は、繊維材料であって、例えばグラスウールやグラスペーパーやグラスティッシュ等をシート状に成型したものが用いられる。芯材32には、貫通孔36が形成されている。   The core material 32 is a fiber material, and for example, glass wool, glass paper, glass tissue or the like molded into a sheet shape is used. A through hole 36 is formed in the core member 32.

包装材34は、袋状の例えばガスバリア製のラミネートフィルムが用いられる。   As the packaging material 34, a bag-shaped laminate film made of, for example, a gas barrier is used.

保護シート28は、真空断熱材26を保護するために用いられ、耐侯性、帯電防止性が良好な例えばPP(ポリプロピレン)シートが用いられる。   The protective sheet 28 is used to protect the vacuum heat insulating material 26, and for example, a PP (polypropylene) sheet having good weather resistance and antistatic properties is used.

発泡系断熱材30として、例えば発泡ウレタンが用いられる。   For example, urethane foam is used as the foam heat insulating material 30.

複合断熱パネル22の孔24の孔径L1は、真空断熱材26の孔39の孔径L2よりも小さく、孔39の孔径L2は、芯材32の貫通孔36の孔径L3よりも小さく、孔24と孔39と貫通孔36は、略同心円状に形成されている。 Hole diameter L 1 of the hole 24 of the composite insulating panel 22 is smaller than the diameter L 2 of the holes 39 of the vacuum heat insulating material 26, hole diameter L 2 of the holes 39 is smaller than the diameter L 3 of the through hole 36 of the core member 32 The hole 24, the hole 39, and the through hole 36 are formed substantially concentrically.

次に、本発明の一実施形態に係る複合断熱パネル22の製造方法について図4を参照して説明する。   Next, the manufacturing method of the composite heat insulation panel 22 which concerns on one Embodiment of this invention is demonstrated with reference to FIG.

まず、よく乾燥させた芯材32に貫通孔36を開ける(図4(a)参照)。貫通孔36の孔径L3は、例えば105mmである。貫通孔36の孔ピッチP3-1は、例えば158mmであって、孔ピッチP3-2は、例えば597mmである。 First, the through hole 36 is opened in the well-dried core material 32 (see FIG. 4A). The hole diameter L 3 of the through hole 36 is, for example, 105 mm. The hole pitch P 3-1 of the through holes 36 is 158 mm, for example, and the hole pitch P 3-2 is 597 mm, for example.

次に、この芯材32を包装材34内に収納し、この袋の開口部より包装材34内を真空排気して、包装材34同士を熱溶着させ、周囲シール部38Aを形成する(図4(b)参照)。   Next, the core material 32 is accommodated in the packaging material 34, the inside of the packaging material 34 is evacuated from the opening of the bag, and the packaging materials 34 are thermally welded to form a peripheral seal portion 38A (see FIG. 4 (b)).

次に、包装材34の周囲シール部38Aを折り込み、貫通孔36内の貫通孔シール部38Bを熱溶着する。熱溶着した貫通孔36の内周側の貫通孔シール部38Bを切断し、孔39を形成し、孔39を有する真空断熱材26が形成される(図4(c)参照)。孔39の孔径L2は、例えば75mmである。孔39の孔ピッチP2-1は、例えば155mmであって、孔ピッチP2-2は、例えば590.5mmである。 Next, the peripheral seal portion 38A of the packaging material 34 is folded, and the through-hole seal portion 38B in the through-hole 36 is thermally welded. The through hole seal part 38B on the inner peripheral side of the heat-welded through hole 36 is cut to form a hole 39, and the vacuum heat insulating material 26 having the hole 39 is formed (see FIG. 4C). The hole diameter L 2 of the hole 39 is, for example, 75 mm. The hole pitch P 2-1 of the holes 39 is, for example, 155 mm, and the hole pitch P 2-2 is, for example, 590.5 mm.

ここで、図4(b)における真空排気により、貫通孔36の孔ピッチP3及び孔径L3は1〜2%程度収縮する。
すなわち、真空排気による収縮を見込んで、貫通孔36の孔ピッチP3及び孔径L3を形成する。
Here, the hole pitch P 3 and the hole diameter L 3 of the through holes 36 are contracted by about 1 to 2% by the vacuum evacuation in FIG.
That is, the hole pitch P 3 and the hole diameter L 3 of the through holes 36 are formed in anticipation of contraction due to evacuation.

枠体40の中に、保護シート28を装着し、さらに保護シート28の上面に真空断熱材26を装着する。このとき、保護シート28と真空断熱材26は不図示の接着テープにより接着されている。枠体40の側面には、発泡系断熱材30を注入する注入口42が設けられている(図4(d)参照)。   The protective sheet 28 is mounted in the frame body 40, and the vacuum heat insulating material 26 is mounted on the upper surface of the protective sheet 28. At this time, the protective sheet 28 and the vacuum heat insulating material 26 are bonded by an adhesive tape (not shown). An inlet 42 for injecting the foam heat insulating material 30 is provided on the side surface of the frame body 40 (see FIG. 4D).

真空断熱材26を枠体40に装着したら、枠体40の上面に蓋44を装着し、注入口42から発泡系断熱材30を注入する。
これにより、発泡系断熱材30は、真空断熱材26と保護シート28間、真空断熱材26と蓋44間、孔39内の枠体40内の隙間に流れ込み、真空断熱材26の一面及び孔39内が発泡系断熱材30で充填され、複合断熱パネル22が形成される。ここで、発泡系断熱材30を用いることにより、真空断熱材26との間に外気が入ることが抑制される(図4(e)(図4(d)のA−A線断面図)参照)。
When the vacuum heat insulating material 26 is attached to the frame body 40, the lid 44 is attached to the upper surface of the frame body 40, and the foam heat insulating material 30 is injected from the inlet 42.
Thereby, the foam-based heat insulating material 30 flows into the gaps in the frame 40 in the hole 39 between the vacuum heat insulating material 26 and the protective sheet 28, between the vacuum heat insulating material 26 and the lid 44, and on one surface and the hole of the vacuum heat insulating material 26. The interior 39 is filled with the foam heat insulating material 30 to form the composite heat insulating panel 22. Here, by using the foam-based heat insulating material 30, it is possible to prevent outside air from entering between the vacuum heat insulating material 26 (see FIG. 4E (cross-sectional view taken along the line AA in FIG. 4D)). ).

所定の時間経過後(例えば15分後)、発泡系断熱材30が凝固し、冷却したら、蓋44を取り外し、枠体40から複合断熱パネル22を取り出す。そして、孔39の内周側を切断し、複合断熱パネル22に孔24を形成する(図4(f)参照)。孔24の孔径L1は、例えば48mmである。孔24の孔ピッチP1-1は、例えば155mmであって、孔ピッチP1-2は、例えば590.5mmである。 After elapse of a predetermined time (for example, after 15 minutes), when the foam heat insulating material 30 is solidified and cooled, the lid 44 is removed and the composite heat insulating panel 22 is taken out from the frame body 40. And the inner peripheral side of the hole 39 is cut | disconnected and the hole 24 is formed in the composite heat insulation panel 22 (refer FIG.4 (f)). The hole diameter L 1 of the hole 24 is 48 mm, for example. Hole pitch P 1-1 of holes 24 is, for example 155mm, hole pitch P 1-2 is, for example, 590.5Mm.

ここで、真空排気による収縮を見込んで、貫通孔36の孔径及び孔ピッチを形成しているので、孔24は、複合断熱パネル22に貫通して設けられた配管や配線を通すのに適した孔径を有する。また、孔24の孔ピッチは、複合断熱パネル22に貫通して設けられた配管や配線を通すのに適した位置に配置される。すなわち、寸法精度の良い孔が形成される。また、真空断熱材26の一面及び孔39の周囲が発泡系断熱材30で覆われているため、周囲シール部38A及び貫通孔シール部38Bが保護され、周囲シール部38A及び貫通孔シール部38Bから真空断熱材26内へガスが侵入することが抑制され、断熱性能が保たれる。また、肉薄の貫通孔シール部38Bも発泡系断熱材30で覆われるので、断熱性能が保たれる。また、真空断熱材26の一面が保護シート28で覆われ、他の面が発泡系断熱材30で覆われているため、包装材の表面を傷つける恐れがない。   Here, since the hole diameter and the hole pitch of the through holes 36 are formed in anticipation of the contraction due to the vacuum exhaust, the holes 24 are suitable for passing through the piping and wiring provided through the composite heat insulating panel 22. Has a pore size. Moreover, the hole pitch of the hole 24 is arrange | positioned in the position suitable for letting the piping and wiring which were penetrated and provided in the composite heat insulation panel 22 to pass. That is, a hole with high dimensional accuracy is formed. Further, since one surface of the vacuum heat insulating material 26 and the periphery of the hole 39 are covered with the foam heat insulating material 30, the peripheral seal portion 38A and the through hole seal portion 38B are protected, and the peripheral seal portion 38A and the through hole seal portion 38B. Gas is prevented from entering into the vacuum heat insulating material 26, and the heat insulating performance is maintained. Moreover, since the thin through-hole seal part 38B is also covered with the foam heat insulating material 30, the heat insulating performance is maintained. Further, since one surface of the vacuum heat insulating material 26 is covered with the protective sheet 28 and the other surface is covered with the foam heat insulating material 30, there is no fear of damaging the surface of the packaging material.

なお、本実施形態においては、真空断熱材26の一面を発泡系断熱材30で覆う構成について説明したが、これに限らず、真空断熱材26の全面を発泡系断熱材30で覆うようにしてもよい。   In addition, in this embodiment, although the structure which covered one surface of the vacuum heat insulating material 26 with the foam type heat insulating material 30 was demonstrated, not only this but the whole surface of the vacuum heat insulating material 26 is covered with the foam type heat insulating material 30. Also good.

図5は、他の実施形態に係る複合断熱パネル50を示す上面図である。
図5に示す複合断熱パネル50は、円形状の孔24の他、円弧状の孔52とU字状の孔54と切欠き56とを有する。
円形状の孔24に限らず、円弧状の孔52、U字状の孔54、切欠き56等の形状であっても、円弧状の孔、U字状の孔、切欠きを有する芯材を用いることにより、上述した実施形態に係る複合断熱パネル22と同様の方法により、円弧状の孔、U字状の孔、切欠き等の形状の孔を有する真空断熱材を形成することができ、真空断熱材の一面及び円弧状の孔、U字状の孔、切欠き等の周囲が発泡系断熱材30で覆われた複合断熱材を形成することができる。
FIG. 5 is a top view showing a composite heat insulation panel 50 according to another embodiment.
The composite heat insulation panel 50 shown in FIG. 5 includes a circular hole 24, an arc-shaped hole 52, a U-shaped hole 54, and a notch 56.
Not only the circular hole 24 but also a core material having an arc-shaped hole, a U-shaped hole, or a notch, even if the arc-shaped hole 52, the U-shaped hole 54, the notch 56 or the like is formed. Can be used to form a vacuum heat insulating material having arc-shaped holes, U-shaped holes, holes such as cutouts, and the like by the same method as the composite heat insulating panel 22 according to the above-described embodiment. Further, a composite heat insulating material in which one surface of the vacuum heat insulating material and the periphery of the arc-shaped hole, the U-shaped hole, the notch and the like are covered with the foam heat insulating material 30 can be formed.

すなわち、自動販売機等の内部の製品収納部と機材収納部を仕切る排熱の影響が大きい部分に、真空断熱材を用いた複合断熱パネルを用いることにより、省エネルギー及び装置の小型化を図ることができる。   In other words, energy saving and downsizing of the device are achieved by using a composite heat insulation panel using a vacuum heat insulating material in a part where the influence of exhaust heat that partitions the product storage part and the equipment storage part inside the vending machine is large. Can do.

また、真空断熱材の少なくとも一面及び孔の周囲を発泡系断熱材で覆うように形成することにより、配管や、配線等が混在した部分においても、孔の周囲からのガスの浸入を抑制しつつ、断熱性能を向上させることができる。また、孔の周囲の肉薄部の断熱性能を保持することができる。また、孔に配管や配線を通す際に、包装材表面を傷つける恐れがなく、真空状態を保持して断熱性能を保持することができる。   In addition, by forming at least one surface of the vacuum heat insulating material and the periphery of the hole with a foam heat insulating material, the intrusion of gas from the periphery of the hole is suppressed even in a portion where piping, wiring, etc. are mixed. Insulation performance can be improved. Moreover, the heat insulation performance of the thin part around the hole can be maintained. Further, when piping or wiring is passed through the hole, there is no fear of damaging the surface of the packaging material, and the heat insulation performance can be maintained by maintaining a vacuum state.

本発明は、冷蔵庫や自動販売機の他、ショーケース冷凍庫、建材外壁、エコキュート(登録商標)等の高い断熱性を必要とされる断熱箱体に用いることができる。   INDUSTRIAL APPLICABILITY The present invention can be used for a heat insulating box body that requires high heat insulating properties such as a showcase freezer, a building material outer wall, and Ecocute (registered trademark), as well as a refrigerator and a vending machine.

10 自動販売機
18 製品収納部
20 機材収納部
22 複合断熱パネル
24 孔(第2の孔)
26 真空断熱材
28 保護シート
30 発泡系断熱材
32 芯材
34 包装材
36 貫通孔
38A 周囲シール部
38B 貫通孔シール部
39 孔(第1の孔)
10 Vending Machine 18 Product Storage Unit 20 Equipment Storage Unit 22 Composite Insulation Panel 24 Hole (Second Hole)
26 Vacuum heat insulating material 28 Protective sheet 30 Foamed heat insulating material 32 Core material 34 Packaging material 36 Through hole 38A Peripheral seal portion 38B Through hole seal portion 39 Hole (first hole)

Claims (7)

貫通孔を有する芯材と、前記芯材を真空包装する包装材と、前記芯材が真空包装された状態で形成される孔と、からなる真空断熱材と、
前記真空断熱材の少なくとも1面と前記孔の周囲を覆う発泡系断熱材と、を有する
複合断熱材。
A vacuum heat insulating material comprising: a core material having a through hole; a packaging material for vacuum packaging the core material; and a hole formed in a state where the core material is vacuum packaged;
A composite heat insulating material having at least one surface of the vacuum heat insulating material and a foam heat insulating material covering the periphery of the hole.
前記孔は、円形状、円弧状、U字状又は切欠きである請求項1記載の複合断熱材。   The composite heat insulating material according to claim 1, wherein the hole has a circular shape, an arc shape, a U shape, or a notch. 前記真空断熱材の他の面は、保護部材で覆われる請求項1又は2記載の複合断熱材。   The other surface of the said vacuum heat insulating material is a composite heat insulating material of Claim 1 or 2 covered with a protection member. 芯材に貫通孔を形成する工程と、
前記芯材を包装材で包み込み真空包装する工程と、
真空包装された前記包装材の前記貫通孔部分以外の開口部を含む前記包装材の周囲を熱溶着する工程と、
前記貫通孔部分を熱溶着する工程と、
熱溶着された前記貫通孔部分に第1の孔を形成する工程と、
前記包装材の少なくとも1面と前記第1の孔の周囲を発泡系断熱材で覆う工程と、
前記発泡断熱材で覆われた前記第1の孔部分を切断して第2の孔を形成する工程と、
を有する複合断熱材の製造方法。
Forming a through hole in the core material;
Wrapping the core material with a packaging material and vacuum packaging;
Heat-sealing the periphery of the packaging material including an opening other than the through-hole portion of the packaging material vacuum-packaged;
Heat-welding the through-hole portion;
Forming a first hole in the heat-welded through-hole portion;
Covering at least one surface of the packaging material and the periphery of the first hole with a foam heat insulating material;
Cutting the first hole portion covered with the foam heat insulating material to form a second hole;
The manufacturing method of the composite heat insulating material which has this.
前記第2の孔は、前記第1の孔より孔径が小さく、前記第1の孔は、前記貫通孔よりも孔径が小さい請求項4記載の複合断熱材の製造方法。   The method of manufacturing a composite heat insulating material according to claim 4, wherein the second hole has a smaller hole diameter than the first hole, and the first hole has a smaller hole diameter than the through hole. 前記第1の孔の孔ピッチは、前記貫通孔の孔ピッチよりも小さい請求項4又は5に記載の複合断熱材の製造方法。   The method for manufacturing a composite heat insulating material according to claim 4 or 5, wherein a hole pitch of the first holes is smaller than a hole pitch of the through holes. 前記貫通孔は、前記芯材を包装材で真空包装する工程における孔ピッチ及び孔径の収縮を見込んで形成される請求項4乃至6いずれかに記載の複合断熱材の製造方法。   The said through-hole is a manufacturing method of the composite heat insulating material in any one of the Claims 4 thru | or 6 formed in anticipation of shrinkage | contraction of the hole pitch and hole diameter in the process of vacuum-packaging the said core material with a packaging material.
JP2014097543A 2014-05-09 2014-05-09 Composite heat insulating material and manufacturing method of composite heat insulating material Pending JP2015215020A (en)

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