JP2011183478A - Adsorption apparatus - Google Patents

Adsorption apparatus Download PDF

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JP2011183478A
JP2011183478A JP2010048641A JP2010048641A JP2011183478A JP 2011183478 A JP2011183478 A JP 2011183478A JP 2010048641 A JP2010048641 A JP 2010048641A JP 2010048641 A JP2010048641 A JP 2010048641A JP 2011183478 A JP2011183478 A JP 2011183478A
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porous body
adsorption
suction
stopper
thickness
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Toshimitsu Tachibana
俊光 橘
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Nitto Denko Corp
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Nitto Denko Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To provide an adsorption apparatus capable of restraining plastic deformation of a porous body. <P>SOLUTION: This adsorption apparatus 1 includes the porous body 3 stuck to a suction surface 2a via an adhesive layer and composed of resin and a stopper 4 projecting the suction surface 2a in the facing direction more than the suction surface 2a. A height from the suction surface 2a of the stopper 4 is the total or less of a thickness regulated by the adhesive layer and the porous body 3 and a thickness of an object 5, and is 70% or more of the thickness regulated by the adhesive layer and the porous body 3. This constitution can reduce pressure applied to the porous body 3 since deformation of the porous body 3 is regulated by the stopper 4. <P>COPYRIGHT: (C)2011,JPO&INPIT

Description

本発明は、対象物を吸着面に真空吸着する吸着装置に関する。   The present invention relates to a suction device that vacuum-sucks an object on a suction surface.

従来から、金属箔、プラスチックフィルム、グリーンシート等の薄く軽量なシートやフィルムを加工する工程等では、対象物を吸着面に真空吸着する吸着装置が用いられ、この吸着装置によってシートやフィルムが固定されたり搬送されたりしている。このような吸着装置では、対象物の保護等のために、吸着面に通気性を有するシート状の多孔質体が貼着されることが広く行われている(例えば、特許文献1参照)。   Conventionally, in the process of processing thin and light sheets and films such as metal foil, plastic film, and green sheet, an adsorption device that vacuum-adsorbs an object on the adsorption surface has been used, and the sheet or film is fixed by this adsorption device. Or being transported. In such an adsorbing device, a sheet-like porous body having air permeability is stuck on the adsorbing surface in order to protect the object or the like (for example, see Patent Document 1).

特開2001−353788号公報JP 2001-353788 A

ところで、吸着面に多孔質体が貼着された吸着装置で対象物を搬送する場合には、搬送元で対象物を吸着する際および搬送先で対象物を開放する際に、多孔質体が対象物を挟んで対象物支持材等に押し付けられて、多孔質体に大きな圧力がかかることがある。そして、多孔質体として樹脂からなるものを用いた場合には、前記の圧力が繰り返しかかることにより、多孔質体が塑性変形することがある。このような多孔質体の組成変形が起きると、多孔質体の構造自体が変化してしまうため、多孔質体の通気度が悪化して対象物の吸着および開放操作が不安定になったり、多孔質体にシワが形成されて吸着が実行できなくなったりする。   By the way, when the object is transported by the suction device having the porous body adhered to the suction surface, the porous body is used when the target is sucked at the transport source and when the target is opened at the transport destination. A large pressure may be applied to the porous body by being pressed against the object support material or the like with the object sandwiched therebetween. And when what consists of resin is used as a porous body, a porous body may be plastically deformed by applying the said pressure repeatedly. When such a composition deformation of the porous body occurs, the structure itself of the porous body changes, so that the air permeability of the porous body deteriorates and the adsorption and release operations of the target object become unstable, Wrinkles are formed in the porous body and adsorption cannot be performed.

本発明は、このような事情に鑑み、多孔質体の塑性変形を抑制することのできる吸着装置を提供することを目的とする。   An object of this invention is to provide the adsorption | suction apparatus which can suppress the plastic deformation of a porous body in view of such a situation.

すなわち、本発明は、対象物を吸着面に真空吸着する吸着装置であって、前記吸着面に接着層を介して貼着された、樹脂からなる多孔質体と、前記吸着面よりも当該吸着面が面する方向に突出するストッパーと、を備え、前記ストッパーの前記吸着面からの高さは、前記接着層および前記多孔質体で規定される厚さと前記対象物の厚さの合計以下、前記接着層および前記多孔質体で規定される厚さの70%以上である、吸着装置を提供する。   That is, the present invention is an adsorption device for vacuum-adsorbing an object on an adsorption surface, the porous body made of resin adhered to the adsorption surface via an adhesive layer, and the adsorption surface more than the adsorption surface. A stopper protruding in a direction in which the surface faces, and the height of the stopper from the adsorption surface is equal to or less than the sum of the thickness defined by the adhesive layer and the porous body and the thickness of the object, Provided is an adsorption device that is 70% or more of the thickness defined by the adhesive layer and the porous body.

上記の構成によれば、多孔質体の変形がストッパーによって規制されるため、多孔質体にかかる圧力を小さくすることができる。従って、本発明によれば、多孔質体の塑性変形を抑制することができる。   According to said structure, since a deformation | transformation of a porous body is controlled by a stopper, the pressure concerning a porous body can be made small. Therefore, according to the present invention, plastic deformation of the porous body can be suppressed.

本発明の一実施形態に係る吸着装置の吸着ヘッドを示す側面図である。It is a side view which shows the suction head of the suction apparatus which concerns on one Embodiment of this invention. 図1の吸着ヘッドの下面図である。It is a bottom view of the suction head of FIG.

図1および図2に、本発明の一実施形態に係る吸着装置1の吸着ヘッド2を示す。吸着装置1は、対象物5を真空吸着して搬送するものであり、吸着ヘッド2と、吸着ヘッド2を昇降させる昇降機構(図示せず)と、吸着ヘッド2を水平方向に移動させる移動機構(図示せず)と、吸着ヘッド2と吸引路6で接続された真空ポンプ(図示せず)とを備えている。そして、吸着ヘッド2における水平面に平行な下面が、対象物5を吸着させる吸着面2aとなっている。   1 and 2 show a suction head 2 of a suction device 1 according to an embodiment of the present invention. The suction device 1 transports the object 5 by vacuum suction, and includes a suction head 2, a lifting mechanism (not shown) that moves the suction head 2 up and down, and a moving mechanism that moves the suction head 2 in the horizontal direction. (Not shown) and a vacuum pump (not shown) connected to the suction head 2 and the suction path 6. And the lower surface parallel to the horizontal surface in the suction head 2 serves as a suction surface 2 a for sucking the object 5.

本実施形態では、対象物5が矩形シート状であり、この対象物5の形状に合わせて吸着面2aが矩形状をなしている。ただし、吸着面2aの形状はこれに限らず、例えば、八角形等の多角形状であってもよいし、円形状であってもよい。   In the present embodiment, the object 5 has a rectangular sheet shape, and the suction surface 2 a has a rectangular shape in accordance with the shape of the object 5. However, the shape of the suction surface 2a is not limited to this, and may be, for example, a polygonal shape such as an octagon or a circular shape.

吸着面2aには、対象物5が吸着されるべき吸着領域20内に複数の吸引孔21が設けられている。本実施形態では、吸引孔21が、吸着領域20の輪郭に沿って等間隔で配置されている。吸着ヘッド2内には、吸引孔21と吸引路6とを連通する連通路22が形成されている。なお、吸引孔21の位置および数量は、対象物5の種類や大きさに合わせて適宜選定可能である。   The suction surface 2a is provided with a plurality of suction holes 21 in the suction region 20 where the object 5 is to be sucked. In the present embodiment, the suction holes 21 are arranged at equal intervals along the outline of the suction region 20. In the suction head 2, a communication path 22 that connects the suction hole 21 and the suction path 6 is formed. The position and quantity of the suction holes 21 can be appropriately selected according to the type and size of the object 5.

また、吸着面2aには、シート状の多孔質体3が接着層(図示せず)を介して貼着されている。本実施形態の多孔質体3は、下面視で矩形状の四隅が切り欠かれた十字状をなしており、吸着面2aにおける吸着領域20を完全に覆っている。この多孔質体3は、樹脂で構成されている。   Moreover, the sheet-like porous body 3 is stuck to the adsorption surface 2a via an adhesive layer (not shown). The porous body 3 of the present embodiment has a cross shape in which four corners of a rectangular shape are cut out when viewed from the bottom, and completely covers the adsorption region 20 on the adsorption surface 2a. The porous body 3 is made of resin.

多孔質体3は、樹脂からなる多孔性のものであればよく、その例としては、織布、不織布、穿孔加工を施したフィルム、プラスチック粉体が焼結させられることにより多孔質化された焼結シート体等が挙げられる。ただし、本発明は、気孔率の大きい材料、圧縮弾性率が小さな材料、または塑性変形を起こしやすい材料を使用した場合に特に効果的である。   The porous body 3 may be any porous material made of resin, and examples thereof include a woven fabric, a nonwoven fabric, a perforated film, and a plastic powder that has been made porous by sintering. A sintered sheet body etc. are mentioned. However, the present invention is particularly effective when a material having a high porosity, a material having a low compression elastic modulus, or a material that easily undergoes plastic deformation is used.

多孔質体3としては、全面に均一に孔が存在し、面全体で均一な吸着力が得られやすいという観点から、プラスチック粉体の焼結シート体を使用することが好ましい。中でも、用途上、対象物との間に摩擦が生じるために、耐摩耗性および耐衝撃性に優れるという観点から、平均分子量が50万以上の超高分子量ポリエチレン粉体を用いて作製された焼結シート体が好ましい。   As the porous body 3, it is preferable to use a sintered sheet body of plastic powder from the viewpoint that pores exist uniformly on the entire surface and uniform adsorption force is easily obtained over the entire surface. In particular, because of the friction between the object and the object for use, a sintered body produced using ultrahigh molecular weight polyethylene powder having an average molecular weight of 500,000 or more from the viewpoint of excellent wear resistance and impact resistance. A bonded sheet is preferred.

超高分子量ポリエチレン粉体を用いて焼結シート体を作製するには、次のような方法等を使用可能である。1つ目は、該粉体を金型に入れた状態で焼結させて焼結ブロックを作製し、この焼結ブロックを旋盤加工によりシート状に加工する方法である。2つ目は、該粉体を所定厚さに並べた状態で焼結する方法である。3つ目は、該粉体を流動パラフィン等の超高分子量ポリエチレンの融点よりも高い沸点の溶媒に分散させたいわゆるスラリーを、表面を離型処理している金属板上に所定厚さに塗布し、さらにその上にシートを被せた状態で超高分子量ポリエチレンの融点以上に加熱して焼結させる方法である。   In order to produce a sintered sheet body using ultrahigh molecular weight polyethylene powder, the following method can be used. The first is a method in which the powder is sintered in a state where it is placed in a mold to produce a sintered block, and this sintered block is processed into a sheet by lathe processing. The second is a method in which the powder is sintered in a state of being arranged in a predetermined thickness. Third, a so-called slurry in which the powder is dispersed in a solvent having a boiling point higher than the melting point of ultrahigh molecular weight polyethylene such as liquid paraffin is applied to a metal plate whose surface is subjected to mold release treatment to a predetermined thickness. In this method, the sheet is covered with a sheet and heated to a temperature equal to or higher than the melting point of ultrahigh molecular weight polyethylene to be sintered.

多孔質体3の厚さは、0.05mm以上3.0mm以下であることが好ましい。製法等により多孔質体3の圧縮されたときの性質が異なるが、厚さが0.05mm未満であれば、厚さ方向に変形したときの対象物3との密着性が得難くなり、厚さが3.0mmを超えれば、多孔質体3の変形量が大きくなり過ぎるからである。より好ましい多孔質体3の厚さは、0.1mm以上1.5mm以下である。   The thickness of the porous body 3 is preferably 0.05 mm or more and 3.0 mm or less. Although the properties when the porous body 3 is compressed differ depending on the manufacturing method or the like, if the thickness is less than 0.05 mm, it becomes difficult to obtain adhesion with the object 3 when deformed in the thickness direction. If the thickness exceeds 3.0 mm, the deformation amount of the porous body 3 becomes too large. A more preferable thickness of the porous body 3 is 0.1 mm or more and 1.5 mm or less.

多孔質体3を接着層により吸着面2aに貼着する方法は、全ての吸引孔21が完全に塞がれず、それらを通じた通気が確保されるような方法であれば特に制限されない。例えば、熱によって融着させる方法、多孔質体3における粘着面2aの吸引孔21に対応する部分を除いた部分にホットメルトシートを配して熱溶着させる方法、多孔質体3における吸着面2aの吸引孔21に対応する部分を除いた部分に両面テープを配して貼り合わせる方法、粘着剤を多孔質体3の全面に亘って斑点状に塗布して通気性を確保しながら貼り合わせる方法などを利用することができる。このように、多孔質体3と吸着面2aとを接着する接着層としては、種々の構成のものを採用することができる。   The method of adhering the porous body 3 to the adsorption surface 2a with the adhesive layer is not particularly limited as long as all the suction holes 21 are not completely blocked and the ventilation through them is ensured. For example, a method of fusing by heat, a method of disposing a hot melt sheet on a portion of the porous body 3 excluding a portion corresponding to the suction hole 21 of the adhesive surface 2a, and heat-welding, a suction surface 2a of the porous body 3 A method in which a double-sided tape is disposed and bonded to a portion excluding a portion corresponding to the suction hole 21, and a method in which a pressure-sensitive adhesive is applied in a spot shape over the entire surface of the porous body 3 and bonded while ensuring air permeability. Etc. can be used. As described above, as the adhesive layer for adhering the porous body 3 and the adsorption surface 2a, those having various configurations can be employed.

さらに、本実施形態では、吸着面2aの四隅の多孔質体3で覆われていない部分に、矩形板状のストッパー4が設けられており、これらのストッパー4が吸着面2aから下方に突出している。   Furthermore, in this embodiment, the rectangular plate-shaped stopper 4 is provided in the part which is not covered with the porous body 3 of the four corners of the adsorption | suction surface 2a, and these stoppers 4 protrude below from the adsorption | suction surface 2a. Yes.

ストッパー4の吸着面2aからの高さは、接着層および多孔質体3で規定される厚さと対象物5の厚さの合計(以下単に「合計厚さ」という。)以下であることが好ましく、合計厚さ未満であることがより好ましい。多孔質体3は厚さが不均一になっていることも想定されるので、多孔質体3を対象物5に全面に亘って確実に接触させるためには、吸着時に多孔質体3をある程度厚さ方向に変形させることが好ましいからである。例えば、ストッパー4の高さは、本実施形態のようにストッパー4が吸着領域20の外側に配置されていてストッパー4と対象物5が接触しないように設計されている場合、あるいは対象物5の厚さが厚い場合には、多孔質体3の厚さよりも大きくてもよい。   The height of the stopper 4 from the adsorption surface 2a is preferably equal to or less than the sum of the thickness defined by the adhesive layer and the porous body 3 and the thickness of the object 5 (hereinafter simply referred to as “total thickness”). More preferably, it is less than the total thickness. Since it is also assumed that the porous body 3 has a non-uniform thickness, in order to make sure that the porous body 3 is in contact with the object 5 over the entire surface, the porous body 3 is somewhat fixed during adsorption. This is because it is preferable to deform in the thickness direction. For example, the height of the stopper 4 is set so that the stopper 4 is arranged outside the adsorption region 20 and the stopper 4 and the object 5 are not in contact with each other as in the present embodiment, or When the thickness is thick, it may be larger than the thickness of the porous body 3.

また、ストッパー4の吸着面2aからの高さは、接着層および多孔質体3で規定される厚さの70%以上であることが好ましい。ストッパー4の高さが接着層および多孔質体3で規定される厚さの70%未満であると、ストッパーによって規制しようとしている多孔質体3の変形量が大きくなりすぎてしまい、多孔質体3の塑性変形が起きやすくなる。   The height of the stopper 4 from the adsorption surface 2 a is preferably 70% or more of the thickness defined by the adhesive layer and the porous body 3. If the height of the stopper 4 is less than 70% of the thickness defined by the adhesive layer and the porous body 3, the amount of deformation of the porous body 3 to be restricted by the stopper becomes too large, and the porous body 3 plastic deformation is likely to occur.

特に好ましいストッパー4の高さは、接着層および多孔質体3で規定される厚さの80%以上である。   A particularly preferable height of the stopper 4 is 80% or more of the thickness defined by the adhesive layer and the porous body 3.

ストッパー4は、吸着ヘッド4の下降時に当該ストッパー4が他の部材に接触した場合でも、その他の部材と吸着面2aとの間の隙間を確保するために、ヤング率が10GPa以上のものが好ましく、50GPaのものがより好ましい。このような観点から、ストッパー4は、例えば、ステンレス、鉄、銅、アルミニウム等の金属やセラミックス材で構成されていることが好ましい。   The stopper 4 preferably has a Young's modulus of 10 GPa or more in order to ensure a gap between the other member and the suction surface 2a even when the stopper 4 comes into contact with another member when the suction head 4 is lowered. 50 GPa is more preferable. From such a viewpoint, it is preferable that the stopper 4 is made of, for example, a metal such as stainless steel, iron, copper, or aluminum, or a ceramic material.

以上説明した本実施形態の吸着装置1では、多孔質体3の厚み方向の変形をストッパー4で規制することができる。これにより、多孔質体3にかかる圧力を小さくすることができ、多孔質体3の塑性変形を抑制することができる。   In the adsorption device 1 of this embodiment described above, the deformation in the thickness direction of the porous body 3 can be regulated by the stopper 4. Thereby, the pressure concerning the porous body 3 can be made small and the plastic deformation of the porous body 3 can be suppressed.

ここで、ストッパー4の高さが接着層および多孔質体3で規定される厚さよりも小さい場合は、例えば、多孔質体3の中央に貫通孔を設け、この貫通孔内にストッパー4を配置してもよい。ただし、この場合は、多孔質体3がストッパー4とのレベル差以上に変形すると、ストッパー4が対象物5に当たってしまう。そこで、ストッパー4は、対象物5に当たらないように、本実施形態のように吸着領域20の外側に配置されていていることが好ましい。   Here, when the height of the stopper 4 is smaller than the thickness defined by the adhesive layer and the porous body 3, for example, a through hole is provided in the center of the porous body 3, and the stopper 4 is disposed in the through hole. May be. However, in this case, if the porous body 3 is deformed more than the level difference from the stopper 4, the stopper 4 hits the object 5. Therefore, it is preferable that the stopper 4 is disposed outside the suction region 20 as in the present embodiment so as not to hit the object 5.

<変形例>
なお、前記実施形態では、矩形板状のストッパー4が吸着面2aの四隅に配置されていたが、ストッパー4の数量および位置ならびに形状は、適宜選定可能である。例えば、吸着面2aの周縁部に枠状のストッパーを設けてもよい。
<Modification>
In the above-described embodiment, the rectangular plate-like stoppers 4 are arranged at the four corners of the suction surface 2a. However, the quantity, position, and shape of the stoppers 4 can be appropriately selected. For example, a frame-like stopper may be provided at the peripheral edge of the suction surface 2a.

また、ストッパー4は、吸着面2aよりも当該吸着面2aが面する方向に突出していればよく、必ずしも吸着面2aに設けられている必要はない。例えば、ストッパー4を吸着ヘッド2の側面に、吸着面2aよりも下方に張り出すように設けることも可能である。   Moreover, the stopper 4 should just protrude in the direction which the said adsorption surface 2a faces rather than the adsorption surface 2a, and does not necessarily need to be provided in the adsorption surface 2a. For example, the stopper 4 can be provided on the side surface of the suction head 2 so as to protrude downward from the suction surface 2a.

以下、実施例を挙げて本発明を詳細に説明するが、本発明は、これら実施例に何ら制限されるものではない。   EXAMPLES Hereinafter, although an Example is given and this invention is demonstrated in detail, this invention is not restrict | limited to these Examples at all.

(実施例1)
超高分子量ポリエチレン粉末(分子量500万、嵩密度0.47g/cm3、平均粒子径120μm)を内径500mm、高さ500mmの金型に充填し、これを金属製耐圧容器に入れ、容器内を1000Paまで減圧した。その後、容器内に加熱された水蒸気を導入することにより、容器内を160℃、600kPaとして5時間の加熱を行い、ついで徐冷を行って、円筒状の焼結ブロックを得た。この焼結ブロックを旋盤により200μmの厚さとなるようにカットして焼結シート体を切り出し、これをプレス機により130℃、300kPaで1時間プレスした。その後、焼結シート体を100mm角にカットして多孔質体を作製した。ついで、この多孔質体の片面に、190℃に加熱したホットメルト接着剤(ヤスハラケミカル社製ヒロダイン)を490kPaの圧力で均一に分散させながら吹き付け、斑点状の接着層を形成した。接着剤の塗布量を7g/m2とした結果、接着層の厚さは5μmとなった。
Example 1
Ultra high molecular weight polyethylene powder (molecular weight: 5 million, bulk density: 0.47 g / cm 3 , average particle size: 120 μm) is filled in a mold having an inner diameter of 500 mm and a height of 500 mm, and this is put into a metal pressure resistant container. The pressure was reduced to 1000 Pa. Thereafter, heated steam was introduced into the container, and the interior of the container was heated at 160 ° C. and 600 kPa for 5 hours, and then gradually cooled to obtain a cylindrical sintered block. The sintered block was cut to a thickness of 200 μm with a lathe to cut out a sintered sheet body, and this was pressed with a press at 130 ° C. and 300 kPa for 1 hour. Thereafter, the sintered sheet body was cut into a 100 mm square to produce a porous body. Subsequently, a hot melt adhesive (Hirodine manufactured by Yashara Chemical Co., Ltd.) heated to 190 ° C. was sprayed on one side of the porous body while being uniformly dispersed at a pressure of 490 kPa to form a spotted adhesive layer. As a result of setting the application amount of the adhesive to 7 g / m 2 , the thickness of the adhesive layer was 5 μm.

厚さ200μmのSUS304板(ヤング率:190GPa)を10mm角にカットし、4つのストッパーを作製した。   A 200 μm-thick SUS304 plate (Young's modulus: 190 GPa) was cut into 10 mm squares to produce four stoppers.

100mm角の吸着面を有する吸着装置を用意し、その吸着装置の吸着面の4角に作製した4つのストッパーをエポキシ系接着剤で固定した。さらに、多孔質体がストッパーと干渉しないように、作製した多孔質体の4角を10mm角で切り欠いた後に多孔質体を接着層により吸着装置の吸着面に貼り付け、多孔質体およびストッパーが吸着面に設けられた吸着装置を得た。   An adsorption device having a 100 mm square adsorption surface was prepared, and four stoppers prepared at four corners of the adsorption surface of the adsorption device were fixed with an epoxy-based adhesive. Further, in order to prevent the porous body from interfering with the stopper, the porous body was attached to the adsorption surface of the adsorption device with an adhesive layer after cutting out the four corners of the produced porous body with a 10 mm square, and the porous body and the stopper Was obtained on the adsorption surface.

(実施例2)
厚さ150μmのSUS304板を用いた以外は実施例1と同様にして、吸着装置を得た。
(Example 2)
An adsorbing device was obtained in the same manner as in Example 1 except that a SUS304 plate having a thickness of 150 μm was used.

(実施例3)
厚さ210μmのSUS304板を用いた以外は実施例1と同様にして、吸着装置を得た。
(Example 3)
An adsorbing device was obtained in the same manner as in Example 1 except that a SUS304 plate having a thickness of 210 μm was used.

(実施例4)
多孔質体を作製する際に焼結ブロックを500μmの厚さとなるようにカットするとともに、厚さ500μmのSUS304板を用いた以外は実施例1と同様にして、吸着装置を得た。
(Example 4)
An adsorbing device was obtained in the same manner as in Example 1 except that the sintered block was cut to a thickness of 500 μm when a porous body was produced, and a SUS304 plate having a thickness of 500 μm was used.

(比較例1)
厚さ120μmのSUS304板を用いた以外は実施例1と同様にして、吸着装置を得た。
(Comparative Example 1)
An adsorbing device was obtained in the same manner as in Example 1 except that a SUS304 plate having a thickness of 120 μm was used.

(比較例2)
厚さ240μmのSUS304板を用いた以外は実施例1と同様にして、吸着装置を得た。
(Comparative Example 2)
An adsorbing device was obtained in the same manner as in Example 1 except that a SUS304 plate having a thickness of 240 μm was used.

(試験)
<気孔率>
実施例および比較例の吸着装置における多孔質体について、体積と重量から嵩密度を求め、超高分子量ポリエチレンの真密度を0.935g/cm3として、{1−(嵩密度/真密度)}×100の式から気孔率を算出した。その結果、いずれの多孔質体も気孔率は35%であった。
(test)
<Porosity>
About the porous body in the adsorption apparatus of an Example and a comparative example, a bulk density is calculated | required from volume and weight, and the true density of ultra high molecular weight polyethylene is 0.935 g / cm < 3 >, {1- (bulk density / true density)} The porosity was calculated from the x100 equation. As a result, the porosity of all the porous bodies was 35%.

<接着層および多孔質体で規定される厚さ>
実施例および比較例において、多孔質体を吸着装置に貼り付ける前に、いったん離型紙に貼り合わせ、その全体厚さを4角近傍部分でマイクロメータ(最小目盛0.001mm)を用いて測定し、その4つの測定値の平均値を算出した。この測定値から離型紙の厚さを差し引いて、接着層および多孔質体で規定される厚さを求めた。
<Thickness defined by adhesive layer and porous body>
In Examples and Comparative Examples, before attaching the porous body to the adsorption device, it was once attached to the release paper, and the total thickness was measured using a micrometer (minimum scale 0.001 mm) in the vicinity of the four corners. The average value of the four measured values was calculated. The thickness defined by the adhesive layer and the porous body was determined by subtracting the thickness of the release paper from this measured value.

<吸着試験>
まず、何も作業していない初期状態で、実施例および比較例の吸着装置の吸着試験を行った。吸着試験では、10L/minの吸引量で、厚さ10μmのアルミニウム箔をシワなく吸着できるかを確認した。
<Adsorption test>
First, the adsorption test of the adsorption apparatus of the Example and the comparative example was performed in the initial state where nothing was worked. In the adsorption test, it was confirmed whether an aluminum foil having a thickness of 10 μm can be adsorbed without wrinkles at a suction amount of 10 L / min.

次に、耐久試験を行い、その後に上記と同じ吸着試験を行った。耐久試験は、多孔質体およびストッパーが設けられた吸着面に対して、面圧を5MPaまで上昇させるプレスを1000回行った。   Next, an endurance test was performed, and then the same adsorption test as described above was performed. In the durability test, a press for increasing the surface pressure to 5 MPa was performed 1000 times on the adsorption surface provided with the porous body and the stopper.

実施例および比較例の吸着装置における接着層および多孔質体で規定される厚さ、ストッパーの高さ、ならびに吸着試験の結果を表1に示す。   Table 1 shows the thicknesses defined by the adhesive layers and the porous bodies, the heights of the stoppers, and the results of the adsorption test in the adsorption apparatuses of Examples and Comparative Examples.

Figure 2011183478
Figure 2011183478

表1から、実施例についてはいずれも問題なく吸着作業が可能であることが分かる。これに対し、比較例2では、ストッパーの高さが大きすぎるために吸着ができないことが確認された。また、比較例1では、初期は吸着作業が可能であるが、連続運転を想定した耐久試験後には多孔質体が塑性変形してしまった。これにより、通気性が大幅に低下して吸着ができなくなり、ストッパーを用いることによる効果が得られないことが確認された。   From Table 1, it can be seen that the adsorption work can be performed without any problem for the examples. On the other hand, in Comparative Example 2, it was confirmed that the suction cannot be performed because the height of the stopper is too large. Further, in Comparative Example 1, the adsorption work was possible at the initial stage, but the porous body was plastically deformed after the durability test assuming continuous operation. As a result, it was confirmed that the air permeability was greatly reduced and adsorption could not be performed, and the effect of using the stopper could not be obtained.

1 吸着装置
2 吸着ヘッド
2a 吸着面
20 吸着領域
3 多孔質体
4 ストッパー
5 対象物
DESCRIPTION OF SYMBOLS 1 Adsorption apparatus 2 Adsorption head 2a Adsorption surface 20 Adsorption area | region 3 Porous body 4 Stopper 5 Target object

Claims (5)

対象物を吸着面に真空吸着する吸着装置であって、
前記吸着面に接着層を介して貼着された、樹脂からなる多孔質体と、
前記吸着面よりも当該吸着面が面する方向に突出するストッパーと、を備え、
前記ストッパーの前記吸着面からの高さは、前記接着層および前記多孔質体で規定される厚さと前記対象物の厚さの合計以下、前記接着層および前記多孔質体で規定される厚さの70%以上である、吸着装置。
A suction device that vacuum-sucks an object on a suction surface,
A porous body made of a resin attached to the adsorption surface via an adhesive layer;
A stopper projecting in a direction in which the suction surface faces than the suction surface,
The height of the stopper from the adsorption surface is equal to or less than the sum of the thickness defined by the adhesive layer and the porous body and the thickness of the object, and the thickness defined by the adhesive layer and the porous body. The adsorber is 70% or more.
前記ストッパーは、前記吸着面における前記対象物が吸着されるべき吸着領域の外側に配置されている、請求項1に記載の吸着装置。   The suction device according to claim 1, wherein the stopper is disposed outside a suction region where the object on the suction surface is to be sucked. 前記ストッパーは、ヤング率が10GPa以上のものである、請求項1または2に記載の吸着装置。   The suction device according to claim 1 or 2, wherein the stopper has a Young's modulus of 10 GPa or more. 前記樹脂は、超高分子量ポリエチレンである、請求項1〜3のいずれか一項に記載の吸着装置。   The adsorption device according to any one of claims 1 to 3, wherein the resin is ultra high molecular weight polyethylene. 前記多孔質体は、超高分子量ポリエチレン粉体が焼結させられることにより多孔質化されたものである、請求項4に記載の吸着装置。   The adsorption device according to claim 4, wherein the porous body is made porous by sintering ultrahigh molecular weight polyethylene powder.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014167840A1 (en) * 2013-04-12 2014-10-16 東レエンジニアリング株式会社 Led manufacturing device and led manufacturing method

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014167840A1 (en) * 2013-04-12 2014-10-16 東レエンジニアリング株式会社 Led manufacturing device and led manufacturing method

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