JP2006192360A - Slit nozzle for two fluids - Google Patents

Slit nozzle for two fluids Download PDF

Info

Publication number
JP2006192360A
JP2006192360A JP2005005730A JP2005005730A JP2006192360A JP 2006192360 A JP2006192360 A JP 2006192360A JP 2005005730 A JP2005005730 A JP 2005005730A JP 2005005730 A JP2005005730 A JP 2005005730A JP 2006192360 A JP2006192360 A JP 2006192360A
Authority
JP
Japan
Prior art keywords
gas
liquid
slit
channel
injection hole
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
JP2005005730A
Other languages
Japanese (ja)
Other versions
JP4649214B2 (en
Inventor
Hiroki Hiramatsu
弘樹 平松
Tomohiro Saeki
智宏 佐伯
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
H Ikeuchi and Co Ltd
Original Assignee
H Ikeuchi and Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by H Ikeuchi and Co Ltd filed Critical H Ikeuchi and Co Ltd
Priority to JP2005005730A priority Critical patent/JP4649214B2/en
Publication of JP2006192360A publication Critical patent/JP2006192360A/en
Application granted granted Critical
Publication of JP4649214B2 publication Critical patent/JP4649214B2/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Abstract

<P>PROBLEM TO BE SOLVED: To provide a slit nozzle for two fluids in which a range capable of setting a spray pressure of a slit nozzle is broadened and an improper spraying is not caused. <P>SOLUTION: There is provided a slit nozzle for two fluids in which an injection hole in a slit shape 23 is provided along an end surface in the lengthwise direction of an oblong body, a liquid flow path 20 and a gas flow path 16 are provided along the lengthwise direction of the oblong body therein, and a gas-liquid impingement mixture portion 21 is provided by merging the liquid flow path 20 with the gas flow path 16 at a crossing angle (θ2) of 45° to 90° on the side of the injection hole in a slit shape 23, wherein the gas-liquid impingement mixture portion 21 and the injection hole in a slit shape 23 are communicated through a flow path with a small diameter 22, and the injection hole in a slit shape 23 is set so as to have a slit width lower than a width of the flow path with a small diameter 22. <P>COPYRIGHT: (C)2006,JPO&NCIPI

Description

本発明は、二流体用スリットノズルに関し、詳しくは、気液混合してスリット状噴射孔から長い水平方向に亙って膜状にミストを噴射するノズルに関するものである。   The present invention relates to a two-fluid slit nozzle, and more particularly to a nozzle that mixes gas and liquid and injects mist in a film form from a slit-like injection hole in a long horizontal direction.

従来より、液晶パネルやプリント基板の製造工程において、洗浄用や液置換(現像液を水に置換)用として、気液を混合したミストを直線状に吹きつける二流体用スリットノズルが用いられている。
例えば、特許第3544650号に開示されたスリットノズルは、図6に示すように、積層された3枚の板状体1〜3の隙間に長手方向に延びる2つのスリットを形成し、これらスリットの一方を気体の噴出口4、他方のスリットを液体の噴出口5としていると共に、中央の板状体2の先端は噴出口4よりも前方に延ばし、他方の噴出口5側に向けた傾斜面6を有している。噴出口4より吐出された気体はその粘性により傾斜面6に沿うように偏向することで液体と外部混合され、膜状のミストが噴射される。
Conventionally, in the manufacturing process of liquid crystal panels and printed circuit boards, two-fluid slit nozzles that spray mist mixed with gas and liquid in a straight line are used for cleaning and liquid replacement (developing liquid is replaced with water). Yes.
For example, as shown in FIG. 6, the slit nozzle disclosed in Japanese Patent No. 3544650 forms two slits extending in the longitudinal direction in the gap between the three laminated plates 1 to 3, and the slit nozzles One side is a gas jet port 4 and the other slit is a liquid jet port 5, and the tip of the central plate-like body 2 extends forward from the jet port 4, and the inclined surface faces the other jet port 5. 6. The gas discharged from the jet port 4 is deflected along the inclined surface 6 due to its viscosity to be externally mixed with the liquid, and a film-like mist is jetted.

しかしながら、図6のスリットノズルでは、気体と液体はノズル外部で衝突混合される構成としており、液体や気体の噴射圧力を上げると噴射の直進性が増すために気体と液体とが分離して混合されず、ミストを形成することができない。よって、噴射圧力を低く抑えて使用する必要があるため圧力設定範囲に制限が生じ、強い打力で噴霧することができないという不都合がある。
また、ノズルから噴霧されたミストはノズルからの距離が遠くなるにつれて乱れが生じるため、ある程度はノズルを噴霧対象物に近づけて使用する必要があるが、あまり近づけ過ぎると噴霧が対象物に当たって跳ね返った異物がノズルの傾斜面6に付着し、気体と液体の混合がうまくいかずに噴霧異常を引き起こすという問題もある。
特許第3544650号公報
However, the slit nozzle shown in FIG. 6 is configured such that the gas and the liquid are collided and mixed outside the nozzle, and if the injection pressure of the liquid or gas is increased, the straightness of the injection is increased and the gas and the liquid are separated and mixed. The mist cannot be formed. Therefore, since it is necessary to keep the injection pressure low, the pressure setting range is limited, and there is an inconvenience that spraying cannot be performed with a strong striking force.
Also, since the mist sprayed from the nozzle is disturbed as the distance from the nozzle increases, it is necessary to use the nozzle close to the spray target to some extent, but if it is too close, the spray hits the target and rebounds There is also a problem that foreign matter adheres to the inclined surface 6 of the nozzle, and the mixing of gas and liquid does not go well, causing an abnormal spray.
Japanese Patent No. 3544650

本発明は、前記問題に鑑みてなされたもので、スリットノズルの噴霧圧力の設定可能範囲を拡げると共に、噴霧異常が発生しないようにすることを課題としている。   The present invention has been made in view of the above problems, and it is an object of the present invention to expand the settable range of the spray pressure of the slit nozzle and prevent the occurrence of spray abnormality.

前記課題を解決するため、本発明は、横長なボデイの長さ方向の一端面に沿ってスリット状噴射孔を設けると共に、該ボデイ内に長さ方向に沿って液体流路と気体流路を設け、これら液体流路と気体流路とを前記スリット状噴射孔側で45°〜90°の角度の交差角度で合流させて気液衝突混合部を設け、該気液衝突混合部と前記スリット状噴射孔とを小径流路で連通し、該スリット状噴射孔のスリット幅は前記小径流路の幅以下に設定していることを特徴とする二流体用スリットノズルを提供している。   In order to solve the above problems, the present invention provides a slit-shaped injection hole along one end surface in the length direction of a horizontally long body, and a liquid channel and a gas channel along the length direction in the body. Providing a gas-liquid collision mixing unit by joining the liquid channel and the gas channel at an intersecting angle of 45 ° to 90 ° on the slit-like injection hole side, and providing the gas-liquid collision mixing unit and the slit A two-fluid slit nozzle is provided, wherein the slit-shaped injection hole communicates with a small-diameter channel, and the slit width of the slit-shaped injection hole is set to be equal to or less than the width of the small-diameter channel.

前記構成とすると、気体流路から流れる気体と液体流路から流れる液体とは、ノズル外部で混合するのではなく、スリット状噴射孔より上流のノズル内部の気液衝突混合部で合流されるので、噴霧圧力を大幅に高めても気体と液体とは分離することなく確実に混合される。したがって、噴霧圧力の設定範囲を広く設けることができ、強い打力で噴射することが可能となる。
また、気液衝突混合部はノズル内部に設けているので、スリットノズルから噴霧対象物に当たって跳ね返った異物がノズル側に付着したとしても、その付着箇所がスリット状噴射孔の僅かな隙間以外であれば、噴霧異常を発生することがない。よって、スリットノズルを噴霧対象物に近づけて設置することができ噴霧打力を向上できると共に、噴霧異常が発生しにくいためメンテナンスの手間を低減することができる。
With the above configuration, the gas flowing from the gas flow path and the liquid flowing from the liquid flow path are not mixed outside the nozzle, but are merged at the gas-liquid collision mixing section inside the nozzle upstream from the slit-like injection hole. Even if the spraying pressure is greatly increased, the gas and the liquid are reliably mixed without being separated. Accordingly, a wide setting range of the spray pressure can be provided, and it is possible to inject with a strong striking force.
In addition, since the gas-liquid collision mixing unit is provided inside the nozzle, even if foreign matter that bounces from the slit nozzle and hits the object to be sprayed adheres to the nozzle side, the adhering location should be other than a slight gap in the slit-shaped injection hole. As a result, no abnormal spraying occurs. Therefore, the slit nozzle can be installed close to the spray target object, and the spray hitting force can be improved, and the trouble of maintenance can be reduced because the spray abnormality hardly occurs.

さらに、気液衝突混合部は、液体流路と気体流路とを45°〜90°(液体流路と気体流路の流れ方向が平行の場合を0°とする)の交差角度で合流させているので、液体を気体にスムーズに合流させることができ、逆流を防ぐことができる。
また、スリット状噴射孔より上流に気液衝突混合部を設けて一次微粒化を行い、かつ、小径流路の幅以下に設定されたスリット状噴射孔で二次微粒化を行う構成としているので、噴霧の微粒化がなされやすく供給気体量を低減して使用することが可能となる。
Further, the gas-liquid collision mixing unit joins the liquid flow path and the gas flow path at an intersecting angle of 45 ° to 90 ° (0 ° when the flow direction of the liquid flow path and the gas flow path is parallel). Therefore, the liquid can be smoothly joined to the gas, and the backflow can be prevented.
In addition, since the gas-liquid collision mixing part is provided upstream from the slit-shaped injection hole, primary atomization is performed, and secondary atomization is performed by the slit-shaped injection hole set to be equal to or smaller than the width of the small diameter channel. The atomization of the spray is easy to be made, and it becomes possible to reduce the amount of gas to be used.

前記液体流路と気体流路は、前記ボデイの外面に開口した液体導入口、気体導入口にそれぞれ連通させると共に前記ボデイ内に平行に設け、該液体流路と気体流路のいずれか一方を前記気液衝突混合部、小径流路、スリット状噴射孔に直線上で連通させる一方、いずれか他方の噴射側先端を屈折させて前記交差角度で一方側と合流させていると好ましい。   The liquid channel and the gas channel are respectively connected to a liquid inlet and a gas inlet that are opened on the outer surface of the body, and are provided in parallel in the body, and either the liquid channel or the gas channel is provided. It is preferable that the gas-liquid collision mixing unit, the small-diameter flow channel, and the slit-shaped injection hole communicate with each other in a straight line while the other injection-side tip is refracted and merged with the one side at the intersection angle.

前記構成とすると、直線上に連通された流路を通過する流体の直進性によりスリット状噴射孔から噴霧されるミストの厚みを薄く且つ真っ直ぐに形成することができるので、低噴射圧力であっても強打力で噴霧することが可能となる。   With the above configuration, the mist sprayed from the slit-like injection hole can be formed thin and straight due to the straightness of the fluid passing through the flow path connected in a straight line. Can be sprayed with a strong striking force.

上記ボディは、横長な第1部材と第2部材とで中間スペーサを挟んでボルトで前後方向に締結して形成し、該第1部材と第2部材の側面、上面あるいは長さ方向の端面に前記液体導入口と気体導入口を設けて前記液体流路、気体流路と連通させ、
前記中間スペーサの両側面とそれに対向する前記第1部材および第2部材の側面との間に前記気体流路、液体流路を形成する凹部を設け、前記中間スペーサの傾斜させた先端位置で前記第1部材と第2部材の側面を接合させると共に、接合面に沿って前記気液衝突混合部、小径流路、スリット状噴射孔を形成する凹部を設けていると好ましい。
The body is formed by sandwiching an intermediate spacer between a horizontally long first member and a second member and fastening them with bolts in the front-rear direction, and on the side surface, top surface or lengthwise end surface of the first member and second member. Providing the liquid inlet and the gas inlet and communicating with the liquid channel and the gas channel;
A recess for forming the gas flow path and the liquid flow path is provided between both side surfaces of the intermediate spacer and the side surfaces of the first member and the second member facing the intermediate spacer, and the intermediate spacer is inclined at the inclined tip position. It is preferable that the side surfaces of the first member and the second member are joined, and a concave portion that forms the gas-liquid collision mixing portion, the small-diameter flow path, and the slit-like injection hole is provided along the joining surface.

前記構成とすると、第1部材、第2部材、中間スペーサの三部材に分割して形成しているので、スリットノズルを容易に分解することができ、メンテナンス性が向上する。また、ボルトを締めたり緩めたりすることで第1部材と第2部材との距離を変更してスリット状噴射孔のスリット幅を調節することが可能となる。
前記スリット状噴射孔のスリット幅は0.05mm以上10mm以下としていると、薄い膜状の噴霧をすることができ、強打力な噴霧を実現できるため好ましい。なお、スリット幅はより好ましくは0.05mm以上1mm以下としている。
If it is set as the said structure, since it forms and divides | segments into three members, a 1st member, a 2nd member, and an intermediate spacer, a slit nozzle can be decomposed | disassembled easily and maintainability improves. Moreover, it becomes possible to adjust the slit width of the slit-shaped injection hole by changing the distance between the first member and the second member by tightening or loosening the bolt.
It is preferable that the slit width of the slit-shaped injection hole is 0.05 mm or more and 10 mm or less because a thin film-like spray can be achieved and a strong striking spray can be realized. The slit width is more preferably 0.05 mm or more and 1 mm or less.

以上の説明より明らかなように、本発明によれば、気体と液体との合流はノズルの外で行う外部混合ではなく内部混合であるので、噴霧圧力を大幅に高めても気体と液体とが分離せずに確実に混合され、噴霧圧力の設定範囲を拡げることが可能となる。また、気液衝突混合部はノズル内部に設けているので、スリット状噴射孔からの噴射により噴霧対象物に当たって跳ね返った異物がノズル側に付着したとしても、噴霧異常が発生しにくくなる。よって、スリットノズルを噴霧対象物に近づけて設置することができ噴霧打力を向上できると共にメンテナンスの手間を低減できる。
さらに、液体流路と気体流路とを45°〜90°の交差角度で合流させて気液衝突混合部を形成しているので、液体と気体をスムーズに合流させることができ逆流を防止できる。また、気液衝突混合部を設けて一次微粒化を行い、かつ、小径流路の幅以下に設定されたスリット状噴射孔で二次微粒化を行うので、噴霧の微粒化がなされやすく気体供給量を低減して使用できる。
As is clear from the above description, according to the present invention, the merging of the gas and the liquid is not external mixing performed outside the nozzle but internal mixing. It is possible to reliably mix without separation and to expand the setting range of the spray pressure. In addition, since the gas-liquid collision mixing unit is provided inside the nozzle, even if a foreign object that has bounced off the spraying object due to the injection from the slit-like injection hole adheres to the nozzle side, the spray abnormality is less likely to occur. Therefore, it is possible to install the slit nozzle close to the object to be sprayed, so that the spray hitting force can be improved and the labor of maintenance can be reduced.
Furthermore, since the gas-liquid collision mixing unit is formed by joining the liquid flow path and the gas flow path at an intersection angle of 45 ° to 90 °, the liquid and the gas can be smoothly merged and the backflow can be prevented. . In addition, a gas-liquid collision mixing unit is provided to perform primary atomization, and secondary atomization is performed with slit-shaped injection holes set to be equal to or less than the width of the small-diameter flow path, so that atomization of the spray is easy to be performed. Can be used in reduced amounts.

本発明の実施形態を図面を参照して説明する。
本実施形態の二流体用スリットノズル10は、図1乃至図4に示すように、横長な第1部材11と第2部材12とで中間スペーサ13を両側から挟んで一体化してボデイを形成している。第1部材11と第2部材12とは、ボディ上端及び左右両端側を固定ボルト25で締結している。かつ、ボディ下部では第1部材11と中間スペーサ13とをスリット幅調節用の締付ボルト26で締結していると共に、第2部材12と中間スペーサ13とをスリット幅調節用の締付ボルト28で締結している。また、締付ボルト28の間には第2部材12に押付ボルト27を等間隔で取り付けている。
Embodiments of the present invention will be described with reference to the drawings.
As shown in FIGS. 1 to 4, the two-fluid slit nozzle 10 of the present embodiment forms a body by integrating a laterally long first member 11 and a second member 12 with an intermediate spacer 13 sandwiched from both sides. ing. The first member 11 and the second member 12 are fastened with fixing bolts 25 at the upper end and the left and right ends of the body. At the lower part of the body, the first member 11 and the intermediate spacer 13 are fastened by a fastening bolt 26 for adjusting the slit width, and the second member 12 and the intermediate spacer 13 are fastened by a fastening bolt 28 for adjusting the slit width. It is concluded with. Further, pressing bolts 27 are attached to the second member 12 at regular intervals between the fastening bolts 28.

横長な第2部材12には、対向面に固定ボルト25の締結部の下部より下端にかけて後述する横長で且つ深さを相違させた凹部を上下に連続して設け、該凹部に中間スペーサ13を介設した状態で第1部材11に対向させて組み合わせることにより、図2乃至図4に示すように、中間スペーサ13の一側に気体流路16を形成すると共に他側に液体流路20を形成している。   The horizontally long second member 12 is provided with a horizontally long concave portion, which will be described later, from the bottom to the lower end of the fastening portion of the fixing bolt 25 on the opposing surface, and is provided with an intermediate spacer 13 in the concave portion. As shown in FIGS. 2 to 4, the gas flow path 16 is formed on one side of the intermediate spacer 13 and the liquid flow path 20 is formed on the other side, as shown in FIGS. 2 to 4. Forming.

詳細には、第1部材11は合成樹脂あるいはステンレスからなり、上方に固定ボルト挿通孔29を設けていると共に下方に締付ボルト挿通孔31を設けている。第1部材11のボディ長手方向の中央付近に間隔をあけて2つの気体導入口14を設けている。これら気体導入口14には気体供給管(図示せず)が接続される。第1部材11の裏面側の第2部材12との対向側には、気体導入口14と連通する位置でボディ長手方向に凹部30を形成している。また、第1部材11の下方の所要位置には締付ボルト挿通孔31を穿設している。   Specifically, the first member 11 is made of synthetic resin or stainless steel, and is provided with a fixing bolt insertion hole 29 on the upper side and a tightening bolt insertion hole 31 on the lower side. Two gas inlets 14 are provided in the vicinity of the center of the first member 11 in the longitudinal direction of the body with a space therebetween. A gas supply pipe (not shown) is connected to these gas inlets 14. A concave portion 30 is formed in the body longitudinal direction at a position communicating with the gas introduction port 14 on the back surface side of the first member 11 facing the second member 12. A tightening bolt insertion hole 31 is formed at a required position below the first member 11.

第2部材12は合成樹脂あるいはステンレスからなり、上方に固定ボルト挿通孔33を設けていると共に、下方には締付ボルト挿通孔54と押付ボルト挿通孔53とをボディ長手方向の交互に設けている。第2部材12のボディ長手方向の中央付近に間隔をあけて2つの液体導入口18を設けている。これら液体導入口18には液体供給管(図示せず)が接続される。第2部材12の裏面側の第1部材11との対向側には、液体導入口18と連通する位置から下方に第1底深凹部35、第2深底凹部36、テーパ部37、水平部38、浅底凹部39、テーパ部40、極浅凹部41を上下に連続させて形成している。   The second member 12 is made of synthetic resin or stainless steel, and has a fixing bolt insertion hole 33 on the upper side, and a clamping bolt insertion hole 54 and a pressing bolt insertion hole 53 on the lower side, which are alternately provided in the longitudinal direction of the body. Yes. Two liquid inlets 18 are provided in the vicinity of the center of the second member 12 in the longitudinal direction of the body with a space therebetween. A liquid supply pipe (not shown) is connected to these liquid inlets 18. On the back side of the second member 12 facing the first member 11, the first bottom deep recess 35, the second deep bottom recess 36, the taper portion 37, and the horizontal portion are downward from a position communicating with the liquid inlet 18. 38, a shallow bottom concave portion 39, a tapered portion 40, and an extremely shallow concave portion 41 are formed continuously in the vertical direction.

中間スペーサ13は合成樹脂あるいはステンレスからなり、第1部材11との対向面に、第1部材11の凹部30と合致する底深凹部43、浅底凹部45、テーパ部50、垂直面51を上下に連続させて形成しており、浅底凹部45の所要位置には図2に示すように締付ボルト挿通凹部46を穿設している。中間スペーサ13の第2部材12との対向面には、第2部材12の深底凹部35と合致する底深凹部44、浅底凹部55、テーパ部48を上下に連続させ、かつテーパ部48に連続する先端面49を水平に形成している。また、浅底凹部55の所要位置には図3に示すように締付ボルト挿通凹部56を穿設している。さらに、図2および図3に示すように、浅底凹部55の押付ボルト27が当接される位置の周囲と、締付ボルト28が締結される位置の周囲には、押付ボルト27あるいは締付ボルト28を包囲する窪み部47を設けている。   The intermediate spacer 13 is made of synthetic resin or stainless steel, and has a bottom deep recess 43, a shallow bottom recess 45, a taper portion 50, and a vertical surface 51 that are aligned with the recess 30 of the first member 11 on the surface facing the first member 11. As shown in FIG. 2, a tightening bolt insertion recess 46 is formed at a required position of the shallow recess 45. On the surface of the intermediate spacer 13 facing the second member 12, a bottom deep concave portion 44, a shallow concave portion 55, and a tapered portion 48 that coincide with the deep bottom concave portion 35 of the second member 12 are vertically connected, and the tapered portion 48. The front end surface 49 is horizontally formed. Further, as shown in FIG. 3, a tightening bolt insertion recess 56 is formed at a required position of the shallow recess 55. Further, as shown in FIG. 2 and FIG. 3, the pressing bolt 27 or the tightening bolt is provided around the position where the pressing bolt 27 of the shallow recess 55 abuts and the position where the tightening bolt 28 is fastened. A recess 47 that surrounds the bolt 28 is provided.

第1部材11と第2部材12とを中間スペーサ13を介在させた状態で重ね合わせ、連通させた固定ボルト挿通孔29、33に固定ボルト25をネジ回して締結し、かつ、連通させた締付ボルト挿通孔31と締付ボルト挿通凹部46に締付ボルト26をネジ回して締結し、かつ、連通させた締付ボルト挿通孔54と締付ボルト挿通凹部56に締付ボルト28をネジ回して締結している。さらに、押付ボルト挿通孔53には押付ボルト27をネジ回し、貫通したボルト先端を中間スペーサ13の窪み部47に当接させている。
また、第1部材11と第2部材12との接合面には水漏れ防止用のシール材34を介設していると共に、第1部材11と中間スペーサ13との接合面にもシール材42を介設している。さらに、締付ボルト26、28および押付ボルト27はシール用のOリング32、60、61を介して締結している。なお、第1部材11と第2部材12の接合面はメタルシールとしてシール性を保っているが、シートパッキンを入れてもよい。
The first member 11 and the second member 12 are overlapped with the intermediate spacer 13 interposed therebetween, and the fixing bolts 25 are screwed into the fixing bolt insertion holes 29 and 33 that are communicated with each other, and the tightening is performed. The tightening bolt 26 is screwed and fastened to the bolt insertion hole 31 and the tightening bolt insertion recess 46, and the tightening bolt 28 is screwed to the tightening bolt insertion hole 54 and the tightening bolt insertion recess 56 that are communicated with each other. Have concluded. Further, the pressing bolt 27 is screwed into the pressing bolt insertion hole 53, and the penetrating bolt end is brought into contact with the recess 47 of the intermediate spacer 13.
Further, a sealing material 34 for preventing water leakage is provided on the joint surface between the first member 11 and the second member 12, and the sealing material 42 is also provided on the joint surface between the first member 11 and the intermediate spacer 13. Is installed. Further, the fastening bolts 26 and 28 and the pressing bolt 27 are fastened through O-rings 32, 60 and 61 for sealing. In addition, although the joint surface of the 1st member 11 and the 2nd member 12 is maintaining the sealing performance as a metal seal, you may insert a sheet packing.

この状態で、中間スペーサ13の一側(図中右側)においては、中間スペーサ13の深底凹部43と第1部材11の凹部30とが組み合わされて気体流入路15が形成され、中間スペーサ13の浅底凹部45、テーパ部50および垂直面51と第1部材11の対向面とが組み合わされて気体流路16が形成される。気体流路16は、浅底凹部45に位置する第1気体流路16aと、テーパ部50に位置して流れ方向に縮径するテーパ流路16bと、垂直面51に位置し且つ第1気体流路16aより狭幅な第2気体流路16cとを備えている。   In this state, on one side (right side in the figure) of the intermediate spacer 13, the deep bottom concave portion 43 of the intermediate spacer 13 and the concave portion 30 of the first member 11 are combined to form the gas inflow passage 15. The gas channel 16 is formed by combining the shallow concave portion 45, the tapered portion 50, and the vertical surface 51 with the opposing surface of the first member 11. The gas flow path 16 includes a first gas flow path 16a located in the shallow recess 45, a taper flow path 16b located in the taper portion 50 and reduced in diameter in the flow direction, and a first gas located in the vertical plane 51. And a second gas channel 16c that is narrower than the channel 16a.

中間スペーサ13の他側(図中左側)においては、中間スペーサ13の深底凹部44と第2部材12の凹部35とが組み合わされて液体流入路19が形成され、中間スペーサ13の浅底凹部55、テーパ部48および先端面49と、第2部材12の浅底凹部36、テーパ部37および水平部38とが組み合わされて液体流路20が形成される。液体流路20は、浅底凹部55に位置する第1液体流路20aと、テーパ部48に位置して流れ方向に縮径するテーパ流路20cと、先端面49に位置する第2液体流路20dとを備えている。テーパ流路20cは、第2液体流路20dに向けて流路幅を徐々に狭めている、水平方向の第2液体流路20dに対する傾斜角度θ1を30°〜90°とし、好ましくは40°〜50°としている。また、締付ボルト27および押付ボルト28の周囲には流路幅を拡げる幅広流路部20bを形成している。   On the other side of the intermediate spacer 13 (left side in the figure), the deep bottom recess 44 of the intermediate spacer 13 and the recess 35 of the second member 12 are combined to form the liquid inflow path 19, and the shallow bottom recess of the intermediate spacer 13 is formed. 55, the tapered portion 48 and the tip surface 49, and the shallow concave portion 36, the tapered portion 37 and the horizontal portion 38 of the second member 12 are combined to form the liquid flow path 20. The liquid flow path 20 includes a first liquid flow path 20 a located in the shallow recess 55, a tapered flow path 20 c that is located in the taper portion 48 and has a diameter reduced in the flow direction, and a second liquid flow located in the tip surface 49. 20d. The taper flow path 20c gradually narrows the flow path width toward the second liquid flow path 20d, and the inclination angle θ1 with respect to the horizontal second liquid flow path 20d is 30 ° to 90 °, preferably 40 °. It is set to ~ 50 °. In addition, a wide channel portion 20b that widens the channel width is formed around the tightening bolt 27 and the pressing bolt 28.

図5に示すように、第2液体流路20dと第2気体流路16cとは交差角度θ2=45°〜90°(本実施形態では90°)で合流し、気液衝突混合部21を形成している。気液衝突混合部21の下流には垂直方向の小径流路22が形成され、テーパ部40の縮径した下端に第2部材12の極浅凹部41と第1部材11のフラット面との間に形成されるスリット状噴射孔23が連続することとなる。スリット状噴射孔23のスリット幅Lは小径流路22の幅以下に設定しており、スリット状噴射孔23のスリット幅Lは0.05mm以上10mm以下で調節可能としている。   As shown in FIG. 5, the second liquid channel 20d and the second gas channel 16c merge at an intersection angle θ2 = 45 ° to 90 ° (90 ° in this embodiment), and the gas-liquid collision mixing unit 21 is Forming. A small-diameter channel 22 in the vertical direction is formed downstream of the gas-liquid collision mixing unit 21, and the tapered portion 40 has a reduced diameter between the extremely shallow recess 41 of the second member 12 and the flat surface of the first member 11. The slit-like injection holes 23 formed in the above are continuous. The slit width L of the slit-shaped injection hole 23 is set to be equal to or smaller than the width of the small-diameter channel 22, and the slit width L of the slit-shaped injection hole 23 is adjustable from 0.05 mm to 10 mm.

ボディ下側で第1部材11と中間スペーサ13に取り付ける締付ボルト26は、ネジ回すことにより第1部材11と中間スペーサ13とを一体化している。また、締付ボルト28をネジ込むことにより第2部材12と中間スペーサ13とを近接可能としている一方、ボディ長手方向で締付ボルト28と交互に設けられた押付ボルト27をネジ込むことにより第2部材12と中間スペーサ13とを離反可能としているので、スリット状噴射孔23の流路幅を全長に亙って均一となるように調整することができる。   A tightening bolt 26 attached to the first member 11 and the intermediate spacer 13 on the lower side of the body integrates the first member 11 and the intermediate spacer 13 by screwing. Further, the second member 12 and the intermediate spacer 13 can be brought close to each other by screwing the tightening bolt 28, while the second member 12 and the intermediate spacer 13 can be brought close to each other by screwing the pressing bolt 27 provided alternately with the tightening bolt 28 in the longitudinal direction of the body. Since the two members 12 and the intermediate spacer 13 can be separated, the flow path width of the slit-like injection hole 23 can be adjusted to be uniform over the entire length.

次に、二流体用スリットノズル10の作用について説明する。
スリットノズル10の気体導入口14には気体供給管(図示せず)を連結すると共に、液体導入口18には液体供給管(図示せず)を連結する。
気体導入口14からノズル10内に供給された気体は、気体導入口14→気体流入路15→第1気体流路16a→テーパ流路16b→第2気体流路16cの順に流れると共に、液体導入口18からノズル10内に供給された液体は、液体導入口18→液体流入路19→第1液体流路20a→テーパ流路20c→第2液体流路20dの順に流れる。そして、気液衝突混合部21で気体と液体とが合流して気液二相流を形成し、気液衝突混合部21→小径流路22→スリット状噴射孔23の順に流れて、スリット状噴射孔23の先端開口より薄膜状のミストが噴射される。
Next, the operation of the two-fluid slit nozzle 10 will be described.
A gas supply pipe (not shown) is connected to the gas inlet 14 of the slit nozzle 10, and a liquid supply pipe (not shown) is connected to the liquid inlet 18.
The gas supplied from the gas inlet 14 into the nozzle 10 flows in the order of the gas inlet 14 → the gas inlet 15 → the first gas channel 16a → the taper channel 16b → the second gas channel 16c and introduces the liquid. The liquid supplied from the port 18 into the nozzle 10 flows in the order of the liquid inlet 18 → the liquid inflow channel 19 → the first liquid channel 20a → the taper channel 20c → the second liquid channel 20d. Then, the gas and the liquid are merged in the gas-liquid collision mixing unit 21 to form a gas-liquid two-phase flow, and the gas-liquid collision mixing unit 21 → the small-diameter flow path 22 → the slit-like injection hole 23 flow in this order. A thin film-like mist is ejected from the tip opening of the ejection hole 23.

詳しくは、気体導入口14および液体導入口18より横長な気体流入路15および液体流入路19の中央部に軸直角方向より各流体が流入し、向きを変えて各流入路15、19に流れ込むため流速が低下し、かつ、各流入路15、19の断面積を大としているため、両側へと速度を落として流れ込み、流入路15、19内において横方向の全長に亙って均等に各流体が分配される。   Specifically, each fluid flows into the central part of the gas inflow path 15 and the liquid inflow path 19 which are horizontally longer than the gas introduction port 14 and the liquid introduction port 18 from the direction perpendicular to the axis, and flows into the inflow channels 15 and 19 in different directions. Therefore, since the flow velocity is reduced and the cross-sectional area of each inflow channel 15, 19 is increased, the flow rate is reduced to both sides, and each of the inflow channels 15, 19 is evenly distributed over the entire length in the lateral direction. Fluid is dispensed.

液体流路20を流れる液体は、第1液体流路20aにおいて押付ボルト27および締付ボルト28の存在箇所でボルトを迂回して流れることになるが、ボルト周囲に幅広流路部20bを設けているので、流体の均一化が阻害されるのを極力抑えられる。テーパ流路20cでは流路幅が漸次狭まるにつれて液体の流速が速められ、第2液体流路20dにより直交方向から気液衝突混合部21へと勢い良く流れ込む。
一方、気体流路16を下方に向けて直線状に流れる気体は、狭幅の第2気体流路16cで流速を速めた状態で気液衝突混合部21へと勢い良く流れ込む。
気液衝突混合部21で混合された液体は気体との高圧な衝突により拡散微粒化された上で、気体流の直進性により下方に向けて流出する。この際、液体流路20と気体流路16とを45°〜90°の交差角度θ2で合流させているので、液体と気体をスムーズに合流させて逆流を防いでいる。
The liquid flowing through the liquid flow path 20 flows around the bolt at the location where the pressing bolt 27 and the tightening bolt 28 are present in the first liquid flow path 20a, but a wide flow path portion 20b is provided around the bolt. As a result, it is possible to suppress the fluid homogenization from being inhibited as much as possible. In the taper channel 20c, the flow velocity of the liquid is increased as the channel width is gradually reduced, and the fluid flows into the gas-liquid collision mixing unit 21 from the orthogonal direction by the second liquid channel 20d.
On the other hand, the gas flowing in a straight line with the gas flow path 16 facing downward flows vigorously into the gas-liquid collision mixing unit 21 in a state where the flow velocity is increased in the narrow second gas flow path 16c.
The liquid mixed in the gas-liquid collision mixing unit 21 is diffused and atomized by high-pressure collision with the gas, and then flows downward due to the straightness of the gas flow. At this time, since the liquid flow path 20 and the gas flow path 16 are merged at an intersection angle θ2 of 45 ° to 90 °, the liquid and the gas are smoothly merged to prevent backflow.

また、衝突混合により一次微粒化された気液二相流は、小径流路22から更に狭幅なスリット状噴射孔23へと流れて高圧化されることで先端開口から外部へ噴射される際の開放拡散により二次微粒化が行われ、噴霧が超微粒化される。このように、噴霧の微粒化がなされやすい構造とすることで気体供給量を低減することが可能で、即ち、気水比を下げて使用することが可能となる。
なお、上記実施形態では、ノズル10のボディを第1部材11と第2部材12と中間スペーサ13とを重ねて締結して形成しているが、ボディを分割せずに樹脂成形で一体的に成形してもよい。
When the gas-liquid two-phase flow primary atomized by collision mixing flows from the small-diameter channel 22 to the narrower slit-like injection hole 23 and is pressurized, the gas-liquid two-phase flow is ejected from the front end opening to the outside. Secondary atomization is performed by the open diffusion of, and the atomization is super atomized. Thus, it is possible to reduce the gas supply amount by adopting a structure that facilitates atomization of the spray, that is, it is possible to use it with a reduced air-water ratio.
In the above embodiment, the body of the nozzle 10 is formed by overlapping the first member 11, the second member 12, and the intermediate spacer 13, but is integrally formed by resin molding without dividing the body. You may shape | mold.

以上に説明した二流体用スリットノズル10によれば、気体と液体との合流はノズル10の外部ではなく内部の気液衝突混合部21で行っているので、噴霧圧力を大幅に高めても気体と液体とが分離せずに確実に混合され、噴霧圧力の設定範囲を自在に拡げることが可能となる。また、気液衝突混合部21はノズル内部に設けているので、スリット状噴射孔23からの噴射により噴霧対象物に当たって跳ね返った異物がノズル10側に付着したとしても、噴霧異常が発生しにくい。よって、スリットノズル10を噴霧対象物に近づけて設置することができ噴霧打力を向上できると共にメンテナンスの手間を低減できる。締付ボルト28および押付ボルト27を巻回することでスリット状噴射孔23のスリット幅を自在に調節して、噴霧の厚みを薄くすることができるので、強打力な噴霧を行って洗浄効率などを向上することができる。   According to the two-fluid slit nozzle 10 described above, the gas and the liquid are merged not in the outside of the nozzle 10 but in the gas-liquid collision mixing unit 21 in the inside, so that the gas can be increased even if the spray pressure is greatly increased. The liquid and the liquid are reliably mixed without being separated, and the setting range of the spray pressure can be freely expanded. In addition, since the gas-liquid collision mixing unit 21 is provided inside the nozzle, even if a foreign matter that has bounced off the spray target object due to the injection from the slit-like injection hole 23 adheres to the nozzle 10 side, the spray abnormality is unlikely to occur. Therefore, it is possible to install the slit nozzle 10 close to the object to be sprayed, thereby improving the spray hitting force and reducing the maintenance work. By winding the fastening bolt 28 and the pressing bolt 27, the slit width of the slit-like injection hole 23 can be freely adjusted to reduce the thickness of the spray. Can be improved.

本発明の実施形態の二流体用スリットノズルの正面図である。It is a front view of the slit nozzle for two fluids of the embodiment of the present invention. 図1のI−I線断面図である。It is the II sectional view taken on the line of FIG. 図1のII−II線断面図である。It is the II-II sectional view taken on the line of FIG. 図1のIII−III線断面図である。It is the III-III sectional view taken on the line of FIG. 要部断面図である。It is principal part sectional drawing. 従来例を示す図面である。It is drawing which shows a prior art example.

符号の説明Explanation of symbols

10 二流体用スリットノズル
11 第1部材
12 第2部材
13 中間スペーサ
14 気体導入口
15 気体流入口
16 気体流路
18 液体導入口
19 液体流入口
20 液体流路
21 気液衝突混合部
22 小径流路
23 スリット状噴射孔
25 固定ボルト
26、28 締付ボルト
27 押付ボルト
DESCRIPTION OF SYMBOLS 10 Two-fluid slit nozzle 11 1st member 12 2nd member 13 Intermediate spacer 14 Gas inlet 15 Gas inlet 16 Gas flow path 18 Liquid inlet 19 Liquid inlet 20 Liquid flow path 21 Gas-liquid collision mixing part 22 Small diameter flow Road 23 Slit-shaped injection hole 25 Fixing bolts 26, 28 Clamping bolt 27 Pressing bolt

Claims (4)

横長なボデイの長さ方向の一端面に沿ってスリット状噴射孔を設けると共に、該ボデイ内に長さ方向に沿って液体流路と気体流路を設け、これら液体流路と気体流路とを前記スリット状噴射孔側で45°〜90°の角度の交差角度で合流させて気液衝突混合部を設け、該気液衝突混合部と前記スリット状噴射孔とを小径流路で連通し、該スリット状噴射孔のスリット幅は前記小径流路の幅以下に設定していることを特徴とする二流体用スリットノズル。   A slit-shaped injection hole is provided along one end surface in the length direction of the horizontally long body, and a liquid channel and a gas channel are provided in the body along the length direction. Are combined at the crossing angle of 45 ° to 90 ° on the slit-shaped injection hole side to provide a gas-liquid collision mixing unit, and the gas-liquid collision mixing unit and the slit-shaped injection hole communicate with each other through a small-diameter channel. A slit nozzle for two fluids, characterized in that the slit width of the slit-shaped injection hole is set to be equal to or smaller than the width of the small diameter channel. 前記液体流路と気体流路は、前記ボデイの外面に開口した液体導入口、気体導入口にそれぞれ連通させると共に前記ボデイ内に平行に設け、該液体流路と気体流路のいずれか一方を前記気液衝突混合部、小径流路、スリット状噴射孔に直線上で連通させる一方、いずれか他方の噴射側先端を屈折させて前記交差角度で一方側と合流させている請求項1に記載の二流体用スリットノズル。   The liquid channel and the gas channel are respectively connected to a liquid inlet and a gas inlet that are opened on the outer surface of the body, and are provided in parallel in the body, and either the liquid channel or the gas channel is provided. 2. The gas-liquid collision mixing unit, the small-diameter flow channel, and the slit-shaped injection hole are connected in a straight line, while either one of the other injection-side tips is refracted and merged with the one side at the intersection angle. Slit nozzle for two fluids. 上記ボディは、横長な第1部材と第2部材とで中間スペーサを挟んでボルトで前後方向に締結して形成し、該第1部材と第2部材の側面、上面あるいは長さ方向の端面に前記液体導入口と気体導入口を設けて前記液体流路、気体流路と連通させ、
前記中間スペーサの両側面とそれに対向する前記第1部材および第2部材の側面との間に前記気体流路、液体流路を形成する凹部を設け、前記中間スペーサの傾斜させた先端位置で前記第1部材と第2部材の側面を接合させると共に、接合面に沿って前記気液衝突混合部、小径流路、スリット状噴射孔を形成する凹部を設けている請求項1または請求項2に記載の二流体用スリットノズル。
The body is formed by sandwiching an intermediate spacer between a horizontally long first member and a second member and fastening them with bolts in the front-rear direction, and on the side surface, top surface or lengthwise end surface of the first member and second member. Providing the liquid inlet and the gas inlet and communicating with the liquid channel and the gas channel;
A recess for forming the gas flow path and the liquid flow path is provided between both side surfaces of the intermediate spacer and the side surfaces of the first member and the second member facing the intermediate spacer, and the intermediate spacer is inclined at the inclined tip position. The side surfaces of the first member and the second member are joined together, and the gas-liquid collision mixing part, the small-diameter flow path, and the concave part that forms the slit-like injection hole are provided along the joining surface. The slit nozzle for two fluids as described.
前記スリット状噴射孔のスリット幅は0.05mm以上10mm以下としている請求項1乃至請求項3のいずれか1項に記載の二流体用スリットノズル。   The slit nozzle for two fluids according to any one of claims 1 to 3, wherein a slit width of the slit-shaped injection hole is set to 0.05 mm or more and 10 mm or less.
JP2005005730A 2005-01-12 2005-01-12 Two-fluid slit nozzle Active JP4649214B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2005005730A JP4649214B2 (en) 2005-01-12 2005-01-12 Two-fluid slit nozzle

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2005005730A JP4649214B2 (en) 2005-01-12 2005-01-12 Two-fluid slit nozzle

Publications (2)

Publication Number Publication Date
JP2006192360A true JP2006192360A (en) 2006-07-27
JP4649214B2 JP4649214B2 (en) 2011-03-09

Family

ID=36798840

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2005005730A Active JP4649214B2 (en) 2005-01-12 2005-01-12 Two-fluid slit nozzle

Country Status (1)

Country Link
JP (1) JP4649214B2 (en)

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007319853A (en) * 2006-05-02 2007-12-13 Kyoritsu Gokin Co Ltd Two-fluid nozzle and spray method using the two-fluid nozzle
WO2009037887A1 (en) * 2007-09-18 2009-03-26 Spraying Systems Co., Japan Two fluid slit nozzle and method for manufacturing the same
KR100901380B1 (en) * 2007-11-30 2009-06-05 주식회사 디엠에스 Apparatus for spraying fluid
CN102049357A (en) * 2010-12-23 2011-05-11 中冶京诚工程技术有限公司 Slot nozzle cooling device
KR101067737B1 (en) * 2009-07-29 2011-09-28 김현희 Two-liquids jetting device for cleaning flat panel display
CN101632991B (en) * 2008-07-24 2011-11-09 显示器生产服务株式会社 Fluid injection device
CN103691623A (en) * 2013-12-23 2014-04-02 清华大学深圳研究生院 Low-impact combined process nozzle for realizing uniform spraying
KR20140003420U (en) * 2012-11-30 2014-06-10 주식회사 케이씨텍 Knife capable of adjusting nozzle gap
KR101638133B1 (en) * 2015-03-17 2016-07-20 이정호 LCD cleaning equipment
KR20160144144A (en) * 2015-06-08 2016-12-16 주식회사 케이씨텍 Air knife module for drying substrate and Device for drying substrate comprising the same
WO2017052076A1 (en) * 2015-05-08 2017-03-30 남지영 Chemical coating apparatus using double slit nozzle
CN107684986A (en) * 2017-08-10 2018-02-13 深圳市华星光电技术有限公司 A kind of new fluid nozzle device
CN108311307A (en) * 2018-02-11 2018-07-24 佛山华派机械科技有限公司 A kind of plate superposing type porous nozzle
KR101919123B1 (en) * 2017-03-06 2019-02-08 스프레이시스템코리아 유한회사 Two-fluid slit nozzle
KR20190093327A (en) * 2018-02-01 2019-08-09 육경식 Prefabricated cleaning nozzle and prefabricated cleaning device
KR20200003560A (en) * 2018-07-02 2020-01-10 스프레이시스템코리아 유한회사 Two-fluid slit nozzle capable of preventing backward flow
CN110743722A (en) * 2019-11-06 2020-02-04 徐州徐工精密工业科技有限公司 Pressure-adjustable quick spray knife

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS55144551U (en) * 1979-04-05 1980-10-17
JPH0647672A (en) * 1992-07-30 1994-02-22 Babcock Hitachi Kk Nozzle for cavitation jet
JP2002355596A (en) * 2001-05-31 2002-12-10 Toppan Printing Co Ltd Large scale coating apparatus with cleaning apparatus
JP2003001151A (en) * 2001-06-19 2003-01-07 Tokai Gokin Kogyo Kk Gas-liquid spray nozzle of slit type
JP2003145064A (en) * 2001-11-12 2003-05-20 Tokyo Electron Ltd Two-fluid jet nozzle and substrate cleaning device
JP2003190841A (en) * 2001-12-28 2003-07-08 Jomo Ryokusan Kogyo Kk Nozzle for blowing mortal or concrete and apparatus for forming slope face protection in altitude slope face using the nozzle

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS55144551U (en) * 1979-04-05 1980-10-17
JPH0647672A (en) * 1992-07-30 1994-02-22 Babcock Hitachi Kk Nozzle for cavitation jet
JP2002355596A (en) * 2001-05-31 2002-12-10 Toppan Printing Co Ltd Large scale coating apparatus with cleaning apparatus
JP2003001151A (en) * 2001-06-19 2003-01-07 Tokai Gokin Kogyo Kk Gas-liquid spray nozzle of slit type
JP2003145064A (en) * 2001-11-12 2003-05-20 Tokyo Electron Ltd Two-fluid jet nozzle and substrate cleaning device
JP2003190841A (en) * 2001-12-28 2003-07-08 Jomo Ryokusan Kogyo Kk Nozzle for blowing mortal or concrete and apparatus for forming slope face protection in altitude slope face using the nozzle

Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007319853A (en) * 2006-05-02 2007-12-13 Kyoritsu Gokin Co Ltd Two-fluid nozzle and spray method using the two-fluid nozzle
WO2009037887A1 (en) * 2007-09-18 2009-03-26 Spraying Systems Co., Japan Two fluid slit nozzle and method for manufacturing the same
KR101010032B1 (en) 2007-09-18 2011-01-21 스프레이잉 시스템스 재팬 가부시키가이샤 Twin fluid slit nozzle and manufacture method thereof
KR100901380B1 (en) * 2007-11-30 2009-06-05 주식회사 디엠에스 Apparatus for spraying fluid
CN101632991B (en) * 2008-07-24 2011-11-09 显示器生产服务株式会社 Fluid injection device
KR101067737B1 (en) * 2009-07-29 2011-09-28 김현희 Two-liquids jetting device for cleaning flat panel display
CN102049357A (en) * 2010-12-23 2011-05-11 中冶京诚工程技术有限公司 Slot nozzle cooling device
KR20140003420U (en) * 2012-11-30 2014-06-10 주식회사 케이씨텍 Knife capable of adjusting nozzle gap
KR200482218Y1 (en) 2012-11-30 2016-12-30 주식회사 케이씨텍 Knife capable of adjusting nozzle gap
CN103691623A (en) * 2013-12-23 2014-04-02 清华大学深圳研究生院 Low-impact combined process nozzle for realizing uniform spraying
KR101638133B1 (en) * 2015-03-17 2016-07-20 이정호 LCD cleaning equipment
WO2017052076A1 (en) * 2015-05-08 2017-03-30 남지영 Chemical coating apparatus using double slit nozzle
KR20160144144A (en) * 2015-06-08 2016-12-16 주식회사 케이씨텍 Air knife module for drying substrate and Device for drying substrate comprising the same
KR102366909B1 (en) * 2015-06-08 2022-02-25 주식회사 케이씨텍 Air knife module for drying substrate and Device for drying substrate comprising the same
KR101919123B1 (en) * 2017-03-06 2019-02-08 스프레이시스템코리아 유한회사 Two-fluid slit nozzle
CN107684986A (en) * 2017-08-10 2018-02-13 深圳市华星光电技术有限公司 A kind of new fluid nozzle device
KR20190093327A (en) * 2018-02-01 2019-08-09 육경식 Prefabricated cleaning nozzle and prefabricated cleaning device
KR102044849B1 (en) * 2018-02-01 2019-11-14 육경식 Prefabricated cleaning nozzle and prefabricated cleaning device
CN108311307A (en) * 2018-02-11 2018-07-24 佛山华派机械科技有限公司 A kind of plate superposing type porous nozzle
CN108311307B (en) * 2018-02-11 2024-02-23 佛山华派机械科技有限公司 Plate-shaped overlapped multi-hole spray head
KR20200003560A (en) * 2018-07-02 2020-01-10 스프레이시스템코리아 유한회사 Two-fluid slit nozzle capable of preventing backward flow
KR102078183B1 (en) * 2018-07-02 2020-04-02 스프레이시스템코리아 유한회사 Two-fluid slit nozzle capable of preventing backward flow
CN110743722A (en) * 2019-11-06 2020-02-04 徐州徐工精密工业科技有限公司 Pressure-adjustable quick spray knife

Also Published As

Publication number Publication date
JP4649214B2 (en) 2011-03-09

Similar Documents

Publication Publication Date Title
JP4649214B2 (en) Two-fluid slit nozzle
JP5022074B2 (en) Two-fluid nozzle and spraying method using the same
US10086388B2 (en) Rain-can style showerhead assembly incorporating eddy filter for flow conditioning in fluidic circuits
JP4156656B1 (en) Two-fluid slit nozzle and manufacturing method thereof
US20070069049A1 (en) Solid cone spray nozzle
JP5556220B2 (en) Shower equipment
JP2710398B2 (en) Two-fluid nozzle
JP3856210B2 (en) nozzle
WO2014057660A1 (en) Shower head
FI111054B (en) Nozzle for coating surfaces
JP4057555B2 (en) Fluid ejection device for surface treatment of flat panel display
JPH09220495A (en) Fluid injection nozzle
US20170106379A1 (en) Spray nozzle
CN109863315A (en) Fluidic component
JP2001029847A (en) Jetting device for gas liquid mixture stream
JP4820087B2 (en) Two-fluid nozzle
JP2006205120A (en) Slit nozzle
KR20020068458A (en) Injection apparatus for mixed flow of gas and liquid
KR100745658B1 (en) Nozzle of swirling formation
KR20200003560A (en) Two-fluid slit nozzle capable of preventing backward flow
JP4766622B2 (en) Gas-liquid mixed flow injection device
US20230264206A1 (en) Microfluidic Oscillator
JP2015196154A (en) two-fluid nozzle unit
JP2004050122A (en) Nozzle
JP2004016846A (en) Nozzle

Legal Events

Date Code Title Description
A621 Written request for application examination

Free format text: JAPANESE INTERMEDIATE CODE: A621

Effective date: 20071115

A977 Report on retrieval

Free format text: JAPANESE INTERMEDIATE CODE: A971007

Effective date: 20100729

A131 Notification of reasons for refusal

Free format text: JAPANESE INTERMEDIATE CODE: A131

Effective date: 20100907

A521 Request for written amendment filed

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20101105

TRDD Decision of grant or rejection written
A01 Written decision to grant a patent or to grant a registration (utility model)

Free format text: JAPANESE INTERMEDIATE CODE: A01

Effective date: 20101207

A01 Written decision to grant a patent or to grant a registration (utility model)

Free format text: JAPANESE INTERMEDIATE CODE: A01

A61 First payment of annual fees (during grant procedure)

Free format text: JAPANESE INTERMEDIATE CODE: A61

Effective date: 20101213

FPAY Renewal fee payment (event date is renewal date of database)

Free format text: PAYMENT UNTIL: 20131217

Year of fee payment: 3

R150 Certificate of patent or registration of utility model

Free format text: JAPANESE INTERMEDIATE CODE: R150

Ref document number: 4649214

Country of ref document: JP

Free format text: JAPANESE INTERMEDIATE CODE: R150

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250