JP2010264445A - Minute air bubble generator - Google Patents

Minute air bubble generator Download PDF

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JP2010264445A
JP2010264445A JP2010134870A JP2010134870A JP2010264445A JP 2010264445 A JP2010264445 A JP 2010264445A JP 2010134870 A JP2010134870 A JP 2010134870A JP 2010134870 A JP2010134870 A JP 2010134870A JP 2010264445 A JP2010264445 A JP 2010264445A
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cylindrical
gas
liquid
nozzle
absorbing sheet
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JP4938112B2 (en
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Hisanori Shibata
尚紀 柴田
Yasunari Maeda
康成 前田
Shigeyuki Yamaguchi
重行 山口
Takaya Nibu
貴也 丹生
Hitoshi Kitamura
仁史 北村
Yoshiyasu Ito
良泰 伊藤
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Panasonic Electric Works Co Ltd
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Panasonic Electric Works Co Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a minute air bubble generator which can effectively reduce jetting noise. <P>SOLUTION: In the minute air bubble generator, minute air bubbles are produced by releasing pressure of air-liquid dissolving fluid where gas is dissolved in liquid under pressure by a pressure reducing means and are ejected from an ejection nozzle 30. A Venturi tube 12b which is the pressure reducing means is provided at a nozzle body 29 of the ejection nozzle 30. A cylindrical protrusion 29b projecting in an ejection direction than an ejection port 12c of the Venturi tube 12b is formed. At an inner peripheral surface of the protrusion 29b, a cylindrical sound absorption sheet 35 is held by being inserted inside. At an inner peripheral surface of the sound absorption sheet 35, a cylindrical silent mesh 36 which is a metallic mesh-like body is held by being inserted inside. <P>COPYRIGHT: (C)2011,JPO&INPIT

Description

本発明は、噴射騒音を低減できる微細気泡発生装置に関する。   The present invention relates to a fine bubble generator that can reduce injection noise.

従来、液体中に気体が加圧溶解された気液溶解流体を減圧手段で圧力開放して、微細気泡を発生させながら吐出ノズルから浴槽内に噴射吐出させるようにした微細気泡発生装置がある(特許文献1参照)。   2. Description of the Related Art Conventionally, there is a fine bubble generating device in which a gas-liquid dissolved fluid in which a gas is pressurized and dissolved in a liquid is released by a decompression unit and ejected and discharged from a discharge nozzle into a bathtub while generating fine bubbles ( Patent Document 1).

特開平11−33071号公報JP-A-11-33071

しかしながら、吐出ノズルによる微細気泡発生時の噴射騒音が浴槽から浴室内にそのまま放射されるという問題があった。   However, there has been a problem that the injection noise when fine bubbles are generated by the discharge nozzle is directly radiated from the bathtub into the bathroom.

本発明は、前記問題を解消するためになされたもので、噴射騒音を効果的に低減することができる微細気泡発生装置を提供することを目的とするものである。   The present invention has been made to solve the above problems, and an object of the present invention is to provide a fine bubble generator capable of effectively reducing injection noise.

前記課題を解決するために、本発明は、液体中に気体が加圧溶解された気液溶解流体を減圧手段で圧力開放して、微細気泡を発生させながら吐出ノズルから噴射吐出させる微細気泡発生装置であって、前記吐出ノズルのノズル本体に、前記減圧手段であるベンチュリ管が設けられ、このベンチュリ管の吐出口よりも吐出方向に突出する筒状突出部が形成され、この突出部の内周面に、筒状吸音シートが内嵌めされて保持されていて、前記吸音シートの内周面に、金網状体でなる筒状静音メッシュが内嵌めされて保持されていることを特徴とする微細気泡発生装置を提供するものである。 In order to solve the above-mentioned problems, the present invention provides a method for generating fine bubbles in which a gas-liquid dissolved fluid in which a gas is pressurized and dissolved in a liquid is depressurized by a decompression means and ejected and discharged from a discharge nozzle while generating fine bubbles In the apparatus, a venturi tube as the pressure reducing means is provided in the nozzle body of the discharge nozzle, and a cylindrical protrusion that protrudes in the discharge direction from the discharge port of the venturi tube is formed. A cylindrical sound absorbing sheet is fitted and held on the peripheral surface, and a cylindrical silent mesh made of a wire mesh is fitted and held on the inner peripheral surface of the sound absorbing sheet. A fine bubble generator is provided.

請求項2のように、前記ベンチュリ管は、複数個が並列で設けられている構成とすることができる。   According to a second aspect of the present invention, a plurality of the venturi tubes can be provided in parallel.

本発明によれば、ノズル本体のベンチュリ管の吐出口よりも吐出方向に突出する筒状突出部の内周面に、筒状吸音シートを内嵌めで保持しているから、吸音シートの表面での微細な渦流の整流作用で騒音が低減され、加えて吸音シートによる脈動の吸収減衰作用によって、吐出ノズル、つまりはベンチュリ管で発生する噴射騒音が効果的に低減されるようになる。また、ノズル本体の突出部、すなわち噴射騒音源であるベンチュリ管の吐出口近傍に吸音シートを設けることで、噴射騒音をより効果的に低減できるようになる。   According to the present invention, the cylindrical sound-absorbing sheet is held on the inner peripheral surface of the cylindrical protruding portion that protrudes in the discharge direction from the discharge port of the venturi pipe of the nozzle body, so that the surface of the sound-absorbing sheet is The noise is reduced by the rectifying action of the fine vortex flow, and the injection noise generated in the discharge nozzle, that is, the venturi pipe is effectively reduced by the absorption and damping action of the pulsation by the sound absorbing sheet. Further, by providing a sound absorbing sheet in the vicinity of the protruding portion of the nozzle body, that is, the outlet of the venturi pipe, which is an injection noise source, the injection noise can be more effectively reduced.

さらに、吸音シートの内周面に、金網状体でなる筒状静音メッシュを内嵌めで保持しているから、静音メッシュによる脈動の拡散減衰(整流)作用によって吐出ノズルで発生する噴射騒音がより低減されるようになる。また、静音メッシュの裏側に吸音シートを配置しているので、吸音シートが噴射液流の抵抗にならないとともに、吸音シートが噴射液流中に飛散することもない。さらに、ベンチュリ管を有するノズル本体に、吸音シートと静音メッシュとを組み込んでユニット化することができる。Furthermore, since a cylindrical silent mesh made of wire mesh is held on the inner peripheral surface of the sound absorbing sheet by an internal fit, the injection noise generated by the discharge nozzle is more due to the pulsation diffusion attenuation (rectification) action by the silent mesh. Will be reduced. Further, since the sound absorbing sheet is disposed on the back side of the silent mesh, the sound absorbing sheet does not become a resistance to the jet liquid flow, and the sound absorbing sheet does not scatter in the jet liquid flow. Furthermore, a sound absorbing sheet and a silent mesh can be incorporated into a nozzle body having a venturi tube to form a unit.

請求項2によれば、複数個のベンチュリ管が並列で設けられている場合では、各ベンチュリ管で発生する噴射騒音を一括して低減できるようになる。   According to the second aspect, in the case where a plurality of venturi pipes are provided in parallel, the injection noise generated in each venturi pipe can be collectively reduced.

本発明の実施形態に係る気体溶解装置を備えた浴槽装置の基本構成図である。It is a basic lineblock diagram of a bathtub device provided with a gas dissolution device concerning an embodiment of the present invention. 図1の気体溶解装置の斜視図である。It is a perspective view of the gas dissolving apparatus of FIG. 図1の気体溶解装置であり、(a)は断面図、(b)は(a)のI―I線断面図である。1 is a gas dissolving device of FIG. 1, (a) is a cross-sectional view, (b) is a cross-sectional view taken along the line II of (a). 図1のベンチュリ管の断面図である。It is sectional drawing of the venturi pipe | tube of FIG. 本発明の実施形態に係る気体溶解装置を備えた浴槽装置を具体化した斜視図である。It is the perspective view which actualized the bathtub apparatus provided with the gas dissolving apparatus which concerns on embodiment of this invention. 図5の吐出ノズルの断面図である。It is sectional drawing of the discharge nozzle of FIG. ノズル本体、吸音シート、静音メッシュ、メッシュホルダーの分解斜視図である。It is a disassembled perspective view of a nozzle body, a sound absorbing sheet, a silent mesh, and a mesh holder. 固定フランジであり、(a)は正面図、(b)は側面断面図である。It is a fixed flange, (a) is a front view, (b) is a side sectional view. ノズル本体であり、(a)は斜視図、(b)は側面断面図である。It is a nozzle body, (a) is a perspective view, (b) is a side sectional view.

以下、本発明を実施するための形態について、図面を参照しながら詳細に説明する。   Hereinafter, embodiments for carrying out the present invention will be described in detail with reference to the drawings.

図1は、例えば、浴槽1内の浴水中に微細気泡を発生させる微細気泡発生装置の基本構成図であり、浴槽1の内側面に吸込口2と吐出口3とが設けられ、浴槽1のフランジ部に空気吸込口4が設けられている。   FIG. 1 is a basic configuration diagram of a microbubble generator that generates microbubbles in bath water in a bathtub 1, for example, and a suction port 2 and a discharge port 3 are provided on the inner surface of the bathtub 1. An air inlet 4 is provided in the flange portion.

吸込口2は、接続管5を介してポンプ6の吸い込み側に接続され、ポンプ6の吐出側は流入管7を介して気体溶解装置8の吸込側の噴射口9に接続されている。気体溶解装置8の吐出側の流出口10は、流出管11を介して圧力開放部となるベンチュリ管12の一端に接続され、ベンチュリ管12の他端は接続管13を介して浴槽1の側面に設置された吐出口3に接続されている。また、空気吸込口4は、ポンプ6と気体溶解装置8との間の流入管7に接続管14を介して接続され、接続管14には、逆止弁15が設けられている。   The suction port 2 is connected to the suction side of the pump 6 through the connection pipe 5, and the discharge side of the pump 6 is connected to the injection port 9 on the suction side of the gas dissolving device 8 through the inflow pipe 7. The outlet 10 on the discharge side of the gas dissolving device 8 is connected to one end of a venturi pipe 12 serving as a pressure release portion via an outflow pipe 11, and the other end of the venturi pipe 12 is connected to the side surface of the bathtub 1 via a connection pipe 13. Is connected to the discharge port 3 installed in the. The air suction port 4 is connected to an inflow pipe 7 between the pump 6 and the gas dissolving device 8 via a connection pipe 14, and a check valve 15 is provided in the connection pipe 14.

そして、気体が溶解した湯水が吐出口3より浴槽1内の浴水中に吐出されると、浴水中で溶解気体が析出して微細気泡が発生するようになる。   And when the hot water which gas melt | dissolved is discharged in the bath water in the bathtub 1 from the discharge outlet 3, dissolved gas will precipitate in bath water and a fine bubble will come to be generated.

前記気体溶解装置8は、図2および図3に詳細に示すように、断面円形の直筒状をした側壁部21と、この側壁部21の両側の端部を閉塞する端壁部22とからなる筒状体23で構成されて、長手方向すなわち略円筒状をした側壁部21の中心軸イ(図2の一点鎖線参照)が水平方向ロ(図2の矢印参照)に対して10〜45度の傾斜角度θで傾斜する姿勢で配置されている。   As shown in detail in FIG. 2 and FIG. 3, the gas dissolving device 8 includes a side wall portion 21 having a straight cylindrical shape with a circular cross section, and end wall portions 22 that close both ends of the side wall portion 21. The center axis A (refer to the one-dot chain line in FIG. 2) of the side wall portion 21 that is formed of the cylindrical body 23 and has a longitudinal direction, that is, substantially cylindrical, is 10 to 45 degrees with respect to the horizontal direction (see the arrow in FIG. 2). It is arrange | positioned with the attitude | position which inclines with the inclination-angle (theta).

この傾斜姿勢の筒状体23は、上方側の端部が上流側Aの端部になるとともに、下方側の端部が下流側Bの端部となり、上流側Aに気液混合流体を筒状体23内に噴射するための噴射口9を形成されるとともに、下流側Bに液体を筒状体23内から流出する流出口10が形成されている。   The cylindrical body 23 in this inclined posture has an upper end serving as an upstream A end, and a lower end serving as a downstream B end. An injection port 9 for injecting into the cylindrical body 23 is formed, and an outflow port 10 through which liquid flows out from the cylindrical body 23 is formed on the downstream side B.

筒状体23内には、溶質となる例えば空気等の気体と、溶媒となる例えば水等の液体とが貯留されるもので、略円筒状をした側壁部21の上下方向の略中央付近には気体と液体との界面24が位置し、界面24より上部の上流側Aの部分は、気体が貯留される気体貯留部25になるとともに、界面24より下流側Bの部分は、液体が貯留される液体貯留部26となる。   In the cylindrical body 23, a gas such as air, which becomes a solute, and a liquid such as water, which becomes a solvent, are stored, and is approximately in the vicinity of the vertical center of the substantially cylindrical side wall portion 21. The interface 24 between the gas and the liquid is located, and the portion on the upstream side A above the interface 24 becomes the gas storage portion 25 where the gas is stored, and the portion on the downstream side B from the interface 24 stores the liquid. It becomes the liquid storage part 26 to be performed.

前記噴射口9は、気体貯留部25の内壁面(界面24より上流側Aの側壁部21または端壁部22の内壁面)か、界面24寄りの位置か、あるいは界面24より若干下側の液体貯留部26の内壁面(界面24より下流側Bの側壁部21の内壁面)に形成され、流出口10は、液体貯留部26の端部付近の内壁面(界面24より下流側Bの側壁部21または端壁部22の内壁面)に形成される。   The injection port 9 is located on the inner wall surface of the gas reservoir 25 (the inner wall surface of the side wall 21 or the end wall 22 on the upstream side A from the interface 24), at a position near the interface 24, or slightly below the interface 24. It is formed on the inner wall surface of the liquid reservoir 26 (inner wall surface of the side wall 21 on the downstream side B from the interface 24), and the outlet 10 is located on the inner wall surface near the end of the liquid reservoir 26 (on the downstream side B of the interface 24) The inner wall surface of the side wall portion 21 or the end wall portion 22 is formed.

筒状体23の側壁部21には、弁(図示せず)を設けた空気抜き口27が形成してあり、この空気抜き口27の位置が気体貯留部25に貯留される気体と液体貯留部26に貯留される液体の界面24のレベルとなる。   The side wall 21 of the cylindrical body 23 is formed with an air vent 27 provided with a valve (not shown). The position of the air vent 27 is stored in the gas reservoir 25 and the gas reservoir 26. It becomes the level of the interface 24 of the liquid stored in.

次に、気体溶解装置8の作用を説明する。噴射口9から筒状体23内に貯留されているのと同じ液体および気体が噴射されると、噴射口9と対向する側壁部21の上側の内壁面に衝突し、この内壁面で跳ね返って界面24にて液体貯留部26に貯留されている液体に衝突して攪拌される。また、液体貯留部26に貯留されている液体は、気液混合流体が界面24に衝突して攪拌される他に、噴射口9から筒状体23内に噴射される気液混合流体によっても攪拌される。   Next, the operation of the gas dissolving device 8 will be described. When the same liquid and gas stored in the cylindrical body 23 are jetted from the jet port 9, they collide with the inner wall surface on the upper side of the side wall portion 21 facing the jet port 9 and bounce off the inner wall surface. The liquid collides with the liquid stored in the liquid reservoir 26 at the interface 24 and is agitated. Further, the liquid stored in the liquid storage unit 26 is not only stirred by the gas-liquid mixed fluid colliding with the interface 24, but also by the gas-liquid mixed fluid injected into the cylindrical body 23 from the injection port 9. Stir.

このように、気液混合流体の側壁部21の内壁面との衝突や界面24での衝突による攪拌、噴射される際の液体の攪拌等により、筒状体23内に貯留している気体および液体、気液混合流体中の気体および液体が混合され、気体の液体への溶解が促進される。すなわち、混合攪拌によるせん断により、液体に混合している気泡(気体)が細分化されて、液体と接する総表面積が大きくなるのに加えて、液体と気体との界面付近における気体の溶解濃度が混合攪拌による均一化により低減されて、気体の液体への溶解速度が上昇するため、気体の液体への溶解が促進される。   As described above, the gas stored in the cylindrical body 23 and the like by the agitation due to the collision with the inner wall surface of the side wall portion 21 of the gas-liquid mixed fluid, the collision at the interface 24, the agitation of the liquid when being jetted, and the like The liquid, the gas in the gas-liquid mixed fluid, and the liquid are mixed, and dissolution of the gas into the liquid is promoted. That is, the bubbles (gas) mixed in the liquid are subdivided by shearing by mixing and stirring, and the total surface area in contact with the liquid is increased. In addition, the dissolved concentration of the gas near the interface between the liquid and the gas is increased. Since it is reduced by homogenization by mixing and stirring, and the dissolution rate of the gas in the liquid increases, dissolution of the gas in the liquid is promoted.

気体の溶解が進行した液体は筒状体23の液体貯留部26に貯留されるが、貯留されている液体には未溶解の気泡も数多く混合し、このような気泡は上方に行くほど密に存在しており、液体貯留部26の下端部近傍では気泡はあまり存在せず、大きな気泡は殆ど存在しない。そして、気体の溶解が進行して大きな気泡が殆ど存在しない液体貯留部26の下端部の液体が流出口10から筒状体23外に流出されるようになる。   The liquid in which the dissolution of the gas has progressed is stored in the liquid storage portion 26 of the cylindrical body 23, but many undissolved bubbles are mixed in the stored liquid, and these bubbles become denser as they go upward. There are few bubbles near the lower end of the liquid reservoir 26, and there are almost no large bubbles. Then, the dissolution of the gas proceeds, and the liquid at the lower end of the liquid storage part 26 in which there are almost no large bubbles flows out from the tubular body 23 through the outlet 10.

図4は、前記ベンチュリ管12の基本構成図である。前記流出管11のベンチュリ管12は、中央1個の上流側ベンチュリ管12aと複数個(図4の例では5個)の下流側ベンチュリ管12bとの2段構成となっている。このように、下流側ベンチュリ管12bを並列で複数個を設けることにより、上流側ベンチュリ管12aで気液混合液中の気泡を粉砕してある程度小さな微細気泡とした後に、下流側ベンチュリ管12bでより小さな微細気泡化させることができるので、より小さい微細気泡を大量に発生させることができる。   FIG. 4 is a basic configuration diagram of the venturi tube 12. The venturi pipe 12 of the outflow pipe 11 has a two-stage configuration including one upstream venturi pipe 12a in the center and a plurality (five in the example of FIG. 4) downstream venturi pipes 12b. In this way, by providing a plurality of downstream venturi pipes 12b in parallel, the bubbles in the gas-liquid mixture are crushed into small bubbles to some extent by the upstream venturi pipe 12a, and then the downstream venturi pipe 12b. Since smaller bubbles can be formed, a larger amount of smaller bubbles can be generated.

図5および図6は、図1〜図4の基本構成を具体化した微細気泡発生装置であり、基本構成と同一構成は同一番号を付して詳細な説明は省略する。   FIGS. 5 and 6 are microbubble generators embodying the basic configuration of FIGS. 1 to 4, and the same configuration as the basic configuration is denoted by the same reference numeral, and detailed description thereof is omitted.

浴槽1の側壁1a(図6参照)に吐出ノズル30が取付けられ、この吐出ノズル30に、前述した吸込口2、吐出口3、ベンチュリ管12(12a,12b)等が組み込まれてユニット化されている。   A discharge nozzle 30 is attached to the side wall 1a (see FIG. 6) of the bathtub 1, and the above-described suction port 2, discharge port 3, venturi pipe 12 (12a, 12b) and the like are incorporated into the discharge nozzle 30 as a unit. ing.

吐出ノズル30には、側面視でL字状のノズルケース31が設けられ、ノズルケース31の内部には、外形状に倣ったL字状の流路31aが形成されて、この流路31aの入口側(縦向き部分)には、前記流出管11がOリング32を介して接続されるとともに、入口側の流路31aには、前記中央1個の上流側ベンチュリ管12aが嵌め込まれている。   The discharge nozzle 30 is provided with an L-shaped nozzle case 31 in a side view, and an L-shaped flow path 31a following the outer shape is formed inside the nozzle case 31. The outlet pipe 11 is connected to the inlet side (vertical portion) via an O-ring 32, and the central upstream venturi pipe 12a is fitted into the inlet-side flow path 31a. .

出口側(横向き部分)の流路31aには、前記複数個の下流側ベンチュリ管12bを形成したノズル本体29がOリング33を介して嵌め込まれている。   A nozzle body 29 in which the plurality of downstream venturi pipes 12b are formed is fitted into an outlet side (laterally directed portion) flow path 31a via an O-ring 33.

ノズル本体29には、図9(a)(b)に詳細に示すように、ノズルケース31の出口側(横向き部分)の流路31aにOリング33を介して嵌め込むための円筒状嵌め込み部29aと、この嵌め込み部29aから前方(吐出方向)に突出する円筒状突出部29bと、この円筒状突出部29bと嵌め込み部29aとの間に板状閉塞部29cとが形成され、この閉塞部29cに、内外2重の同心円が設定され、内側の小径円に沿って、円周上等角度間隔で複数個(本例では、6個)の下流側ベンチュリ管12bが形成され、外側の大径円に沿って、円周上等角度間隔で複数個(本例では10個)の下流側ベンチュリ管12bが形成されている(本例では下流側ベンチュリ管12bが合計16個)。   As shown in detail in FIGS. 9 (a) and 9 (b), the nozzle body 29 has a cylindrical fitting portion for fitting into the outlet side (lateral portion) of the nozzle case 31 via the O-ring 33. 29a, a cylindrical protruding portion 29b protruding forward (discharge direction) from the fitting portion 29a, and a plate-like blocking portion 29c formed between the cylindrical protruding portion 29b and the fitting portion 29a. The inner and outer double concentric circles are set in 29c, and a plurality of (six in this example) downstream venturi tubes 12b are formed at equal circumferential intervals along the inner small-diameter circle. A plurality (10 in this example) of the downstream venturi pipes 12b are formed along the radial circle at equal angular intervals on the circumference (a total of 16 downstream venturi pipes 12b in this example).

図6に戻って、図7を参照すれば、ノズル本体29の突出部29bの内周面には、円筒状吸音シート35が内嵌めされるとともに、この吸音シート35の内周面には、円筒状静音メッシュ(金網状体)36が内嵌めされていて、突出部29bの前端部の雄ねじ29dに、円筒状メッシュホルダー37の雌ねじ37aをねじ込むことで、突出部29bに吸音シート35と静音メッシュ36とが移動しないように保持されるようになる。なお、静音メッシュ36は、必要に応じて設ければ良い。   Returning to FIG. 6, referring to FIG. 7, a cylindrical sound absorbing sheet 35 is fitted on the inner peripheral surface of the protruding portion 29 b of the nozzle body 29, and on the inner peripheral surface of the sound absorbing sheet 35, A cylindrical silent mesh (metal mesh) 36 is fitted inside, and the female screw 37a of the cylindrical mesh holder 37 is screwed into the male screw 29d at the front end of the protruding portion 29b, so that the sound absorbing sheet 35 and the silent sound are inserted into the protruding portion 29b. The mesh 36 is held so as not to move. The silent mesh 36 may be provided as necessary.

吸音シート35は、例えばEPDM(ゴムやエラストマー等の発泡体)が好ましく、独立発泡体であれば、水垢が溜まるのを防止することができる。また、不織布を用いても良い。静音メッシュ36は、例えば100メッシュ程度のSUS製金網が好ましく、パンチングメタルであっても良い。   The sound-absorbing sheet 35 is preferably, for example, EPDM (foamed material such as rubber or elastomer). If the sound-absorbing sheet 35 is an independent foamed material, it is possible to prevent accumulation of water scale. Moreover, you may use a nonwoven fabric. The silent mesh 36 is preferably, for example, a SUS metal mesh of about 100 mesh, and may be a punching metal.

浴槽1の側壁1aの取付け穴1bには、側面視でU字状断面のパッキン40が嵌め込まれ、浴槽1の外側からノズルケース31の出口側(横向き部分)のフランジ部31bをパッキン40に当てがうとともに、浴槽1の内側から円筒状固定フランジ41の後端部の雄ねじ41aをノズルケース31のフランジ部31bの雌ねじ31cにねじ込むことで、固定フランジ41の前端部のフランジ部41bがパッキン40に水密に密着し、ノズルケース31のフランジ部31bがパッキン40に水密に密着するようになる。これにより、ノズルケース31が固定フランジ41で浴槽1の側壁1aに固定状態で取付けられるようになる。   A packing 40 having a U-shaped cross-section is fitted into the mounting hole 1b of the side wall 1a of the bathtub 1 and the flange portion 31b on the outlet side (sideways portion) of the nozzle case 31 is applied to the packing 40 from the outside of the bathtub 1. In addition, the external thread 41a at the rear end portion of the cylindrical fixing flange 41 is screwed into the internal thread 31c of the flange portion 31b of the nozzle case 31 from the inside of the bathtub 1 so that the flange portion 41b at the front end portion of the fixing flange 41 becomes the packing 40. The flange portion 31b of the nozzle case 31 comes into close contact with the packing 40 in a water tight manner. As a result, the nozzle case 31 is fixedly attached to the side wall 1 a of the bathtub 1 with the fixing flange 41.

そして、浴槽1の内側から円筒状ノズルカバー42の後端部の雌ねじ42aを固定フランジ41のフランジ部41bの雄ねじ41cにねじ込むことで、ノズルカバー42が固定フランジ41のフランジ部41bに取付けられるようになる。ノズルカバー42には、前記吐出口3が形成されている。   The nozzle cover 42 is attached to the flange portion 41 b of the fixed flange 41 by screwing the female screw 42 a at the rear end portion of the cylindrical nozzle cover 42 into the male screw 41 c of the flange portion 41 b of the fixed flange 41 from the inside of the bathtub 1. become. The nozzle cover 42 has the discharge port 3 formed therein.

固定フランジ41には、図8に詳細に示すように、メッシュホルダー37の外周面との間を閉塞する板状閉塞部41dが形成され、この閉塞部41dに内外2重の同心円が設定され、内側の小径円に沿って、円周上等角度間隔で多数個の貫通小孔41eが形成され、外側の大径円に沿って、内側の小径円の貫通小孔41eと半ピッチずらせた状態で、円周上等角度間隔で多数個の貫通小孔41eが形成されている。この閉塞部41dの内周面とメッシュホルダー37の外周面との間にパッキン(図示せず)を介在させることで、水密性を向上させることができる。   As shown in detail in FIG. 8, the fixing flange 41 is formed with a plate-like closing portion 41 d that closes the outer periphery of the mesh holder 37, and inner and outer double concentric circles are set in the closing portion 41 d, A large number of through-holes 41e are formed along the inner small-diameter circle at equal angular intervals on the circumference, and are shifted by a half pitch from the inner small-diameter through-hole 41e along the outer large-diameter circle. Thus, a large number of small through holes 41e are formed at equal angular intervals on the circumference. Water-tightness can be improved by interposing a packing (not shown) between the inner peripheral surface of the blocking portion 41 d and the outer peripheral surface of the mesh holder 37.

ノズルカバー42の外周面には、図6に示したように、円周上等角度間隔で複数個の前記吸込口2が形成されている。ノズルカバー42の吸込口2と吐出口3とには、メッシュ(金網状体…鎖線参照)43が取付けられている。   On the outer peripheral surface of the nozzle cover 42, as shown in FIG. 6, a plurality of the suction ports 2 are formed at equal angular intervals on the circumference. A mesh (metal mesh body ... see chain line) 43 is attached to the suction port 2 and the discharge port 3 of the nozzle cover 42.

前記のように構成した吐出ノズル30であれば、図6に示したように、気体が溶解した湯水は、矢印aのように、流出管11からノズルケース31の流路31aの上流側ベンチュリ管12aと下流側ベンチュリ管12bとを介してノズルカバー42の吐出口3より浴槽1内の浴水中に吐出されることで、浴水中で溶解気体が析出して微細気泡が発生するようになる。   In the case of the discharge nozzle 30 configured as described above, as shown in FIG. 6, the hot and cold water in which the gas is dissolved flows from the outflow pipe 11 to the upstream side venturi pipe 31a of the nozzle case 31 as indicated by an arrow a. By discharging into the bath water in the bathtub 1 from the discharge port 3 of the nozzle cover 42 through 12a and the downstream venturi pipe 12b, dissolved gas precipitates in the bath water and fine bubbles are generated.

また、浴槽1内の浴水は、矢印bのように、ノズルカバー42の吸込口2からノズルケース31内に吸い込まれ、固定フランジ41の閉塞部41dの貫通小孔41eを通って、図5のように、ノズルケース31の外側部に接続された接続管5からポンプ6に吸い込まれるようになる。   Further, the bath water in the bathtub 1 is sucked into the nozzle case 31 from the suction port 2 of the nozzle cover 42 as shown by an arrow b, and passes through the small through hole 41e of the closing portion 41d of the fixing flange 41, as shown in FIG. As described above, the pump 6 is sucked from the connecting pipe 5 connected to the outer side of the nozzle case 31.

前記した吐出ノズル30の構成において、ノズル本体29の突出部29bの内周面に、円筒状吸音シート35を内嵌めで保持しているから、吸音シート35の表面での微細な渦流の整流作用で騒音が低減され、加えて吸音シート35による脈動の吸収減衰作用によって、吐出ノズル30、つまりはベンチュリ管12bで発生する噴射騒音が効果的に低減されるようになる。また、ノズル本体29の突出部29b、すなわち噴射騒音源であるベンチュリ管12bの吐出口12cの近傍に吸音シート35を設けることで、噴射騒音をより効果的に低減できるようになる。さらに、ベンチュリ管12bを有するノズル本体29に、吸音シート35と静音メッシュ26とを組み込んでユニット化することができる。   In the configuration of the discharge nozzle 30 described above, since the cylindrical sound absorbing sheet 35 is held on the inner peripheral surface of the projecting portion 29b of the nozzle body 29, the rectifying action of fine eddy currents on the surface of the sound absorbing sheet 35 is maintained. In addition, the noise is reduced, and in addition, the pulsation absorption and attenuation action of the sound absorbing sheet 35 effectively reduces the injection noise generated in the discharge nozzle 30, that is, the venturi tube 12b. Further, by providing the sound absorbing sheet 35 in the vicinity of the protruding portion 29b of the nozzle body 29, that is, the discharge port 12c of the venturi pipe 12b which is the injection noise source, the injection noise can be reduced more effectively. Furthermore, the sound absorbing sheet 35 and the silent mesh 26 can be incorporated into the nozzle body 29 having the venturi tube 12b to form a unit.

また、複数個(本例では16個)のベンチュリ管12bが並列で設けられていても、吸音シート35によって、各ベンチュリ管12bで発生する噴射騒音を一括して低減できるようになる。   Even if a plurality (16 in this example) of the venturi tubes 12b are provided in parallel, the sound absorbing sheet 35 can collectively reduce the injection noise generated in each of the venturi tubes 12b.

さらに、吸音シート35の内周面に、金網状体でなる筒状静音メッシュ36を内嵌めで保持しているから、静音メッシュ36による脈動の拡散減衰(整流)作用によって吐出ノズル30で発生する噴射騒音がより低減されるようになる。また、静音メッシュ36の裏側に吸音シート35を配置しているので、吸音シート35が噴射液流の抵抗にならないとともに、吸音シート35が噴射液流中に飛散することもない。   Further, since the cylindrical silent mesh 36 made of a wire mesh is held on the inner peripheral surface of the sound absorbing sheet 35 by internal fitting, it is generated in the discharge nozzle 30 by the diffusion attenuation (rectification) action of pulsation by the silent mesh 36. The injection noise is further reduced. Further, since the sound absorbing sheet 35 is disposed on the back side of the silent mesh 36, the sound absorbing sheet 35 does not become a resistance to the jet liquid flow, and the sound absorbing sheet 35 is not scattered in the jet liquid flow.

また、静音メッシュ36を設けないタイプであれば、図9(b)に上半分のみを図示したように、吸音シート35は、ベンチュリ管12bの吐出口12cの近傍を硬質部35aに形成することが好ましい。すなわち、吸音シート35は通常は軟質であって、ベンチュリ管12bの吐出口12cの近傍では微細気泡の発生を妨げることになるが、ベンチュリ管12bの吐出口12cの近傍を硬質部35aとすることで、微細気泡の発生が妨げられないようになる。   Further, in the case where the silent mesh 36 is not provided, the sound absorbing sheet 35 is formed in the rigid portion 35a in the vicinity of the discharge port 12c of the venturi tube 12b, as shown only in the upper half in FIG. 9B. Is preferred. That is, the sound-absorbing sheet 35 is usually soft and prevents the generation of fine bubbles in the vicinity of the discharge port 12c of the venturi tube 12b, but the vicinity of the discharge port 12c of the venturi tube 12b is a hard portion 35a. Thus, the generation of fine bubbles is not hindered.

1 浴槽
2 吸込口
3 吐出口
8 気体溶解装置
12a 上流側ベンチュリ管
12b 下流側ベンチュリ管
12c 吐出口
29 ノズル本体
29b 筒状突出部
30 吐出ノズル
31 ノズルケース
35 吸音シート
36 静音メッシュ
41 固定フランジ
42 ノズルカバー
DESCRIPTION OF SYMBOLS 1 Bathtub 2 Suction port 3 Discharge port 8 Gas dissolution apparatus 12a Upstream side venturi pipe 12b Downstream side venturi pipe 12c Discharge port 29 Nozzle main body 29b Tubular protrusion 30 Discharge nozzle 31 Nozzle case 35 Sound absorbing sheet 36 Silent mesh 41 Fixed flange 42 Nozzle cover

Claims (2)

液体中に気体が加圧溶解された気液溶解流体を減圧手段で圧力開放して、微細気泡を発生させながら吐出ノズルから噴射吐出させる微細気泡発生装置であって、
前記吐出ノズルのノズル本体に、前記減圧手段であるベンチュリ管が設けられ、このベンチュリ管の吐出口よりも吐出方向に突出する筒状突出部が形成され、この突出部の内周面に、筒状吸音シートが内嵌めされて保持されていて、前記吸音シートの内周面に、金網状体でなる筒状静音メッシュが内嵌めされて保持されていることを特徴とする微細気泡発生装置。
A gas-liquid dissolving fluid in which a gas is pressurized and dissolved in a liquid is released by a decompression means, and a fine bubble generator that ejects and discharges from a discharge nozzle while generating fine bubbles,
The nozzle body of the discharge nozzle is provided with a venturi tube as the pressure reducing means, and a cylindrical protrusion that protrudes in the discharge direction from the discharge port of the venturi tube is formed. A cylindrical tube is formed on the inner peripheral surface of the protrusion. A fine air bubble generating apparatus , wherein a cylindrical sound absorbing sheet is fitted and held on an inner peripheral surface of the sound absorbing sheet, and a cylindrical silent mesh made of a wire mesh is fitted and held therein .
前記ベンチュリ管は、複数個が並列で設けられていることを特徴とする請求項1に記載の微細気泡発生装置。   2. The fine bubble generating device according to claim 1, wherein a plurality of the venturi tubes are provided in parallel.
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JP2015107282A (en) * 2013-12-06 2015-06-11 パナソニックIpマネジメント株式会社 Bath adaptor and water heater
JP2015209723A (en) * 2014-04-30 2015-11-24 株式会社三栄水栓製作所 Water discharger with bubble generator and bubble generation adaptor for water discharger

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JPH03229097A (en) * 1990-01-31 1991-10-11 Mitsubishi Heavy Ind Ltd Pressure reducing porous plate
JP2006167612A (en) * 2004-12-16 2006-06-29 Sanyo Electric Co Ltd Apparatus for generating micro bubble
JP2006175294A (en) * 2004-12-20 2006-07-06 Matsushita Electric Works Ltd Liquid nozzle

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Publication number Priority date Publication date Assignee Title
JPH03229097A (en) * 1990-01-31 1991-10-11 Mitsubishi Heavy Ind Ltd Pressure reducing porous plate
JP2006167612A (en) * 2004-12-16 2006-06-29 Sanyo Electric Co Ltd Apparatus for generating micro bubble
JP2006175294A (en) * 2004-12-20 2006-07-06 Matsushita Electric Works Ltd Liquid nozzle

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015107282A (en) * 2013-12-06 2015-06-11 パナソニックIpマネジメント株式会社 Bath adaptor and water heater
JP2015209723A (en) * 2014-04-30 2015-11-24 株式会社三栄水栓製作所 Water discharger with bubble generator and bubble generation adaptor for water discharger

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