JP5010697B2 - Liquid container - Google Patents

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JP5010697B2
JP5010697B2 JP2010040956A JP2010040956A JP5010697B2 JP 5010697 B2 JP5010697 B2 JP 5010697B2 JP 2010040956 A JP2010040956 A JP 2010040956A JP 2010040956 A JP2010040956 A JP 2010040956A JP 5010697 B2 JP5010697 B2 JP 5010697B2
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air reservoir
container
section
air
container body
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JP2010149935A (en
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武志 磯部
拓洋 三浦
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Tokan Kogyo Co Ltd
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Description

本発明は、吸気機構を備えて吐出時に脈動を防止すると共に、残液を少なくすることができる液体容器に関するものである。   The present invention relates to a liquid container that includes an intake mechanism to prevent pulsation during discharge and reduce residual liquid.

従来の液体容器では、容器内に充填された液体を注出する際に、吸気口を確保して注出時の脈動を防止するために、以下の構成がとられている。
(1)吸気吐出口の一部、または周辺に吐出口と吸気口を区分する仕切り板ないし突起を設け、注出する際に吸気口を塞がないようにして、吸気口を確保する方法により、注出時の脈動を防止する構成が知られている。
しかし、上記構成では、容器成形工程の打ち込みブローピンの挿入時に、吐出口と吸気口を区分している仕切り板または突起が邪魔になり、通常の成形方法では成形が困難になる。
また、容器に内容液を充填する工程では充填ノズルが容器内部まで挿入されるが、口部仕切り板または突起が邪魔になり支障をきたすおそれがある。
(2)容器上部に2箇所の口を設けておき、両方ともキャップ止めしておき、内容物注出時には両方のキャップを外し、1方は吐出口とし、他方は吸気口として脈動を防止する構成が知られている。
しかし、上記構成では、容器使用時にキャップ2個を外し、また嵌める手間がかかり、外さずに注出作業を行うと脈動が発生して注ぎ口から内容液がこぼれる欠点があり、また容器のコストアップにつながる。
(3)容器口部の下方に、口部より大きく広がる拡開部を成形し、その拡開部の下の本体側に突起形状又は絞り形状を設けることにより吐出口と吸気口を形成しておき、内液中を通して容器内のエアー空間にエアーを供給する機構を設けて、注出時の脈動を防止する構成が知られている(特公平7−2500号)。
しかし、上記構成では、吐出口と吸気口とを近い個所に配置するため、容器を吐出口の軸線を傾ける方向に倒して注出すると脈動防止機能の効果が減少する。また、内液中を通して容器内エアー空間にエアーを供給する機構となっているため、口部の吐出口と吸気口や把手部形状に設計上の制限が生ずる。
また、エアー逃げ流路が細くなって吐出時間が長びき、更に、口部の形状により、傾けた後に容器内に残液が残るという問題がある。
(4)通常の容器口部に吸気機能を有した別部品を取り付けることにより、吐出口と吸気口を区分しておき、確保された吸気口によりエアーは容器内に供給され注出時の脈動を防止する構成が知られている。
上記構成では、2ピース容器になるため、成形・組み立て工程が増え、容器のコストアップになるという問題点がある。
(5)容器口部の下方にエアーリング(吐出口周囲のエアー溜り)を設けて把手部内部の吸気口に接続する機構により、注出時に、吐出口部からエアーリングを通り把手部吸気部を経て本体に至るエアー流路を形成して、脈動を防止する構成が知られている。
しかし、上記構成は脈動効果が得られるエアーリング形状にすると、通常把手部を握って傾けられる角度(100〜120°)では容器内に残液が多く残る。また残液を注出しようとすると、把手部を持ち替えて傾けることになり、容器の使いやすさに支障が生じると共に、注出先の形状に制限がある場合には困難になる。
特公平7−2500号 図2から図4
In the conventional liquid container, when the liquid filled in the container is poured out, the following configuration is adopted in order to secure an intake port and prevent pulsation during the dispensing.
(1) A method of securing a suction port by providing a partition plate or a protrusion for separating the discharge port and the suction port at a part of or around the suction discharge port so that the suction port is not blocked when pouring. A configuration for preventing pulsation during dispensing is known.
However, in the above-described configuration, the partition plate or the projection that separates the discharge port from the intake port becomes an obstacle when the driving blow pin is inserted in the container forming step, and it becomes difficult to form by a normal forming method.
In the step of filling the container with the content liquid, the filling nozzle is inserted to the inside of the container, but there is a possibility that the mouth partition plate or the projection may become an obstacle and cause trouble.
(2) Two ports are provided in the upper part of the container, both are cap-capped, both caps are removed when the contents are poured out, one is used as a discharge port, and the other is used as an intake port to prevent pulsation The configuration is known.
However, in the above configuration, it takes time and effort to remove and cap the two caps when using the container, and there is a disadvantage that the liquid is spilled from the spout due to pulsation if the dispensing operation is performed without removing the cap. Leading up.
(3) Forming a widened portion that is larger than the mouth portion below the mouth portion of the container, and forming a discharge shape and a suction shape by providing a protrusion shape or a throttle shape on the main body side below the widened portion. In addition, a configuration is known in which a mechanism for supplying air to the air space in the container through the internal liquid is provided to prevent pulsation during pouring (Japanese Patent Publication No. 7-2500).
However, in the above configuration, since the discharge port and the intake port are arranged at close positions, the effect of the pulsation prevention function is reduced when the container is poured out in a direction in which the axis of the discharge port is inclined. In addition, since it is a mechanism for supplying air to the air space in the container through the internal liquid, design restrictions are imposed on the shape of the discharge port, intake port, and handle of the mouth.
In addition, there is a problem that the air escape passage becomes narrow and the discharge time becomes longer, and further, the remaining liquid remains in the container after tilting due to the shape of the mouth.
(4) Discharge port and intake port are separated by attaching another part with intake function to the normal container port, and air is supplied into the container by the secured intake port and pulsation at the time of dispensing A configuration for preventing this is known.
In the said structure, since it becomes a 2 piece container, there exists a problem that a shaping | molding / assembly process increases and it will raise the cost of a container.
(5) An air ring (air reservoir around the discharge port) is provided below the container port and connected to the intake port inside the handle, so that the handle intake unit passes through the air ring from the discharge port during pouring. A configuration is known in which an air flow path that reaches the main body through the above is formed to prevent pulsation.
However, if the above configuration is an air ring shape in which a pulsation effect can be obtained, a large amount of residual liquid remains in the container at an angle (100 to 120 °) that is normally held by the handle and tilted. In addition, when trying to pour out the remaining liquid, the handle portion is changed and tilted, which causes problems in the ease of use of the container and makes it difficult when the shape of the dispensing destination is limited.
Japanese Patent Publication No.7-2500 FIGS. 2 to 4

この発明が解決しようとする課題は、容器を傾けて内容液を容器から注出する際に、吐出される内容液の脈動を効果的に防止することができると共に、容器を傾けて吐出する際に内容液の残量を減少させることができる容器を提供することにある。
また、この発明では、口部の吐出口や、吸気口、および把手部形状の設計の自由度が高く、用途に応じた形状とすることができる容器を提供することにある。
The problem to be solved by the present invention is that, when the content liquid is poured out from the container by tilting the container, the pulsation of the discharged content liquid can be effectively prevented and the container is tilted and discharged. Another object of the present invention is to provide a container capable of reducing the remaining amount of the content liquid.
Another object of the present invention is to provide a container that has a high degree of freedom in designing the shape of the discharge port, the intake port, and the handle portion of the mouth portion, and can be shaped according to the application.

上記課題を解決するために、請求項1の発明では、
容器本体(10)の上部へ突出し容器内に充填された内容液の吐出口(2a)となる筒状の口部(2)と、該口部(2)の下側で前記口部の流路断面と同一または大径の流路断面に形成されたエアー溜部(3)と、該エアー溜部(3)の一側に開口形成された吸気口(8a)と連通する中空のエアー流路(L2)を有し前記エアー溜部(3)と容器本体(10)との間に掛け渡された把手部(8)と、前記エアー溜部(3)の下側でエアー溜部の流路断面と略同心で小径の流路断面に形成された絞り部(4)とを有する液体容器において、
前記エアー溜部(3)が、前記絞り部(4)の流路断面より広がるリング状の空間によりエアー溜まりを形成し、
絞り部(4)が、エアー溜部(3)と容器本体(10)の間の周壁(4a)を内側に突出させた円形の開口からなり、
前記吸気口(8a)が形成された把手部(8)と略対向する位置の前記絞り部(4)を形成する周壁(4a)に該周壁(4a)を貫通すると共に内面が容器本体(10)とエアー溜部(3)とを一連につなぎ前記エアー溜まりに形成されるエアー層を分断する流路(F2)となる残液流通溝(6)を設けてなり、
該残液流通溝(6)は、前記周壁(4a)の内周面側で開口する溝の開口部分を溝の他の部分よりも幅狭に設定してなることを特徴とする。
請求項2の発明では、
容器本体(10)の上部へ突出し容器内に充填された内容液の吐出口(2a)となる筒状の口部(2)と、該口部(2)の下側で前記口部の流路断面と同一または大径の流路断面に形成されたエアー溜部(3)と、該エアー溜部(3)の一側に開口形成された吸気口(8a)と連通する中空のエアー流路(L2)を有し前記エアー溜部(3)と容器本体(10)との間に掛け渡された把手部(8)と、前記エアー溜部(3)の下側でエアー溜部の流路断面と略同心で小径の流路断面に形成された絞り部(4)とを有する液体容器において、
前記エアー溜部(3)が、前記絞り部(4)の流路断面より広がるリング状の空間によりエアー溜まりを形成し、
絞り部(4)が、エアー溜部(3)と容器本体(10)の間の周壁(4a)を内側に突出させた円形の開口からなり、
前記吸気口(8a)が形成された把手部(8)と略対向する位置の前記絞り部(4)を形成する周壁(4a)に該周壁(4a)を貫通すると共に内面が容器本体(10)とエアー溜部(3)とを一連につなぎ前記エアー溜まりに形成されるエアー層を分断する流路(F2)となる残液流通溝(6)を設けてなり、
前記吸気口(8a)からエアー流路(L2)に連なる流路の断面が、吸気口(8a)と同じ断面で絞られることなくエアー溜部(3)の外方へ横に延びてエアー流路(L2)と連通しており、容器成形工程の打ち込みブローピンの挿入による成形が容易に行える
ことを特徴とする。
請求項3の発明では、
前記把手部(8)が、前記エアー溜部(3)から前記口部(2)と離間する方向へ下向きに傾斜しながら延びて容器本体(10)の高さ方向中途位置に接続されており、
該把手部(8)と容器本体(10)との間に把手部(8)に沿って延びる把持用の穴(7)が形成されていることを特徴とする。
In order to solve the above problem, the invention of claim 1
A cylindrical mouth part (2) that protrudes to the upper part of the container body (10) and serves as a discharge outlet (2a) for the content liquid filled in the container, and the flow of the mouth part below the mouth part (2). A hollow air flow communicating with an air reservoir (3) formed in the cross section of the flow path having the same or larger diameter as the channel cross section, and an intake port (8a) formed on one side of the air reservoir (3) A handle (8) having a passage (L2) and spanned between the air reservoir (3) and the container body (10), and an air reservoir below the air reservoir (3). In a liquid container having a throttle section (4) formed in a small-diameter channel cross section substantially concentric with the channel cross-section,
The air reservoir (3) forms an air reservoir by a ring-shaped space extending from the flow path cross section of the throttle portion (4),
The throttle part (4) consists of a circular opening with the peripheral wall (4a) between the air reservoir (3) and the container body (10) protruding inward,
The peripheral wall (4a) forming the throttle portion (4) at a position substantially opposite to the handle portion (8) in which the intake port (8a) is formed penetrates the peripheral wall (4a) and the inner surface is the container body (10 ) and air reservoir (3) and Ri series to the name provided residual liquid flow channel (6) comprising flow paths for dividing the air layer formed in the connecting the air reservoir (F2) and,
The residual liquid circulation groove (6) is characterized in that the opening part of the groove opened on the inner peripheral surface side of the peripheral wall (4a) is set narrower than the other part of the groove .
In the invention of claim 2,
A cylindrical mouth part (2) that protrudes to the upper part of the container body (10) and serves as a discharge outlet (2a) for the content liquid filled in the container, and the flow of the mouth part below the mouth part (2). A hollow air flow communicating with an air reservoir (3) formed in the cross section of the flow path having the same or larger diameter as the channel cross section, and an intake port (8a) formed on one side of the air reservoir (3) A handle (8) having a passage (L2) and spanned between the air reservoir (3) and the container body (10), and an air reservoir below the air reservoir (3). In a liquid container having a throttle section (4) formed in a small-diameter channel cross section substantially concentric with the channel cross-section,
The air reservoir (3) forms an air reservoir by a ring-shaped space extending from the flow path cross section of the throttle portion (4),
The throttle part (4) consists of a circular opening with the peripheral wall (4a) between the air reservoir (3) and the container body (10) protruding inward,
The peripheral wall (4a) forming the throttle portion (4) at a position substantially opposite to the handle portion (8) in which the intake port (8a) is formed penetrates the peripheral wall (4a) and the inner surface is the container body (10 ) and air reservoir (3) and Ri series to the name provided residual liquid flow channel (6) comprising flow paths for dividing the air layer formed in the connecting the air reservoir (F2) and,
The cross section of the flow passage that extends from the intake port (8a) to the air flow channel (L2) extends laterally outward of the air reservoir (3) without being constricted in the same cross section as the intake port (8a). It is characterized in that it communicates with the path (L2) and can be easily molded by inserting a blow pin in the container molding process .
In the invention of claim 3,
The handle portion (8) extends while inclining downward from the air reservoir portion (3) in a direction away from the mouth portion (2) and is connected to a midway position in the height direction of the container body (10). ,
A gripping hole (7) extending along the handle portion (8) is formed between the handle portion (8) and the container body (10).

この発明の液体容器では以下の効果を奏することができる。
(1)内容液を容器から注出する際の脈動を防止することができる。
(2)吐出口の軸線を傾ける方向に容器を倒した状態でも、注出時における脈動防止効果は減少しない。
(3)口部の吐出口、吸気口、および把手部形状の設計の自由度が高く、用途に応じた形状とすることができる。
(4)前記脈動防止の効果を有すると共に、容器を傾けた際の内容液の残量を減少させることができる。
The liquid container of the present invention can achieve the following effects.
(1) It is possible to prevent pulsation when the content liquid is poured out of the container.
(2) Even when the container is tilted in a direction in which the axis of the discharge port is inclined, the pulsation preventing effect at the time of dispensing is not reduced.
(3) The degree of freedom in designing the shape of the discharge port, the intake port, and the handle portion of the mouth portion is high, and the shape can be made according to the application.
(4) While having the effect of preventing the pulsation, the remaining amount of the content liquid when the container is tilted can be reduced.

以下に、この発明の液体容器を減容ボトルに適用した場合の好適実施例について、図面を参照しながら説明する。   Hereinafter, a preferred embodiment when the liquid container of the present invention is applied to a volume reduction bottle will be described with reference to the drawings.

図1から図5に示す減容ボトル1は、液体を充填した容器本体10の外方、本実施例では上方に突出し吐出口2aとなる口部2と、その基端側(吐出方向の上流側)に形成されたエアー溜部3と、該エアー溜部3に形成された吸気口8aと、該吸気口8aと連通するエアー流路L2を形成する把手部8と、前記エアー溜部3の基端側(吐出方向の上流側)に形成された絞り部4と、該絞り部4に形成された残液流通溝6とからなっている。   The volume-reducing bottle 1 shown in FIGS. 1 to 5 has a mouth part 2 that protrudes outward from the container body 10 filled with a liquid, in this embodiment, and serves as a discharge port 2a, and a base end side (upstream in the discharge direction). The air reservoir 3 formed on the air reservoir 3, the air inlet 8 a formed in the air reservoir 3, the handle 8 that forms the air flow path L 2 communicating with the air inlet 8 a, and the air reservoir 3. The throttle part 4 is formed on the base end side (upstream side in the discharge direction) of the liquid and the remaining liquid circulation groove 6 is formed in the throttle part 4.

[口部]
口部2は、外周に図示省略のキャップを螺着するネジを有する筒状からなっており、容器本体10の上部の一側に突出しており、容器本体10の内容液を注出するための吐出口2aとなっている。
[Mouth]
The mouth portion 2 is formed in a cylindrical shape having a screw to which a cap (not shown) is screwed on the outer periphery, protrudes to one side of the upper portion of the container body 10, and is used for pouring the content liquid in the container body 10. It is a discharge port 2a.

[エアー溜部]
上記口部2の基端側に連接してエアー溜部3が形成されている。
エアー溜部3は、図示例の場合、口部2より大径に形成された管形状、本実施例では略八角柱状からなっている。
[Air reservoir]
An air reservoir 3 is formed so as to be connected to the base end side of the mouth 2.
In the case of the illustrated example, the air reservoir 3 has a tubular shape formed with a diameter larger than that of the mouth portion 2, and in the present embodiment, has a substantially octagonal prism shape.

[吸気口]
上記エアー溜部3の一側面には、吸気口8aが開口されている。
該吸気口8aは、流路が狭く絞られることなく、また仕切り板による制限もなく、エアー溜部3に接続される。
[Intake port]
An intake port 8 a is opened on one side surface of the air reservoir 3.
The intake port 8a is connected to the air reservoir 3 without narrowing the flow path and without being restricted by a partition plate.

[把手部]
把手部8は、図4および図5に示すように、前記吸気口8aとほぼ同じ断面で連通する中空のエアー流路L2を有する管状体からなっており、前記エアー溜部3と容器本体10の他方との間に一体に掛け渡されている。
前記エアー流路L2は、把手部8の全長にわたって形成された中空部からなっており、内容液の吐出時に容器本体10の吐出側とは離間した対向側へエアーを導入する。
なお図中7は、容器本体10に形成されて把手部8をつかむための穴である。
[Grip part]
As shown in FIGS. 4 and 5, the handle portion 8 is formed of a tubular body having a hollow air flow path L <b> 2 communicating with the intake port 8 a in substantially the same cross section, and the air reservoir portion 3 and the container body 10. Between the other and the other.
The air flow path L2 is formed of a hollow portion formed over the entire length of the handle portion 8, and introduces air to the opposite side that is separated from the discharge side of the container body 10 when the content liquid is discharged.
In the figure, 7 is a hole formed in the container body 10 for grasping the handle portion 8.

[絞り部]
前記エアー溜部3の基端には、エアー溜部3の流路より狭い流路に形成された絞り部4が設けられている。
絞り部4は、図示例の場合、前記エアー溜部3の下方で、エアー溜部3の流路断面と略同心で小径に設定された流路断面に形成されている。
本実施例では、エアー溜部3と容器本体10の間の周壁を内側に突出するように曲成して環状の絞り部形成壁4aを形成し、該絞り部形成壁4aて形成された中央の円形の開口を絞り部4としている。
この絞り部4を介して、拡開されて容器本体10の一方が連なっている。
[Aperture section]
At the base end of the air reservoir 3, a throttle portion 4 formed in a flow path narrower than the flow path of the air reservoir 3 is provided.
In the case of the illustrated example, the throttle portion 4 is formed below the air reservoir portion 3 and in a channel cross section that is concentric with the channel cross section of the air reservoir portion 3 and has a small diameter.
In the present embodiment, a circumferential wall between the air reservoir 3 and the container body 10 is bent so as to protrude inward to form an annular throttle part forming wall 4a, and the central part formed by the throttle part forming wall 4a The circular opening is used as the aperture 4.
One of the container main bodies 10 is connected by being expanded through the throttle portion 4.

[容器本体]
容器本体10は、上部の一方が吐出口2aが形成された口部2につながる第1開口部10aと、他方で把手部8のエアー流路L2とつながる第2開口部10bとを有している。
[Container body]
The container body 10 has a first opening 10a connected to the mouth part 2 in which one of the upper parts is formed with the discharge port 2a, and a second opening 10b connected to the air flow path L2 of the handle part 8 on the other side. Yes.

[脈動防止]
上記構成からなるので、減容ボトルを、口部2の軸線を傾ける方向に倒して内容液を吐出すると、周囲にあるリング状の空間によりエアー溜まりが形成される。
これにより、図4および図5に示すように、エアー溜部3の内側にエアー層Eを発生させる。
エアー溜部3の下方には吐出流れを絞る絞り部4が形成されているので、内容液は一度、絞り部4で流路断面が狭まり、大径のエアー溜部3で流路断面が広がって開放されて口部2の吐出口2aに流れ出ていく。
[Pulsation prevention]
Since it consists of the said structure, when a volume reduction bottle is tilted in the direction which inclines the axis line of the opening | mouth part 2 and a content liquid is discharged, an air pool will be formed by the surrounding ring-shaped space.
Thereby, as shown in FIGS. 4 and 5, an air layer E is generated inside the air reservoir 3.
Since the constriction part 4 that restricts the discharge flow is formed below the air reservoir 3, the cross-section of the liquid content is once narrowed by the constriction part 4, and the cross-section of the flow path is widened by the large-diameter air reservoir 3. And then flows out to the discharge port 2a of the mouth part 2.

即ち、絞り部4とエアー溜部3の断面積比および容積比により、吐出時でもエアー溜部3内にはエアー層Eが形成され、吐出口2aから吸気口8aまでのエアー導入路L1が確保され、前記エアー流路L2につながるので、脈動を防止することができる。   That is, due to the cross-sectional area ratio and volume ratio of the throttle portion 4 and the air reservoir 3, an air layer E is formed in the air reservoir 3 even during discharge, and the air introduction path L1 from the discharge port 2a to the intake port 8a is formed. Since it is secured and connected to the air flow path L2, pulsation can be prevented.

本実施例では、エアー溜部3の一側面は吸気口8aが形成されており、エアーの流路断面は絞らないので、エアー溜部3に溜まったエアーが吸気囗8aに流れやすく、エアー流路が塞がれにくくなる。
従って、容器本体10を傾けた際にも脈動防止効果が確実となる。
In the present embodiment, an air inlet 8a is formed on one side surface of the air reservoir 3, and the air flow passage cross section is not restricted, so that the air accumulated in the air reservoir 3 can easily flow into the air intake 8a. The road is less likely to be blocked.
Therefore, even when the container body 10 is tilted, the pulsation preventing effect is ensured.

また、図示例の構造の場合、エアー溜部3が外方へ吐出し、把手部8が連なっているので、容器成形時のブローピン挿入工程で邪魔にならず、また、ブローピン挿入時の口部肉垂れによる吸気口の塞ぎ不良も発生しにくく、成形が容易で信頼性も高い。
即ち、前記吸気口8aからエアー流路L2に連なる流路の断面が、吸気口8aと同じ断面で絞られることなくエアー溜部3の外方へ横に延びてエアー流路L2と連通しており、容器成形工程の打ち込みブローピンの挿入による成形が容易に行える。
内容液の充填工程では、吐出口が広いため、充填ノズルが挿入しやすい。
In the case of the structure of the illustrated example, the air reservoir 3 discharges outward and the handle portion 8 is continuous, so that it does not interfere with the blow pin insertion process at the time of container molding, and the mouth portion at the time of blow pin insertion Insufficient air inlet obstruction due to sagging is unlikely to occur, and molding is easy and reliable.
In other words, the cross section of the flow path that extends from the intake port 8a to the air flow path L2 extends laterally outward of the air reservoir 3 without being constricted in the same cross section as the intake port 8a, and communicates with the air flow path L2. Therefore, molding can be easily performed by inserting a blow pin in the container molding process.
In the filling process of the content liquid, the filling nozzle is easy to insert because the discharge port is wide.

一方、このようなエアー溜部3を設けただけの形状では、通常、把手部8を握って傾ける角度(約100〜120°)では容器本体10内に残液が多く残る。
残液を注出しようとすると、把手部8を持ち替えて更に傾けることになり、容器本体10の使いやすさが損なわれ、吐出先のコップなどの形状に制約がある場合などは注出しにくくなる。
On the other hand, with such a shape in which only the air reservoir 3 is provided, a large amount of residual liquid remains in the container body 10 at an angle (about 100 to 120 °) in which the handle portion 8 is held and tilted.
If the remaining liquid is to be poured out, the handle portion 8 is moved and tilted further, the usability of the container body 10 is impaired, and it becomes difficult to pour out when there is a restriction on the shape of the discharge destination cup or the like. .

[残液流通溝]
そこで、本実施例では、図4及び図6から図8に明瞭なように、前記絞り部4に残液流通溝6が設けられている。
残液流通溝6は、吸気口8aが形成された把手部8と対向する位置のエアー溜部3の側壁面に連なるように、前記絞り部形成壁4aを貫通すると共に内面が容器本体10からエアー溜部3につながるチャンネル状の流路からなっている。
この残液流通溝6は、図5で明瞭なように、前記周壁4aの内周面側で開口する溝6の開口部分6aを溝6の他の部分よりも幅狭に設定している。
[Residual liquid flow channel]
Therefore, in the present embodiment, a residual liquid circulation groove 6 is provided in the throttle portion 4 as clearly shown in FIGS. 4 and 6 to 8.
The residual liquid circulation groove 6 penetrates through the throttle portion forming wall 4a so as to be continuous with the side wall surface of the air reservoir portion 3 at a position facing the handle portion 8 in which the intake port 8a is formed, and the inner surface thereof extends from the container body 10. It consists of a channel-shaped flow path connected to the air reservoir 3.
As clearly shown in FIG. 5, the residual liquid circulation groove 6 is set so that the opening portion 6 a of the groove 6 that opens on the inner peripheral surface side of the peripheral wall 4 a is narrower than the other portions of the groove 6.

そこで、容器本体10を口部2の軸線を傾ける方向に倒した際に、絞り部4の内周壁である絞り部形成壁4aが容器本体10との間に仕切り状に突出することになるが、前記残液流通溝6が容器本体10とエアー溜部3とを略同一面状につなぐので、絞り部4の内周壁によって仕切られた残液が絞り部4で滞らず、残液流通溝6を通ってエアー溜部3に流れ、口部2から外部へスムーズに吐出される。
これにより、エアー溜部3へは、絞り部4の開口からの液体の流れF1と、残液流通溝6を通る液体の流れF2が生じる(図4(b)参照)。
Therefore, when the container main body 10 is tilted in the direction in which the axis of the mouth portion 2 is inclined, the throttle portion forming wall 4a which is the inner peripheral wall of the throttle portion 4 protrudes in a partition shape between the container main body 10 and the container main body 10. Since the residual liquid circulation groove 6 connects the container body 10 and the air reservoir 3 in substantially the same plane, the residual liquid partitioned by the inner peripheral wall of the throttle part 4 does not stagnate in the throttle part 4, and the residual liquid circulation groove 6 flows into the air reservoir 3 and is smoothly discharged from the mouth 2 to the outside.
As a result, a liquid flow F1 from the opening of the throttle unit 4 and a liquid flow F2 passing through the residual liquid circulation groove 6 are generated in the air reservoir 3 (see FIG. 4B).

そして、絞り部4からの流れF1は、前述のように、吐出口2aとの口径差によりエアー溜部3内にエアー層Eを形成する。
一方、同時に、残液流通溝6からの液体の流れF2は残液流通溝6の延長方向にあるエアー溜部3のエアー層Eを分断し、分断されたエアー層Eは図5に点線で示すようにエアー導入路L1に導かれる。
これにより脈動防止の効果を有しながら、容器本体を傾けた際の内容液の残量を減少することができる。
Then, the flow F1 from the throttle portion 4 forms an air layer E in the air reservoir 3 due to the difference in diameter with the discharge port 2a as described above.
On the other hand, at the same time, the liquid flow F2 from the residual liquid circulation groove 6 divides the air layer E of the air reservoir 3 in the extending direction of the residual liquid circulation groove 6, and the divided air layer E is indicated by a dotted line in FIG. As shown, it is guided to the air introduction path L1.
Thereby, the remaining amount of the content liquid when the container body is tilted can be reduced while having the effect of preventing pulsation.

上記実施例では、絞り部を環状に形成したが、吐出時に下方となる容器本体とエアー溜部との間で流路を狭めるだけの構成であってもよい。
その他、要するにこの発明の要旨を変更しない範囲で種々設計変更しうること勿論である。
In the above embodiment, the throttle portion is formed in an annular shape, but it may be configured such that the flow path is narrowed between the container main body and the air reservoir portion that are downward when discharging.
In addition, it goes without saying that various design changes can be made without departing from the scope of the present invention.

口部脈動防止および残液減少の構造を用いることで、容器の容量や、容器本体の形状、把手部形状などが変更しても、同様の効果を奏することができる。
また内容液の注出時に、容器の胴部が変形しやすく脈動現象が発生しやすい薄肉の減容ボトルには特に有益である。
By using the structure for preventing the mouth pulsation and reducing the residual liquid, the same effect can be obtained even if the capacity of the container, the shape of the container body, the shape of the handle, etc. are changed.
Further, it is particularly useful for a thin-walled volume-reducing bottle in which the body of the container is easily deformed and a pulsation phenomenon is likely to occur when the content liquid is poured.

液体容器の一例としての減容ボトルの側面図である。It is a side view of the volume reduction bottle as an example of a liquid container. 同正面図である。It is the same front view. 同平面図である。It is the same top view. (a)吐出時のエアーの流れを説明する要部の模式図、(b)エアー溜部に流れる液体の流れを示す説明図である。(A) The schematic diagram of the principal part explaining the flow of the air at the time of discharge, (b) It is explanatory drawing which shows the flow of the liquid which flows into an air reservoir. エアー溜部と把手部のエアー流路との関係を示す要部断面図である。It is principal part sectional drawing which shows the relationship between an air reservoir and the air flow path of a handle part. 残液流通溝を示す要部正面図である。It is a principal part front view which shows a residual liquid distribution groove | channel. (a)は図6のVII−VII線の断面図、(b)は図6のVIII−VIIIの断面図である。(A) is sectional drawing of the VII-VII line of FIG. 6, (b) is sectional drawing of VIII-VIII of FIG. 容器本体の上部拡大図である。It is an upper part enlarged view of a container main body.

1 減容ボトル
2 口部
2a 吐出口
3 エアー溜部
4 絞り部
4a 絞り部形成壁部
6 残液流通溝
7 穴
8 把手部
8a 吸気口
10 容器本体
L1 エアー導入路
L2 エアー流路
DESCRIPTION OF SYMBOLS 1 Volume reduction bottle 2 Port part 2a Discharge port 3 Air reservoir part 4 Restriction part 4a Restriction part formation wall part 6 Residual liquid flow groove 7 Hole 8 Handle part 8a Intake port 10 Container body L1 Air introduction path L2 Air flow path

Claims (3)

容器本体(10)の上部へ突出し容器内に充填された内容液の吐出口(2a)となる筒状の口部(2)と、該口部(2)の下側で前記口部の流路断面と同一または大径の流路断面に形成されたエアー溜部(3)と、該エアー溜部(3)の一側に開口形成された吸気口(8a)と連通する中空のエアー流路(L2)を有し前記エアー溜部(3)と容器本体(10)との間に掛け渡された把手部(8)と、前記エアー溜部(3)の下側でエアー溜部の流路断面と略同心で小径の流路断面に形成された絞り部(4)とを有する液体容器において、
前記エアー溜部(3)が、前記絞り部(4)の流路断面より広がるリング状の空間によりエアー溜まりを形成し、
絞り部(4)が、エアー溜部(3)と容器本体(10)の間の周壁(4a)を内側に突出させた円形の開口からなり、
前記吸気口(8a)が形成された把手部(8)と略対向する位置の前記絞り部(4)を形成する周壁(4a)に該周壁(4a)を貫通すると共に内面が容器本体(10)とエアー溜部(3)とを一連につなぎ前記エアー溜まりに形成されるエアー層を分断する流路(F2)となる残液流通溝(6)を設けてなり、
該残液流通溝(6)は、前記周壁(4a)の内周面側で開口する溝の開口部分を溝の他の部分よりも幅狭に設定してなることを特徴とする液体容器。
A cylindrical mouth part (2) that protrudes to the upper part of the container body (10) and serves as a discharge outlet (2a) for the content liquid filled in the container, and the flow of the mouth part below the mouth part (2). A hollow air flow communicating with an air reservoir (3) formed in the cross section of the flow path having the same or larger diameter as the channel cross section, and an intake port (8a) formed on one side of the air reservoir (3) A handle (8) having a passage (L2) and spanned between the air reservoir (3) and the container body (10), and an air reservoir below the air reservoir (3). In a liquid container having a throttle section (4) formed in a small-diameter channel cross section substantially concentric with the channel cross-section,
The air reservoir (3) forms an air reservoir by a ring-shaped space extending from the flow path cross section of the throttle portion (4),
The throttle part (4) consists of a circular opening with the peripheral wall (4a) between the air reservoir (3) and the container body (10) protruding inward,
The peripheral wall (4a) forming the throttle portion (4) at a position substantially opposite to the handle portion (8) in which the intake port (8a) is formed penetrates the peripheral wall (4a) and the inner surface is the container body (10 ) and air reservoir (3) and Ri series to the name provided residual liquid flow channel (6) comprising flow paths for dividing the air layer formed in the connecting the air reservoir (F2) and,
The residual liquid circulation groove (6) is characterized in that the opening part of the groove opened on the inner peripheral surface side of the peripheral wall (4a) is set narrower than the other part of the groove .
容器本体(10)の上部へ突出し容器内に充填された内容液の吐出口(2a)となる筒状の口部(2)と、該口部(2)の下側で前記口部の流路断面と同一または大径の流路断面に形成されたエアー溜部(3)と、該エアー溜部(3)の一側に開口形成された吸気口(8a)と連通する中空のエアー流路(L2)を有し前記エアー溜部(3)と容器本体(10)との間に掛け渡された把手部(8)と、前記エアー溜部(3)の下側でエアー溜部の流路断面と略同心で小径の流路断面に形成された絞り部(4)とを有する液体容器において、
前記エアー溜部(3)が、前記絞り部(4)の流路断面より広がるリング状の空間によりエアー溜まりを形成し、
絞り部(4)が、エアー溜部(3)と容器本体(10)の間の周壁(4a)を内側に突出させた円形の開口からなり、
前記吸気口(8a)が形成された把手部(8)と略対向する位置の前記絞り部(4)を形成する周壁(4a)に該周壁(4a)を貫通すると共に内面が容器本体(10)とエアー溜部(3)とを一連につなぎ前記エアー溜まりに形成されるエアー層を分断する流路(F2)となる残液流通溝(6)を設けてなり、
前記吸気口(8a)からエアー流路(L2)に連なる流路の断面が、吸気口(8a)と同じ断面で絞られることなくエアー溜部(3)の外方へ横に延びてエアー流路(L2)と連通しており、容器成形工程の打ち込みブローピンの挿入による成形が容易に行えることを特徴とする液体容器。
A cylindrical mouth part (2) that protrudes to the upper part of the container body (10) and serves as a discharge outlet (2a) for the content liquid filled in the container, and the flow of the mouth part below the mouth part (2). A hollow air flow communicating with an air reservoir (3) formed in the cross section of the flow path having the same or larger diameter as the channel cross section, and an intake port (8a) formed on one side of the air reservoir (3) A handle (8) having a passage (L2) and spanned between the air reservoir (3) and the container body (10), and an air reservoir below the air reservoir (3). In a liquid container having a throttle section (4) formed in a small-diameter channel cross section substantially concentric with the channel cross-section,
The air reservoir (3) forms an air reservoir by a ring-shaped space extending from the flow path cross section of the throttle portion (4),
The throttle part (4) consists of a circular opening with the peripheral wall (4a) between the air reservoir (3) and the container body (10) protruding inward,
The peripheral wall (4a) forming the throttle portion (4) at a position substantially opposite to the handle portion (8) in which the intake port (8a) is formed penetrates the peripheral wall (4a) and the inner surface is the container body (10 ) and air reservoir (3) and Ri series to the name provided residual liquid flow channel (6) comprising flow paths for dividing the air layer formed in the connecting the air reservoir (F2) and,
The cross section of the flow passage that extends from the intake port (8a) to the air flow channel (L2) extends laterally outward of the air reservoir (3) without being constricted in the same cross section as the intake port (8a). A liquid container that communicates with the channel (L2) and can be easily molded by inserting a blow pin in a container molding process .
把手部(8)が、前記エアー溜部(3)から前記口部(2)と離間する方向へ下向きに傾斜しながら延びて容器本体(10)の高さ方向中途位置に接続されており、
該把手部(8)と容器本体(10)との間に把手部(8)に沿って延びる把持用の穴(7)が形成されていることを特徴とする請求項1または2に記載の液体容器。
The handle portion (8) extends while inclining downward from the air reservoir portion (3) in a direction away from the mouth portion (2) and is connected to a midway position in the height direction of the container body (10),
The gripping hole (7) extending along the handle portion (8) is formed between the handle portion (8) and the container main body (10). Liquid container.
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