JP6265756B2 - Injection port clogging prevention mechanism and aerosol-type product equipped with this injection port clogging prevention mechanism - Google Patents

Injection port clogging prevention mechanism and aerosol-type product equipped with this injection port clogging prevention mechanism Download PDF

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JP6265756B2
JP6265756B2 JP2014011721A JP2014011721A JP6265756B2 JP 6265756 B2 JP6265756 B2 JP 6265756B2 JP 2014011721 A JP2014011721 A JP 2014011721A JP 2014011721 A JP2014011721 A JP 2014011721A JP 6265756 B2 JP6265756 B2 JP 6265756B2
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valve member
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関 正晃
正晃 関
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Mitani Valve Co Ltd
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Description

本発明は、エアゾール式製品の内容物噴射用の作動モード設定操作を終了の際に、内容物噴射口やその近くの通路部などに残留する内容物を、容器本体内部の噴射剤気相分の作用で外部空間域へ流出させるようにした噴射口詰まり防止機構などに関する。   When the operation mode setting operation for injecting the content of the aerosol type product is finished, the present invention removes the content remaining in the content injection port or the nearby passage portion from the propellant gas phase component inside the container body. It is related with the injection port clogging prevention mechanism etc. which were made to flow out to an external space area by the effect | action of.

特に、作動モード設定操作により開状態となる流出弁要素(ステム孔部)を持つステムが配されるハウジングに、ステムとの流入弁要素(ハウジング下側内周面)およびステムと連動する可動弁部材との噴射剤気相弁要素(ハウジング孔部)を設けたものである。   In particular, in a housing in which a stem having an outflow valve element (stem hole) that is opened by an operation mode setting operation is disposed, an inflow valve element (housing lower inner peripheral surface) with the stem and a movable valve that interlocks with the stem A propellant gas phase valve element (housing hole) with a member is provided.

そして、流入弁,流出弁および噴射剤気相弁それぞれの位置・形状関係を、
(11)静止モードでは、流入弁および流出弁が閉じて噴射剤気相弁が開き、
(12)静止モードから作動モードへの移行の際には、流入弁が閉じたまま、噴射剤気相弁が略閉じてから流出弁が開き、
(13)作動モードでは、噴射剤気相弁が閉じたまま、流出弁および流入弁の双方が開き、
(14)作動モードから静止モードへの復帰の際には、流入弁が閉じた状態で、噴射剤気相弁が開いてから流出弁が閉じる、
ように設定している。
And the position and shape relationship of each of the inflow valve, outflow valve and propellant gas phase valve,
(11) In static mode, the inflow and outflow valves are closed and the propellant gas phase valve is opened,
(12) When shifting from the stationary mode to the operating mode, the outflow valve is opened after the propellant gas phase valve is substantially closed while the inflow valve is closed,
(13) In the operation mode, both the outflow valve and the inflow valve are opened while the propellant gas phase valve is closed,
(14) When returning from the operation mode to the stationary mode, the inflow valve is closed, the propellant gas phase valve is opened, and then the outflow valve is closed.
It is set as follows.

ここでポイントとなるのは、上記(12),(14)における噴射剤気相弁および流出弁の開閉変化の順序である。   The point here is the order of the opening and closing changes of the propellant gas phase valve and the outflow valve in the above (12) and (14).

すなわち、静止モードから作動モードへの移行時には、噴射剤気相弁および流出弁がともに開状態となるタイミングを極力回避し、容器本体内部の噴射剤気相分が外部空間域へ漏洩しないようにしている。   That is, when shifting from the stationary mode to the operation mode, the timing when both the propellant gas phase valve and the outflow valve are opened is avoided as much as possible, and the propellant gas phase inside the container body is prevented from leaking to the external space. ing.

これとは逆に、作動モードから静止モードへの復帰時には、流入弁が閉じた状態で、噴射剤気相弁および流出弁がともに開状態となるタイミングを確保し、容器本体の噴射剤気相分が確実に内容物の噴射口へと送られるようにしている。   On the contrary, when returning from the operation mode to the stationary mode, the propellant gas phase valve and the outflow valve are both opened while the inflow valve is closed, and the propellant gas phase of the container body is secured. The minute is surely sent to the content outlet.

この開閉変化の順序を担保するため、後述のように、流入弁要素としてのステム孔部と、噴射剤気相弁要素としての可動弁部材との図示上下方向の相対位置関係を、作動モードへの移行時および静止モードへの復帰時のそれぞれで切り替えている。   In order to ensure the order of this opening / closing change, as will be described later, the relative positional relationship between the stem hole portion as the inflow valve element and the movable valve member as the propellant gas phase valve element is changed to the operation mode. Switching at the time of switching to and returning to the stationary mode.

すなわち、ステム孔部と可動弁部材との図示上下方向間隔を、静止モードと、作動モードへの移行前半段階では長く設定し(図1,図2参照)、作動モードと、静止モードへの復帰前半段階では短く設定している(図4,図5参照)。   In other words, the illustrated vertical distance between the stem hole and the movable valve member is set longer in the first half of the transition to the stationary mode and the operation mode (see FIGS. 1 and 2), and the operation mode and the return to the stationary mode are set. The first half is set short (see FIGS. 4 and 5).

この噴射口詰まり防止機構の作動により、エアゾール式製品におけるアフタードローの発生を阻止する、または十分に減少させることができる。   By the operation of this injection port clogging prevention mechanism, it is possible to prevent or sufficiently reduce the occurrence of after-draw in aerosol type products.

本明細書では、必要に応じて操作部の噴射口側を「先」,「前」と記し、それとは反対側を「後」と記す。すなわち図1〜図6の左側が「前」で、右側が「後」となる。   In this specification, the injection port side of the operation unit is described as “front” and “front”, and the opposite side is described as “rear” as necessary. That is, the left side of FIGS. 1 to 6 is “front” and the right side is “rear”.

また、内容物放出操作時のステムの移動方向を「縦方向」,「上下方向」とする。この縦方向における図示操作部の側を「上」と記し、同じ縦方向の図示チューブの側を「下」と記す。   In addition, the moving direction of the stem during the content discharge operation is defined as “vertical direction” and “vertical direction”. The side of the illustrated operation unit in the vertical direction is referred to as “upper”, and the side of the illustrated tube in the same vertical direction is referred to as “lower”.

本件出願人は、エアゾール式製品のアフタードロー対策として、作動モード設定操作を終了の際に、内容物噴射口などの残留内容物を、容器本体内部からの噴射剤気相分の作用で外部空間域へ流出させることを提案している(後述の特許文献1参照)。   As a countermeasure for after-draw of aerosol-type products, the applicant of the present invention will remove residual contents such as the content injection port from the inside of the container body by the action of the gas phase of the propellant at the end of the operation mode setting operation. It is proposed to flow out into the area (see Patent Document 1 described later).

これは、作動モードのときに容器本体内部からの噴射剤気相分が収容される貯留空間域を別途用意し、作動モード設定操作終了にともなう操作部の静止モード位置への復帰動作により当該貯留空間域の噴射剤気相分が噴射口へいわば自動供給されるものである。   This is because a separate storage space area in which the propellant gas phase component from the inside of the container body is accommodated in the operation mode is prepared, and the storage is performed by returning the operation unit to the stationary mode position upon completion of the operation mode setting operation. The propellant gas phase component in the space is automatically supplied to the injection port.

特開2012−125695号公報JP 2012-125695 A

この提案済みの噴射口詰まり防止機構は、エアゾール式製品の噴射口およびその近くの残留内容物を噴射剤気相分の作用で噴射口から外部空間域に積極的に流出させてしまうといった考えに基づくもので、所定のアフタードロー対策効果を奏している。   The proposed mechanism for preventing clogging of the injection port is based on the idea that the aerosol type product injection port and the residual content in the vicinity of the aerosol type product will actively flow out of the injection port to the external space due to the action of the gas phase of the propellant. Based on this, it has a predetermined after-draw countermeasure effect.

本発明は、噴射剤気相分の貯留空間域を設けることに代えて、内容物放出操作終了の際にステムが静止モード位置に戻る段階で、ハウジングへの流入弁が閉じ、噴射剤気相弁およびステムからの流出弁がともに開状態となるタイミングを確保したものである。   Instead of providing a storage space area for the propellant gas phase, the present invention closes the inflow valve to the housing at the stage where the stem returns to the stationary mode position at the end of the content discharge operation, and the propellant gas phase The timing when both the valve and the outflow valve from the stem are opened is ensured.

このタイミングの間、容器本体内部の噴射剤気相分は、ともに開状態の噴射剤気相弁と流出弁とを介してハウジングおよびステム経由で噴射口の方へと流出する。   During this timing, the propellant gas phase inside the container body flows out toward the injection port via the housing and stem via the propellant gas phase valve and the outflow valve which are both open.

すなわち、容器本体の噴射剤気相分を通常のハウジングに直接取り込むための噴射剤気相弁(ハウジング孔部と可動弁部材)を設けて、静止モード復帰時の流出弁が閉じる前に、この噴射剤気相弁を開状態に設定するという新たな視点に立脚したものである。   That is, a propellant gas phase valve (housing hole and movable valve member) for directly taking the propellant gas phase content of the container body into a normal housing is provided. This is based on a new viewpoint of setting the propellant gas phase valve to an open state.

本発明はこれにより、エアゾール式製品のアフタードロー対策技術の豊富化を図り、アフタードロー発生の効率的な阻止化,減少化を図ることを目的とする。   Accordingly, an object of the present invention is to enrich the after-draw countermeasure technology for aerosol products and to effectively prevent and reduce the after-draw generation.

本発明は、以上の課題を次のようにして解決する。
(1)エアゾール式製品の作動モード設定操作の際、噴射剤気相分の作用で、噴射口(例えば後述の噴射口2a)やその近くの通路部の残留内容物を外部空間域に放出する噴射口詰まり防止機構において、
前記噴射口に連通する内容物通路域(例えば後述の内容物通路域1b)、流出弁要素としてのステム孔部(例えば後述のステム孔部1a)および流入弁要素としての下側外周面(例えば後述の小径円柱部1m,大径円柱部1n)を備えたステム(例えば後述のステム1)と、
作動モードのとき前記ステム孔部に通じる内部空間域、前記流入弁要素としての下側内周面(例えば後述の流入弁環状部3f)および噴射剤気相弁要素としてのハウジング孔部(例えば後述のハウジング本体孔部3a,ブッシュ孔部4a)を備えたハウジング(例えば後述のハウジング本体3,ブッシュ4)と、
前記内部空間域に配設されてハウジング内周面に案内されながら前記ステムと連動し、前記ハウジング孔部への噴射剤気相弁要素として作動する可動弁部材(例えば後述の可動弁部材5)と、を有し、
前記ステムは、
前記ステム孔部と前記下側外周面との間の外周面部分に形成されて、前記可動弁部材の当該ステムに対する移動範囲(例えば後述の上環状天面1eと外向き下環状段部1fとの間の縦方向範囲)を設定し、かつ、当該ステムが静止モード位置のとき当該可動弁部材を当該移動範囲の下側位置に保持して、当該ステムが作動モード位置のとき当該可動弁部材を当該移動範囲の上側位置に保持する移動範囲設定部(例えば後述の上環状天面1e,外向き下環状段部1f,上環状テーパ面1g,下環状テーパ面1h)を備え、
前記ハウジングは、
前記ハウジング孔部の上方,下方それぞれに形成されて、前記可動弁部材をその最上位置と最下位置とにそれぞれ設定するストッパ部(例えば後述の上縦リブ状部4b,環状起立部3c)を備え、
前記可動弁部材は、
前記下側位置および前記上側位置に選択的に保持される被保持部(例えば後述の内向き環状段部5c,環状傾斜面5d,下環状天面5e,垂下内周面部5f)を備え、
前記移動範囲設定部は、
前記被保持部が前記ステムに対し前記下側位置と前記上側位置との間で移動するとき、当該被保持部との相対的な弾性変形案内作用を示す環状テーパ面(例えば後述の上環状テーパ面1g,下環状テーパ面1h)を備え、
前記ステムおよび前記可動弁部材が、
前記流入弁および前記流出弁それぞれの開状態ならびに前記噴射剤気相弁の閉状態に設定されている作動モードから、その逆の開閉状態の静止モードへ復帰するとき、
前記被保持部を前記上側位置に保持したかたちの当該可動弁部材および当該ステムは、
先ず、当該流入弁が閉じ、かつ、当該流出弁および当該噴射剤気相弁がともに開いた状態に変化して、容器本体内部(例えば後述の収容空間域A)の前記噴射剤気相分を前記噴射口へと流入させ、
続いて当該可動弁部材が前記ストッパ部(例えば後述の上縦リブ状部4b)にあたって停止し、その後、当該ステムのみがさらに静止モードへの復帰方向に移動して、当該被保持部が前記下側位置に保持された静止モードの状態に設定される、
構成態様のものを用いる。
(2)上記(1)において、
前記静止モードから前記作動モードへ移行するとき、
前記被保持部を前記下側位置に保持したかたちの前記可動弁部材および前記ステムは、
先ず、前記噴射剤気相弁が閉じて、容器本体内部の前記噴射剤気相分が前記ハウジング孔部から前記ステム孔部および前記噴射口へと流入するのを抑え、
続いて当該可動弁部材が前記ストッパ部(例えば後述の環状起立部3c)にあたって停止し、その後、当該ステムのみがさらに作動モードへの移行方向に移動して、当該被保持部が前記上側位置に保持された作動モードの状態に設定される、
構成態様のものを用いる。
(3)上記(1),(2)において、
前記ステムは、
前記移動範囲設定部の一部に、前記可動弁部材の上流側から下流側へと放出対象内容物や前記噴射剤気相分を通過させる通路部分(例えば後述の縦溝状部1k)が形成された、
構成態様のものを用いる。
)上記(1),(2),(3)において、
前記ハウジングは、
前記流入弁要素としての下側内周面(例えば後述の流入弁環状部3f),前記ハウジング孔部としての外側孔部(例えば後述のハウジング本体孔部3a)、および前記可動弁部材を前記最下位置に設定するストッパ部としての環状起立部(例えば後述の環状起立部3c)を備えたハウジング本体(例えば後述のハウジング本体3)と、
前記可動弁部材を当接案内する形で当該ハウジング本体の内側に取り付けられて、前記ハウジング孔部としての内側孔部(例えば後述のブッシュ孔部4a)、および当該可動弁部材を前記最上位置に設定するストッパ部としての環凸状部(例えば後述の上縦リブ状部4b)を備えた筒状部(例えば後述のブッシュ4)と、からなる、
構成態様のものを用いる。
)上記()において、
前記筒状部は、
前記環状起立部の外側の周方向凹状部(例えば後述の周方向凹状部3b)に保持された、
構成態様のものを用いる。
The present invention solves the above problems as follows.
(1) During the operation mode setting operation of the aerosol type product, the residual contents of the injection port (for example, the injection port 2a described later) and the passage portion nearby are released to the external space area by the action of the propellant gas phase. In the injection port clogging prevention mechanism,
A content passage area (for example, a content passage area 1b described later) communicating with the injection port, a stem hole portion (for example, a stem hole portion 1a described later) as an outflow valve element, and a lower outer peripheral surface (for example, an inflow valve element) A stem (for example, a stem 1 described later) having a small diameter cylindrical portion 1m and a large diameter cylindrical portion 1n described later;
In the operation mode, an internal space that communicates with the stem hole, a lower inner peripheral surface (for example, an inflow valve annular portion 3f described later) as the inflow valve element, and a housing hole (for example, described later) as a propellant gas phase valve element Housing body hole portion 3a, bush hole portion 4a) (for example, housing body 3, bush 4 described later),
A movable valve member (for example, a movable valve member 5 to be described later) that operates as a propellant gas-phase valve element to the housing hole portion in conjunction with the stem while being guided in the inner peripheral surface of the housing. And having
The stem is
A movable range of the movable valve member with respect to the stem (for example, an upper annular top surface 1e and an outward lower annular step portion 1f described later) is formed in an outer peripheral surface portion between the stem hole portion and the lower outer peripheral surface. And when the stem is in the stationary mode position, the movable valve member is held at the lower position of the moving range, and when the stem is in the operation mode position, the movable valve member And a movement range setting section (for example, an upper annular top surface 1e, an outward lower annular step 1f, an upper annular taper surface 1g, and a lower annular taper surface 1h, which will be described later).
The housing is
Stopper portions (for example, an upper vertical rib portion 4b and an annular upright portion 3c described later) that are respectively formed above and below the housing hole and set the movable valve member at the uppermost position and the lowermost position thereof. Prepared,
The movable valve member is
A held portion (for example, an inwardly facing annular stepped portion 5c, an annular inclined surface 5d, a lower annular top surface 5e, a hanging inner peripheral surface portion 5f, which will be described later) that is selectively held at the lower position and the upper position,
The movement range setting unit
When the held portion moves between the lower position and the upper position with respect to the stem, an annular tapered surface (for example, an upper annular taper described later) that exhibits a relative elastic deformation guiding action with the held portion. Surface 1g, lower annular tapered surface 1h),
The stem and the movable valve member are
When returning from the operation mode set to the open state of each of the inflow valve and the outflow valve and the closed state of the propellant gas phase valve to the stationary mode of the opposite open / close state,
The movable valve member and the stem in the form of holding the held portion in the upper position are:
First, the inflow valve is closed, and the outflow valve and the propellant gas phase valve are both opened to change the propellant gas phase inside the container body (for example, a storage space area A described later). Flow into the injection port,
Subsequently, the movable valve member stops at the stopper portion (for example, the upper longitudinal rib portion 4b described later), and then only the stem further moves in the return direction to the stationary mode, and the held portion is moved to the lower portion. Set to the stationary mode held in the side position,
The thing of a structure aspect is used.
(2) In (1) above,
When transitioning from the stationary mode to the operating mode,
The movable valve member and the stem in the form of holding the held portion in the lower position are:
First, the propellant gas phase valve is closed to prevent the propellant gas phase inside the container body from flowing into the stem hole and the injection port from the housing hole,
Subsequently, the movable valve member stops at the stopper portion (for example, an annular upright portion 3c described later), and then only the stem further moves in the direction of transition to the operation mode, and the held portion is moved to the upper position. Set to the retained operating mode state,
The thing of a structure aspect is used.
(3) In the above (1) and (2),
The stem is
A passage portion (for example, a vertical groove portion 1k described later) that allows the contents to be released and the propellant gas phase component to pass from the upstream side to the downstream side of the movable valve member is formed in a part of the moving range setting portion. Was
The thing of a structure aspect is used.
( 4 ) In the above (1), (2), (3),
The housing is
A lower inner peripheral surface (for example, an inflow valve annular portion 3f described later) as the inflow valve element, an outer hole (for example, a housing main body hole 3a described later) as the housing hole, and the movable valve member A housing body (for example, a housing body 3 to be described later) having an annular standing portion (for example, an annular standing portion 3c to be described later) as a stopper portion set at the lower position;
The movable valve member is attached to the inside of the housing main body so as to contact and guide the inner hole portion (for example, a bush hole portion 4a described later) as the housing hole portion, and the movable valve member is at the uppermost position. A cylindrical portion (for example, a bush 4 described later) provided with an annular convex portion (for example, an upper vertical rib-shaped portion 4b described later) as a stopper portion to be set,
The thing of a structure aspect is used.
( 5 ) In the above ( 4 ),
The cylindrical part is
Held in a circumferential concave portion (for example, a circumferential concave portion 3b described later) outside the annular upright portion,
The thing of a structure aspect is used.

このような構成からなる噴射口詰まり防止機構および、当該噴射口詰まり防止機構を備えたエアゾール式製品を本発明の対象としている。   The injection port clogging prevention mechanism having such a configuration and an aerosol type product provided with the injection port clogging prevention mechanism are objects of the present invention.

本発明は以上の課題解決手段により、
(21)エアゾール式製品のアフタードロー対策に関する技術の豊富化を図り、
(22)アフタードロー発生防止の十全化を図る、
ことができる。
The present invention is based on the above problem solving means.
(21) We will enrich technology related to after-draw measures for aerosol products,
(22) Ensure prevention of after-draw
be able to.

噴射口に対する内容物詰まり防止機構の静止モード、すなわちハウジングに対する流入弁および流出弁が閉じ、噴射剤気相弁が開き、かつ、噴射剤気相弁構成要素の可動弁部材がステムに対して下側位置に保持された状態を示す説明図である。The stationary mode of the content clogging prevention mechanism for the injection port, that is, the inflow and outflow valves for the housing are closed, the propellant gas phase valve is opened, and the movable valve member of the propellant gas phase valve component is lowered with respect to the stem. It is explanatory drawing which shows the state hold | maintained at the side position. 図1の操作部を押下げて作動モードに移行させる際の前半段階、すなわち噴射剤気相弁が閉じ、流出弁が少なくとも完全な開までには変化せず、流入弁が閉じ、可動弁部材が下側位置に保持されたままステムと下方に連動する状態を示す説明図である。The first half of the time when the operation unit of FIG. 1 is pushed down to shift to the operation mode, that is, the propellant gas phase valve is closed, the outflow valve is not changed at least completely, the inflow valve is closed, and the movable valve member It is explanatory drawing which shows the state which interlock | cooperates below with a stem, hold | maintaining at a lower position. 図2に続く作動モード移行への後半段階、すなわち噴射剤気相弁が閉じ、流出弁および流入弁が開き、可動弁部材がハウジングにあたって停止し、ステムのみがさらに下動している状態を示す説明図である。FIG. 2 shows the latter half of the transition to the operation mode, that is, a state where the propellant gas phase valve is closed, the outflow valve and the inflow valve are opened, the movable valve member is stopped at the housing, and only the stem is further moved down. It is explanatory drawing. 図3に続く作動モード、すなわち図3の後半段階と同じく噴射剤気相弁が閉じ、流出弁および流入弁が開き、かつ、ステムも停止し、可動弁部材がステムに対して上側位置に保持された状態を示す説明図である。Operation mode following FIG. 3, that is, as in the latter half of FIG. 3, the propellant gas phase valve is closed, the outflow valve and the inflow valve are opened, the stem is also stopped, and the movable valve member is held in the upper position with respect to the stem. It is explanatory drawing which shows the state made. 押下げ操作解除により、静止モードに復帰させる際の前半段階、すなわち流入弁が閉じて噴射剤気相弁および流出弁がともに開くタイミング(=容器本体内部の噴射剤気相分が噴射剤気相弁および流出弁を介して噴射口へいたる流れ経路Cを確保するタイミング)を設定し、可動弁部材が上側位置に保持されたままステムと上方に連動する状態を示す説明図である。The first half of returning to the stationary mode by releasing the push-down operation, that is, the timing when the inflow valve is closed and both the propellant gas phase valve and the outflow valve are opened (= the propellant gas phase in the container body is the propellant gas phase) FIG. 6 is an explanatory diagram showing a state in which the flow path C leading to the injection port via the valve and the outflow valve is set, and the movable valve member is interlocked upward with the stem while being held at the upper position. 図5に続く静止モード移行への後半段階、すなわち噴射剤気相弁が開き、流出弁および流入弁が閉じ、可動弁部材がハウジングにあたって停止し、ステムのみがさらに上動している状態を示す説明図である。FIG. 5 shows the latter half of the transition to the stationary mode, that is, a state where the propellant gas phase valve is opened, the outflow valve and the inflow valve are closed, the movable valve member is stopped at the housing, and only the stem is further moved up. It is explanatory drawing.

図1〜図6を用いて本発明の実施形態を説明する。   Embodiments of the present invention will be described with reference to FIGS.

図1〜図6で用いるアルファベット付き参照番号の構成要素(例えばステム孔部1a)は原則として、当該参照番号の数字部分の構成要素(例えばステム1)の一部であることを示している。   The components with reference numbers with alphabets (for example, the stem hole portion 1a) used in FIGS. 1 to 6 indicate that they are part of the components (for example, the stem 1) of the numeral portions with the reference numbers in principle.

図1〜図6において、
Aは周知の容器本体内部における噴射剤気相分の収容空間域,
Bは内容物噴射状態の作動モードにおいて、容器本体の噴射内容物がハウジング内部から流出弁(ステム孔部)および噴射口などを経て外部空間域に放出されるときの内容物流れ経路(図4参照),
Cは作動モードから静止モードに復帰する際に、収容空間域Aの噴射剤気相分が、ともに開状態の噴射剤気相弁(ハウジング孔部)および流出弁(ステム孔部)を経て噴射口へと移動するときの噴射剤気相分流れ経路(図5参照),
Dは利用者の操作部への内容物放出操作に応じてステムがそれまでの静止モード位置から作動モード位置へシフトするときのステム移動方向(図2,図3参照),
Eは内容物放出操作の解除により、ステムがそれまでの作動モード位置からコイルスプリングの弾性作用で上方の静止モード位置へ復帰するときのステム移動方向(図5,図6参照),
をそれぞれ示している。
1 to 6,
A is a well-known space for the propellant gas phase inside the container body,
B is a content flow path in the operation mode of the content injection state when the injection content of the container body is discharged from the inside of the housing through the outflow valve (stem hole) and the injection port to the external space area (FIG. 4). reference),
When C returns from the operation mode to the stationary mode, the propellant gas phase in the accommodation space A is injected through both the open propellant gas phase valve (housing hole) and the outflow valve (stem hole). Propellant gas phase flow path when moving to the mouth (see Fig. 5),
D is the stem moving direction when the stem shifts from the stationary mode position to the operating mode position in accordance with the content discharge operation to the operation unit of the user (see FIGS. 2 and 3),
E is the direction of movement of the stem when the stem is returned from the previous operation mode position to the upper stationary mode position by the elastic action of the coil spring by releasing the contents discharge operation (see FIGS. 5 and 6),
Respectively.

また、
1は内容物噴射操作と連動した流出弁作用を呈し、かつ、内容物通過用の内部通路域を備えた鞘状のステム,
1aは当該ステムの上側周面部分に形成されて、後述のステムガスケット6との間で流出弁を構成するステム孔部,
1bはステム孔部1aおよび後述の噴射口2a(図3,図4参照)のそれぞれと連通する内容物通路域、
1cはステム孔部1aの下方周面部に形成されて、図1の静止モードのとき後述のステムガスケット6の内端側下面部分と当接する外向き上環状段部,
1dは外向き上環状段部1cを含む形でその直下に続く環凸状部,
1eは環凸状部1dの下面とのいわば兼用部分からなり、後述の可動弁部材5の当該ステムに対しての最上位置(図4,図5参照)を設定するための上環状天面(移動範囲設定部),
1fは上環状天面1eの下方周面部に形成され、後述の可動弁部材5の当該ステムに対しての最下位置(図1,図2参照)を設定するための外向きの下環状段部(移動範囲設定部),
1gは上環状天面1eと外向き下環状段部1fとの間の上下方向中間周面部に形成されて、後述の可動弁部材5を当該上環状天面との当接状態に保持し、かつ、当該可動弁部材が当該ステムに対して上下方向に強制駆動されるときのガイド作用を呈する下方への上り緩勾配の上環状テーパ面(移動範囲設定部),
1hは上環状テーパ面1gの直下部分に連続形成されて、後述の可動弁部材5を外向き下環状段部1fとの当接状態に保持し、かつ、当該可動弁部材が当該ステムに対して上下方向に強制駆動されるときのガイド作用を呈する下方への下り急勾配の下環状テーパ面(移動範囲設定部),
1jは外向き下環状段部1fの下方周面部に環天井面態様で形成されて、後述のコイルスプリング7の上端側を保持する上環状受け部,
1kは環凸状部1dの自下側部分から上環状受け部1jまでの間の周面部にその周方向の飛び飛びに形成されて、図3の作動モードでは流入弁からの噴射対象内容物がBの流れで通過し、かつ、図4の作動モードから静止モードへの復帰途中では噴射剤気相弁からの噴射剤気相分がCの流れで通過する縦溝状部(噴射対象内容物および噴射剤気相分の通路部分),
1mは当該ステムの下端側に形成されて流入弁作用を呈する小径円柱部(流入弁要素としての下側外周面),
1nは小径円柱部1mの直下側に形成されて流入弁作用を呈する大径円柱部(流入弁要素としての下側外周面),
をそれぞれ示している。
Also,
1 is a sheath-like stem that exhibits an outflow valve action in conjunction with the content injection operation, and has an internal passage area for passage of the content;
1a is a stem hole portion formed on the upper peripheral surface portion of the stem and constituting an outflow valve with a stem gasket 6 to be described later,
1b is a content passage area communicating with each of the stem hole portion 1a and the later-described injection port 2a (see FIGS. 3 and 4),
1c is formed on the lower peripheral surface portion of the stem hole portion 1a and is an outwardly upward annular step portion that comes into contact with the lower surface portion of the inner end side of the stem gasket 6 described later in the stationary mode of FIG.
1d is a ring-shaped convex portion that follows directly below the annular portion 1c that faces upward,
1e is a so-called portion that is combined with the lower surface of the ring-shaped convex portion 1d, and an upper annular top surface (see FIGS. 4 and 5) for setting the uppermost position (see FIGS. 4 and 5) of the movable valve member 5 described later with respect to the stem. Moving range setting section),
1f is formed on the lower peripheral surface portion of the upper annular top surface 1e, and is an outward lower annular stage for setting a lowermost position (see FIGS. 1 and 2) of a movable valve member 5 described later with respect to the stem. Part (movement range setting part),
1g is formed in the vertical intermediate peripheral surface portion between the upper annular top surface 1e and the outward lower annular step portion 1f, and holds a movable valve member 5 described later in contact with the upper annular top surface, And, the upper annular taper surface (moving range setting part) that has an upward gentle gradient that exhibits a guide action when the movable valve member is forcibly driven in the vertical direction with respect to the stem,
1h is formed continuously immediately below the upper annular tapered surface 1g to hold a movable valve member 5 described later in contact with the outwardly facing lower annular step portion 1f, and the movable valve member is in contact with the stem. The lower annular taper surface (moving range setting part) with a steep downward slope that exhibits a guide action when forcedly driven in the vertical direction
1j is an upper annular receiving portion that is formed in an annular ceiling surface form on the lower peripheral surface portion of the outward lower annular step portion 1f, and holds the upper end side of a coil spring 7 to be described later.
1k is formed on the circumferential surface portion between the lower portion of the ring-shaped convex portion 1d and the upper annular receiving portion 1j in the circumferential direction. In the operation mode of FIG. A vertical groove-like portion that passes through the flow of B and through which the propellant gas phase component from the propellant gas phase valve passes in the flow of C during the return from the operation mode of FIG. And propellant gas phase passage part),
1 m is a small-diameter cylindrical portion formed on the lower end side of the stem and exhibiting an inflow valve action (lower outer peripheral surface as an inflow valve element),
1n is a large-diameter cylindrical portion (lower outer peripheral surface as an inflow valve element) that is formed immediately below the small-diameter cylindrical portion 1m and exhibits an inflow valve action,
Respectively.

また、
2はステム1の下流側に取り付けられて、図1の静止モードから図3の作動モードへの内容物放出操作対象となる操作部,
2aは当該操作部の先端部分に形成された内容物放出用の噴射口(図3,図4参照),
をそれぞれ示している。
Also,
2 is an operation unit which is attached to the downstream side of the stem 1 and is a target for the content discharge operation from the stationary mode of FIG. 1 to the operation mode of FIG.
2a is a discharge port for discharging contents (see FIGS. 3 and 4) formed at the distal end portion of the operation section.
Respectively.

また、
3はステム1の下側部分を収容して、自内部空間域を容器本体からの噴射対象内容物が通過する筒状のハウジング本体(ハウジング),
3aは当該ハウジング本体の周面部分に形成されて、後述の可動弁部材5との間で噴射剤気相弁を構成するハウジング本体孔部(ハウジング孔部,外側孔部),
3bはハウジング本体孔部3aよりも下方のハウジング本体内周面部分に形成されて後述の可動弁部材5の下端側部分を係合保持する周方向凹状部,
3cは周方向凹状部3bの内側壁部分を兼ねて、後述の可動弁部材5の最下位置を画定する環状起立部(ストッパ部),
3dは当該ハウジング本体の内周面下端側部分に複数形成されて、それぞれに挟まれた形の上下方向空間域を内容物が通過する下縦リブ状部,
3eは下縦リブ状部3dの下端部分に内向きの段部態様で形成されて、後述のコイルスプリング7の下端側を保持する下環状受け部,
3fは下環状受け部3eよりも下方のハウジング本体内周面部分に形成されて、ステム1の小径円柱部1mおよび大径円柱部1nとの間で流入弁作用を呈する、下側内向きの流入弁環状部(流入弁要素としての下側内周面),
をそれぞれ示している。
Also,
3 is a cylindrical housing body (housing) that accommodates the lower portion of the stem 1 and through which the contents to be injected from the container body pass through the internal space.
3a is a housing body hole portion (housing hole portion, outer hole portion) that is formed in the peripheral surface portion of the housing body and constitutes a propellant gas phase valve with the movable valve member 5 described later,
3b is a circumferential concave portion formed on the inner peripheral surface portion of the housing body below the housing main body hole portion 3a to engage and hold the lower end side portion of the movable valve member 5 described later,
3c is an annular upright portion (stopper portion) that also serves as an inner wall portion of the circumferential concave portion 3b and demarcates the lowest position of the movable valve member 5 described later,
3d is a lower vertical rib-shaped portion formed in a plurality at the lower end portion of the inner peripheral surface of the housing body, and through which the contents pass through the vertical space area sandwiched between them.
3e is a lower annular receiving portion which is formed in an inward stepped portion at the lower end portion of the lower vertical rib-shaped portion 3d and holds the lower end side of a coil spring 7 which will be described later.
3f is formed on the inner peripheral surface portion of the housing body below the lower annular receiving portion 3e, and exhibits an inflow valve action between the small-diameter cylindrical portion 1m and the large-diameter cylindrical portion 1n of the stem 1. Inflow valve annulus (lower inner peripheral surface as inflow valve element),
Respectively.

また、
4は自下端側部分が周方向凹状部3bに案内保持され、かつ、ハウジング本体3の上側内周面に嵌合した状態で当該ハウジング本体と一体化している筒状のブッシュ(ハウジング,筒状部),
4aは当該ブッシュがハウジング本体3に取り付けられた状態でハウジング本体孔部3aとの対向部分に位置するブッシュ孔部(ハウジング孔部,内側孔部),
4bは当該ブッシュの上端側内周面部分に複数形成されて、それぞれの下面部分で後述の可動弁部材5の最上位置を画定する上縦リブ状部(ストッパ部,環凸状部),
をそれぞれ示している。
Also,
4 is a cylindrical bush (housing, cylindrical shape) whose lower end portion is guided and held by the circumferential concave portion 3b and is fitted to the upper inner peripheral surface of the housing main body 3. Part),
4a is a bush hole portion (housing hole portion, inner hole portion) located at a portion facing the housing main body hole portion 3a in a state where the bush is attached to the housing main body 3.
4b is formed in plural on the inner peripheral surface portion on the upper end side of the bush, and an upper vertical rib-shaped portion (stopper portion, ring-shaped convex portion) that demarcates the uppermost position of the movable valve member 5 described later on each lower surface portion,
Respectively.

また、
5はステム1とブッシュ4との環状空間域に配設され、ハウジング本体孔部3aおよびブッシュ孔部4aと協働して容器本体内部の噴射剤気相分への弁作用を呈する上下動可能な可動弁部材,
5aはブッシュ4の内周面に密接してシール作用を呈し、当該可動弁部材の最上位置のとき、自上端部分が上縦リブ状部4bの下面部分などに当接して保持される上側の逆スカート状部,
5bは逆スカート状部5aと同じくブッシュ4の内周面に密接してシール作用を呈し、当該可動弁部材の最下位置のとき、自下端部分が環状起立部3cに係合保持される下側のスカート状部,
5cは可動弁部材の内周面に形成されて、図3の作動モード、およびそこから図4の静止モードへのいわば復帰前半段階のとき、ステム1の上環状天面1eに係合保持される内向き環状段部(被保持部),
5dは内向き環状段部5cの内端部分から下方への連続態様で形成されて、図1の静止モード、およびそこから図2の作動モードへのいわば移行前半段階のとき、ステム1の下環状テーパ面1hと当接する内方下り傾斜の環状傾斜面(被保持部),
5eは環状傾斜面5dの下方の可動弁部材内周面に形成されて、図1の静止モード、およびそこから図2の作動モードへのいわば移行前半段階のとき、ステム1の外向き下環状段部1fと係合保持される下環状天面(被保持部),
5fは環状傾斜面5dの下端部分と下環状天面5eの内端部分とのあいだに連続形成された垂下内周面部(被保持部)
をそれぞれ示している。
Also,
5 is arranged in an annular space region between the stem 1 and the bush 4 and can be moved up and down to cooperate with the housing body hole 3a and the bush hole 4a to exert a valve action on the propellant gas phase inside the container body. Movable valve member,
5a is in close contact with the inner peripheral surface of the bush 4 and has a sealing action. When the movable valve member is at the uppermost position, the upper end portion of the movable valve member is in contact with and held on the lower surface portion of the upper vertical rib-shaped portion 4b. Reverse skirt,
5b is in close contact with the inner peripheral surface of the bush 4 in the same manner as the reverse skirt-shaped portion 5a and exhibits a sealing action. When the movable valve member is at the lowest position, its lower end is engaged and held by the annular upright portion 3c. Side skirt,
5c is formed on the inner peripheral surface of the movable valve member, and is engaged and held by the upper annular top surface 1e of the stem 1 in the first half of the return to the operation mode of FIG. 3 and the rest mode of FIG. Inward annular step (held part),
5d is formed in a continuous manner downward from the inner end portion of the inwardly-circular annular step 5c, and is below the stem 1 during the first half of the transition to the stationary mode of FIG. 1 and from there to the operation mode of FIG. An annular inclined surface (held portion) that is inwardly inclined to abut against the annular tapered surface 1h,
5e is formed on the inner peripheral surface of the movable valve member below the annular inclined surface 5d, and the stem 1 has an outward downward annular shape in the first half of the transition to the stationary mode of FIG. 1 and the operation mode of FIG. A lower annular top surface (held portion) to be engaged and held with the step portion 1f,
5f is a suspended inner peripheral surface portion (held portion) continuously formed between the lower end portion of the annular inclined surface 5d and the inner end portion of the lower annular top surface 5e.
Respectively.

また、
6はステム1の外周面に当接する形で配設されて、ステム孔部1aとの間で流出弁を構成するステムガスケット,
7はステム1の上環状受け部1jとハウジング本体3の下環状受け部3eとの間に配設され、当該ステムを上方向に付勢して静止モード位置に設定するためのコイルスプリング,
8はハウジング本体3を係合保持してその環状上端部分との間にステムガスケット6を挟持し、かつ、周知の容器本体(図示省略)の開口部に巻締め態様により取り付けられたマウンティングキャップ,
9はハウジング本体3の下端側筒状部に取り付けられた内容物通過用のチューブ,
をそれぞれ示している。
Also,
6 is a stem gasket which is disposed in contact with the outer peripheral surface of the stem 1 and constitutes an outflow valve with the stem hole 1a.
7 is a coil spring disposed between the upper annular receiving portion 1j of the stem 1 and the lower annular receiving portion 3e of the housing body 3, and biases the stem upward to set the stationary mode position.
8 is a mounting cap in which the housing main body 3 is engaged and held, the stem gasket 6 is sandwiched between the upper end portion of the housing main body 3 and attached to the opening of a well-known container main body (not shown) by a tightening manner;
9 is a tube for passing the contents attached to the lower cylindrical portion of the housing body 3;
Respectively.

ここで、ステム1,ハウジング本体3,ブッシュ4,可動弁部材5およびチューブ9はポリプロピレン,ポリエチレン,ポリアセタール,ナイロン,ポリブチレンテレフタレートなどからなるプラスチック製のものである。   Here, the stem 1, the housing body 3, the bush 4, the movable valve member 5 and the tube 9 are made of plastic made of polypropylene, polyethylene, polyacetal, nylon, polybutylene terephthalate or the like.

また、操作部2はプラスチック製,金属性のものであり、ステムガスケット6はゴム製のものであり、マウンティングキャップ8は金属性のものであり、コイルスプリング7は金属製,プラスチック製のものである。   The operation unit 2 is made of plastic and metal, the stem gasket 6 is made of rubber, the mounting cap 8 is made of metal, and the coil spring 7 is made of metal and plastic. is there.

なお、図示の噴射口詰まり防止機構の場合、流入弁はステム1の小径円柱部1m,大径円柱部1nおよびハウジング本体3の流入弁環状部3fで構成される。また、流出弁はステム孔部1aおよびステムガスケット6で構成され、噴射剤気相弁はハウジング本体孔部3a,ブッシュ孔部4aおよび可動弁部材5で構成されている。   In the illustrated injection port clogging prevention mechanism, the inflow valve is constituted by a small diameter cylindrical portion 1m, a large diameter cylindrical portion 1n of the stem 1, and an inflow valve annular portion 3f of the housing body 3. The outflow valve is constituted by a stem hole 1a and a stem gasket 6, and the propellant gas phase valve is constituted by a housing body hole 3a, a bush hole 4a and a movable valve member 5.

図示の噴射口詰まり防止機構の基本的特徴は以下(31)〜(36)のとおりである。   Basic features of the illustrated injection port clogging prevention mechanism are as follows (31) to (36).

(31)図1の静止モードでは、
ステム1および可動弁部材5がそれぞれ最上位置にあり、
可動弁部材5の環状傾斜面5d,下環状天面5eの部分がステム1の下環状テーパ面1hおよび外向き下環状段部1fに係合し、
ハウジング本体3の内部空間域に対する流入弁および流出弁がともに閉じて、噴射剤気相弁が開いた状態に設定される。
(31) In the still mode of Fig. 1,
The stem 1 and the movable valve member 5 are in their uppermost positions,
The portions of the annular inclined surface 5d and the lower annular top surface 5e of the movable valve member 5 are engaged with the lower annular tapered surface 1h and the outward lower annular step 1f of the stem 1,
Both the inflow valve and the outflow valve for the internal space region of the housing body 3 are closed, and the propellant gas phase valve is opened.

(32)図2の作動モードへの移行前半段階では、
ステム1および可動弁部材5が図1の保持状態のまま一体となって下動し、
この下動のとき、噴射剤気相弁が略閉じてから流出弁が開き始める。
流入弁は閉じたままである。
(32) In the first half of the transition to the operation mode of FIG.
The stem 1 and the movable valve member 5 are integrally moved downward while being held in FIG.
During this downward movement, the outflow valve begins to open after the propellant gas phase valve is substantially closed.
The inflow valve remains closed.

(33)図3の作動モードへの移行後半段階では、
可動弁部材5がハウジング本体3の環状起立部3cの上端部分に当たって停止し、
この可動弁部材停止後も、ステム1は下環状テーパ面1hおよび上環状テーパ面1gが可動弁部材5の垂下内周面部5fに乗り上げる形で相対的に弾性変形しながら下動し、
噴射剤気相弁が閉じたまま流入弁も開き始め、容器本体の噴射対象内容物の外部空間域への放出動作が始まる。
(33) In the latter half of the transition to the operation mode in FIG.
The movable valve member 5 hits the upper end portion of the annular upright portion 3c of the housing body 3 and stops.
Even after the movable valve member stops, the stem 1 moves downward while being relatively elastically deformed in such a manner that the lower annular tapered surface 1h and the upper annular tapered surface 1g ride on the hanging inner peripheral surface portion 5f of the movable valve member 5,
The inflow valve begins to open while the propellant gas phase valve is closed, and the discharge operation of the contents to be injected into the external space of the container body begins.

(34)図4の作動モードでは、
ステム1および可動弁部材5がそれぞれ最下位置にあり、
可動弁部材5の内向き環状段部5c,下環状天面5eの部分がステム1の上環状天面1eおよび上環状テーパ面1gに係合し、
噴射剤気相弁が閉じたまま、ハウジング本体3の内部空間域に対する流入弁および流出弁がともに開いた状態に設定され、
容器本体の噴射対象内容物がこの開状態の流入弁および流出弁を介して噴射口2aから外部空間域に放出される。
(34) In the operation mode of FIG.
The stem 1 and the movable valve member 5 are in the lowest position,
The inward annular step 5c and the lower annular top surface 5e of the movable valve member 5 are engaged with the upper annular top surface 1e and the upper annular tapered surface 1g of the stem 1,
While the propellant gas phase valve is closed, both the inflow valve and the outflow valve for the internal space region of the housing body 3 are set to be open,
The injection target contents of the container body are discharged from the injection port 2a to the external space region through the opened inflow valve and outflow valve.

(35)図5の静止モードへの復帰前半段階では、
ステム1および可動弁部材5が図4の保持状態のまま一体となって上動し、
この上動のとき、流入弁が閉じ、かつ、噴射剤気相弁および流出弁がともに開いた状態が確保され、
容器本体内の噴射剤気相分が、この開状態の噴射剤気相弁および流出弁を介して噴射口2aへと流れ、当該噴射口やその周辺での残留内容物を外部空間域に流出させる。
(35) In the first half of the return to the stationary mode in FIG.
The stem 1 and the movable valve member 5 are moved upward together in the holding state of FIG.
During this upward movement, it is ensured that the inflow valve is closed and the propellant gas phase valve and the outflow valve are both open,
The propellant gas phase in the container body flows to the jet port 2a through the propellant gas phase valve and the outflow valve in the open state, and the residual content at the jet port and its periphery flows out to the external space area. Let

(36)図6の静止モードへの復帰後半段階では、
可動弁部材5がブッシュ4の上縦リブ状部4bの下端部分に当たって停止し、
この可動弁部材停止後も、ステム1は上環状テーパ面1gが可動弁部材5の垂下内周面部5fなどに乗り上げる形で相対的に弾性変形しながら上動し、
最終的に、ステム1が図1の静止モードの位置関係状態へと復帰する
(36) In the latter half of the return to the stationary mode in FIG.
The movable valve member 5 hits the lower end portion of the upper vertical rib portion 4b of the bush 4 and stops.
Even after the movable valve member is stopped, the stem 1 moves upward while relatively elastically deforming so that the upper annular tapered surface 1g rides on the suspended inner peripheral surface portion 5f of the movable valve member 5, etc.
Eventually, the stem 1 returns to the stationary mode positional relationship of FIG.

このように、図1の静止モードと図4の作動モードではステム1に対する可動弁部材5の上下方向(ステム移動方向)の位置が異なっている。   As described above, the position of the movable valve member 5 in the vertical direction (stem movement direction) with respect to the stem 1 is different between the stationary mode of FIG. 1 and the operation mode of FIG.

すなわち、可動弁部材5が、静止モードのときはステム1の外向き下環状段部1fに当接し、作動モードのときは当該下環状段部よりもステム孔部1aに近い上環状天面1eに当接している。   That is, when the movable valve member 5 is in the stationary mode, it contacts the outwardly facing lower annular step 1f of the stem 1, and in the operation mode, the upper annular top surface 1e closer to the stem hole 1a than the lower annular step. Abut.

換言すれば、ステム孔部1aと可動弁部材5との上下方向間隔を、静止モードでは長く、作動モードでは短くなるように設定している。   In other words, the vertical interval between the stem hole 1a and the movable valve member 5 is set to be long in the stationary mode and short in the operation mode.

また、静止モードにおいて、ステム孔部1aはステムガスケット6の上方位置に設定され、かつ、可動弁部材5はブッシュ孔部4aおよびハウジング本体孔部3aの上方位置に設定される。   In the stationary mode, the stem hole 1a is set at a position above the stem gasket 6, and the movable valve member 5 is set at a position above the bush hole 4a and the housing body hole 3a.

これらの設定態様により、
(41)図1の静止モードの操作部2が下方へ押圧操作されると、図2に示すように概略、先ず、流入弁および流出弁が略それまでと同じく閉じたまま、ブッシュ孔部4aおよびハウジング本体孔部3aが可動弁部材5でシャットオフされ、すなわち噴射剤気相弁が閉状態にシフトし、
(42)逆に利用者の押圧操作が解除されて図4の作動モードから図1の静止モードへ復帰するときには、図5に示すように概略、先ず、流入弁が閉状態にシフトして流出弁がそれまでと同じく開いたまま、噴射剤気相弁も開状態にシフトする、
ことになる。
With these settings,
(41) When the operation unit 2 in the stationary mode shown in FIG. 1 is pressed downward, as shown in FIG. 2, first, the bush hole 4a is closed with the inflow valve and the outflow valve substantially closed as before. And the housing body hole 3a is shut off by the movable valve member 5, that is, the propellant gas phase valve is shifted to the closed state,
(42) On the contrary, when the user's pressing operation is released and the operation mode of FIG. 4 returns to the stationary mode of FIG. 1, as shown in FIG. The propellant gas phase valve shifts to the open state with the valve still open as before,
It will be.

上記(41)の流出弁の開閉変化に対する噴射剤気相弁の優先的な閉状態シフトにより、容器本体の噴射剤気相分が不用意に噴射口2aから外部空間域に放出されるのを極力阻止している。   Due to the preferential closing state shift of the propellant gas phase valve with respect to the opening / closing change of the outflow valve in (41) above, the propellant gas phase component of the container body is inadvertently released from the injection port 2a to the external space area. It is blocking as much as possible.

また、上記(42)の流出弁の開閉変化に対する噴射剤気相弁の優先的な閉状態シフトにより、操作部2に対する内容物放出用の押圧操作が解除された直後の間、容器本体の噴射剤気相分が開状態の噴射剤気相弁および流出弁を介して噴射口へと送られる。   In addition, the injection of the container body immediately after the pressing operation for releasing the contents to the operation unit 2 is released by the preferential closing state shift of the propellant gas phase valve with respect to the opening / closing change of the outflow valve of (42). The gas phase component is sent to the injection port through the propellant gas phase valve and the outflow valve in the open state.

この噴射口へと送られる噴射剤気相分の噴射作用により、当該噴射口およびその近くの残留内容物が外部空間域へと放出され、噴射口詰まりが格段に改善される。   Due to the jetting action of the propellant gas phase sent to the jetting port, the jetting port and the residual contents in the vicinity thereof are released to the external space region, and the plugging of the jetting port is remarkably improved.

上述したように、ステム1は、コイルスプリング7の弾性力により上方に付勢されているので、内容物放出用の押圧操作にともない当該弾性力に抗しながら下動し、押圧操作の解除により上動する。   As described above, since the stem 1 is biased upward by the elastic force of the coil spring 7, the stem 1 moves downward while resisting the elastic force in accordance with the pressing operation for releasing the contents, and by releasing the pressing operation. Move up.

ステム1は図1の静止モードのときその最上位置に設定される。
これは、ステム1の外向き下環状段部1fが、ハウジング本体3と嵌合状態のブッシュ4の上縦リブ状部4bに保持された可動弁部材5の下環状天面5eと係合しているからである。
The stem 1 is set to its uppermost position in the stationary mode of FIG.
This is because the outward lower annular step portion 1f of the stem 1 is engaged with the lower annular top surface 5e of the movable valve member 5 held by the upper longitudinal rib portion 4b of the bush 4 fitted to the housing body 3. Because.

図1の噴射口詰まり防止機構の静止モードのとき、流入弁および流出弁はともに閉じ、噴射剤気相弁は開いている。このとき容器本体内容物は勿論外部空間域に放出されていない。   When the injection port clogging prevention mechanism of FIG. 1 is in the stationary mode, both the inflow valve and the outflow valve are closed and the propellant gas phase valve is open. At this time, the contents of the container body are of course not discharged to the external space.

図1に続く図2の作動モードへの移行前半段階のとき、流入弁は閉じたままで、流出弁は少し開き、噴射剤気相弁は略閉状態へとシフトしている。   In the first half of the transition to the operation mode of FIG. 2 following FIG. 1, the inflow valve remains closed, the outflow valve opens slightly, and the propellant gas phase valve shifts to a substantially closed state.

ここで噴射剤気相弁が閉状態へシフトするのは、可動弁部材5の逆スカート状部5aおよびスカート状部5bがブッシュ孔部4aを跨いだ状態でブッシュ内周面へのシール作用を呈するからである。このシール作用により、ブッシュ孔部4aおよびハウジング本体孔部3aがハウジング内部空間域からシャットオフされる。このときも容器本体内容物は外部空間域に放出されない。   Here, the propellant gas phase valve shifts to the closed state because the reverse skirt-like portion 5a and the skirt-like portion 5b of the movable valve member 5 straddle the bush hole portion 4a and seal the bushing inner peripheral surface. It is because it presents. By this sealing action, the bush hole 4a and the housing body hole 3a are shut off from the housing internal space. Also at this time, the contents of the container body are not released to the external space.

図2に続く図3の作動モードへの移行後半段階のとき、流入弁および流出弁はともに開状態へとシフトし、噴射剤気相弁は閉じたままである。このとき容器本体の内容物は流入弁および流出弁を介して外部空間域に放出され始める。   In the latter half of the transition to the operation mode of FIG. 3 following FIG. 2, both the inflow valve and the outflow valve are shifted to the open state, and the propellant gas phase valve remains closed. At this time, the contents of the container body begin to be released to the external space through the inflow valve and the outflow valve.

ここで、流入弁が開状態へシフトするのは、ハウジング本体3の流入弁環状部3fの対向相手がそれまでの大径円柱部1nから小径円柱部1mへといわば交代したためである。   Here, the reason why the inflow valve is shifted to the open state is that the opposing counterpart of the inflow valve annular portion 3f of the housing body 3 is changed from the large-diameter cylindrical portion 1n to the small-diameter cylindrical portion 1m.

また、流出弁が開状態にシフトするのは、ステム孔部1aがステムガスケット6の下方位置まで移動するからである。   The reason why the outflow valve shifts to the open state is that the stem hole 1a moves to a position below the stem gasket 6.

図3の内容物の放出経路は、「容器本体内部空間域−チューブ9−流入弁−ハウジング本体3の内部下方空間域−縦溝状部1k−ハウジング本体3・ブッシュ4の内部上方空間域−ステム孔部1a−内容物通路域1b−噴射口2a」となる。   The discharge path of the contents in FIG. 3 is: “Inner space area of the container body—Tube 9—Inlet valve—Inner lower space area of the housing body 3—Vertical groove portion 1k—Inner upper space area of the housing body 3 / bush 4— Stem hole portion 1a-content passage area 1b-injection port 2a ".

図3に続く図4の作動モードのとき、流入弁および流出弁はともに十分開き、噴射剤気相弁は閉じたままである。このとき容器本体の内容物は流入弁および流出弁を介して流れ経路Bで外部空間域に放出される。その経路自体は図3の場合と同じである。   In the operating mode of FIG. 4 following FIG. 3, both the inflow and outflow valves are fully open and the propellant gas phase valve remains closed. At this time, the contents of the container main body are discharged to the external space area in the flow path B through the inflow valve and the outflow valve. The route itself is the same as in FIG.

図4に続く図5の静止モードへの復帰前半段階のとき、流入弁は閉状態へシフトし、流出弁は開いたままで、噴射剤気相弁は開状態へとシフトする。   In the first half of the return to the stationary mode of FIG. 5 following FIG. 4, the inflow valve shifts to the closed state, the outflow valve remains open, and the propellant gas phase valve shifts to the open state.

ここで、流入弁が閉状態へシフトするのは、ハウジング本体3の流入弁環状部3fの対向相手がそれまでの小径円柱部1mから大径円柱部1nへと交代したためである。   Here, the reason why the inflow valve is shifted to the closed state is that the opposing counterpart of the inflow valve annular portion 3f of the housing body 3 is changed from the small diameter cylindrical portion 1m to the large diameter cylindrical portion 1n.

また、噴射剤気相弁が開状態へとシフトするのは、可動弁部材5の下側のスカート状部5bがブッシュ孔部4aの上方位置に移動したからである。   The reason why the propellant gas phase valve shifts to the open state is that the lower skirt-like portion 5b of the movable valve member 5 has moved to a position above the bush hole portion 4a.

この静止モードへの復帰前半段階のとき、容器本体中の収容空間域Aの噴射剤気相分が、ともに開状態の噴射剤気相弁および流出弁を介して「ハウジング内部空間域−ステム孔部1a−内容物通路域1b」の流れ経路Cにより噴射口2aへと供給される。   In the first half of the return to the stationary mode, the propellant gas phase component in the storage space area A in the container body passes through the propellant gas phase valve and the outflow valve, both of which are in the open state. It is supplied to the injection port 2a by the flow path C of "part 1a-content passage area 1b".

この噴射口2aに流入した噴射剤気相弁の作用で、上述のように当該噴射口およびその近くの残留内容物が外部空間域へと放出される。   As a result of the action of the propellant gas phase valve that has flowed into the injection port 2a, the injection port and the residual content in the vicinity thereof are discharged into the external space as described above.

図5に続く図6の静止モードへの復帰後半段階のとき、流入弁は閉じたままであり、流出弁は閉状態へとシフトし、噴射剤気相弁は開いたままである。すなわち、これら各弁の開閉状態は図1の静止モードのそれと同じである。このとき容器本体の内容物は勿論外部空間域に放出されない。   In the latter half of the return to the stationary mode of FIG. 6 following FIG. 5, the inflow valve remains closed, the outflow valve shifts to the closed state, and the propellant gas phase valve remains open. That is, the open / close state of each valve is the same as that in the stationary mode of FIG. At this time, the contents of the container body are of course not discharged to the external space.

ここで、流出弁が閉状態へとシフトするのは、ステム孔部1aがステムガスケット6の位置以上まで移動するからである。   Here, the reason why the outflow valve shifts to the closed state is that the stem hole portion 1a moves to the position of the stem gasket 6 or more.

本発明が以上の実施形態に限定されないことは勿論であって、例えば、
(51)図示の操作部に代えて押下げ回動タイプの操作部を用いる
(52)ハウジング本体3とブッシュ4とを単一部材として作成する、
(53)可動弁部材5の上流側と下流側との間に形成された噴射対象内容物および噴射剤の通路部分(縦溝状部1k)を可動弁部材に形成する、
(54)図2の作動モードへの移行前半段階における流入弁と噴射剤気相弁との相対位置関係として、噴射剤気相弁が完全な閉状態へ移行しきっていない時点で流入弁がわずかに開くような状況も含める、
(55)図示の噴射口詰まり防止機構の各構成要素間の凹状部とそれに対応した凸状部との形状関係を凹凸逆にする、
ようにしてもよい。
Of course, the present invention is not limited to the above-described embodiments.
(51) A push-down rotation type operation unit is used instead of the illustrated operation unit.
(52) The housing body 3 and the bush 4 are made as a single member.
(53) Form the injection target contents and the propellant passage portion (vertical groove portion 1k) formed between the upstream side and the downstream side of the movable valve member 5 in the movable valve member.
(54) As the relative positional relationship between the inflow valve and the propellant gas phase valve in the first half of the transition to the operation mode in FIG. 2, the inflow valve is slightly changed when the propellant gas phase valve has not completely shifted to the closed state. Including situations like
(55) Reversing the shape relationship between the concave portion between each component of the illustrated injection port clogging prevention mechanism and the corresponding convex portion,
You may do it.

本発明が適用されるエアゾール式製品としては、洗浄剤,清掃剤,制汗剤,冷却剤,筋肉消炎剤,ヘアスタイリング剤,ヘアトリートメント剤,染毛剤,育毛剤,化粧品,シェービングフォーム,食品,液滴状のもの(ビタミンなど),医薬品,医薬部外品,塗料,園芸用剤,忌避剤(殺虫剤),クリーナー,消臭剤,洗濯のり,ウレタンフォーム,消火器,接着剤,潤滑剤などの各種用途のものがある。   Aerosol products to which the present invention is applied include cleaning agents, cleaning agents, antiperspirants, cooling agents, muscle anti-inflammatory agents, hair styling agents, hair treatment agents, hair dyes, hair restorers, cosmetics, shaving foams, foods , Droplets (such as vitamins), pharmaceuticals, quasi drugs, paints, gardening agents, repellents (insecticides), cleaners, deodorants, laundry glue, urethane foam, fire extinguishers, adhesives, lubrication There are various uses such as agents.

容器本体に収容される内容物としては、液状,クリーム状,ゲル状など種々の形態のものを用いる。内容物に配合される成分は例えば、粉状物,油成分,アルコール類,界面活性剤,高分子化合物,各用途に応じた有効成分,水などである。   As the contents stored in the container body, various forms such as liquid, cream and gel are used. Ingredients blended in the contents are, for example, powders, oil ingredients, alcohols, surfactants, polymer compounds, active ingredients according to each application, water, and the like.

粉状物としては、金属塩類粉末,無機物粉末や樹脂粉末などを用いる。例えば、タルク,カオリン,アルミニウムヒドロキシクロライド(アルミ塩),アルギン酸カルシウム,金粉,銀粉,雲母,炭酸塩,硫酸バリウム,セルロース,これらの混合物などを用いる。   As the powder, metal salt powder, inorganic powder, resin powder, or the like is used. For example, talc, kaolin, aluminum hydroxychloride (aluminum salt), calcium alginate, gold powder, silver powder, mica, carbonate, barium sulfate, cellulose, and a mixture thereof are used.

油成分としては、シリコーン油,パーム油,ユーカリ油,ツバキ油,オリーブ油,ホホバ油,パラフィン油,ミリスチン酸,パルミチン酸,ステアリン酸,リノール酸,リノレン酸などを用いる。   As the oil component, silicone oil, palm oil, eucalyptus oil, camellia oil, olive oil, jojoba oil, paraffin oil, myristic acid, palmitic acid, stearic acid, linoleic acid, linolenic acid and the like are used.

アルコール類としては、エタノールなどの1価の低級アルコール,ラウリルアルコールなどの1価の高級アルコール,エチレングリコール,グリセリン,1,3−ブチレングリコールなどの多価アルコールなどを用いる。   Examples of the alcohol include monovalent lower alcohols such as ethanol, monovalent higher alcohols such as lauryl alcohol, and polyhydric alcohols such as ethylene glycol, glycerin, and 1,3-butylene glycol.

界面活性剤としては、ラウリル硫酸ナトリウムなどのアニオン性界面活性剤、ポリオキシエチレンオレイルエーテルなどの非イオン性界面活性剤、ラウリルジメチルアミノ酢酸ベタインなどの両性界面活性剤、塩化アルキルトリメチルアンモニウムなどのカチオン性界面活性剤などを用いる。   Surfactants include anionic surfactants such as sodium lauryl sulfate, nonionic surfactants such as polyoxyethylene oleyl ether, amphoteric surfactants such as lauryldimethylaminoacetic acid betaine, and cations such as alkyltrimethylammonium chloride. A surfactant is used.

高分子化合物としては、ヒドロキシエチルセルロース,メチルセルロース,ゼラチン,デンプン,カゼイン,キサンタンガム,カルボキシビニルポリマーなどを用いる。   As the polymer compound, hydroxyethyl cellulose, methyl cellulose, gelatin, starch, casein, xanthan gum, carboxyvinyl polymer, or the like is used.

各用途に応じた有効成分としては、サリチル酸メチル,インドメタシンなどの消炎鎮痛剤、安息香酸ナトリウム,クレゾールなどの除菌剤、ピレスロイド,ジエチルトルアミドなどの害虫忌避剤、パラフェノールスルホン酸亜鉛などの制汗剤、カンフル,メントールなどの清涼剤、エフェドリン,アドレナリンなどの抗喘息薬、スクラロース,アスパルテームなどの甘味料、エポキシ樹脂,ウレタンなどの接着剤や塗料、パラフェニレンジアミン,アミノフェノールなどの染料,過酸化水素水などの酸化剤、リン酸二水素アンモニウム,炭酸水素ナトリウム・カリウムなどの消火剤などを用いる。   Active ingredients according to each application include anti-inflammatory analgesics such as methyl salicylate and indomethacin, antibacterial agents such as sodium benzoate and cresol, insect repellents such as pyrethroid and diethyltoluamide, and zinc paraphenolsulfonate. Sweats, camphor, menthol and other refreshing agents, ephedrine, adrenaline and other anti-asthma drugs, sucralose, aspartame and other sweeteners, epoxy resins, urethane and other adhesives and paints, paraphenylenediamine, aminophenol and other dyes, Use oxidizing agents such as hydrogen oxide water, fire extinguishing agents such as ammonium dihydrogen phosphate, sodium hydrogen carbonate, and potassium.

さらに、上記内容物以外の、懸濁剤,紫外線吸収剤,乳化剤,保湿剤,酸化防止剤、金属イオン封鎖剤なども用いることができる。   Further, other than the above-mentioned contents, suspending agents, ultraviolet absorbers, emulsifiers, humectants, antioxidants, sequestering agents, etc. can be used.

エアゾール式製品における内容物噴射用ガスとしては、炭酸ガス,窒素ガス,圧縮空気,酸素ガス,希ガス,これらの混合ガスなどの圧縮ガスや、液化石油ガス,ジメチルエーテル,フロロカーボンなどの液化ガスを用いる。   As gas for injecting contents in aerosol type products, compressed gas such as carbon dioxide, nitrogen gas, compressed air, oxygen gas, rare gas, and mixed gas thereof, and liquefied gas such as liquefied petroleum gas, dimethyl ether, and fluorocarbon are used. .

1:鞘状のステム
1a:ステム孔部
1b:内容物通路域
1c:外向き上環状段部
1d:環凸状部
1e:上環状天面
1f:外向き下環状段部
1g:上環状テーパ面
1h:下環状テーパ面
1j:上環状受け部
1k:縦溝状部
1m:小径円柱部
1n:大径円柱部
1: Sheath-like stem 1a: Stem hole portion 1b: Content passage area 1c: Outwardly upward annular step portion 1d: Ring convex portion 1e: Upper annular top surface 1f: Outward downward annular step portion 1g: Upper annular taper Surface 1h: Lower annular tapered surface 1j: Upper annular receiving portion 1k: Vertical groove-shaped portion 1m: Small diameter cylindrical portion 1n: Large diameter cylindrical portion

2:操作部
2a:噴射口(図3,図4参照)
3:ハウジング本体
3a:ハウジング本体孔部
3b:周方向凹状部
3c:環状起立部
3d:下縦リブ状部
3e:下環状受け部
3f:流入弁環状部
2: Operation unit 2a: injection port (see FIGS. 3 and 4)
3: Housing main body 3a: Housing main body hole 3b: Circumferential concave portion 3c: Annular standing portion 3d: Lower vertical rib-shaped portion 3e: Lower annular receiving portion 3f: Inlet valve annular portion

4:筒状のブッシュ
4a:ブッシュ孔部
4b:上縦リブ状部
5:可動弁部材
5a:逆スカート状部
5b:スカート状部
5c:内向き環状段部
5d:環状傾斜面
5e:下環状天面
5f:垂下内周面部
4: Cylindrical bush 4a: Bush hole 4b: Upper vertical rib 5: Movable valve member 5a: Reverse skirt 5b: Skirt 5c: Inward annular step 5d: Annular inclined surface 5e: Lower annular Top surface 5f: hanging inner peripheral surface

6:ステムガスケット
7:コイルスプリング
8:マウンティングキャップ
9:チューブ
6: Stem gasket 7: Coil spring 8: Mounting cap 9: Tube

Claims (6)

エアゾール式製品の作動モード設定操作の際、噴射剤気相分の作用で、噴射口やその近くの通路部の残留内容物を外部空間域に放出する噴射口詰まり防止機構において、
前記噴射口に連通する内容物通路域、流出弁要素としてのステム孔部および流入弁要素としての下側外周面を備えたステムと、
作動モードのとき前記ステム孔部に通じる内部空間域、前記流入弁要素としての下側内周面および噴射剤気相弁要素としてのハウジング孔部を備えたハウジングと、
前記内部空間域に配設されてハウジング内周面に案内されながら前記ステムと連動し、前記ハウジング孔部への噴射剤気相弁要素として作動する可動弁部材と、を有し、
前記ステムは、
前記ステム孔部と前記下側外周面との間の外周面部分に形成されて、前記可動弁部材の当該ステムに対する移動範囲を設定し、かつ、当該ステムが静止モード位置のとき当該可動弁部材を当該移動範囲の下側位置に保持して、当該ステムが作動モード位置のとき当該可動弁部材を当該移動範囲の上側位置に保持する移動範囲設定部を備え、
前記ハウジングは、
前記ハウジング孔部の上方,下方それぞれに形成されて、前記可動弁部材をその最上位置と最下位置とにそれぞれ設定するストッパ部を備え、
前記可動弁部材は、
前記下側位置および前記上側位置に選択的に保持される被保持部を備え、
前記移動範囲設定部は、
前記被保持部が前記ステムに対し前記下側位置と前記上側位置との間で移動するとき、当該被保持部との相対的な弾性変形案内作用を示す環状テーパ面を備え、
前記ステムおよび前記可動弁部材が、
前記流入弁および前記流出弁それぞれの開状態ならびに前記噴射剤気相弁の閉状態に設定されている作動モードから、その逆の開閉状態の静止モードへ復帰するとき、
前記被保持部を前記上側位置に保持したかたちの当該可動弁部材および当該ステムは、
先ず、当該流入弁が閉じ、かつ、当該流出弁および当該噴射剤気相弁がともに開いた状態に変化して、容器本体内部の前記噴射剤気相分を前記噴射口へと流入させ、
続いて当該可動弁部材が前記ストッパ部にあたって停止し、その後、当該ステムのみがさらに静止モードへの復帰方向に移動して、当該被保持部が前記下側位置に保持された静止モードの状態に設定される、
ことを特徴とする噴射口詰まり防止機構。
In the operation mode setting operation of the aerosol type product, in the injection port clogging prevention mechanism that discharges the residual contents of the injection port and the passage part nearby to the external space area by the action of the gas phase of the propellant,
A stem having a content passage area communicating with the injection port, a stem hole as an outflow valve element, and a lower outer peripheral surface as an inflow valve element;
A housing provided with an internal space that communicates with the stem hole when in operation mode, a lower inner peripheral surface as the inflow valve element, and a housing hole as a propellant gas phase valve element;
A movable valve member that operates as a propellant gas phase valve element to the housing hole portion in conjunction with the stem while being arranged in the inner space region and guided to the inner peripheral surface of the housing,
The stem is
The movable valve member is formed in an outer peripheral surface portion between the stem hole portion and the lower outer peripheral surface to set a movement range of the movable valve member with respect to the stem , and when the stem is in a stationary mode position Holding the movable valve member at the lower position of the movement range, and holding the movable valve member at the upper position of the movement range when the stem is in the operation mode position,
The housing is
It is formed respectively above and below the housing hole, and includes a stopper portion that sets the movable valve member at its uppermost position and lowermost position,
The movable valve member is
A held portion that is selectively held at the lower position and the upper position;
The movement range setting unit
When the held portion moves between the lower position and the upper position with respect to the stem, an annular tapered surface showing a relative elastic deformation guide action with the held portion,
The stem and the movable valve member are
When returning from the operation mode set to the open state of each of the inflow valve and the outflow valve and the closed state of the propellant gas phase valve to the stationary mode of the opposite open / close state,
The movable valve member and the stem in the form of holding the held portion in the upper position are:
First, the inflow valve is closed, and the outflow valve and the propellant gas phase valve are both opened, and the propellant gas phase inside the container body is caused to flow into the injection port.
Subsequently, the movable valve member stops at the stopper portion, and then only the stem further moves in the return direction to the stationary mode, so that the held portion is held in the lower position. Set,
An injection port clogging prevention mechanism characterized by that.
前記静止モードから前記作動モードへ移行するとき、
前記被保持部を前記下側位置に保持したかたちの当該可動弁部材および前記ステムは、
先ず、前記噴射剤気相弁が閉じて、容器本体内部の前記噴射剤気相分が前記ハウジング孔部から前記ステム孔部および前記噴射口へと流入するのを抑え、
続いて当該可動弁部材が前記ストッパ部にあたって停止し、その後、当該ステムのみがさらに作動モードへの移行方向に移動して、当該被保持部が前記上側位置に保持された作動モードの状態に設定される、
ことを特徴とする請求項1記載の噴射口詰まり防止機構。
When transitioning from the stationary mode to the operating mode,
The movable valve member and the stem in the form of holding the held portion in the lower position are:
First, the propellant gas phase valve is closed to prevent the propellant gas phase inside the container body from flowing into the stem hole and the injection port from the housing hole,
Subsequently, the movable valve member stops at the stopper portion, and then only the stem further moves in the direction of transition to the operation mode, and the held portion is set in the operation mode state held at the upper position. To be
The injection port clogging prevention mechanism according to claim 1.
前記ステムは、
前記移動範囲設定部の一部に、前記可動弁部材の上流側から下流側へと放出対象内容物や前記噴射剤気相分を通過させる通路部分が形成されたものである、
ことを特徴とする請求項1または2記載の噴射口詰まり防止機構。
The stem is
A part of the movement range setting part is formed with a passage part through which the contents to be released and the propellant gas phase component pass from the upstream side to the downstream side of the movable valve member.
The injection port clogging prevention mechanism according to claim 1 or 2 .
前記ハウジングは、
前記流入弁要素としての下側内周面,前記ハウジング孔部としての外側孔部、および前記可動弁部材を前記最下位置に設定するストッパ部としての環状起立部を備えたハウジング本体と、
前記可動弁部材が当接して案内される形で当該ハウジング本体の内側に取り付けられて、前記ハウジング孔部としての内側孔部、および当該可動弁部材を前記最上位置に設定するストッパ部としての環凸状部を備えた筒状部と、からなっている、
ことを特徴とする請求項1乃至のいずれかに記載の噴射口詰まり防止機構。
The housing is
A housing body including a lower inner peripheral surface as the inflow valve element, an outer hole as the housing hole, and an annular upright portion as a stopper for setting the movable valve member at the lowest position;
The movable valve member is attached to the inside of the housing body in such a manner that the movable valve member is in contact with and guided, and an inner hole as the housing hole and a ring as a stopper for setting the movable valve member at the uppermost position. It consists of a cylindrical part with a convex part,
The injection port clogging prevention mechanism according to any one of claims 1 to 3 .
前記筒状部は、
前記環状起立部の外側の周方向凹状部に保持されている、
ことを特徴とする請求項記載の噴射口詰まり防止機構。
The cylindrical part is
It is held in the circumferential concave portion outside the annular upright portion,
The injection port clogging prevention mechanism according to claim 4 .
請求項1乃至請求項のいずれかに記載の噴射口詰まり防止機構を備え、かつ、噴射剤および内容物を収容した、
ことを特徴とするエアゾール式製品。
The injection port clogging prevention mechanism according to any one of claims 1 to 5 is provided, and the propellant and contents are accommodated.
Aerosol type product characterized by that.
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