WO2014156819A1 - Seal device - Google Patents

Seal device Download PDF

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Publication number
WO2014156819A1
WO2014156819A1 PCT/JP2014/057295 JP2014057295W WO2014156819A1 WO 2014156819 A1 WO2014156819 A1 WO 2014156819A1 JP 2014057295 W JP2014057295 W JP 2014057295W WO 2014156819 A1 WO2014156819 A1 WO 2014156819A1
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WO
WIPO (PCT)
Prior art keywords
groove
peripheral surface
resin ring
ring
inner peripheral
Prior art date
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PCT/JP2014/057295
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French (fr)
Japanese (ja)
Inventor
長人 八子
貴史 品田
純 深田
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株式会社リケン
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Priority to JP2015508359A priority Critical patent/JP6371759B2/en
Publication of WO2014156819A1 publication Critical patent/WO2014156819A1/en

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H55/00Elements with teeth or friction surfaces for conveying motion; Worms, pulleys or sheaves for gearing mechanisms
    • F16H55/32Friction members
    • F16H55/52Pulleys or friction discs of adjustable construction
    • F16H55/56Pulleys or friction discs of adjustable construction of which the bearing parts are relatively axially adjustable
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H63/00Control outputs from the control unit to change-speed- or reversing-gearings for conveying rotary motion or to other devices than the final output mechanism
    • F16H63/02Final output mechanisms therefor; Actuating means for the final output mechanisms
    • F16H63/04Final output mechanisms therefor; Actuating means for the final output mechanisms a single final output mechanism being moved by a single final actuating mechanism
    • F16H63/06Final output mechanisms therefor; Actuating means for the final output mechanisms a single final output mechanism being moved by a single final actuating mechanism the final output mechanism having an indefinite number of positions
    • F16H63/065Final output mechanisms therefor; Actuating means for the final output mechanisms a single final output mechanism being moved by a single final actuating mechanism the final output mechanism having an indefinite number of positions hydraulic actuating means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16JPISTONS; CYLINDERS; SEALINGS
    • F16J15/00Sealings
    • F16J15/16Sealings between relatively-moving surfaces
    • F16J15/164Sealings between relatively-moving surfaces the sealing action depending on movements; pressure difference, temperature or presence of leaking fluid

Definitions

  • the present invention relates to a reciprocating sliding seal device used for a belt-type continuously variable transmission (CVT), a compressor, or the like.
  • CVT continuously variable transmission
  • a pair of pulleys are mounted on the rotating shafts on the driving side and the driven side, and an endless belt is bridged between both pulleys to connect the rotating shafts.
  • the driving pulley has a movable sheave and a fixed sheave
  • the driven pulley also has a movable sheave and a fixed sheave.
  • a drive side oil chamber and a driven side oil chamber are provided on the movable sheave side of both pulleys, and the movable sheaves of both pulleys move in the axial direction by the operating pressure supplied to each oil chamber, that is, The groove widths of both pulleys are varied, and shift control is performed.
  • the seal ring is mounted in a seal ring groove provided on the outer peripheral surface of an annular inner member (for example, a partition member that forms the oil chamber on the back side of the movable sheave), and seals the pressure of oil supplied from the oil pump. It has a function of sealing the side surface of the seal ring groove and the inner peripheral surface of the outer member (for example, the cylindrical portion of the movable sheave) with the side surface and inner peripheral surface of the ring and the opposite side surface and outer peripheral surface. Yes.
  • the inner member and the outer member slide through the seal ring to change the groove width of the pulley. That is, the outer peripheral surface of the seal ring slides in the axial direction with respect to the inner peripheral surface of the outer member.
  • the sealing performance of the seal ring As for the sealing performance of the seal ring, the durability and reliability corresponding to the higher performance of the engine are improved, and further, the oil pump is made compact and lightweight for the purpose of energy saving, and oil for realizing more precise electronic control. Strict specifications such as stable leakage are required. Speaking extremely, it is required that there is no oil leakage even in a situation where the oil pump with the engine stopped does not operate, that is, in a situation where no oil pressure is applied to the seal ring.
  • Japanese Patent Laid-Open Nos. 2008-190643 and 2008-190650 discloses a configuration in which a plurality of protrusions extending obliquely in the axial direction are provided on the inner peripheral side of an endless type seal ring, and the tips of these protrusions are brought into contact with the bottom of the seal groove, It is said that when protruding over the groove edge of the seal groove, each protrusion is deformed so as to be tilted in the circumferential direction, and can be easily assembled to the seal groove.
  • 2008-190650 discloses an elastic material in which the outer peripheral portion is formed of a resin material and the inner peripheral portion is formed of an elastic material so that the outer peripheral portion formed of the resin material is thin.
  • An inner peripheral portion formed by an elastic material that is easily deformed by reducing the cross-sectional area of the outer peripheral portion having a large deformation resistance is disclosed. The cross-sectional area is increased to improve assembly.
  • the present invention has been made to solve the above problems, and has an oil pump having a seal ring structure that enables assembly without reducing the efficiency of the assembly process of the CVT, and the engine is stopped. It is an object of the present invention to provide a sealing device that does not leak oil even in a situation where the oil is not operated, that is, in a situation where no oil pressure is applied to the seal ring.
  • the sealing device of the present invention is configured such that a combination seal ring is attached to a seal ring groove provided on an outer peripheral surface of an annular inner member facing an inner peripheral surface of an annular outer member, and the outer member and the inner member
  • the combination seal ring includes an endless type resin ring whose outer peripheral surface is in sliding contact with the inner peripheral surface of the outer member, and a groove formed on the inner peripheral surface of the resin ring. And a coil expander that presses the resin ring toward the outer peripheral side, and the inner peripheral side of the combined seal ring is spaced apart from the groove bottom of the seal ring groove.
  • the resin ring is preferably made of a fluorine resin material.
  • the inner diameter of the resin ring is preferably in the range of 95 to 99.5% of the diameter of the inner member.
  • the entire coil expander is accommodated in the groove of the resin ring. In other words, it is preferable that the coil expander does not protrude from the groove of the resin ring.
  • the opening width of the groove of the resin ring is preferably 60% or less of the width h1 of the resin ring.
  • the cross section of the groove formed on the inner peripheral surface of the resin ring has a U-shape having a semicircular groove bottom, a substantially rectangular shape, or the groove width expands on the inner peripheral surface side of the resin ring.
  • a substantially trapezoidal shape is preferred.
  • the sealing device of the present invention uses an endless type resin ring without a joint, but the inner peripheral side is separated from the groove bottom of the seal ring groove, so that the amount of diameter expansion is low when mounting in the seal ring groove. It can be suppressed and mounting becomes easy. Further, by disposing a coil expander that presses the resin ring toward the outer peripheral side in a groove formed on the inner peripheral surface of the resin ring, it is possible to avoid oil leakage even in a situation where no oil pressure is applied to the resin ring. . Furthermore, if the coil expander is completely accommodated in the groove of the resin ring, there is almost no assembly resistance when it is inserted into the outer peripheral member, and it can be easily inserted by hand. Of course, if the coil expander is installed in the groove of the resin ring, the resin ring can be installed in the seal ring groove, which can be done in one assembly operation, greatly contributing to the efficiency of the CVT assembly process. To do.
  • FIG. 1 is a cross-sectional view showing an embodiment of the sealing device of the present invention.
  • the combination seal ring includes an endless type resin ring 1 having a good sliding property and a coil expander that is disposed in a groove 6 formed on the inner peripheral surface of the resin ring 1 and presses the resin ring 1 toward the outer peripheral side. 2 and mounted in the seal ring groove 5 of the inner member 3.
  • the groove 6 has a U shape having a groove bottom having a semicircular cross section, the outer peripheral surface 12 of the resin ring 1 is in contact with the inner peripheral surface 13 of the outer member 4, and the side surface 10 of the resin ring 1 is a seal ring. It is in contact with the side wall 11 of the groove 5.
  • the resin ring 1 When an oil pump (not shown) is activated and the oil 14 is pressurized, the resin ring 1 is pressed against the side wall 11 of the seal ring groove and the inner peripheral surface 13 of the outer member 4 and exhibits a sufficient sealing property. Even when the operation of the oil pump is stopped, the outer peripheral surface 12 and the side surface 10 of the resin ring 1 remain in contact with the inner peripheral surface 13 of the outer member 4 and the side wall 11 of the seal ring groove 5, respectively. Thus, the resin ring 1 is kept pressed against the inner peripheral surface 13 of the outer member 4. Due to the pressing action of the coil expander 2, the sealing device of the present invention can avoid oil leakage even in a situation where no oil pressure is applied.
  • the inner peripheral surface 9 of the resin ring 1 is separated from the groove bottom 7 of the seal ring groove 5 of the inner member 3, and the inner peripheral side of the combined seal ring including the coil expander 2 is the seal ring groove 5. It is spaced apart from the groove bottom 7.
  • the degree of diameter expansion of the resin ring 1 and the coil expander 2 when the resin ring 1 and the coil expander 2 are mounted in the seal ring groove 5 can be reduced, and good mounting properties can be secured.
  • the inner member 3 fitted with the combined seal ring is assembled to the outer member 4, the inner peripheral side of the combined seal ring and the groove bottom 7 of the seal ring groove 5 are separated from each other. A diameter becomes easy and it becomes possible to show a favorable assembly
  • the resin ring used in the present invention a so-called engineering plastic obtained by reinforcing PTFE or polyether ether ketone (PEEK) having excellent sliding characteristics, heat resistance, etc. with carbon or carbon fiber is preferably used.
  • the fluorine-based resin material exhibits elastic deformation of several percent at room temperature, it can be preferably used for expanding the diameter of an endless type ring having no joint.
  • the inner diameter ( ⁇ d) of the resin ring is in the range of 95% or more of the diameter ( ⁇ D) of the inner member, it is possible to increase the diameter of the resin ring without plastic deformation.
  • the sealing performance with the side wall of the seal ring groove it is preferably 99.5% or less.
  • fluorine-based resin materials examples include polytetrafluoroethylene (PTFE), tetrafluoroethylene / perfluoroalkyl vinyl ether copolymer (PFA), tetrafluoroethylene / ethylene copolymer (ETFE), and polyvinylidene.
  • PTFE polytetrafluoroethylene
  • PFA tetrafluoroethylene / perfluoroalkyl vinyl ether copolymer
  • ETFE tetrafluoroethylene / ethylene copolymer
  • PVDF fluoride
  • JIS-SWPA77 carbon steel wire, SWOSC-V silicon chrome steel oil tempered wire, SUS304 austenitic stainless steel wire, etc. are preferably used for the coil expander used in the combination seal ring of the present invention. It is preferable to adjust the overall length so that a predetermined tension acts appropriately as a combination seal ring. Also, when the coil expander is housed in the groove on the inner peripheral surface of the resin ring, it should be completely housed, that is, the coil expander should be sized so as not to protrude from the groove of the resin ring. preferable.
  • the seal ring for CVT receives a thermal history depending on the temperature of CVT oil. Considering the use of cold regions and sudden rises in temperature, we experience temperatures from -30 ° C to 120 ° C.
  • the fluororesin ring receives such a thermal history, if the thickness of the side wall of the groove of the resin ring is thin, there is a possibility that the seal with the seal ring groove side wall is impaired due to the influence of thermal deformation.
  • the opening width (w) of the groove of the resin ring is 60% or less of the width (h1) of the resin ring. It is more preferably 50% or less, and further preferably 45% or less.
  • the opening width (w) exceeds 60% of the width (h1) of the resin ring, it can be used satisfactorily if no extreme thermal history is experienced.
  • the outer periphery of the cross section of the resin ring has an arc shape.
  • FIG. 4 shows an embodiment in which the outer periphery has an arc shape.
  • the groove 6 formed on the inner peripheral surface of the resin ring and accommodating the coil expander is preferably U-shaped with a groove bottom having a semicircular cross section, as shown in FIG.
  • a substantially rectangular shape or a substantially trapezoidal shape in which the groove width increases toward the inner peripheral surface side as shown in FIG. 6 may be used.
  • the groove shape is not limited to these.
  • Example 1 Using PTFE resin combined with carbon, an endless type resin ring with no joint was produced.
  • the outer diameter (nominal diameter) of the resin ring was 114.5 mm
  • the thickness (radial width a1) was 2.3 mm
  • the width (axial width h1) was 2.6 mm.
  • a U-shaped groove having a groove bottom having a semicircular shape with a radius of 0.6 mm as shown in FIG. 1 was formed in the obtained resin ring.
  • a coil expander with a winding diameter of 1.1 mm, a free-state pitch of 1.1 mm, and a tension of 10 N when combined with a resin ring was manufactured using SWOSC-V material with a wire diameter of 0.4 mm.
  • the leak test was conducted using a leak tester whose outline is shown in FIG.
  • the produced combination seal ring is mounted in a seal ring groove 5 provided in the inner member 3 and inserted into the outer member 4.
  • the diameter of the inner member 3 of the leak tester is ⁇ 113.4 mm
  • the inner diameter of the outer member 4 is ⁇ 114.7 mm
  • the groove bottom diameter of the seal ring groove is ⁇ 107.9 mm
  • the groove width is 2.8 mm.
  • the valve 15 is opened to introduce oil
  • the oil pressure in the oil chamber is increased to 1 MPa
  • the valve 17 is opened, the air is evacuated and closed again, and then the valve 15 is closed and the inside is sealed.
  • Example 17 was opened and the pressure was reduced to atmospheric pressure (0 MPa), and the amount of leakage from the oil outlet 19 was measured. Subsequently, after holding at 120 ° C. for a certain period of time and then giving a heat history to lower to ⁇ 30 ° C., the amount of leakage was measured in the same manner. The heat history was given by opening the valves 15 and 16 and increasing or decreasing the temperature while circulating the oil. The combination seal ring of Example 1 did not leak at all before and after the heat history.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Sealing Devices (AREA)

Abstract

In order to provide a seal device that has a sealing structure enabling assembly without causing a reduction of efficiency in a CVT assembly step, and that does not leak oil even in situations in which an engine is halted and an oil pump is not operating, in other words in situations where oil pressure is not imparted to the sealing, the configuration is such that a combined sealing contains an endless resin ring, of which the outer peripheral surface slides against the inner peripheral surface of an outer member, and a coil expander that is disposed in a groove formed at the inner peripheral surface of the resin ring and that presses the resin ring towards the outer periphery, and the inner peripheral side of the combined sealing is spaced from the floor of the sealing groove.

Description

シール装置Sealing device
 本発明は、ベルト式の無段変速機(Continuously Variable Transmission、CVT)やコンプレッサー等に用いられる往復摺動するシール装置に関する。 The present invention relates to a reciprocating sliding seal device used for a belt-type continuously variable transmission (CVT), a compressor, or the like.
 例えば、CVTにおいては、一対のプーリーを駆動側及び被駆動側の回転軸に装着し、両プーリー間にエンドレスベルトを架け渡して両回転軸同士を連結する。駆動側プーリーは可動シーブ及び固定シーブを有し、被駆動側プーリーも可動シーブ及び固定シーブを有している。また、両プーリーの可動シーブ側には駆動側オイル室及び被駆動側オイル室が設けられており、各オイル室に供給された作動圧によって両プーリーの可動シーブが軸方向に移動し、すなわち、両プーリーの溝幅が可変され、変速制御が行われる。シールリングは、環状の内側部材(例えば、オイル室を可動シーブの背面側で形成する隔壁部材)の外周面に設けられたシールリング溝に装着され、オイルポンプから供給されるオイルの圧力をシールリングの側面と内周面で受け、反対側の側面と外周面とでシールリング溝の側面と外側部材(例えば、可動シーブの筒状部)の内周面とをシールする機能を有している。内側部材と外側部材はプーリーの溝幅を変えるためシールリングを介して摺動する。すなわち、シールリングはその外周面が外側部材の内周面に対し軸方向に摺動する。 For example, in CVT, a pair of pulleys are mounted on the rotating shafts on the driving side and the driven side, and an endless belt is bridged between both pulleys to connect the rotating shafts. The driving pulley has a movable sheave and a fixed sheave, and the driven pulley also has a movable sheave and a fixed sheave. Further, a drive side oil chamber and a driven side oil chamber are provided on the movable sheave side of both pulleys, and the movable sheaves of both pulleys move in the axial direction by the operating pressure supplied to each oil chamber, that is, The groove widths of both pulleys are varied, and shift control is performed. The seal ring is mounted in a seal ring groove provided on the outer peripheral surface of an annular inner member (for example, a partition member that forms the oil chamber on the back side of the movable sheave), and seals the pressure of oil supplied from the oil pump. It has a function of sealing the side surface of the seal ring groove and the inner peripheral surface of the outer member (for example, the cylindrical portion of the movable sheave) with the side surface and inner peripheral surface of the ring and the opposite side surface and outer peripheral surface. Yes. The inner member and the outer member slide through the seal ring to change the groove width of the pulley. That is, the outer peripheral surface of the seal ring slides in the axial direction with respect to the inner peripheral surface of the outer member.
 シールリングのシール性に関しては、エンジンの高性能化に対応した耐久性や信頼性の向上、さらには省エネを目的としたオイルポンプのコンパクト化や軽量化、より精密な電子制御実現のためのオイル漏れ量の安定など厳しい仕様が要求されてきている。極論をいえば、エンジンの停止したオイルポンプの作動しない状況、すなわち、シールリングにオイル圧がかからない状況においても、オイル漏れのないことが要求されている。 As for the sealing performance of the seal ring, the durability and reliability corresponding to the higher performance of the engine are improved, and further, the oil pump is made compact and lightweight for the purpose of energy saving, and oil for realizing more precise electronic control. Strict specifications such as stable leakage are required. Speaking extremely, it is required that there is no oil leakage even in a situation where the oil pump with the engine stopped does not operate, that is, in a situation where no oil pressure is applied to the seal ring.
 オイル漏れ量をゼロにするためには、例えば、図8に示すように、ポリテトラフルオロエチレン(PTFE)製の合口のないエンドレスタイプのシールリングと合成ゴム製のO-リングを組合せれば、オイル圧のかからない状況においてもオイル漏れ量をゼロにすることができる。 In order to reduce the amount of oil leakage to zero, for example, as shown in FIG. 8, by combining an endless type seal ring made of polytetrafluoroethylene (PTFE) and a synthetic rubber O-ring, Even in a situation where no oil pressure is applied, the amount of oil leakage can be reduced to zero.
 しかし、上記のシールリングは、CVTの組立工程における効率という観点で次のような難点が多い。O-リングと、PTFEシールリングの両方を別々に内側部材の端部から拡径して溝に組付けるという作業を2度必要とし、また、外側部材への挿入前のPTFEシールリングの縮径が、内側のO-リングの存在により容易ではなく、組立工程において効率が著しく低下する。 However, the above seal ring has many difficulties from the viewpoint of efficiency in the CVT assembly process. Both the O-ring and PTFE seal ring need to be expanded twice from the end of the inner member separately and assembled into the groove, and the diameter of the PTFE seal ring before insertion into the outer member is reduced. However, it is not easy due to the presence of the inner O-ring, and the efficiency is significantly reduced in the assembly process.
 合口のないシールリングの内側部材の溝への組付け性を改善する試みは、特開2008-190643及び特開2008-190650において行われている。特開2008-190643には、エンドレスタイプのシールリングの内周側に軸方向へ斜めに延びる複数の突条を設け、これらの突条の先端をシール溝の底に接触させる構成が開示され、シール溝の溝縁を乗り越えさせる際に各突条を周方向に倒すように変形させて、シール溝への組み付けを容易にできるとしている。また、特開2008-190650には、外周部が樹脂材料で形成され、内周部が弾性材料で形成されたシールリングにおいて、樹脂材料で形成された外周部を薄肉とするように、弾性材料で形成された内周部を外周部の内側に食い込ませた構成が開示され、この構成により、変形抵抗の大きい外周部の断面積を小さくし、変形しやすい弾性材料で形成された内周部の断面積を大きくして、組み付け性を改善するとしている。 Attempts to improve the assembling property of the inner member of the seal ring without a joint to the groove have been made in Japanese Patent Application Laid-Open Nos. 2008-190643 and 2008-190650. Japanese Patent Laid-Open No. 2008-190643 discloses a configuration in which a plurality of protrusions extending obliquely in the axial direction are provided on the inner peripheral side of an endless type seal ring, and the tips of these protrusions are brought into contact with the bottom of the seal groove, It is said that when protruding over the groove edge of the seal groove, each protrusion is deformed so as to be tilted in the circumferential direction, and can be easily assembled to the seal groove. Japanese Patent Laid-Open No. 2008-190650 discloses an elastic material in which the outer peripheral portion is formed of a resin material and the inner peripheral portion is formed of an elastic material so that the outer peripheral portion formed of the resin material is thin. An inner peripheral portion formed by an elastic material that is easily deformed by reducing the cross-sectional area of the outer peripheral portion having a large deformation resistance is disclosed. The cross-sectional area is increased to improve assembly.
 しかしながら、特開2008-190643のシールリングも特開2008-190650のシールリングもシールリングの内周面をシール溝の底に接触させる設計であるため、内側部材の溝への組付けがたとえ容易となっても、外側部材に挿入する際の組付け抵抗が大きく、特殊な治具を考案する必要があり、まだまだ課題の多いのが実情である。 However, since both the seal ring of Japanese Patent Application Laid-Open No. 2008-190643 and the seal ring of Japanese Patent Application Laid-Open No. 2008-190650 are designed such that the inner peripheral surface of the seal ring is in contact with the bottom of the seal groove, it is easy to assemble the inner member into the groove. Even if it becomes, the assembly resistance at the time of inserting in an outside member is large, and it is necessary to devise a special jig, and there are still many problems.
 本発明は、上記問題を解決するためになされたものであり、CVTの組立工程の効率を低下させることなく組付けを可能とするシールリングの構造を有し、且つ、エンジンの停止したオイルポンプの作動しない状況、すなわち、シールリングにオイル圧がかからない状況においても、オイル漏れのないシール装置を提供することを課題とする。 The present invention has been made to solve the above problems, and has an oil pump having a seal ring structure that enables assembly without reducing the efficiency of the assembly process of the CVT, and the engine is stopped. It is an object of the present invention to provide a sealing device that does not leak oil even in a situation where the oil is not operated, that is, in a situation where no oil pressure is applied to the seal ring.
 本発明では、基本的に、オイル漏れ量ゼロを目指し、合口のないエンドレスタイプの樹脂リングを使用する。従って、組付け性と外側部材とのシール性が問題となるのであるが、本発明者達は、鋭意研究の結果、シールリングをシールリング溝の溝底から離間させ、且つ、シールリングに張力を付与するためコイルエキスパンダを使用することにより効率の良い組み付けを可能とし、シールリングにオイル圧のかからない状況においても、オイル漏れのないシール装置を提供できることに想到した。 In the present invention, basically, an endless type resin ring having no joint is used aiming at zero oil leakage. Therefore, the assembly performance and the sealing performance with the outer member become a problem. However, as a result of intensive studies, the present inventors have separated the seal ring from the groove bottom of the seal ring groove and applied tension to the seal ring. It has been conceived that a coil expander can be used to provide efficient assembly and that a seal device without oil leakage can be provided even in a situation where no oil pressure is applied to the seal ring.
 すなわち、本発明のシール装置は、環状の外側部材の内周面に対向する環状の内側部材の外周面に設けられたシールリング溝に組合せシールリングを装着して、前記外側部材と前記内側部材の間のオイルをシールするシール装置であって、前記組合せシールリングは、外周面が外側部材の内周面と摺接するエンドレスタイプの樹脂リングと、前記樹脂リングの内周面に形成された溝に配置され、前記樹脂リングを外周側に押圧するコイルエキスパンダを含み、前記組合せシールリングの内周側が前記シールリング溝の溝底と離間したことを特徴とする。前記樹脂リングはフッ素系の樹脂材料からなることが好ましい。また、前記樹脂リングの内径は前記内側部材の径の95~99.5%の範囲にあることが好ましい。 That is, the sealing device of the present invention is configured such that a combination seal ring is attached to a seal ring groove provided on an outer peripheral surface of an annular inner member facing an inner peripheral surface of an annular outer member, and the outer member and the inner member The combination seal ring includes an endless type resin ring whose outer peripheral surface is in sliding contact with the inner peripheral surface of the outer member, and a groove formed on the inner peripheral surface of the resin ring. And a coil expander that presses the resin ring toward the outer peripheral side, and the inner peripheral side of the combined seal ring is spaced apart from the groove bottom of the seal ring groove. The resin ring is preferably made of a fluorine resin material. The inner diameter of the resin ring is preferably in the range of 95 to 99.5% of the diameter of the inner member.
 さらに、前記コイルエキスパンダの全体が前記樹脂リングの前記溝に収容されることが好ましい。言い換えれば、前記コイルエキスパンダが前記樹脂リングの前記溝から突出しないことが好ましい。 Furthermore, it is preferable that the entire coil expander is accommodated in the groove of the resin ring. In other words, it is preferable that the coil expander does not protrude from the groove of the resin ring.
 さらに、前記樹脂リングの前記溝の開口幅は前記樹脂リングの幅h1の60%以下であることが好ましい。 Furthermore, the opening width of the groove of the resin ring is preferably 60% or less of the width h1 of the resin ring.
 また、前記樹脂リングの内周面に形成された前記溝の断面は、半円形状からなる溝底を有するU字形状、略矩形形状、又は前記樹脂リングの内周面側に溝幅の拡がる略台形形状であることが好ましい。 The cross section of the groove formed on the inner peripheral surface of the resin ring has a U-shape having a semicircular groove bottom, a substantially rectangular shape, or the groove width expands on the inner peripheral surface side of the resin ring. A substantially trapezoidal shape is preferred.
 本発明のシール装置は、合口のないエンドレスタイプの樹脂リングを使用するが、その内周側がシールリング溝の溝底と離間しているため、シールリング溝に装着する際に拡径量を低く抑えることができ装着が容易になる。また、樹脂リングを外周側に押圧するコイルエキスパンダを樹脂リング内周面に形成された溝に配置することにより、樹脂リングにオイル圧がかからない状況においてもオイル漏れを回避することが可能となる。さらに、コイルエキスパンダが樹脂リングの溝内に完全に収容されれば、外周部材に挿入する際の組付け抵抗も殆どなく、手押しにより簡単に挿入することができる。もちろん、樹脂リングのシールリング溝への装着も、コイルエキスパンダを樹脂リングの溝にセットした状態で行えば、1度の組み付け作業で行うことが可能となり、CVT組立工程の効率化に大きく貢献する。 The sealing device of the present invention uses an endless type resin ring without a joint, but the inner peripheral side is separated from the groove bottom of the seal ring groove, so that the amount of diameter expansion is low when mounting in the seal ring groove. It can be suppressed and mounting becomes easy. Further, by disposing a coil expander that presses the resin ring toward the outer peripheral side in a groove formed on the inner peripheral surface of the resin ring, it is possible to avoid oil leakage even in a situation where no oil pressure is applied to the resin ring. . Furthermore, if the coil expander is completely accommodated in the groove of the resin ring, there is almost no assembly resistance when it is inserted into the outer peripheral member, and it can be easily inserted by hand. Of course, if the coil expander is installed in the groove of the resin ring, the resin ring can be installed in the seal ring groove, which can be done in one assembly operation, greatly contributing to the efficiency of the CVT assembly process. To do.
本発明のシール装置の一例を示す断面図である。It is sectional drawing which shows an example of the sealing device of this invention. 本発明の組合せシールリングの一例を示す断面図である。It is sectional drawing which shows an example of the combination seal ring of this invention. 本発明の組合せシールリングの別の一例を示す断面図である。It is sectional drawing which shows another example of the combination seal ring of this invention. 本発明の組合せシールリングのさらに別の一例を示す断面図である。It is sectional drawing which shows another example of the combination seal ring of this invention. 本発明の組合せシールリングのさらに別の一例を示す断面図である。It is sectional drawing which shows another example of the combination seal ring of this invention. 本発明の組合せシールリングのさらに別の一例を示す断面図である。It is sectional drawing which shows another example of the combination seal ring of this invention. オイル漏れ試験機の概念図である。It is a conceptual diagram of an oil leak tester. 合口のないPTFEシールリングと合成ゴム性のO-リングを組合せた従来のシール装置を示す図である。It is a figure which shows the conventional sealing device which combined the PTFE seal ring without a joint, and a synthetic rubber O-ring.
 図1は、本発明のシール装置の一実施態様を示す断面図である。組合せシールリングは、摺動性の良好な合口のないエンドレスタイプの樹脂リング1と、樹脂リング1の内周面に形成された溝6に配置され樹脂リング1を外周側に押圧するコイルエキスパンダ2により構成され、内側部材3のシールリング溝5に装着されている。溝6は断面が半円形状からなる溝底を有するU字形状をしており、樹脂リング1の外周面12は外側部材4の内周面13に接し、樹脂リング1の側面10はシールリング溝5の側壁11に接している。図示していないオイルポンプが作動し、オイル14が加圧されたときは、樹脂リング1はシールリング溝の側壁11と外側部材4の内周面13に押圧され、十分なシール性を示す。オイルポンプの作動が止まっても、樹脂リング1の外周面12と側面10はそれぞれ外側部材4の内周面13とシールリング溝5の側壁11に接した状態で留まり、コイルエキスパンダ2の作用により樹脂リング1は外側部材4の内周面13に押圧され続ける。このコイルエキスパンダ2の押圧作用により、本発明のシール装置は、オイル圧がかからない状況においてもオイル漏れを回避することが可能となる。また、樹脂リング1の内周面9は内側部材3のシールリング溝5の溝底7と離間しており、コイルエキスパンダ2を含む組合せシールリングとしても、その内周側はシールリング溝5の溝底7と離間している。樹脂リング1やコイルエキスパンダ2のシールリング溝5への装着の際の樹脂リング1やコイルエキスパンダ2の拡径の程度を小さくでき、良好な装着性を確保できる。もちろん、組合せシールリングを装着した内側部材3を外側部材4に組付ける際も、組合せシールリングの内周側とシールリング溝5の溝底7とが離間しているため、組合せシールリングの縮径が容易となり、良好な組付け性を示すことが可能となる。 FIG. 1 is a cross-sectional view showing an embodiment of the sealing device of the present invention. The combination seal ring includes an endless type resin ring 1 having a good sliding property and a coil expander that is disposed in a groove 6 formed on the inner peripheral surface of the resin ring 1 and presses the resin ring 1 toward the outer peripheral side. 2 and mounted in the seal ring groove 5 of the inner member 3. The groove 6 has a U shape having a groove bottom having a semicircular cross section, the outer peripheral surface 12 of the resin ring 1 is in contact with the inner peripheral surface 13 of the outer member 4, and the side surface 10 of the resin ring 1 is a seal ring. It is in contact with the side wall 11 of the groove 5. When an oil pump (not shown) is activated and the oil 14 is pressurized, the resin ring 1 is pressed against the side wall 11 of the seal ring groove and the inner peripheral surface 13 of the outer member 4 and exhibits a sufficient sealing property. Even when the operation of the oil pump is stopped, the outer peripheral surface 12 and the side surface 10 of the resin ring 1 remain in contact with the inner peripheral surface 13 of the outer member 4 and the side wall 11 of the seal ring groove 5, respectively. Thus, the resin ring 1 is kept pressed against the inner peripheral surface 13 of the outer member 4. Due to the pressing action of the coil expander 2, the sealing device of the present invention can avoid oil leakage even in a situation where no oil pressure is applied. Further, the inner peripheral surface 9 of the resin ring 1 is separated from the groove bottom 7 of the seal ring groove 5 of the inner member 3, and the inner peripheral side of the combined seal ring including the coil expander 2 is the seal ring groove 5. It is spaced apart from the groove bottom 7. The degree of diameter expansion of the resin ring 1 and the coil expander 2 when the resin ring 1 and the coil expander 2 are mounted in the seal ring groove 5 can be reduced, and good mounting properties can be secured. Of course, when the inner member 3 fitted with the combined seal ring is assembled to the outer member 4, the inner peripheral side of the combined seal ring and the groove bottom 7 of the seal ring groove 5 are separated from each other. A diameter becomes easy and it becomes possible to show a favorable assembly | attachment property.
 本発明に用いる樹脂リングには、優れた摺動特性、耐熱性等を有するPTFEやポリエーテルエーテルケトン(PEEK)などをカーボン又は炭素繊維等で強化したいわゆるエンジニアリングプラスチックが好ましく用いられる。特に、フッ素系の樹脂材料は室温で数%の弾性変形を示すので、合口のないエンドレスタイプのリングの拡径には好ましく使用できる。例えば、樹脂リングの内径(φd)が内側部材の径(φD)の95%以上の範囲にあれば、樹脂リングを塑性変形することなく拡径することが可能となり好ましい。但し、シールリング溝の側壁とのシール性を考慮すると99.5%以下であることが好ましい。このようなフッ素系の樹脂材料としては、例えば、ポリテトラフルオロエチレン(PTFE)、テトラフルオロエチレン・パーフルオロアルキルビニルエーテル共重合体(PFA)、テトラフルオロエチレン・エチレン共重合体(ETFE)、ポリビニリデンフルオライド(2フッ化)(PVDF)等があげられる。 For the resin ring used in the present invention, a so-called engineering plastic obtained by reinforcing PTFE or polyether ether ketone (PEEK) having excellent sliding characteristics, heat resistance, etc. with carbon or carbon fiber is preferably used. In particular, since the fluorine-based resin material exhibits elastic deformation of several percent at room temperature, it can be preferably used for expanding the diameter of an endless type ring having no joint. For example, if the inner diameter (φd) of the resin ring is in the range of 95% or more of the diameter (φD) of the inner member, it is possible to increase the diameter of the resin ring without plastic deformation. However, considering the sealing performance with the side wall of the seal ring groove, it is preferably 99.5% or less. Examples of such fluorine-based resin materials include polytetrafluoroethylene (PTFE), tetrafluoroethylene / perfluoroalkyl vinyl ether copolymer (PFA), tetrafluoroethylene / ethylene copolymer (ETFE), and polyvinylidene. Examples include fluoride (difluoride) (PVDF).
 本発明の組合せシールリングに使用するコイルエキスパンダには、JIS SWPA77の炭素鋼線、SWOSC-Vのシリコンクロム鋼オイルテンパ線や、SUS304のオーステナイト系ステンレス鋼線などが好ましく用いられる。組合せシールリングとして所定の張力が適切に作用するように全長を調整することが好ましい。また、コイルエキスパンダを樹脂リングの内周面の溝に収納したときに、完全に収納されるようにすること、すなわち、コイルエキスパンダが樹脂リングの溝から突出しないような大きさとすることが好ましい。そのような構成とすることにより、外周部材に挿入する際の組付け抵抗も殆どなく、手押しにより簡単に挿入することができ、また、内周部材のシールリング溝への装着の際も、コイルエキスパンダを樹脂リングの溝にセットした状態で行えば、1度の組付け作業で行うことが可能となるからである。もちろん、図2に示すように、コイルエキスパンダが樹脂リングの溝から一部突出していたとしても、コイルエキスパンダとシールリング溝の溝底との間隔が一定量離間していれば、組付け性を損なうものではない。 JIS-SWPA77 carbon steel wire, SWOSC-V silicon chrome steel oil tempered wire, SUS304 austenitic stainless steel wire, etc. are preferably used for the coil expander used in the combination seal ring of the present invention. It is preferable to adjust the overall length so that a predetermined tension acts appropriately as a combination seal ring. Also, when the coil expander is housed in the groove on the inner peripheral surface of the resin ring, it should be completely housed, that is, the coil expander should be sized so as not to protrude from the groove of the resin ring. preferable. With such a configuration, there is almost no assembly resistance when inserting into the outer peripheral member, it can be easily inserted by hand pressing, and the coil can be inserted into the seal ring groove of the inner peripheral member. This is because if the expander is set in the groove of the resin ring, it can be performed by one assembling operation. Of course, as shown in FIG. 2, even if the coil expander partially protrudes from the groove of the resin ring, as long as the gap between the coil expander and the groove bottom of the seal ring groove is a certain amount apart, There is no loss of sex.
 CVT用のシールリングは、CVTオイルの温度に依存して熱履歴を受ける。寒冷地の使用や突発的な温度上昇等を考慮すると、-30℃から120℃の温度を経験する。フッ素系の樹脂リングがそのような熱履歴を受けた場合、樹脂リングの溝の側壁の厚さが薄いと熱変形の影響が出てシールリング溝側壁とのシールを損なう虞が生じる。その観点では、樹脂リングの溝の開口幅(w)は樹脂リングの幅(h1)の60%以下であることが好ましい。50%以下であればより好ましく、45%以下であればさらに好ましい。もちろん、図3に示すように、開口幅(w)が樹脂リングの幅(h1)の60%を超えていても極端な熱履歴を経験しなければ良好に使用できる。 ¡The seal ring for CVT receives a thermal history depending on the temperature of CVT oil. Considering the use of cold regions and sudden rises in temperature, we experience temperatures from -30 ° C to 120 ° C. When the fluororesin ring receives such a thermal history, if the thickness of the side wall of the groove of the resin ring is thin, there is a possibility that the seal with the seal ring groove side wall is impaired due to the influence of thermal deformation. From this viewpoint, it is preferable that the opening width (w) of the groove of the resin ring is 60% or less of the width (h1) of the resin ring. It is more preferably 50% or less, and further preferably 45% or less. Of course, as shown in FIG. 3, even if the opening width (w) exceeds 60% of the width (h1) of the resin ring, it can be used satisfactorily if no extreme thermal history is experienced.
 樹脂リングの摺動は、その外周面が外側部材の内周面に対し、軸方向に摺動する。摺動部の当たり面を確保し、且つ摩擦力を小さくするには、樹脂リングの断面の外周が円弧状であることが好ましい。外周が円弧状を示す実施態様を図4に示す。 The sliding of the resin ring slides in the axial direction with respect to the inner peripheral surface of the outer member. In order to secure the contact surface of the sliding portion and reduce the frictional force, it is preferable that the outer periphery of the cross section of the resin ring has an arc shape. FIG. 4 shows an embodiment in which the outer periphery has an arc shape.
 また、樹脂リングの内周面に形成され、コイルエキスパンダを収納する溝6は、その断面が半円形状からなる溝底を有するU字系状であることが好ましいが、図5に示されるような略矩形形状でも、図6に示されるような内周面側に溝幅の拡がる略台形形状でもよい。本発明において、溝形状は、これらに限定されるものではない。 Further, the groove 6 formed on the inner peripheral surface of the resin ring and accommodating the coil expander is preferably U-shaped with a groove bottom having a semicircular cross section, as shown in FIG. Such a substantially rectangular shape or a substantially trapezoidal shape in which the groove width increases toward the inner peripheral surface side as shown in FIG. 6 may be used. In the present invention, the groove shape is not limited to these.
 実施例1
 カーボンを複合したPTFE樹脂を用いて、合口のないエンドレスタイプの樹脂リングを作製した。ここで、樹脂リングの外径(呼び径)は114.5 mm、厚さ(径方向幅a1)は2.3 mm、幅(軸方向幅h1)は2.6 mmとした。得られた樹脂リングに、図1に示すような、断面が半径0.6 mmの半円形状からなる溝底を有するU字形状の溝を形成した。また、線径0.4 mmのSWOSC-V材を用いて、巻径φ1.1 mm、自由状態のピッチ1.1 mm、樹脂リングと組合せた時の張力10 Nのコイルエキスパンダを製作した。
Example 1
Using PTFE resin combined with carbon, an endless type resin ring with no joint was produced. Here, the outer diameter (nominal diameter) of the resin ring was 114.5 mm, the thickness (radial width a1) was 2.3 mm, and the width (axial width h1) was 2.6 mm. A U-shaped groove having a groove bottom having a semicircular shape with a radius of 0.6 mm as shown in FIG. 1 was formed in the obtained resin ring. A coil expander with a winding diameter of 1.1 mm, a free-state pitch of 1.1 mm, and a tension of 10 N when combined with a resin ring was manufactured using SWOSC-V material with a wire diameter of 0.4 mm.
 漏れ試験
 漏れ試験は、図7にその概略を示す漏れ試験機を用いて行った。作製した組合せシールリングは、内側部材3に設けられたシールリング溝5に装着され、外側部材4に挿入される。漏れ試験器の内側部材3の径はφ113.4 mm、外側部材4の内径はφ114.7 mm、シールリング溝の溝底径は φ107.9 mm、溝幅は2.8 mmである。試験は、まず、バルブ15を開けてオイルを導入、オイル室の油圧を1 MPaまで上げ、バルブ17を開けてエアーを抜いて再び閉じた後、バルブ15を閉じて内部を密閉し、その後バルブ17を開けて大気圧(0 MPa)まで圧力を下げて、オイル排出口19からの漏れ量を測定した。続いて、120℃で一定時間保持し、その後-30℃まで下げる熱履歴を与えた後、同様に漏れ量を測定した。熱履歴は、バルブ15と16を開け、オイルを循環しながら昇温又は降温することによって与えた。実施例1の組合せシールリングは、熱履歴前も熱履歴後も漏れは全く生じなかった。
Leak test The leak test was conducted using a leak tester whose outline is shown in FIG. The produced combination seal ring is mounted in a seal ring groove 5 provided in the inner member 3 and inserted into the outer member 4. The diameter of the inner member 3 of the leak tester is φ113.4 mm, the inner diameter of the outer member 4 is φ114.7 mm, the groove bottom diameter of the seal ring groove is φ107.9 mm, and the groove width is 2.8 mm. In the test, first, the valve 15 is opened to introduce oil, the oil pressure in the oil chamber is increased to 1 MPa, the valve 17 is opened, the air is evacuated and closed again, and then the valve 15 is closed and the inside is sealed. 17 was opened and the pressure was reduced to atmospheric pressure (0 MPa), and the amount of leakage from the oil outlet 19 was measured. Subsequently, after holding at 120 ° C. for a certain period of time and then giving a heat history to lower to −30 ° C., the amount of leakage was measured in the same manner. The heat history was given by opening the valves 15 and 16 and increasing or decreasing the temperature while circulating the oil. The combination seal ring of Example 1 did not leak at all before and after the heat history.

Claims (9)

  1. 環状の外側部材の内周面に対向する環状の内側部材の外周面に設けられたシールリング溝に組合せシールリングを装着して、前記外側部材と前記内側部材の間のオイルをシールするシール装置であって、前記組合せシールリングは、外周面が外側部材の内周面と摺接するエンドレスタイプの樹脂リングと、前記樹脂リングの内周面に形成された溝に配置され、前記樹脂リングを外周側に押圧するコイルエキスパンダを含み、前記組合せシールリングの内周側が前記シールリング溝の溝底と離間したことを特徴とするシール装置。 A sealing device that seals oil between the outer member and the inner member by attaching a combination seal ring to a seal ring groove provided on the outer peripheral surface of the annular inner member facing the inner peripheral surface of the annular outer member. The combination seal ring is disposed in an endless type resin ring whose outer peripheral surface is in sliding contact with the inner peripheral surface of the outer member, and in a groove formed in the inner peripheral surface of the resin ring. A seal device including a coil expander that presses toward the side, wherein an inner peripheral side of the combined seal ring is spaced apart from a groove bottom of the seal ring groove.
  2. 請求項1に記載のシール装置において、前記樹脂リングがフッ素系の樹脂材料からなることを特徴とするシール装置。 The sealing device according to claim 1, wherein the resin ring is made of a fluorine-based resin material.
  3. 請求項2に記載のシール装置において、前記樹脂リングの内径が前記内側部材の径の95~99.5%の範囲にあることを特徴とするシール装置。 3. The sealing device according to claim 2, wherein an inner diameter of the resin ring is in a range of 95 to 99.5% of a diameter of the inner member.
  4. 請求項1~3に記載のシール装置において、前記コイルエキスパンダの全体が前記樹脂リングの前記溝に収容されることを特徴とするシール装置。 4. The sealing device according to claim 1, wherein the entire coil expander is accommodated in the groove of the resin ring.
  5. 請求項1~3に記載のシール装置において、前記コイルエキスパンダが前記樹脂リングの前記溝から突出しないことを特徴とするシール装置。 4. The sealing device according to claim 1, wherein the coil expander does not protrude from the groove of the resin ring.
  6. 請求項1~5のいずれかに記載のシール装置において、前記樹脂リングの前記溝の開口幅が前記樹脂リングの幅h1の60%以下であることを特徴とするシール装置。 6. The sealing device according to claim 1, wherein an opening width of the groove of the resin ring is 60% or less of a width h1 of the resin ring.
  7. 請求項1~6のいずれかに記載のシール装置において、前記樹脂リングの内周面に形成された前記溝の断面が半円形状からなる溝底を有するU字形状であることを特徴とするシール装置。 The sealing device according to any one of claims 1 to 6, wherein a cross section of the groove formed on the inner peripheral surface of the resin ring is a U shape having a groove bottom having a semicircular shape. Sealing device.
  8. 請求項1~6のいずれかに記載のシール装置において、前記樹脂リングの内周面に形成された前記溝の断面が略矩形形状であることを特徴とするシール装置。 7. The sealing device according to claim 1, wherein a cross section of the groove formed on the inner peripheral surface of the resin ring has a substantially rectangular shape.
  9. 請求項1~6のいずれかに記載のシール装置において、前記樹脂リングの内周面に形成された前記溝の断面が前記樹脂リングの内周面側に溝幅の拡がる略台形形状であることを特徴とするシール装置。 The sealing device according to any one of claims 1 to 6, wherein a cross section of the groove formed on the inner peripheral surface of the resin ring has a substantially trapezoidal shape in which a groove width increases toward the inner peripheral surface side of the resin ring. A sealing device characterized by the above.
PCT/JP2014/057295 2013-03-27 2014-03-18 Seal device WO2014156819A1 (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113310635A (en) * 2021-05-26 2021-08-27 广西电网有限责任公司南宁供电局 CVT oil tank defect detecting and processing device

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS53146855U (en) * 1977-04-25 1978-11-18
JPS54131649U (en) * 1979-03-20 1979-09-12
JPH09159023A (en) * 1995-12-05 1997-06-17 Toyota Motor Corp Piston ring
JPH1137293A (en) * 1997-07-22 1999-02-12 Toyota Motor Corp Resin-made piston ring

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS53146855U (en) * 1977-04-25 1978-11-18
JPS54131649U (en) * 1979-03-20 1979-09-12
JPH09159023A (en) * 1995-12-05 1997-06-17 Toyota Motor Corp Piston ring
JPH1137293A (en) * 1997-07-22 1999-02-12 Toyota Motor Corp Resin-made piston ring

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113310635A (en) * 2021-05-26 2021-08-27 广西电网有限责任公司南宁供电局 CVT oil tank defect detecting and processing device

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JPWO2014156819A1 (en) 2017-02-16

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