WO2014148342A1 - Tensioner - Google Patents

Tensioner Download PDF

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Publication number
WO2014148342A1
WO2014148342A1 PCT/JP2014/056577 JP2014056577W WO2014148342A1 WO 2014148342 A1 WO2014148342 A1 WO 2014148342A1 JP 2014056577 W JP2014056577 W JP 2014056577W WO 2014148342 A1 WO2014148342 A1 WO 2014148342A1
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WO
WIPO (PCT)
Prior art keywords
tensioner
holder
slide
cylindrical
cylindrical members
Prior art date
Application number
PCT/JP2014/056577
Other languages
French (fr)
Japanese (ja)
Inventor
芳幸 高橋
和人 平岡
拓 田所
貴雄 小林
Original Assignee
日本発條株式会社
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Application filed by 日本発條株式会社 filed Critical 日本発條株式会社
Priority to JP2015506723A priority Critical patent/JP6317331B2/en
Publication of WO2014148342A1 publication Critical patent/WO2014148342A1/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
    • F16H7/00Gearings for conveying rotary motion by endless flexible members
    • F16H7/08Means for varying tension of belts, ropes, or chains
    • F16H7/0848Means for varying tension of belts, ropes, or chains with means for impeding reverse motion
    • 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
    • F16H7/00Gearings for conveying rotary motion by endless flexible members
    • F16H7/08Means for varying tension of belts, ropes, or chains
    • F16H2007/0802Actuators for final output members
    • F16H2007/0806Compression coil springs
    • 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
    • F16H7/00Gearings for conveying rotary motion by endless flexible members
    • F16H7/08Means for varying tension of belts, ropes, or chains
    • F16H7/0848Means for varying tension of belts, ropes, or chains with means for impeding reverse motion
    • F16H2007/0853Ratchets
    • 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
    • F16H7/00Gearings for conveying rotary motion by endless flexible members
    • F16H7/08Means for varying tension of belts, ropes, or chains
    • F16H2007/0889Path of movement of the finally actuated member
    • F16H2007/0893Circular path

Definitions

  • the present invention relates to a tensioner used to keep the tension of an endless belt or chain constant.
  • the tensioner for example, presses a timing chain or timing belt used in an automobile engine with a predetermined force, and acts to keep the tension constant when the chain is stretched or loosened.
  • FIG. 10 shows the inside of the engine body 200 of the automobile.
  • a pair of cam sprockets 210 and 210 that are driven shafts and a crank sprocket 220 that is a drive shaft are disposed inside the engine body 200, and the timing chain 230 is endless between these sprockets 210, 210, and 220. It is stretched over in a shape.
  • the timing chain 230 moves (runs) between the sprockets 210, 210, and 220 by the rotation of the crank sprocket 220.
  • a chain guide 240 is disposed on the moving path of the timing chain 230 so as to contact the timing chain 230, and the timing chain 230 moves while sliding on the chain guide 240.
  • the chain guide 240 can swing around the support shaft 250, and the tension of the timing chain 230 is adjusted by this swing.
  • Reference numeral 300 denotes a tensioner provided in the engine body 200 for pressing the chain guide 240 against the timing chain 230.
  • the tensioner 300 generally has a structure that presses the chain guide 240 by expansion and contraction in the axial direction.
  • the tensioner 300 includes a case 310 fixed to the engine main body 200 and a propulsion shaft 320 provided inside the case 310 so as to be capable of moving forward and backward. The tip portion of the propulsion shaft 320 presses the chain guide 240. .
  • Patent Documents 1 and 2 disclose a conventional tensioner having a structure similar to that of the tensioner of FIG.
  • a nut member integrally formed with a propulsion shaft at the tip and a bolt screwed to the nut member are provided inside the case, and a load spring for pressing the nut member is provided inside the case.
  • bolt is further provided in the inside of a volt
  • the spring for extrusion which presses a nut member is further provided in the inside of a volt
  • JP-A-64-41756 Japanese Patent Laid-Open No. 2-56948
  • the present invention has been made in consideration of such problems, and an object of the present invention is to provide a tensioner that can be easily reduced in weight and size, and that can be easily assembled with a reduced number of parts.
  • the tensioner of the present invention has a plurality of leg portions each having a thread portion formed on one side thereof, and the plurality of leg portions extend in the axial direction in a state of being separated in the circumferential direction, and the thread portions are mutually connected.
  • Two bottomed cylindrical members that are assembled so as to be relatively rotatable by screwing together, and the two cylindrical members that are assembled are provided, one cylindrical member with respect to the other cylindrical member
  • An elastic member that exerts a spring force that is propelled while rotating, and at least two of the plurality of leg portions of the two cylindrical members are screwed with the threaded portion when the cylindrical member is rotated. It is provided so that it may be maintained.
  • At least one of the threaded portions of the tubular member is led to a threaded start end portion with the threaded portion of the mating tubular member that is larger than the interval between the other portions of the thread. It is preferable that a mouth is formed and a guide portion is formed in which the interval gradually decreases from the guide port toward the back side.
  • leg portions of the two cylindrical members are separated via a slit portion, and the width of the leg portion is larger than the width of the slit portion.
  • the two cylindrical members have different numbers of leg portions.
  • all of the plurality of leg portions of the two cylindrical members are provided so as to maintain the screwed state of the screw portion when the cylindrical member rotates.
  • At least one of the two cylindrical members is formed by pressing a plate material.
  • the screw portions formed on the leg portions of the two cylindrical members are screwed together to assemble the two cylindrical members, and the elastic member is disposed inside the two cylindrical members. It is formed. Since this tensioner is propelled while the one cylindrical member rotates relative to the other cylindrical member by the spring force of the elastic member, tension can be applied to an external member such as a timing chain of the engine body. At this time, since the threaded portion of the at least two leg portions maintains the screwed state, stable operation is possible.
  • Such a tensioner of the present invention is formed by two cylindrical members and an elastic member, the number of parts is small, the structure is simple, the assembly is easy, and the miniaturization is easy. Moreover, it is not necessary to cut out and use a solid material such as a round bar simply by forming a threaded portion on the legs of two cylindrical members, so that the weight does not increase and the entire tensioner is reduced in weight. Can do.
  • FIG. 1 It is a partially broken front view which shows the state which mounted
  • (A) is a partially broken side view of a support plate,
  • (b) is a plan view.
  • the holder is shown,
  • (a) is a front view,
  • (b) is a plan view, and (c) is a sectional view taken along line EE.
  • the slide is shown, (a) is a front view, (b) is a plan view, and (c) is a sectional view taken along line FF.
  • the 2nd Embodiment of this invention is shown, (a) is a front view of a holder, (b) is a partial expansion perspective view. 3rd Embodiment of this invention is shown, (a) is a front view of a holder, (b) is a front view of a slide. (A) shows 4th Embodiment of this invention, and is sectional drawing in the GG line of FIG. 2, (b) is sectional drawing of 1st Embodiment in the GG line of FIG. It is a partially broken front view which shows the state which mounted
  • (First embodiment) 1 to 6 show a tensioner 1 according to a first embodiment of the present invention.
  • the tensioner 1 is attached to the engine body 200 to press the timing chain 230 that is stretched endlessly on the cam sprockets 210 and 210 and the crank sprocket 220 inside the engine body 200. Apply tension.
  • the tensioner 1 applies tension to the timing chain 230 by pressing the chain guide 240, but may apply tension directly to the timing chain 230. Further, it can be used for apparatuses other than the engine body 200.
  • the tensioner 1 includes a holder 2 and a slide 3 as two cylindrical members, and an elastic member 4 (see FIG. 6).
  • the holder 2 and the slide 3 as two cylindrical members are both formed of a bottomed cylinder, and the holder 2 is a fixed side and the slide 3 is a propulsion side (moving side).
  • the holder 2 on the fixed side is fixed to a flange-shaped support plate 5 (see FIG. 2).
  • the support plate 5 is bolted to the outer wall of the engine body 200, and the tensioner 1 is attached to the engine body 200 by bolting the support plate 5 to the engine body 200.
  • the support plate 5 has a plate body 50 made of a flat plate.
  • a burring 51 is cut and raised at the center of the plate main body 50 by a press, and fixing holes 52 for fixing to the engine main body 200 are formed on the left and right sides of the burring 51 in the plate main body 50.
  • the burring 51 is for supporting and fixing the holder 2 in a rising shape (see FIG. 2).
  • the holder 2 is formed by a cylindrical portion 21 and a screw portion 22 (male screw portion) on the outer surface of the cylindrical portion 21.
  • the cylindrical portion 21 has a circular bottom portion 23 and a plurality of leg portions 24 bent in the same direction from the bottom portion 23 and extending in the axial direction.
  • a mounting hole 25 is formed at the center of the bottom portion 23. Yes.
  • the holder 2 is supported by the support plate 5 in an upright manner by inserting and tightening the burring 51 of the support plate 5 into the mounting hole 25.
  • the leg portion 24 is provided at six equal positions in the circumferential direction. Adjacent leg portions 24 are spaced apart in the circumferential direction via slit portions 26. Further, all of the plurality of leg portions 24 at the six equal positions have the same width.
  • the screw portion 22 is formed so that the screw thread is continuous over the adjacent leg portions 24 separated by the slit portion 26. In addition, the screw part 22 is formed over the full length of the cylindrical part 21 except the bottom part 23.
  • Such a holder 2 can be manufactured by threading one side of a flat plate material and pressing the flat plate material. For this reason, it can be set as the lightweight holder 2. FIG.
  • the slide 3 is formed by a cylindrical portion 31 and a screw portion 32 (female screw portion) on the inner surface of the cylindrical portion 31.
  • the cylindrical body portion 31 has a circular head portion 33 and a plurality of leg portions 34 that are bent in the same direction from the head portion 33 and extend in the axial direction.
  • the head 33 is closed, and the head 33 abuts on an external member such as the chain guide 240.
  • the leg portion 34 is provided so as to be spaced apart at six equal positions in the circumferential direction via the slit portion 36. All of the plurality of legs 34 have the same width, but are smaller than the width of the legs 24 of the holder 2.
  • the slide 3 is assembled to the holder 2 so as to cover the outer periphery of the holder 2 as shown in FIG.
  • the head 33 is put on the upper portion of the holder 2.
  • the screw part 32 is formed at the end of the leg part 34 opposite to the head part 33.
  • the screw portion 32 is screwed into the screw portion 22 of the holder 2, and is formed so that the thread is continuous over the adjacent leg portions 34 separated by the slit portion 36.
  • a slide 3 can be manufactured by threading one side of a flat plate material and pressing the flat plate material. For this reason, it can be set as the lightweight slide 3.
  • a space is formed inside the holder 2 and the slide 3 assembled by screwing the screw portions 22 and 32, and the elastic member 4 is arranged in this space (internal space of the holder 2).
  • the elastic member 4 is formed of a coil spring as shown in FIG.
  • the elastic member 4 made of a coil spring is housed in the inner space of the holder 2 in a compressed state, one end 41 in the length direction abuts against the bottom 23 of the holder 2, and the other end 42 contacts the head 33 of the slide 3. Abut. As a result, the elastic member 4 applies a spring force to the slide 3 that is propelled while the slide 3 rotates.
  • the other end portion of the elastic member 4 is a small diameter portion 43 in which the coil diameter is reduced, and the contact diameter with the head portion 33 of the slide 3 is reduced. Thereby, the frictional force with the head 33 of the slide 3 is reduced, and the slide 3 can be smoothly rotated.
  • the tensioner 1 of the present embodiment fixes the holder 2 so as to rise from the support plate 5, inserts the elastic member 4 into the holder 2 in a compressed state, covers the slide 3 over the holder 2, and attaches the screw portion 32 to the holder 2 2 is assembled to the state shown in FIG.
  • the head 33 of the slide 3 is attached to the engine main body 200 so as to abut on the chain guide 240.
  • the slide 3 is pushed by the spring force of the elastic member 4 while rotating in the direction R in FIG.
  • tension can be applied to the timing chain 230.
  • the timing chain 230 becomes high tension
  • the slide 3 moves backward against the spring force of the elastic member 4 while rotating in the anti-R direction. Thereby, the tension of the timing chain 230 is adjusted.
  • the width of the leg portion 24 of the holder 2 is large and the width of the leg portion 34 of the slide 3 is small.
  • the screw portions 22 and 32 of all the leg portions 24 and 34 maintain the screwed state. For this reason, even if an unbalanced load is applied, a lateral force can be received in the circumferential direction, and an operation that prevents tilting is possible, thus enabling a stable operation.
  • the holder 2 and the slide 3 are made by pressing a plate material instead of a cutting material from a solid material, the lateral rigidity is lowered and the movement during operation is flexible.
  • the number of parts is small in addition to being produced by pressing the plate material, a lightweight tensioner can be obtained. Furthermore, since the number of parts is small, the structure is simple and the assembly is easy.
  • all of the leg portions 24 and 34 of the holder 2 and the slide 3 are maintained in a screwed state. However, in the present invention, at least two leg portions 24 and 34 of the holder 2 and the slide 3 are provided. Any device that maintains the screwed state may be used, whereby a lateral load can be received in the circumferential direction, and tilting can be prevented.
  • FIG. 7 shows a second embodiment of the present invention.
  • a screw portion 22 is formed on the outer periphery of each leg portion 24 of the holder 2, but both end portions 61 on the slit portion 26 side of the thread 63 of the screw portion 22 of each leg portion 24 are thin guide surfaces 62.
  • Both end portions 61 on the slit portion 26 side are start end portions to which the screw portions 32 of the slide 3 to be screwed are screwed, and thin guide surfaces 62 are formed at both end portions 61.
  • the guide surface 62 has the thinnest tip, and is formed in a tapered shape that gradually becomes thicker toward the back side.
  • both ends of the threaded portion 22 are guided at a larger interval than the interval between other portions of the thread 63. It has a mouth 64. Further, a guide portion 65 in which the interval between the screw threads 63 is gradually narrowed toward the back side is continuous with the guide port 64.
  • the lead-in port 64 having a large gap between the screw threads 63, interference of the screw parts 32 and 22 is suppressed when the screw part 32 of the slide 3 to be screwed is screwed into the screw part 22 from the slit part 26. And can be smoothly screwed together. After this screwing, the screw part 32 of the slide 3 is guided by the guide part 65 and screwed with the original thread 63 of the screw part 22 of the holder 2.
  • the screw portion 32 of the slide 3 is prevented from interfering with the screw portion 22 of the holder 2, there is a deviation or burr of the screw portions 32, 22 during the manufacture of the slide 3 or the holder 2.
  • the thin tapered guide surface 62 is formed only on the screw portion 22 of the holder 2, but it may be formed only on the screw portion 32 side of the slide 3, or the screw portion 22 of the holder 2. Further, it may be formed on both of the thread portions 32 of the slide 3.
  • FIG. 8 shows a third embodiment of the present invention, where (a) shows the holder 2 and (b) shows the slide 3.
  • the width of the leg portion 24 of the holder 2 and the width of the leg portion 34 of the slide 3 are made larger than the widths of the respective slits 26 and 36. That is, in the holder 2 of FIG. 8A, the width A of the leg portion 24 is made larger than the width B of the slit portion 26 (A> B), and in the slide 3 of FIG. C is larger than the width D of the slit portion 36 (C> D).
  • any one of the leg portions 24, 34 is connected to the other leg portion 34, 24.
  • the screwed state can be maintained. Thereby, since the holder 2 and the slide 3 are always screwed, it can operate smoothly.
  • FIG. 9A shows a fourth embodiment of the present invention and shows a cross section taken along the line GG of FIG.
  • FIG. 9B shows the relationship between the holder 2 and the slide 3 in the first embodiment.
  • the leg portion 24 of the holder 2 and the leg portion 34 of the slide 3 are provided at six equal positions on the circumference.
  • the screw portions 32 of all the leg portions 34 simultaneously pass through the end portions of the screw portions 22 of all the leg portions 24 of the holder 2.
  • the end portion of the leg portion 24 of the slide 3 may be caught on the end portion of the leg portion 34 of the holder 2.
  • FIG. 9A shows an embodiment in which the number of leg portions 24 of the holder 2 is different from the number of leg portions 34 of the slide 3.
  • the leg portion 24 of the holder 2 is provided at the six-divided position on the circumference, whereas the leg portion 34 of the slide 3 is provided at the five-divided position on the circumference.
  • one leg portion 34 is caught with the leg portion 24 of the holder 2 as indicated by reference numeral 71. Since the other leg 34 is screwed with the leg 24 of the holder 2, the slide 3 is always screwed with the holder 2. For this reason, stable operation can be ensured.
  • the number of the leg portions 24 of the holder 2 and the number of the leg portions 34 of the slide 3 may be different, and is not limited to FIG.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Devices For Conveying Motion By Means Of Endless Flexible Members (AREA)

Abstract

Provided is a tensioner that can be easily lightened and miniaturized, has few parts, and is easy to assemble. The tensioner is provided with: two bottomed-cylinders (2,3) that contain a plurality of legs (24, 34), which have springs (22, 32) formed on one side thereof, and that, by means of the springs (22, 32) being meshed together, are attached together such that relative rotation is possible; and an elastic member (4) that is provided internally to the cylinders (2, 3) and generates a spring force that, whilst propelling one of the cylinders (3) forward, rotates the same around the other cylinder (2). Amongst the plurality of legs (24, 34) of the two cylinders (2, 3), at least two of the legs are arranged so as to maintain the meshed state of the springs (22, 32) during the rotation of the cylinder (3).

Description

テンショナーTensioner
 本発明は無端状のベルトやチェーンの張力を一定に保つために用いられるテンショナーに関する。 The present invention relates to a tensioner used to keep the tension of an endless belt or chain constant.
 テンショナーは例えば、自動車のエンジンに使用されるタイミングチェーンやタイミングベルトを所定の力で押圧しており、これらに伸びや緩みが生じた場合に,その張力を一定に保つように作用する。 The tensioner, for example, presses a timing chain or timing belt used in an automobile engine with a predetermined force, and acts to keep the tension constant when the chain is stretched or loosened.
 図10は自動車のエンジン本体200の内部を示す。エンジン本体200の内部には、従動軸である一対のカムスプロケット210、210と駆動軸であるクランクスプロケット220とが配置されており、これらのスプロケット210、210、220の間にタイミングチェーン230が無端状となって掛け渡されている。そしてクランクスプロケット220の回転によってタイミングチェーン230がスプロケット210、210、220の間を移動(走行)する。タイミングチェーン230の移動路上にはチェーンガイド240がタイミングチェーン230に接触するように配置されており、タイミングチェーン230はチェーンガイド240を摺動しながら移動する。チェーンガイド240は支軸250を中心に揺動可能となっており、この揺動によってタイミングチェーン230の張力を調整する。 FIG. 10 shows the inside of the engine body 200 of the automobile. A pair of cam sprockets 210 and 210 that are driven shafts and a crank sprocket 220 that is a drive shaft are disposed inside the engine body 200, and the timing chain 230 is endless between these sprockets 210, 210, and 220. It is stretched over in a shape. The timing chain 230 moves (runs) between the sprockets 210, 210, and 220 by the rotation of the crank sprocket 220. A chain guide 240 is disposed on the moving path of the timing chain 230 so as to contact the timing chain 230, and the timing chain 230 moves while sliding on the chain guide 240. The chain guide 240 can swing around the support shaft 250, and the tension of the timing chain 230 is adjusted by this swing.
符号300はチェーンガイド240をタイミングチェーン230に押圧するためエンジン本体200に設けられたテンショナーである。テンショナー300は軸方向への伸縮によってチェーンガイド240を押圧する構造のものが一般的に使用される。このテンショナー300は、エンジン本体200に固定されるケース310と、ケース310の内部に進退移動可能に設けられた推進シャフト320とを備えており、推進シャフト320の先端部分がチェーンガイド240を押圧する。 Reference numeral 300 denotes a tensioner provided in the engine body 200 for pressing the chain guide 240 against the timing chain 230. The tensioner 300 generally has a structure that presses the chain guide 240 by expansion and contraction in the axial direction. The tensioner 300 includes a case 310 fixed to the engine main body 200 and a propulsion shaft 320 provided inside the case 310 so as to be capable of moving forward and backward. The tip portion of the propulsion shaft 320 presses the chain guide 240. .
 特許文献1及び2には、推進シャフト320を進出させる図10のテンショナーと同様な構造の従来のテンショナーが開示されている。これらの特許文献の構造では、先端に推進シャフトを一体に形成したナット部材と、ナット部材に螺合したボルトとをケースの内部に設けると共に、ナット部材を押圧する荷重用ばねをケースの内部に設けている。また特許文献1の構造では、ボルトを回転させる回転用ばねをボルトの内部にさらに設けており、特許文献2の構造では、ナット部材を押圧する押出用ばねをボルトの内部にさらに設けている Patent Documents 1 and 2 disclose a conventional tensioner having a structure similar to that of the tensioner of FIG. In the structures of these patent documents, a nut member integrally formed with a propulsion shaft at the tip and a bolt screwed to the nut member are provided inside the case, and a load spring for pressing the nut member is provided inside the case. Provided. Moreover, in the structure of patent document 1, the spring for rotation which rotates a volt | bolt is further provided in the inside of a volt | bolt, and in the structure of patent document 2, the spring for extrusion which presses a nut member is further provided in the inside of a volt | bolt.
特開昭64-41756号公報JP-A-64-41756 特開平2-56948号公報Japanese Patent Laid-Open No. 2-56948
 しかしながら、特許文献1及び2に記載されているテンショナーにおいては、ケースを丸棒からの削り出し加工を行い、ナット部材を丸棒から削り出ししてタップ加工を行い、ボルトを丸棒から削り出しして転造加工することにより形成する必要があることから、ケース、ナット部材、ボルトのいずれもが重量が大きく、テンショナー全体の軽量化が難しいものとなっている。また、ナット部材、ボルト、複数のばねやこれらの部材を収容するケースによって形成されているため、部品点数が多く、構造が複雑で組み立てが難しいばかりでなく、小型化することが難しい問題がある。 However, in the tensioners described in Patent Documents 1 and 2, the case is machined from a round bar, the nut member is machined from the round bar, tapped, and the bolt is machined from the round bar. Since it is necessary to form by rolling, the case, the nut member, and the bolt are all heavy, and it is difficult to reduce the weight of the entire tensioner. In addition, since it is formed by a nut member, bolts, a plurality of springs, and a case that accommodates these members, there are many parts, the structure is complicated and difficult to assemble, and it is difficult to reduce the size. .
 本発明は、このような問題点を考慮してなされたものであり、軽量化及び小型化が容易であり、しかも部品点数が少なく組み立ても容易なテンショナーを提供することを目的とする。 The present invention has been made in consideration of such problems, and an object of the present invention is to provide a tensioner that can be easily reduced in weight and size, and that can be easily assembled with a reduced number of parts.
 本発明のテンショナーは、片面にねじ部が形成された複数の脚部を有し、前記複数の脚部が円周方向で離隔された状態で軸方向に延びており、前記ねじ部が相互に螺合することにより相対回転可能に組み付けられる2つの有底の筒状部材と、組み付けられた前記2つの筒状部材の内部に設けられ、一方の筒状部材が他方の筒状部材に対して回転しながら推進するばね力を作用させる弾性部材とを備え、前記2つの筒状部材の複数の脚部の内、少なくとも2つの脚部は前記筒状部材の回転時に前記ねじ部が螺合状態を維持するように設けられていることを特徴とする。 The tensioner of the present invention has a plurality of leg portions each having a thread portion formed on one side thereof, and the plurality of leg portions extend in the axial direction in a state of being separated in the circumferential direction, and the thread portions are mutually connected. Two bottomed cylindrical members that are assembled so as to be relatively rotatable by screwing together, and the two cylindrical members that are assembled are provided, one cylindrical member with respect to the other cylindrical member An elastic member that exerts a spring force that is propelled while rotating, and at least two of the plurality of leg portions of the two cylindrical members are screwed with the threaded portion when the cylindrical member is rotated. It is provided so that it may be maintained.
 この場合、前記2つの筒状部材の内、少なくとも一方の筒状部材のねじ部における相手側の筒状部材のねじ部との螺合始端部分にねじ山の他の部分の間隔よりも大きな誘い込み口が形成され、前記誘い込み口から奥側に向って漸次間隔が狭まるガイド部が形成されていることが好ましい。 In this case, of the two cylindrical members, at least one of the threaded portions of the tubular member is led to a threaded start end portion with the threaded portion of the mating tubular member that is larger than the interval between the other portions of the thread. It is preferable that a mouth is formed and a guide portion is formed in which the interval gradually decreases from the guide port toward the back side.
 また、前記2つの筒状部材は前記脚部がスリット部を介して離隔されており、前記脚部の幅は前記スリット部の幅よりも大きくなっていることが好ましい。 Further, it is preferable that the leg portions of the two cylindrical members are separated via a slit portion, and the width of the leg portion is larger than the width of the slit portion.
 また、前記2つの筒状部材は、複数の脚部の数が異なっていることが好ましい。 Further, it is preferable that the two cylindrical members have different numbers of leg portions.
 また、前記2つの筒状部材の複数の全ての脚部は、前記筒状部材の回転時にねじ部の螺合状態を維持するように設けられていることが好ましい。 Further, it is preferable that all of the plurality of leg portions of the two cylindrical members are provided so as to maintain the screwed state of the screw portion when the cylindrical member rotates.
 また、前記2つの筒状部材の内、少なくとも一方の筒状部材が板材のプレス加工によって形成されていることが好ましい。 Further, it is preferable that at least one of the two cylindrical members is formed by pressing a plate material.
 本発明のテンショナーは、2つの筒状部材の脚部に形成されているねじ部を螺合させて2つの筒状部材を組み付けると共に、2つの筒状部材の内部に弾性部材を配置させることにより形成される。このテンショナーは弾性部材のばね力によって一方の筒状部材が他方の筒状部材に対して相対回転しながら推進するため、エンジン本体のタイミングチェーン等の外部部材に張力を付与することができる。このとき、少なくとも2つの脚部はねじ部が螺合状態を維持するため、安定した作動が可能となる。 In the tensioner of the present invention, the screw portions formed on the leg portions of the two cylindrical members are screwed together to assemble the two cylindrical members, and the elastic member is disposed inside the two cylindrical members. It is formed. Since this tensioner is propelled while the one cylindrical member rotates relative to the other cylindrical member by the spring force of the elastic member, tension can be applied to an external member such as a timing chain of the engine body. At this time, since the threaded portion of the at least two leg portions maintains the screwed state, stable operation is possible.
 このような本発明のテンショナーは、2つの筒状部材及び弾性部材によって形成されるため、部品点数が少なく、構造が簡単であり、組み付けが容易であり、小型化も容易となる。また、2つの筒状部材の脚部にねじ部を形成するだけで、丸棒等の無垢材を削り出して用いる必要がないため、重量が大きくなることがなく、テンショナー全体を軽量化することができる。 Since such a tensioner of the present invention is formed by two cylindrical members and an elastic member, the number of parts is small, the structure is simple, the assembly is easy, and the miniaturization is easy. Moreover, it is not necessary to cut out and use a solid material such as a round bar simply by forming a threaded portion on the legs of two cylindrical members, so that the weight does not increase and the entire tensioner is reduced in weight. Can do.
本発明の第1実施形態のテンショナーをエンジン本体に装着した状態を示す部分破断正面図である。It is a partially broken front view which shows the state which mounted | wore the engine main body with the tensioner of 1st Embodiment of this invention. 本発明の第1実施形態のテンショナーの全体斜視図である。It is the whole tensioner perspective view of a 1st embodiment of the present invention. (a)は支持プレートの部分破断側面図、(b)は平面図である。(A) is a partially broken side view of a support plate, (b) is a plan view. ホルダを示し、(a)は正面図、(b)は平面図、(c)はE-E線断面図である。The holder is shown, (a) is a front view, (b) is a plan view, and (c) is a sectional view taken along line EE. スライドを示し、(a)は正面図、(b)は平面図、(c)はF-F線断面図である。The slide is shown, (a) is a front view, (b) is a plan view, and (c) is a sectional view taken along line FF. 弾性部材の正面図である。It is a front view of an elastic member. 本発明の第2実施形態を示し、(a)はホルダの正面図、(b)は部分拡大斜視図である。The 2nd Embodiment of this invention is shown, (a) is a front view of a holder, (b) is a partial expansion perspective view. 本発明の第3実施形態を示し、(a)はホルダの正面図、(b)はスライドの正面図である。3rd Embodiment of this invention is shown, (a) is a front view of a holder, (b) is a front view of a slide. (a)は本発明の第4実施形態を示し、図2のG-G線における断面図であり、(b)は図2のG-G線における第1実施形態の断面図である。(A) shows 4th Embodiment of this invention, and is sectional drawing in the GG line of FIG. 2, (b) is sectional drawing of 1st Embodiment in the GG line of FIG. 一般的なテンショナーをエンジン本体に装着した状態を示す部分破断正面図である。It is a partially broken front view which shows the state which mounted | wore the engine main body with the general tensioner.
 以下、本発明を図示する実施形態により具体的に説明する。なお、各実施形態において、同一の部材には同一の符号を付して対応させてある。 Hereinafter, the present invention will be described in detail with reference to the illustrated embodiments. In each embodiment, the same member is assigned the same reference numeral.
(第1実施形態)
 図1~図6は本発明の第1実施形態のテンショナー1を示す。テンショナー1は例えば、図1に示すように、エンジン本体200に取り付けられることにより、エンジン本体200の内部のカムスプロケット210、210及びクランクスプロケット220に無端状に掛け渡されたタイミングチェーン230を押圧して張力を付与する。図1において、テンショナー1はチェーンガイド240を押圧することによりタイミングチェーン230に張力を付与するが、タイミングチェーン230に直接に張力を付与するようにしても良い。また、エンジン本体200以外の装置に対して用いることも可能である。
(First embodiment)
1 to 6 show a tensioner 1 according to a first embodiment of the present invention. For example, as shown in FIG. 1, the tensioner 1 is attached to the engine body 200 to press the timing chain 230 that is stretched endlessly on the cam sprockets 210 and 210 and the crank sprocket 220 inside the engine body 200. Apply tension. In FIG. 1, the tensioner 1 applies tension to the timing chain 230 by pressing the chain guide 240, but may apply tension directly to the timing chain 230. Further, it can be used for apparatuses other than the engine body 200.
 図2に示すように、テンショナー1は2つの筒状部材としてのホルダ2及びスライド3と、弾性部材4(図6参照)とを備えている。 As shown in FIG. 2, the tensioner 1 includes a holder 2 and a slide 3 as two cylindrical members, and an elastic member 4 (see FIG. 6).
 2つの筒状部材としてのホルダ2及びスライド3は、いずれも有底の筒体によって形成されており、ホルダ2が固定側、スライド3が推進側(移動側)となっている。固定側のホルダ2はフランジ状の支持プレート5に固定される(図2参照)。 The holder 2 and the slide 3 as two cylindrical members are both formed of a bottomed cylinder, and the holder 2 is a fixed side and the slide 3 is a propulsion side (moving side). The holder 2 on the fixed side is fixed to a flange-shaped support plate 5 (see FIG. 2).
 支持プレート5は図1に示すように、エンジン本体200の外壁にボルト止めされるものであり、エンジン本体200への支持プレート5のボルト止めによってテンショナー1がエンジン本体200に装着される。図2及び図3に示すように、支持プレート5は平面板からなる板本体50を有している。板本体50の中央部分にはバーリング51がプレスによって切り起こされており、板本体50におけるバーリング51の左右にはエンジン本体200への固定を行うための固定用孔52が形成されている。バーリング51はホルダ2を立ち上がり状に支持固定するためのものである(図2参照)。 As shown in FIG. 1, the support plate 5 is bolted to the outer wall of the engine body 200, and the tensioner 1 is attached to the engine body 200 by bolting the support plate 5 to the engine body 200. As shown in FIGS. 2 and 3, the support plate 5 has a plate body 50 made of a flat plate. A burring 51 is cut and raised at the center of the plate main body 50 by a press, and fixing holes 52 for fixing to the engine main body 200 are formed on the left and right sides of the burring 51 in the plate main body 50. The burring 51 is for supporting and fixing the holder 2 in a rising shape (see FIG. 2).
 図4に示すように、ホルダ2は、筒体部21と、筒体部21の外面のねじ部22(雄ねじ部)とによって形成されている。筒体部21は円形の底部23と、底部23から同方向に屈曲されて軸方向に延びる複数の脚部24とを有しており、底部23の中央には取付用孔25が形成されている。取付用孔25に支持プレート5のバーリング51を挿入し加締めることによりホルダ2が支持プレート5に立ち上がり状に支持される。 As shown in FIG. 4, the holder 2 is formed by a cylindrical portion 21 and a screw portion 22 (male screw portion) on the outer surface of the cylindrical portion 21. The cylindrical portion 21 has a circular bottom portion 23 and a plurality of leg portions 24 bent in the same direction from the bottom portion 23 and extending in the axial direction. A mounting hole 25 is formed at the center of the bottom portion 23. Yes. The holder 2 is supported by the support plate 5 in an upright manner by inserting and tightening the burring 51 of the support plate 5 into the mounting hole 25.
本実施形態において、脚部24は円周方向の6等分位置に設けられている。隣接する脚部24はスリット部26を介して円周方向で離隔されている。また6等分位置の複数の全ての脚部24は幅が同一となっている。ねじ部22はスリット部26で離隔された隣接の脚部24にわたってねじ山が連続するように形成されるものである。なお、ねじ部22は底部23を除く筒体部21の全長にわたって形成される。このようなホルダ2は平板の板材の片面にねじ切り加工し、この平板の板材に対してプレス加工を行うことにより作製することができる。このため軽量なホルダ2とすることができる。 In the present embodiment, the leg portion 24 is provided at six equal positions in the circumferential direction. Adjacent leg portions 24 are spaced apart in the circumferential direction via slit portions 26. Further, all of the plurality of leg portions 24 at the six equal positions have the same width. The screw portion 22 is formed so that the screw thread is continuous over the adjacent leg portions 24 separated by the slit portion 26. In addition, the screw part 22 is formed over the full length of the cylindrical part 21 except the bottom part 23. Such a holder 2 can be manufactured by threading one side of a flat plate material and pressing the flat plate material. For this reason, it can be set as the lightweight holder 2. FIG.
 図5に示すように、スライド3は筒体部31と、筒体部31の内面のねじ部32(雌ねじ部)とによって形成されている。筒体部31は円形の頭部33と、頭部33から同方向に屈曲されて軸方向に延びる複数の脚部34とを有している。頭部33は閉鎖されており、この頭部33がチェーンガイド240等の外部部材に当接する。脚部34はホルダ2と同様に、スリット部36を介して円周方向の6等分位置に離隔されるように設けられている。複数の全ての脚部34は幅が同一となっているが、ホルダ2の脚部24の幅よりも小さな幅となっている。 As shown in FIG. 5, the slide 3 is formed by a cylindrical portion 31 and a screw portion 32 (female screw portion) on the inner surface of the cylindrical portion 31. The cylindrical body portion 31 has a circular head portion 33 and a plurality of leg portions 34 that are bent in the same direction from the head portion 33 and extend in the axial direction. The head 33 is closed, and the head 33 abuts on an external member such as the chain guide 240. Similarly to the holder 2, the leg portion 34 is provided so as to be spaced apart at six equal positions in the circumferential direction via the slit portion 36. All of the plurality of legs 34 have the same width, but are smaller than the width of the legs 24 of the holder 2.
 スライド3は図2に示すようにホルダ2の外周を覆うようにホルダ2に組み付けられる。この組み付けにより頭部33はホルダ2の上部に被せられた状態となる。ねじ部32は脚部34における頭部33と反対側の端部に形成される。ねじ部32はホルダ2のねじ部22に螺合するものであり、スリット部36で離隔された隣接の脚部34にわたってねじ山が連続するように形成されている。このようなスライド3はホルダ2と同様に、平板の板材の片面にねじ切り加工し、この平板の板材に対してプレス加工を行うことにより作製することができる。このため軽量なスライド3とすることができる。 The slide 3 is assembled to the holder 2 so as to cover the outer periphery of the holder 2 as shown in FIG. By this assembly, the head 33 is put on the upper portion of the holder 2. The screw part 32 is formed at the end of the leg part 34 opposite to the head part 33. The screw portion 32 is screwed into the screw portion 22 of the holder 2, and is formed so that the thread is continuous over the adjacent leg portions 34 separated by the slit portion 36. Similar to the holder 2, such a slide 3 can be manufactured by threading one side of a flat plate material and pressing the flat plate material. For this reason, it can be set as the lightweight slide 3. FIG.
 ねじ部22、32を螺合することによりホルダ2とスライド3とが組み付けられた内部には空間が形成されており、弾性部材4はこの空間(ホルダ2の内部空間)内に配置される。弾性部材4は図6に示すようにコイルばねにより形成されている。コイルばねからなる弾性部材4は、圧縮状態でホルダ2の内部空間に収納され、長さ方向の一端部41がホルダ2の底部23に当接し、他端部42がスライド3の頭部33に当接する。これにより弾性部材4はスライド3が回転しながら推進するばね力をスライド3に作用させる。本実施形態において弾性部材4の他端部はコイル径が小さくなった小径部43となっており、スライド3の頭部33との接触径が小さくなっている。これによりスライド3の頭部33との摩擦力が小さくなり、スライド3の回転を円滑に行うことができる。 A space is formed inside the holder 2 and the slide 3 assembled by screwing the screw portions 22 and 32, and the elastic member 4 is arranged in this space (internal space of the holder 2). The elastic member 4 is formed of a coil spring as shown in FIG. The elastic member 4 made of a coil spring is housed in the inner space of the holder 2 in a compressed state, one end 41 in the length direction abuts against the bottom 23 of the holder 2, and the other end 42 contacts the head 33 of the slide 3. Abut. As a result, the elastic member 4 applies a spring force to the slide 3 that is propelled while the slide 3 rotates. In the present embodiment, the other end portion of the elastic member 4 is a small diameter portion 43 in which the coil diameter is reduced, and the contact diameter with the head portion 33 of the slide 3 is reduced. Thereby, the frictional force with the head 33 of the slide 3 is reduced, and the slide 3 can be smoothly rotated.
 本実施形態のテンショナー1は支持プレート5から立ち上がるようにホルダ2を固定し、弾性部材4を圧縮した状態でホルダ2の内部に挿入し、スライド3をホルダ2に被せてそのねじ部32をホルダ2のねじ部22に螺合することにより図2の状態に組み付けられる。この状態で図1に示すように、スライド3の頭部33がチェーンガイド240に当接するようにエンジン本体200に装着する。このことにより弾性部材4のばね力によりスライド3が図2のR方向に回転しながら推進し、チェーンガイド240を押圧する。これによりタイミングチェーン230に張力を付与することができる。一方、タイミングチェーン230が高張力となったとき、スライド3は反R方向に回転しながら弾性部材4のばね力に抗して後退する。これによりタイミングチェーン230の張力を調整する。 The tensioner 1 of the present embodiment fixes the holder 2 so as to rise from the support plate 5, inserts the elastic member 4 into the holder 2 in a compressed state, covers the slide 3 over the holder 2, and attaches the screw portion 32 to the holder 2 2 is assembled to the state shown in FIG. In this state, as shown in FIG. 1, the head 33 of the slide 3 is attached to the engine main body 200 so as to abut on the chain guide 240. Thus, the slide 3 is pushed by the spring force of the elastic member 4 while rotating in the direction R in FIG. Thereby, tension can be applied to the timing chain 230. On the other hand, when the timing chain 230 becomes high tension, the slide 3 moves backward against the spring force of the elastic member 4 while rotating in the anti-R direction. Thereby, the tension of the timing chain 230 is adjusted.
 このような実施形態において、スライド3とホルダ2との組み付け状態では、ホルダ2の脚部24の幅が大きく、スライド3の脚部34の幅が小さくなっているため、スライド3が回転する際に全ての脚部24、34のねじ部22、32が螺合状態を維持する。このため、偏荷重が作用しても、横方向の力を周方向で受けることができ、傾きを防止した作動が可能となり、安定して作動することができる。また、ホルダ2及びスライド3が無垢材からの切削材料ではなく、板材のプレス加工によって作製されているため、横方向の剛性が低くなり、作動時の動きがしなやかとなる。また、板材のプレス加工によって作製されるのに加えて部品点数が少ないため、軽量なテンショナーとすることができる。さらに部品点数が少ないため、構造が簡単であり、組み付けが容易となる。なお、本実施形態では、ホルダ2及びスライド3の脚部24、34の全てが螺合状態を維持しているが、本発明では、ホルダ2及びスライド3の少なくとも2つの脚部24、34が螺合状態を維持するものであれば良く、これにより横方向荷重を周方向で受けることができ、傾きを防止することができる。 In such an embodiment, in the assembled state of the slide 3 and the holder 2, the width of the leg portion 24 of the holder 2 is large and the width of the leg portion 34 of the slide 3 is small. In addition, the screw portions 22 and 32 of all the leg portions 24 and 34 maintain the screwed state. For this reason, even if an unbalanced load is applied, a lateral force can be received in the circumferential direction, and an operation that prevents tilting is possible, thus enabling a stable operation. Further, since the holder 2 and the slide 3 are made by pressing a plate material instead of a cutting material from a solid material, the lateral rigidity is lowered and the movement during operation is flexible. Further, since the number of parts is small in addition to being produced by pressing the plate material, a lightweight tensioner can be obtained. Furthermore, since the number of parts is small, the structure is simple and the assembly is easy. In the present embodiment, all of the leg portions 24 and 34 of the holder 2 and the slide 3 are maintained in a screwed state. However, in the present invention, at least two leg portions 24 and 34 of the holder 2 and the slide 3 are provided. Any device that maintains the screwed state may be used, whereby a lateral load can be received in the circumferential direction, and tilting can be prevented.
(第2実施形態)
 図7は本発明の第2実施形態を示す。ホルダ2の各脚部24の外周にはねじ部22が形成されるが、各脚部24のねじ部22のねじ山63におけるスリット部26側の両端部61は薄肉状のガイド面62となっている。スリット部26側の両端部61は螺合相手となるスライド3のねじ部32が螺合する始端部であり、薄肉状のガイド面62はこの両端部61に形成される。ガイド面62は先端部分が最も肉薄で、奥側に向かうにつれて漸次、肉厚となるテーパ状に形成されている。
(Second Embodiment)
FIG. 7 shows a second embodiment of the present invention. A screw portion 22 is formed on the outer periphery of each leg portion 24 of the holder 2, but both end portions 61 on the slit portion 26 side of the thread 63 of the screw portion 22 of each leg portion 24 are thin guide surfaces 62. ing. Both end portions 61 on the slit portion 26 side are start end portions to which the screw portions 32 of the slide 3 to be screwed are screwed, and thin guide surfaces 62 are formed at both end portions 61. The guide surface 62 has the thinnest tip, and is formed in a tapered shape that gradually becomes thicker toward the back side.
このようなテーパ状のガイド面62を各脚部24のねじ部22の両端部に形成することにより、ねじ部22の両端部は、ねじ山63の他の部分の間隔よりも大きな間隔の誘い込み口64となっている。また、この誘い込み口64には、奥側に向かってねじ山63の間隔が漸次狭まるガイド部65が連続している。ねじ山63の間隔が大きな誘い込み口64を形成することにより、螺合相手のスライド3のねじ部32がスリット部26からねじ部22に螺合する際にねじ部32、22の干渉を抑制することができ、円滑に螺合することができる。この螺合の後、スライド3のねじ部32はガイド部65に案内されてホルダ2のねじ部22の本来のねじ山63と螺合する。 By forming such tapered guide surfaces 62 at both ends of the threaded portion 22 of each leg portion 24, both ends of the threaded portion 22 are guided at a larger interval than the interval between other portions of the thread 63. It has a mouth 64. Further, a guide portion 65 in which the interval between the screw threads 63 is gradually narrowed toward the back side is continuous with the guide port 64. By forming the lead-in port 64 having a large gap between the screw threads 63, interference of the screw parts 32 and 22 is suppressed when the screw part 32 of the slide 3 to be screwed is screwed into the screw part 22 from the slit part 26. And can be smoothly screwed together. After this screwing, the screw part 32 of the slide 3 is guided by the guide part 65 and screwed with the original thread 63 of the screw part 22 of the holder 2.
 このような実施形態では、スライド3のねじ部32がホルダ2のねじ部22と干渉することが抑制されるため、スライド3、ホルダ2の製造時にねじ部32、22のずれやバリがあっても、これらを吸収するため、スライド3とホルダ2との螺合を円滑に行うことができる。なお、この実施形態では、ホルダ2のねじ部22だけに薄肉テーパ状のガイド面62を形成しているが、スライド3のねじ部32側だけに形成しても良く、ホルダ2のねじ部22及びスライド3のねじ部32の双方に形成しても良い。 In such an embodiment, since the screw portion 32 of the slide 3 is prevented from interfering with the screw portion 22 of the holder 2, there is a deviation or burr of the screw portions 32, 22 during the manufacture of the slide 3 or the holder 2. However, since these are absorbed, the slide 3 and the holder 2 can be smoothly screwed together. In this embodiment, the thin tapered guide surface 62 is formed only on the screw portion 22 of the holder 2, but it may be formed only on the screw portion 32 side of the slide 3, or the screw portion 22 of the holder 2. Further, it may be formed on both of the thread portions 32 of the slide 3.
(第3実施形態)
 図8は本発明の第3実施形態であり、(a)はホルダ2、(b)はスライド3を示す。この実施形態では、ホルダ2の脚部24の幅及びスライド3の脚部34の幅をそれぞれのスリット26、36の幅よりも大きくするものである。すなわち、図8(a)のホルダ2においては脚部24の幅Aをスリット部26の幅Bよりも大きくし(A>B)、図8(b)のスライド3においては脚部34の幅Cをスリット部36の幅Dよりも大きくするものである(C>D)。このように脚部24、34の幅をスリット部26、36の幅よりも大きくすることにより、スライド3が回転する際にいずれかの脚部24、34が相手側の脚部34、24と螺合した状態を維持することができる。これにより常にホルダ2とスライド3とが螺合状態となっているため円滑に作動することができる。
(Third embodiment)
FIG. 8 shows a third embodiment of the present invention, where (a) shows the holder 2 and (b) shows the slide 3. In this embodiment, the width of the leg portion 24 of the holder 2 and the width of the leg portion 34 of the slide 3 are made larger than the widths of the respective slits 26 and 36. That is, in the holder 2 of FIG. 8A, the width A of the leg portion 24 is made larger than the width B of the slit portion 26 (A> B), and in the slide 3 of FIG. C is larger than the width D of the slit portion 36 (C> D). Thus, by making the width of the leg portions 24 and 34 larger than the width of the slit portions 26 and 36, when the slide 3 rotates, any one of the leg portions 24, 34 is connected to the other leg portion 34, 24. The screwed state can be maintained. Thereby, since the holder 2 and the slide 3 are always screwed, it can operate smoothly.
(第4実施形態)
 図9(a)は本発明の第4実施形態であり、図2のG-G線断面を示す。図9(b)は第1実施形態におけるホルダ2とスライド3の関係を示し、ホルダ2の脚部24及びスライド3の脚部34が円周の6等分位置に設けられている。この状態でスライド3が矢印R方向に回転すると、全ての脚部34のねじ部32がホルダ2の全ての脚部24のねじ部22の端部を同時に通過する。このときにおいては、符号71で示すようにスライド3の脚部24の端部がホルダ2の脚部34の端部に引っ掛かる場合がある。
(Fourth embodiment)
FIG. 9A shows a fourth embodiment of the present invention and shows a cross section taken along the line GG of FIG. FIG. 9B shows the relationship between the holder 2 and the slide 3 in the first embodiment. The leg portion 24 of the holder 2 and the leg portion 34 of the slide 3 are provided at six equal positions on the circumference. When the slide 3 rotates in the arrow R direction in this state, the screw portions 32 of all the leg portions 34 simultaneously pass through the end portions of the screw portions 22 of all the leg portions 24 of the holder 2. At this time, as indicated by reference numeral 71, the end portion of the leg portion 24 of the slide 3 may be caught on the end portion of the leg portion 34 of the holder 2.
 図9(a)はホルダ2の脚部24の数とスライド3の脚部34の数とを異ならせた実施形態を示す。ホルダ2の脚部24が円周の6等分位置に設けられているのに対し、スライド3の脚部34が円周の5等分位置に設けられている。このようにスライド3の脚部34の数とホルダ2の脚部24の数とを異ならせることにより、符号71で示すように一の脚部34がホルダ2の脚部24と引っ掛かりを生じても他の脚部34はホルダ2の脚部24と螺合しているため、スライド3は常にホルダ2との螺合状態となっている。このため安定した作動を確保することができる。なお、ホルダ2の脚部24及びスライド3の脚部34の数は異なっていれば良く、図9(a)に限定されるものではない。 FIG. 9A shows an embodiment in which the number of leg portions 24 of the holder 2 is different from the number of leg portions 34 of the slide 3. The leg portion 24 of the holder 2 is provided at the six-divided position on the circumference, whereas the leg portion 34 of the slide 3 is provided at the five-divided position on the circumference. Thus, by making the number of the leg portions 34 of the slide 3 different from the number of the leg portions 24 of the holder 2, one leg portion 34 is caught with the leg portion 24 of the holder 2 as indicated by reference numeral 71. Since the other leg 34 is screwed with the leg 24 of the holder 2, the slide 3 is always screwed with the holder 2. For this reason, stable operation can be ensured. Note that the number of the leg portions 24 of the holder 2 and the number of the leg portions 34 of the slide 3 may be different, and is not limited to FIG.
1 テンショナー
2 ホルダ(筒状部材)
3 スライド(筒状部材)
4 弾性部材
22、32 ねじ部
24、34 脚部
26、36 スリット部
62 ガイド面
63 ねじ山
64 誘い込み口
65 ガイド部
1 Tensioner 2 Holder (tubular member)
3 Slide (tubular member)
4 Elastic member 22, 32 Thread part 24, 34 Leg part 26, 36 Slit part 62 Guide surface 63 Thread 64 Lead-in port 65 Guide part

Claims (6)

  1.  片面にねじ部が形成された複数の脚部を有し、前記複数の脚部が円周方向で離隔された状態で軸方向に延びており、前記ねじ部が相互に螺合することにより相対回転可能に組み付けられる2つの有底の筒状部材と、
     組み付けられた前記2つの筒状部材の内部に設けられ、一方の筒状部材が他方の筒状部材に対して回転しながら推進するばね力を作用させる弾性部材とを備え、
     前記2つの筒状部材の複数の脚部の内、少なくとも2つの脚部は前記筒状部材の回転時に前記ねじ部が螺合状態を維持するように設けられていることを特徴とするテンショナー。
    A plurality of leg portions each having a thread portion formed on one side thereof, the plurality of leg portions extending in an axial direction in a state of being spaced apart in a circumferential direction; Two bottomed tubular members assembled in a rotatable manner;
    An elastic member that is provided inside the two cylindrical members assembled, and that exerts a spring force that is propelled while one cylindrical member rotates with respect to the other cylindrical member;
    A tensioner, wherein at least two of the plurality of leg portions of the two cylindrical members are provided so that the threaded portion maintains a screwed state when the cylindrical member rotates.
  2.  請求項1記載のテンショナーであって、
     前記2つの筒状部材の内、少なくとも一方の筒状部材のねじ部における相手側の筒状部材のねじ部との螺合始端部分にねじ山の他の部分の間隔よりも大きな誘い込み口が形成され、前記誘い込み口から奥側に向って漸次間隔が狭まるガイド部が形成されていることを特徴とするテンショナー。
    A tensioner according to claim 1, wherein
    Of the two cylindrical members, a lead-in opening larger than the interval between the other portions of the thread is formed at the screwing start end portion of the threaded portion of at least one of the cylindrical members with the threaded portion of the opposite cylindrical member. The tensioner is characterized in that a guide portion is formed in which the interval gradually decreases from the guide port toward the back side.
  3.  請求項1または2記載のテンショナーであって、
     前記2つの筒状部材は前記脚部がスリット部を介して離隔されており、前記脚部の幅は前記スリット部の幅よりも大きくなっていることを特徴とするテンショナー。
    A tensioner according to claim 1 or 2,
    The tensioner characterized in that the leg portions of the two cylindrical members are separated via a slit portion, and the width of the leg portion is larger than the width of the slit portion.
  4.  請求項1乃至3のいずれか1項記載のテンショナーであって、
     前記2つの筒状部材は、複数の脚部の数が異なっていることを特徴とするテンショナー。
    The tensioner according to any one of claims 1 to 3,
    The tensioner characterized in that the two cylindrical members have different numbers of legs.
  5.  請求項1乃至4のいずれか1項記載のテンショナーであって、
     前記2つの筒状部材の複数の全ての脚部は、前記筒状部材の回転時にねじ部の螺合状態を維持するように設けられていることを特徴とするテンショナー。
    A tensioner according to any one of claims 1 to 4,
    A tensioner characterized in that all of the plurality of leg portions of the two cylindrical members are provided so as to maintain the screwed state of the screw portion when the cylindrical member rotates.
  6.  請求項1乃至5のいずれか1項記載のテンショナーであって、
     前記2つの筒状部材の内、少なくとも一方の筒状部材が板材のプレス加工によって形成されていることを特徴とするテンショナー。
    A tensioner according to any one of claims 1 to 5,
    A tensioner, wherein at least one of the two cylindrical members is formed by pressing a plate material.
PCT/JP2014/056577 2013-03-22 2014-03-12 Tensioner WO2014148342A1 (en)

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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010101381A (en) * 2008-10-22 2010-05-06 Ntn Corp Chain tensioner
JP2011127731A (en) * 2009-12-21 2011-06-30 Nhk Spring Co Ltd Tensioner

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010101381A (en) * 2008-10-22 2010-05-06 Ntn Corp Chain tensioner
JP2011127731A (en) * 2009-12-21 2011-06-30 Nhk Spring Co Ltd Tensioner

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