JP4950115B2 - Suspension support - Google Patents

Suspension support Download PDF

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JP4950115B2
JP4950115B2 JP2008117600A JP2008117600A JP4950115B2 JP 4950115 B2 JP4950115 B2 JP 4950115B2 JP 2008117600 A JP2008117600 A JP 2008117600A JP 2008117600 A JP2008117600 A JP 2008117600A JP 4950115 B2 JP4950115 B2 JP 4950115B2
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elastic
foamed resin
rubber
side wall
inner member
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JP2009264553A (en
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顕 鈴木
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Toyo Tire Corp
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Toyo Tire and Rubber Co Ltd
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Description

本発明は、自動車などの車両のサスペンション機構におけるショックアブソーバのピストンロッドを、車体に対して弾性的に結合するためのサスペンションサポートに関するものである。   The present invention relates to a suspension support for elastically coupling a piston rod of a shock absorber in a suspension mechanism of a vehicle such as an automobile to a vehicle body.

従来、自動車のサスペンション機構においては、車輪側から車体側への振動の伝達を抑制するために、ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、該内側部材の外周を取り囲み車体側に取り付けられる外側部材と、これら内側部材と外側部材との間に介在する環状の弾性部材とを備えてなるサスペンションサポートが用いられている(下記特許文献1参照)。   2. Description of the Related Art Conventionally, in an automobile suspension mechanism, in order to suppress transmission of vibration from the wheel side to the vehicle body side, an inner member into which an upper end portion of a piston rod of a shock absorber is inserted and fixed, and an outer periphery of the inner member are surrounded. A suspension support including an outer member attached to the side and an annular elastic member interposed between the inner member and the outer member is used (see Patent Document 1 below).

上記弾性部材としては、一般にゴム材料が用いられているが、近年、発泡ウレタンなどの連続気泡構造を持つ発泡樹脂材料の採用が試みられている(下記特許文献2参照)。発泡ウレタンは、その材料特性上、ゴム材料に比べて、動倍率を抑えながら減衰性能を大きくすることができ、乗り心地性を向上することができる。
特開2003−278822号公報 特開2003−184937号公報
As the elastic member, a rubber material is generally used, but in recent years, an attempt has been made to adopt a foamed resin material having an open cell structure such as foamed urethane (see Patent Document 2 below). Due to the material properties of urethane foam, it is possible to increase the damping performance while suppressing the dynamic magnification as compared with rubber materials, and to improve riding comfort.
JP 2003-278822 A JP 2003-184937 A

上記弾性部材は、軸方向に予備圧縮された状態にてサスペンションサポートに組み込まれて使用されるが、発泡ウレタンの高減衰特性を有効に使うためには、予備圧縮率を下げて使用することが望ましい。しかしながら、予備圧縮率が低いと、サスペンションサポートとしての静的バネ定数(軸方向での静的バネ定数)が低くなってしまい、操縦安定性を損なうことになる。   The elastic member is used by being incorporated into the suspension support in a state of being pre-compressed in the axial direction. However, in order to effectively use the high damping characteristic of urethane foam, it is possible to use it with a reduced pre-compression rate. desirable. However, when the precompression ratio is low, the static spring constant (static spring constant in the axial direction) as the suspension support is low, and steering stability is impaired.

また、発泡ウレタンからなる弾性部材では、バウンド側への変位時(即ち、内側部材の上方への相対変位時)における静的バネ定数と、リバウンド側への変位時(即ち、内側部材の下方への相対変位時)における静的バネ定数との間で、差をつけることが難しい。   In addition, in the elastic member made of urethane foam, the static spring constant at the time of displacement toward the bound side (that is, when the inner member is displaced upward) and the displacement at the rebound side (that is, downward of the inner member). It is difficult to make a difference with the static spring constant at the time of relative displacement.

本発明は、上記の点に鑑みてなされたものであり、軸方向での静的バネ定数を維持しながら、発泡樹脂成形体からなる弾性部材の予備圧縮率を下げて、高減衰特性を発揮することができるサスペンションサポートを提供することを目的とする。   The present invention has been made in view of the above points, and while maintaining a static spring constant in the axial direction, lowers the precompression ratio of an elastic member made of a foamed resin molded body and exhibits high damping characteristics. It is an object to provide a suspension support that can.

本発明に係るサスペンションサポートは、ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、前記内側部材の外周を取り囲み車体側に取り付けられる外側部材と、前記内側部材と前記外側部材との間に介在する連続気泡構造の発泡樹脂成形体からなる環状の弾性部材と、を備えてなり、前記内側部材は前記ピストンロッドの軸直角方向外方側に張り出すフランジ部を備え、前記外側部材は、前記弾性部材を内包する筒部と、前記筒部の軸方向の両端部において軸直角方向で内向きに形成されて前記弾性部材を軸方向にて挟圧する上側壁部及び下側壁部とを備え、前記弾性部材は、前記フランジ部の上面と前記上側壁部の下面との間で挟圧保持される上側弾性部と、前記フランジ部の下面と前記下側壁部の上面との間で挟圧保持される下側弾性部とを備え、前記上側弾性部と前記下側弾性部の少なくとも一方の弾性部が、前記フランジ部と前記上側壁部又は前記下側壁部との間で挟圧されるゴム弾性部と、前記発泡樹脂成形体からなる発泡樹脂弾性部とで構成され、前記ゴム弾性部が、前記弾性部材の周方向において、前記発泡樹脂弾性部と交互に複数設けられたことを基本構成とするものである。 A suspension support according to the present invention includes an inner member into which an upper end portion of a piston rod of a shock absorber is inserted and fixed, an outer member that surrounds an outer periphery of the inner member and is attached to a vehicle body side, and the inner member and the outer member. An annular elastic member formed of a foamed resin molded body having an open cell structure interposed therebetween, and the inner member includes a flange portion projecting outward in the direction perpendicular to the axis of the piston rod, and the outer member A cylindrical portion containing the elastic member, and an upper side wall portion and a lower side wall portion that are formed inward in a direction perpendicular to the axial direction at both axial end portions of the cylindrical portion and clamp the elastic member in the axial direction. The elastic member includes an upper elastic portion held between the upper surface of the flange portion and the lower surface of the upper side wall portion, and between the lower surface of the flange portion and the upper surface of the lower side wall portion. A lower elastic portion that is held by pressure, and at least one of the upper elastic portion and the lower elastic portion is pinched between the flange portion and the upper or lower side wall portion. And a plurality of foamed elastic resin portions, and a plurality of the elastic rubber portions are provided alternately with the foamed resin elastic portions in the circumferential direction of the elastic member. Is a basic configuration .

このようにフランジ部の上下いずれか少なくとも一方の弾性部を、ゴム弾性部と発泡樹脂弾性部を組み合わせて構成したことにより、発泡樹脂弾性部を予備圧縮率の低い領域で使用して、高減衰特性を発揮することができる。また、予備圧縮率が低いことに起因して静的バネ定数が足りない分はゴム弾性部で補うことができる。そのため、軸方向での静的バネ定数を維持しながら、予備圧縮率の低い発泡樹脂弾性部で高減衰特性を発揮することができ、乗り心地性と操縦安定性を向上することができる。   As described above, the elastic part of at least one of the upper and lower sides of the flange part is configured by combining the rubber elastic part and the foamed resin elastic part. The characteristic can be exhibited. Further, the lack of the static spring constant due to the low precompression ratio can be compensated by the rubber elastic portion. Therefore, while maintaining the static spring constant in the axial direction, it is possible to exhibit high damping characteristics with the foamed resin elastic portion having a low preliminary compression rate, and it is possible to improve ride comfort and steering stability.

また、例えば、上側弾性部と下側弾性部のいずれか一方の弾性部をゴム弾性部と発泡樹脂弾性部との組み合わせで構成し、他方の弾性部を発泡樹脂成形体で構成した場合には、これら一方側と他方側の静的バネ定数の差を大きくとることができる。   In addition, for example, when one of the upper elastic portion and the lower elastic portion is constituted by a combination of a rubber elastic portion and a foamed resin elastic portion, and the other elastic portion is constituted by a foamed resin molded body, The difference in static spring constant between the one side and the other side can be made large.

上記構成においては、ゴム弾性部が、弾性部材の周方向において、発泡樹脂弾性部と交互に複数設けられていることが、上記作用効果の点から実用上好ましい。   In the said structure, it is practically preferable from the point of the said effect that the rubber elastic part is provided with two or more with the foamed resin elastic part in the circumferential direction of an elastic member.

請求項1記載の発明は、上記基本構成において、前記ゴム弾性部は前記フランジ部の上面又は下面において周方向の複数箇所に凸状に設けられ、複数の前記発泡樹脂弾性部は環状連結部により外周部が連結されることで一体に設けられ、前記フランジ部には前記発泡樹脂弾性部の内周縁に当接して当該発泡樹脂弾性部の軸直角方向内方への変位を制限する規制ゴム部が設けられたものである。この場合、複数の発泡樹脂弾性部は環状の一体品として形成されており、これをフランジ部上でゴム弾性部と組み合わせることで、弾性部材が形成される。その際、フランジ部に規制ゴム部が設けられているので、発泡樹脂弾性部の軸直角方向での位置決めを確実にして、性能バラツキを解消することができる。 According to a first aspect of the present invention, in the basic configuration, the rubber elastic portion is provided in a convex shape at a plurality of locations in the circumferential direction on the upper surface or the lower surface of the flange portion, and the plurality of foamed resin elastic portions are formed by an annular coupling portion A restriction rubber portion that is integrally provided by connecting an outer peripheral portion and restricts displacement of the foamed resin elastic portion inward in the direction perpendicular to the axis by contacting the inner peripheral edge of the foamed resin elastic portion on the flange portion in which is provided. In this case, the plurality of foamed resin elastic portions are formed as an annular integrated product, and an elastic member is formed by combining this with a rubber elastic portion on the flange portion. At that time, since the restriction rubber portion is provided in the flange portion, the positioning of the foamed resin elastic portion in the direction perpendicular to the axis can be ensured, and the performance variation can be eliminated.

請求項2記載の発明は、上記基本構成において、前記ゴム弾性部、前記内側部材を挟んで軸直角方向に相対する2箇所と、該2箇所以外の複数の周方向位置とに設けられ、前記軸直角方向に相対するゴム弾性部が、他の周方向位置のゴム弾性部よりも周方向幅が大に設定されたものである。これにより次の作用効果が奏される。すなわち、乗り心地性の更なる向上のためには、内側部材の軸が傾く方向であるこじり方向での静的バネ定数を低減することが望ましいが、単にこじり方向の静的バネ定数を下げると、軸方向での静的バネ定数も低減してしまう。これに対し、上記のようにゴム弾性部の周方向幅に差を付けることで、こじり特性に方向性を持たせることができる。そのため、軸方向での静的バネ定数を維持しつつ、こじり方向(特には、上記軸直角方向に直交する軸直角方向にて内側部材の軸が傾く方向でのこじり方向)の静的バネ定数を低減することができる。従って、操縦安定性を犠牲にすることなく、乗り心地性を向上させることができる。 The invention according to claim 2 is characterized in that, in the basic configuration, the rubber elastic portion is provided at two locations facing in a direction perpendicular to the axis across the inner member and a plurality of circumferential positions other than the two locations. The rubber elastic part facing in the direction perpendicular to the axis is set to have a larger circumferential width than the rubber elastic parts at other circumferential positions . As a result, the following effects can be obtained. That is, in order to further improve the ride comfort, it is desirable to reduce the static spring constant in the twisting direction, which is the direction in which the axis of the inner member is inclined, but simply reducing the static spring constant in the twisting direction. The static spring constant in the axial direction is also reduced. On the other hand, by giving a difference in the circumferential width of the rubber elastic portion as described above, it is possible to give directionality to the twisting characteristics. Therefore, while maintaining the static spring constant in the axial direction, the static spring constant in the twisting direction (in particular, the twisting direction in the direction in which the axis of the inner member is inclined in the direction perpendicular to the axis perpendicular to the axis perpendicular direction). Can be reduced. Therefore, riding comfort can be improved without sacrificing steering stability.

請求項3記載の発明は、上記基本構成において、前記ゴム弾性部の内部に空気室が設けられ、前記空気室が絞り通路により外気に連通して設けられたものである。これにより、次の作用効果が奏される。すなわち、この場合、外側部材に対する内側部材の軸方向での相対変位時に、ゴム弾性部内の空気室が拡縮することにより、絞り通路を介して空気が出入りする。この空気の出入りによる位相遅れによって減衰性能を高めることができるので、動倍率を抑えながら減衰性能を向上することができる。従って、ゴム弾性部でも、発泡樹脂弾性部並みの減衰性能を発揮することができる。 According to a third aspect of the present invention, in the above basic configuration, an air chamber is provided inside the rubber elastic portion, and the air chamber is provided in communication with outside air through a throttle passage . Thereby , the following effects are exhibited. That is, in this case, when the inner member is displaced relative to the outer member in the axial direction, the air chamber in the rubber elastic portion expands and contracts, so that air enters and exits through the throttle passage. Since the attenuation performance can be enhanced by the phase delay due to the entry and exit of air, the attenuation performance can be improved while suppressing the dynamic magnification. Therefore, even the rubber elastic part can exhibit the same damping performance as the foamed resin elastic part.

請求項4記載の発明は、請求項3記載の発明において、前記空気室が、前記ゴム弾性部における前記フランジ部との当接面に凹設された凹部と、前記フランジ部との間で形成され、前記絞り通路が、前記ゴム弾性部における前記フランジ部との当接面において前記凹部から軸直角方向内方に延びる凹溝と、前記フランジ部との間で形成されたものである。この場合、空気室と絞り流路を形成しやすく、製造コストを抑えることができる。 According to a fourth aspect of the present invention, in the third aspect of the present invention, the air chamber is formed between a concave portion provided in a contact surface with the flange portion in the rubber elastic portion and the flange portion. is, the throttle passage, the groove extending in the axis-perpendicular direction inwardly from the recess at the contact surface between the flange portion of the rubber elastic portion, and is formed between said flange portion. In this case, the air chamber and the throttle channel can be easily formed, and the manufacturing cost can be suppressed.

請求項5記載の発明は、上記基本構成において前記上側弾性部と前記下側弾性部のいずれか一方の弾性部が、前記ゴム弾性部と前記発泡樹脂弾性部とで構成され、前記ゴム弾性部の内部に空気室が設けられて、前記空気室が絞り通路により外気に連通して設けられ、前記上側弾性部と前記下側弾性部の他方の弾性部が、全周にわたって連続気泡構造の発泡樹脂成形体で形成され、該他方の弾性部の内部に前記連続気泡を介して外気に連通する空気室が設けられたものである。このようにゴム弾性部だけでなく、発泡樹脂成形体からなる弾性部にも空気室を設けたことにより、更なる高減衰特性を発揮することができる。 According to a fifth aspect of the present invention, in the above basic configuration, one of the upper elastic portion and the lower elastic portion is constituted by the rubber elastic portion and the foamed resin elastic portion, and the rubber elasticity An air chamber is provided in the interior of the chamber, the air chamber is provided in communication with the outside air through a throttle passage, and the other elastic portion of the upper elastic portion and the lower elastic portion has an open cell structure over the entire circumference. is formed of a foamed resin molded body, in which the air chamber communicating with the outside air is provided through the open cells in the interior of the elastic portion of said other. Thus, by providing the air chamber not only in the rubber elastic portion but also in the elastic portion made of the foamed resin molded body, further high attenuation characteristics can be exhibited.

上記のように、本発明のサスペンションサポートであると、静的バネ定数を維持しながら、発泡樹脂成形体からなる弾性部材の予備圧縮率を下げて、高減衰特性を発揮することができる。   As described above, the suspension support of the present invention can exhibit a high damping characteristic by reducing the precompression ratio of the elastic member made of the foamed resin molding while maintaining the static spring constant.

(第1実施形態)
図1は、本発明の第1実施形態に係るサスペンションサポート10の断面図であり、図2は、その分解断面図である。このサスペンションサポート10は、自動車のストラットマウントであり、ショックアブソーバのピストンロッド1の上端部1Aが挿通固定される金属製の内側部材12と、その外周を取り囲み車体パネル2に取り付けられる金属製の外側部材14と、これら内側部材12と外側部材14との間に介在して内側部材12を外側部材14に対して防振的に支持する環状の弾性部材16とを備えてなる。サスペンションサポート10は、ピストンロッド1の軸方向Xを上下方向として設けられている。
(First embodiment)
FIG. 1 is a sectional view of a suspension support 10 according to the first embodiment of the present invention, and FIG. 2 is an exploded sectional view thereof. The suspension support 10 is a strut mount for an automobile, and includes a metal inner member 12 into which an upper end portion 1A of a shock absorber piston rod 1 is inserted and fixed, and a metal outer member that surrounds the outer periphery thereof and is attached to the vehicle body panel 2. The member 14 includes an annular elastic member 16 that is interposed between the inner member 12 and the outer member 14 and supports the inner member 12 against the outer member 14 in a vibration-proof manner. The suspension support 10 is provided with the axial direction X of the piston rod 1 as the vertical direction.

内側部材12は、ピストンロッド1の上端部1Aが下方から差し入れられる円筒状の内筒部18と、内筒部18の上端部においてピストンロッド1の軸直角方向外方側Yoに張り出すリング板状のフランジ部20とからなる。   The inner member 12 includes a cylindrical inner cylinder portion 18 into which the upper end portion 1A of the piston rod 1 is inserted from below, and a ring plate that protrudes to the outer side Yo in the direction perpendicular to the axis of the piston rod 1 at the upper end portion of the inner cylinder portion 18. And a flange portion 20 having a shape.

外側部材14は、弾性部材16を内包するとともに内側部材12を同芯状に取り囲む筒部22と、該筒部22の軸方向Xの両端部において軸直角方向Yで内向きYiに形成されて弾性部材16を軸方向Xにて挟圧する上側壁部24及び下側壁部26とを備えてなり、弾性部材16を内部に収容する容器状に形成されている。上側壁部24と下側壁部26はともに、リング板状をなしており、中央部に円形の開口部28,30を備える。   The outer member 14 includes an elastic member 16 and a cylindrical portion 22 that concentrically surrounds the inner member 12, and is formed inwardly Yi in the direction perpendicular to the axis Y at both ends in the axial direction X of the cylindrical portion 22. The upper side wall part 24 and the lower side wall part 26 which clamp the elastic member 16 in the axial direction X are provided, and it is formed in the container shape which accommodates the elastic member 16 in an inside. Both the upper wall portion 24 and the lower wall portion 26 have a ring plate shape, and are provided with circular openings 28 and 30 in the center.

外側部材14は、この例では、上方に開口する椀状の第1外側部材32と、その上面開口を覆う平板状の第2外側部材34とからなり、第1外側部材32で筒部22と下側壁部26が形成され、第2外側部材34で上側壁部24が形成されている。   In this example, the outer member 14 includes a bowl-shaped first outer member 32 that opens upward, and a flat plate-like second outer member 34 that covers the upper surface opening. A lower side wall portion 26 is formed, and an upper side wall portion 24 is formed by the second outer member 34.

詳細には、図2に示すように、第1外側部材32は、上方Xuほどわずかに径大に形成された逆テーパ状の筒部22と、その下端部において内向きYiのフランジ状に延設された下側壁部26と、筒部22の上端において外方側Yoに延設された下側フランジ36とからなり、下側壁部26の下面側に不図示のバウンドストッパを保持するための保持部38が設けられている。第2外側部材34は、段差を介してやや隆起した中央側の上側壁部24と、外周側の上側フランジ40とからなる。そして、車体パネル2の下面に対して、上側フランジ40と下側フランジ36とを重ね合わせてボルト3及びナット4で締結することにより、外側部材14は車体パネル2に固定されるように構成されている。   Specifically, as shown in FIG. 2, the first outer member 32 extends in a reverse-tapered cylindrical portion 22 formed with a slightly larger diameter toward the upper Xu, and an inward Yi flange shape at the lower end portion. The lower wall portion 26 provided and a lower flange 36 extending to the outer side Yo at the upper end of the cylindrical portion 22, for holding a bound stopper (not shown) on the lower surface side of the lower wall portion 26. A holding portion 38 is provided. The second outer member 34 includes an upper side wall 24 on the center side slightly raised through a step and an upper flange 40 on the outer peripheral side. The outer member 14 is fixed to the vehicle body panel 2 by overlapping the upper flange 40 and the lower flange 36 on the lower surface of the vehicle body panel 2 and fastening them with bolts 3 and nuts 4. ing.

弾性部材16は、フランジ部20の上面20A、下面20Bおよび外周面20Cを覆うように、内向きYiに開かれた断面コの字状をなしており、フランジ部20の上面20Aと上側壁部24の下面24Aとの間で軸方向Xに挟圧保持される環状の上側弾性部42と、フランジ部20の下面20Bと下側壁部26の上面26Aとの間で軸方向Xに挟圧保持される環状の下側弾性部44とを備えてなる。   The elastic member 16 has a U-shaped cross section opened inwardly Yi so as to cover the upper surface 20A, the lower surface 20B and the outer peripheral surface 20C of the flange portion 20, and the upper surface 20A and the upper side wall portion of the flange portion 20 The annular upper elastic portion 42 held in the axial direction X between the lower surface 24A of the 24 and the lower surface 20B of the flange portion 20 and the upper surface 26A of the lower side wall portion 26 held in the axial direction X. An annular lower elastic portion 44 is provided.

そして、この例では、上側弾性部42は、その全周にわたって連続気泡構造の発泡ウレタン成形体で形成される一方、下側弾性部44は、フランジ部20と下側壁部26との間で挟圧保持されるゴム材料からなるゴム弾性部46と、連続気泡構造の発泡ウレタン成形体からなる発泡樹脂弾性部48とで構成されている。図3(c)及び図5(c)に示すように、ゴム弾性部46は、弾性部材16の周方向Cにおいて、発泡樹脂弾性部48と交互に複数(ここでは6個ずつ)設けられており、この例では、ゴム弾性部46と発泡樹脂弾性部48とが均等に、かつ、両者の周方向幅が同じに設定されている。   In this example, the upper elastic portion 42 is formed of a foamed urethane molded body having an open cell structure over the entire circumference, while the lower elastic portion 44 is sandwiched between the flange portion 20 and the lower side wall portion 26. A rubber elastic part 46 made of a pressure-held rubber material and a foamed resin elastic part 48 made of a foamed urethane molded body having an open cell structure are formed. As shown in FIG. 3C and FIG. 5C, the rubber elastic portion 46 is provided in plural (here, six pieces) alternately with the foamed resin elastic portion 48 in the circumferential direction C of the elastic member 16. In this example, the rubber elastic portion 46 and the foamed resin elastic portion 48 are set to be equal and the circumferential widths of both are set to be the same.

図2に示すように、上側弾性部42と、下側弾性部44のゴム弾性部46と、下側弾性部44の発泡樹脂弾性部48とは、それぞれ別々に成形されている。上側弾性部42は、図4に示すように、周方向Cの全周にわたって一定の厚みを持つ環状の発泡ウレタン成形体であり、下面に内側部材12のフランジ部20を受け入れる浅底の受入凹部50を備える。   As shown in FIG. 2, the upper elastic portion 42, the rubber elastic portion 46 of the lower elastic portion 44, and the foamed resin elastic portion 48 of the lower elastic portion 44 are separately molded. As shown in FIG. 4, the upper elastic portion 42 is an annular foamed urethane molded body having a constant thickness over the entire circumference in the circumferential direction C, and a shallow receiving recess that receives the flange portion 20 of the inner member 12 on the lower surface. 50.

ゴム弾性部46は、内側部材12のフランジ部20に加硫接着することで、内側部材12と一体に加硫成形されている。図3に示すように、ゴム弾性部46は、内側部材12のフランジ部20の下面20Bにおいて、周方向Cの複数箇所に凸状に設けられており、その先端面(下面)には、下側壁部26との間での打音を防止するための突起52が設けられている。なお、フランジ部20の上面20A、外周面20C、及び下面20Bのうち上記ゴム弾性部46が設けられていない部分には、ゴム弾性体46から連なるゴム層54が加硫接着により設けられている。   The rubber elastic portion 46 is vulcanized and formed integrally with the inner member 12 by being vulcanized and bonded to the flange portion 20 of the inner member 12. As shown in FIG. 3, the rubber elastic portion 46 is provided in a convex shape at a plurality of locations in the circumferential direction C on the lower surface 20 </ b> B of the flange portion 20 of the inner member 12. A protrusion 52 is provided for preventing a hitting sound with the side wall portion 26. In addition, the rubber layer 54 which continues from the rubber elastic body 46 is provided by vulcanization adhesion in a portion where the rubber elastic portion 46 is not provided in the upper surface 20A, the outer peripheral surface 20C, and the lower surface 20B of the flange portion 20. .

発泡樹脂弾性部48は、図5に示すように、環状連結部56により外周部が連結されることで、全体として一体の環状に形成されている。すなわち、複数の発泡樹脂弾性部48が、環状連結部56の内周部から内向きに突出した形状となるように、発泡ウレタンのモールド成形により形成されている。発泡樹脂弾性部48の周方向幅は、ゴム弾性部46の間に隙間なく嵌合するように設定されている。発泡樹脂弾性部48の軸方向Xにおける高さHpは、所定の予備圧縮率が付与されるように、ゴム弾性部46の軸方向Xにおける高さHrよりも大きく設定されている。   As shown in FIG. 5, the foamed resin elastic portion 48 is formed in an integral annular shape as a whole by the outer peripheral portion being connected by an annular connecting portion 56. That is, the plurality of foamed resin elastic portions 48 are formed by molding urethane foam so as to have a shape protruding inward from the inner peripheral portion of the annular coupling portion 56. The circumferential width of the foamed resin elastic portion 48 is set so as to fit between the rubber elastic portions 46 without a gap. The height Hp of the foamed resin elastic portion 48 in the axial direction X is set to be larger than the height Hr of the rubber elastic portion 46 in the axial direction X so that a predetermined preliminary compression rate is given.

図3(c)に示すように、フランジ部20には、発泡樹脂弾性部48の内周縁48A(図5(c)参照)に当接して当該発泡樹脂弾性部48の軸直角方向内方Yiへの変位を制限する規制ゴム部58が設けられている。規制ゴム部58は、上記ゴム弾性部46に挟まれた周方向部分のゴム層54に一体に突出させて設けられており、周方向Cに沿って細長い突起状に形成されている。   As shown in FIG. 3C, the flange portion 20 is in contact with the inner peripheral edge 48 </ b> A (see FIG. 5C) of the foamed resin elastic portion 48 and is inwardly in the direction perpendicular to the axis of the foamed resin elastic portion 48. A restricting rubber portion 58 that restricts the displacement to is provided. The regulating rubber portion 58 is provided so as to protrude integrally with the rubber layer 54 in the circumferential direction sandwiched between the rubber elastic portions 46, and is formed in an elongated protrusion shape along the circumferential direction C.

なお、符号60は、発泡樹脂弾性部48の外周面に所定間隔で設けられた凹みであり、該凹み60は、外側部材14の筒部22において周方向に所定間隔で設けられた凸部(不図示)と嵌合することで、外側部材14と弾性部材16との周方向Cでの位置決めを行うものである。フランジ部20の外周面20Cを覆う上記ゴム層54にも同様に凹み62が所定間隔で設けられている。   Reference numeral 60 denotes dents provided at predetermined intervals on the outer peripheral surface of the foamed resin elastic portion 48, and the dents 60 are convex portions provided at predetermined intervals in the circumferential direction in the cylindrical portion 22 of the outer member 14. The outer member 14 and the elastic member 16 are positioned in the circumferential direction C by being fitted to the unillustrated). Similarly, recesses 62 are provided at predetermined intervals in the rubber layer 54 covering the outer peripheral surface 20C of the flange portion 20.

また、フランジ部20の外周面20Cと筒部22との間には、弾性部材16の縦壁部64が周方向の全体にわたって介設されている。縦壁部64は、その内周側がフランジ部20の外周面20Cを覆うゴム層54で形成されるとともに、外周側が上側弾性部42と下側弾性部44の発泡樹脂弾性部48から一体に延設された環状凸部66,68(図4(b)及び図5(b)参照)同士を突き合わせることにより形成されている。   Further, a vertical wall portion 64 of the elastic member 16 is interposed between the outer peripheral surface 20C of the flange portion 20 and the cylindrical portion 22 over the entire circumferential direction. The vertical wall portion 64 is formed of a rubber layer 54 whose inner peripheral side covers the outer peripheral surface 20C of the flange portion 20, and the outer peripheral side integrally extends from the foamed resin elastic portion 48 of the upper elastic portion 42 and the lower elastic portion 44. The ring-shaped convex portions 66 and 68 (see FIGS. 4B and 5B) provided are formed by abutting each other.

サスペンションサポート10を組み立てる際には、図2に示すように、ゴム弾性部46を加硫成形した内側部材12の上下両側から、上側弾性部42と発泡樹脂弾性部48を組み付け、これを第1外側部材32の下側壁部26上に載せて、その上から第2外側部材34を被せ、ピストンロッド1の上端部1Aをナット5を用いて内側部材12に挿通固定し、また、第1外側部材32と第2外側部材34の両フランジ36,40を車体パネル2の下面に重ねてボルト3及びナット4を用いて締結固定する。これにより、上側弾性部42と下側弾性部44は、外側部材14により軸方向Xにおいて圧縮された状態に保持される。その際、発泡ウレタン成形体からなる上側弾性部42と下側弾性部44の発泡樹脂弾性部48は、ゴム弾性部46よりも高い圧縮率で予備圧縮される。   When the suspension support 10 is assembled, as shown in FIG. 2, the upper elastic portion 42 and the foamed resin elastic portion 48 are assembled from the upper and lower sides of the inner member 12 obtained by vulcanizing the rubber elastic portion 46. The outer member 32 is placed on the lower side wall portion 26, covered with the second outer member 34, and the upper end 1A of the piston rod 1 is inserted and fixed to the inner member 12 using the nut 5, and the first outer portion The flanges 36 and 40 of the member 32 and the second outer member 34 are overlapped on the lower surface of the vehicle body panel 2 and fastened and fixed using the bolt 3 and the nut 4. Accordingly, the upper elastic portion 42 and the lower elastic portion 44 are held in a state compressed in the axial direction X by the outer member 14. At that time, the foamed resin elastic portion 48 of the upper elastic portion 42 and the lower elastic portion 44 made of the urethane foam molded body is pre-compressed at a higher compression ratio than the rubber elastic portion 46.

このようにして構成されたサスペンションサポート10であると、上側弾性部42を発泡ウレタン成形体のみで構成し、下側弾性部44をゴム弾性部46と発泡ウレタン成形体からなる発泡樹脂弾性部48とのハイブリッド構造としたので、図6に示すように、上方Xu(即ち、バウンド側)への変位時の静的バネ定数と、下方Xd(即ち、リバウンド側)への変位時の静的バネ定数との差を大きくとることができる。図6において、二点鎖線で示す曲線が上下弾性部ともに発泡ウレタン成形体とした場合の荷重−たわみ曲線であり、これに対し、本実施形態のものでは、実線で示すように、リバウンド側において荷重−たわみ曲線の傾きが顕著に大きく、バウンド側の曲線との傾きに大きな差がある。このようにリバウンド側の静的バネ定数を大きくすることで、乗り心地性を損なうことなく、操縦安定性を向上することができる。   In the suspension support 10 configured as described above, the upper elastic portion 42 is composed only of a foamed urethane molded body, and the lower elastic portion 44 is a foamed resin elastic portion 48 composed of a rubber elastic portion 46 and a foamed urethane molded body. As shown in FIG. 6, the static spring constant at the time of displacement toward the upper Xu (that is, the bound side) and the static spring at the time of displacement toward the lower Xd (that is, the rebound side) as shown in FIG. A large difference from the constant can be taken. In FIG. 6, the curve shown by the two-dot chain line is a load-deflection curve when both the upper and lower elastic parts are foamed urethane molded bodies, whereas in the present embodiment, as shown by the solid line, on the rebound side The inclination of the load-deflection curve is remarkably large, and there is a large difference in inclination with the curve on the bounce side. By increasing the static spring constant on the rebound side in this way, it is possible to improve steering stability without impairing riding comfort.

また、ゴム弾性部46を設けたことで、発泡樹脂弾性部48を予備圧縮率の低い領域で使用することができる。予備圧縮率を低くすると発泡樹脂弾性部48による静的バネ定数は低くなるが、本実施形態では、ゴム弾性部46により静的バネ定数を補うことができる。そのため、軸方向Xでの静的バネ定数を維持しながら、予備圧縮率の低い発泡樹脂弾性部48で高減衰特性を発揮することができ、乗り心地性と操縦安定性を向上することができる。   Further, by providing the rubber elastic portion 46, the foamed resin elastic portion 48 can be used in a region where the preliminary compression rate is low. If the pre-compression ratio is lowered, the static spring constant by the foamed resin elastic portion 48 is lowered. However, in this embodiment, the static spring constant can be supplemented by the rubber elastic portion 46. Therefore, while maintaining the static spring constant in the axial direction X, the foamed resin elastic portion 48 having a low precompression ratio can exhibit high damping characteristics, and ride comfort and steering stability can be improved. .

また、軸方向Xに過大変位が入力されたとき、ゴム弾性部46と下側壁部26との間での打音が懸念されるが、上記のようにゴム弾性部46には突起52が設けられており、しかも、各ゴム弾性部46間には圧縮状態に保持された発泡樹脂弾性部48が存在するため、これによっても打音が低減される。   Further, when an excessive displacement is input in the axial direction X, there is a concern about the impact sound between the rubber elastic portion 46 and the lower side wall portion 26. As described above, the rubber elastic portion 46 has the protrusion 52. In addition, since the foamed resin elastic portion 48 held in a compressed state exists between the rubber elastic portions 46, this also reduces the hitting sound.

また、フランジ部20に規制ゴム部58を設けたので、フランジ部20上で発泡樹脂弾性部48をゴム弾性部46に対して組み付けるときに、規制ゴム部58により発泡樹脂弾性部48の軸直角方向Yでの位置決めを確実にして、性能バラツキを解消することができる。   Further, since the restriction rubber portion 58 is provided on the flange portion 20, when the foamed resin elastic portion 48 is assembled to the rubber elastic portion 46 on the flange portion 20, the restriction rubber portion 58 causes the foamed resin elastic portion 48 to be perpendicular to the axis. Positioning in the direction Y can be ensured, and performance variations can be eliminated.

(第2実施形態)
図7及び8は、第2実施形態に係るサスペンションサポート10A及びその構成部品を示したものである。第2実施形態は、規制ゴム部58の構成が上記実施形態とは異なる。
(Second Embodiment)
7 and 8 show a suspension support 10A and its components according to the second embodiment. The second embodiment is different from the above-described embodiment in the configuration of the restriction rubber portion 58.

すなわち、本実施形態では、規制ゴム部58は、図7に示すように、サスペンションサポートの組み付け状態において、発泡樹脂弾性部48の高さの略全体にわたって、その内周縁48Aに当接するように、ゴム層54から突出する壁状に形成されている。この壁状の規制ゴム部58の高さh1は、図8(b)に示すように、ゴム弾性部46の先端面に設けた突起52の高さh2よりも大で、ゴム弾性部46の高さh3よりも小であること(h2<h1<h3)が好ましい。これにより、発泡樹脂弾性部48が軸直角方向内方Yiに変位することを確実に防止することができる。   That is, in this embodiment, as shown in FIG. 7, the regulation rubber portion 58 is in contact with the inner peripheral edge 48 </ b> A over substantially the entire height of the foamed resin elastic portion 48 in the assembled state of the suspension support. It is formed in a wall shape protruding from the rubber layer 54. The height h1 of the wall-shaped regulating rubber portion 58 is larger than the height h2 of the protrusion 52 provided on the front end surface of the rubber elastic portion 46 as shown in FIG. It is preferable that the height is smaller than h3 (h2 <h1 <h3). Thereby, it is possible to reliably prevent the foamed resin elastic portion 48 from being displaced inwardly in the direction perpendicular to the axis Yi.

また、規制ゴム部58は、図8(a)に示すように、ゴム弾性部46に連結されて、弾性部材16の全周にわたって形成されている。このようにゴム弾性部46に連結して設けることで、このような高い壁状の規制ゴム部58の成型性を向上することができる。その他の構成及び作用効果は第1実施形態と同じであり、説明は省略する。   Further, as shown in FIG. 8A, the regulation rubber portion 58 is connected to the rubber elastic portion 46 and formed over the entire circumference of the elastic member 16. By providing the rubber elastic portion 46 in this way, it is possible to improve the moldability of such a high wall-shaped regulating rubber portion 58. Other configurations and operational effects are the same as those of the first embodiment, and a description thereof will be omitted.

(第3実施形態)
図9は、第3実施形態に係るサスペンションサポート10Bの断面図である。第3実施形態は、下側弾性部44だけでなく、上側弾性部42もゴムと発泡ウレタンで構成した点で、第1実施形態とは異なる。
(Third embodiment)
FIG. 9 is a cross-sectional view of a suspension support 10B according to the third embodiment. The third embodiment differs from the first embodiment in that not only the lower elastic portion 44 but also the upper elastic portion 42 is made of rubber and urethane foam.

すなわち、本実施形態では、上側弾性部42は、フランジ部20と上側壁部24との間で挟圧保持されるゴム材料からなるゴム弾性部70と、連続気泡構造の発泡ウレタン成形体からなる発泡樹脂弾性部72とで構成されている。上側弾性部42のゴム弾性部70と発泡樹脂弾性部72の具体的な構成は、上述した下側弾性部44のゴム弾性部46と発泡樹脂弾性部48の構成と、基本的には同じであり、説明は省略する。   In other words, in the present embodiment, the upper elastic portion 42 is made of a rubber elastic portion 70 made of a rubber material held between the flange portion 20 and the upper side wall portion 24 and a foamed urethane molded body having an open cell structure. It is comprised with the foamed resin elastic part 72. FIG. The specific configurations of the rubber elastic portion 70 and the foamed resin elastic portion 72 of the upper elastic portion 42 are basically the same as the configurations of the rubber elastic portion 46 and the foamed resin elastic portion 48 of the lower elastic portion 44 described above. Yes, explanation is omitted.

このように本実施形態では、上下の弾性部42,44ともに、ゴム弾性部70,46と発泡樹脂弾性部72,48とのハイブリッド構造にしたので、第1実施形態のようにバウンド側とリバウンド側との静的バネ定数の差を大きくするという作用効果は奏されないが、上下の弾性部42,44ともに、ゴム弾性部70,46で静的バネ定数の不足分を補いながら、発泡樹脂弾性部70,48を予備圧縮率の低い領域で使用することができ、高減衰特性を発揮することができる。その他の構成及び作用効果は第1実施形態と同じであり、説明は省略する。   As described above, in this embodiment, since the upper and lower elastic portions 42 and 44 have a hybrid structure of the rubber elastic portions 70 and 46 and the foamed resin elastic portions 72 and 48, the bounce side and the rebound as in the first embodiment. Although the effect of increasing the difference in static spring constant from the side is not achieved, both the upper and lower elastic parts 42 and 44 are made of foamed resin elasticity while the rubber elastic parts 70 and 46 make up for the shortage of the static spring constant. The parts 70 and 48 can be used in a region where the preliminary compression rate is low, and high attenuation characteristics can be exhibited. Other configurations and operational effects are the same as those of the first embodiment, and a description thereof will be omitted.

(第4実施形態)
図10は、第4実施形態に係るサスペンションサポートを構成するゴム弾性部46が加硫接着された内側部材12の底面図である。第4実施形態は、ゴム弾性部46の構成が第1実施形態と異なる。
(Fourth embodiment)
FIG. 10 is a bottom view of the inner member 12 to which the rubber elastic portion 46 constituting the suspension support according to the fourth embodiment is bonded by vulcanization. The fourth embodiment is different from the first embodiment in the configuration of the rubber elastic portion 46.

すなわち、本実施形態では、下側弾性部44を構成するゴム弾性部46は、内側部材12の軸心を挟んで第1軸直角方向Y1に相対する2箇所に設けられた第1ゴム弾性部46Aと、それ以外の周方向位置に設けられた第2ゴム弾性部46Bとにより構成されており、第1ゴム弾性部46Aの周方向幅Waが、第2ゴム弾性部46Bの周方向幅Wbよりも大に設定されている。第2ゴム弾性部46Bは、この例では、第1ゴム弾性部46Aの間に各2個、合計で4個設けられており、第1軸直角方向Y1に直交する第2軸直角方向Y2には第2ゴム弾性部46Bは設けられていない。また、発泡樹脂弾性部48が嵌合するゴム弾性部46間の間隔(即ち、周方向Cにおける間隔)は、第2軸直角方向Y2に相対する周方向位置での間隔Dbがその他の周方向位置での間隔Daよりも大に設定されている(Db>Da)。   In other words, in the present embodiment, the rubber elastic portions 46 constituting the lower elastic portion 44 are the first rubber elastic portions provided at two locations facing the first axis perpendicular direction Y1 across the axis of the inner member 12. 46A and the second rubber elastic portion 46B provided at other circumferential positions, and the circumferential width Wa of the first rubber elastic portion 46A is equal to the circumferential width Wb of the second rubber elastic portion 46B. Is set larger than. In this example, two second rubber elastic portions 46B are provided between the first rubber elastic portions 46A, and a total of four second rubber elastic portions 46B are provided in the second axis perpendicular direction Y2 orthogonal to the first axis orthogonal direction Y1. The second rubber elastic portion 46B is not provided. Further, the interval between the rubber elastic portions 46 with which the foamed resin elastic portion 48 is fitted (that is, the interval in the circumferential direction C) is the interval Db at the circumferential position opposite to the second axis perpendicular direction Y2. It is set larger than the distance Da at the position (Db> Da).

このようにゴム弾性部46の周方向幅に大小差を付けることにより、こじり特性に方向性を持たせることができる。すなわち、第1軸直角方向Y1において内側部材12の軸が傾くような第1こじり方向K1では、第1軸直角方向Y1に相対する第1ゴム弾性部46Aの周方向幅Waが大きいことから、静的バネ定数が大きい。これに対し、第2軸直角方向Y2において内側部材12の軸が傾くような第2こじり方向K2では、第2軸直角方向Y2に相対する位置にゴム弾性部46がなく、その間隔Dbも大きいことから、静的バネ定数が小さい。   In this way, by giving a difference in the circumferential width of the rubber elastic portion 46, it is possible to give directionality to the twisting characteristics. That is, in the first twisting direction K1 in which the axis of the inner member 12 is inclined in the first axis perpendicular direction Y1, the circumferential width Wa of the first rubber elastic portion 46A facing the first axis orthogonal direction Y1 is large. Large static spring constant. On the other hand, in the second twisting direction K2 in which the axis of the inner member 12 is inclined in the second axis perpendicular direction Y2, there is no rubber elastic portion 46 at a position facing the second axis perpendicular direction Y2, and the interval Db is also large. Therefore, the static spring constant is small.

これにより、周方向全体でのゴム弾性部46によるゴム量を確保して軸方向Xでの静的バネ定数を確保しながら、ある特定の方向(即ち、第2こじり方向K2)での静的バネ定数を小さくすることができる。そのため、例えば、第2こじり方向K2を車両の左右方向でのこじり方向となるように搭載することで、操縦安定性を犠牲にすることなく、乗り心地性を向上することができる。その他の構成及び作用効果は第1実施形態と同じであり、説明は省略する。   Accordingly, the amount of rubber by the rubber elastic portion 46 in the entire circumferential direction is secured, and the static spring constant in the axial direction X is secured, while the static in a specific direction (that is, the second twisting direction K2). The spring constant can be reduced. Therefore, for example, by mounting the second prying direction K2 so as to be the prying direction in the left-right direction of the vehicle, it is possible to improve ride comfort without sacrificing steering stability. Other configurations and operational effects are the same as those of the first embodiment, and a description thereof will be omitted.

(第5実施形態)
図11〜15は、第5実施形態に係るサスペンションサポート10C及びその構成部品を示したものである。第5実施形態は、上側弾性部42とゴム弾性部46に空気室を設けた点で、第1実施形態とは異なる。
(Fifth embodiment)
11 to 15 show a suspension support 10C and its components according to the fifth embodiment. The fifth embodiment differs from the first embodiment in that an air chamber is provided in the upper elastic portion 42 and the rubber elastic portion 46.

すなわち、本実施形態では、下側弾性部44の複数のゴム弾性部46には、それぞれ、その内部に第1空気室74が設けられ、該第1空気室74は絞り通路76を介して外気に連通して設けられている。絞り通路76は、第1空気室74が拡縮したときに、空気が該拡縮に対して位相遅れをもって出入りするように、断面積が小さく設定された流動抵抗のある通路である。絞り通路76の断面積(S)は、特に限定されないが、第1空気室74の体積(V)に対して、S/V=0.01以下であることが好ましく、より好ましくはS/V=0.01〜0.001の範囲内で設定される。   That is, in the present embodiment, each of the plurality of rubber elastic portions 46 of the lower elastic portion 44 is provided with a first air chamber 74 therein, and the first air chamber 74 is connected to the outside air via the throttle passage 76. It is provided in communication with. The throttle passage 76 is a passage having a flow resistance that has a small cross-sectional area so that when the first air chamber 74 expands or contracts, the air enters and exits with a phase delay with respect to the expansion and contraction. The sectional area (S) of the throttle passage 76 is not particularly limited, but is preferably S / V = 0.01 or less, more preferably S / V with respect to the volume (V) of the first air chamber 74. Is set within the range of 0.01 to 0.001.

第1空気室74及び絞り通路76を形成するために、ゴム弾性部46は、内側部材12に加硫接着されておらず、図12に示すように、加硫成形後に、後接着で内側部材12に取り付けている。詳細には、複数のゴム弾性部46が上記ゴム層54を介して連結された環状のゴム成形体78を加硫成形し、これを内側部材12のフランジ部20の下面20B側から接着剤を用いて固定する。後接着することで、絞り通路76以外の箇所から空気が漏れないようにすることができる。   In order to form the first air chamber 74 and the throttle passage 76, the rubber elastic portion 46 is not vulcanized and bonded to the inner member 12, and as shown in FIG. 12 is attached. Specifically, an annular rubber molded body 78 in which a plurality of rubber elastic portions 46 are connected via the rubber layer 54 is vulcanized and molded, and an adhesive is applied from the lower surface 20B side of the flange portion 20 of the inner member 12. Use to fix. By adhering afterward, air can be prevented from leaking from places other than the throttle passage 76.

第1空気室74は、ゴム弾性部46の上面46U(図12参照)において下方に凹み形成された凹部80と、フランジ部20の下面20Bとの間で形成されている。この凹部80は、周方向Cに沿って若干細長い長穴状に形成されている(図15参照)。絞り通路76は、弾性部材16の内周側で大気と連通するように設けられており、この例では、図12,15に示すように、絞り通路76は、ゴム弾性部46の上面46Uにおいて凹部80から軸直角方向内方Yiに延びる細長い凹溝82と、フランジ部20の下面20Bとの間で形成されている。   The first air chamber 74 is formed between a recess 80 that is recessed downward on the upper surface 46U (see FIG. 12) of the rubber elastic portion 46 and the lower surface 20B of the flange portion 20. The recess 80 is formed in the shape of an elongated hole that is slightly elongated along the circumferential direction C (see FIG. 15). The throttle passage 76 is provided so as to communicate with the atmosphere on the inner peripheral side of the elastic member 16. In this example, as shown in FIGS. 12 and 15, the throttle passage 76 is formed on the upper surface 46 </ b> U of the rubber elastic portion 46. It is formed between the elongate concave groove 82 extending from the concave portion 80 in the direction perpendicular to the axis Yi and the lower surface 20B of the flange portion 20.

本実施形態ではまた、発泡ウレタン成形体からなる上側弾性部42の内部に、第2空気室84が設けられている。第2空気室84には、上記のような絞り通路は設けられておらず、発泡ウレタン成形体の連続気泡を介して外気に連通している。第2空気室84は、図14に示すように、上側弾性部42の周方向Cにおいて、複数個が互いに独立して設けられており、この例では、第1空気室74と同様、周方向Cに均等な間隔で6個設けられ、周方向Cに沿って若干細長い長穴状に形成されている。   In the present embodiment, a second air chamber 84 is provided inside the upper elastic portion 42 made of a foamed urethane molded body. The second air chamber 84 is not provided with a throttle passage as described above, and communicates with the outside air through open cells of the urethane foam molded body. As shown in FIG. 14, a plurality of the second air chambers 84 are provided independently from each other in the circumferential direction C of the upper elastic portion 42. In this example, the circumferential direction is the same as the first air chamber 74. Six pieces are provided at equal intervals in C, and are formed in the shape of a slightly elongated slot along the circumferential direction C.

第2空気室84は、上側弾性部42におけるフランジ部20と上側壁部24によって挟み込まれる部分に設けられており、この例では、上側弾性部42の下面42A(図13参照)において上方に凹み形成された凹部86と、フランジ部20の上面20Aを覆うゴム層54との間で形成されている。   The second air chamber 84 is provided in a portion sandwiched between the flange portion 20 and the upper side wall portion 24 in the upper elastic portion 42. In this example, the second air chamber 84 is recessed upward on the lower surface 42A (see FIG. 13) of the upper elastic portion 42. It is formed between the formed recess 86 and the rubber layer 54 covering the upper surface 20 </ b> A of the flange portion 20.

本実施形態のサスペンションサポート10Cであると、内側部材12が上方Xuに変位すると、上側弾性部42に設けた第2空気室84が圧縮され、自身の連続気泡を介して第1空気室84内の空気が外部に流出する。この状態から内側部材12が下方Xdに変位すると、今度は下側弾性部44に設けた第1空気室74が圧縮され、絞り通路76を介して第1空気室74内の空気が外部に流出するとともに、上側弾性部42では第2空気室84が拡張することで空気が流れ込む。次いで、内側部材12が上方Xuに変位すると、第2空気室84が圧縮されるとともに、下側弾性部44の第1空気室74が拡張することで、絞り通路76を介して第1空気室74内に空気が流れ込む。   In the suspension support 10C of the present embodiment, when the inner member 12 is displaced upward Xu, the second air chamber 84 provided in the upper elastic portion 42 is compressed, and the first air chamber 84 passes through its own open bubbles. Air flows out. When the inner member 12 is displaced downward Xd from this state, the first air chamber 74 provided in the lower elastic portion 44 is now compressed, and the air in the first air chamber 74 flows out to the outside through the throttle passage 76. At the same time, in the upper elastic portion 42, the second air chamber 84 expands so that air flows. Next, when the inner member 12 is displaced upward Xu, the second air chamber 84 is compressed, and the first air chamber 74 of the lower elastic portion 44 is expanded, so that the first air chamber is passed through the throttle passage 76. Air flows into 74.

このようにして内側部材12の上下変位時に、上側弾性部42と下側弾性部44に設けた空気室84,74が拡縮することにより、連続気泡や絞り通路76を介して空気が出入りする。その際、連続気泡や絞り通路76の流動抵抗により、上記空気の出入りに、入力振動に対する位相遅れが生じ、該位相遅れによって減衰効果が発揮される。そのため、高い減衰性能を発揮することができる。特に、下側弾性部44のゴム弾性部46では、ゴム弾性体でありながら、連続気泡構造を持つ発泡ウレタン並みの低動倍率高減衰性能を得ることができる。また、発泡ウレタン成形体からなる上側弾性部42についても、第2空気室84を設けたことにより、更なる高減衰特性を発揮することができる。   In this way, when the inner member 12 is displaced up and down, the air chambers 84 and 74 provided in the upper elastic portion 42 and the lower elastic portion 44 expand and contract, so that air enters and exits through the open bubbles and the throttle passage 76. At that time, due to the flow resistance of the open bubbles and the throttle passage 76, a phase delay with respect to the input vibration occurs in the air in and out, and a damping effect is exhibited by the phase delay. Therefore, high attenuation performance can be exhibited. In particular, the rubber elastic portion 46 of the lower elastic portion 44 can obtain a low dynamic magnification high damping performance equivalent to urethane foam having an open-cell structure while being a rubber elastic body. Further, by providing the second air chamber 84 for the upper elastic portion 42 made of a urethane foam molded body, further high attenuation characteristics can be exhibited.

また、本実施形態によれば、第1空気室74と絞り通路76が、ゴム弾性部46におけるフランジ部20との当接面20Bに凹み形成することで設けられているので、モールド成形しやすく、製造コストを抑えることができる。その他の構成及び作用効果は第1実施形態と同じであり、説明は省略する。   Moreover, according to this embodiment, since the 1st air chamber 74 and the aperture | diaphragm | restriction channel | path 76 are provided by forming indentation in the contact surface 20B with the flange part 20 in the rubber elastic part 46, it is easy to mold. Manufacturing costs can be reduced. Other configurations and operational effects are the same as those of the first embodiment, and a description thereof will be omitted.

第1実施形態に係るサスペンションサポートの断面図(図3(c)のα−α線に相当する断面)Sectional view of the suspension support according to the first embodiment (cross section corresponding to the line α-α in FIG. 3C) 該サスペンションサポートの分解断面図Exploded sectional view of the suspension support ゴム弾性部が固設された内側部材の図、(a)は平面図、(b)は断面図、(c)は底面図The figure of the inner member by which the rubber elastic part was fixed, (a) is a top view, (b) is sectional drawing, (c) is a bottom view 上側弾性部の図、(a)は平面図、(b)は断面図、(c)は底面図Figure of the upper elastic part, (a) is a plan view, (b) is a sectional view, (c) is a bottom view 発泡樹脂弾性部の図、(a)は平面図、(b)は断面図、(c)は底面図The figure of a foamed resin elastic part, (a) is a top view, (b) is a sectional view, (c) is a bottom view 該サスペンションサポートの荷重−たわみ曲線を示すグラフA graph showing a load-deflection curve of the suspension support 第2実施形態に係るサスペンションサポートの断面図(図8(a)のβ−β線に相当する断面)Sectional drawing of the suspension support which concerns on 2nd Embodiment (cross section equivalent to the beta-beta line of Fig.8 (a)) 第2実施形態におけるゴム弾性部が固設された内側部材の図、(a)は底面図、(b)は断面図The figure of the inner member by which the rubber elastic part was fixed in 2nd Embodiment, (a) is a bottom view, (b) is sectional drawing. 第3実施形態に係るサスペンションサポートの断面図Sectional drawing of the suspension support which concerns on 3rd Embodiment 第4実施形態に係るゴム弾性部が固設された内側部材の底面図The bottom view of the inner member by which the rubber elastic part which concerns on 4th Embodiment was fixed. 第5実施形態に係るサスペンションサポートの断面図Sectional drawing of the suspension support which concerns on 5th Embodiment 第5実施形態における内側部材とゴム弾性部の分解断面図Exploded sectional view of inner member and rubber elastic part in the fifth embodiment 第5実施形態のサスペンションサポートの分解断面図Exploded sectional view of the suspension support of the fifth embodiment 第5実施形態における弾性部材の平面図The top view of the elastic member in a 5th embodiment 第5実施形態におけるゴム弾性部が固設された内側部材の底面図The bottom view of the inner member by which the rubber elastic part in 5th Embodiment was fixed.

符号の説明Explanation of symbols

1…ショックアブソーバのピストンロッド、1A…上端部
2…車体パネル
10,10A,10B,10C…サスペンションサポート
12…内側部材
14…外側部材
16…弾性部材
20…フランジ部、20A…上面、20B…下面
24…上側壁部、24A…下面
26…下側壁部、26A…上面
42…上側弾性部
44…下側弾性部
46,70…ゴム弾性部、46U…上面(フランジ部との当接面)
48,72…発泡樹脂弾性部、48A…内周縁
56…環状連結部
58…規制ゴム部
74…第1空気室
76…第1絞り通路
80…凹部
82…凹溝
84…第2空気室
C…周方向
X…軸方向、Xu…上方、Xd…下方
Y…軸直角方向、Yo…外方側、Yi…内向き
DESCRIPTION OF SYMBOLS 1 ... Piston rod of shock absorber, 1A ... Upper end part 2 ... Body panel 10, 10A, 10B, 10C ... Suspension support 12 ... Inner member 14 ... Outer member 16 ... Elastic member 20 ... Flange part, 20A ... Upper surface, 20B ... Lower surface 24: upper side wall portion, 24A: lower surface 26: lower side wall portion, 26A ... upper surface 42 ... upper elastic portion 44 ... lower elastic portion 46, 70 ... rubber elastic portion, 46U ... upper surface (contact surface with flange portion)
48, 72 ... foamed resin elastic part, 48A ... inner peripheral edge 56 ... annular connecting part 58 ... regulating rubber part 74 ... first air chamber 76 ... first throttle passage 80 ... concave part 82 ... concave groove 84 ... second air chamber C ... Circumferential direction X ... Axial direction, Xu ... Upward, Xd ... Downward Y ... Axis perpendicular direction, Yo ... Outward side, Yi ... Inward

Claims (5)

ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、前記内側部材の外周を取り囲み車体側に取り付けられる外側部材と、前記内側部材と前記外側部材との間に介在する連続気泡構造の発泡樹脂成形体からなる環状の弾性部材と、を備えてなり、
前記内側部材は前記ピストンロッドの軸直角方向外方側に張り出すフランジ部を備え、
前記外側部材は、前記弾性部材を内包する筒部と、前記筒部の軸方向の両端部において軸直角方向で内向きに形成されて前記弾性部材を軸方向にて挟圧する上側壁部及び下側壁部とを備え、
前記弾性部材は、前記フランジ部の上面と前記上側壁部の下面との間で挟圧保持される上側弾性部と、前記フランジ部の下面と前記下側壁部の上面との間で挟圧保持される下側弾性部とを備え、
前記上側弾性部と前記下側弾性部の少なくとも一方の弾性部が、前記フランジ部と前記上側壁部又は前記下側壁部との間で挟圧されるゴム弾性部と、前記発泡樹脂成形体からなる発泡樹脂弾性部とで構成され
前記ゴム弾性部が、前記弾性部材の周方向において、前記発泡樹脂弾性部と交互に複数設けられ、
前記ゴム弾性部は前記フランジ部の上面又は下面において周方向の複数箇所に凸状に設けられ、複数の前記発泡樹脂弾性部は環状連結部により外周部が連結されることで一体に設けられ、前記フランジ部には前記発泡樹脂弾性部の内周縁に当接して当該発泡樹脂弾性部の軸直角方向内方への変位を制限する規制ゴム部が設けられた、
ことを特徴とするサスペンションサポート。
An inner member in which an upper end portion of a piston rod of a shock absorber is inserted and fixed, an outer member surrounding the outer periphery of the inner member and attached to the vehicle body side, and an open cell structure interposed between the inner member and the outer member An annular elastic member made of a foamed resin molded body,
The inner member includes a flange portion protruding outward in the direction perpendicular to the axis of the piston rod,
The outer member includes a cylindrical portion containing the elastic member, an upper side wall portion and a lower wall portion that are formed inward in a direction perpendicular to the axial direction at both axial end portions of the cylindrical portion and clamp the elastic member in the axial direction. A side wall,
The elastic member holds and holds the pressure between the upper elastic portion held between the upper surface of the flange portion and the lower surface of the upper wall portion, and the lower surface of the flange portion and the upper surface of the lower wall portion. A lower elastic portion,
From at least one elastic part of the upper elastic part and the lower elastic part, a rubber elastic part sandwiched between the flange part and the upper side wall part or the lower side wall part, and the foamed resin molding is composed of a composed foamed resin elastic portion,
A plurality of the rubber elastic portions are provided alternately with the foamed resin elastic portions in the circumferential direction of the elastic member,
The rubber elastic portion is provided in a convex shape at a plurality of locations in the circumferential direction on the upper surface or the lower surface of the flange portion, and the plurality of foamed resin elastic portions are provided integrally by connecting an outer peripheral portion with an annular connecting portion, The flange portion is provided with a regulating rubber portion that abuts on the inner peripheral edge of the foamed resin elastic portion and restricts the displacement of the foamed resin elastic portion in the direction perpendicular to the axis,
Suspension support characterized by that.
ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、前記内側部材の外周を取り囲み車体側に取り付けられる外側部材と、前記内側部材と前記外側部材との間に介在する連続気泡構造の発泡樹脂成形体からなる環状の弾性部材と、を備えてなり、
前記内側部材は前記ピストンロッドの軸直角方向外方側に張り出すフランジ部を備え、
前記外側部材は、前記弾性部材を内包する筒部と、前記筒部の軸方向の両端部において軸直角方向で内向きに形成されて前記弾性部材を軸方向にて挟圧する上側壁部及び下側壁部とを備え、
前記弾性部材は、前記フランジ部の上面と前記上側壁部の下面との間で挟圧保持される上側弾性部と、前記フランジ部の下面と前記下側壁部の上面との間で挟圧保持される下側弾性部とを備え、
前記上側弾性部と前記下側弾性部の少なくとも一方の弾性部が、前記フランジ部と前記上側壁部又は前記下側壁部との間で挟圧されるゴム弾性部と、前記発泡樹脂成形体からなる発泡樹脂弾性部とで構成され
前記ゴム弾性部が、前記弾性部材の周方向において、前記発泡樹脂弾性部と交互に複数設けられ、
前記ゴム弾性部は、前記内側部材を挟んで軸直角方向に相対する2箇所と、該2箇所以外の複数の周方向位置とに設けられ、前記軸直角方向に相対するゴム弾性部が、他の周方向位置のゴム弾性部よりも周方向幅が大に設定された、
ことを特徴とするサスペンションサポート。
An inner member in which an upper end portion of a piston rod of a shock absorber is inserted and fixed, an outer member surrounding the outer periphery of the inner member and attached to the vehicle body side, and an open cell structure interposed between the inner member and the outer member An annular elastic member made of a foamed resin molded body,
The inner member includes a flange portion protruding outward in the direction perpendicular to the axis of the piston rod,
The outer member includes a cylindrical portion containing the elastic member, an upper side wall portion and a lower wall portion that are formed inward in a direction perpendicular to the axial direction at both axial end portions of the cylindrical portion and clamp the elastic member in the axial direction. A side wall,
The elastic member holds and holds the pressure between the upper elastic portion held between the upper surface of the flange portion and the lower surface of the upper wall portion, and the lower surface of the flange portion and the upper surface of the lower wall portion. A lower elastic portion,
From at least one elastic part of the upper elastic part and the lower elastic part, a rubber elastic part sandwiched between the flange part and the upper side wall part or the lower side wall part, and the foamed resin molding is composed of a composed foamed resin elastic portion,
A plurality of the rubber elastic portions are provided alternately with the foamed resin elastic portions in the circumferential direction of the elastic member,
The rubber elastic portion is provided at two locations facing in a direction perpendicular to the axis across the inner member and a plurality of circumferential positions other than the two locations. The circumferential width is set larger than the rubber elastic part at the circumferential position of
Suspension support characterized by that.
ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、前記内側部材の外周を取り囲み車体側に取り付けられる外側部材と、前記内側部材と前記外側部材との間に介在する連続気泡構造の発泡樹脂成形体からなる環状の弾性部材と、を備えてなり、
前記内側部材は前記ピストンロッドの軸直角方向外方側に張り出すフランジ部を備え、
前記外側部材は、前記弾性部材を内包する筒部と、前記筒部の軸方向の両端部において軸直角方向で内向きに形成されて前記弾性部材を軸方向にて挟圧する上側壁部及び下側壁部とを備え、
前記弾性部材は、前記フランジ部の上面と前記上側壁部の下面との間で挟圧保持される上側弾性部と、前記フランジ部の下面と前記下側壁部の上面との間で挟圧保持される下側弾性部とを備え、
前記上側弾性部と前記下側弾性部の少なくとも一方の弾性部が、前記フランジ部と前記上側壁部又は前記下側壁部との間で挟圧されるゴム弾性部と、前記発泡樹脂成形体からなる発泡樹脂弾性部とで構成され
前記ゴム弾性部が、前記弾性部材の周方向において、前記発泡樹脂弾性部と交互に複数設けられ、
前記ゴム弾性部の内部に空気室が設けられ、前記空気室が絞り通路により外気に連通して設けられた、
ことを特徴とするサスペンションサポート。
An inner member in which an upper end portion of a piston rod of a shock absorber is inserted and fixed, an outer member surrounding the outer periphery of the inner member and attached to the vehicle body side, and an open cell structure interposed between the inner member and the outer member An annular elastic member made of a foamed resin molded body,
The inner member includes a flange portion protruding outward in the direction perpendicular to the axis of the piston rod,
The outer member includes a cylindrical portion containing the elastic member, an upper side wall portion and a lower wall portion that are formed inward in a direction perpendicular to the axial direction at both axial end portions of the cylindrical portion and clamp the elastic member in the axial direction. A side wall,
The elastic member holds and holds the pressure between the upper elastic portion held between the upper surface of the flange portion and the lower surface of the upper wall portion, and the lower surface of the flange portion and the upper surface of the lower wall portion. A lower elastic portion,
From at least one elastic part of the upper elastic part and the lower elastic part, a rubber elastic part sandwiched between the flange part and the upper side wall part or the lower side wall part, and the foamed resin molding is composed of a composed foamed resin elastic portion,
A plurality of the rubber elastic portions are provided alternately with the foamed resin elastic portions in the circumferential direction of the elastic member,
An air chamber is provided inside the rubber elastic portion, and the air chamber is provided in communication with outside air through a throttle passage.
Suspension support characterized by that.
前記空気室が、前記ゴム弾性部における前記フランジ部との当接面に凹設された凹部と、前記フランジ部との間で形成され、前記絞り通路が、前記ゴム弾性部における前記フランジ部との当接面において前記凹部から軸直角方向内方に延びる凹溝と、前記フランジ部との間で形成された、請求項に記載のサスペンションサポート。 The air chamber is formed between a concave portion provided in a contact surface with the flange portion in the rubber elastic portion and the flange portion, and the throttle passage is formed with the flange portion in the rubber elastic portion. The suspension support according to claim 3 , wherein the suspension support is formed between a concave groove extending inward in a direction perpendicular to the axis from the concave portion and the flange portion on the contact surface. ショックアブソーバのピストンロッドの上端部が挿通固定される内側部材と、前記内側部材の外周を取り囲み車体側に取り付けられる外側部材と、前記内側部材と前記外側部材との間に介在する連続気泡構造の発泡樹脂成形体からなる環状の弾性部材と、を備えてなり、
前記内側部材は前記ピストンロッドの軸直角方向外方側に張り出すフランジ部を備え、
前記外側部材は、前記弾性部材を内包する筒部と、前記筒部の軸方向の両端部において軸直角方向で内向きに形成されて前記弾性部材を軸方向にて挟圧する上側壁部及び下側壁部とを備え、
前記弾性部材は、前記フランジ部の上面と前記上側壁部の下面との間で挟圧保持される上側弾性部と、前記フランジ部の下面と前記下側壁部の上面との間で挟圧保持される下側弾性部とを備え、
前記上側弾性部と前記下側弾性部の少なくとも一方の弾性部が、前記フランジ部と前記上側壁部又は前記下側壁部との間で挟圧されるゴム弾性部と、前記発泡樹脂成形体からなる発泡樹脂弾性部とで構成され
前記ゴム弾性部が、前記弾性部材の周方向において、前記発泡樹脂弾性部と交互に複数設けられ、
前記上側弾性部と前記下側弾性部のいずれか一方の弾性部が、前記ゴム弾性部と前記発泡樹脂弾性部とで構成され、前記ゴム弾性部の内部に空気室が設けられて、前記空気室が絞り通路により外気に連通して設けられ、
前記上側弾性部と前記下側弾性部の他方の弾性部が、全周にわたって連続気泡構造の発泡樹脂成形体で形成され、該他方の弾性部の内部に前記連続気泡を介して外気に連通する空気室が設けられた、
ことを特徴とするサスペンションサポート。
An inner member in which an upper end portion of a piston rod of a shock absorber is inserted and fixed, an outer member surrounding the outer periphery of the inner member and attached to the vehicle body side, and an open cell structure interposed between the inner member and the outer member An annular elastic member made of a foamed resin molded body,
The inner member includes a flange portion protruding outward in the direction perpendicular to the axis of the piston rod,
The outer member includes a cylindrical portion containing the elastic member, an upper side wall portion and a lower wall portion that are formed inward in a direction perpendicular to the axial direction at both axial end portions of the cylindrical portion and clamp the elastic member in the axial direction. A side wall,
The elastic member holds and holds the pressure between the upper elastic portion held between the upper surface of the flange portion and the lower surface of the upper wall portion, and the lower surface of the flange portion and the upper surface of the lower wall portion. A lower elastic portion,
From at least one elastic part of the upper elastic part and the lower elastic part, a rubber elastic part sandwiched between the flange part and the upper side wall part or the lower side wall part, and the foamed resin molding is composed of a composed foamed resin elastic portion,
A plurality of the rubber elastic portions are provided alternately with the foamed resin elastic portions in the circumferential direction of the elastic member,
One elastic part of the upper elastic part and the lower elastic part is composed of the rubber elastic part and the foamed resin elastic part, an air chamber is provided inside the rubber elastic part, and the air A chamber is provided in communication with the outside air through a throttle passage;
The other elastic part of the upper elastic part and the lower elastic part is formed of a foamed resin molded body having an open cell structure over the entire circumference, and communicates with the outside air through the open cell inside the other elastic part. An air chamber was provided,
Suspension support characterized by that.
JP2008117600A 2008-04-28 2008-04-28 Suspension support Expired - Fee Related JP4950115B2 (en)

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