JPH0763238A - Electric viscous fluid sealing-type mount - Google Patents

Electric viscous fluid sealing-type mount

Info

Publication number
JPH0763238A
JPH0763238A JP21367993A JP21367993A JPH0763238A JP H0763238 A JPH0763238 A JP H0763238A JP 21367993 A JP21367993 A JP 21367993A JP 21367993 A JP21367993 A JP 21367993A JP H0763238 A JPH0763238 A JP H0763238A
Authority
JP
Japan
Prior art keywords
communication passage
pair
electrode plates
electrorheological fluid
voltage
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
JP21367993A
Other languages
Japanese (ja)
Other versions
JP3350166B2 (en
Inventor
Kazunari Nakahara
一成 中原
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Kurashiki Kako Co Ltd
Original Assignee
Kurashiki Kako Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kurashiki Kako Co Ltd filed Critical Kurashiki Kako Co Ltd
Priority to JP21367993A priority Critical patent/JP3350166B2/en
Publication of JPH0763238A publication Critical patent/JPH0763238A/en
Application granted granted Critical
Publication of JP3350166B2 publication Critical patent/JP3350166B2/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

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Landscapes

  • Arrangement Or Mounting Of Propulsion Units For Vehicles (AREA)
  • Combined Devices Of Dampers And Springs (AREA)

Abstract

PURPOSE:To easily enable switching control of vibration damping characteristics by attempting facilitation of assembly through a process of simplifying the structure of a communicating passage wherein the fluid state of electric viscous fluid can be changed by appllcation of voltage and the structure a communicating passage wherein the fluid state is not changed even if voltage is applied. CONSTITUTION:First and second supporting bodies 1, 2 arranged apart from each other in the vibration input direction are connected to each other by an elastic supporting body 3, and a liquid chamber 5 in which electric viscous fluid E between the elastic supporting body and an elastic diaphragm 4 is sealed is divided into a pressure receiving chamber 5a and a balance chamber 5b by a partition body 6. The partition body is composed of a pair of electrode plates 10, 11 and an insulating member 12 interposed between facing surfaces of both electrode plates, and sectioned into a first communicating passage 13 and a second communicating passage 14 by the insulating member. The distance between upper and lower parts of the second communicating passage is so set that electric field strength to be formed between both electrode plates by applying voltage to a pair of electrode plates may not exceed 1kv/mm, so as to prevent viscosity of electric viscous fluid from being substantially changed even if voltage is applied.

Description

【発明の詳細な説明】Detailed Description of the Invention

【0001】[0001]

【産業上の利用分野】本発明は、例えば自動車のエンジ
ンマウントなどに用いられ、電圧印加により防振特性を
変更制御し得る電気粘性流体封入式マウントに関する。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to an electrorheological fluid-sealed mount which is used, for example, in an automobile engine mount or the like and whose vibration damping characteristics can be changed and controlled by applying a voltage.

【0002】[0002]

【従来の技術】従来より、この種の電気粘性流体封入式
マウントとして、電気粘性流体を封入した液室を仕切体
によって受圧室と平衡室とに仕切るとともに、この仕切
体に上記受圧室と平衡室とを互いに連通する連通路を形
成し、この連通路に一対の電極を相対向させて配設して
連通路を通る上記電気粘性流体の粘度を変更制御するも
のが知られている(例えば、特開昭60−104828
号公報参照)。
2. Description of the Related Art Conventionally, as an electrorheological fluid-filled mount of this type, a liquid chamber containing an electrorheological fluid is partitioned into a pressure receiving chamber and an equilibrium chamber by a partition, and this partition is balanced with the pressure receiving chamber. It is known that a communication passage is formed to communicate with the chamber, and a pair of electrodes are disposed in the communication passage so as to face each other to change and control the viscosity of the electrorheological fluid passing through the communication passage (for example, JP-A-60-104828
(See the official gazette).

【0003】一方、上記のものにおいて印加電圧の変更
だけでは、変更し得る防振特性の範囲が狭く、自動車の
エンジンマウントに用いた場合、エンジンのシェイク振
動(10〜20Hzの振動)の防振と、アイドル振動
(20〜40Hz の振動)の防振との両立が困難である
ことから、上記連通路を構成する仕切体の内壁面に、一
対の電極を相対向させて配置した第1オリフィスと、こ
のような電極を配置しない第2オリフィスとを形成した
ものが知られている(例えば、特開平1−112044
号公報参照)。このものにおいでは、上記仕切体を電気
絶縁性樹脂からなる2枚のプレート部材を互いに間隔を
隔てて重ね合わせることによりその相対向面間に連通路
を形成し、この2枚の樹脂プレート部材の相対向面間の
一部に電極を配設して第1オリフィスを、他部に電極を
配設しないようにして第2オリフィスをそれぞれ形成し
ている。そして、上記電極への通電の有無により電気粘
性流体が流動する断面積を第2オリフィスのみのとき
と、第1および第2オリフィスの双方のときとに切換制
御し得るようになっている。
On the other hand, in the above, the range of the vibration-proof characteristics that can be changed is narrow only by changing the applied voltage, and when used in the engine mount of an automobile, the vibration-proof vibration of the engine shake (vibration of 10 to 20 Hz) is achieved. Since it is difficult to achieve both the vibration prevention and the idle vibration (vibration of 20 to 40 Hz), the first orifice in which a pair of electrodes are arranged to face each other on the inner wall surface of the partition body forming the communication passage. And a second orifice in which such an electrode is not disposed is known (for example, Japanese Patent Laid-Open No. 1-112044).
(See the official gazette). In this scent, the partition body is formed by superposing two plate members made of an electrically insulating resin so as to be spaced apart from each other to form a communication path between the facing surfaces. The first orifice is formed by disposing the electrode in a part between the facing surfaces, and the second orifice is formed so that the electrode is not arranged in the other portion. The cross-sectional area in which the electrorheological fluid flows can be controlled to be switched depending on whether or not the electrode is energized, that is, the cross-sectional area of the second orifice only or both of the first and second orifices.

【0004】[0004]

【発明が解決しようとする課題】ところが、上記従来の
電気粘性流体封入式マウントにおいては、仕切体に上記
の第1および第2オリフィスを形成するために、電気絶
縁性樹脂からなる2枚のプレート部材の各所定範囲にの
み電極を固定した後、両プレート部材を重ね合わすとい
う面倒な組付け作業を必要とする上、構成が複雑で部品
点数の増大を招くという問題がある。
However, in the above-described conventional electrorheological fluid-filled mount, two plates made of an electrically insulating resin are used to form the first and second orifices in the partition body. After the electrodes are fixed only in the respective predetermined ranges of the members, a troublesome assembling work of overlapping the both plate members is required, and there is a problem that the structure is complicated and the number of parts is increased.

【0005】一方、上記2枚のプレート部材を電気絶縁
性樹脂ではなく電極形成素材により形成して上記の電極
を省略することも考えられるが、このようにすると、部
品点数の低減化は図られるが、電圧印加により電気粘性
流体の流動可能範囲を変更制御するという本来の目的が
得られなくなる。
On the other hand, it is conceivable that the two plate members are made of an electrode forming material instead of an electrically insulating resin and the above electrodes are omitted. However, by doing so, the number of parts can be reduced. However, the original purpose of changing and controlling the flowable range of the electrorheological fluid by applying a voltage cannot be obtained.

【0006】本発明は、このような事情に鑑みてなされ
たものであり、その目的とするところは、電気粘性流体
の流動状態を変化させ得る連通路部分と、電圧印加の有
無に拘らず電気粘性流体の流動状態が変化しない連通路
部分とを有する仕切体を単純な構成で形成して組付けの
容易化を図り、これにより、幅広い周波数領域の入力振
動に対して防振特性の切換制御を可能とすることにあ
る。
The present invention has been made in view of the above circumstances, and an object thereof is to provide a communication passage portion that can change a flow state of an electrorheological fluid and an electric passage regardless of whether or not a voltage is applied. A partition body having a communication passage that does not change the flow state of the viscous fluid is formed with a simple structure to facilitate assembly, and as a result, switching control of vibration isolation characteristics against input vibration in a wide frequency range. Is possible.

【0007】[0007]

【課題を解決するための手段】上記目的を達成するため
に、請求項1記載の発明は、振動入力方向に所定距離を
隔てて配置された第1および第2の支持体と、これら第
1および第2の支持体を互いに連結する弾性支承体と、
この弾性支承体により上記振動入力方向の一側が画成さ
れ他側が弾性隔膜部材により画成されて内部に電気粘性
流体が封入された液室と、この液室を上記弾性支承体の
側の受圧室と上記弾性隔膜部材の側の平衡室とに仕切る
仕切体と、この仕切体に形成されて上記受圧室と平衡室
とを互いに連通する連通路とを備えたものを前提とす
る。このものにおいて、上記仕切体を、互いに所定間隔
を隔てて重ね合わされて相対向面間に上記連通路を形成
する一対の電極プレートと、この一対の電極プレートの
相対向面間を遮断して上記連通路を第1連通路と第2連
通路とに区画する絶縁部材とで構成する。そして、上記
第1連通路における上記一対の電極プレートの相対向面
間隔を、その一対の電極プレートへの電圧印加により上
記第1連通路を通る電気粘性流体の粘度を変更し得る電
界強度を発揮する距離に設定する一方、上記第2連通路
における上記一対の電極プレートの相対向面間隔を、そ
の一対の電極プレートに電圧印加しても上記第2連通路
を通る電気粘性流体の粘度が実質的に変化しない距離に
設定する構成とするものである。
In order to achieve the above object, the invention according to claim 1 is a first and a second support bodies which are arranged at a predetermined distance in the vibration input direction, and these first and second support bodies. And an elastic bearing that connects the second supports to each other,
A liquid chamber in which one side of the vibration input direction is defined by the elastic support and the other side is defined by an elastic diaphragm member and an electrorheological fluid is sealed inside, and this liquid chamber receives pressure on the side of the elastic support. It is premised that a partition body is provided to partition the chamber and the equilibrium chamber on the side of the elastic diaphragm member, and a communication passage formed in the partition body to connect the pressure receiving chamber and the equilibrium chamber to each other. In this structure, the partition bodies are superposed on each other at a predetermined interval and form a pair of electrode plates that form the communication path between the facing surfaces, and the facing surfaces of the pair of electrode plates are cut off from each other. The communication passage is composed of an insulating member that divides the communication passage into a first communication passage and a second communication passage. And, the electric field strength capable of changing the distance between the facing surfaces of the pair of electrode plates in the first communication passage to change the viscosity of the electrorheological fluid passing through the first communication passage by applying a voltage to the pair of electrode plates. On the other hand, the distance between the pair of electrode plates facing each other in the second communication passage is substantially equal to the viscosity of the electrorheological fluid passing through the second communication passage even if a voltage is applied to the pair of electrode plates. The distance is set so that it does not change.

【0008】請求項2記載の発明は、請求項1記載の発
明において、第2連通路における一対の電極プレートの
相対向面間隔を、一対の電極プレートへの最大印加電圧
により形成される電界強度が1kv /mmを超えない距
離に設定する構成とするものである。
According to a second aspect of the invention, in the first aspect of the invention, the distance between the facing surfaces of the pair of electrode plates in the second communication passage is defined by the maximum applied voltage to the pair of electrode plates. Is set to a distance not exceeding 1 kv / mm.

【0009】請求項3記載の発明は、請求項1記載の発
明において、第1連通路の断面積をA1 、その長さをL
1 とし、第2連通路の断面積をA2 、その長さをL2 と
した場合、これらA1 、A2 、L1 、および、L2 を、 (A2 /L2 )/(A1 /L1 )<1 を満足する値にそれぞれ設定する構成とするものであ
る。
According to a third aspect of the present invention, in the first aspect of the invention, the cross-sectional area of the first communication passage is A1, and the length thereof is L.
1 and the cross-sectional area of the second communication passage is A2 and the length thereof is L2, these A1, A2, L1 and L2 satisfy (A2 / L2) / (A1 / L1) <1. The configuration is such that each value is set.

【0010】また、請求項4記載の発明は、請求項1記
載の発明において、第2連通路を、一対の電極プレート
の相対向面に開口する凹溝を形成することにより所定の
相対向面間隔に設定する構成とするものである。
According to a fourth aspect of the present invention, in the first aspect of the present invention, the second communicating passage is formed with a recessed groove that opens to the opposite faces of the pair of electrode plates. The configuration is such that intervals are set.

【0011】さらに、請求項5記載の発明は、請求項1
記載の発明において、第2連通路を、それぞれハット形
状に成形した金属薄板製の一対の電極プレートを互いに
重ね合わせて所定の相対向面間隔に設定する構成とする
ものである。
Further, the invention of claim 5 is the same as claim 1.
In the invention described above, the second communication path is configured such that a pair of electrode plates made of thin metal plates, each of which is formed in a hat shape, are overlapped with each other and set to a predetermined inter-face spacing.

【0012】[0012]

【作用】上記の構成により、請求項1記載の発明では、
一対の電極プレートへの電圧印加により、第1連通路で
は電界が形成されて第1連通路を通る電気粘性流体の粘
度が高められ、ついには第1連通路を通しての電気粘性
流体の流動が実質的に行われない状態となる。これに対
して、第2連通路では上記一対の電極プレートに電圧が
印加されてもこの第2連通路を通る電気粘性流体の粘性
は実質的に変化せず、受圧室と平衡室との間での電気粘
性流体の流動がこの第2連通路を通してのみ行われるこ
とになる。これにより、第2連通路を介しての液柱共振
によって入力振動の減衰が行われる。一方、上記一対の
電極プレートへの電圧印加を停止すると、上記受圧室と
平衡室との間での電気粘性流体の流動が上記第1および
第2の双方の連通路を通して行われ、これにより、双方
の連通路を介しての液柱共振によって入力振動の減衰が
行われる。従って、電圧印加の有無によって減衰の生じ
るピーク周波数や動ばね定数が低動ばね化される周波数
域が変化し、2種類の周波数域での防振特性が得られ
る。そして、このような電圧印加により電気粘性流体の
流動が制限される第1連通路と、電圧印加しても電気粘
性流体の流動状態が変化しない第2連通路とを有する仕
切体が一対の電極プレートを絶縁部材を介して重ね合わ
せるだけで形成されるために、従来のマウントのごとく
電気絶縁性樹脂からなる一対のプレート部材の所定範囲
にのみ電極を固定する場合と比べ、構成の簡略化が図ら
れて組付け作業の容易化、および、部品点数の低減化が
図られる。
With the above construction, in the invention according to claim 1,
By applying a voltage to the pair of electrode plates, an electric field is formed in the first communication passage to increase the viscosity of the electrorheological fluid passing through the first communication passage, and finally the flow of the electrorheological fluid through the first communication passage is substantially increased. It will not be done. On the other hand, in the second communication passage, even if a voltage is applied to the pair of electrode plates, the viscosity of the electrorheological fluid passing through the second communication passage does not substantially change, and the pressure between the pressure receiving chamber and the equilibrium chamber does not change. Therefore, the flow of the electrorheological fluid is performed only through the second communication passage. Thereby, the input vibration is attenuated by the liquid column resonance through the second communication passage. On the other hand, when the voltage application to the pair of electrode plates is stopped, the flow of the electrorheological fluid between the pressure receiving chamber and the equilibrium chamber is performed through both the first and second communication passages, whereby The input vibration is damped by the liquid column resonance through both communication passages. Therefore, the peak frequency at which attenuation occurs and the frequency range in which the dynamic spring constant is lowered are changed depending on whether or not a voltage is applied, and vibration damping characteristics can be obtained in two types of frequency ranges. A pair of partition electrodes has a first communication passage in which the flow of the electrorheological fluid is restricted by the voltage application and a second communication passage in which the flow state of the electrorheological fluid does not change even when the voltage is applied. Since the plates are formed simply by stacking them via the insulating member, the structure can be simplified compared to the case where the electrodes are fixed only within a predetermined range of a pair of plate members made of an electrically insulating resin as in the conventional mount. As a result, the assembling work is facilitated and the number of parts is reduced.

【0013】請求項2記載の発明では、上記請求項1記
載の発明による作用に加えて、第2連通路における一対
の電極プレートの相対向面間隔が最大印加電圧に対し電
界強度が1kv /mmを超えない距離に設定されている
ため、上記一対の電極プレートに電圧を印加しても第2
連通路を通る電気粘性流体を実質的に増粘させることは
ない。このため、上記第1連通路での電気粘性流体の流
動を制限するために上記一対の電極プレートに電圧印加
しても、この一対の電極プレートにより形成された上記
第2連通路では電気粘性流体の流動が確実に確保され
る。
According to the second aspect of the present invention, in addition to the action of the first aspect of the present invention, the distance between the pair of electrode plates facing each other in the second communication passage has an electric field strength of 1 kv / mm with respect to the maximum applied voltage. Since the distance is set so as not to exceed the value, even if a voltage is applied to the pair of electrode plates, the second
It does not substantially thicken the electrorheological fluid passing through the communication passage. Therefore, even if a voltage is applied to the pair of electrode plates to limit the flow of the electrorheological fluid in the first communication passage, the electrorheological fluid is formed in the second communication passage formed by the pair of electrode plates. Is surely secured.

【0014】請求項3記載の発明によれば、上記請求項
1記載の発明による作用に加えて、同じ一対の電極プレ
ートにより形成される第1連通路と第2連通路とのそれ
ぞれの断面積および長さが所定の関係、すなわち、第1
連通路の断面積をその長さで除した値に対する、第2連
通路の断面積をその長さで除した値の比が1より小さく
なるように関係付けられているため、一対の電極への電
圧印加の制御により確実に2種類の周波数領域での防振
特性が得られる。
According to the third aspect of the present invention, in addition to the operation of the first aspect of the present invention, the cross-sectional areas of the first communication passage and the second communication passage formed by the same pair of electrode plates are formed. And the length has a predetermined relationship, that is, the first
Since the ratio of the value obtained by dividing the cross-sectional area of the second communication passage by the length to the value obtained by dividing the cross-sectional area of the communication passage by the length is related to be smaller than 1, a pair of electrodes is connected. By controlling the voltage application, the vibration damping characteristics in the two kinds of frequency regions can be surely obtained.

【0015】また、請求項4記載の発明によれば、上記
請求項1記載の発明による作用に加えて、一対の電極プ
レートの相対向面に凹溝を形成するだけで所定の相対向
面間隔を有する第2連通路の形成が容易に行われる。
Further, according to the invention described in claim 4, in addition to the operation according to the invention described in claim 1, a predetermined gap between the facing surfaces can be obtained only by forming a groove in the facing surfaces of the pair of electrode plates. The formation of the second communication passage having the is easily performed.

【0016】さらに、請求項5記載の発明によれば、上
記請求項1記載の発明による作用に加えて、一対の電極
プレートをプレス成形することにより所定の相対向面間
隔を有する第2連通路の形成が容易に行われる。
Further, according to the invention described in claim 5, in addition to the operation according to the invention described in claim 1, the second communicating passage having a predetermined mutual facing surface interval by press-forming a pair of electrode plates. Are easily formed.

【0017】[0017]

【実施例】以下、本発明の実施例を図面に基いて説明す
る。
Embodiments of the present invention will be described below with reference to the drawings.

【0018】図1は、本発明の第1実施例に係る電気粘
性流体封入式マウントを示し、1は振動入力方向一側
(同図の上側)に配置された第1支持体、2はこの第1
支持体1から所定距離隔てられ筒軸Xを振動入力方向に
向けて振動入力方向他側(同図の下側)に配置された筒
状の第2支持体、3はこの第2支持体2と上記第1支持
体1とを互いに連結する環状の弾性支承体、4はこの弾
性支承体3との間に液室5を形成する弾性隔膜部材とし
てのゴム薄膜製のダイヤフラム、6は上記液室5を上下
2つの室5a,5bに仕切る仕切体である。
FIG. 1 shows an electrorheological fluid-sealed mount according to a first embodiment of the present invention, where 1 is a first support disposed on one side in the vibration input direction (upper side in the same figure), and 2 is this. First
The cylindrical second support 3 which is separated from the support 1 by a predetermined distance and is arranged on the other side (lower side in the figure) of the vibration input direction with the cylinder axis X directed toward the vibration input direction is the second support 2. And a ring-shaped elastic support for connecting the first support 1 to each other, 4 a diaphragm made of a rubber thin film as an elastic diaphragm member forming a liquid chamber 5 between the elastic support 3 and the elastic support 3, and 6 a liquid mentioned above. It is a partition body that divides the chamber 5 into two chambers 5a and 5b which are upper and lower.

【0019】上記第1支持体1は、板部材1aと、この
板部材1aから上記筒軸Xに沿って上向きに突出する連
結ボルト1bと、上記板部材1aから下方に突出する有
底筒部材1cとから構成されている。そして、上記連結
ボルト1bを介して、上記第1支持体1は、振動発生源
側である、例えばエンジン側に連結されるようになって
いる。また、上記筒部材1cの外周面と上記第2支持体
2を構成する支持筒部材7の上端開口縁7aの内周面と
の間にゴムの一体加硫成形によって上記弾性支承体3が
円錐台状に形成されており、この弾性支承体3によって
上記第1支持体1が上記第2支持体2に対して弾性的に
支承されている。
The first support 1 includes a plate member 1a, a connecting bolt 1b projecting upward from the plate member 1a along the cylinder axis X, and a bottomed cylindrical member projecting downward from the plate member 1a. 1c and. Then, the first support 1 is connected to the vibration source side, for example, the engine side, via the connecting bolt 1b. In addition, the elastic bearing body 3 is conical by the integral vulcanization molding of rubber between the outer peripheral surface of the cylindrical member 1c and the inner peripheral surface of the upper end opening edge 7a of the supporting cylindrical member 7 constituting the second supporting body 2. It is formed in a trapezoidal shape, and the elastic support 3 elastically supports the first support 1 with respect to the second support 2.

【0020】上記第2支持体2は、上記支持筒部材7
と、この支持筒部材7の下側に配置された有底筒状のカ
ップ状部材8と、上記支持筒部材7の下端フランジ部7
bと上記カップ状部材8の上端フランジ部8aとを互い
に連結して一体化する固定ボルト9,9,…とを備えて
おり、上記カップ状部材8に下向きに突出して固定され
た連結ボルト8bにより、振動受部である、例えば車体
側に連結されるようになっている。そして、上記一対の
フランジ部7b,8aの間に上記仕切体6の外周縁部6
aおよび上記ダイヤフラム4の外周縁部が挟まれた状態
で上記固定ボルト9,9,…により位置固定されてお
り、上記ダイヤフラム4、弾性支承体3および支持筒部
材7により仕切られた密閉空間内に、電界によって粘性
が変化する電気粘性流体(Electric Rheological Flui
d)Eが封入されて上記液室5が形成されている。この
液室5が上記仕切体6により2つに仕切られ、弾性支承
体3の変形により圧力を受ける受圧室5aがこの仕切体
6の上側に、平衡室5bが下側にそれぞれ形成されてい
る。なお、上記下端フランジ部7bの内周面には上記弾
性支承体3から延びるゴム薄膜3aが加硫接着されてお
り、このゴム薄膜3aおよび上記ダイヤフラム4によっ
て上記仕切体6と一対のフランジ部7b,8aとの間の
シールが行われるようになっている。また、図中8cは
空気抜きであり、カップ状部材8の周壁部に開けられて
ダイヤフラム4の自由な変形を保証するものである。
The second support 2 is the support cylinder member 7
A bottomed tubular cup-shaped member 8 arranged below the support tubular member 7, and a lower end flange portion 7 of the support tubular member 7.
, and fixing bolts 9, 9, ... For connecting and integrating the upper end flange portion 8a of the cup-shaped member 8 with each other, and the connecting bolt 8b fixed to the cup-shaped member 8 so as to project downward. Thus, the vibration receiving portion is connected to, for example, the vehicle body side. Then, the outer peripheral edge portion 6 of the partition body 6 is provided between the pair of flange portions 7b and 8a.
a and the outer peripheral edge portion of the diaphragm 4 are sandwiched and fixed in position by the fixing bolts 9, 9, ... In a closed space partitioned by the diaphragm 4, the elastic support member 3 and the support cylinder member 7. In addition, the electrorheological fluid (Electric Rheological Flui
d) The liquid chamber 5 is formed by enclosing E. The liquid chamber 5 is divided into two by the partition body 6, a pressure receiving chamber 5a that receives pressure due to the deformation of the elastic support body 3 is formed on the upper side of the partition body 6, and a balance chamber 5b is formed on the lower side. . A rubber thin film 3a extending from the elastic support 3 is vulcanized and adhered to the inner peripheral surface of the lower end flange 7b. The rubber thin film 3a and the diaphragm 4 form a partition 6 and a pair of flanges 7b. , 8a is sealed. Further, reference numeral 8c in the drawing denotes an air vent, which is opened in the peripheral wall portion of the cup-shaped member 8 to guarantee free deformation of the diaphragm 4.

【0021】上記仕切体6は、互いに所定間隔を隔てて
重ね合わされた上下一対の電極プレート10,11と、
この一対の電極プレート10,11の相対向面間に介装
されて両者10,11間および固定ボルト9,9,…と
の間を絶縁するシリコンラバーなどからなる絶縁部材1
2と、この絶縁部材12により上記相対向面間が区画さ
れて形成された2つの連通路13,14とを備えてい
る。上記一対の電極プレート10,11は共に相対向面
がそれぞれ平面とされ、仕切体6の外周縁部6aが比較
的薄肉に、中央部6bが比較的厚肉となるよう形成され
ている。そして、上記一対の電極プレート10,11
は、互いに異なる側に突出した各突片10a,11aに
より電源と接続されて、所定の電圧が印加されるように
なっている。
The partition 6 includes a pair of upper and lower electrode plates 10 and 11 which are superposed at a predetermined interval.
An insulating member 1 made of silicon rubber or the like, which is interposed between the facing surfaces of the pair of electrode plates 10 and 11 and insulates the two members 10 and 11 and the fixing bolts 9, 9 ,.
2 and two communication passages 13 and 14 formed by partitioning the facing surfaces by the insulating member 12. Both of the pair of electrode plates 10 and 11 have flat surfaces facing each other, and are formed such that the outer peripheral edge portion 6a of the partition body 6 is relatively thin and the central portion 6b is relatively thick. Then, the pair of electrode plates 10 and 11
Is connected to a power source by each of the projecting pieces 10a and 11a projecting from different sides so that a predetermined voltage is applied.

【0022】上記第1連通路13は、図2および図3に
も示すように、上記中央部6bに対応する上側電極プレ
ート10の一側位置の三日月状開口10bで受圧室5a
に開口し、下側電極プレート11の他側位置の三日月状
開口11bで平衡室5bに開口するように形成されてい
る。一方、上記第2連通路14は、上記一対の電極プレ
ート10,11の相対向面に形成された凹溝10c,1
1cが上記第1連通路13の回りを囲むよう上記中央部
6bの周囲に平面視でC字状に配設されてなり、一端が
上記上側電極プレート10の長穴10dで受圧室5aに
開口し、他端が上記下側電極プレート11の長穴11d
で平衡室5bに開口するよう形成されている。
As shown in FIGS. 2 and 3, the first communication passage 13 has a pressure receiving chamber 5a at a crescent-shaped opening 10b at one side of the upper electrode plate 10 corresponding to the central portion 6b.
And the crescent-shaped opening 11b on the other side of the lower electrode plate 11 opens to the equilibrium chamber 5b. On the other hand, the second communication passage 14 has the concave grooves 10c, 1 formed in the facing surfaces of the pair of electrode plates 10, 11.
1c is arranged in a C shape in plan view around the central portion 6b so as to surround the first communication passage 13, and one end of the upper electrode plate 10 is opened to the pressure receiving chamber 5a through the elongated hole 10d. And the other end is the elongated hole 11d of the lower electrode plate 11
Is formed so as to open to the equilibrium chamber 5b.

【0023】上記第1連通路13の上下間隔H1 、すな
わち、一対の電極プレート10,11の相対向面間隔
は、上記一対の電極プレート10,11への電圧印加に
より形成される電界によってその第1連通路13を通る
電気粘性流体Eが増粘されてついにはその流動が停止さ
れる距離に設定されている。一方、上記第2連通路14
を構成する両凹溝10c,11cの溝底の上下間隔H2
は、上記一対の電極プレート10,11への最大印加電
圧に対して電界強度が1kv/mmを超えない距離とな
るよう設定されている。具体的には、実用上の最大印加
電圧を5kvとした場合、上記上下間隔H2 が5mm以
上となるように設定されて、両者間に発生する電界強度
が1kv/mm以下となるようにされている。つまり、
上記一対の電極プレート10,11に5kvの電圧が印
加されても、第2連通路14を通る電気粘性流体に増粘
効果を実質的に与えずに第2連通路12を通した受圧室
5aと平衡室5bとの間の電気粘性流体Eの流動状態が
変化しないような上記一対の電極プレート10,11の
間隔H2 に設定される。
The vertical distance H1 of the first communication passage 13, that is, the distance between the pair of electrode plates 10 and 11 facing each other is determined by the electric field generated by the voltage application to the pair of electrode plates 10 and 11. The distance is set so that the electrorheological fluid E passing through the first communication passage 13 is thickened and finally stopped flowing. On the other hand, the second communication passage 14
Vertical gap H2 of the groove bottoms of the biconcave grooves 10c and 11c forming the
Is set such that the electric field strength does not exceed 1 kv / mm with respect to the maximum applied voltage to the pair of electrode plates 10 and 11. Specifically, when the maximum applied voltage for practical use is 5 kv, the above-mentioned vertical interval H2 is set to be 5 mm or more, and the electric field strength generated between the two is set to be 1 kv / mm or less. There is. That is,
Even if a voltage of 5 kv is applied to the pair of electrode plates 10 and 11, the pressure receiving chamber 5a passing through the second communication passage 12 does not substantially give a thickening effect to the electrorheological fluid passing through the second communication passage 14. The distance H2 between the pair of electrode plates 10 and 11 is set so that the flow state of the electrorheological fluid E between the electrode and the equilibrium chamber 5b does not change.

【0024】加えて、上記第1連通路13の断面積およ
び長さをA1 ,L1 、第2連通路のそれをA2 ,L2 と
した場合、これらの値A1 、L1 、A2 、L2 が両連通
路13,14間で下記の(1)式を満足するようにそれ
ぞれ設定されて、互いに異なる所定の周波数域の各振動
に対して防振特性を発揮し得るようになっている。従 (A2 /L2 )/(A1 /L1 )<1 ……(1) って、減衰の生じるピーク周波数などの変更制御を幅広
く行わしめるために上記(1)式の左辺の値が1よりも
十分に小さくなるように各値A1 、L1 、A2 、L2 を
設定するのが好ましい。
In addition, when the cross-sectional area and length of the first communication passage 13 are A1 and L1 and those of the second communication passage are A2 and L2, these values A1, L1, A2 and L2 are both The passages 13 and 14 are set so as to satisfy the following expression (1) so that vibration damping characteristics can be exhibited against each vibration in a predetermined frequency range different from each other. Accordingly, (A2 / L2) / (A1 / L1) <1 (1) Therefore, the value on the left side of the above equation (1) is more than 1 in order to widely control the change of the peak frequency at which attenuation occurs. It is preferable to set the respective values A1, L1, A2 and L2 so as to be sufficiently small.

【0025】なお、このような電極プレート10,11
は金属素材の切削加工、鋳造、もしくは、導電性樹脂を
用いた成形などにより形成することができる。
Incidentally, such electrode plates 10, 11
Can be formed by cutting a metal material, casting, or molding using a conductive resin.

【0026】そして、上記一対の電極プレート10,1
1には、比較的低周波域(例えばシェイク振動の周波数
域)の入力振動に対して所定の電圧が印加されるように
なっており、これにより、受圧室5aと平衡室5bとの
間での電気粘性流体Eの流動が上記の第2連通路14を
のみ通して行われてこの第2連通路14を介しての液柱
共振により上記低周波域の入力振動の減衰を行うように
なっている。また、比較的高周波域(例えばアイドル振
動の周波数域)の入力振動に対して上記の電圧印加が停
止されるようになっており、これにより、受圧室5aと
平衡室5bとの間での電気粘性流体Eの流動が上記の第
1および第2連通路13,14の双方の大断面部分を通
して行われて上記第2連通路14が目詰まり状態となる
ような高周波振動が入力しても受圧室5aの内圧の急上
昇を防止して動ばね定数の低減化を図るようになってい
る。
Then, the pair of electrode plates 10, 1
1, a predetermined voltage is applied to the input vibration in a relatively low frequency range (for example, the frequency range of shake vibration), whereby the pressure receiving chamber 5a and the equilibrium chamber 5b are connected to each other. The electro-rheological fluid E flows through the second communication passage 14 only, and the liquid column resonance through the second communication passage 14 attenuates the input vibration in the low frequency range. ing. Further, the voltage application is stopped with respect to the input vibration in a relatively high frequency range (for example, the frequency range of idle vibration), so that the electric power between the pressure receiving chamber 5a and the equilibrium chamber 5b is reduced. The viscous fluid E flows through the large cross-sections of both the first and second communication passages 13 and 14 to receive the pressure even if high-frequency vibration that causes the second communication passage 14 to be clogged is input. A sudden increase in the internal pressure of the chamber 5a is prevented to reduce the dynamic spring constant.

【0027】つぎに、上記構成の第1実施例の作用・効
果を説明する。
Next, the operation and effect of the first embodiment having the above structure will be described.

【0028】上記電気粘性流体封入式マウントは、上下
一側の連結ボルト1bが例えばエンジン側に、他側の各
連結ボルト8bが例えば車体側にそれぞれ連結される。
In the electrorheological fluid-filled mount, the upper and lower connecting bolts 1b are connected to, for example, the engine side, and the other connecting bolts 8b are connected to, for example, the vehicle body side.

【0029】そして、一対の電極プレート10,11へ
の電圧印加により、第1連通路13では電界が形成され
て第1連通路13を通る電気粘性流体Eの粘度が高めら
れ、ついには第1連通路13を通しての電気粘性流体E
の流動が実質的に行われない状態となる。これに対し
て、第2連通路14では上記一対の電極プレート10,
11に電圧が印加されてもこの第2連通路14を通る電
気粘性流体Eの粘性は実質的に変化せず、受圧室5aと
平衡室5bとの間での電気粘性流体Eの流動がこの第2
連通路14を通してのみ行われることになる。これによ
り、上記受圧室5aと平衡室5bとの間の連通路が縮小
され液柱共振の生じる周波数域が低周波側に変化し、図
4に上述の(1)式の左辺の値が0.23となる場合の
電圧印加時の防振特性を実線で示すように、減衰の生じ
るピーク周波数および動ばね定数の低値域が共に電圧印
加をしない場合(同図の破線参照)よりも低周波側に変
化する。そして、図4の場合、シェイク振動域である1
0〜20Hzの周波数域で高減衰、および、動ばね定数
の低動ばね化が図られる。
By applying a voltage to the pair of electrode plates 10 and 11, an electric field is formed in the first communication passage 13 to increase the viscosity of the electrorheological fluid E passing through the first communication passage 13 and finally to the first communication passage 13. Electrorheological fluid E through communication passage 13
It becomes a state where the flow of is not substantially performed. On the other hand, in the second communication passage 14, the pair of electrode plates 10,
Even if a voltage is applied to 11, the viscosity of the electrorheological fluid E passing through the second communication passage 14 does not substantially change, and the flow of the electrorheological fluid E between the pressure receiving chamber 5a and the equilibrium chamber 5b is Second
It will be performed only through the communication passage 14. As a result, the communication passage between the pressure receiving chamber 5a and the equilibrium chamber 5b is reduced, and the frequency range in which liquid column resonance occurs changes to the low frequency side, and the value on the left side of the above equation (1) is 0 in FIG. As shown by the solid line in Fig. 23, when the voltage is applied, the peak frequency and the low value range of the dynamic spring constant are lower than those when no voltage is applied (see the broken line in the figure). Change to the side. In the case of FIG. 4, the shake vibration range 1
High damping in the frequency range of 0 to 20 Hz and low dynamic spring constant of the dynamic spring constant are achieved.

【0030】一方、上記の電圧印加を停止すると、振動
入力により受圧室5aと平衡室5bとの間での電気粘性
流体Eの流動が第1および第2連通路13,14の双方
で生じて連通路が拡大されるため、液柱共振の生じる周
波数域が高周波側に変化し、減衰の生じるピーク周波数
および動ばね定数の低値域が共に電圧印加をする場合
(図4の実線参照)よりも高周波側に変化する。そし
て、図4の場合、アイドル振動域である20〜40Hz
の周波数域で高減衰、および、動ばね定数の低動ばね化
が図られる。
On the other hand, when the above voltage application is stopped, the flow of the electrorheological fluid E between the pressure receiving chamber 5a and the equilibrium chamber 5b occurs in both the first and second communication passages 13 and 14 due to the vibration input. Since the communication passage is expanded, the frequency range where liquid column resonance occurs changes to the high frequency side, and both the peak frequency where damping occurs and the low value range of the dynamic spring constant apply voltage (see the solid line in Fig. 4). Change to high frequency side. And in the case of FIG. 4, 20-40 Hz which is an idle vibration range.
High damping and low dynamic spring constant are achieved in the frequency range of.

【0031】従って、振動発生源の側に取付けられた第
1支持体1から上下方向の低周波振動が入力した場合、
仕切体6を構成する一対の電極プレート10,11に所
定の電圧を印加することにより、第1連通路13内の電
気粘性流体Eが増粘されて第1連通路13内を電気粘性
流体Eが流動しないようにされる。このため、上記の振
動力入力により第1支持体1が下方に変位する場合、弾
性支承体3が下方に撓んで受圧室5aが縮小され、内部
の電気粘性流体Eが第2連通路14をのみ通して平衡室
5bの側に流動する。この液体Lの流動に伴い上記第2
連通路14を介した液柱共振を有効に生じさせることが
でき、この液柱共振により上記低周波域の入力振動の高
減衰を図ることができる。
Therefore, when a low frequency vibration in the vertical direction is input from the first support 1 attached to the side of the vibration source,
By applying a predetermined voltage to the pair of electrode plates 10 and 11 constituting the partition body 6, the electrorheological fluid E in the first communication passage 13 is thickened and the electrorheological fluid E flows in the first communication passage 13. Are prevented from flowing. Therefore, when the first supporting body 1 is displaced downward by the above-mentioned vibration force input, the elastic support body 3 is deflected downward, the pressure receiving chamber 5a is contracted, and the electrorheological fluid E inside the second communicating passage 14 is reduced. It flows through only the equilibrium chamber 5b. As the liquid L flows, the second
The liquid column resonance can be effectively generated through the communication passage 14, and the liquid column resonance can achieve high damping of the input vibration in the low frequency range.

【0032】一方、上記第1支持体1から入力する振動
がより高周波側のものとなって上記第2連通路14を通
した液体Lの流動が実質的に生じない目詰まり状態とな
った場合、弾性支承体3が下方に撓められることによっ
て受圧室5aの液圧が上昇する。この際、上記の一対の
電極プレート10,11への電圧印加を停止することに
より、上記の第2連通路14に加えて第1連通路13の
双方の連通路13,14を介しての受圧室5aと平衡室
5bとの間の電気粘性流体Eの流動が可能となる。この
ため、上記受圧室5aの液圧変動に伴い平衡室5bとの
間での電気粘性流体Eの流動が十分に生じ、上記受圧室
5aの内圧の上昇が防止されて高周波域の振動入力に対
して動ばね定数の低減化を図ることができる。
On the other hand, when the vibration input from the first support member 1 is on the higher frequency side and the flow of the liquid L through the second communication passage 14 is not substantially caused, the clogging state occurs. As the elastic support 3 is bent downward, the hydraulic pressure in the pressure receiving chamber 5a rises. At this time, by stopping the voltage application to the pair of electrode plates 10 and 11, the pressure is received through both the communication passages 13 and 14 of the first communication passage 13 in addition to the second communication passage 14 described above. The electrorheological fluid E can flow between the chamber 5a and the equilibrium chamber 5b. Therefore, the flow of the electrorheological fluid E between the pressure receiving chamber 5a and the equilibrium chamber 5b sufficiently occurs due to the fluctuation of the hydraulic pressure in the pressure receiving chamber 5a, the rise of the internal pressure of the pressure receiving chamber 5a is prevented, and the vibration input in the high frequency range is performed. On the other hand, the dynamic spring constant can be reduced.

【0033】このような、電圧印加のON・OFF切換
制御により低周波域の入力振動に対する高減衰と、高周
波域の入力振動に対する低動ばね化とを図り得る2つの
連通路13,14が一対の電極プレート10,11を絶
縁部材12を介して互いに重ね合わせるだけで仕切体6
の形成と同時に形成することができるため、従来の電気
粘性流体封入式マウントのごとく電気絶縁性樹脂からな
る一対のプレート部材の所定位置に電極を相対向して設
けて電極有りの部分と無しの部分とを区画して形成する
場合と比べ、構成を簡略化することができ、組付け作業
の容易化、および、部品点数の低減化を図ることができ
る。そして、一対の電極プレート10,11の間であり
ながら電圧印加しても電気粘性流体Eの流動状態を変化
させない第2連通路14の形成を、上記各電極プレート
10,11に凹溝10c,11cを形成して電界が電気
粘性流体に実質的に影響を及ぼさない上下間隔を隔てる
ことにより行っているため、従来の電気粘性流体封入式
マウントのごとく電極を設けない連通路を別に形成する
必要もなく、電圧印加により流動状態を変化させる連通
路13と変化させない連通路14との形成を容易に行う
ことができる。
A pair of two communication passages 13 and 14 capable of achieving high damping for input vibrations in the low frequency range and low dynamic springs for input vibrations in the high frequency range by such ON / OFF switching control of voltage application. The partition plate 6 can be formed by simply stacking the electrode plates 10 and 11 of FIG.
Since it can be formed simultaneously with the formation of electrodes, electrodes are provided facing each other at predetermined positions of a pair of plate members made of an electrically insulating resin as in the conventional electrorheological fluid-sealed mount, and the electrodes with and without the electrodes are provided. The configuration can be simplified, the assembling work can be facilitated, and the number of parts can be reduced as compared with the case where the parts are divided and formed. Then, the formation of the second communication passage 14 which does not change the flow state of the electrorheological fluid E even when the voltage is applied between the pair of electrode plates 10 and 11 is formed by forming the concave groove 10c in each of the electrode plates 10 and 11. 11c and the electric field does not substantially affect the electrorheological fluid. The upper and lower distances are separated from each other. Therefore, it is necessary to separately form a communication path without electrodes as in the conventional electrorheological fluid sealed mount. Also, it is possible to easily form the communication passage 13 that changes the flow state by applying a voltage and the communication passage 14 that does not change the flow state.

【0034】しかも、この際、第2連通路14における
上記一対の電極プレート10,11の間隔を印加する最
大電圧との関係でこの第2連通路14を通る電気粘性流
体に対し実質的に増粘作用を及ぼさない距離に設定して
いるため、低周波振動の入力に際して上記一対の電極プ
レート10,11に電圧を印加しても、上記第2連通路
14を確実に電気粘性流体が流動可能な状態に保つこと
ができ、従来の電気粘性流体封入式マウントのごとくわ
ざわざ電極を設けない領域を形成する手間を必要とする
ことなく低周波振動の減衰を確実に図ることができる。
特に、第2連通路14における一対の電極プレート1
0,11の相対向面間隔として最大印加電圧に対し電界
強度が1kv /mmより小さくなる距離を設定している
ため、上記一対の電極プレート10,11に電圧を印加
しても第2連通路14を通る電気粘性流体Eの粘度を増
加させることはなく、第2連通路14を通した電気粘性
流体Eの流動を無印加状態の場合と同様に確保すること
ができる。
In addition, at this time, the distance between the pair of electrode plates 10 and 11 in the second communication passage 14 is substantially increased with respect to the electrorheological fluid passing through the second communication passage 14 in relation to the maximum voltage applied. Since the distance is set so as not to exert a viscous action, even if a voltage is applied to the pair of electrode plates 10 and 11 at the time of input of low frequency vibration, the electrorheological fluid can surely flow through the second communication passage 14. Therefore, it is possible to reliably reduce the low-frequency vibration without requiring the trouble of forming a region where the electrode is not provided unlike the conventional electrorheological fluid-sealed mount.
In particular, the pair of electrode plates 1 in the second communication passage 14
Since the distance between the facing surfaces of 0 and 11 is such that the electric field strength is smaller than 1 kv / mm with respect to the maximum applied voltage, even if a voltage is applied to the pair of electrode plates 10 and 11, the second communication path is formed. The viscosity of the electrorheological fluid E passing through 14 is not increased, and the flow of the electrorheological fluid E through the second communication passage 14 can be secured as in the case of no application.

【0035】また、第1連通路13における断面積をそ
の長さで除した換算値に対する第2連通路14における
同様換算値の比が1よりも小さくなるように、各連通路
13,14の断面積および長さの値を設定しているた
め、電圧印加、印加停止の切換制御により低周波側域と
高周波側域との2種類の周波数域の間で減衰のピーク周
波数、および、ばね定数の低値域を変更させることがで
きる。
Further, each of the communication passages 13 and 14 is so designed that the ratio of the similar conversion value in the second communication passage 14 to the conversion value obtained by dividing the cross-sectional area in the first communication passage 13 by its length is smaller than 1. Since the values of the cross-sectional area and the length are set, the peak frequency of attenuation and the spring constant between the low frequency side region and the high frequency side region are controlled by switching control of voltage application and application stop. The low range of can be changed.

【0036】図5および図6は本発明の第2実施例に係
る電気粘性流体封入式マウント用仕切体としてプレス成
形部材により構成した仕切体16を示している。この第
2実施例は第1実施例の仕切体6の構成のみ異なり、そ
の他の構成は第1実施例のものと同様である。このた
め、以下にこの第2実施例の仕切体16の構成をのみ説
明し、他の構成については、同一部材には同一符号を付
して、その説明を省略する。
FIG. 5 and FIG. 6 show a partition body 16 constituted by a press-molded member as a partition body for an electrorheological fluid-sealed mount according to a second embodiment of the present invention. The second embodiment differs from the first embodiment only in the construction of the partition body 6, and the other construction is the same as that of the first embodiment. Therefore, only the configuration of the partition body 16 of the second embodiment will be described below, and with respect to the other configurations, the same reference numerals are given to the same members and the description thereof will be omitted.

【0037】上記仕切体16は、上記第1実施例の仕切
体6と同様に、互いに所定間隔を隔てて重ね合わされた
上下一対の電極プレート17,18と、この一対の電極
プレート17,18の相対向面間に介装されて両者1
7,18間および固定ボルト9,9,…との間を絶縁す
るシリコンラバーなどからなる絶縁部材19と、この絶
縁部材19により上記相対向面間が区画されて形成され
た2つの連通路20,21とを備えている。そして、上
記一対の電極プレート17,18は、互いに異なる側に
突出した各突片17a,18aにより電源と接続され
て、所定の電圧が印加されるようになっている。
Similar to the partition body 6 of the first embodiment, the partition body 16 includes a pair of upper and lower electrode plates 17 and 18 which are superposed at a predetermined distance from each other, and the pair of electrode plates 17 and 18. Both of them are interposed between the facing surfaces
An insulating member 19 made of silicon rubber or the like for insulating between 7, 18 and the fixing bolts 9, 9, ..., And two communication passages 20 formed by partitioning the facing surfaces by the insulating member 19. , 21 and. The pair of electrode plates 17 and 18 are connected to a power source by projecting pieces 17a and 18a projecting from different sides so that a predetermined voltage is applied.

【0038】上記一対の電極プレート17,18は共に
ハット形状にプレス成形された金属薄板により形成さ
れ、第1連通路20が中央部に、第2連通路21がその
第1連通路を囲むよう環状に形成されている。すなわ
ち、上記両電極プレート17,18は、共にほぼ同径の
円板状素材の中央部に互いに異なる直径の円形の凸部1
7b,18bを形成し、この両凸部17b,18bを互
いに重ね合わせることにより、上記両凸部17b,18
bの各端壁間に上記第1連通路20が形成され、上記両
凸部17b,18bの各周壁間に上記第2連通路21が
形成されている。
The pair of electrode plates 17 and 18 are both formed of a thin metal plate pressed into a hat shape, and the first communication passage 20 surrounds the first communication passage in the center. It is formed in a ring shape. That is, both of the electrode plates 17 and 18 have circular protrusions 1 of different diameters at the center of a disk-shaped material having substantially the same diameter.
7b and 18b are formed, and the both convex portions 17b and 18b are overlapped with each other, whereby the both convex portions 17b and 18b are formed.
The first communication passage 20 is formed between the end walls of b, and the second communication passage 21 is formed between the peripheral walls of both the convex portions 17b and 18b.

【0039】上記絶縁部材19は、第1連通路20と第
2連通路21とを区画する内周側絶縁部材19aと、第
2連通路21の外周側を区画しかつ固定ボルト9,9,
…の挿通孔を形成する外周側絶縁部材19bとの2つか
らなる。
The insulating member 19 divides the first communication passage 20 and the second communication passage 21 into inner insulation members 19a and the outer periphery of the second communication passage 21 and has fixing bolts 9, 9 ,.
And an outer peripheral side insulating member 19b forming an insertion hole.

【0040】上記第1連通路20は上側電極プレート1
7の一側位置の三日月状開口17bで受圧室5a(図1
参照)に開口し、下側電極プレート18の他側位置の三
日月状開口18bで平衡室5bに開口するように形成さ
れている。一方、上記第2連通路14は、一側の長穴1
7cで受圧室5aに開口し、他端が上記下側電極プレー
ト18の長穴18cで平衡室5bに開口するよう形成さ
れている。
The first communication passage 20 is the upper electrode plate 1
The crescent-shaped opening 17b at one side of the pressure receiving chamber 5a (see FIG.
And the crescent-shaped opening 18b at the other side of the lower electrode plate 18 to the equilibrium chamber 5b. On the other hand, the second communication passage 14 has the elongated hole 1 on one side.
7c is opened to the pressure receiving chamber 5a, and the other end is formed to be opened to the equilibrium chamber 5b through the elongated hole 18c of the lower electrode plate 18.

【0041】そして、上記第1連通路20の上下間隔H
1 は上記各絶縁部材19a,19bの厚みにより定めら
れ、第2連通路21の上下間隔H2 は上記各電極プレー
ト17,18の両凸部17a,18aの深さにより定め
られる。そして、上記上下間隔H2 は、第1実施例と同
様に、電圧印加時に両電極プレート17,18間に形成
される電界強度が1kv/mmを超えないようにその距
離が定められ、かつ、第1連通路20の断面積A1 ,長
さL1 、および、第2連通路21の断面積A2,長さL2
は、前述の(1)式を満足するよう各値が定められ
る。
The vertical distance H of the first communication passage 20 is
1 is determined by the thickness of each insulating member 19a, 19b, and the vertical interval H2 of the second communication passage 21 is determined by the depth of both convex portions 17a, 18a of each electrode plate 17, 18. As in the first embodiment, the vertical distance H2 is set such that the electric field strength formed between the electrode plates 17 and 18 does not exceed 1 kv / mm when a voltage is applied, and The cross-sectional area A1 and the length L1 of the first communication passage 20, and the cross-sectional area A2 and the length L2 of the second communication passage 21.
Is set to each value so as to satisfy the above equation (1).

【0042】そして、上記第2実施例の場合、第1実施
例と同様の作用、効果が得られる他、電圧印加により流
動状態を変化させる第1連通路と変化させない第2連通
路とを一対の電極プレート17,18で同時に形成する
に当たり、第2連通路21で必要とされる所定の上下間
隔H2 をプレス成形による凸部17b,18bにより確
保することができ、第1実施例のごとく金属板材の切削
加工により凹溝10c,11cを形成する場合と比べ、
容易に形成することができる。
In the case of the second embodiment, the same action and effect as those of the first embodiment are obtained, and a pair of the first communication passage that changes the flow state by the voltage application and the second communication passage that does not change the flow state are provided. When forming the electrode plates 17 and 18 simultaneously, the predetermined vertical distance H2 required in the second communication passage 21 can be secured by the convex portions 17b and 18b formed by press molding. Compared with the case where the concave grooves 10c and 11c are formed by cutting the plate material,
It can be easily formed.

【0043】なお、本発明は上記第1および第2実施例
に限定されるものではなく、その他種々の変形例を包含
するものである。すなわち、上記第1実施例では、第2
連通路14を一対の電極プレート10,11の双方に凹
溝10c,11cを形成することにより形成している
が、これに限らず、例えば、上記一対の電極プレートの
内の一方にのみ凹溝を形成することにより第2連通路を
形成するようにしてもよい。
The present invention is not limited to the first and second embodiments described above, but includes various other modifications. That is, in the first embodiment, the second
The communication passage 14 is formed by forming the concave grooves 10c and 11c in both the pair of electrode plates 10 and 11, but the invention is not limited to this. For example, only one of the pair of electrode plates may be formed into the concave groove. The second communication passage may be formed by forming the.

【0044】また、上記実施例における第1および第2
連通路13,14、20,21の配置は、絶縁部材1
2,19の形状を変更することにより自由に変更し得
る。
Further, the first and the second in the above embodiment
The communication passages 13, 14, 20, 21 are arranged in the insulating member 1
It can be freely changed by changing the shapes of 2, 19.

【0045】[0045]

【発明の効果】以上説明したように、請求項1記載の発
明における電気粘性流体封入式マウントによれば、液室
を受圧室と平衡室とに仕切りかつ両者を互いに連通する
連通路を有する仕切体を、一対の電極プレートと、両電
極プレートの相対向面間に介装した絶縁部材とにより形
成し、この絶縁部材により上記一対の電極プレートの相
対向面間を第1連通路と第2連通路とに区画し、かつ、
第2連通路の相対向面間隔を電圧印加しても第2連通路
を通る電気粘性流体の粘度が実質的に変化しない距離に
設定しているため、電圧印加により電気粘性流体の流動
を制限する第1連通路と、電圧印加しても電気粘性流体
の流動状態が変化しない第2連通路とを有する仕切体
を、わざわざ電極部材を配置した領域と、電極部材を配
置しない領域とに別けて2つの連通路を仕切体内に形成
する従来の電気粘性流体封入式マウントに比べ、単純な
構成で実現することができ、組付けの容易化を図ること
ができる。従って、電圧印加の有無により減衰の生じる
ピーク周波数や、動ばね定数の低減域の周波数を変化さ
せることができる電気粘性流体封入式マウントを、容易
に構成することができ、その部品点数の低減化、コスト
の低減化を図ることができる。
As described above, according to the electrorheological fluid-sealed mount according to the first aspect of the present invention, the partition for partitioning the liquid chamber into the pressure receiving chamber and the equilibrium chamber and having the communicating passage for communicating the two with each other is provided. The body is formed of a pair of electrode plates and an insulating member interposed between the facing surfaces of the two electrode plates, and the insulating member is provided between the facing surfaces of the pair of electrode plates to form a first communication passage and a second communicating path. It is divided into a communication passage, and
Since the distance between the facing surfaces of the second communication passage is set to a distance at which the viscosity of the electrorheological fluid passing through the second communication passage does not substantially change even if a voltage is applied, the flow of the electrorheological fluid is restricted by the voltage application. The partition body having a first communication passage and a second communication passage in which the flow state of the electrorheological fluid does not change even when a voltage is applied is divided into a region where the electrode member is arranged and a region where the electrode member is not arranged. As compared with the conventional electrorheological fluid-sealed mount in which two communication passages are formed in the partition body, the mount can be realized with a simpler configuration, and the assembling can be facilitated. Therefore, it is possible to easily configure an electrorheological fluid-filled mount that can change the peak frequency at which attenuation occurs depending on the presence or absence of voltage application and the frequency in the reduction range of the dynamic spring constant, and reduce the number of parts. Therefore, the cost can be reduced.

【0046】請求項2記載の発明によれば、上記請求項
1記載の発明による効果に加えて、第2連通路における
一対の電極プレートの相対向面間隔を印加電圧により形
成される電界強度が1kv /mmを超えない距離に設定
しているため、上記一対の電極プレートに電圧を印加し
ても第2連通路を通る電気粘性流体を実質的に増粘させ
ることはなく上記第2連通路を通した電気粘性流体の流
動を確保することができる。これにより、電圧印加の有
無により2つの周波数域の振動に対して防振特性を確実
に発揮させることができる。
According to the second aspect of the invention, in addition to the effect of the first aspect of the invention, the electric field strength formed by the applied voltage is the distance between the opposed faces of the pair of electrode plates in the second communication passage. Since the distance is set so as not to exceed 1 kv / mm, even if a voltage is applied to the pair of electrode plates, the electrorheological fluid passing through the second communication passage is not substantially thickened and the second communication passage is It is possible to ensure the flow of the electrorheological fluid through the. As a result, it is possible to surely exhibit the vibration damping characteristics against the vibration in the two frequency ranges depending on the presence or absence of the voltage application.

【0047】請求項3記載の発明によれば、上記請求項
1記載の発明による効果に加えて、第1連通路と第2連
通路とのそれぞれの断面積および長さが所定の関係、す
なわち、第1連通路の断面積をその長さで除した値に対
する第2連通路の断面積をその長さで除した値の比が1
より小さくなるように関係付けられているため、一対の
電極プレートへの電圧印加の切換制御により確実に2つ
の周波数領域での防振特性を得ることができる。
According to the third aspect of the invention, in addition to the effect of the first aspect of the invention, the cross-sectional areas and lengths of the first communication passage and the second communication passage have a predetermined relationship, that is, , The ratio of the value obtained by dividing the sectional area of the second communicating passage by the length to the value obtained by dividing the sectional area of the first communicating passage by its length is 1.
Since they are related so as to be smaller, it is possible to surely obtain the vibration isolation characteristics in the two frequency regions by the switching control of the voltage application to the pair of electrode plates.

【0048】また、請求項4記載の発明によれば、上記
請求項1記載の発明による効果に加えて、一対の電極プ
レートの相対向面に凹溝を形成するだけで所定の相対向
面間隔を有する第2連通路の形成を容易に行うことがで
き、一対の電極プレートを重ね合わせるだけで、電圧印
加により電気粘性流体の流動が制限される第1連通路と
その流動状態が変化しないに連通路との形成を容易かつ
確実に行うことができる。
According to the invention described in claim 4, in addition to the effect of the invention described in claim 1, a predetermined gap between the facing surfaces can be obtained only by forming a groove in the facing surfaces of the pair of electrode plates. It is possible to easily form the second communication passage having the above-mentioned structure, and only by superposing the pair of electrode plates, the first communication passage in which the flow of the electrorheological fluid is restricted by the voltage application and the flow state thereof do not change. The formation with the communication passage can be performed easily and reliably.

【0049】さらに、請求項5記載の発明によれば、上
記請求項1記載の発明による効果に加えて、一対の電極
プレートをプレス成形することにより所定の相対向面間
隔を有する第2連通路の形成を容易に行うことができ、
請求項4記載の発明と同様に、一対の電極プレートを重
ね合わせるだけで、電圧印加により電気粘性流体の流動
が制限される第1連通路とその流動状態が変化しないに
連通路との形成を容易かつ確実に行うことができる。
Further, according to the invention of claim 5, in addition to the effect of the invention of claim 1, the second communicating passage having a predetermined inter-face spacing by press-forming a pair of electrode plates. Can be easily formed,
Similar to the fourth aspect of the invention, the first communication passage in which the flow of the electrorheological fluid is restricted by the voltage application and the communication passage without changing its flow state are formed only by superposing the pair of electrode plates. It can be done easily and reliably.

【図面の簡単な説明】[Brief description of drawings]

【図1】本発明の第1実施例を示す縦断面図であり、仕
切体については図2のA−B−C−D−E−F−G線に
対応する縦断面図である。
FIG. 1 is a vertical cross-sectional view showing a first embodiment of the present invention, and is a vertical cross-sectional view of a partition body corresponding to the line A-B-C-D-E-F-G in FIG.

【図2】図1の仕切体の拡大平面図である。FIG. 2 is an enlarged plan view of the partition body of FIG.

【図3】図2のA−A′線における断面図である。FIG. 3 is a cross-sectional view taken along the line AA ′ in FIG.

【図4】周波数と、動ばね定数およびロスファクターと
の関係図である。
FIG. 4 is a relationship diagram between frequency, dynamic spring constant, and loss factor.

【図5】第2実施例における図2相当図である。FIG. 5 is a view corresponding to FIG. 2 in the second embodiment.

【図6】図5のJ−K線における断面図である。6 is a cross-sectional view taken along the line JK in FIG.

【符号の説明】[Explanation of symbols]

1 第1支持体 2 第2支持体 3 弾性支承体 4 ダイヤフラム(弾性隔膜部
材) 5 液室 5a 受圧室 5b 平衡室 6,16 仕切体 10,11,17,18 電極プレート 12,19 絶縁部材 13,20 第1連通路 14,21 第2連通路 10c,11c 凹溝
1 1st support body 2 2nd support body 3 elastic support body 4 diaphragm (elastic diaphragm member) 5 liquid chamber 5a pressure receiving chamber 5b equilibrium chamber 6,16 partition body 10,11,17,18 electrode plate 12,19 insulating member 13 , 20 First communication passage 14, 21 Second communication passage 10c, 11c Recessed groove

Claims (5)

【特許請求の範囲】[Claims] 【請求項1】 振動入力方向に所定距離を隔てて配置さ
れた第1および第2の支持体と、これら第1および第2
の支持体を互いに連結する弾性支承体と、この弾性支承
体により上記振動入力方向の一側が画成され他側が弾性
隔膜部材により画成されて内部に電気粘性流体が封入さ
れた液室と、この液室を上記弾性支承体の側の受圧室と
上記弾性隔膜部材の側の平衡室とに仕切る仕切体と、こ
の仕切体に形成されて上記受圧室と平衡室とを互いに連
通する連通路とを備えた電気粘性流体封入式マウントに
おいて、 上記仕切体は、互いに所定間隔を隔てて重ね合わされて
相対向面間に上記連通路を形成する一対の電極プレート
と、 この一対の電極プレートの相対向面間を遮断して上記連
通路を第1連通路と第2連通路とに区画する絶縁部材と
からなり、 上記第1連通路における上記一対の電極プレートの相対
向面間隔が、その一対の電極プレートへの電圧印加によ
り上記第1連通路を通る電気粘性流体の粘度を変更し得
る電界強度を発揮する距離に設定される一方、上記第2
連通路における上記一対の電極プレートの相対向面間隔
が、その一対の電極プレートに電圧印加しても上記第2
連通路を通る電気粘性流体の粘度が実質的に変化しない
距離に設定されていることを特徴とする電気粘性流体封
入式マウント。
1. A first support and a second support arranged at a predetermined distance in a vibration input direction, and the first and second supports.
An elastic support member that connects the support members to each other, and a liquid chamber in which one side of the vibration input direction is defined by the elastic support member and the other side is defined by an elastic diaphragm member, and an electrorheological fluid is sealed inside. A partition body for partitioning the liquid chamber into a pressure receiving chamber on the side of the elastic bearing and a balance chamber on the side of the elastic diaphragm member, and a communication passage formed in the partition body for communicating the pressure receiving chamber and the balance chamber with each other. In the electrorheological fluid-enclosed mount having a pair of electrode plates, the partition bodies are overlapped with each other at a predetermined distance to form the communication path between the facing surfaces, and the pair of electrode plates are opposed to each other. An insulating member that blocks the facing surfaces and divides the communication passage into a first communication passage and a second communication passage, and the pair of electrode plates in the first communication passage have a facing surface spacing of Voltage to the electrode plate of While being set to a distance that exhibits an electric field strength capable of changing the viscosity of electro-rheological fluid through the first communication path by pressure, the second
Even if a voltage is applied to the pair of electrode plates, the distance between the facing surfaces of the pair of electrode plates in the communication path is the second.
An electrorheological fluid-enclosed mount, wherein a distance is set so that the viscosity of the electrorheological fluid passing through the communication passage does not substantially change.
【請求項2】 請求項1において、 第2連通路における一対の電極プレートの相対向面間隔
は、一対の電極プレートへの最大印加電圧により形成さ
れる電界強度が1kv /mmを超えない距離に設定され
ている電気粘性流体封入式マウント。
2. The distance between the pair of electrode plates facing each other in the second communication passage is set such that the electric field strength formed by the maximum applied voltage to the pair of electrode plates does not exceed 1 kv / mm. Mounted electrorheological fluid filled mount.
【請求項3】 請求項1において、 第1連通路の断面積をA1 、その長さをL1 とし、第2
連通路の断面積をA2、その長さをL2 とした場合、こ
れらA1 、A2 、L1 、および、L2 が、 (A2 /L2 )/(A1 /L1 )<1 を満足する値にそれぞれ設定されている電気粘性流体封
入式マウント。
3. The cross-sectional area of the first communicating passage according to claim 1, the cross-sectional area of which is A1, and the length thereof is L1,
If the cross-sectional area of the communication passage is A2 and its length is L2, these A1, A2, L1 and L2 are set to values that satisfy (A2 / L2) / (A1 / L1) <1, respectively. Electro-rheological fluid filled mount.
【請求項4】 請求項1において、 第2連通路は、一対の電極プレートの相対向面に開口す
る凹溝が形成されて所定の相対向面間隔に設定されてい
る電気粘性流体封入式マウント。
4. The electrorheological fluid-filled mount according to claim 1, wherein the second communication passage is formed with a concave groove that opens in the facing surfaces of the pair of electrode plates and is set at a predetermined spacing between the facing surfaces. .
【請求項5】 請求項1において、 第2連通路は、それぞれハット形状に成形された金属薄
板製の一対の電極プレートが互いに重ね合わされて所定
の相対向面間隔に設定されている電気粘性流体封入式マ
ウント。
5. The electrorheological fluid according to claim 1, wherein the second communication passage has a pair of electrode plates made of thin metal plates each formed in a hat shape, and the pair of electrode plates are superposed on each other and set to have a predetermined inter-face spacing. Enclosed mount.
JP21367993A 1993-08-30 1993-08-30 Electro-rheological fluid-filled mount Expired - Fee Related JP3350166B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP21367993A JP3350166B2 (en) 1993-08-30 1993-08-30 Electro-rheological fluid-filled mount

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP21367993A JP3350166B2 (en) 1993-08-30 1993-08-30 Electro-rheological fluid-filled mount

Publications (2)

Publication Number Publication Date
JPH0763238A true JPH0763238A (en) 1995-03-07
JP3350166B2 JP3350166B2 (en) 2002-11-25

Family

ID=16643184

Family Applications (1)

Application Number Title Priority Date Filing Date
JP21367993A Expired - Fee Related JP3350166B2 (en) 1993-08-30 1993-08-30 Electro-rheological fluid-filled mount

Country Status (1)

Country Link
JP (1) JP3350166B2 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0810386A3 (en) * 1996-05-24 1998-01-07 Firma Carl Freudenberg Hydraulic support
EP0834674A2 (en) * 1996-10-04 1998-04-08 Toyota Jidosha Kabushiki Kaisha Apparatus for mounting power units

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0810386A3 (en) * 1996-05-24 1998-01-07 Firma Carl Freudenberg Hydraulic support
EP0834674A2 (en) * 1996-10-04 1998-04-08 Toyota Jidosha Kabushiki Kaisha Apparatus for mounting power units
EP0834674A3 (en) * 1996-10-04 2000-03-15 Toyota Jidosha Kabushiki Kaisha Apparatus for mounting power units

Also Published As

Publication number Publication date
JP3350166B2 (en) 2002-11-25

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