EP2222987A2 - Versiegelungsvorrichtung mit eingebautem magnetischem kodierer mit mindestens einer umlaufenden reibungskontaktlippe - Google Patents

Versiegelungsvorrichtung mit eingebautem magnetischem kodierer mit mindestens einer umlaufenden reibungskontaktlippe

Info

Publication number
EP2222987A2
EP2222987A2 EP08872531A EP08872531A EP2222987A2 EP 2222987 A2 EP2222987 A2 EP 2222987A2 EP 08872531 A EP08872531 A EP 08872531A EP 08872531 A EP08872531 A EP 08872531A EP 2222987 A2 EP2222987 A2 EP 2222987A2
Authority
EP
European Patent Office
Prior art keywords
armature
bearing
sealing device
magnetic encoder
encoder
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.)
Withdrawn
Application number
EP08872531A
Other languages
English (en)
French (fr)
Inventor
Siegfried Ruhland
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.)
NTN SNR Roulements SA
Original Assignee
Societe Nouvelle de Roulements SNR SA
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 Societe Nouvelle de Roulements SNR SA filed Critical Societe Nouvelle de Roulements SNR SA
Publication of EP2222987A2 publication Critical patent/EP2222987A2/de
Withdrawn legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16JPISTONS; CYLINDERS; SEALINGS
    • F16J15/00Sealings
    • F16J15/16Sealings between relatively-moving surfaces
    • F16J15/32Sealings between relatively-moving surfaces with elastic sealings, e.g. O-rings
    • F16J15/3248Sealings between relatively-moving surfaces with elastic sealings, e.g. O-rings provided with casings or supports
    • F16J15/3252Sealings between relatively-moving surfaces with elastic sealings, e.g. O-rings provided with casings or supports with rigid casings or supports
    • F16J15/3256Sealings between relatively-moving surfaces with elastic sealings, e.g. O-rings provided with casings or supports with rigid casings or supports comprising two casing or support elements, one attached to each surface, e.g. cartridge or cassette seals
    • F16J15/326Sealings between relatively-moving surfaces with elastic sealings, e.g. O-rings provided with casings or supports with rigid casings or supports comprising two casing or support elements, one attached to each surface, e.g. cartridge or cassette seals with means for detecting or measuring relative rotation of the two elements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C33/00Parts of bearings; Special methods for making bearings or parts thereof
    • F16C33/72Sealings
    • F16C33/76Sealings of ball or roller bearings
    • F16C33/78Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members
    • F16C33/7869Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted with a cylindrical portion to the inner surface of the outer race and having a radial portion extending inward
    • F16C33/7879Sealings of ball or roller bearings with a diaphragm, disc, or ring, with or without resilient members mounted with a cylindrical portion to the inner surface of the outer race and having a radial portion extending inward with a further sealing ring
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C41/00Other accessories, e.g. devices integrated in the bearing not relating to the bearing function as such
    • F16C41/007Encoders, e.g. parts with a plurality of alternating magnetic poles
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01PMEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
    • G01P3/00Measuring linear or angular speed; Measuring differences of linear or angular speeds
    • G01P3/42Devices characterised by the use of electric or magnetic means
    • G01P3/44Devices characterised by the use of electric or magnetic means for measuring angular speed
    • G01P3/443Devices characterised by the use of electric or magnetic means for measuring angular speed mounted in bearings

Definitions

  • Sealing device with integrated magnetic encoder comprising at least one radial contacting radial lip
  • the invention relates to an integrated magnetic encoder sealing device for a bearing, and a rolling bearing assembly equipped with such a device and an information sensor system.
  • the invention is applicable for sealing at least one side of the running space of rolling bearings of a motor vehicle, while benefiting from a coding of the angular position of the rotating member of the bearing.
  • Such bearings when equipped with a speed sensor, angular position and / or direction of rotation system, may in particular be used for mounting a motor vehicle wheel which is provided with a embedded system of global control of the chassis. Indeed, the information can then be used by a computer of such a system as well as by all embedded systems using the measurement of wheel speed as input data.
  • an integrated magnetic encoder sealing device having an annular space formed between two rigid armatures which are respectively associated with the fixed member and the rotating member of the bearing.
  • the tightness of the annular space is then achieved by means of a flexible element comprising at least one lip ensuring an axial frictional contact sealing during the rotation of the bearing.
  • the quality of the axial frictional sealing contact depends on the relative position of the reinforcements whereas this position can not be guaranteed. precise way in the assembly. Consequently, the control of the deflection of the lip under contact is not sufficient to guarantee the linear contact necessary for the reliability of the sealing function.
  • the axial contact friction sealing is very dependent on the wear of the lip as well as the beat of it under rotation.
  • the encoder being disposed in the annular space, the reading of the signals it delivers must be performed through a frame. This embodiment can then lead to an increase in the size of the encoder in order to adjust the amplitude of the signals delivered to a value sufficient for their detection.
  • the amplitude of the signals must be all the more important in the case where the sensor is mechanically dissociated from the bearing, since it is then disposed at a greater distance from the encoder.
  • the solution proposed by the prior art for sealing requires a footprint which, in the case of reading the signals through the armature, is not always available in the assembly to be performed. Therefore, the satisfaction of the constraint on the amplitude of the signals can be achieved only to the detriment of the protection function, particularly the encoder.
  • the invention aims to solve the problems of the prior art by proposing in particular an integrated magnetic encoder sealing device in which the constraints of protection of the encoder and amplitude of the signals it delivers can be satisfied jointly, particularly in small space available in the assembly, even in case of dispersion in the relative positioning of the reinforcement.
  • the invention proposes an integrated magnetic encoder sealing device for a bearing, said device comprising an internal reinforcement intended to be associated with a rotating member of the bearing and an external reinforcement intended to be associated with a fixed member of said bearing, said armatures forming between them an annular space in which the magnetic encoder is associated with the inner armature, the outer armature being made of non-magnetic material so as to allow reading through it magnetic signals delivered by the encoder, said device further comprising a sealing element which is associated with the inner armature to be able to seal one side of the annular space, the outer armature having a free axial span and the sealing element comprising at least one lip which is disposed in radial contact rubbing on said surface.
  • the invention proposes a rolling bearing assembly comprising a fixed member, a rotating member and rolling bodies arranged in a running space formed between said members to allow their relative rotation, said bearing being equipped with least one such integrated magnetic encoder sealing device, the inner armature being associated with the rotating member and the outer armature being associated with the fixed member, said assembly further comprising an information sensor system comprising the encoder which delivers magnetic pulses and a sensor provided with at least two sensitive elements able to detect these pulses, said sensor being arranged opposite the encoder, in front of the external armature so that said pulses are detected through said armature.
  • FIG. 1 is a partial view in longitudinal section of an integrated magnetic encoder sealing device according to an embodiment of the invention. 'invention.
  • a sealing device with magnetic encoder 1 integrated for a bearing in particular for a rolling bearing or a wheel bearing of a motor vehicle.
  • the bearing comprises a fixed member 2, a rotating member 3 and rolling bodies 4 arranged in a running space formed between said members to allow their relative rotation.
  • the rotating member 3 is internal with respect to the fixed member 2, without this limiting the invention to this particular embodiment.
  • the terms of positioning in space are taken with reference to the axis of rotation of the bearing (horizontal in the figure which shows one side of the section, the other side being symmetrical with respect to said axis).
  • the term “inside” relates to a disposition close to this axis and the term “outside” relates to a remote layout of this axis.
  • the terms “external” and “internal” are relative to the arrangement in the running space, namely on the left in the figure for internal and on the right for external.
  • the bearing is equipped with a sealing device which comprises an annular internal reinforcement 5 intended to be associated with the rotating member 3 and an annular external reinforcement 6 intended to be associated with the fixed member 2.
  • the frames 5, 6 may be rigid by being made of metal material, in particular stamped sheet metal.
  • each side of the running space can be sealed by a sealing device respectively.
  • the sealing device also incorporates a magnetic encoder 1.
  • the armatures 5, 6 are arranged to form between them an annular space 7 in which the magnetic encoder 1 is associated with the inner armature 5, in particular by overmolding.
  • the internal armature 5 shown comprises a free radial bearing surface 5a on the outer face of which the encoder 1 is associated for axial reading of the signals.
  • the inner armature 5 has an inner axial bearing 5b whose inner face is fitted on the rotary member 3.
  • the radial bearing 5a and axial 5b are connected by a radial connecting surface 5c which, by providing an axial portion 5d between them is axially offset inward with respect to the free radial bearing surface 5a.
  • the encoder 1 since the encoder 1 is disposed inside the annular space 7, the reading of the magnetic signals delivered by said encoder must be performed through the external armature 6. To do this, it is intended that the external frame 6 is made of non-magnetic material. Moreover, as shown in the figure, the encoder 1 has in particular a large thickness in order to increase the amplitude of the signals to be detected through the outer armature 6. Thus, the encoder 1 substantially fills the entire space 7 available between the frames 5, 6, which leaves a limited space for sealing.
  • the encoder 1 forms a multipolar magnet comprising 2N pairs of poles, said magnet being made of elastomeric material loaded with magnetic particles.
  • the coder 1 may be made of a nitrile-acrylic butadiene copolymer (NBR), optionally mechanically reinforced with fillers such as carbon black, the magnetic particles being able to be based on ferrite.
  • NBR nitrile-acrylic butadiene copolymer
  • the magnetic particles being able to be based on ferrite.
  • the device also comprises a sealing element 8 which is associated, in particular by overmoulding, with the internal armature 5.
  • a sealing element 8 which is associated, in particular by overmoulding, with the internal armature 5.
  • the combination of the coder 1 and the sealing element 8 on the same armature 5 has the advantage of only have to prepare this frame for overmolding.
  • the sealing element 8 may be made of elastomeric material, for example of the same nature as that of the coder 1, in particular nitrile butadiene copolymer (NBR), optionally mechanically reinforced with fillers such as carbon black, hydrogenated NBR (HNBR), fluoropolymer or polyacrylate.
  • the sealing element 8 comprises at least one sealing lip 9, said lip being disposed on a free axial bearing surface 6a of the outer armature 6 so as to ensure a radial frictional sealing contact during the rotation of the bearing .
  • the control of the deflection of the lip 9 under contact can be satisfactorily guaranteed so as to form the linear contact necessary for the reliability of the sealing function.
  • the sealing element 8 comprises two axially spaced lips 9a, 9b, said lips being in radial contact rubbing on the free axial bearing surface 6a.
  • the sealing element 8 comprises an annular base associated with the inner armature 5, the lips 9a, 9b extending axi-radially from said base.
  • the base of the inner lip 9a has a diameter greater than that of the base of the outer lip 9b.
  • the outer armature 6 shown comprises an axial bearing surface 6b on the outer member 2, a radial bearing surface 6c which is connected to the friction surface 6a by a connecting fillet 6d oriented towards the inner frame 5.
  • the signals delivered by the encoder 1 are read axially through the radial span 6c.
  • an outer baffle 16 of diameter greater than that of the sealing element 8 is formed radially between the free end of the radial bearing surface 5a and the inner face of the axial bearing surface 6b.
  • This baffle 16 limits the introduction into the space 7 of the lubricant contained in the running space. Indeed, under the effect of the centrifugation induced during the rotation, the lubricant is trapped at this baffle, without ease to go down to the encoder 1 and the sealing element 8.
  • the inner axial bearing surface 5b is disposed facing radially of the friction surface 6a, the lips 9a, 9b being formed on the outer face of the inner axial bearing surface 5b to come into radial contact rubbing against the inner face of the friction surface 6a. .
  • the free end of the friction surface 6a has a chamfer 6aa oriented towards the lips 9a, 9b.
  • the friction surface 6a is disposed opposite the radial bearing surface 5c, a baffle 10 being formed between said bearing surfaces.
  • the lips 9a, 9b are disposed in an interior space 11 which is separated from the encoder 1 by the friction surface 6a, so as to limit the leakage of the lubricant contained in said space to the outer space 7 containing the encoder 1.
  • the inner face 1a of the encoder 1 is disposed facing the zone of the outer face of the friction surface 6a which is opposite to the friction zone.
  • the inner spaces 11 containing the sealing element 8 and outer 7 containing the encoder 1 are superimposed radially.
  • the connecting fillet 6d has an annular groove 12 intersecting its outer radius, said groove can be made by plastic deformation or overmolding.
  • the groove 12 has a section at right angles between an axial portion and a radial portion.
  • the embodiment of the groove 12 makes it possible to increase the axial dimension of the friction zone, since the cutting of the outer radius makes it possible to benefit from an extended flat contact surface.
  • the increase of the plane contact surface is also conferred by the internal offset of the radial bearing surface 5c opposite which the friction surface 6a is disposed.
  • the sealing element 8 shown also comprises a deflector 13 which is disposed on the free end of the inner axial bearing surface 5b.
  • the deflector 13 extends radially in the extension of the radial span 6c of the outer armature 6, more precisely by being in the extension of the groove 12 with a reduced clearance between said groove and said deflector.
  • the deflector 13 protects the sealing lips 9a, 9b vis-à-vis the introduction of pollutants.
  • an annular chamber 14 is formed between the baffle 13 and the outer lip 9b, said chamber being arranged to be able to empty under the effect of centrifugal force induced by rotation. To do this, the thickness of the deflector 13 is reduced to allow axial deflection thereof. In addition, the axial release of the sealing member 8 is facilitated.
  • the sealing element 8 shown also comprises a static sealing bead 15 which is arranged, opposite the baffle 13, under the free end of the inner axial bearing surface 5b.
  • the bead 15 is intended to be interposed between the axial bearing surface 5b and the zone of fitting with the member 3 so as to confer the static sealing function.
  • the bead may be placed in abutment on the member 3 without interposition in the fitting zone.
  • the bead 15 and the deflector 13 are made in one piece, in particular by molding, with the lips 9a, 9b being connected to them by an axial isthmus 16.
  • An assembly comprising a rolling bearing according to the invention and an information sensor system comprising the encoder 1 forming a magnet with 2N pairs of poles is described below so as to deliver magnetic pulses.
  • the system comprises a sensor provided with at least two sensitive elements able to detect these pulses, said sensor being arranged, facing the encoder 1, in front of the outer armature 6 so that said pulses are detected through said frame.
  • the sensor can be mechanically dissociated from the fixed member 2 and the external armature 6.
  • the increase of the amplitude of the delivered signals can be obtained with a multipolar magnet comprising a reduced number of pairs of poles, for example 2N pairs of poles with N strictly less than 24.
  • N may be equal to 12 or 6 so as to have a multipole magnet with 24 or 12 pairs of poles.
  • the number of pairs of poles being reduced, their dimension is greater so that each pole delivers a signal of greater amplitude. It follows therefore that the gap distance, that is to say the distance at which the sensitive elements can detect the signal delivered, is greater than with a conventional magnet 48 pairs of poles for example.
  • the resolution of the signal delivered by such a magnet is less important, since the number of pulses delivered by the sensor per encoder revolution 1 depends directly on the number of pairs of poles.
  • the senor comprises a signal processing device detected by the sensitive elements which is arranged to increase the resolution of the output signal relative to that of the detected signals.
  • the treatment device comprises triggering means and means for applying the XOR function (exclusive OR) on the triggered signals.
  • the sensing elements may include Hall effect probes or magnetoresistors.
  • two sensitive elements can be used to each deliver a sinusoidal signal S1, S2, or two groups of sensitive elements can be used for, by summation of each of the signals of a group, to deliver the two sinusoidal signals S1, S2 from a group respectively.
  • the term "sensitive element" is used to designate indifferently a sensitive element or a group of sensitive elements.
  • the two sinusoidal signals S1, S2 are in quadrature and have a resolution equal to that of the signal delivered by the magnet.
  • this quadrature can be obtained by arranging the two sensitive elements at a distance equal to half a polar length of the magnet.
  • the processing device when the distance between the sensitive elements is not perfectly adapted to the polar length of the magnet, the processing device further comprises means for combining the two sinusoidal signals coming respectively from a sensitive element, from so as to deliver two signals S1, S2 in quadrature.
  • the combining means can form the sum and the difference of the signals so as to respectively deliver the signals S1, S2 in quadrature.
  • the signals S1, S2 in quadrature are processed by the triggering means to form the digital signals S'1 and S'2.
  • the signals S1, S2 can be triggered around zero in a trigger circuit in which the amplitude of the output signal has a sudden and significant amplitude change for a small increase of the input signal from 'a zero value, so as to form S'1 signals, S'2 squares.
  • the digital signals S'1, S'2 are phase shifted by 90 ° electrical and have a resolution equal to that of the multipolar magnet.
  • the resolution of the signals S'1, S'2 is then multiplied by two by application of the function XOR.
  • the resolution of the output signal is equivalent to that of a 48 pole pair encoder.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Sealing Of Bearings (AREA)
EP08872531A 2007-12-21 2008-12-08 Versiegelungsvorrichtung mit eingebautem magnetischem kodierer mit mindestens einer umlaufenden reibungskontaktlippe Withdrawn EP2222987A2 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
FR0709087A FR2925643B1 (fr) 2007-12-21 2007-12-21 Dispositif d'etancheite a codeur magnetique integre comprenant au moins une levre en contact radial frottant
PCT/FR2008/001707 WO2009103870A2 (fr) 2007-12-21 2008-12-08 Dispositif d'etancheite a codeur magnetique integre comprenant au moins une levre en contact radial frottant

Publications (1)

Publication Number Publication Date
EP2222987A2 true EP2222987A2 (de) 2010-09-01

Family

ID=39677671

Family Applications (1)

Application Number Title Priority Date Filing Date
EP08872531A Withdrawn EP2222987A2 (de) 2007-12-21 2008-12-08 Versiegelungsvorrichtung mit eingebautem magnetischem kodierer mit mindestens einer umlaufenden reibungskontaktlippe

Country Status (3)

Country Link
EP (1) EP2222987A2 (de)
FR (1) FR2925643B1 (de)
WO (1) WO2009103870A2 (de)

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8947076B2 (en) 2010-01-18 2015-02-03 Bourns, Inc. High resolution non-contacting multi-turn position sensor
CN103542097B (zh) * 2012-07-10 2017-02-22 浙江万向精工有限公司 具有离心补偿自密封和磁性密封传感功能的集成式密封圈
CN103821941B (zh) * 2014-03-10 2016-09-07 董波 具有传感功能的总成油封
RU2593575C1 (ru) * 2015-04-06 2016-08-10 федеральное государственное автономное образовательное учреждение высшего образования "Самарский государственный аэрокосмический университет имени академика С.П. Королева (национальный исследовательский университет)" (СГАУ) Уплотнение масляной полости опоры ротора турбомашины
RU2614904C1 (ru) * 2015-11-05 2017-03-30 Открытое акционерное общество "Уфимское моторостроительное производственное объединение" ОАО "УМПО" Радиально-торцевое контактное уплотнение ротора турбомашины
RU2614910C1 (ru) * 2016-03-22 2017-03-30 Публичное акционерное общество "Уфимское моторостроительное производственное объединение" ПАО "УМПО" Комбинированное уплотнение ротора турбомашины
RU2634510C1 (ru) * 2016-11-11 2017-10-31 Публичное Акционерное Общество "Уфимское Моторостроительное Производственное Объединение" (Пао "Умпо") Торцевое контактное уплотнение ротора турбомашины
CN108343674B (zh) * 2017-01-24 2021-10-22 舍弗勒技术股份两合公司 轮毂轴承
RU2708279C1 (ru) * 2018-08-30 2019-12-05 Публичное акционерное общество "ОДК-Уфимское моторостроительное производственное объединение" Межвальное контактное уплотнение

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FR2790800B1 (fr) * 1999-03-10 2001-04-20 Roulements Soc Nouvelle Ensemble preassemble formant joint d'etancheite a codeur incorpore et roulement ou palier comportant un tel ensemble
US6692153B2 (en) * 2001-03-07 2004-02-17 Ntn Corporation Wheel support bearing assembly

Non-Patent Citations (1)

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Title
See references of WO2009103870A3 *

Also Published As

Publication number Publication date
FR2925643A1 (fr) 2009-06-26
FR2925643B1 (fr) 2010-01-15
WO2009103870A2 (fr) 2009-08-27
WO2009103870A3 (fr) 2009-10-15

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