WO2010000481A1 - Voice coil support for a coil transducer motor structure - Google Patents

Voice coil support for a coil transducer motor structure Download PDF

Info

Publication number
WO2010000481A1
WO2010000481A1 PCT/EP2009/004804 EP2009004804W WO2010000481A1 WO 2010000481 A1 WO2010000481 A1 WO 2010000481A1 EP 2009004804 W EP2009004804 W EP 2009004804W WO 2010000481 A1 WO2010000481 A1 WO 2010000481A1
Authority
WO
WIPO (PCT)
Prior art keywords
voice coil
coil support
voice
support
shape
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.)
Ceased
Application number
PCT/EP2009/004804
Other languages
French (fr)
Inventor
Guy Lemarquand
Mathias Remy
Gaël GUYADER
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.)
Renault SA
Le Mans Universite
University of Maine System
Original Assignee
Renault SA
Le Mans Universite
University of Maine System
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 Renault SA, Le Mans Universite, University of Maine System filed Critical Renault SA
Priority to CN200980125439.4A priority Critical patent/CN102077610B/en
Priority to RU2010154387/28A priority patent/RU2525571C2/en
Priority to MX2010014397A priority patent/MX2010014397A/en
Priority to KR1020107029854A priority patent/KR101535698B1/en
Priority to US13/000,452 priority patent/US8971564B2/en
Priority to BRPI0914701-2A priority patent/BRPI0914701B1/en
Priority to JP2011515243A priority patent/JP5442728B2/en
Priority to CA2729066A priority patent/CA2729066C/en
Priority to AU2009266026A priority patent/AU2009266026B2/en
Publication of WO2010000481A1 publication Critical patent/WO2010000481A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
    • H04R9/00Transducers of moving-coil, moving-strip, or moving-wire type
    • H04R9/02Details
    • H04R9/04Construction, mounting, or centering of coil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49002Electrical device making
    • Y10T29/49005Acoustic transducer

Definitions

  • This invention relates to a voice coil support for a coil transducer motor structure and particularly a voice coil support adapted to be placed in a magnetic field in order for the voice coil support to reciprocate along an axis of displacement.
  • This invention is disclosed in the context of a moving voice-coil transducer motor assembly for a loudspeaker. However, it is believed to be useful in other applications such as microphones, geophones, and shakers .
  • voice-coil transducer motor assemblies such as those used in traditional electrodynamic loudspeakers, comprise magnetic field generating means adapted to generate a magnetic field in which a coil fixed on a moving part also called mandrel or voice coil support, can be driven by a driving current in order to induce vibrations to a diaphragm connected to the voice coil support to produce sound.
  • a coil fixed on a moving part also called mandrel or voice coil support
  • the voice coil support that is the moving part and the diaphragm that is attached to it are designed to be as light as possible .
  • the voice coil support is usually a hollow cylinder and the diaphragm a conical piece of material and both are made of a material such as paper, aluminum, polyimide film such as
  • Kapton® glass fibre or another light composite material .
  • the voice coil support may have a monobloc structure made of one solid piece of material, with a mechanical mode of vibration at a natural frequency outside of a frequency range of interest, preferably the audible frequency range
  • a monobloc voice coil support with a mechanical mode of vibration at a natural frequency outside of the audible frequency range, mode coupling between mechanical modes and acoustic modes whereby mechanical energy is exchanged between mechanical modes and acoustic modes occurs only beyond an upper audible limit frequency, usually around 2OkHz that is outside of the frequency range of interest. Even if some amount of mechanical energy is exchanged, this energy is not transported to an outer surface of the voice coil support.
  • Said monobloc structure of the voice coil support may comprise a material having an infinite or quasi- infinite airflow resistivity.
  • Said monobloc structure of the voice coil support may comprise a closed pore material, such as a carbon mousse compound, or a polystyrene compound, that results in having a rigid as well as a light moving part .
  • a closed pore material such as a carbon mousse compound, or a polystyrene compound
  • the monobloc structure of the voice coil support may comprise an open pore material such as an elastomeric mousse.
  • the monobloc structure of the voice coil support may comprise a material that is transparent to the magnetic field and preferably an electrical isolator.
  • at least the first surface and the second surface and preferably the first surface, the second surface and the outer surface are coated with at least partially waterproof material that can comprise a resin or a vanish such as an acrylic or cellulosic vanish.
  • the outer surface of the voice coil support may be coated with a material that is resistant to being wetted through contact with a ferrofluid seal, such as a non-metallic material for limiting the effect of Eddy currents.
  • ridges adapted to receive coil windings may be defined in the outer surface around the circumference of the voice coil support.
  • the second surface may be chosen amongst a plane, concave or convex surface.
  • the voice coil support may be made in the shape of a solid of revolution.
  • the shape of the voice coil support may be chosen amongst: a cylindrical shape, - a two circular cone frustum portion shape, the frustum portions being connected to each other by their smaller surface base side, or
  • the invention also relates to a method of manufacturing a voice coil support according to the invention, the method including the steps of: - providing a liquid or a powder of the desired material into a casting die of the desired shape,
  • the method may include the step of cutting ridges in the outer surface of the voice coil support ; - the method may include the step of providing coil winding into the casting die before providing the material into the casting die and maintaining the coil winding in position until the material sets.
  • the invention also relates to a coil transducer motor structure incorporating at least one magnetic element arranged in use to provide a path for magnetic flux between the ends of at least one coil the coil being wound around a reciprocating voice coil support according to the invention.
  • the invention also relates to a loudspeaker incorporating a coil transducer motor structure according to the invention fixed on top of a cabinet providing return stroke means.
  • the loudspeaker may incorporate a suspension wire in the cabinet that may be connected towards one end to the first surface of the voice coil support and towards the other end to the cabinet and may extend preferably along the displacement axis 2.
  • figure 1 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a first embodiment
  • - figure 2 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a second embodiment
  • figure 3 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a third embodiment
  • - figure 4 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a fourth embodiment
  • figure 5A and figure 5B represent respectively views in perspective of voice coil supports having concave and convex emissive surfaces.
  • This loudspeaker 10 essentially comprises a cabinet 11 on top of which is located a voice-coil transducer motor structure 20 comprising a voice coil support 21, or moving part, adapted to move along an axis of displacement Z.
  • An emissive surface 22 is located at the top of the voice coil support 21, at the opposite of a lower surface 26 of the voice coil support 21, closing in part the top of the cabinet 11. This emissive surface 22 is adapted to transmit the excitation produced by the voice-coil transducer motor structure 20 to the air.
  • Upper 22H and lower 22L voice-coils are wound around a lateral face 27 of the voice coil support 21 and at least one magnetic element 23 is arranged in use to provide concentration of its resultant magnetic field around the location of an upper 22H and a lower 22L voice-coil. As shown on the figure, the magnetic element 23 surrounds the voice coil support 21 at a distance . On figure 1, the upper 22H and lower 22L voice- coils are placed in ridges 24 made in the lateral face 27 around the circumference of the voice coil support 21.
  • the voice coil support 21 By driving the current circulating in the upper 22H and the lower 22L voice-coils, the voice coil support 21 can be moved along the axis of displacement Z.
  • the voice coil support 21 is guided along its axis of displacement Z by ferrofluid seals 25 acting as guiding elements.
  • ferrofluid seals 25 acting as guiding elements.
  • One possible ferrofluid seal is of the type disclosed in the patent document FR2892887 incorporated in its entirety herein by reference.
  • a ferrofluid seal 25 is placed in between the moving part 21 and the magnet element 23.
  • the ferrofluid seal 25 is placed around the point where the magnetic flux gradient is the largest, here at mid distance from the upper 22H and lower 22L voice-coils .
  • ferrofluid seals 25 can help avoid non- linearities in the movements of the moving part 21 in the coil transducer motor structure 20 compared to known suspension elements that are usually made of elastomer .
  • ferrofluid seals 25 act as thermal bridges, allowing the heat generated by the current circulating in the coil to flow through and be dissipated in the magnetic element 23 and in the cabinet 11.
  • ferrofluid seals 25 allow the voice coil support 21 to be guided along its axis of displacement Z, return stroke means are provided, for the voice coil support 21 to be able to reciprocate along its axis Z.
  • the volume defined in the cabinet 11 is delimited at the top by the coil transducer motor structure 20, and at least partially by the lower surface 26 of the voice coil support 21.
  • a hole 12 is made in the cabinet 11, providing a small leakage, the dimensions of the hole being adapted to provide a very long time constant compared to the frequencies at which the coil transducer motor structure 20 operates.
  • This hole 12 permits to equalize the pressure in the cabinet 11 for quasi-static or long period movements of the voice coil support 21, and to compensate barometric pressure changes.
  • the diameter of the hole 12 is comprised between 0.1 and 1 mm for a volume defined in the cabinet 11 of about 10 cubic centiliter.
  • Such a return stroke means has the advantage of not introducing non linearities to the voice-coil transducer motor structure 20 unlike elastomer suspension means.
  • a suspension wire 13 can be connected towards one end to the lower surface 26 of the voice coil support 21 and towards the other end to the cabinet 11 and extends preferably along the displacement axis Z.
  • This suspension wire 13 is adapted to prevent the voice coil support 21 from being pushed out of the top of the voice-coil transducer motor structure 20 in case of failure of the return stroke means, for example when a strong shock occurs along the displacement axis Z.
  • the voice coil support 21 has a monobloc structure, preferably made in the shape of a solid of revolution.
  • the monobloc structure is made of one solid piece of material, i.e. that the voice coil support 21 is made of massive material without hollow parts, and preferably obtained by casting.
  • This monobloc structure is adapted to have its natural mechanical mode of vibration outside of the audible frequency range, that is limited from 20Hz to 2OkHz. Therefore, mode coupling is prevented between mechanical modes and acoustical modes in the frequency range of interest, which is the range of audible frequencies for a loudspeaker.
  • the solid monobloc structure of the voice coil support 21 allows for the mechanical modes to occur beyond an upper frequency of the frequency range of interest, or for example in loudspeakers beyond the upper limit of audible sounds.
  • This monobloc structure allows prevention of coupling between mechanical modes and acoustical modes during the excitation of the voice-coil transducer motor structure 20 in the frequency range of interest.
  • the sound produced by the loudspeaker 10 is made clearer and of higher quality, rising and trailing edges of the acoustic signal being sharper.
  • the monobloc structure should also prevent the transmission of acoustic waves at least between the lower surface 26 and the emissive surface 22.
  • the voice coil support 21 comprises a material that preferably exhibits a quasi infinite or infinite airflow resistivity.
  • Such a material is therefore adapted to prevent airflow communication between at least the lower surface 26 and its emissive surface 22, or more generally speaking communication of fluid between at least the lower surface 26 and its emissive surface 22.
  • the material prevents the communication of fluid between any one of the surfaces 22, 26, 27 to any other one surface 22, 26, 27 of the voice coil support 21.
  • the minimum absolute value of airflow resistivity of the material is such that it reduces the speed of airflow within the voice coil support 21 by a factor comprised in the range of 2 to 4.
  • the voice coil support is designed to be as light as possible as well as being rigid enough to prevent mode coupling in a bandwidth of audible sounds.
  • closed pore materials or open pore materials with, preferably, an appropriate waterproof coating on the voice coil support's 21 outer surface 27 are the most suitable materials for making the voice coil support 21.
  • the voice coil support's 21 outer surface 27 is preferably covered with a material adapted not to be wetted by ferrofluid seals 25 and for the ferrofluid seals 25 to slide better on the outer surface 27, and for the ferrofluid seals 25 not to disappear by absorption into the voice coil support material 21.
  • suitable materials for the outer surface 27 comprise non metallic materials, acrylic or cellulosic vanishes. These coatings can be vaporized onto the voice coil support 21 and help to prevent the formation of Eddy currents around the voice coil support 21. These coatings can be applied on the outer surface 27 by a chemical vapour deposition method for example.
  • the closed pore material also allows for prevents acoustic waves from being propagated from the bottom face 26 to the emissive surface 22 of the voice coil support 21 which would otherwise disturb the acoustical signal generated in the loudspeaker 10. This material should be transparent to the magnetic field generated by the magnet element 23, which allows the coil windings 22H, 22L to be irradiated and preferably be an electrical isolator.
  • suitable closed pore materials comprise carbon mousse compounds, polystyrene compounds or the like.
  • Open pore materials having an infinite or quasi- infinite airflow resistivity are also suitable as constitutive materials of the voice coil support 21.
  • suitable open pore materials comprise elastomeric mousses or foams.
  • the voice coil support 21 is made of an open pore material, at least the first surface 26 and the second surface 22 and, preferably, the first surface 26, the second surface 22 and the outer surface 27 are coated with material that can comprise a resin or a vanish such as an acrylic or cellulosic vanish in order to achieve at least a partial waterproof effect.
  • the voice coil support 21 can be obtained by several ways.
  • the voice coil support 21 can be obtained by providing a chunk of the desired solid material, cutting the chunk of solid material in to the desired shape and preferably coating the outer surface 27 of the voice coil support with a material adapted not to be wetted by ferrofluid seals 25 chosen among a resin or a vanish.
  • Ridges 24 are then cut in to the outer surfaces 27 of the voice coil support 21, their dimensions and location being adapted to receive coil windings 22H, 22L.
  • the voice coil support 21 can be obtained by providing a liquid or a powder of the desired material, pouring or injecting the material into a casting die of the desired shape, waiting for solidification of the material, removing the obtained voice coil support from the casting die once the material has become solid.
  • the second variant includes a step of coating the outer surface 27 of the voice coil support 21 with a material adapted not to be wetted by ferrofluid seals 25 chosen among a resin or a vanish. Ridges 24 can be provided by the same method as in the first variant.
  • the voice coil support 21 can be obtained by a blowing process.
  • the voice coil support 21 will have a monobloc structure that will be a solid piece of material that can have hollow parts inside but will be a closed volume structure. That is to say that the voice coil support 21 will have upper 22 and lower 26 surfaces. Ridges 24 can be provided by the same method as in the first and second variants.
  • Coil winding 22H, 22L can also be placed into the casting die prior to the introduction, preferably by injection, of the material and maintained in position until it solidifies. This method allows for the voice coil support 21 to be made rapidly and efficiently and the coil windings to be integrated during the moulding process .
  • the voice coil support 21 has a cylindrical shape.
  • the voice coil support 21 is able to reciprocate along its displacement axis Z while the ferrofluid seals 25 slide on the outer surface 27.
  • the return stroke force is mainly exerted by the interaction between the lower surface 2,6 and the cabinet 11.
  • the voice coil support 21 has a monobloc structure in the shape of two circular cone frustum portions, these frustums portions being connected to each other by their smaller surface base side .
  • connection of the two frustum portions is designed to fall at mid distance from the upper 22H and lower 22L voice-coils. Therefore, at resting position of the voice coil support 21, the ferrofluid seals 25 lie at the location of the connection of the two frustum portions.
  • the slopes designed in the outer surface 27 tend to provide an additional return stroke force tending to bring back the voice coil support 21 in its resting position when the voice coil support 21 moves upwards or downwards.
  • the voice coil support 21 has a monobloc structure in the shape of two circular cone frustum portions connected to each other by their smaller surface base side to a cylindrical portion.
  • the cylindrical portion is located at mid distance from the upper 22H and lower 22L voice-coils. Therefore, at resting position of the voice coil support 21, the ferrofluid seals 25 lie against the cylindrical portion.
  • the height of this cylindrical portion sets the excursion of the voice coil support 21 where the movement sees only the return stroke generated by the cabinet 11.
  • the cylindrical portion allows to have a wider ferrofluid seal 25, extending along the cylindrical portion.
  • the voice coil support 21 has a monobloc structure, in the shape of a paraboloid of revolution.
  • This embodiment is advantageous in the ferrofluid seal 25 applying a return stroke force gradually increasing as the voice coil support 21 moves away from its resting position and is particularly adapted to positioning of the voice coil support 21 along its displacement axis Z.
  • the voice coil support 21 according to the invention comprises an emissive surface 22 towards the one end of the voice coil support 21 adapted to be extending outwards from the loudspeaker 10. This surface replaces the diaphragm that is present in the loudspeakers of the state of the art, in order to prevent the introduction of non linearities .
  • the emissive surface 22 can take several shapes, from flat represented in figures 1 through 4), concave or convex as shown in figures 5A and 5B. Thus the directivity of the sound produced by the loudspeaker 10 can be tuned.
  • Figure 5A illustrates a concave emissive surface 22.
  • Figure 5B illustrates a convex emissive surface 22.

Landscapes

  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Acoustics & Sound (AREA)
  • Signal Processing (AREA)
  • Audible-Bandwidth Dynamoelectric Transducers Other Than Pickups (AREA)

Abstract

The invention relates to a voice coil support (21) for a coil transducer motor structure (10) having a first surface (26) towards one end and a second surface (22) towards the other end along an axis of displacement Z, the voice coil support being adapted to receive at least one coil (22H, 22L) wound therearound an outer surface (27) arranged in use for displacing the voice coil support (21) along its axis of displacement Z, as a current is driven through the coils (22H, 22L) when the voice coil support (21) is placed in a magnetic field, characterized in that the voice coil support (21) comprises a material adapted to prevent airflow communication between at least the first surface (26) and the second surface (22).

Description

VOICE COIL SUPPORT FOR A COIL TRANSDUCER MOTOR
STRUCTURE
This invention relates to a voice coil support for a coil transducer motor structure and particularly a voice coil support adapted to be placed in a magnetic field in order for the voice coil support to reciprocate along an axis of displacement.
This invention is disclosed in the context of a moving voice-coil transducer motor assembly for a loudspeaker. However, it is believed to be useful in other applications such as microphones, geophones, and shakers .
Generally, voice-coil transducer motor assemblies, such as those used in traditional electrodynamic loudspeakers, comprise magnetic field generating means adapted to generate a magnetic field in which a coil fixed on a moving part also called mandrel or voice coil support, can be driven by a driving current in order to induce vibrations to a diaphragm connected to the voice coil support to produce sound. In order to improve the yield, as well as to reduce the inertia of the loudspeaker, the voice coil support that is the moving part and the diaphragm that is attached to it, are designed to be as light as possible .
To meet these requirements, the voice coil support is usually a hollow cylinder and the diaphragm a conical piece of material and both are made of a material such as paper, aluminum, polyimide film such as
Kapton®, glass fibre or another light composite material .
Reducing the weight of these voice coil supports reduces their rigidity and results in the generation in hitting resonant frequencies. Thus, the frequency response of the voice-coil transducer motor assemblies are affected by nonlinearities .
These nonlinearities occur because of mode coupling between mechanical modes and acoustical modes, resulting in a transfer of energy between mechanical waves and acoustic waves.
This problem leads to some harmonics of the sound produced by the loudspeakers integrating such voice- coil transducer motor assemblies, to be hardly audible and almost extinguished, especially at high frequencies. At lower frequencies, some energy is absorbed during the excitation of the assembly and restituted when the excitation is stopped, leading to longer trailing edges, the sound produced in the loudspeaker being somewhat unclear.
It is an object of the invention to provide an improved voice coil support component for a coil transducer motor assembly and in particular such an assembly that reduces or extinguishes mode coupling and its resulting drawbacks .
Thereto, the present invention provides a voice coil support for a coil transducer motor assembly according to claim 1. Further advantageous features of the invention form the subject matter of the dependant claims: Preferably, the voice coil support may have a monobloc structure made of one solid piece of material, with a mechanical mode of vibration at a natural frequency outside of a frequency range of interest, preferably the audible frequency range By providing a monobloc voice coil support with a mechanical mode of vibration at a natural frequency outside of the audible frequency range, mode coupling between mechanical modes and acoustic modes whereby mechanical energy is exchanged between mechanical modes and acoustic modes occurs only beyond an upper audible limit frequency, usually around 2OkHz that is outside of the frequency range of interest. Even if some amount of mechanical energy is exchanged, this energy is not transported to an outer surface of the voice coil support.
Said monobloc structure of the voice coil support may comprise a material having an infinite or quasi- infinite airflow resistivity.
Said monobloc structure of the voice coil support may comprise a closed pore material, such as a carbon mousse compound, or a polystyrene compound, that results in having a rigid as well as a light moving part .
The monobloc structure of the voice coil support may comprise an open pore material such as an elastomeric mousse.
The monobloc structure of the voice coil support may comprise a material that is transparent to the magnetic field and preferably an electrical isolator. According to an embodiment, at least the first surface and the second surface and preferably the first surface, the second surface and the outer surface are coated with at least partially waterproof material that can comprise a resin or a vanish such as an acrylic or cellulosic vanish. Advantageously, the outer surface of the voice coil support may be coated with a material that is resistant to being wetted through contact with a ferrofluid seal, such as a non-metallic material for limiting the effect of Eddy currents. Preferably, ridges adapted to receive coil windings may be defined in the outer surface around the circumference of the voice coil support.
Advantageously, the second surface may be chosen amongst a plane, concave or convex surface. Preferably, the voice coil support may be made in the shape of a solid of revolution.
Preferably, the shape of the voice coil support may be chosen amongst: a cylindrical shape, - a two circular cone frustum portion shape, the frustum portions being connected to each other by their smaller surface base side, or
- a two circular cone frustum portion shape connected to each other by their smaller surface base side to a cylindrical portion, or
- a paraboloid of revolution shape.
The invention also relates to a method of manufacturing a voice coil support according to the invention, the method including the steps of: - providing a liquid or a powder of the desired material into a casting die of the desired shape,
- setting the material to form said voice coil support, removing the obtained voice coil support from the casting die.
Further advantageous features of the method of manufacturing a voice coil support according to the invention form the subject matter of the dependant claims :
- the method may include the step of cutting ridges in the outer surface of the voice coil support ; - the method may include the step of providing coil winding into the casting die before providing the material into the casting die and maintaining the coil winding in position until the material sets. The invention also relates to a coil transducer motor structure incorporating at least one magnetic element arranged in use to provide a path for magnetic flux between the ends of at least one coil the coil being wound around a reciprocating voice coil support according to the invention.
The invention also relates to a loudspeaker incorporating a coil transducer motor structure according to the invention fixed on top of a cabinet providing return stroke means. The loudspeaker may incorporate a suspension wire in the cabinet that may be connected towards one end to the first surface of the voice coil support and towards the other end to the cabinet and may extend preferably along the displacement axis 2.
The present invention will now be described by way of example only and with reference to the accompanying drawings, in which:
figure 1 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a first embodiment; - figure 2 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a second embodiment; figure 3 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a third embodiment; - figure 4 is a schematic representation of a cross-section of a voice-coil transducer motor assembly comprising a monobloc voice coil support according to a fourth embodiment; and figure 5A and figure 5B represent respectively views in perspective of voice coil supports having concave and convex emissive surfaces.
Referring to the figures and for the moment in particular to Figure 1, a cross-section through a loudspeaker 10 is illustrated. This loudspeaker 10 essentially comprises a cabinet 11 on top of which is located a voice-coil transducer motor structure 20 comprising a voice coil support 21, or moving part, adapted to move along an axis of displacement Z. An emissive surface 22 is located at the top of the voice coil support 21, at the opposite of a lower surface 26 of the voice coil support 21, closing in part the top of the cabinet 11. This emissive surface 22 is adapted to transmit the excitation produced by the voice-coil transducer motor structure 20 to the air.
Upper 22H and lower 22L voice-coils are wound around a lateral face 27 of the voice coil support 21 and at least one magnetic element 23 is arranged in use to provide concentration of its resultant magnetic field around the location of an upper 22H and a lower 22L voice-coil. As shown on the figure, the magnetic element 23 surrounds the voice coil support 21 at a distance . On figure 1, the upper 22H and lower 22L voice- coils are placed in ridges 24 made in the lateral face 27 around the circumference of the voice coil support 21.
By driving the current circulating in the upper 22H and the lower 22L voice-coils, the voice coil support 21 can be moved along the axis of displacement Z.
The voice coil support 21 is guided along its axis of displacement Z by ferrofluid seals 25 acting as guiding elements. One possible ferrofluid seal is of the type disclosed in the patent document FR2892887 incorporated in its entirety herein by reference.
As shown on figure 1, a ferrofluid seal 25 is placed in between the moving part 21 and the magnet element 23. The ferrofluid seal 25 is placed around the point where the magnetic flux gradient is the largest, here at mid distance from the upper 22H and lower 22L voice-coils .
Use of ferrofluid seals 25 can help avoid non- linearities in the movements of the moving part 21 in the coil transducer motor structure 20 compared to known suspension elements that are usually made of elastomer .
Moreover, ferrofluid seals 25 act as thermal bridges, allowing the heat generated by the current circulating in the coil to flow through and be dissipated in the magnetic element 23 and in the cabinet 11.
If the ferrofluid seals 25 allow the voice coil support 21 to be guided along its axis of displacement Z, return stroke means are provided, for the voice coil support 21 to be able to reciprocate along its axis Z.
These means take advantage of the volume change in the cabinet 11 when the voice coil support 21 moves along the axis of displacement Z. The volume defined in the cabinet 11 is delimited at the top by the coil transducer motor structure 20, and at least partially by the lower surface 26 of the voice coil support 21.
A hole 12 is made in the cabinet 11, providing a small leakage, the dimensions of the hole being adapted to provide a very long time constant compared to the frequencies at which the coil transducer motor structure 20 operates. This hole 12 permits to equalize the pressure in the cabinet 11 for quasi-static or long period movements of the voice coil support 21, and to compensate barometric pressure changes.
For example, the diameter of the hole 12 is comprised between 0.1 and 1 mm for a volume defined in the cabinet 11 of about 10 cubic centiliter.
When the voice coil support 21 moves upwards, the pressure in the cabinet 11 decreases, a depression is created and a return stroke force is generated retaining the voice coil support 21 by its lower surface 26. A small quantity of air is sucked into the cabinet 11 through the hole 12, to slowly increase the pressure in the cabinet 11.
When the voice coil support 21 moves downwards, the pressure in the cabinet 11 increases, some air is slowly expelled out of the cabinet 11 through the hole 12. At usual operating frequency range, the amount of air exchange is negligible.
Thus, the voice coil support 21 is retained by its lower surface 26 by an effect of suction. Such a return stroke means has the advantage of not introducing non linearities to the voice-coil transducer motor structure 20 unlike elastomer suspension means.
A suspension wire 13 can be connected towards one end to the lower surface 26 of the voice coil support 21 and towards the other end to the cabinet 11 and extends preferably along the displacement axis Z. This suspension wire 13 is adapted to prevent the voice coil support 21 from being pushed out of the top of the voice-coil transducer motor structure 20 in case of failure of the return stroke means, for example when a strong shock occurs along the displacement axis Z.
The length of the suspension wire 13 is therefore designed for the suspension wire 13 to enter into action only when the return stroke means are inactive or beyond their working range. Advantageously, the voice coil support 21 has a monobloc structure, preferably made in the shape of a solid of revolution. The monobloc structure is made of one solid piece of material, i.e. that the voice coil support 21 is made of massive material without hollow parts, and preferably obtained by casting. This monobloc structure is adapted to have its natural mechanical mode of vibration outside of the audible frequency range, that is limited from 20Hz to 2OkHz. Therefore, mode coupling is prevented between mechanical modes and acoustical modes in the frequency range of interest, which is the range of audible frequencies for a loudspeaker. The solid monobloc structure of the voice coil support 21 allows for the mechanical modes to occur beyond an upper frequency of the frequency range of interest, or for example in loudspeakers beyond the upper limit of audible sounds.
This monobloc structure allows prevention of coupling between mechanical modes and acoustical modes during the excitation of the voice-coil transducer motor structure 20 in the frequency range of interest. Thus the sound produced by the loudspeaker 10 is made clearer and of higher quality, rising and trailing edges of the acoustic signal being sharper.
The monobloc structure should also prevent the transmission of acoustic waves at least between the lower surface 26 and the emissive surface 22. Thus the voice coil support 21 comprises a material that preferably exhibits a quasi infinite or infinite airflow resistivity.
Such a material is therefore adapted to prevent airflow communication between at least the lower surface 26 and its emissive surface 22, or more generally speaking communication of fluid between at least the lower surface 26 and its emissive surface 22. Preferably, the material prevents the communication of fluid between any one of the surfaces 22, 26, 27 to any other one surface 22, 26, 27 of the voice coil support 21.
Therefore, the minimum absolute value of airflow resistivity of the material is such that it reduces the speed of airflow within the voice coil support 21 by a factor comprised in the range of 2 to 4.
To improve yield and efficiency of the voice-coil transducer motor structure 20, the voice coil support is designed to be as light as possible as well as being rigid enough to prevent mode coupling in a bandwidth of audible sounds. For these reasons, the applicant has noticed that closed pore materials or open pore materials with, preferably, an appropriate waterproof coating on the voice coil support's 21 outer surface 27 are the most suitable materials for making the voice coil support 21. The voice coil support's 21 outer surface 27 is preferably covered with a material adapted not to be wetted by ferrofluid seals 25 and for the ferrofluid seals 25 to slide better on the outer surface 27, and for the ferrofluid seals 25 not to disappear by absorption into the voice coil support material 21.
By way of example, suitable materials for the outer surface 27 comprise non metallic materials, acrylic or cellulosic vanishes. These coatings can be vaporized onto the voice coil support 21 and help to prevent the formation of Eddy currents around the voice coil support 21. These coatings can be applied on the outer surface 27 by a chemical vapour deposition method for example. The closed pore material also allows for prevents acoustic waves from being propagated from the bottom face 26 to the emissive surface 22 of the voice coil support 21 which would otherwise disturb the acoustical signal generated in the loudspeaker 10. This material should be transparent to the magnetic field generated by the magnet element 23, which allows the coil windings 22H, 22L to be irradiated and preferably be an electrical isolator.
By way of example, suitable closed pore materials comprise carbon mousse compounds, polystyrene compounds or the like.
Open pore materials having an infinite or quasi- infinite airflow resistivity are also suitable as constitutive materials of the voice coil support 21. By way of example, suitable open pore materials comprise elastomeric mousses or foams. When the voice coil support 21 is made of an open pore material, at least the first surface 26 and the second surface 22 and, preferably, the first surface 26, the second surface 22 and the outer surface 27 are coated with material that can comprise a resin or a vanish such as an acrylic or cellulosic vanish in order to achieve at least a partial waterproof effect.
According to the invention, the voice coil support 21 can be obtained by several ways. In a first variant, the voice coil support 21 can be obtained by providing a chunk of the desired solid material, cutting the chunk of solid material in to the desired shape and preferably coating the outer surface 27 of the voice coil support with a material adapted not to be wetted by ferrofluid seals 25 chosen among a resin or a vanish.
Ridges 24 are then cut in to the outer surfaces 27 of the voice coil support 21, their dimensions and location being adapted to receive coil windings 22H, 22L.
In a second variant, the voice coil support 21 can be obtained by providing a liquid or a powder of the desired material, pouring or injecting the material into a casting die of the desired shape, waiting for solidification of the material, removing the obtained voice coil support from the casting die once the material has become solid.
Preferably, the second variant includes a step of coating the outer surface 27 of the voice coil support 21 with a material adapted not to be wetted by ferrofluid seals 25 chosen among a resin or a vanish. Ridges 24 can be provided by the same method as in the first variant.
In a third variant, the voice coil support 21 can be obtained by a blowing process. In that case, the voice coil support 21 will have a monobloc structure that will be a solid piece of material that can have hollow parts inside but will be a closed volume structure. That is to say that the voice coil support 21 will have upper 22 and lower 26 surfaces. Ridges 24 can be provided by the same method as in the first and second variants.
Coil winding 22H, 22L can also be placed into the casting die prior to the introduction, preferably by injection, of the material and maintained in position until it solidifies. This method allows for the voice coil support 21 to be made rapidly and efficiently and the coil windings to be integrated during the moulding process .
According to the first embodiment of the invention as disclosed in combination with figure 1, the voice coil support 21 has a cylindrical shape. The voice coil support 21 is able to reciprocate along its displacement axis Z while the ferrofluid seals 25 slide on the outer surface 27. The return stroke force is mainly exerted by the interaction between the lower surface 2,6 and the cabinet 11.
According to a second embodiment of the invention shown on figure 2, the voice coil support 21 has a monobloc structure in the shape of two circular cone frustum portions, these frustums portions being connected to each other by their smaller surface base side .
The location of the connection of the two frustum portions is designed to fall at mid distance from the upper 22H and lower 22L voice-coils. Therefore, at resting position of the voice coil support 21, the ferrofluid seals 25 lie at the location of the connection of the two frustum portions. The slopes designed in the outer surface 27 tend to provide an additional return stroke force tending to bring back the voice coil support 21 in its resting position when the voice coil support 21 moves upwards or downwards.
According to a third embodiment of the invention shown on figure 3, the voice coil support 21 has a monobloc structure in the shape of two circular cone frustum portions connected to each other by their smaller surface base side to a cylindrical portion. The cylindrical portion is located at mid distance from the upper 22H and lower 22L voice-coils. Therefore, at resting position of the voice coil support 21, the ferrofluid seals 25 lie against the cylindrical portion. The height of this cylindrical portion sets the excursion of the voice coil support 21 where the movement sees only the return stroke generated by the cabinet 11. The cylindrical portion allows to have a wider ferrofluid seal 25, extending along the cylindrical portion.
According to a fourth embodiment of the invention shown on figure 4, the voice coil support 21 has a monobloc structure, in the shape of a paraboloid of revolution. This embodiment is advantageous in the ferrofluid seal 25 applying a return stroke force gradually increasing as the voice coil support 21 moves away from its resting position and is particularly adapted to positioning of the voice coil support 21 along its displacement axis Z.
The voice coil support 21 according to the invention comprises an emissive surface 22 towards the one end of the voice coil support 21 adapted to be extending outwards from the loudspeaker 10. This surface replaces the diaphragm that is present in the loudspeakers of the state of the art, in order to prevent the introduction of non linearities .
Depending on the characteristic of the field of emission the loudspeaker 10 is intended for, the emissive surface 22 can take several shapes, from flat represented in figures 1 through 4), concave or convex as shown in figures 5A and 5B. Thus the directivity of the sound produced by the loudspeaker 10 can be tuned.
Figure 5A illustrates a concave emissive surface 22.
Figure 5B illustrates a convex emissive surface 22.

Claims

1) A voice coil support (21) for a coil transducer motor structure (10) having a first surface (26) towards one end and a second surface (22) towards the other end along an axis of displacement Z, the voice coil support being adapted to receive at least one coil (22H, 22L) wound therearound an outer surface (27) arranged in use for displacing the voice coil support
(21) along its axis of displacement Z, as a current is driven through the coils (22H, 22L) when the voice coil support (21) is placed in a magnetic field, characterized in that the voice coil support (21) comprises a material adapted to prevent airflow communication between at least the first surface (26) and the second surface (22) .
2) A voice coil support (21) according to claim 1, characterized in that the voice coil support (21) has a monobloc structure made of one solid piece of material, with a mechanical mode of vibration at a natural frequency outside of a frequency range of interest, preferably the audible frequency range.
3) A voice coil support (21) according to claim 2, characterized in that the monobloc structure of the voice coil support (21) comprises a material having an infinite or quasi-infinite airflow resistivity. 4) A voice coil support (21) according to the claim 2 or 3, characterized in that the monobloc structure made of one solid piece of material comprises a closed pore material such as a carbon mousse compound, or a polystyrene compound.
5) A voice coil support (21) according to claim 2 or 3, characterized in that the monobloc structure of the voice coil support (21) comprises an open pore material such as an elastomeric mousse.
6) A voice coil support (21) according to any of preceding claims 2 to 5, characterized in that the monobloc structure made of one solid piece of material comprises a material that is transparent to the magnetic field and preferably an electrical isolator.
7) A voice coil support (21) according to claim 1, characterized in that at least the first surface (26) and the second surface (22) and preferably the first surface (26), the second surface (22) and the outer surface (27) are coated with at least partially waterproof material that can comprise a resin or a vanish such as an acrylic or cellulosic vanish.
8) A voice coil support (21) according to any of preceding claims 2 to 7, characterized in that the outer surface (27) is coated with a material that is resistant to being wetted through contact with a ferrofluid seal (25), such as a non-metallic material for limiting the effect of Eddy currents. 9) A voice coil support (21) according to any one of the preceding claims, characterized in that ridges (24) adapted to receive coil windings (22H, 22L) are defined in the outer surface (27) around the circumference of the voice coil support (21) .
10) A voice coil support (21) according to any one of the preceding claims, characterized in that the second surface of the voice coil support (21) is chosen amongst a plane, concave, or convex surface.
11) A voice coil support (21) according to any one of the preceding claims, characterized in that it is made in the shape of a solid of revolution.
12) A voice coil support (21) according to the preceding claim characterized in that the shape of the voice coil support (21) is chosen amongst: a cylindrical shape, a two circular cone frustum portion shape, the frustum portions being connected to each other by their smaller surface base side, or - a two circular cone frustum portion shape connected to each other by their smaller surface base side to a cylindrical portion, or - a paraboloid of revolution shape. 13) Method of manufacturing a voice coil support according to any one of preceding claims, the method including the steps of:
- providing a liquid or a powder of the desired material into a casting die of the desired shape, setting the material to form said voice coil support, removing the obtained voice coil support from the casting die.
14) Method of manufacturing a voice coil support according to claim 13, the method including the step of cutting ridges (24) in the outer surfaces (27) of the voice coil support (21) .
15) Method of manufacturing a voice coil support according to claim 13, the method including the step of providing coil winding (22H,22L) into the casting die before providing the material into the casting die and maintaining the coil winding in position until the material sets .
16) Coil transducer motor structure (20), comprising at least one magnetic element (23) arranged in use to provide a path for magnetic flux between the ends of at least one coil winding (22H, 22L) characterized in that the coil winding (22H, 22L) is wound around a reciprocating voice coil support (21) according to any one of claims 1 to 9. 17) Loudspeaker (10) incorporating a coil transducer motor structure (20) according' to claim 16 fixed on top of a cabinet (11) providing return stroke means.
18) Loudspeaker (10) according to claim 17, characterized in that a suspension wire (13) is incorporated in the cabinet (11) and connected towards one end to the first surface (26) of the voice coil support (21) and towards the other end to the cabinet (11) and extends preferably along the displacement axis Z.
PCT/EP2009/004804 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure Ceased WO2010000481A1 (en)

Priority Applications (9)

Application Number Priority Date Filing Date Title
CN200980125439.4A CN102077610B (en) 2008-07-02 2009-07-02 Voice coil support for coil transducer motor construction
RU2010154387/28A RU2525571C2 (en) 2008-07-02 2009-07-02 Voice coil support for motor unit of coil converter
MX2010014397A MX2010014397A (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure.
KR1020107029854A KR101535698B1 (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure
US13/000,452 US8971564B2 (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure
BRPI0914701-2A BRPI0914701B1 (en) 2008-07-02 2009-07-02 voice coil holder for a coil transducer motor frame, method for manufacturing the same, coil transducer motor frame, and, speaker
JP2011515243A JP5442728B2 (en) 2008-07-02 2009-07-02 Voice coil support device with coil type converter motor structure
CA2729066A CA2729066C (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure
AU2009266026A AU2009266026B2 (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP08290652.0 2008-07-02
EP08290652.0A EP2141939B1 (en) 2008-07-02 2008-07-02 Mandrel for a coil transducer motor structure

Publications (1)

Publication Number Publication Date
WO2010000481A1 true WO2010000481A1 (en) 2010-01-07

Family

ID=40010785

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2009/004804 Ceased WO2010000481A1 (en) 2008-07-02 2009-07-02 Voice coil support for a coil transducer motor structure

Country Status (11)

Country Link
US (1) US8971564B2 (en)
EP (1) EP2141939B1 (en)
JP (1) JP5442728B2 (en)
KR (1) KR101535698B1 (en)
CN (1) CN102077610B (en)
AU (1) AU2009266026B2 (en)
BR (1) BRPI0914701B1 (en)
CA (1) CA2729066C (en)
MX (1) MX2010014397A (en)
RU (1) RU2525571C2 (en)
WO (1) WO2010000481A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101724705B1 (en) 2009-09-14 2017-04-18 후지필름 가부시키가이샤 Protective film and front sheet for solar cell

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2685528B2 (en) 1988-09-07 1997-12-03 株式会社日立製作所 Noise control device for straddle type monorail vehicle
US9942662B2 (en) 2016-06-14 2018-04-10 Bose Corporation Electro-acoustic driver having compliant diaphragm with stiffening element
CN106255013B (en) * 2016-08-18 2022-04-05 歌尔股份有限公司 Voice coil structure
JP6265518B1 (en) * 2017-09-28 2018-01-24 準 植木 Speaker device

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS54134618A (en) * 1978-04-12 1979-10-19 Hitachi Ltd Voice coil bobbin
GB2281171A (en) * 1993-08-16 1995-02-22 Sony Corp Coil arrangement for a motional feedback loudspeaker
US20020057818A1 (en) * 2000-10-31 2002-05-16 Yasuhisa Abe Speaker apparatus
CN1463898A (en) * 2002-06-18 2003-12-31 顾文波 Cork plug for bottle with protecting film

Family Cites Families (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB707730A (en) * 1951-05-22 1954-04-21 Baxter Brothers And Company Lt Improvements in bobbins for use in yarn spinning, twisting and similar machines
US3073916A (en) * 1958-11-24 1963-01-15 Muter Company Blast-proof water-proof loudspeaker
DE2607390C2 (en) * 1976-02-24 1982-09-23 Braun Ag, 6000 Frankfurt Dynamic loudspeaker with a high load capacity
SU888337A1 (en) * 1979-09-21 1981-12-07 Институт Тепломассообмена Им.А.В.Лыкова Ан Бсср Composition for filling magnetic circuit gap of dynamic loudspeaker
US4410768A (en) * 1980-07-23 1983-10-18 Nippon Gakki Seizo Kabushiki Kaisha Electro-acoustic transducer
US4443667A (en) * 1982-01-11 1984-04-17 Bell Telephone Laboratories, Incorporated Electromagnetic transducer
US5734734A (en) * 1995-12-29 1998-03-31 Proni; Lucio Audio voice coil adaptor ring
JPH1188986A (en) * 1997-09-02 1999-03-30 Sony Corp Speaker device
GB0029098D0 (en) * 2000-11-30 2001-01-10 New Transducers Ltd Vibration transducer
US7035424B1 (en) * 2001-05-18 2006-04-25 Brandt Eugene P Loudspeaker having an inner lead wire system and related method of protecting the lead wires
WO2003010998A1 (en) * 2001-07-23 2003-02-06 Toshio Chikama Magnetic shielding of loud speaker sensing coil
JP2003199194A (en) * 2001-12-25 2003-07-11 Pioneer Electronic Corp Speaker system
US20030133581A1 (en) * 2002-01-07 2003-07-17 Klayman Arnold I. User configurable multi-component speaker panel
JP3797561B2 (en) * 2003-11-18 2006-07-19 ソニー株式会社 Speaker device
JP2006005852A (en) * 2004-06-21 2006-01-05 Pioneer Electronic Corp Speaker system
JP4137869B2 (en) * 2004-10-25 2008-08-20 パイオニア株式会社 Speaker device and manufacturing method thereof
JP2006303982A (en) * 2005-04-21 2006-11-02 Pioneer Electronic Corp Voice coil body and speaker
JP2007020024A (en) * 2005-07-11 2007-01-25 Yamaha Corp Linear motor type loudspeaker
FR2892887B1 (en) 2005-11-03 2007-12-21 Bernard Richoux ELECTRO-DYNAMIC TRANSDUCER WITH FERROFLUID SUSPENSION DOME
US7729504B2 (en) * 2006-02-14 2010-06-01 Ferrotec Corporation Ferrofluid centered voice coil speaker
JP2008141663A (en) * 2006-12-05 2008-06-19 Onkyo Corp speaker
US20080137902A1 (en) * 2006-12-07 2008-06-12 Bohlender Jack T Highly elongated loudspeaker and motor
FR2919978B1 (en) * 2007-08-09 2011-04-29 Gilles Milot ELECTRODYNAMIC TRANSDUCER, IN PARTICULAR OF THE SPEAKER TYPE, WITH FERROFLUID SUSPENSION AND ASSOCIATED DEVICES

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS54134618A (en) * 1978-04-12 1979-10-19 Hitachi Ltd Voice coil bobbin
GB2281171A (en) * 1993-08-16 1995-02-22 Sony Corp Coil arrangement for a motional feedback loudspeaker
US20020057818A1 (en) * 2000-10-31 2002-05-16 Yasuhisa Abe Speaker apparatus
CN1463898A (en) * 2002-06-18 2003-12-31 顾文波 Cork plug for bottle with protecting film

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101724705B1 (en) 2009-09-14 2017-04-18 후지필름 가부시키가이샤 Protective film and front sheet for solar cell

Also Published As

Publication number Publication date
MX2010014397A (en) 2011-05-02
RU2010154387A (en) 2012-08-10
US8971564B2 (en) 2015-03-03
JP5442728B2 (en) 2014-03-12
JP2011526452A (en) 2011-10-06
BRPI0914701A2 (en) 2015-10-20
EP2141939B1 (en) 2016-11-09
KR20110025675A (en) 2011-03-10
CA2729066A1 (en) 2010-01-07
BRPI0914701B1 (en) 2019-11-05
CN102077610A (en) 2011-05-25
US20110103638A1 (en) 2011-05-05
RU2525571C2 (en) 2014-08-20
AU2009266026B2 (en) 2014-05-29
EP2141939A1 (en) 2010-01-06
CN102077610B (en) 2015-08-19
AU2009266026A1 (en) 2010-01-07
CA2729066C (en) 2017-05-23
KR101535698B1 (en) 2015-07-09

Similar Documents

Publication Publication Date Title
KR101377381B1 (en) Ferrofluid Centered Voice Coil Speaker
US20110274308A1 (en) Multifunctional micro speaker
AU2009266026B2 (en) Voice coil support for a coil transducer motor structure
US9332352B2 (en) Audio speaker with sandwich-structured composite diaphragm
JP2003032791A (en) Speaker and method of manufacturing the same
CN101489169A (en) Speaker unit
US20160316299A1 (en) Speaker device assembly with recoil vibration attenuating counter balance
CN107105371A (en) A kind of vibrating diaphragm mechanism and its preparation technology applied to receiver
KR101755329B1 (en) Hybrid speaker and vibration module used therein
CN111601221A (en) High-pitch sound production device
CN102273228B (en) Multifunctional Micro Speaker
JP2007243659A (en) Voice coil bobbin, and speaker unit
US20240214739A1 (en) High excursion, low distortion and low depth speaker
EP3926978A1 (en) A receiver and a method of manufacturing a receiver
KR101802841B1 (en) Moving coil type underwater sound projector having contact surface bobbin structure
CN218103494U (en) Speaker and audio equipment
US8934659B2 (en) Moving part and electrodynamic transducer provided with such a moving part
JP4757746B2 (en) Diaphragm for speaker, speaker and manufacturing method thereof
KR102152980B1 (en) The exciter for vibrating panel
WO2024052117A1 (en) Bass loudspeaker system
CN116389998A (en) Sound generators and terminal equipment
KR101569851B1 (en) Speaker having multi-layered diaphragm for imporving the specific modulus
EP3289780A1 (en) Deep-drawn foil-based miniature diaphragm assembly
JP2010103894A (en) Electro-acoustic transducer

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 200980125439.4

Country of ref document: CN

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 09772181

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 2631/MUMNP/2010

Country of ref document: IN

WWE Wipo information: entry into national phase

Ref document number: 2009266026

Country of ref document: AU

ENP Entry into the national phase

Ref document number: 2011515243

Country of ref document: JP

Kind code of ref document: A

WWE Wipo information: entry into national phase

Ref document number: 13000452

Country of ref document: US

Ref document number: MX/A/2010/014397

Country of ref document: MX

ENP Entry into the national phase

Ref document number: 2729066

Country of ref document: CA

ENP Entry into the national phase

Ref document number: 20107029854

Country of ref document: KR

Kind code of ref document: A

NENP Non-entry into the national phase

Ref country code: DE

ENP Entry into the national phase

Ref document number: 2009266026

Country of ref document: AU

Date of ref document: 20090702

Kind code of ref document: A

WWE Wipo information: entry into national phase

Ref document number: 2010154387

Country of ref document: RU

122 Ep: pct application non-entry in european phase

Ref document number: 09772181

Country of ref document: EP

Kind code of ref document: A1

ENP Entry into the national phase

Ref document number: PI0914701

Country of ref document: BR

Kind code of ref document: A2

Effective date: 20101229