PNEUMATIC PULSATING SPEAKER FOR MOTOR VEHICLES
The pneumatic loudspeaker addresses space and efficiency issues by using a pressurized gas flow to deform a flexible membrane, enhancing sound quality and reducing size and material costs.
Patent Information
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2026-03-06
AI Technical Summary
Existing loudspeakers for motor vehicles face challenges such as low efficiency, limited excursion capacity, high weight, space constraints, and the use of rare materials, particularly for producing low-frequency sound, and existing pneumatic loudspeakers are bulky and unsuitable for diffusing low frequencies.
A pneumatic loudspeaker design utilizing a pressurized gas flow to deform a flexible membrane, eliminating the need for a coil and magnet, with a flow modulator to control sound generation, and using elastic materials like butyl or latex for the membrane.
The design achieves a compact size, improved sound quality and level, especially at low frequencies, reduced heat loss, and lower material costs, while integrating easily into vehicle compartments.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Title of the invention: PNEUMATIC PULSATING SPEAKER FOR MOTOR VEHICLES Technical field
[0001] The present invention relates to the field of loudspeakers, more particularly to the field of loudspeakers for motor vehicles. Previous technique
[0002] In the field of automotive audio systems, three main types of loudspeakers are commonly used: electrodynamic transducers, electrostatic transducers and piezo transducers.
[0003] Electrodynamic transducers are the most widespread. They operate with a magnet and a moving coil driving a diaphragm under the effect of the Laplace force to produce sound. However, these loudspeakers have several drawbacks. They have a relatively low efficiency, generally between 5 and 10%, and their excursion capacity is limited by the size of the magnet and the coil. In addition, their weight increases with the size of these components, and the use of rare materials such as neodymium to improve performance can increase costs and complexity.
[0004] For low frequencies (below 200 Hz), which require a large volume of air displaced, the large size of the diaphragm, coil and magnet can pose space problems, particularly in the passenger compartment of vehicles where space is generally limited.
[0005] Electrostatic transducers, on the other hand, use very high supply voltages, often several hundred or even thousands of volts, which makes them difficult to handle and limits their power.
[0006] Piezo transducers, which operate with piezoelectric materials, are mainly used for high frequencies. Their ability to move large quantities of air being limited, they are not suitable for low frequencies.
[0007] The published patent document FR 2 807 277 Al discloses a miniaturized pneumatic loudspeaker, powered by a flow of pressurized gas flowing through a sonic throat and modulated by an axial displacement of a moving assembly in an annular air gap of a magnetic circuit formed by an axial stack of permanent magnet and soft iron disks inside a soft iron yoke.
[0008] However, the loudspeaker disclosed in document FR 2 807 277 A1 does not resolve the problems mentioned above, particularly because the axial stacking of Permanent magnet and soft iron discs are bulky and unsuitable for diffusing low-frequency sound. Description of the invention
[0009] The present invention aims to overcome at least one of the drawbacks of the aforementioned prior art. More particularly, the invention aims to provide a simple and efficient solution for diffusing sound, especially low frequencies, in a motor vehicle passenger compartment, while occupying a small space.
[0010] To this end, the invention relates to a loudspeaker for a motor vehicle, remarkable in that said loudspeaker comprises: - a pneumatic circuit equipped with a pressurized gas flow circulating from upstream to downstream in said pneumatic circuit; and - a flexible membrane fluidly connected to the pressurized gas flow, configured to deform according to pressure variations of the pressurized gas within said flexible membrane, so that deformations of said flexible membrane generate sound.
[0011] According to one embodiment, said loudspeaker is devoid of coil and magnet, the sound being generated exclusively by the deformations of the flexible diaphragm.
[0012] According to one embodiment, the pneumatic circuit further includes a flow modulator configured to modulate the flow rate of the pressurized gas stream according to the sound to be generated.
[0013] According to one embodiment, the pneumatic circuit further includes an exhaust for the pressurized gas flow, the flexible diaphragm being arranged upstream of said exhaust.
[0014] According to one embodiment, the flexible membrane includes a tubular-shaped channel connecting the flow modulator to the exhaust.
[0015] According to one embodiment, the pressurized gas flow is configured to pass successively through the flow modulator, the flexible membrane and the exhaust.
[0016] According to one embodiment, the flexible membrane comprises a balloon disposed downstream of the flow modulator, said flexible membrane being isolated from the exhaust and forming a closed termination point for the pressurized gas flow.
[0017] According to one embodiment, the flow modulator includes a controlled displacement valve, or a butterfly valve, or a rotary disc valve, or a circular passage valve.
[0018] Preferably, an external electrical signal is used to adjust the position and / or rotational speed of the valve. This signal may originate from an automatic sound management control system.
[0019] According to one embodiment, the flexible membrane is obtained from an elastic material, preferably butyl, rubber or latex.
[0020] The invention also relates to a motor vehicle comprising at least one loudspeaker, notable in that said at least one loudspeaker is according to the invention.
[0021] The measures of the invention are advantageous in that the suppression of the coil and the magnet, compared with the loudspeakers of the prior art, allows a considerable gain in size, making the loudspeaker of the invention substantially more compact, and consequently easier to integrate into the passenger compartment of the motor vehicle.
[0022] Dynamic control of the gas flow pressure upstream of the flexible membrane and the use of elastic materials also promote greater deformations of said membrane, which improves the level and quality of sound, in particular for low frequencies, below 200 Hz.
[0023] Furthermore, the absence of a coil eliminates heat loss, making the system more efficient. In addition, the invention reduces the use of rare materials, making the loudspeaker more economical and environmentally friendly. Brief description of the drawings
[0024] [Fig.1] schematically illustrates a loudspeaker according to the invention, comprising a pressurized gas flow passing through a flexible membrane configured to deform according to pressure variations of said pressurized gas to generate sound;
[0025] [Fig.2] schematically illustrates the loudspeaker according to a second mode of the invention, in which the flexible diaphragm forms a closed termination point for the pressurized gas flow. Detailed description
[0026] Fig. 1 is an illustration of the loudspeaker 2 according to the invention, adapted to be placed in the passenger compartment of a motor vehicle 1.
[0027] The loudspeaker 2 preferably comprises a pneumatic circuit 4 provided with a pneumatic source 6 which may correspond, for example, to a pressurized gas reservoir and a suitable pump capable of transmitting a pressurized gas flow F to circulate upstream to downstream in the pneumatic circuit 4.
[0028] The pressurized gas flow F preferably corresponds to air having a pressure greater than atmospheric pressure. The flow F preferably passes through a flow modulator 8, also referred to as a chopper 8, configured to modulate the flow rate of said flow F according to an electrical signal corresponding to the sound to be generated by the loudspeaker 2. This signal may originate from an external automatic control system separate from the loudspeaker 2.
[0029] It is understood that the modulation of the flow rate of the gas flow F includes the variation of the pressure of said flow F.
[0030] Advantageously, the loudspeaker 2 is equipped with a flexible diaphragm 10 connected to the pressurized gas flow F. This diaphragm 10 is designed to deform in response to variations in gas pressure (caused by the flow modulator 8), so that these deformations produce sound.
[0031] The deformations of the flexible membrane 10 can manifest themselves through a rapid series of inflations and deflations, creating vibrations. These vibrations are transmitted to the surrounding air in contact with the membrane 10, thus generating sound.
[0032] The flexible membrane 10 can be made of different materials depending on the level of pressure available at the source 6. Preferably, the flexible membrane is obtained from an elastic material, more preferably butyl, rubber or latex.
[0033] It should be noted that, in [Fig. 1], the flexible membrane 10 is shown in a deformed state due to the passage of the flux F. The dotted lines illustrate an example of the maximum deformation 10' of said membrane 10.
[0034] In the configuration illustrated in [Fig.1], the flexible membrane 10, in its initial state prior to the passage of the flow F, the flexible membrane 10 preferably comprises a tubular channel connecting the flow modulator 8 to an exhaust 12 for the flow F.
[0035] The flexible diaphragm 10 may thus have a diameter that is preferably constant at rest (measurable along a direction transverse to the flow F), ranging from 10 to 100 mm. Said diaphragm 10 may extend longitudinally (along the flow F) over a few centimeters, preferably at least 2 cm and at most 50 cm. More preferably, the flexible diaphragm 10 has a longitudinal length of 10 cm or less, making the loudspeaker considerably compact, allowing for easy integration into the passenger compartment of the motor vehicle 1.
[0036] Preferably, approximately ten centimeters of the length of the flexible membrane 10 may be required to achieve the desired high pressure levels, these levels being related to the pressure of the gas F in the circuit 4 and the flow rate of the pneumatic source 6
[0037] For example, the flexible membrane 10 can correspond to a piece of butyl inner tube having a diameter between 25 and 50 mm and a length of 9 cm, or to a latex tube having a length of 5 cm and a diameter of about 19 mm (±10%).
[0038] Several tests were carried out with flexible membranes less than 10 cm in length, with a pressurized gas flow pressure between 5 and 20 PSI, and a mass flow rate at the output of the flow modulator 8 equal to 25 g / s, which made it possible to generate a sound of 95 dB at 1 meter.
[0039] Advantageously, the elasticity of the flexible membrane 10 allows, in addition to the generation of sound, to ensure an attenuation of up to 50 dB of any possible parasitic noise which may be caused by the continuous circulation of the pressurized gas flow F (air jet) through the pneumatic circuit 4.
[0040] The exhaust 12 may include a conduit extending from a few centimeters to a few meters. It may also be fitted with a suitable silencer. The exhaust 12 may open to the surrounding air, in which case the pneumatic circuit 4 is open, or may alternatively redirect the flow F back to the pneumatic source 6 to form a closed loop circuit.
[0041] Advantageously, the pneumatic source 6 and the flow modulator 8 can be remote, thus facilitating their integration into the passenger compartment of the motor vehicle 1.
[0042] In an alternative not shown, the pneumatic circuit 4 may include several flexible membranes 10 arranged in parallel. In this configuration, each membrane 10 functions as a loudspeaker. Thus, a pressurized reservoir (a pneumatic source 6) could power different loudspeakers in the passenger compartment. This can offer a significant advantage in terms of space requirements in the motor vehicle 1.
[0043] Fig. 2 schematically illustrates the loudspeaker 102 according to a second embodiment of the invention, in which the flexible membrane 110 forms a closed termination point for the pressurized gas flow F.
[0044] Preferably, the flexible membrane 110 comprises, in this configuration, a balloon disposed downstream of the flow modulator 8 while being isolated from the exhaust 12 so as to form a closed termination point for the pressurized gas flow F at the level of said balloon 12.
[0045] It is understood that the gas flow F continues to circulate from upstream to downstream in the pneumatic circuit 104 between the pneumatic source 6 and the exhaust 12.
[0046] It should be noted that the flexible membrane 10 is illustrated in [Fig.2] in an initial state of deformation caused by the flow F. The dashed lines illustrate an example of the maximum deformation 110' of the flexible membrane 110 caused by a high pressure of the gas flow F in the pneumatic circuit 104.
[0047] Advantageously, the present invention eliminates the need for a coil and magnet in the loudspeaker, generating sound exclusively through the deformation of the flexible diaphragm. This offers several significant advantages, including a substantial reduction in size and a decrease in heat loss, since the absence of a coil eliminates the associated heat losses. Furthermore, the overall mass of the loudspeaker is reduced.
[0048] The rear volume, also called the enclosure or rear loading volume, required for the operation of traditional transducers is no longer influenced by the characteristics of the magnet and voice coil. It now depends on the "energy reserve" stored in the pressurized gas. Thus, this volume can be considerably reduced. While traditional loudspeakers require a loading volume of several liters, or even tens of liters for low frequencies, the pneumatic system makes it possible to reduce this volume to a few tenths of a liter. Moreover, since the energy is contained in the pressurized gas, it is no longer necessary to use rare materials as in the magnet and voice coil.
[0049] Furthermore, the dynamic control of the gas flow pressure F upstream of the flexible diaphragm 10, 110 and the choice of elastic material also allow for greater displacements of the diaphragm. This considerably improves the quality of the sound produced as well as the sound level, particularly at low frequencies below 200 Hz. Indeed, greater displacements result in a higher sound level, even with a smaller and more compact flexible diaphragm.
Claims
Demands
1. Loudspeaker (2; 102) for motor vehicle (1), characterized in that said loudspeaker (2; 102) comprises: - a pneumatic circuit (4; 104) provided with a pressurized gas flow (F) circulating upstream to downstream in said pneumatic circuit (4; 104); and - a flexible diaphragm (10; 110) fluidly connected to the pressurized gas flow (F), configured to deform according to pressure variations of the pressurized gas within said flexible diaphragm (10; 110), so that deformations of said flexible diaphragm (10; 110) generate sound, said loudspeaker (2; 102) being devoid of a coil and magnet, the sound being exclusively generated by the deformations of the flexible diaphragm (10; 110).
2. Loudspeaker (2; 102) according to claim 1, wherein the pneumatic circuit (4; 104) further comprises a flow modulator (8) configured to modulate the flow rate of the pressurized gas stream (F) according to the sound to be generated.
3. Loudspeaker (2; 102) according to any one of claims 1 and 2, wherein the pneumatic circuit (4; 104) further comprises an exhaust (12) for the pressurized gas flow (F), the flexible diaphragm (10; 102) being arranged upstream of said exhaust (12).
4. Loudspeaker (2) according to claims 2 and 3, wherein the flexible diaphragm (10) comprises a tubular-shaped channel connecting the flow modulator (8) to the exhaust (12).
5. Loudspeaker (2) according to claim 4, wherein the pressurized gas flow (F) is configured to pass successively through the flow modulator (8), the flexible diaphragm (10) and the exhaust (12).
6. Loudspeaker (102) according to claims 2 and 3, wherein the flexible diaphragm (110) comprises a balloon disposed downstream of the flow modulator (8), said flexible diaphragm (110) being isolated from the exhaust (12) and forming a closed termination point for the pressurized gas flow (F).
7. Loudspeaker (2; 102) according to claim 2 and according to any one of claims 3 to 6, wherein the rate modulator (8) comprises a controlled displacement valve, or a butterfly valve, or a rotary disc valve, or a circular passage valve.
8. Loudspeaker (2; 102) according to any one of claims 1 to 7, wherein the flexible diaphragm (10; 110) is obtained from an elastic material, preferably butyl, rubber or latex.
9. Motor vehicle (1) comprising at least one loudspeaker (2; 102), characterized in that said at least one loudspeaker (2; 102) is according to any one of claims 1 to 8.
Citation Information
Patent Citations
MEMS piezoelectric loudspeaker
CN115484533A
PNEUMATIC speaker
FR2807277A1
Pneumatic speaker system
KR100881505B1
Balloon inflator
US20130118636A1
Accessory device for a gas balloon
US4737133A