EMBEDDED INTERACTION SYSTEM
The on-board interaction system using ultrasonic transducers addresses the challenge of secure remote data transfer and functional activation by generating focused acoustic pulses within a defined cone, ensuring secure and efficient device interaction.
Patent Information
- Application Number
- FR2024003256
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-03-29
AI Technical Summary
Existing ultrasonic transducer systems lack secure and efficient methods for remote data transfer and functional activation between devices, particularly in environments where direct contact is not feasible.
An on-board interaction system utilizing a set of ultrasonic transducers, controlled by a module, generates focused ultrasonic acoustic pulses to interact with destination devices within a defined emission cone, enabling secure data transfer and remote functional activation through a series of ultrasonic acoustic pulses or directional pressures.
Enables secure and contactless data transfer and functional activation between devices, ensuring interaction only within a controlled volume, enhancing security and efficiency in applications like vehicle-to-device communication.
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Abstract
Description
Title of the invention: EMBEDDED INTERACTION SYSTEM Technical field
[0001] The present invention relates to the field of ultrasonic transducers. STATE OF THE PRIOR ART
[0002] Ultrasonic transducers have many applications in industry and the medical field. They can be used for obstacle detection, defect detection, or sterilization in the pharmaceutical industry. Ultrasonic transducers are also used in medicine in the diagnosis and treatment of various conditions.
[0003] Systems comprising ultrasonic transducers for creating a focused ultrasound stream at a point that provides a sensation of touch to a person are also known in the prior art. Such a system, called a haptic system, comprises a set of individually controllable ultrasonic transducers for generating ultrasonic pulses. A control circuit controls the transmission of the transducers with phase shifts between the different transducers so as to focus the emitted waves at a given focusing point. This makes it possible to generate, in the vicinity of the focusing point, a pressure strong enough to be felt by a person.
[0004] The object of the present invention is to use ultrasonic transducers in an ingenious manner to create new industrial applications. Statement of the invention
[0005] This objective is achieved with an on-board interaction system comprising a set of ultrasonic transducers controllable by a control module to generate at least one focused stream of ultrasonic acoustic waves, called an ultrasonic acoustic pulse, configured to interact with at least one destination device provided with a receiver module sensitive to said at least one ultrasonic acoustic pulse.
[0006] This makes it possible to carry out an interaction (data transfer or remote action) between a device integrating the embedded system and a recipient device in complete safety because the interaction can only take place in an emission cone of given volume, where the ultrasonic acoustic waves propagate.
[0007] According to one embodiment, the on-board interaction system is configured to generate a series of ultrasonic acoustic pulses carrying information.
[0008] This allows data to be transferred or communicated (for example, like Morse code) to a fixed or mobile device in complete security.
[0009] According to one embodiment, said at least one ultrasonic acoustic pulse carries a directional pressure adapted to actuate a predetermined function in the receiving device.
[0010] This makes it possible to carry out an intelligent action remotely in complete safety, such as an actuation of one (or more) acoustic membranes, a push button or any sensor sensitive to acoustic pressure emitted by the on-board system.
[0011] Advantageously, the on-board interaction system is intended to be embedded in a mobile or fixed device among the following devices: vehicle, aircraft, machine, remote control device.
[0012] According to yet another embodiment, the embedded interaction system is intended to be embedded in a set of devices to generate a set of elementary interactions whose combination is necessary to create a specific interaction with the recipient device.
[0013] According to one aspect of an embodiment, the set of devices carries a set of data blocks whose concatenation is necessary for the reconstitution of secure information and that each of said set of devices is configured to transfer the data block that it carries to the destination device which is configured to reconstitute the secure information from the set of data blocks.
[0014] The recipient device receives the data blocks in a sequenced manner so that the overall information is read. This makes it possible to decrypt a set of data, each of whose sub-parts can be brought by different devices incorporating embedded systems, which, once assembled, constitute the entire information set.
[0015] According to another aspect of an embodiment, the set of devices carries a set of elementary directional pressures whose concatenation is necessary for the reconstitution of a specific action and that each of said set of devices is configured to transfer the elementary directional pressure that it carries to the recipient device.
[0016] Advantageously, the on-board interaction system is intended to generate ultrasonic acoustic pulses configured to interact with several recipient devices.
[0017] Advantageously, the ultrasonic transducers are PMUT type piezoelectric transducers arranged in a set of matrices and sub-matrices.
[0018] Advantageously, the control module is configured to control the emission of ultrasonic pulses from the sub-matrices with phase shifts between the different sub-matrices so as to focus the emitted waves at a given point in space.
[0019] Sub-matrix control reduces technological routing and therefore optimizes surface integration. This makes it possible to generate high acoustic pressure from of a smaller area.
[0020] According to one aspect, each ultrasonic transducer comprises a flexible membrane suspended on a rigid support and a piezoelectric conversion element attached to the flexible membrane.
[0021] The invention also relates to a recipient device comprising a receiver module configured to capture said at least one ultrasonic acoustic pulse emitted by the on-board interaction system according to any one of the above characteristics. The recipient device may be included in a mobile or fixed device.
[0022] Advantageously, the recipient device comprises an on-board interaction system.
[0023] The invention also relates to a mobile or fixed device comprising an on-board interaction system according to any one of the above characteristics. Brief description of the drawings
[0024] The present invention will be better understood on reading the description of exemplary embodiments given purely for informational purposes and in no way limiting, with reference to the appended drawings in which:
[0025] [Fig.l] schematically illustrates an on-board interaction system, according to one embodiment of the invention;
[0026] [Fig.2] schematically illustrates an ultrasonic transducer of the haptic interface of [Fig.l];
[0027] [Fig.3] illustrates a pressure curve in Pa as a function of distance in cm for a silicon PMUT transducer;
[0028] [Fig.4] schematically illustrates the control of the ultrasonic transducers by the control module;
[0029] [Fig. 5] schematically illustrates an on-board interaction system, according to first and second preferred embodiments of the invention; and
[0030] [Fig.6] schematically illustrates a particular application of the on-board interaction system, according to one embodiment of the invention. DETAILED DESCRIPTION OF THE INVENTION
[0031] The concept underlying the invention is to propose an on-board system comprising ultrasonic transducers for transmitting data or activating a specific function remotely and securely.
[0032] [Fig.l] schematically illustrates an on-board interaction system, according to one embodiment of the invention.
[0033] The on-board interaction system is suitable for being embedded in a mobile or fixed device 2 of the vehicle, aircraft, drone, machine, remote control device type, etc.
[0034] According to the invention, the on-board interaction system 1 comprises a set of ultrasonic transducers 3 which are advantageously arranged in a set of matrices or sub-matrices 4.
[0035] The set of ultrasonic transducers 3 can be controlled by a control module 5 to generate at least one focused stream of ultrasonic acoustic waves, called an ultrasonic acoustic pulse. The frequency of the ultrasonic pulses can be between 20 kHz and 10 THz.
[0036] Each ultrasonic acoustic pulse is configured to interact with at least one destination device 7 provided with a receiver module 9 sensitive to the ultrasonic acoustic pulse emitted by the on-board interaction system 1. The receiver module 9 comprises sensors 11 which transform the acoustic pulse into an electrical signal. These sensors 11 may also be acoustic transducers. The destination device 7 may be a mobile or fixed device which may also comprise an on-board interaction system.
[0037] By 'interaction' between the on-board interaction system 1 and the receiver module 9 is meant a remote mechanical action, a data transfer or a communication link.
[0038] This interaction between a device 2 integrating the on-board interaction system 1 and the destination device 7 can only take place in an emission cone 13 of given volume, where the ultrasonic acoustic waves propagate. Thus, the interaction is inviolable outside this emission cone 13 which is very limited in space. This allows the interaction to be carried out in complete safety.
[0039] According to one embodiment aspect, the embedded interaction system 1 can be embedded in a set of mobile devices 2 to generate a set of elementary interactions whose combination is necessary to create a specific interaction with the destination device 7. This provides greater security to the action carried out on the receiving device 7.
[0040] Furthermore, the control module 5 is an electronic circuit integrated into the on-board interaction system 1. Alternatively, the control module 5 may be a software application or a circuit included in the device 2 integrating the on-board interaction system 1.
[0041] Furthermore, the on-board interaction system 1 comprises a power source 15 intended to supply a voltage to the ultrasonic transducers 3 and possibly to the control module 5 when the latter is also included in the on-board interaction system 1. Alternatively, the power source 15 may be included in the apparatus 2 integrating the on-board interaction system 1.
[0042] It will be noted that for certain applications, the control module 5 can even be integrated into an external device linked to the on-board interaction system 1.
[0043] According to one aspect of an embodiment, the ultrasonic transducers 3 are micro-machined ultrasonic piezoelectric transducers, called PMUT (Piezoelectric Mi-cromachined Ultrasonic Transducers). The PMUT transducers can be made of ceramic or silicon. Other types of transducers can be used.
[0044] [Fig.2] schematically illustrates an ultrasonic transducer used in the on-board interaction system of [Fig.l].
[0045] This example concerns a PMUT 3 transducer comprising a flexible membrane 15 suspended by its periphery on a rigid support 17. The rigid support 17 is for example made of silicon or ceramic. The membrane 15 is fixed, by its lower face, on the upper face of the support 17. The membrane 15 can have a circular, rectangular, or square shape.
[0046] The PMUT transducer 3 further comprises a piezoelectric conversion element 19 fixed to the membrane, on its upper face side. The piezoelectric conversion element comprises two electrodes 21a, 21b.
[0047] The application of a voltage between the electrodes 21a, 21b of the piezoelectric conversion element 19 causes a deformation of the membrane 15 making it possible to generate an ultrasonic acoustic wave. Conversely, a deformation of the membrane 15 generates a voltage which can be used to measure an ultrasonic acoustic wave received by the PMUT transducer 3. This type of transducer is described in detail in the applicant's patent application FR3092680.
[0048] A PMUT 3 transducer can operate at different ultrasonic frequencies depending on its size or the technology used (silicon, ceramic or other). As a non-limiting example, the case of a silicon-type PMUT transducer, operating at 100kHz, is considered here.
[0049] Indeed, [Fig.3] illustrates the pressure curve in Pa as a function of the distance in cm for a silicon PMUT transducer.
[0050] More particularly, this curve comes from measurements carried out for a unitary PMUT 3 transducer at 100kHz operating under a control voltage of 5V. For example, the curve shows that the PMUT 3 transducer generates an acoustic pressure of the order of 0.15 Pa at a distance of 30 cm.
[0051] It will be noted that the acoustic pressure increases almost linearly with the increase in voltage. Thus, for a control voltage of 48 V, the PMUT 3 transducer generates an acoustic pressure of the order of 1.45 Pa at a distance of 30 cm.
[0052] Furthermore, the pressures add up almost linearly. Thus, using, for example, 140 PMUT transducers, a pressure of the order of 200 Pa at 30 cm can be obtained. A pressure of 200 Pa is taken here just as an indication knowing that it is the pressure which produces a haptic effect. Of course, the receiving module 9 can be sensitive to a pressure smaller than 200 Pa.
[0053] The diameter of a circular PMUT transducer is of the order of 800 μm for a silicon type transducer and is of the order of 5 mm for a ceramic type transducer. It will be noted that the diameter depends on the stiffness of the membrane 15, linked to its thickness and its constituent materials. The diameters considered above are indicative and taken as an example in the dimensioning of a matrix or sub-matrix 4 of PMUT transducers 3.
[0054] Thus, by using silicon type PMUT transducers and for a gap of the order of 300 pm between the membranes 15 of the neighboring transducers 3, it is possible to construct a matrix 4 of transducers 3 of the order of 1.5 x 1.5 cm2 generating a pressure of 200 Pa at a distance of 30 cm. It will be noted that the gap of 300 pm between membranes is an indicative gap which is sufficient to allow solidity of the matrix 4 while keeping the membranes close to each other.
[0055] The dimensions of the matrices and / or sub-matrices 4 of transducers 3 can be determined according to the emission frequencies of the PMUT transducers, the technology used (silicon or ceramic), the control voltage thereof, and the sensitivity of the receiver modules 9.
[0056] The table below shows the sizing of some configurations. The first column shows the technology used (silicon or ceramic), the second column shows the surface area of a transducer array, the third column shows the driving voltage, the fourth column shows the distance for a pressure of 200 Pa, the fifth and sixth columns show the pressures exerted at 30 cm and 50 cm respectively, the seventh column shows the number of transducers forming the array, and the eighth column shows the diameter of each transducer. Matrix surface Pimting voltage Distance P = 2GS Pa Pressure at 39 cm Pressure at 50 cm Number of transducers Transducer diameter 4.5-4.5 cm2 12 V 16 cm 107 Pa 82.9 Pa 18 5 mm PWJT ceramic 4.5x4.5 48 V 62 cm 428 Pa 252 Pa ■8 5 mm 16x16cm' 1 ? V 215 cm ! 7 KPs 1.0 kPs 258 5 mm 16x16 cm' 43 V 5$$ CîT: 8.8 4.0 kPb 258 Tectirus Matrix surface Piieta^e tensors Distance P « 200 Pa Pressure at 33 «m Pressure at 39 cm Member of transducers Transducer diameter: U cm 6.8 Pa 3.4 Pa 36 800 um CJTU* 48 V 5 cm 27.2 Pa 53.3 Pa 36 890 pm 7x7 QnyS 12 V 89 cm 0.52 kPs 0.27 kPs 2809 800 pm ?x7 cm2 4 SV 131 cm 2.06 kPa 1.68 kPa 2809 800 jim
[0057] Thus, depending on the desired application, it is possible to have a small, lightweight matrix with a low driving voltage which is very suitable for an on-board system 1. The matrix 4 of transducers can be sized to have an action between a few centimeters and several meters depending on the driving voltage and the sensitivity of the receiver module 9.
[0058] [Fig.4] schematically illustrates the control of the ultrasonic transducers by the control module.
[0059] The control module 5 is configured to control the sub-matrices 4 of transducers 3 with phase shifts between the different sub-matrices 4 so as to focus the flow of acoustic waves emitted at a focusing point 23 at a predetermined distance. This distance may for example be between 1 cm and 300 cm. This makes it possible to generate, in the vicinity of the focusing point, a pressure strong enough to be picked up by the receiver module 9.
[0060] Furthermore, the power source 15 is configured to provide the transducers 3 with a control voltage that can be between 5V and 50V. Advantageously, a control track is used for each sub-matrix 4. Thus, each control track groups together a plurality of transducers 3, which reduces the technological routing and optimizes the surface integration while allowing the acoustic beamforming technique to be carried out.
[0061] Thus, the on-board interaction system 1 can generate a high acoustic pressure (of the order of 200 Pa) while having a high surface integration (from a few mm2 to a few cm2) of transducers 3 and a long range (from a few centimeters to several meters).
[0062] [Fig.5] schematically illustrates an on-board interaction system, according to first and second preferred embodiments of the invention.
[0063] The example of [Fig.5] shows a device 2 (for example, a mobile object) integrating an on-board interaction system 1.
[0064] According to the first embodiment, the on-board interaction system 1 is configured to generate a series of ultrasonic acoustic pulses carrying information intended to be transmitted to a destination device 7. The series of ultrasonic acoustic pulses comprises pulses configured according to a predetermined code, for example like Morse code, understandable by the destination device 7.
[0065] More particularly, the control module 5 in association with a memory 25 storing the information and the coding of acoustic pulses, transforms the digital data into electrical signals and consequently controls the sub-matrices 4 of ultrasonic transducers 3 according to the description in relation to [Fig. 4]. The memory 25 can be included in the control module 5, in the system embedded interaction system 1 or in the device 2 embedding this system 1.
[0066] Upon receipt of the series of ultrasonic acoustic pulses, the receiver module 9 of the destination device 7 transforms these pulses into electrical signals. These signals are then processed and retransformed into digital data by an electronic processing circuit 27 integrated in the destination device 7.
[0067] Thus, data can be transmitted securely through a limited transmission cone 13 from the device 2 integrating the on-board interaction system 1 to the destination device 7.
[0068] Furthermore, the destination device 7 may also include an on-board interaction system 1 allowing the latter to also transmit data to the device 2, thus generating a dialogue between them.
[0069] According to a particular aspect of this first embodiment, the embedded interaction system 1 is intended to be embedded in a set of devices 2 transporting a set of data blocks whose concatenation is necessary for the reconstitution of secure information. In this case, each of the set of devices 2 is configured to transfer the data block that it transports to the destination device 7. The latter is configured to reconstitute the secure information from the set of data blocks. This application makes it possible to carry out data encryption.
[0070] According to the second embodiment of [Fig.5], the on-board interaction system 1 is configured to generate an ultrasonic acoustic pulse carrying a directional pressure (or pressing force) adapted to activate a predetermined function in the destination device 7. For example, the directional pressure can perform a secure and remote mechanical action on a push button, or an acoustic membrane of the receiver module 9, which activates a specific function of the destination device 7.
[0071] Advantageously, the control module 5 is configured to control the sub-matrices 4 of transducers 3 so as to focus the flows of acoustic waves emitted according to determined emission angles to create preferential axes for the emission of the ultrasonic pulses.
[0072] According to a particular application of this embodiment, the on-board interaction system 1 can be integrated into an autonomous mobile device 2 to go into an area that is difficult for a human to access, in order to actuate or activate a certain function.
[0073] According to another particular aspect, the on-board interaction system 1 is intended to generate ultrasonic acoustic pulses configured to interact with several receiving devices 7.
[0074] Furthermore, as previously, the on-board interaction system 1 can be intended to be embedded in a set of devices 2 carrying a set of elementary directional pressures whose sequential concatenation is necessary for the reconstruction of a specific action. In this case, each of the set of devices 2 is configured to transfer the elementary directional pressure that it carries to the destination device 7, thus carrying out an encryption of actions.
[0075] [Fig.6] schematically illustrates a particular application of the on-board interaction system, according to one embodiment of the invention.
[0076] According to this example, the mobile device 2 is a car and the recipient device 7 is a garage door opening mechanism. The on-board interaction system 1 is integrated, for example, in the bumper of the car 2 and the receiver module 9 is integrated in the garage door opening mechanism 7.
[0077] Thus, the opening mechanism 7 is intended to activate the opening of the garage door by emitting an ultrasonic acoustic pulse from the car 2. This action is contactless and the nature of the ultrasonic acoustic pulse is predetermined in a manner specific to the coupling of the two elements: car / door.
Claims
Claims
1. On-board interaction system, characterized in that it comprises a set of ultrasonic transducers (3) controllable by a control module (5) to generate at least one focused flow of ultrasonic acoustic waves, called an ultrasonic acoustic pulse, configured to interact with at least one destination device (7) provided with a receiver module (9) sensitive to said at least one ultrasonic acoustic pulse.
2. 2. System according to claim 1, characterized in that the on-board interaction system (1) is configured to generate a series of ultrasonic acoustic pulses carrying information.
3. System according to claim 1, characterized in that said at least one ultrasonic acoustic pulse carries a directional pressure adapted to actuate a predetermined function in the receiving device (7).
4. System according to any one of the preceding claims, characterized in that the on-board interaction system (1) is intended to be embedded in a mobile or fixed device (2) among the following devices: vehicle, drone, aircraft, machine, remote control device.
5. System according to any one of the preceding claims, characterized in that the embedded interaction system (1) is intended to be embedded in a set of devices (2) to generate a set of elementary interactions whose combination is necessary to create a specific interaction with the recipient device (7).
6. 6. System according to claim 5, characterized in that the set of devices (2) carries a set of data blocks whose concatenation is necessary for the reconstitution of secure information and in that each of said set of devices (2) is configured to transfer the data block that it carries to the recipient device (7) which is configured to reconstitute the secure information from the set of data blocks.
7. 7. System according to claim 5, characterized in that the set of devices (2) carries a set of elementary directional pressures whose concatenation is necessary for the reconstitution of a specific action and in that each of said set of devices is configured to transfer the elementary directional pressure that it door to the destination device (7).
8. 8. System according to any one of the preceding claims, characterized in that the on-board interaction system (1) is intended to generate ultrasonic acoustic pulses configured to interact with several recipient devices (7).
9. 9. System according to any one of the preceding claims, characterized in that the ultrasonic transducers (3) are PMUT type piezoelectric transducers arranged in a set of matrices and sub-matrices (4).
10. 10. System according to claim 9, characterized in that the control module (5) is configured to control the emission of ultrasonic pulses from the sub-matrices (4) with phase shifts between the different sub-matrices (4) so as to focus the emitted waves at a given point in space.
11. 11. System according to any one of the preceding claims, characterized in that each ultrasonic transducer (3) comprises a flexible membrane (15) suspended on a rigid support (17) and a piezoelectric conversion element (19) fixed on the flexible membrane.
12. 12. Recipient device comprising a receiver module configured to capture said at least one ultrasonic acoustic pulse emitted by the on-board interaction system (1) according to any one of claims 1 to 11.
13. 13. Device according to claim 12, characterized in that it is included in a mobile or fixed device.
14. 14. Device according to claim 12 or 13, characterized in that it comprises an on-board interaction system.
15. 15. Mobile or fixed device characterized in that it comprises an on-board interaction system (1) according to any one of claims 1 to 11.
Citation Information
Patent Citations
Ultrasonic transmitter and receiver systems and products using the same
CN101017593A
Virtual, augmented or mixed reality device
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Ultrasound communication system and related methods
US20070167133A1
Ultrasonic Communication Phased Array
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