Phase-controlled ultrasonic device for generating a pressure focus point
Patent Information
- Application Number
- DE602019075774
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2019-11-29
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2039-11-29
AI Technical Summary
Conventional phased array ultrasound devices require complex circuitry and numerous connections to control the delay of transducer elements, leading to high production costs and inefficiencies in creating pressure focus points, particularly for larger arrays.
A phased array ultrasound device with a simplified electrode configuration, where each transducer element is connected to a row or column electrode, reducing the number of connections to the array's dimensions, and using PZT ferroelectric piezo material for unipolar actuation to minimize phase jumps and improve pressure focus.
The device achieves improved pressure focus with reduced connections and eliminates 180-degree phase jumps, enhancing the available pressure at the focus point without additional transistors, thus simplifying production and operation.
Description
TECHNICAL FIELD
[0001] The present invention relates to a phased array ultrasound device, and to an electronic device for emitting ultrasound. In particular, the invention relates to emitting ultrasonic waves to create a pressure focus point. The invention also relates to a method for operating a phased array ultrasound device. In particular, the phased array ultrasound device and the operating method are provided for two-dimensional (2D) pressure focus point steering of microscale ultrasonic transducer arrays with unipolar actuation force.BACKGROUND OF THE INVENTION
[0002] Conventional Micromachined Ultrasonic Transducers (MUTs) are micro-devices that have the capability to emit high-frequency ultrasound waves. FIG. 7 schematically illustrates a conventional piezoelectric MUT (PMUT) 70.
[0003] The conventional PMUT 70 comprises a mechanical membrane 71 positioned above a cavity (the cavity of the PMUT 70 comprises vacuum). The mechanical membrane 71 comprises two layers of different materials including the bottom layer 76 which is a Polyimide membrane positioned directly above the cavity (vacuum) and the top layer 72 which is a piezoelectric material (Piezoelectric layer (PVDF) 72) and is sandwiched between two electrically actuated electrodes 73, 74, so that when a voltage is applied between the two electrodes 73, 74, the piezoelectric layer 72 senses an electric field. Because of its piezoelectric properties, the piezoelectric material, i.e., of the piezoelectric layer (PVDF) 72, expands or contracts when it senses a positive or negative electric field. The conventional PMUT 70 is fabricated on a glass substrate 75.
[0004] When an alternating voltage is applied at the electrodes 73, 74, the piezoelectric layer 72 alternatively expands and contracts, which leads to a vibration of the whole membrane 71. This vibration of the membrane 71 creates acoustic pressure waves in a fluid above. The vibration frequency can range from a few tens of kilohertz to tens of megahertz. For example, when the above fluid is air, the conventional PMUT 70 may have a vibration frequency of 500 kilohertz.
[0005] When multiple MUTs are connected together in arrays, it may be become possible to focus the pressure to a focus point at a given elevation above the array. FIG. 8 is an image of an array 80 of fabricated PMUTs.
[0006] As an example of possible dimensions, the array (e.g., such as the array 80 illustrated in FIG. 8) can be 2 cm by 2 cm large, and the pressure focus point can be formed about 1 cm above the center of the array.
[0007] Creating the pressure focus point can be done by combining the emitted acoustic pressure waves of all individual MUTs in the array. For instance, for a pressure focus point at 1 cm above the center of the array, the individual MUTs must have a harmonic vibration, which is more and more delayed as MUTs farther away from the array's center are considered. This is, because for MUTs that are located farther away from the center, the travelling distance of their acoustic pressure wave to the pressure focus point is longer than for MUTs that are just below the pressure focus point, i.e., that are close to the center of the array.
[0008] FIG. 9 illustrates the creation of a pressure focus point using MUTs. The pressure focus point is created based on appropriate delays of the individual MUT vibrations, such that the emitted acoustic pressure waves are focused to the focus point, at which the pressure is much larger than around it.
[0009] A pressure focus point can be used, for example, for haptic feedback, i.e., to give pressure feedback at a given position to a user of an electronic device, such as a smartphone, in order to provide a virtual object (smartphone buttons, etc.). For a 32 by 32 (32x32) MUT array, the delay that has to be applied to every individual MUT, to get the highest pressure at the focus point as shown in FIG. 10. The pressure focus point is about 1 cm above the center of the array, and the array size is 2cm by 2 cm. The MUT diameter is about 500 µm. As it is expected, the delay increases when considering MUTs that are farther away from the center of the array.
[0010] Conventional phased array ultrasound devices and methods have the disadvantage that, in order to create the pressure focus point, the delay of a set of transducer elements needs to be controlled. For example, the delay of each individual transducer element in an array may be required to be controlled. This typically requires a wire connection for each transducer element. For larger arrays (for example, for 32x32 arrays or even larger arrays) this leads to a rather large numbers of connections (32x32 = 1024 connections).
[0011] Moreover, a relatively complex circuitry is required, which may increase the production cost of the conventional phase array ultrasound devices.
[0012] US2017 / 205500 A1 discloses an ultrasonic probe and an ultrasonic apparatus, wherein a first voltage control signal having a first phase delay is applied to a first electrode and a second voltage control signal is applied to a second electrode.
[0013] KR2016 / 0075019 A discloses a display device that has a touch detection unit, an actuator, and a display unit, wherein a first voltage control signal having a first phase delay is applied to a vertical electrode and a second common ground signal is applied to a horizontal electrode.
[0014] US2007 / 228877 A1 discloses a signal control method for capacitive micromachined ultrasonic transducers.
[0015] US2015 / 013462 A1 discloses an ultrasound diagnostic device and an ultrasound probe.
[0016] Although there exist phased array ultrasound devices, and methods of operating such devices, it is generally desired to have an improved and simpler device and method, e.g., for creating a pressure focus point for providing haptic feedback.SUMMARY OF THE INVENTION
[0017] In view of the above-mentioned disadvantages, embodiments of the present invention aim to provide an improved phased array ultrasound device, an improved electronic device, and a method of operating the phased array ultrasound device.
[0018] In a first attempt for improving the conventional devices and methods, an example of an array ultrasound device and method was realized by the inventors. This device is described in the following, because the embodiments of the present invention base on this example.
[0019] FIG. 11A and FIG. 11B show schematic views of an arrangement of lower electrodes (FIG. 11A) and upper electrodes (FIG. 11B), respectively, of said example of the phased array ultrasound device 110.
[0020] In order to avoid a large number of connections, as in the conventional devices, a plurality of lower electrodes 101 are electrically connected below the piezoelectric layer 103 of the membrane, and a plurality of upper electrodes 102 are electrically connected above the piezoelectric layer 103 of the membrane. In particular, the connections are such that only a number of wires is required to actuate the array, wherein the number is equal to the number of rows plus the number of columns in the array. This corresponds to much fewer connections / wires (32+32 = 64, instead of 1024 in the conventional devices).
[0021] As it can be derived from FIG. 11A, each lower electrode 101 may connect a row of transducer elements 111 in a 2D array. Moreover, as it can be derived from FIG. 11B, each upper electrode 102 may connect a column of transducer elements 111 in the 2D array.
[0022] In other words, the lower electrode 101 of all individual transducer elements 111 in a same row of the array is connected together as illustrated in FIG.11A (the upper electrodes 102 have been removed for clarity in the illustration). Moreover, the upper electrode 102 of all individual transducer elements 111 in a same column of the array is connected together as illustrated in FIG. 11B (the lower electrodes 101 have been removed for clarity in the illustration).
[0023] With the arrangement of the connections described based on FIG. 11A and FIG. 11B, the example of the phased array ultrasound device 110 may be configured to move the pressure focus point in any direction along the array, by just energizing another set of rows and columns of transducer elements 111.
[0024] For example, the phased array ultrasound device 110 may actuate the array to create a pressure focus point based on electrically actuating the rows and columns of the transducer elements 111, so that the central column and the central row (central meaning that it passes right below the pressure focus point) have a phase delay, such that the corresponding transducer elements 111 are actuated with an optimal delay to focus onto the pressure focus point.
[0025] The optimal delay may be, for example, identical to the "1D" focusing delay, i.e., the delay that would be applied to each transducer element 111 in the row or column, if there was a single row or column. All transducer elements 111 that are not on the central row and column do not have the perfect optimal delay, but managing to still get a close to optimal delay everywhere is the goal.
[0026] At next a mathematical description is provided. For example, it may be assumed that the transducer elements 111 driven in the row-column (the procedure described above) are driven by an actuation voltage that is equal to the difference of the corresponding row-voltage and column-voltage (both voltages are referenced to a common ground electric potential).
[0027] If the transducer element 111 in a given row R, and a given column C is actuated with row-voltage V R = V 0 sin(2πf 0 t + ϕ R ) and the column-voltage V C = V 0 sin(2πf 0 r + ϕ C ) then the transducer element 111 actuation voltage can be determined according to Eq. (1): V MUT = V R − V C = V 0 sin 2 πf 0 t + ϕ R − V 0 sin 2 πf 0 t + ϕ C = 2 V 0 cos 2 πf 0 t + 1 2 ϕ R + ϕ C ⋅ sin 1 2 ϕ R − ϕ C .
[0028] Furthermore, since the transducer element 111 in the center of the array has a reference actuation phase o, the row phases ϕ R required to have the central column actuated in an optimal way can be taken such that the transducer element 111 delay 1 2 ϕ R + ϕ C on the central column (i.e., 1 2 ϕ R + 0 = 1 2 ϕ R ) gives the optimal 1D focus-delay.
[0029] Furthermore, the row driving voltage delays may be selected equal to 2ϕ R , where ϕ R is the optimal delay for a 1D row focusing. Similarly for the columns it may be possible to use a column driving voltage delay equal to 2ϕ C , where ϕ C is the optimal delay for a 1D column focusing (identical to the delay for the 1D row focusing if the focus is above the center of a square array).
[0030] Note that the peak actuation voltage sensed by each transducer element 111 in the row-column driving scheme described above depends on the position in the array due to the factor of sin 1 2 ϕ R − ϕ C .
[0031] Reference is now made to FIG. 12A and FIG. 12B, which show a diagram illustrating a force across PMUTs of the transducer elements 111 in an array for forming a desired combined ultrasound wave (FIG. 12A), and a diagram illustrating differences between phase delays (FIG. 12B).
[0032] The peak driving voltage of each PMUT in a 36×36 array focusing in air at 1 cm above the array (array pitch is 600 um, resonance frequency of the PMUTs is 500 kHz) is illustrated as a relative fraction of the driving voltage V 0 . Moreover, some of the PMUTs see 2V 0 , the double of the peak electric actuation voltage (due to the differential driving approach).
[0033] Additionally, with the driving method described above, each PMUT in the 36×36 PMUT array (of the phased array ultrasound device 110) sees an actuation delay that is illustrated on the FIG. 12B.
[0034] However, although this actuation technique requires much less wire connections to the outside, it comes with a (severe) drawback. In particular, 180 degrees jumps appear at many locations in the array. These jumps can dramatically lower the pressure available at the pressure focus point, since a 180 degree error corresponds to a negative pressure contribution at the focus point. The jumps also make it more complicated to reliably create a haptic pressure pattern with such a driving scheme.
[0035] One way to solve this issue is, for example, to add an extra transistors below each transducer element 111, in order to have the possibility to flip the applied voltage. However, this method increases both the complexity and possibly as well the production cost of the phase array ultrasound apparatus.
[0036] An objective of the present invention is thus further to provide an improved array of transducer elements for an improved phased array ultrasound device, in which the array of the transducer elements is able to create an improved pressure focus point. In particular, a number of connections should be reduced in comparison to the conventional devices. At the same time, a phase delay map of the phased array ultrasound device, according to embodiments of the invention, should be improved without using any additional switch transistors. Further, 180 degrees phase jumps should be reduced (substantially avoided).
[0037] The objective is achieved by the embodiments of the invention provided in the enclosed independent claims. Advantageous implementations of these embodiments are defined in the dependent claims. In the following, parts of the description and drawings referring to embodiments which are not covered by the claims, in particular those referring to Micromachined Ultrasonic Transducers (CMUTs) comprising a capacitive material, are not presented as embodiments of the invention, but as examples useful for understanding the invention.
[0038] In particular, embodiments of the invention use transducer elements (e.g., MUTs) exhibiting a force in a same direction to improve the phase delay map of the array.
[0039] A first aspect of the invention provides a phased array ultrasound device, comprising: a plurality of piezoelectric transducer elements arranged in a two dimensional (2D) array; a plurality of first electrodes, each first electrode extending along a first direction; and a plurality of second electrodes, each second electrode extending along a second direction; wherein each piezoelectric transducer element is associated with one first electrode and one second electrode; wherein each piezoelectric transducer element comprises a PZT ferroelectric piezo material located between its associated first electrode and second electrode, and wherein when the piezoelectric transducer element is actuated based on a voltage control signal applied to its associated first electrode and second electrode, the PZT ferroelectric piezo material has a deflection actuation curve, wherein two values of the applied voltage control signal having a same magnitude and respective opposed polarity produce a deflection into a same direction, and the deflection of the PZT ferroelectric piezo material induces a vibration force or an oscillation force onto the piezoelectric transducer element, and induces the piezoelectric transducer element to emit an ultrasonic wave; and wherein the phased array ultrasound device is configured to create a pressure focus point above or below the 2D array by actuating a set of transducer elements to form a combined ultrasonic wave. Each first electrode connects a row of piezoelectric transducer elements in the 2D array and each second electrode connects a column of piezoelectric transducer elements in the 2D array. Then, the phased array ultrasound device is further configured to apply, to a given first electrode, a first voltage control signal having a first phase delay, in order to actuate the piezoelectric transducer elements associated with the given first electrode according to the first phase delay, and the phased array ultrasound device is further configured to apply, to a given second electrode, a second voltage control signal having a second phase delay, in order to actuate the piezoelectric transducer elements associated with the given second electrode according to the second phase delay.
[0040] Each first electrode may extend below the 2D array, and each second electrode may extend above the 2D array, or vice versa. The phased array ultrasound device may be used, for example, for providing a haptic feedback. To this end, it may be implemented into an electronic device, like a smartphone.
[0041] The phased array ultrasound device of the first aspect may have the advantage of obtaining the maximum possible pressure at a given focus point (for example, without requiring any extra transistors in the array compared to the phased array ultrasound device 110 of the first attempt), and with a dramatically reduced number of connections (compared to full individual actuation done in the conventional devices).
[0042] In particular, the phased array ultrasound device may efficiently address the problem of 180 degrees phase jumps as occurs in the phased array ultrasound apparatus 110 of the first attempt. Notably, by decreasing (e.g., eliminating) the 180 degrees phase jumps, the phased array ultrasound device according to embodiments of the present invention may increase the pressure available at the pressure focus point.
[0043] The phased array ultrasound device of the first aspect may thus provide an improved pressure at the focus points. Moreover, instead of adding transistors to every actuator (in order to deal with the 180 degrees phase jumps) a specific row-column driving combined with the unipolar-actuated piezoelectric transducer elements is used in the phased array ultrasound device of the first aspect.
[0044] In particular, using a PZT ferroelectric piezo material, may provide the advantage of controlling (e.g., reducing) phase jumps, and as a consequence the available pressure at the focus point may be improved.
[0045] In a further implementation form of the first aspect, the phased array ultrasound device is configured to obtain position information corresponding to a desired pressure focus point to be created; determine a combined ultrasonic wave based on the position information, which is required for creating the desired pressure focus point; and determine the set of piezoelectric transducer elements to be actuated according to the required combined ultrasonic wave.
[0046] In a further implementation form of the first aspect, a total number of electrodes in the phased array ultrasound device is equal to a number of rows plus a number of columns in the 2D array.
[0047] Arranging the electrodes in such a configuration has the advantage that it is not required to actuate individually every single transducer element. The actuation only requires a number of connections, which is equal to the number of rows plus the number of columns in the array, instead of requiring the product of the two.
[0048] A second aspect of the invention provides an electronic device, comprising a display; and a phased array ultrasound device according to the first aspect or one of the implementation form of the first aspect; wherein the phased array ultrasound device is arranged in or below the display, and is configured to create a pressure focus point above the display.
[0049] The electronic device may be, for example, a smartphone, a tablet, a display, a personal computer, etc. Moreover, the phased array ultrasound device may be used for creating the pressure focus point, e.g., for providing haptic feedback (feeling virtual objects due to the focused pressure beams).
[0050] For example, the electronic device may be a smartphone. Moreover, it may be possible to feel the smartphone buttons one centimeter above the screen by adding an extra PMUT array layer on the smartphone.
[0051] A third aspect of the invention provides a method of operating a phased array ultrasound device according to the first aspect or one of the implementation form of the first aspect, wherein the method comprises determining a combined ultrasonic wave, which is required for creating a certain pressure focus point above or below the 2D array; determining, for a set of piezoelectric transducer elements in the 2D array, voltage control signals for creating the determined combined ultrasonic wave with the set of piezoelectric transducer elements; and creating the certain pressure focus point by actuating the set of piezoelectric transducer elements by applying the determined voltage control signals to the first electrodes and second electrodes associated with the set of piezoelectric transducer elements.
[0052] In an implementation form of the third aspect, the method further comprises obtaining position information corresponding to the certain pressure focus point to be created; and determining the combined ultrasonic wave based on the position information.
[0053] The method of the third aspect achieves the same advantages as the phased array ultrasound device of the first aspect and may be extended by respective implementations as described above for the device of the first aspect.BRIEF DESCRIPTION OF THE DRAWINGS
[0054] The above described aspects and implementations are explained in the following description of embodiments with respect to the enclosed drawings: FIG. 1shows a schematic view of a phased array ultrasound device, according to an embodiment of the invention. FIG. 2shows a schematic view of an electronic device, according to an embodiment of the invention. FIG. 3shows a diagram illustrating the butterfly unipolar deflection-actuation curve of a PZT. FIG. 4A-Bshow a diagram illustrating a force across CMUTs of transducer elements in an array for forming a desired combined ultrasound wave (FIG. 4A), and a diagram illustrating differences between phase delays (FIG. 4B). FIG. 5shows a simulation result performed on the pressure focusing of a large array of PMUTs with and without unipolar actuation. FIG. 6shows a flowchart of a method for operating a phased array ultrasound device, according to an embodiment of the invention. FIG. 7shows a schematic view of a conventional PMUTs. FIG. 8shows an image of a fabricated 64x64 array of PMUTs. FIG. 9shows a diagram illustrating the creation of a focusing point using the MUTs. FIG. 10shows a diagram illustrating the delay that has to be applied to every individual MUT of a 32x32 MUT array for obtaining the highest pressure at the focus point. FIG. 11A-Bshow a diagram illustrating a force across PMUTs of transducer elements in an array for forming a desired combined ultrasound wave (FIG. 11A), and a diagram illustrating differences between phase delays (FIG. 11B). FIGS. 12A-Bshow schematic views of exemplary arrangement of first electrodes (FIG. 12A) and second electrodes (FIG. 12B) of the phased array ultrasound device according to an embodiment of the invention. DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0055] FIG. 1 shows a phased array ultrasound device 10, according to an embodiment of the invention.
[0056] The phased array ultrasound device 10 comprises a plurality of transducer elements 11 arranged in a two dimensional (2D) array 4. Further, it comprises a plurality of first electrodes 1, each first electrode 1 extending along a first direction, and, for example, below the 2D array 4. Further, it comprises a plurality of second electrodes 2, each second electrode 2 extending along a second direction, and, for example, above the 2D array 4.
[0057] Each transducer element 11 (of the phased array ultrasound device 10) is associated with one first electrode 1 and one second electrode 2. Furthermore, each transducer element 11 comprises a material 3, which is located between its associated first electrode 1 and second electrode 2. Each transducer element 11 is configured to emit an ultrasonic wave induced by a vibration force or an oscillation force of its material 3, when the transducer element 11 is actuated based on control signals applied to its associated first electrode 1 and second electrode 2. Furthermore, each transducer element 11 has a unipolar actuation force direction.
[0058] Moreover, the phased array ultrasound device 10 is configured to create a pressure focus point above or below the 2D array 4, by actuating a set of transducer elements 11 to form a combined ultrasonic wave.
[0059] The phased array ultrasound device 10 uses an array of MUTs as the transducer elements 11, in which each MUT has a unipolar force direction. The phased array ultrasound device 10 improves the phase delay map of the array, without adding any extra switch transistor in the array.
[0060] The material is based on a vibrating material, a piezoelectric material, which is used for providing a piezoelectric actuation, or, in examples not encompassed by the wording of the claims, it may be a capacitive material (for example, it may be just a vacuum) and an electrostatic force may create an oscillating force in the phased array ultrasound device.
[0061] The phased array ultrasound device 10 may solve the problem of 180 degrees phase jumps, which occur in the conventional devices. The phased array ultrasound device 10 may thus provide an improved (higher) pressure at the pressure focus point.
[0062] Reference is now made from FIG. 2, which shows an electronic device 20, according to an embodiment of the invention.
[0063] The electronic device 20 comprises a display 21; and a phased array ultrasound device 10. The electronic device 20 may be, for example, a smartphone. The phased array ultrasound device is 10 of the electronic device 20 is arranged in or below the display 21, and is configured to create a pressure focus point above the display 21. For example, the phased array ultrasound device 10 may comprise a plurality of transducer elements 11, which are arranged in a 2D array 4; a plurality of first electrodes 1, each first electrode 1 extending along a first direction, and, for example, above the 2D array 4; and a plurality of second electrodes 2, each second electrode 2 extending along a second direction, and, for example, below the 2D array 4.
[0064] Furthermore, each transducer element 11 of the phased array ultrasound device 10 of the electronic device 20 may be associated with one first electrode 1 and one second electrode 2. Each transducer element 11 comprises a material 3 located between its associated first electrode 1 and second electrode 2, and is configured to emit an ultrasonic wave induced by a vibration force or an oscillation force of its material, when the transducer element 11 is actuated based on control signals applied to its associated first electrode 1 and second electrode 2. Each transducer element 11 has a unipolar actuation force direction.
[0065] Moreover, the phased array ultrasound device 10 of the electronic device 20 is configured to create a pressure focus point above or below the 2D array 4, by actuating a set of transducer elements 11 to form a combined ultrasonic wave. The electronic device 20 may be configured to provide haptic feedback (e.g., by using the phased array ultrasound device 10).
[0066] The bove mentioned driving scheme is used (e.g., for the phased array ultrasound device 10) in combination with arrays of transducer elements 11, in which each transducer element 11 has the unipolar force direction (as opposed to the bipolar force direction of the PMUT array described above, where the force on the PMUT membrane could be pointing upwards AND downwards).
[0067] Moreover, it may be possible to improve the phase delay map of the array, without adding any extra switch transistor in the array.
[0068] Examples of MUTs having a unipolar force direction are PMUTs with, e.g., a PZT ferroelectric piezo material and capacitive micromachined ultrasonic transducers (CMUTs).
[0069] The transducer elements 11 of the phased array ultrasound device 10 comprise piezoelectric transducer elements, in particular piezoelectric MUTs (PMUTs); and the material 3 comprises a PZT ferroelectric piezo material, which shows a butterfly unipolar deflection -actuation curve.
[0070] FIG. 3 is a diagram illustrating the butterfly unipolar deflection-actuation curve of a PZT. The PZT is used by the phased array ultrasound device 10.
[0071] Moreover, in some examples not encompassed by the wording of the claims, the transducer elements 11 of the phased array ultrasound device 10 may comprise capacitive transducer elements, in particular comprise capacitive (CMUTs).
[0072] For example, the material 3 may comprise a capacitive material, and the phased array ultrasound device 10 may be configured to actuate each transducer element 11 by applying an AC voltage without DC bias, as the control signals, to its associated first electrode 1 and second electrode 2.
[0073] The actuation of the CMUTs may arise from an electrostatic force between two electrically actuated electrodes. While the CMUT driving force is typically made artificially "bipolar" by adding a constant DC bias voltage, the electrostatic force is intrinsically nonlinear since it is proportional to the square of the applied voltage. However, when only an AC voltage V is applied to the CMUT (of the phased array ultrasound device 10) the force is proportional to V 2< . It is therefore always in the same direction no matter the sign of V.
[0074] For instance, the actuation force and driving phase in the 36×36 array example is affected by the square term of the CMUT electrostatic force. This test case is selected for ease of mathematical computation since the absolute value operator otherwise required for the PZT PMUT is not as simple and clean to treat in a few equations, without limiting the embodiments of the present invention.
[0075] If the 36×36 array described above comprises CMUTs with only an AC actuation (no DC bias), then each CMUT would be subject to an electrostatic driving force proportional to V 2< , that is (the proportionality constant is disregarded as it only depends on geometrical / material parameters), according to Eq. (2): F = 2 V 0 cos 2 πf 0 t + 1 2 ϕ R + ϕ C ⋅ sin 1 2 ϕ R − ϕ C 2 which can be mathematically developed according to Eq. (3): F = 4 V 0 2 cos 2 2 πf 0 t + 1 2 ϕ R + ϕ C ⋅ sin 2 1 2 ϕ R − ϕ C
[0076] Thus, using a simple trigonometry technique, the Eq. (4) can be derived: F = 4 V 0 2 1 2 + 1 2 cos 4 πf 0 t + 2 2 ϕ R + ϕ C ⋅ sin 2 1 2 ϕ R − ϕ C
[0077] A constant (static) force term is provided plus a harmonic electric force at double the electric actuation frequency and with a now doubled phase delay. Moreover, in order to still obtain the CMUT membrane resonance frequency, the driving method mentioned above has to be (slightly) adapted, i.e., the electric actuation frequency may be halved. Also, the phase delays may be halved as well in order to guarantee the optimal phase delays on the central row and column.
[0078] By using the above configuration of the phased array ultrasound device 10, the problem of the 180 degrees phase jumps in the above equation is overcome, since the cause of it (i.e., the sine term that was flipping its sign) is now squared and thus is always positive. With the described driving technique on the 36×36 CMUT array the phase delay map is updated, as it is illustrated in FIG. 4A and FIG. 4B.
[0079] Reference is now made to FIG. 4A and FIG. 4B, which show a diagram illustrating force across CMUTs of transducer elements 11 in an array for forming a desired combined ultrasound wave (FIG. 4A), and a diagram illustrating differences between phase delays (FIG. 4B).
[0080] It can be derived from FIG. 4A and FIG. 4B that the phased array ultrasound device 10 (dramatically) improves and makes smoother the phase (delay) map, which may potentially lead to an easier driving for creating haptic pressure patterns. Since the phase is closer to optimal, one can also expect higher output pressures. The force applied to each CMUT is shown in FIG. 4A.
[0081] Furthermore, in the case of the unipolar PZT (PMUT) array is used in the phased array ultrasound device 10), the phase map would be according to FIG. 4B but the force on each PMUT would still have the same magnitude as the one shown before (FIG. 12B).
[0082] Furthermore, simulations performed on the pressure focusing of a large array of PMUTs with and without unipolar actuation are shown in FIG. 5.
[0083] As it can be derived from FIG. 5, when the proposed driving scheme is applied to bipolar driven PMUTs the pressure drops to less than 25% at the focus point (and the focusing does not work correctly anymore) while when the technique is used with a unipolar driven PMUT array (peak voltage across PMUTs is kept below 1x the driving voltage (the factor 2 voltage increase is scaled down) to be comparable to the optimally-driven PMUT array then the pressure at the focus point is 67% of the pressure created by an optimally driven PMUT array.
[0084] FIG. 6 shows a method 100 according to an embodiment of the invention for operating a phased array ultrasound device 10.
[0085] The method 100 may be carried out by the phased array ultrasound device 10 and / or the electronic device 20, as described above.
[0086] The method 100 comprises a step S101 of determining a combined ultrasonic wave, which is required for creating a certain pressure focus point above or below the 2D array.
[0087] The method 100 further comprises a step S102 of determining, for a set of transducer elements in the 2D array, control signals for creating the determined combined ultrasonic wave with the set of transducer elements.
[0088] The method 100 further comprises a step S103 of creating the certain pressure focus point by actuating the set of transducer elements by applying the determined control signals to the first electrodes and second electrodes associated with the set of transducer elements.
Claims
1. A phased array ultrasound device (10), comprising: a plurality of piezoelectric transducer elements (11) arranged in a two dimensional, 2D, array (4); a plurality of first electrodes (1), each first electrode (1) extending along a first direction; and a plurality of second electrodes (2), each second electrode (2) extending along a second direction; wherein each piezoelectric transducer element (11) is associated with one first electrode (1) and one second electrode (2); wherein each piezoelectric transducer element (11) comprises a PZT ferroelectric piezo material (3) located between its associated first electrode (1) and second electrode (2), and wherein, when the piezoelectric transducer element (11) is actuated based on a voltage control signal applied to its associated first electrode (1) and second electrode (2), the PZT ferroelectric piezo material has a deflection actuation curve, wherein two values of the applied voltage control signal having a same magnitude and respective opposed polarity produce a deflection into a same direction, and the deflection of the PZT ferroelectric piezo material (3) induces a vibration force or an oscillation force onto the piezoelectric transducer element (11), and induces the piezoelectric transducer element (11) to emit an ultrasonic wave; and wherein the phased array ultrasound device (10) is configured to create a pressure focus point above or below the 2D array (4) by actuating a set of piezoelectric transducer elements (11) to form a combined ultrasonic wave; wherein: each first electrode (1) connects a row of piezoelectric transducer elements (11) in the 2D array (4) and each second electrode (2) connects a column of piezoelectric transducer elements (11) in the 2D array; wherein the phased array ultrasound device (10) is further configured to: apply, to a given first electrode (1), a first voltage control signal having a first phase delay, in order to actuate the piezoelectric transducer elements (11) associated with the given first electrode (1) according to the first phase delay; and apply, to a given second electrode (2), a second voltage control signal having a second phase delay, in order to actuate the piezoelectric transducer elements (11) associated with the given second electrode (2) according to the second phase delay.
2. The phased array ultrasound device (10) according to claim 1, further configured to: obtain position information corresponding to a desired pressure focus point to be created; determine a combined ultrasonic wave based on the position information, which is required for creating the desired pressure focus point; and determine the set of piezoelectric transducer elements (11) to be actuated according to the required combined ultrasonic wave.
3. The phased array ultrasound device (10) according to claim 1 or 2, wherein: a total number of electrodes in the phased array ultrasound device (10) is equal to a number of rows plus a number of columns in the 2D array (4).
4. Electronic device (20), comprising: a display (21); and a phased array ultrasound device (10) according to one of the claims 1 to 3; wherein the phased array ultrasound device is (10) arranged in or below the display (21), and is configured to create a pressure focus point above the display (21).
5. A method (100) of operating a phased array ultrasound device (10) according to one of the claims 1 to 3, wherein the method (100) comprises: determining (S101) a combined ultrasonic wave, which is required for creating a certain pressure focus point above or below the 2D array (4); determining (S102), for a set of piezoelectric transducer elements (11) in the 2D array (4), voltage control signals for creating the determined combined ultrasonic wave with the set of piezoelectric transducer elements (11); and creating (S103) the certain pressure focus point by actuating the set of piezoelectric transducer elements (11) by applying the determined voltage control signals to the first electrodes (1) and second electrodes (2) associated with the set of piezoelectric transducer elements (11).
6. The method (100) according to claim 5, further comprising: obtaining position information corresponding to the certain pressure focus point to be created; and determining the combined ultrasonic wave based on the position information.