Ultrasonic measuring device, examination apparatus and method for operating same
10765403 ยท 2020-09-08
Assignee
Inventors
Cpc classification
A61B5/0095
HUMAN NECESSITIES
A61B5/055
HUMAN NECESSITIES
A61B8/4494
HUMAN NECESSITIES
A61B8/4461
HUMAN NECESSITIES
A61B5/0035
HUMAN NECESSITIES
A61B8/4483
HUMAN NECESSITIES
A61B8/4263
HUMAN NECESSITIES
A61B8/4416
HUMAN NECESSITIES
A61B8/4477
HUMAN NECESSITIES
A61B8/4281
HUMAN NECESSITIES
International classification
A61B8/00
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
A61B5/055
HUMAN NECESSITIES
Abstract
The invention relates to an ultrasonic measuring device including an ultrasonic array configured to detect ultrasonic signals, and a housing. The housing includes an acoustic window portion and a housing wall. The ultrasonic array is arranged in the housing in acoustic contact with the acoustic window portion. The acoustic window portion is configured to adhere to a surface of the object to be examined. The invention further relates to an examination apparatus, which includes at least one such ultrasonic measuring device, and to a method for ultrasonic signal detection, in particular for ultrasound-based imaging.
Claims
1. An ultrasonic measuring device, comprising: an ultrasonic array configured to detect ultrasonic signals, wherein the ultrasonic array is arranged both as an emitter of ultrasonic waves and as a detector of ultrasonic waves in order to generate images of an area to be examined from the ultrasonic signals detected, a housing comprising an acoustic window portion and a housing wall, the ultrasonic array being arranged in the housing in acoustic contact with the acoustic window portion, an electrically actuated actuator device which comprises a piezoelectric ring motor being enclosed by the housing and which is configured for an adjustment and movement of the ultrasonic array relative to the acoustic window portion and the area to be examined, wherein the piezoelectric ring motor comprises at least two piezoelectric actuators and a rotor which is coupled with the ultrasonic array via a drive shaft, and a position sensor using which a spatial position of the ultrasonic measuring device can be detected, and a directional sensor using which the alignment of the ultrasonic array in the housing can be detected, wherein the acoustic window portion is a plastic film which allows a transmission of ultrasonic waves, and comprises an external surface provided with an adhesive material such that the acoustic window portion is configured for an adherence to a surface of the object to be examined, the housing forms an electromagnetic shielding comprising a screening of the ultrasonic array and the piezoelectric ring motor and a balun at a line connection coupled with the housing, wherein the electromagnetic shielding is effective against fields in an MRI tomography device, and the ultrasonic array, the piezoelectric ring motor and the housing are made of magnetic-resonance-compatible materials that do not emit or emit negligible magnetic-resonance signals in reaction to high-frequency fields occurring in an MRI scanner.
2. The ultrasonic measuring device in accordance with claim 1, in which the acoustic window portion has at least one of the following features: the acoustic window portion being arranged detachably from the remaining housing, the acoustic window portion being a disposable product, the plastic film of the acoustic window portion has a screening material, and the acoustic window portion having a self-adhesive film.
3. The ultrasonic measuring device in accordance with claim 2, in which the plastic film has the screening material, and the screening material comprises an electrically conductive sputter layer or is made of conductive material.
4. The ultrasonic measuring device in accordance with the claim 2, in which the acoustic window portion is detachably attached via grip elements to the housing wall.
5. The ultrasonic measuring device in accordance with claim 1, including at least one of the following features: the ultrasonic array can be rotated around an axis parallel to a surface normal of the acoustic window portion, the ultrasonic array can be rotated around an axis which is inclined relative to a surface normal of the acoustic window portion, and the ultrasonic array is movable in a translatory manner.
6. The ultrasonic measuring device in accordance with claim 1, in which the magnetic-resonance-compatible materials comprise at least one of: piezoceramics, piezoelectrically active monocrystals, piezoelectrically active polymers, composite materials made of piezoelectrically active monocrystals and polymers, composite material made of plastic and metallic oxide or metallic powder, metal, conductive adhesive, and plastic.
7. The ultrasonic measuring device in accordance with claim 1, wherein the directional sensor is located within the housing, and the directional sensor is configured to detect the alignment of the ultrasonic array in the housing without an ultrasonic measurement.
8. The ultrasonic measuring device in accordance claim 1, further comprising at least one of a fibre optic device and at least one light source using which light can be directed through at least one of the acoustic window portion and the housing wall onto the object to be examined.
9. An examination apparatus comprising at least one ultrasonic measuring device in accordance with claim 1, and a control device arranged to operate the at least one ultrasonic measuring device and to analyze recorded ultrasonic signals.
10. The examination apparatus in accordance with claim 9, which is arranged in connection with an MRI tomography device.
11. The ultrasonic measuring device in accordance with claim 1, in which the magnetic-resonance-compatible materials comprise at least one of: piezoceramics, piezoelectrically active monocrystals, piezoelectrically active polymers, composite materials made of piezoelectrically active monocrystals and polymers, composite material made of plastic and metallic oxide or metallic powder, metal, conductive adhesive, and plastic.
12. The ultrasonic measuring device in accordance with claim 1, further comprising a connection line coupled to the ultrasonic array and to a control device arranged to operate the ultrasonic measuring device.
13. A method for ultrasonic signal detection, comprising: arranging the external surface of the acoustic window portion of the ultrasonic measuring device in accordance with claim 1 on the surface of an object to be examined; and actuating the at least one ultrasonic measuring device to transmit ultrasonic waves through the acoustic window portion to the surface of the object to be examined.
14. The method in accordance with claim 13, in which the at least one ultrasonic measuring device is actuated for ultrasound-based imaging.
15. The method in accordance with claim 13, in which the at least one of the positioning and continuously moving is conducted for scanning the at least one ultrasonic measuring device for a 3D data detection.
16. The method in accordance with claim 13, further comprising: arranging the object to be examined in an MRI tomography device, and conducting the ultrasound-based imaging during the operation of the MRI tomography device.
Description
(1) Further details and advantages of the invention are described in the following with reference to the attached drawings. The following are shown:
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(10) Embodiments of the invention are described in the following with reference by way of example to an ultrasonic measuring device which is configured as an ultrasonic measuring head for ultrasonic imaging or photoacoustic imaging, particularly in combination with an MRI apparatus. It is emphasised that the application of the invention is not restricted to the examples given but is possible in accordance with other forms of multimodal imaging or other applications of ultrasound, particularly in combination with (radio) therapy methods. Depending on the specific application of the invention, the ultrasonic measuring device can be provided if required with an electromagnetic screening. The majority of the embodiments of the invention show the ultrasonic measuring device with an ultrasonic array which can be moved in the housing and an actuator device. However, the implementation of the invention is not restricted to these embodiments but is also possible with a rigidly arranged ultrasonic array in the housing. Details of the structure and operation of an ultrasonic array, particularly for imaging purposes, and of an MRI apparatus are not described here because these are known from the state of the art.
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(12) The housing 20 comprises an acoustic window portion 21 and a housing wall 22, 23 with which a connecting line 25 for the electrical connection of the ultrasonic array 10 and of the actuator device 30 is coupled with a control device (not shown, see
(13) The ultrasonic measuring device 100 has the following dimensions, for example: diameter of the acoustic window portion 21: 4 cm, diameter of the cover part 23: 2 cm, height of the housing 20: 2 cm, weight of the housing 20 with ultrasonic array 10 and the actuator device 30: 30 g. The housing wall 22 and the cover part 23 are made, for example, from copper or a plastic coated with copper.
(14) The acoustic window portion 21 has a plane film 21.1, for example made of PEEK, with a thickness of 100 m. The film 21.1 is fixed in a holding frame 21.2 made, for example, of copper or a plastic coated with copper, with a circumferential edge, the inner diameter of which is matched to the outer diameter of the housing wall 22. The edge carries the grip elements 24 which are shown in
(15) If an electromagnetic screening of the inner space of the housing is required, the film 21.1 is provided on one side, for example with an electrically conductive layer (e.g. sputter layer made of aluminium, copper, gold, titanium, zinc, etc.) which is electrically connected via the holding frame 21.2 with the screening of the housing wall 22. The electrically conductive layer is preferably provided on the inner side of the film 21.1.
(16) The screening preferably comprises a dual screening of the ultrasonic array 10 and of the actuator device 30. The first shield on ground potential is, for example, formed by the housing wall of copper and the electrically conductive layer. The second shield to dampen electromagnetic fields from the environment of the ultrasonic measuring device is formed, for example, by a sheath made of aluminium and/or copper which extends from the connection line 25 to the ultrasonic array 10. A sheath current filter is provided alternatively or additionally between the housing 20 and the connection line 25.
(17) An adhesive layer is provided on the outer side of the acoustic window portion 21 on film 21.1 and/or the holding frame 21.2 using which the ultrasonic measuring device 100 can be fixed to a body section of the object 1 to be examined. The object 1 (shown partially in
(18) For the use of the ultrasonic measuring device 100 it is adhered with the acoustic window portion 21 to the surface of the object 1 to be examined. The alignment of the ultrasonic array 10 is set using the actuator device 30. The ultrasonic array 10 is turned in the inner space of the housing 20 and/or shifted in a translatory manner, for example, such that the sound field 2 has a predefined alignment in a region to be examined in the object 1. Finally, the ultrasonic array 10 is operated, i.e. the emission of a sound field 2 of ultrasonic waves into the area to be examined and the detection of back-reflected ultrasonic waves, the transmission of the detected ultrasonic signals to the control device and signal processing to generate ultrasonic images.
(19) Alternatively, the ultrasonic measuring device 100 facilitates data recording during the motion of the ultrasonic array 10, e.g. for a volume detection of 3D imaging. For example, it can be provided that the ultrasonic array 10 permanently rotates during operation of the ultrasonic array 10 for data recording.
(20) In an embodiment with a rigidly arranged ultrasonic array 10 in the housing 20, the ultrasonic measuring device 100 is structured as described above whereby, however, the actuator device 30 is replaced by a fixed holder of the ultrasonic array 10 in the housing 20.
(21) Further details of an embodiment of the ultrasonic measuring device 100 with vertical axis of rotation of the ultrasonic array 10 are shown in
(22) The acoustic window portion 21 is connected with the housing wall via the holding frame 21.2 and the grip elements 24. The holding frame 21.2 has an adhesive layer 21.3 on its free surface which is provided to fix the ultrasonic measuring device 100 on the object to be examined.
(23) The ultrasonic array 10 comprises a group of ultrasonic transducer elements 11 and a mounting 12. The ultrasonic transducer elements 11 each comprise a defined number of individual elements and arrangements with a defined geometric size and operational frequency depending on case of application. The mounting 12 has, for example, the shape of a cylindrical disc (see
(24) The actuator device 30 is held in the housing 20 on the edge 22.2. The actuator device 30 comprises a piezoelectric ring motor with piezo actuators 32, a rotor 33, a stator 34, a drive shaft 35 and a bearing 36. The first end of the drive shaft 35 is connected with the rotor 33 and the second end with the ultrasonic array 10, in particular the ultrasonic transducer elements 11. The ultrasonic transducer elements 11 are stuck or screwed to the drive shaft 35.
(25) The piezo actuators 32 are arranged in a ring shape. When an excitation voltage is applied to the piezo actuators 32, the rotor 33 can be caused to turn with the drive shaft 35 and the ultrasonic array 10 around the vertical axis (z-axis). As shown in
(26) Contrary to the illustration, the actuator device 30 may be designed for a translatory movement and have a piezoelectric linear drive (not shown).
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(28) The recesses 21.2 on the outer side of the housing wall 22 comprise an angled groove to accommodate the grip elements 24. The holding frame 21.2 is pushed onto the housing wall 22 to fix the acoustic window portion 21 to the housing wall 22 such that the grip elements 24 engage in the recesses 22.1. By turning the acoustic window portion 21 and the housing wall 22 relative to each other, the acoustic window portion 21 is anchored in the housing wall 22.
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(30) As described above with respect to the
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(32) In this embodiment of the ultrasonic measuring device 100 too, the directional sensor 41 can have a vertical rotating axis as shown diagrammatically in
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(34) Deviating from the illustration, light sources such as LEDs can be arranged in and/or outside the housing 20 in order to generate the excitation light to be coupled in to the object to be examined (not shown).
(35) The sensor device 40 in accordance with a further variant of the invention can comprise a position sensor 42 which is shown diagrammatically in
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(37) The features of the invention disclosed in the description, the drawings and the claims may be of importance both individually and also in combination for the realisation of the invention in their different embodiments.