Ultrasound transducer matching layers and method of manufacturing
11007686 · 2021-05-18
Assignee
Inventors
Cpc classification
B29C43/003
PERFORMING OPERATIONS; TRANSPORTING
B29K2103/00
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/34
PERFORMING OPERATIONS; TRANSPORTING
B06B1/02
PERFORMING OPERATIONS; TRANSPORTING
B06B1/0644
PERFORMING OPERATIONS; TRANSPORTING
International classification
B06B1/02
PERFORMING OPERATIONS; TRANSPORTING
B29C43/00
PERFORMING OPERATIONS; TRANSPORTING
G10K11/02
PHYSICS
Abstract
An acoustic matching layer where the thickness is defined by a single layer of defined mono-disperse particles. The layer comprises a polymer base in which mono-disperse particles are embedded. The mono-disperse particles can be coated with a solid material that participates in the definition of the acoustic impedance of the layer. The polymer base can include smaller solid particles that participates in the definition of the acoustic impedance of the layer. The invention also provides a method of manufacturing.
Claims
1. A method of manufacturing layers for an ultrasound transducer, comprising: providing an electro-acoustic transduction layer of the ultrasound transducer; and forming an acoustic matching layer of the ultrasound transducer, such that a single layer comprising mono-disperse particles defines a thickness of the acoustic matching layer, and acoustic properties of a volume concentration of said mono-disperse particles contribute to a characteristic acoustic impedance of the acoustic matching layer.
2. The method according to claim 1, wherein in forming the acoustic matching layer, said mono-disperse particles are mixed into a polymer glue resin, and a sample of said mixture is pressured between conformal surfaces so that the sample is squeezed out so that a single layer of mono-disperse particles is left between said conformal surfaces, and curing of the polymer glue resin presents the acoustic matching layer with defined thickness.
3. The method according to claim 2, wherein in forming the acoustic matching layer, one of said conformal surfaces includes one of i) an ultrasound array, and ii) at least one prior acoustic matching layer.
4. The method according to claim 1, wherein in forming the acoustic matching layer, the mono-disperse particles comprises a surface layer of solid material designed to define one of the acoustic impedance of said mono-disperse particles and the acoustic impedance of the acoustic matching layer.
5. The method according to claim 4, wherein in forming the acoustic matching layer, said surface layer comprises one or both of i) an electrically conducting layer, and ii) a thermally conducting but electrically isolating material.
6. The method according to claim 2, wherein in forming the acoustic matching layer, particles other than the mono-disperse particles are also mixed into the polymer glue resin, where said other particles are sized smaller than the mono-dispersed particles to have lesser effect on defining the thickness of the acoustic matching layer as compared to the mono-dispersed particles, while contributing to the acoustic impedance of the acoustic matching layer.
7. The method according to claim 6, wherein in forming the acoustic matching layer, a type and density of said other particles mixed into the polymer glue resin are selected so that the characteristic acoustic impedance of the polymer glue resin mixture closely matches the characteristic acoustic impedance of said mono-disperse particles.
8. The method according to claim 2, wherein in forming the acoustic matching layer, a curing speed of the resin is increased through at least one of i) heating, and ii) vibrations.
9. The method according to claim 1, wherein in forming the acoustic matching layer, the thickness of the acoustic matching layers provides a quarter wave impedance inversion at essentially a central frequency of an operating band of the ultrasound transducer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF EMBODIMENTS
(5) According to an embodiment there is provided an ultrasound transducer array probe arranged as a layered structure comprising at least one layer of transducer array elements and at least one further layer mounted in acoustic contact with said layer of transducer elements. The further layer is a composite material layer comprising a polymer base and a single layer of mono-disperse particles that defines the thickness of said further layer.
(6) An example embodiment according to the invention is shown in
(7) Polymer particles with a size distribution around a defined average in the range of ˜2-200 μm can be manufactured, and such polymer particles are commercially available, for example from Dow Chemical Company. Mono-disperse polymer particles with diameters in the range of 2-200 μm can be manufactured with methods for example as described in U.S. Pat. Nos. 4,336,173 and 4,459,378, and such polymer particles are commercially available, for example from Conpart AS. The particles can be made of polymers with characteristic bulk acoustic impedance of the raw material typically in the range of 1.5-3.5 10.sup.6 kg/m.sup.2s. The polymer particles can be made from for instance styrene, e.g. styrene cross-linked with divinylbenzene. Other styrene monomers of use in the invention include methylstyrene and vinyl toluene. Mixtures of styrene monomers may be used. Another option is particles prepared from acrylic acid esters, methacrylic acid esters, acrylic acids, methacrylic acids, acrylonitrile, methacrylonitrile, vinyl chloride, vinyl acetate and vinyl propionate. Mixtures of any of these monomers can also be used optionally together with the styrene monomers above. All monomers can be cross-linked with divinylbenzene or a diacrylic monomer such as ethane-diol-diacrylate. Some particles may require treatment with base to hydrolyze ester groups to allow cross-linking. The use of a cross-linking agent and hence the formation of a cross-linked particles is preferred.
(8) According to an embodiment of the invention, the polymer particles are coated with surface layers of stiffer materials to manipulate the total stiffness of the particles that can be used to define the acoustic impedance of the layer. The surface layer might be of a material of high electrical (>10 MS/m) and thermal (>50 W/mK) conductivity, for example the metals like Ag (63,429), Cu (58, 401), Au (45, 318), Al (35, 237), Mg (23, 156), Ni (14, 91), or the electrically isolating materials AlN (very low, 285), BeO (very low, 330), where the numbers in parenthesis is the electrical and thermal conductivity of the material in MS/m and W/mK. The electrical semiconductor Si has a high thermal conductivity of 149 W/mK with very low electrical conductivity for un-doped Si. Such layers will influence the total electrical or thermal conductivity of the matching layer. An electrically conducting matching layer can be used for electrical grounding and shielding purposes of the transducer array, while a thermally conducting matching layer can be used for improved cooling of the transducer assembly. Metal surface layers can hence be used for both.
(9) By increasing the thickness of the coating surface layer, the bulk stiffness of the spheres can be increased above that of the polymer core, depending on the type of coating material and surface layer thickness. This can be used to increase the acoustic impedance of the matching layer. To reduce the stiffness of the particles, the polymer core can be made porous, with a porosity of ˜5-75%, where increased porosity will lower the acoustic impedance of the matching layer. Particles with dimensions down to ˜200 nm can also be manufactured and coated with both metal and electrically isolating, thermally conductive material.
(10) An example of a mono-disperse particle with combined surface layer of metal and electrically isolating layer is shown as 200 in
(11) The smaller particles 103 are useful for adjustments of the acoustic impedance of the matching layer. These particles are so small that they find their space between the layer mono-disperse particles 101 without interfering with the definition of the layer thickness. The particles 103 can be of any shape, and does not have to be mono-disperse, but mono-disperse form is an interesting manufacturing method for defined dimension also for these particles.
(12) 301 in
(13)
(14) Using the curved ultrasound array 407 with an added first matching layer 408 as part of the compression die 401 as shown in
(15)
(16) It is also convenient to increase the curing speed of the resin through selected remedies like for example heating, vibrations, etc. according to known methods of curing resins.
(17) In the manufacturing process of the matching layers, it can be difficult to control the lateral distance between the mono-disperse particles 101. To reduce the sensitivity of the acoustic function of the matching layer to exactness and constance in this distance, it is advantages to make the mixture of polymer resin 102 and smaller particles 103 so that the acoustic impedance of this mixture is the same as that of the coated mono-disperse particles.
(18) Thus, while there have shown and described and pointed out fundamental novel features of the invention as applied to preferred embodiments thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention.
(19) It is also expressly intended that all combinations of those elements and/or method steps which perform substantially the same function in substantially the same way to achieve the same results, are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.