IP Library Granted Patent US 10,447,236
Granted Patent B2
US 10,447,236 · App. 15/273,096 · Granted Oct 15, 2019

Ultrasonic probe

Inventors: Koichi Shibamoto (Otawara, JP); Yasuhisa Makita (Nasushiobara, JP)
Assignee: Canon Medical Systems Corporation
H03H9/205B06B1/0622
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Quick Facts
Patent No.
US 10,447,236
App. No.
15/273,096
Granted
Oct 15, 2019
Kind
B2
Abstract

According to one embodiment, an ultrasonic probe, in which a plurality of piezoelectric vibrators are arrayed in both of an azimuth direction and an elevation direction, includes a piezoelectric body configured to have a piezoelectric effect; and a matching layer configured to be laminated in an ultrasonic radiation direction of the piezoelectric body. The matching layer is divided in the azimuth direction without being divided in the elevation direction. The piezoelectric body is divided into plural parts in both of the azimuth direction and the elevation direction in such a manner that each of the plural parts of the piezoelectric body forms each of the plurality of piezoelectric vibrators.

Claims (24)

1. An ultrasonic probe in which a plurality of piezoelectric vibrators are arrayed in both of an azimuth direction and an elevation direction, the ultrasonic probe comprising:

a piezoelectric body configured to have a piezoelectric effect, wherein the piezoelectric body is divided into plural parts in both of the azimuth direction and the elevation direction, in such a manner that each of the plural parts of the piezoelectric body forms each of the plurality of piezoelectric vibrators; and

a matching layer configured to be laminated in an ultrasonic radiation direction of the piezoelectric body, wherein the matching layer is divided in the azimuth direction without being divided in the elevation direction;

a printed circuit configured to extract respective signals of the plurality of piezoelectric vibrators;

a surrounding electrode configured to be formed around the piezoelectric body so as to extend from an electrode, which is common to the plural piezoelectric vibrators on an ultrasonic radiation direction side, to an end of a surface of the piezoelectric body on a side opposite to the ultrasonic radiation direction side;

a plurality of signal electrodes configured to be formed on the piezoelectric body and to be connected to respective piezoelectric vibrators;

a grounding conductive body configured to be formed on an anterior surface of the printed circuit where the plurality of piezoelectric vibrators are arrayed and to be connected to the surrounding electrode; and

a plurality of signal electrodes configured to be formed on the anterior surface and to be connected to the signal electrodes,

wherein the printed circuit is further configured to

be integrally bonded to the plural piezoelectric vibrators on the anterior surface, and

be wired on a reverse surface of the printed circuit opposite to the anterior surface in such a manner that the respective signals of plural piezoelectric vibrators are separately extracted via the signal electrodes and through-holes, which are formed on the printed circuit and penetrate through the printed circuit.

2. The ultrasonic probe according to claim 1 , further comprising backing material laminated on a surface of the piezoelectric body opposite to a surface where the matching layer is laminated,

wherein the backing material is divided into plural sections in both of the azimuth direction and the elevation direction, in such a manner that each of the plural sections of the backing material forms each of the plurality of piezoelectric vibrators together with each of the plural parts of the piezoelectric body.

3. An ultrasonic probe comprising:

a piezoelectric body configured to have a piezoelectric effect;

a matching layer configured to be laminated in an ultrasonic radiation direction of the piezoelectric body;

a printed circuit configured to extract respective signals of a plurality of piezoelectric vibrators formed by dividing the piezoelectric body into plural parts;

a plurality of signal electrodes configured to be formed on an anterior surface of the printed circuit where the plurality of piezoelectric vibrators are arrayed;

a surrounding electrode configured to be formed around the piezoelectric body so as to cover the piezoelectric body in a cross-section perpendicular to an azimuth direction; and

a grounding conductive body configured to be formed on the anterior surface and to be connected to the surrounding electrode; and

a plurality of signal conductive bodies configured to be formed on the anterior surface and to be connected to the plurality of signal electrodes,

wherein the printed circuit is further configured to

be integrally bonded to the plurality of piezoelectric vibrators on the anterior surface, and

be wired on a reverse side of the printed circuit which is opposite to the anterior surface, in such a manner that the respective signals of a plurality of piezoelectric vibrators are extracted via the plurality of signal electrodes and a plurality of through-holes which are formed on the printed circuit and penetrate through the printed circuit.

Assignments (2)
CHANGE OF NAME Recorded Jun 21, 2019
From: TOSHIBA MEDICAL SYSTEMS CORPORATION
To: CANON MEDICAL SYSTEMS CORPORATION
Reel/Frame 049557/0277 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2016
From: SHIBAMOTO, KOICHI; MAKITA, YASUHISA
To: TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 039835/0142 →
Priority Claims (2)
JP 2015-241745 · Dec 11, 2015 · national
JP 2016-141408 · Jul 19, 2016 · national
Continuity (1)
Related Publication 20170165716A1 · Jun 15, 2017