Ultrasound eye scanning device
US-2024366184-A1 · Nov 7, 2024 · US
US9775584B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9775584-B2 |
| Application number | US-201414168490-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 30, 2014 |
| Priority date | Aug 3, 2011 |
| Publication date | Oct 3, 2017 |
| Grant date | Oct 3, 2017 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
In an ultrasound probe according to an embodiment, a first ultrasound transducer array scans a first scanned plane. A second ultrasound transducer array engages with the first ultrasound transducer array, is provided so as to intersect the first ultrasound transducer array, and scans a second scanned plane different from the first scanned plane. A probe main body is provided with the first ultrasound transducer array and the second ultrasound transducer array, has an opening in a position where the first and the second ultrasound transducer arrays intersect each other, and has a through hole extending to the opening. An engaging part that causes the first and the second ultrasound transducer arrays to engage with each other is configured in such a manner that the angle at which the first and the second ultrasound transducer arrays intersect each other is changeable.
Opening claim text (preview).
What is claimed is: 1. An ultrasound probe comprising: a first ultrasound transducer array used for scanning a first scanned plane; a second ultrasound transducer array that is configured to engage with the first ultrasound transducer array, is provided so as to intersect the first ultrasound transducer array, and is used for scanning a second scanned plane different from the first scanned plane; gears configured to engage the first ultrasound transducer array and the second ultrasound transducer array; and a probe main body that is provided with the first ultrasound transducer array and the second ultrasound transducer array, has an opening in a position where the first and the second ultrasound transducer arrays intersect each other, and has a through hole extending to the opening, wherein the gears include a first gear with projections and a second gear with recesses, the first gear with projections and the second gear with recesses are disposed on central axes of the first ultrasound transducer array and the second ultrasound transducer array, respectively, and an angle at which the first and the second ultrasound transducer arrays intersect each other is changed as a result of the gears being driven while the first gear with projections and the second gear with recesses are engaged with each other. 2. The ultrasound probe according to claim 1 , wherein the first and the second ultrasound transducer arrays are configured to separate from each other and are each configured to be used as an independent ultrasound transducer while being in a separated state. 3. The ultrasound probe according to claim 1 , wherein the gears are configured to drive in such a manner that one of the first and the second ultrasound transducer arrays scans such a cross-sectional plane that minimizes a distance between a puncture target region and a blood vessel. 4. The ultrasound probe according to claim 1 , wherein the gears are configured to drive in such a manner that one of the first and the second ultrasound transducer arrays scans such a cross-sectional plane that maximizes a length of a puncture target region. 5. The ultrasound probe according to claim 1 , wherein the through hole is formed so as to limit an advancing direction of a medical device that advances out of the opening via the through hole. 6. The ultrasound probe according to claim 5 , further comprising: a vibrator configured to cause the medical device inserted in the through hole to vibrate in directions along the through hole. 7. The ultrasound probe according to claim 1 , wherein the probe main body is configured to flow medical fluid through the through hole and flow out the medical fluid via the opening. 8. The ultrasound probe according to claim 1 , wherein the probe main body is configured to receive, through the first ultrasound transducer array and the second ultrasound transducer array, reflected-wave signals used for displaying a first cross-sectional image, a second cross-sectional image, and a three-dimensional image at a same time on a predetermined display. 9. An ultrasound diagnosis apparatus comprising: an ultrasound probe that includes: a first ultrasound transducer array used for scanning a first scanned plane; a second ultrasound transducer array that is configured to engage with the first ultrasound transducer array, is provided so as to intersect the first ultrasound transducer array, and is used for scanning a second scanned plane different from the first scanned plane; gears configured to engage the first ultrasound transducer array and the second ultrasound transducer array; and a probe main body that is provided with the first ultrasound transducer array and the second ultrasound transducer array, has an opening in a position where the first and the second ultrasound transducer arrays intersect each other, and has a through hole extending to the opening; and processing circuitry configured to generate an ultrasound image based on a reflected-wave signal received by the ultrasound probe, and cause a predetermined display to display the ultrasound image generated, wherein the gears include a first gear with projections and a second gear with recesses, the first gear with projections and the second gear with recesses are disposed on central axes of the first ultrasound transducer array and the second ultrasound transducer array, respectively, and an angle at which the first and the second ultrasound transducer arrays intersect each other is changed as a result of the gears being driven while the first gear with projections and the second gear with recesses are engaged with each other. 10. The ultrasound diagnosis apparatus according to claim 9 , wherein the first and the second ultrasound transducer arrays are configured to separate from each other and are each configured to be used as an independent ultrasound transducer while being in a separated state. 11. The ultrasound diagnosis apparatus according to claim 9 , wherein the gears are configured to drive in such a manner that one of the first and the second ultrasound transducer arrays scans such a cross-sectional plane that minimizes a distance between a puncture target region and a blood vessel. 12. The ultrasound diagnosis apparatus according to claim 9 , wherein the gears are configured to drive in such a manner that one of the first and the second ultrasound transducer arrays scans such a cross-sectional plane that maximizes a length of a puncture target region. 13. The ultrasound diagnosis apparatus according to claim 9 , wherein the through hole is formed so as to limit an advancing direction of a medical device that advances out of the opening via the through hole. 14. The ultrasound diagnosis apparatus according to claim 13 , further comprising: a vibrator configured to cause the medical device inserted in the through hole to vibrate in directions along the through hole. 15. The ultrasound diagnosis apparatus according to claim 9 , wherein the probe main body is configured to flow medical fluid through the through hole and flow out the medical fluid via the opening. 16. The ultrasound diagnosis apparatus according to claim 9 , wherein the probe main body is configured to receive, through the first ultrasound transducer array and the second ultrasound transducer array, reflected-wave signals used for displaying a first cross-sectional image, a second cross-sectional image, and a three-dimensional image at a same time on the predetermined display, and the processing circuitry is configured to generate the first cross-sectional image, the second cross-sectional image, and the three-dimensional image, based on the reflected-wave signals received by the probe main body, and cause the predetermined display to display the first cross-sectional image, the second cross-sectional image, and the three-dimensional image at the same time.
Echo-tomography · CPC title
using sensors mounted on the probe · CPC title
for locating instruments · CPC title
Features of the scanning mechanism, e.g. for moving the transducer within the housing of the probe · CPC title
Details of probe positioning or probe attachment to the patient · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.