EP3563768A2

Concave ultrasound transducers and 3d arrays

Abstract

A Multiple Aperture Ultrasound Imaging (MAUI) probe or transducer is uniquely capable of simultaneous imaging of a region of interest from separate apertures of ultrasound arrays. Some embodiments provide systems and methods for designing, building and using ultrasound probes having continuous arrays of ultrasound transducers which may have a substantially continuous concave curved shape in two or three dimensions (i.e. concave relative to an object to be imaged). Other embodiments herein provide systems and methods for designing, building and using ultrasound imaging probes having other unique configurations, such as adjustable probes and probes with variable configurations.

EP3563768A2, drawing sheet 1
Sheet 1 of 21

Term

5 yearsto projected expiry

Projected expiry 12 October 2031, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

9 claims: 1 independent, 8 dependent

  1. 1
    A volumetric ultrasound imaging method comprising:placing an ultrasound probe in position to image the object, the probe comprising an array of transducer elements with elements spaced from one another in at least two dimensions;transmitting an un-focused ultrasound pulse into the object from a first transmit aperture;receiving echoes of the un-focused ultrasound pulse at a first plurality of the transducer elements assigned to a first receive aperture and separately storing volumetric data received by each of the transducer elements of the first receive aperture;accessing calibration data describing a position and orientation of the first transmit aperture and the first receive aperture;coherently averaging volumetric data received by the transducer elements of the first receive aperture to form a first volume;receiving echoes of the un-focused ultrasound pulse at a second plurality of the transducer elements assigned to a second receive aperture and separately storing volumetric data received by each of the transducer elements of the second receive aperture;accessing calibration data describing a position and orientation of the first transmit aperture and the second receive aperture;coherently averaging volumetric data received by transducer elements of the second receive aperture to form a second volume;and incoherently averaging the first volume with the second volume to obtain a combined volumetric image of the object.