Title :
Beamformed nearfield imaging of a simulated coronary artery containing a stenosis
Author :
Owsley, Norman L. ; Hull, Andrew J.
Author_Institution :
Submarine Sonar Dept., Naval Underwater Syst. Center, Newport, RI, USA
Abstract :
This paper is concerned with the potential for the detection and location of an artery containing a partial blockage by exploiting the space-time properties of the shear wave field in the surrounding elastic soft tissue. As a demonstration of feasibility, an array of piezoelectric film vibration sensors is placed on the free surface of a urethane mold that contains a surgical tube. Inside the surgical tube is a nylon constriction that inhibits the water flowing through the tube. A turbulent field develops in and downstream from the blockage, creating a randomly fluctuating pressure on the inner wall of the tube. This force produces shear and compressional wave energy in the urethane. After the array is used to sample the dominant shear wave space-time energy field at low frequencies, a nearfield (i.e., focused) beamforming process then images the energy distribution in the three-dimensional solid. Experiments and numerical simulations are included to demonstrate the potential of this noninvasive procedure for the early identification of vascular blockages-the typical precursor of serious arterial disease in the human heart.
Keywords :
angiocardiography; biomedical ultrasonics; diseases; beamformed nearfield imaging; compressional wave energy; elastic soft tissue; human heart; nylon constriction; partial blockage; piezoelectric film vibration sensors array; randomly fluctuating pressure; serious arterial disease; shear wave field; simulated coronary artery; space-time properties; stenosis; surgical tube; turbulent field; urethane; Array signal processing; Arteries; Biological tissues; Focusing; Frequency; Image coding; Piezoelectric films; Sensor arrays; Solids; Surgery; Amplifiers; Biophysics; Blood Flow Velocity; Color; Coronary Disease; Coronary Vessels; Feasibility Studies; Humans; Mathematics; Models, Anatomic; Models, Cardiovascular; Phonocardiography; Time Factors; Urethane;
Journal_Title :
Medical Imaging, IEEE Transactions on