研究目的
To achieve simultaneous axial multifoci imaging using a single acoustical transmission to enhance frame rate while maintaining high lateral resolution and contrast in ultrasound imaging.
研究成果
The SAMI method provides a practical way to achieve high-resolution imaging over an extended depth of field with enhanced frame rate, validated in various experimental setups. It offers similar lateral resolution and CNR to successive focusing but with reduced contrast and increased TI, making it suitable for real-time applications requiring high spatial resolution.
研究不足
The method uses outer elements for shallow foci, reducing intensity and PSLR for depths less than 10 mm. Contrast is lower compared to successive focusing, and thermal index increases by 33%. Implementation is currently with 1D arrays; elevation focus is fixed, limiting resolution in that dimension.
1:Experimental Design and Method Selection:
The method involves designing transmitted signals by superposing axial multifoci waveforms without overlap, using a programmable ultrasound system to control each transducer element's phase and apodization.
2:Sample Selection and Data Sources:
Experiments were conducted in water tanks, tissue-mimicking phantoms (CIRS 040GSE), and ex vivo cow liver samples.
3:List of Experimental Equipment and Materials:
Verasonics Vantage ultrasound system, phased array transducer P6-3, needle hydrophone HNP-0400, positioning system (Newport motion controller ESP 300, Newport 443 series), digital oscilloscope DPO4034, MATLAB software, Field II software.
4:Experimental Procedures and Operational Workflow:
Transmitted waveforms were designed using MATLAB, simulations performed with Field II, and real-time imaging conducted with the Verasonics system. Measurements included resolution, contrast, and safety parameters (MI and TI).
5:Data Analysis Methods:
Data were analyzed using MATLAB for PSF calculations, contrast, CNR, FWHM measurements, and safety indices.
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