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所在平台: Udemy |
课程主页: https://www.udemy.com/course/basics-of-medical-imaging-technique-ultrasound/
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课程名称:医疗影像技术基础 - 超声波 概述:本课程为生物医学科学学习者和正在研究超声成像技术的学生提供了重要的价值,特别适合准备生物医学工程GATE考试的人士。超声波专指超过人类可听频率(约20 kHz)的声波,医学影像一般在2-15 MHz的频率范围内进行。本课程涵盖超声波的一般信息和发展,介绍了超声转换器如何通过将磁能、热能和电能转化为机械能来生成声波。当前最有效的医学超声技术是利用压电效应,该效应最早在1880年被雅克和皮埃尔·居里发现。课程讲解了与超声成像相关的转换器技术的重大进展及其材料的优缺点。 课程内容包括影响转换器性能的各种因素,并详细解释了Q因子和四分之一波匹配技术。用于诊断成像的转换器通常采用铁电陶瓷铅锆钛酸盐制造。课程还介绍了超声波的性质及其各种显示模式,如仅显示幅度的A模式、B模式和M模式,以及超声成像线阵转换器的二维和三维成像。 以往的超声系统需要通过手动移动转换器来生成图像,而现代成像技术则通过开发新型转换器实现实时成像。课程介绍了活塞形转换器、线性顺序阵列和线性相控阵转换器等不同类型的设计,以快速引导和聚焦声束。此外,课程探讨了对比增强超声成像技术,利用微气泡与组织回声之间的非线性散射特性进行区分,以及基于编码激励脉冲技术提高超声影像深度的相关方法。 最后一章讨论了超声波通常被认为是最安全的医学影像模式,但高强度的超声脉冲传递能量至组织可能会增加患者的不良反应风险。课程分析了超声的热吸收和空化等生物效应机制,这些效应在治疗超声设备中可以被利用,但在诊断成像中是不可取的。 本课程为掌握超声波医学影像技术提供了系统的理论和实用知识,适合生物医学工程领域的学习与研究。
This course is value addition for learners of biomedical sciences , students started for research about ultrasonic imaging technique and useful for those who are preparing for GATE in biomedical engineering. This course will be useful for those who operates this imaging modality. The term ultrasound refers specifically to acoustic waves at frequencies greater than the maximum frequency audible to humans, which is nominally 20 kHz. Diagnostic imaging is generally performed using ultrasound in the frequency range of 2-15 MHz.The course includes general information and development of ultrasound such as an ultrasound transducer generates acoustic waves by converting magnetic, thermal, and electrical energy into mechanical energy. The most efficient technique for medical ultrasound uses the piezoelectric effect, which was first demonstrated in 1880 by Jacques and Pierre Curie. Many significant advances in ultrasound imaging have resulted from innovation in transducer technology. Construction of transducer materials used with their merits and demerits. Various aspects which influence on performance of transducer. Q factor , quarter wave matching technique is explained in this course. The transducers used for diagnostic imaging have conventionally been fabricated using the ferroelectric ceramic lead zirconate titanate,The course gives information about properties of ultrasonic waves and various display modes available such as A mode which displays only amplitude.B mode and M mode. 2D and 3D imaging of ultrasound imaging linear-array transducers. Previously, ultrasound systems had made an image by manually moving the transducer across the region of interest. Even the faster scanners had required several seconds to generate an ultrasound image, and as a result, only static targets could be scanned. This course describes modern imaging techniques To implement real-time imaging, researchers developed new types of transducers that rapidly steer the acoustic beam. Piston-shaped transducers were designed to wobble or rotate about a fixed axis to mechanically steer the beam through a sector-shaped region. Linear sequential arrays were designed to electronically focus the beam in a rectangular image region. Linear phased-array transducers were designed to electronically steer and focus the beam at high speed in a sector image format. contrast enhanced ultrasound images is to differentiate echoes produced by microbubbles from echoes produced by tissue, which is typically accomplished by exploiting the non-linear scattering characteristics of microbubbles and Tissue harmonic imaging which generates harmonics to create image.Imaging using coded excitation pulses is a technique that was developed to increase the penetration depth of ultrasound imaging systems. A coded excitation system transmits a relatively long duration signal such as a chirp (a sinusoid with 323 ULTRASOUND IMAGING increasing or decreasing instantaneous frequency) or a pulse modulated code, in which a sinusoid is switched on and off in a specific temporal sequence to create a binary code. The last chapter is about Ultrasound which is is generally assumed to be the safest medical imaging modality, but when a high intensity ultrasound pulse is transmitted through tissue, a substantial amount of energy can be transferred from the pulse to the tissue, thereby increasing the risk of adverse effects to the patient. These biological effects can be used beneficially by therapeutic ultrasound devices but are undesirable during diagnostic imaging. The two most important mechanisms for biological effects of ultrasound are thermal absorption and cavitation.