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An Assessment of the Thermal Efficiency of Capacitive Micromachined Ultrasonic Transducers

机译:对电容微机械超声换能器热效率的评估

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Capacitive Micromachined Ultrasonic Transducers (CMUT's) are well known for their exceptional frequency bandwidth, short time response, and inherent flexibility in their design and fabrication process, which are all quantified and documented very well. There are other known attributes of CMUT's that make them an attractive transducer choice in various applications. One of these attributes is the thermal efficiency which is quantified in this paper as the ratio of the acoustical output power to the heat generated inside the probe. Because they don't have a significant internal loss mechanism (other than the lens which is not needed in some cases), CMUT's are expected to be thermally efficient. Thermal efficiency is critical in several applications in medical imaging. For example, in color Doppler mode, the penetration depth and resolution is ultimately limited by the heat generated in the probe. In general, in applications that use long bursts of pulsed excitations, heat generated in the probe is a limiting factor. Other examples of such applications are therapeutics and B-mode imaging using coded excitation. In these applications CMUT's have the potential to overcome the thermal barrier. Although CMUT's are commonly accepted to be thermally efficient, this property has not been investigated and quantified widely. This paper assesses the thermal efficiency of the CMUT's experimentally and compares it to that of the state-of-the-art PZT probes. In these experiments the total acoustic output power is measured by absolute pressure measurements, and the heat generated inside the probe is estimated by temperature measurements at the probe surface. Thermal efficiency of the CMUT and PZT probes are compared by measuring the total acoustic power output of the transducers, while keeping the output sound pressure levels and the temperature increases at the surface of the transducers same. The experiments revealed that for the same temperature rise in front of the transducers CMUT's were able to deliver 3.5 times more acoustic power compared to a comparable PZT probe. The experiments also revealed that thermal efficiency is not achieved readily for every CMUT probe, and requires specific electrical and packaging design.
机译:电容式微机械超声波换能器(CMUT)众所周知,众所周知,其设计和制造过程中的卓越频率带宽,短时间响应和固有的灵活性,它们都是量化和记录的。 CMUT还有其他已知属性,使它们在各种应用中具有吸引力的传感器选择。这些属性之一是在本文中量化的热效率,作为声输出功率与探头内产生的热量的比率。因为它们没有显着的内部损失机制(除了在某些情况下不需要的镜头之外),预计CMUT将热效率。热效率在医学成像中的几种应用中至关重要。例如,在彩色多普勒模式下,穿透深度和分辨率最终受探针中产生的热量的限制。通常,在使用长脉冲激发的长突发的应用中,探针中产生的热量是限制因素。这种应用的其他示例是使用编码激发的治疗剂和B模式成像。在这些应用中,CMUT有可能克服热屏障。虽然CMUT通常被接受为热效率,但这种性质尚未被广泛研究和量化。本文评估了CMUT实验的热效率,并将其与最先进的PZT探针进行比较。在这些实验中,通过绝对压力测量来测量总声输出功率,并且通过探针表面的温度测量估计探针内部产生的热量。通过测量换能器的总声学功率输出来比较CMUT和PZT探针的热效率,同时保持输出声压力水平,并且换能器表面的温度增加。实验表明,对于换能器前面的相同温度升高,CMUT能够与可比较的PZT探针相比提供3.5倍的声功率。实验还揭示了每种CMUT探针的易于实现热效率,并且需要特定的电气和包装设计。

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