Wilkens Volker, Sonntag Sven, Georg Olga
Physikalisch-Technische Bundesanstalt, Bundesallee 100, 38116 Braunschweig, Germany.
Gesellschaft für Angewandte Medizinische Physik und Technik, Hallesche Strasse 99f, 06217 Merseburg, Germany.
J Acoust Soc Am. 2016 Mar;139(3):1319-32. doi: 10.1121/1.4944693.
The output characterization of medical high intensity therapeutic ultrasonic devices poses several challenges for the hydrophones to be used for pressure measurements. For measurements at clinical levels in the focal region, extreme robustness, broad bandwidth, large dynamic range, and small receiving element size are all needed. Conventional spot-poled membrane hydrophones, in principle, meet some of these features and were used to detect large amplitude ultrasonic fields to investigate their applicability. Cavitation in water was the limiting effect causing damage to the electrodes and membrane. A new hydrophone design comprising a steel foil front protection layer has been developed, manufactured, characterized, tested, and optimized. The latest prototypes additionally incorporate a low absorption and acoustic impedance matched backing, and could be used for maximum peak rarefactional and peak compressional pressure measurements of 15 and 75 MPa, respectively, at 1.06 MHz driving frequency. Axial and lateral beam profiles were measured also for a higher driving frequency of 3.32 MHz to demonstrate the applicability for output beam characterization at the focal region at clinical levels. The experimental results were compared with results of numerical nonlinear sound field simulations and good agreement was found if detection bandwidth and spatial averaging were taken into account.
医用高强度治疗超声设备的输出特性给用于压力测量的水听器带来了诸多挑战。对于在焦点区域进行临床水平的测量,需要极高的稳健性、宽带宽、大动态范围以及小尺寸的接收元件。传统的点极化薄膜水听器原则上具备其中一些特性,并被用于检测大振幅超声场以研究其适用性。水中的空化是限制因素,会对电极和薄膜造成损坏。一种包含钢箔前保护层的新型水听器设计已被研发、制造、表征、测试和优化。最新的原型还额外采用了低吸收且声阻抗匹配的背衬,在1.06 MHz驱动频率下,可分别用于最大峰值稀疏压力和峰值压缩压力为15 MPa和75 MPa的测量。还针对3.32 MHz的更高驱动频率测量了轴向和横向波束剖面,以证明其在临床水平焦点区域输出波束表征方面的适用性。将实验结果与数值非线性声场模拟结果进行了比较,如果考虑检测带宽和空间平均,则发现两者吻合良好。