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Improvement of high-voltage staircase drive circuit waveform for high-intensity therapeutic ultrasound

机译:高强度治疗超声的高压阶梯驱动电路波形的改进

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摘要

Recently, in the treatment of diseases such as cancer, noninvasive or low-invasive modality, such as high-intensity focused ultrasound (HIFU), has been put into practice as an alternative to open surgery. HIFU induces thermal ablation of the target tissue to be treated. To improve the efficiency of HIFU, we have proposed a "triggered-HIFU" technique, which uses the combination of a short-duration, high-voltage transmission and a long-duration, medium-voltage transmission. In this method, the transmission device must endure high peak voltage for the former and the high time-average power for the latter. The triggered-HIFU sequence requires electronic scanning of the HIFU focus to maximize its thermal efficiency. Therefore, the transmission device must drive an array transducer with the number of elements on the order of a hundred or more, which requires that each part of the device that drives each element must be compact. The purpose of this work is to propose and construct such a transmission device by improving the staircase drive circuit, which we previously proposed. The main point of improvement is that both N and P MOSFETs are provided for each staircase voltage level instead of only one of them. Compared with the previous ultrasonic transmission circuit, high-voltage spikes were significantly reduced, the power consumption was decreased by 26.7%, and the transmission circuit temperature rise was decreased by 14.5 degrees C in the triggered-HIFU heating mode. (C) 2016 The Japan Society of Applied Physics
机译:近来,在诸如癌症的疾病的治疗中,诸如高强度聚焦超声(HIFU)的非侵入性或低侵入性形式已经被实践为开放手术的替代方案。 HIFU引起要治疗的目标组织的热消融。为了提高HIFU的效率,我们提出了“触发式HIFU”技术,该技术结合了短时,高压传输和长时,中压传输的组合。在这种方法中,传输设备必须为前者承受较高的峰值电压,并为后者承受较高的时间平均功率。触发的HIFU序列需要对HIFU焦点进行电子扫描,以使其热效率最大化。因此,传输设备必须驱动具有数百个或更多数量级的元件的阵列换能器,这要求驱动每个元件的设备的每个部分必须紧凑。这项工作的目的是通过改进我们先前提出的阶梯驱动电路来提出并构造这种传动装置。改进的主要要点是为每个阶梯电压电平都提供了N和P MOSFET,而不是仅其中之一。与以前的超声波传输电路相比,在触发式HIFU加热模式下,高压尖峰明显减少,功耗降低了26.7%,传输电路温度上升降低了14.5摄氏度。 (C)2016年日本应用物理学会

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  • 来源
    《Japanese journal of applied physics》 |2016年第7s1期|07KF17.1-07KF17.7|共7页
  • 作者单位

    Tohoku Univ, Grad Sch Engn, Sendai, Miyagi 9808579, Japan|Hitachi Ltd, Healthcare Business Unit, Kokubunji, Tokyo 1850014, Japan;

    Tohoku Univ, Grad Sch Engn, Sendai, Miyagi 9808579, Japan;

    Univ Tokyo, Dept Mech Engn, Bunkyo Ku, Tokyo 1118656, Japan;

    Tohoku Univ, Grad Sch Engn, Sendai, Miyagi 9808579, Japan;

    Hitachi Ltd, Healthcare Business Unit, Kokubunji, Tokyo 1850014, Japan;

    Hitachi Ltd, Healthcare Business Unit, Kokubunji, Tokyo 1850014, Japan;

    Tohoku Univ, Grad Sch Biomed Engn, Sendai, Miyagi 9808579, Japan;

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