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用于高频脉冲回波仪器的高压功率放大器的功率MOSFET线性化器。

Power MOSFET Linearizer of a High-Voltage Power Amplifier for High-Frequency Pulse-Echo Instrumentation.

作者信息

Choi Hojong, Woo Park Chul, Yeom Jung-Yeol, Yoon Changhan

机构信息

Department of Medical IT Convergence Engineering, Kumoh National Institute of Technology, Gumi 39253, Korea.

School of Biomedical Engineering, Korea University, Seoul 02841, Korea.

出版信息

Sensors (Basel). 2017 Apr 4;17(4):764. doi: 10.3390/s17040764.

Abstract

A power MOSFET linearizer is proposed for a high-voltage power amplifier (HVPA) used in high-frequency pulse-echo instrumentation. The power MOSFET linearizer is composed of a DC bias-controlled series power MOSFET shunt with parallel inductors and capacitors. The proposed scheme is designed to improve the gain deviation characteristics of the HVPA at higher input powers. By controlling the MOSFET bias voltage in the linearizer, the gain reduction into the HVPA was compensated, thereby reducing the echo harmonic distortion components generated by the ultrasonic transducers. In order to verify the performance improvement of the HVPA implementing the power MOSFET linearizer, we measured and found that the gain deviation of the power MOSFET linearizer integrated with HVPA under 10 V DC bias voltage was reduced (-1.8 and -0.96 dB, respectively) compared to that of the HVPA without the power MOSFET linearizer (-2.95 and -3.0 dB, respectively) when 70 and 80 MHz, three-cycle, and 26 dB input pulse waveforms are applied, respectively. The input 1-dB compression point (an index of linearity) of the HVPA with power MOSFET linearizer (24.17 and 26.19 dB at 70 and 80 MHz, respectively) at 10 V DC bias voltage was increased compared to that of HVPA without the power MOSFET linearizer (22.03 and 22.13 dB at 70 and 80 MHz, respectively). To further verify the reduction of the echo harmonic distortion components generated by the ultrasonic transducers, the pulse-echo responses in the pulse-echo instrumentation were compared when using HVPA with and without the power MOSFET linearizer. When three-cycle 26 dB input power was applied, the second, third, fourth, and fifth harmonic distortion components of a 75 MHz transducer driven by the HVPA with power MOSFET linearizer (-48.34, -44.21, -48.34, and -46.56 dB, respectively) were lower than that of the HVPA without the power MOSFET linearizer (-45.61, -41.57, -45.01, and -45.51 dB, respectively). When five-cycle 20 dB input power was applied, the second, third, fourth, and fifth harmonic distortions of the HVPA with the power MOSFET linearizer (-41.54, -41.80, -48.86, and -46.27 dB, respectively) were also lower than that of the HVPA without the power MOSFET linearizer (-25.85, -43.56, -49.04, and -49.24 dB, respectively). Therefore, we conclude that the power MOSFET linearizer could reduce gain deviation of the HVPA, thus reducing the echo signal harmonic distortions generated by the high-frequency ultrasonic transducers in pulse-echo instrumentation.

摘要

本文提出了一种用于高频脉冲回波仪器中的高压功率放大器(HVPA)的功率MOSFET线性化器。该功率MOSFET线性化器由一个直流偏置控制的串联功率MOSFET与并联电感和电容组成。所提出的方案旨在改善HVPA在较高输入功率下的增益偏差特性。通过控制线性化器中的MOSFET偏置电压,补偿了进入HVPA的增益降低,从而减少了超声换能器产生的回波谐波失真分量。为了验证实现功率MOSFET线性化器的HVPA的性能提升,我们进行了测量,发现当分别施加70 MHz和80 MHz、三周期、26 dB的输入脉冲波形时,与未采用功率MOSFET线性化器的HVPA相比,集成了功率MOSFET线性化器的HVPA在10 V直流偏置电压下的增益偏差分别降低了(分别为-1.8 dB和-0.96 dB),而未采用功率MOSFET线性化器的HVPA的增益偏差分别为-2.95 dB和-3.0 dB。在10 V直流偏置电压下,采用功率MOSFET线性化器的HVPA的输入1 dB压缩点(线性度指标)(在70 MHz和80 MHz时分别为24.17 dB和26.19 dB)相比于未采用功率MOSFET线性化器的HVPA(在70 MHz和80 MHz时分别为22.03 dB和22.13 dB)有所提高。为了进一步验证超声换能器产生的回波谐波失真分量的减少情况,我们比较了在脉冲回波仪器中使用有和没有功率MOSFET线性化器的HVPA时的脉冲回波响应。当施加三周期26 dB的输入功率时,由采用功率MOSFET线性化器的HVPA驱动的75 MHz换能器的第二、第三、第四和第五谐波失真分量(分别为-48.34 dB、-44.21 dB、-48.34 dB和-46.56 dB)低于未采用功率MOSFET线性化器的HVPA的相应分量(分别为-45.61 dB、-41.57 dB、-45.01 dB和-45.51 dB)。当施加五周期20 dB的输入功率时,采用功率MOSFET线性化器的HVPA的第二、第三、第四和第五谐波失真(分别为-41.54 dB、-41.80 dB、-48.86 dB和-46.27 dB)也低于未采用功率MOSFET线性化器的HVPA的相应分量(分别为-25.85 dB、-43.56 dB、-49.04 dB和-49.24 dB)。因此,我们得出结论,功率MOSFET线性化器可以降低HVPA的增益偏差,从而减少脉冲回波仪器中高频超声换能器产生的回波信号谐波失真。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c19/5421724/4ccc77baf06c/sensors-17-00764-g001.jpg

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