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Development of Acid Resistance Velocity Sensor for Analyzing Acidic Fluid Flow Characteristics

산성 용액 내 유속 측정을 위한 내산성 센서 개발

  • Choi, Gyujin (Dept. of Advnaced Electronic Circuit Substrate, Chungnam Nat'l Univ.) ;
  • Yoon, Jinwon (Dept. of Mechanical Engineering, Chungnam Nat'l Univ.) ;
  • Yu, Sangseok (Dept. of Mechanical Engineering, Chungnam Nat'l Univ.)
  • Received : 2016.01.12
  • Accepted : 2016.07.29
  • Published : 2016.10.01

Abstract

This study presents the development of an acid resistance velocity sensor that is used for measuring velocity inside a copper sulfate plating bath. First, researchers investigated the acid resistance coating to confirm the suitability of the anti-acid sensor in a very corrosive environment. Then, researchers applied signal processing methods to reduce noise and amplify the signal. Next, researchers applied a pressure-resistive sensor with an operation amplifier (Op Amp) and low-pass filter with high impedance to match the output voltage of a commercial flowmeter. Lastly, this study compared three low-pass filters (Bessel, Butterworth and Chebyshev) to select the appropriate signal process circuit. The results show 0.0128, 0.0023, and 5.06% of the mean square error, respectively. The Butterworth filter yielded more precise results when compared to a commercial flowmeter. The acid resistive sensor is capable of measuring velocities ranging from 2 to 6 m/s with a 2.7% margin of error.

미세 회로 기판 제조에 적용되는 습식공정 중 도금조에서 미세 기판의 정밀한 가공을 위해 산성용액 반응조 내부의 유동특성을 관찰하는 것이 중요하다. 하지만, 상용 유속계 중 내산성을 갖춘 센서가 거의 없어 측정이 매우 어렵다. 본 연구에서는 내산성을 갖는 압저항 센서에 신호처리 기술을 적용하여 유속을 측정할 수 있는 센서를 개발하였다. 상용유속계 수준의 유속데이터 획득을 위해서는 높은 임피던스를 갖는 압저항 센서에 증폭회로 및 저역통과필터를 부착하였으며, 이 때 사용되는 신호처리회로의 출력과 상용유속계의 출력이 일치되도록 하는 신호처리회로의 선정을 위해 Butterworth, Bessel, Chebyshev 필터 회로를 제작하여 유속 측정을 통해 출력을 상용유속계의 출력과 비교한 결과 0.0128 %, 0.0023 %, 5.06 %의 MSE를 확인할 수 있었다. 인가 유속을 변경하면서 내산성 센서의 측정 가능 영역을 확인해 본 결과, 저속 저압 구간에서는 신호와 노이즈 구분이 어려워 신호 처리 알고리즘을 적용해도 원하는 결과를 얻지 못하였고, 2~6 m/s에서 2.7 % 미만의 오차를 갖는 신뢰성 있는 측정이 가능하였다.

Keywords

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