Monitoring of fouling within pipes using Electrical Impedance Spectroscopy

被引:1
作者
Anseth, Ronnie [1 ]
Skeie, Nils-Olav [1 ]
Waskaas, Magne [2 ]
机构
[1] Univ South Eastern Norway, Porsgrunn, Telemark, Norway
[2] Univ South Eastern Norway, Automat, Porsgrunn, Telemark, Norway
关键词
Pore resistance; in-situ monitoring; single frequency; TOMOGRAPHY;
D O I
10.1515/teme-2018-0012
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The objective of the study described in this paper was to evaluate a monitoring system for fouling in pipes, based on impedance measurements using only one fixed frequency. The monitoring system observed the fouling growth (deposition layer and corrosion) inside a pipe which was subjected to a constant flow of liquid. The measurement frequency was specifically selected to optimize the sensitivity of the monitoring system towards the fouling growth. An electrical potential difference was applied to the pipe to generate an electrical field to accelerate the fouling growth in the experiment. Experimental results show a measurable change in the impedance magnitude (fouling growth) over the duration of the experiment (8 weeks). Results indicate that the measurement system, using one fixed frequency, is capable of in-situ monitoring of fouling growth in a pipe with a continuous flow of liquid.
引用
收藏
页码:627 / 634
页数:8
相关论文
共 50 条
[31]   Prognostic monitoring of aircraft wiring using electrical capacitive tomography [J].
McKenzie, G. ;
Record, P. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2011, 82 (12)
[32]   Corrosion and erosion monitoring in plates and pipes using constant group velocity Lamb wave inspection [J].
Nagy, Peter B. ;
Simonetti, Francesco ;
Instanes, Geir .
ULTRASONICS, 2014, 54 (07) :1832-1841
[33]   Quantitative In Situ Monitoring of Parahydrogen Fraction Using Raman Spectroscopy [J].
Parrott, Andrew J. ;
Dallin, Paul ;
Andrews, John ;
Richardson, Peter M. ;
Semenova, Olga ;
Halse, Meghan E. ;
Duckett, Simon B. ;
Nordon, Alison .
APPLIED SPECTROSCOPY, 2019, 73 (01) :88-97
[34]   Efficient and Robust Detection of Local Impedance Changes Using Selected Electrical Excitation Conditions [J].
Yoshimoto, Shunsuke ;
Ikemoto, Naoki ;
Ishizuka, Hiroki ;
Ikeda, Sei ;
Kuroda, Yoshihiro ;
Oshiro, Osamu .
IEEE ACCESS, 2020, 8 :205778-205787
[35]   Real-Time Identification of Upper Airway Occlusion Using Electrical Impedance Tomography [J].
Kim, Young Eun ;
Woo, Eung Je ;
Oh, Tong In ;
Kim, Sang-Wook .
JOURNAL OF CLINICAL SLEEP MEDICINE, 2019, 15 (04) :563-571
[36]   Imaging and functional characterization of crop root systems using spectroscopic electrical impedance measurements [J].
Weigand, Maximilian ;
Kemna, Andreas .
PLANT AND SOIL, 2019, 435 (1-2) :201-224
[37]   Comparing Between Three Current Source Circuits for Using in Bio Electrical Impedance Design [J].
Ar-Rawi, A. H. ;
Moghavvemi, M. ;
Wan-Ibrahim, W. M. A. .
2009 INTERNATIONAL CONFERENCE FOR TECHNICAL POSTGRADUATES (TECHPOS 2009), 2009, :19-+
[38]   A Bilateral Constrained Image Reconstruction Method Using Electrical Impedance Tomography and Ultrasonic Measurement [J].
Liu, Hao ;
Zhao, Shu ;
Tan, Chao ;
Dong, Feng .
IEEE SENSORS JOURNAL, 2019, 19 (21) :9883-9895
[39]   Wideband Fully-Programmable Dual-Mode CMOS Analogue Front-End for Electrical Impedance Spectroscopy [J].
Valente, Virgilio ;
Demosthenous, Andreas .
SENSORS, 2016, 16 (08)
[40]   Fast Electrical Impedance Tomography Based on Code-Division-Multiplexing Using Orthogonal Codes [J].
Gevers, Martin ;
Gebhardt, Patrik ;
Westerdick, Stephan ;
Vogt, Michael ;
Musch, Thomas .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2015, 64 (05) :1188-1195