This note describes an electrode polarization impedance based flow sensor for low water flow measurement. It consists of two pairs of stainless steel electrodes set apart and inserted into a non-conductive flow tube with each pair of electrodes placed diametrically at the opposite sides. The flow sensor is modeled as a typical four-electrode system of which two electrodes are current-carrying and the other two serve as output pick ups. The polarization impedances of the two current carrying electrodes are affected by water flows resulting in changes of differential potential between the two pick-up electrodes which are separated by the same fluid. The interrogation of the two excitation electrodes with dc biased ac signals offers significantly higher sensor sensitivities to flow. The prototype flow sensor constructed for a 20 mm diameter pipeline was able to measure water flow rate as low as tested at 1.06 l h−1 and remained sensitive at a flow rate of 25.18 l h−1 when it was driven with a sinusoidal voltage at 1000 Hz with a peak ac amplitude of 2 V and a dc offset of +8 V. The nonlinear characteristics of the sensor response indicate that the sensor is more sensitive at low flows and will not be able to measure at very high flows. Additional experiments are needed to evaluate the influences of impurities, chemical species, ions constituents, conductivity and temperature over a practical range of residential water conditions, the effects of fluctuating ground signals, measurement uncertainty, power consumption, compensation of effects and practical operations. The flow sensor (principle) presented may be used as (in) a secondary sensor in combination with an existing electronic water meter to extend the low end of measurement range in residential water metering.
[1]
Peyman Mirtaheri,et al.
Electrode polarization impedance in weak NaCl aqueous solutions
,
2005,
IEEE Transactions on Biomedical Engineering.
[2]
Nirupama Mandal,et al.
Study of the Effect of Excitation Frequency on Electrode Polarization Impedance-Type Flow Transducer
,
2010,
IEEE Transactions on Instrumentation and Measurement.
[3]
Clifford D. Ferris,et al.
Four‐Electrode Null Techniques for Impedance Measurement with High Resolution
,
1968
.
[4]
Brian A. Mazzeo,et al.
Two- and four-electrode, wide-bandwidth, dielectric spectrometer for conductive liquids: Theory, limitations, and experiment
,
2007
.
[5]
Richard B. Beard,et al.
Linear AC Electrode Polarization Impedance at Smooth Noble Metal Interfaces
,
1977,
IEEE Transactions on Biomedical Engineering.
[6]
H. E. Ayliffe,et al.
An electric impedance based microelectromechanical system flow sensor for ionic solutions.
,
2003,
Measurement science & technology.
[7]
Herman P. Schwan,et al.
Nonlinear AC and DC Polarization of Platinum Electrodes
,
1980,
IEEE Transactions on Biomedical Engineering.
[8]
E. McAdams,et al.
The linear and non-linear electrical properties of the electrode-electrolyte interface
,
1995
.
[9]
Badal Chakraborty,et al.
A Novel Technique of Flow Measurement for a Conducting Liquid
,
2009,
IEEE Transactions on Instrumentation and Measurement.