NDT Technology

NDT Technology

Experimental Study and leak investigation of Composite Pressure Vessel By Acoustic Emission Method

Document Type : Original Article

Authors
1 Department of mechanical engineering, Tafresh university
2 Department of mechanical engineering Tafresh university
3 Department of Civil engineering , Tafresh university
Abstract
The main focus of this article is to Analysis of Pressure Vessel Behaviour by Acoustic Emission Method and Ability of Experimental methods in Cylinder defects detection By Strain Measuring and obtaining the pressure limit FRP composite tanks.
In this Study, for performing experiments, first, the experimental set-up was prepared by installing emission acoustic sensors and strain gauges on the tank; then, the behavior of the Pressure Vessel was investigated by data of acoustic emission method and the strain gauge data were investigated. Observed that The studied composite tank was in the safe range at a pressure less than 2 bar and the mentioned tank leaks with holes up to 2mm did not high risk for destructive deformation & defect spread; if it has other operating conditions, it does not need to be monitored up to pressures above 5 bar where the strain ratio out of the linear phase and at higher pressures, other failure mechanisms, such as elastic-plastic deformation, cracking, etc are also added to the signals and should be studied and this means the need to monitor the tank at higher pressures or refuse to use it.
The result is that the acoustic signals are mostly produced by failure mechanisms. Experimentally based on the volume and characteristics of the signals and the obtained data showed that the acoustic emission activity in a non-defective cylinder is much lower compared to a defective cylinder. Usually, the signal increase at the beginning of the leak, and the leak is detectable.
Keywords

[1] H. Heidary, The Study on Pressure Corresion by Acoustic Emission Method, Master Thesis, Amirkabir University of Technology, 2008. (in Persian).
[2] C. B. Scruby, H. N. G. Wadley, An Assessment of Acoustic Emission for Nuclear Pressure Vessel Monitoring, 1979.
[3] C. Le Floc’h, Acoustic Emission Monitoring of Composite High-Pressure Fluid Storage Tanks, 1986.
[4] A. Ahmadi, Simulation of Acoustic Emission Waves Caused by Leakage, Master Thesis, Amirkabir University of Technology, 2008. (in Persian).
[5] A. G. Beattie, Acoustic Emission Monitoring of a High Pressure Test of a Steel Reactor Containment Vessel Model,2003.
[6] J. Boshe, G. W. Mair, P. Novak, Acoustic Emission Testing of High-Pressure Composite Cylinders, 2006, Doi: 10.4028/www.scientific.net/AMR.13-14.267.
[7] M. R. Boroomand, N. Safar Razavi, A. Eshghi, Investigation of leak detection systems for saltwater transmission lines, Journal of Applied Research in Water and Wastewater, Vol. 8, No. 2, pp. 107-112, 2021.
[8] J. Andreas Brunner, M. Barbezat, Acoustic Emission Leak Testing of Pipes for Pressurized Gas Using Active Fiber Composite Elements as Sensors ", 2007.
[9] J. Andreas Brunner, M. Barbezat, Acoustic Emission Leak Testing of Pipes for Pressurized Gas Using Active Fiber Composite Elements as Sensors ", 2007.
[10] H. Zhaohui, L. Hongjun, W. Rongguo, HeXiaodong, MaLi, The Study on Buckling Deformation of Composite Pressure Vessel Based on Acoustic Emission Signals, 2010, Doi: 10.4028/www.scientific.net/AMR.87-88.445.
[11] J. Teimory, A. Ebrahimian, A. Najafabadi, Acoustic Emission: The Tool for Monitoring the Condition of Pressure Vessels, 8th Condition Monitoring & Fault Diagnosis Conference, Sharif University of Technology, 2014. (in Persian).

  • Receive Date 24 February 2022
  • Revise Date 29 May 2022
  • Accept Date 11 June 2022