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Evaluation of glued-diaphragm fibre optic pressure sensors in a shock tube

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Abstract

Glued-diaphragm fibre optic pressure sensors that utilize standard telecommunications components which are based on Fabry–Perot interferometry are appealing in a number of respects. Principally, they have high spatial and temporal resolution and are low in cost. These features potentially make them well suited to operation in extreme environments produced in short-duration high-enthalpy wind tunnel facilities where spatial and temporal resolution are essential, but attrition rates for sensors are typically very high. The sensors we consider utilize a zirconia ferrule substrate and a thin copper foil which are bonded together using an adhesive. The sensors show a fast response and can measure fluctuations with a frequency up to 250 kHz. The sensors also have a high spatial resolution on the order of 0.1 mm. However, with the interrogation and calibration processes adopted in this work, apparent errors of up to 30% of the maximum pressure have been observed. Such errors are primarily caused by mechanical hysteresis and adhesive viscoelasticity. If a dynamic calibration is adopted, the maximum measurement error can be limited to about 10% of the maximum pressure. However, a better approach is to eliminate the adhesive from the construction process or design the diaphragm and substrate in a way that does not require the adhesive to carry a significant fraction of the mechanical loading.

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References

  1. Di Giovanni M. (1982) Flat and corrugated diaphragm design handbook. Marcel Dekker, New York

    Google Scholar 

  2. Donlagic D. (2005) All-fiber high-sensitivity pressure sensor with SiO2 diaphragm. Optics Lett. 30(16):2071–2073

    Article  ADS  Google Scholar 

  3. Gander, M.J., MacPherson, W.N., Barton, J.S., Reuben, R.L., Jones, J.D.C., Chana, K.S., Anderson, S.J.: Pressure measurements at a nozzle guide vane edge using embedded fibre optic sensors. In: 16th Symposium on Measuring Techniques in Transonic and Supersonic Flow in Cascades and Turbomachines, Cambridge, UK (2002)

  4. Guo D., Wang W., Rongming L. (2005) Theoretical analysis and measurement of the temperature dependence of a micromachined Fabry-Perot pressure sensor. Appl. Opt. 44(2):249–256

    Article  ADS  Google Scholar 

  5. Haddad Y.M. (1995) Viscoelasticity of engineering materials. Chapman& Hall, London

    Google Scholar 

  6. Jürgen Buschew K.H., Cahn R.W., Flemings M.C., Ilschner B., Kramer J.E., Mahajan S. (2001) Encyclopaedia of materials, science and technology, vol. 10. Elsevier, Oxford, pp. 9530–9536

    Google Scholar 

  7. MacPherson, W.N.: Fibre optic sensors for applications in Turbomachinery research. PhD thesis, Heriot-Watt University, UK (1999)

  8. MacPherson, W.N., Kilpatrick, J.M., Barton, J.S., Jones, J.D.C., Chana, K.S., Anderson, J.S., Jones, T.V., Buttsworth, D.R.: Miniature fibre optic pressure sensor for high resolution measurements in turbomachinery applications. In: Culshaw, B., Jones, J.D.C. (eds.) European Workshop on Optical Fibre Sensors. Proc. SPIE 3483, 200–204 (1998)

  9. MacPherson W.N., Kilpatrick J.M., Barton J.S., Jones J.D.C. (1999) Miniature fiber optic pressure sensor for turbomachinery applications. Rev. Sci. Instrum. 70(3):1868–1874

    Article  ADS  Google Scholar 

  10. MacPherson W.N., Gander M.J., Barton J.S., Jones J.D.C., Owen C.L., Watson A.J., Allen R.M. (2000) Blast-pressure measurement with a high-bandwidth fibre optic pressure sensor. Meas. Sci. Technol. 11, 95–102

    Article  ADS  Google Scholar 

  11. McIntyre T.J., Lourel I., Eichmann T.N., Morgan R.G., Jacobs P.A., Bishop A.I. (2004) An experimental expansion tube study of the flow over a toroidal ballute. J. Spacecr. Rockets 41(5):716–725

    Article  ADS  Google Scholar 

  12. Sharifian, S.A.: Fibre optic pressure transducers for disturbance measurements in transient aerodynamic research facilities. PhD Thesis, University of Southern Queensland, Australia (2003)

  13. Sharifian, S.A., Buttsworth, D.R.: Reducing the mechanical hysteresis problem in optically-addressed diaphragm pressure sensors. In: Tomasini, E.P. (ed.) 5th International Conference on Vibration Measurements by Laser Techniques: Advances and Applications. Proc. SPIE 4827, 234–244 (2002)

  14. Watson, S., MacPherson, W.N., Barton, J.S., Jones, J.D.C., Tyas, A., Pichugin, A.V., Hindle, A., Parkes, W., Dunare, C., Stevenson, T.: Investigation of shock waves in explosive blasts using fibre optic pressure sensors. Journal of Physics: Conference Series 15, Sensors& their Applications XIII, pp. 226–231 (2005)

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Correspondence to David R. Buttsworth.

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Communicated by F. Lu.

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Sharifian, S.A., Buttsworth, D.R. Evaluation of glued-diaphragm fibre optic pressure sensors in a shock tube. Shock Waves 16, 189–197 (2007). https://doi.org/10.1007/s00193-006-0062-x

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  • DOI: https://doi.org/10.1007/s00193-006-0062-x

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