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Review Article

A review on noise suppression and aberration compensation in holographic particle image velocimetry

& | (Reviewing Editor)
Article: 1142819 | Received 22 Oct 2015, Accepted 12 Jan 2016, Published online: 17 Feb 2016

References

  • Abramson, N. (1978). Light-in-flight recording by holography. Optics Letters, 3, 121–123.10.1364/OL.3.000121
  • Abramson, N. (1983). Light-in-flight recording: high-speed holographic motion pictures of ultrafast phenomena. Applied Optics, 22, 215–232.10.1364/AO.22.000215
  • Abramson, N. (1984). Light-in-flight recording. 2: Compensation for the limited speed of the light used for observation. Applied Optics, 23, 1481–1492.10.1364/AO.23.001481
  • Abramson, N. (1985). Light-in-flight recording. 4: Visualizing optical relativistic phenomena. Applied Optics, 24, 3323–3329.10.1364/AO.24.003323
  • Abramson, N. (1991). Time reconstructions in light-in-flight recording by holography. Applied Optics, 30, 1242–1252.10.1364/AO.30.001242
  • Abramson, N. H., & Spears, K. G. (1989). Single pulse light-in-flight recording by holography. Applied Optics, 28, 1834–1841.10.1364/AO.28.001834
  • Adams, M., Kreis, T. M., & Jueptner, W. P. O. (1997). Particle size and position measurement with digital holography. In Lasers and Optics in Manufacturing III. Munich: International Society for Optics and Photonics.
  • Adrian, R. (2005). Twenty years of particle image velocimetry. Experiments in Fluids, 39, 159–169.10.1007/s00348-005-0991-7
  • Adrian, R. J., & Yao, C. S. (1984). Development of pulsed laser velocimetry (PLV) for measurement of fluid flow. In Proceedings of the 8th Biennial Symposium on Turbulence. Rolla, MI.
  • Alcock, R., Coupland, J. M., Garner, C. P., & Halliwell, N. A. (2003). Report on diesel combustion analysis. Loughborough: Loughborough University.
  • Arroyo, M., & Greated, C. (1999). Stereoscopic particle image velocimetry. Measurement Science and Technology, 2, 1181–1186.
  • Barnhart, D. (2001). Whole-field holographic measurements of three-dimensional displacement in solid and fluid mechanics. Loughborough: Loughborough University.
  • Barnhart, D., Koek, W. D., Juchem, T., Hampp, N., Coupland, J. M., & Halliwell, N. A. (2004). Bacteriorhodopsin as a high-resolution, high-capacity buffer for digital holographic measurements. Measurement Science and Technology, 15, 639–646.10.1088/0957-0233/15/4/005
  • Barnhart, D. H., Adrian, R. J., & Papen, G. C. (1994). Phase-conjugate holographic system for high-resolution particle-image velocimetry. Applied Optics, 33, 7159–7170.10.1364/AO.33.007159
  • Chan, V., Koek, W. D., Barnhart, D. H., Bhattacharya, N., Braat, J. J. M., & Westerweel, J. (2004). Application of holography to fluid flow measurements using bacteriorhodopsin (bR). Measurement Science and Technology, 15, 647–655.10.1088/0957-0233/15/4/006
  • Coupland, J. (2004). Holographic particle image velocimetry: Signal recovery from under-sampled CCD data. Measurement Science and Technology, 15, 711–717.10.1088/0957-0233/15/4/014
  • Dudderar, T., & Simpkins, P. (1977). Laser speckle photography in a fluid medium. Nature, 270, 45–47.10.1038/270045a0
  • Fabry, E. (1998). 3D holographic PIV with a forward-scattering laser sheet and stereoscopic analysis. Experiments in Fluids, 24, 39–46.10.1007/s003480050148
  • Gabor, D. (1948). A new microscopic principle. Nature, 161, 777–778.10.1038/161777a0
  • Goodman, J. W. (1996). Introduction to Fourier optics. CO: Roberts.
  • Haddad, W. S., Cullen, D., Solem, J. C., Longworth, J. W., McPherson, A., Boyer, K., & Rhodes, C. K. (1992). Fourier-transform holographic microscope. Applied Optics, 31, 4973–4978.10.1364/AO.31.004973
  • Hecht, E. (2002). Optics. San Francisco, CA: Addison-Wesley.
  • Herrmann, S., Hinrichs, H., Hinsch, K. D., & Surmann, C. (2000). Coherence concepts in holographic particle image velocimetry. Experiments in Fluids, 29, S108–S116.10.1007/s003480070013
  • Herrmann, S. F., & Hinsch, K. D. (2004). Light-in-flight holographic particle image velocimetry for wind-tunnel applications. Measurement Science and Technology, 15, 613–621.10.1088/0957-0233/15/4/002
  • Hinrichs, H., Kickstein, J., & Böhmer, M. (1997). Light-in-flight holography for visualization and velocimetry in three-dimensional flows. Optics Letters, 22, 828–830.10.1364/OL.22.000828
  • Hinsch, K. D. (2002). Holographic particle image velocimetry. Measurement Science and Technology, 13, R61–R72.10.1088/0957-0233/13/7/201
  • Hinsch, K. D., & Herrmann, S. F. (2004). Signal quality improvements by short-coherence holographic particle image velocimetry. Measurement Science and Technology, 15, 622–630.10.1088/0957-0233/15/4/003
  • Kim, M. K. (2010). Principles and techniques of digital holographic microscopy. SPIE Reviews, 1, 018005–018005-50.
  • Koek, W. (2006). Holographic particle image velocimetry using bacteriorhodopsin. Delft: Delft University of Technology.
  • Koek, W., Bhattacharya, N., Braat, J. J. M., Chan, V. S. V., & Westerweel, J. (2004). Holographic simultaneous readout polarization multiplexing based on photoinduced anisotropy in bacteriorhodopsin. Optics Letters, 29, 101–103.10.1364/OL.29.000101
  • Kreis, T. (2006). Handbook of holographic interferometry. Weinheim: Wiley.
  • Leith, E. N., & Upatnieks, J. (1962). Reconstructed wavefronts and communication theory. Journal of the Optical Society of America, 52, 1123–1128.10.1364/JOSA.52.001123
  • Leith, E. N., & Upatnieks, J. (1964). Wavefront reconstruction with diffused illumination and three-dimensional objects. Journal of the Optical Society of America, 54, 1295–1301.10.1364/JOSA.54.001295
  • Liu, D. D., & Hussain, F. (1995). Off-axis holographic technique for particle image velocimetry using a Fourier-transform lens. Optics Letters, 20, 327–329.10.1364/OL.20.000327
  • Liu, F., & Hussain, F. (1998). Holographic particle velocimeter using forward scattering with filtering. Optics Letters, 23, 132–134.10.1364/OL.23.000132
  • Lozano, A., Kostas, J., & Soria, J. (1999). Use of holography in particle image velocimetry measurements of a swirling flow. Experiments in Fluids, 27, 251–261.10.1007/s003480050350
  • Meng, H., & Hussain, F. (1991). Holographic particle velocimetry: A 3D measurement technique for vortex interactions, coherent structures and turbulence. Fluid Dynamics Research, 8, 33–52.10.1016/0169-5983(91)90029-I
  • Meng, H., & Hussain, F. (1995a). In-line recording and off-axis viewing technique for holographic particle velocimetry. Applied Optics, 34, 1827–1840.10.1364/AO.34.001827
  • Meng, H., & Hussain, F. (1995b). Instantaneous flow field in an unstable vortex ring measured by holographic particle velocimetry. Physics of Fluids, 7, 9–11.10.1063/1.868741
  • Meng, H., Pan, G., Pu, Y., & Woodward, S. H. (2004). Holographic particle image velocimetry: From film to digital recording. Measurement Science and Technology, 15, 673–685.10.1088/0957-0233/15/4/009
  • Murata, S., & Yasuda, N. (2000). Potential of digital holography in particle measurement. Optics & Laser Technology, 32, 567–574.
  • Pickering, C. J. D., & Halliwell, N. A. (1984). Speckle photography in fluid flows: Signal recovery with two-step processing. Applied Optics, 23, 1128–1129.10.1364/AO.23.001128
  • Prasad, A., & Adrian, R. (1993). Stereoscopic particle image velocimetry applied to liquid flows. Experiments in Fluids, 15, 49–60.
  • Prasad, A. K. (2000). Stereoscopic particle image velocimetry. Experiments in Fluids, 29, 103–116.10.1007/s003480000143
  • Pu, Y., & Meng, H. (2000). An advanced off-axis holographic particle image velocimetry (HPIV) system. Experiments in Fluids, 29, 184–197.10.1007/s003489900088
  • Royer, H. (1974). An application of high-speed microholography: The mertology of fogs. Nouvelle Revue d'Optique, 5, 87–93.10.1088/0335-7368/5/2/303
  • Royer, H. (1997). Holography and particle image velocimetry. Measurement Science and Technology, 8, 1562–1572.10.1088/0957-0233/8/12/019
  • Scherer, J. O., & Bernal, L. P. (1997). In-line holographic particle image velocimetry for turbulent flows. Applied Optics, 36, 9309–9318.10.1364/AO.36.009309
  • Schnars, U., & Jüptner, W. (1994). Direct recording of holograms by a CCD target and numerical reconstruction. Applied Optics, 33, 179–181.10.1364/AO.33.000179
  • Sheng, J., Malkiel, E., & Katz, J. (2003). Single beam two-views holographic particle image velocimetry. Applied Optics, 42, 235–250.10.1364/AO.42.000235
  • Simpkins, P., & Dudderar, T. (1978). Laser speckle measurements of transient Bénard convection. Journal of Fluid Mechanics, 89, 665–671.10.1017/S0022112078002797
  • Svizher, A., & Cohen, J. (2006). Holographic particle image velocimetry system for measurements of hairpin vortices in air channel flow. Experiments in Fluids, 40, 708–722.10.1007/s00348-006-0108-y
  • Tamrin, K., Rahmatullah, B., & Samuri, S. (2014a). Measurement of signal-to-noise ratio (SNR) in off-axis particle holography using paraxial approximation. In 2nd International Postgraduate Conference on Science and Mathematics 2014 (IPCSM’14). Tanjong Malim.
  • Tamrin, K. F., Rahmatullah, B., & Samuri, S. M. (2014b). Development of an off-axis digital holographic microscope for large scale measurement in fluid mechanics. In 2nd International Multidisciplinary Microscopy and Microanalysis Congress 2014. Oludeniz: Springer Proceedings in Physics.
  • Tamrin, K. F., Rahmatullah, B., & Samuri, S. M. (2014c). Astigmatism compensation in digital holographic microscopy using complex-amplitude correlation. In 23rd Scientific Conference of the Microscopy Society Malaysia 2014. Perak.
  • Tamrin, K. F., Rahmatullah, B., & Samuri, S. M. (2015a). Aberration compensation of holographic particle images using digital holographic microscopy. Journal of Modern Optics, 62, 701–711.10.1080/09500340.2014.1003257
  • Tamrin, K., Rahmatullah, B., & Samuri, S. (2015b). An experimental investigation of three-dimensional particle aggregation using digital holographic microscopy. Optics and Lasers in Engineering, 68, 93–103.10.1016/j.optlaseng.2014.12.011
  • Tao, B., Katz, J., & Meneveau, C. (2002). Statistical geometry of subgrid-scale stresses determined from holographic particle image velocimetry measurements. Journal of Fluid Mechanics, 457, 35–78.
  • Thompson, B. J., Ward, J. H., & Zinky, W. R. (1967). Application of hologram techniques for particle size analysis. Applied Optics, 6, 519–526.10.1364/AO.6.000519
  • Trolinger, J., Farmer, W., & Belz, R. (1968). Multiple exposure holography of time varying three-dimensional fields. Applied Optics, 7, 1640–1641.10.1364/AO.7.001640
  • Trolinger, J., Belz, R., & Farmer, W. (1969). Holographic techniques for the study of dynamic particle fields. Applied Optics, 8, 957–961.10.1364/AO.8.000957
  • Von Ellenrieder, K., Kostas, J., & Soria, J. (2001). Measurements of a wall-bounded, turbulent, separated flow using HPIV. Journal of Turbulence, 2, 1–15.
  • Westerweel, J., & Van Oord, J. (2000). Stereoscopic PIV measurements in a turbulent boundary layer. In Particle image velocimetry, progress toward industrial application (pp. 459–478). Dordrecht: Kluwer.
  • Yu, X., Hong, J., Liu, C., & Kim, M. K. (2014). Review of digital holographic microscopy for three-dimensional profiling and tracking. Optical Engineering, 53, 112306–112306.10.1117/1.OE.53.11.112306
  • Zhang, Z., & Eisele, K. (1995). The two-dimensional velocity shift caused by the use of a rotating mirror in PIV flow field measurements. Experiments in Fluids, 20, 106–111.10.1007/BF01061588
  • Zhang, J., Tao, B., & Katz, J. (1997). Turbulent flow measurement in a square duct with hybrid holographic PIV. Experiments in Fluids, 23, 373–381.10.1007/s003480050124