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Black Hole

Lensing of space time around a black hole. At Oxford we study black holes observationally and theoretically on all size and time scales - it is some of our core work.

Credit: ALAIN RIAZUELO, IAP/UPMC/CNRS. CLICK HERE TO VIEW MORE IMAGES.

Dr Ryan Griffiths

Postdoctoral Research Assistant

Research theme

  • Instrumentation
  • Exoplanets and planetary physics

Sub department

  • Astrophysics

Research groups

  • Astronomical instrumentation
  • Extremely Large Telescope
ryan.griffiths@physics.ox.ac.uk
Denys Wilkinson Building, room 361B
  • About
  • Publications

Single-star optical turbulence profiling techniques for SHIMM and other Shack–Hartmann instruments

Applied Optics Optica Publishing Group 65:19 (2026) H63-H63

Authors:

Ryan Griffiths, Timothy Butterley, Richard Wilson, James Osborn

Abstract:

Atmospheric optical turbulence (OT) monitoring is crucial for site characterization at astronomical observatories and optical communications ground stations. The Shack–Hartmann image motion monitor (SHIMM) instrument implements a fast, infrared Shack–Hartmann sensor to measure a low-resolution OT profile continuously throughout the day and night. This work presents advances made in Shack–Hartman optical turbulence profiling techniques implemented on the SHIMM, including a derivation and validation of Z-tilt weighting functions, implementation of methods for correcting for non-zero exposure times, and for estimating the coherence time of optical turbulence using the profile coupled with the fast defocus method. These techniques were tested via end-to-end Monte Carlo simulations of the SHIMM instrument using real turbulence profiles from the Paranal stereo-SCIDAR instrument with an augmented ground layer. All measurements of integrated OT parameters were in strong agreement with the simulation inputs, evidenced by correlation coefficients close to one, small RMS error, and bias. The accuracy of the four-layer SHIMM model was also investigated, which showed high correlation with simulation inputs for all layers even in daytime OT conditions. This study suggests that, for the turbulence database used, and under realistic daytime noise conditions, a C n 2 ( h )d h sensitivity limit in the region of 2×10 −15 m 1/3 was encountered in the highest altitude layer. There was also evidence of a cross-talk effect between the strong ground layer and the first atmospheric layer.
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Demonstration of 24-hour continuous optical turbulence monitoring in a city

Optics Express Optica Publishing Group 33:5 (2025) 10140

Authors:

LF Beesley, R Griffiths, K Hartley, OJD Farley, F Quatresooz, A Rodríguez-Gómez, A Comerón, M Townson, D Alaluf, J Osborn
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Exploring atmospheric optical turbulence: observations across zenith angles.

Applied Optics Optica Publishing Group 63:16 (2024) e48-e53

Authors:

LF Beesley, J Osborn, R Wilson, OJD Farley, R Griffiths, GD Love
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A comparison of next-generation turbulence profiling instruments at Paranal

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 529:1 (2024) 320-330

Authors:

R Griffiths, L Bardou, T Butterley, J Osborn, R Wilson, E Bustos, A Tokovinin, M Le Louarn, A Otarola
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A comparison of next-generation turbulence profiling instruments at Paranal

ArXiv 2402.09144 (2024)

Authors:

Ryan Griffiths, Lisa Bardou, Timothy Butterley, James Osborn, Richard Wilson, Edison Bustos, Andrei Tokovinin, Miska Le Louarn, Angel Otarola
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