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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Dr Louis Richard

Marie Curie Fellow

Research theme

  • Plasma physics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Theoretical astrophysics and plasma physics at RPC
louis.richard@physics.ox.ac.uk
  • About
  • Publications

Investigation of the homogeneity of energy conversion processes at dipolarization fronts from MMS measurements

Physics of Plasmas AIP Publishing 29:1 (2022) 012906

Authors:

SW Alqeeq, O Le Contel, P Canu, A Retinò, T Chust, L Mirioni, L Richard, Y Aït-Si-Ahmed, A Alexandrova, A Chuvatin, N Ahmadi, SM Baraka, R Nakamura, FD Wilder, DJ Gershman, PA Lindqvist, Yu V Khotyaintsev, RE Ergun, JL Burch, RB Torbert, CT Russell, W Magnes, RJ Strangeway, KR Bromund, H Wei, F Plaschke, BJ Anderson, BL Giles, SA Fuselier, Y Saito, B Lavraud

Abstract:

We report on six dipolarization fronts (DFs) embedded in fast earthward flows detected by the Magnetospheric Multiscale mission during a substorm event on 23 July 2017. We analyzed Ohm's law for each event and found that ions are mostly decoupled from the magnetic field by Hall fields. However, the electron pressure gradient term is also contributing to the ion decoupling and likely responsible for an electron decoupling at DF. We also analyzed the energy conversion process and found that the energy in the spacecraft frame is transferred from the electromagnetic field to the plasma (J·E>0) ahead or at the DF, whereas it is the opposite (J·E<0) behind the front. This reversal is mainly due to a local reversal of the cross-tail current indicating a substructure of the DF. In the fluid frame, we found that the energy is mostly transferred from the plasma to the electromagnetic field (J·E′<0) and should contribute to the deceleration of the fast flow. However, we show that the energy conversion process is not homogeneous at the electron scales due to electric field fluctuations likely related to lower-hybrid drift waves. Our results suggest that the role of DF in the global energy cycle of the magnetosphere still deserves more investigation. In particular, statistical studies on DF are required to be carried out with caution due to these electron scale substructures.
More details from the publisher

Observations of Short‐Period Ion‐Scale Current Sheet Flapping

Journal of Geophysical Research: Space Physics American Geophysical Union (AGU) 126:8 (2021) e2021JA029152

Authors:

L Richard, Yu V Khotyaintsev, DB Graham, MI Sitnov, O Le Contel, P‐A Lindqvist

Abstract:

AbstractKink‐like flapping motions of current sheets are commonly observed in the magnetotail. Such oscillations have periods of a few minutes down to a few seconds and they propagate toward the flanks of the plasma sheet. Here, we report a short‐period ( s) flapping event of a thin current sheet observed by the Magnetospheric Multiscale spacecraft in the dusk‐side plasma sheet following a fast Earthward plasma flow. We characterize the flapping structure using the multi‐spacecraft spatiotemporal derivative and timing methods, and we find that the wave‐like structure is propagating along the average current direction with a phase velocity comparable to the ion velocity. We show that the wavelength of the oscillating current sheet scales with its thickness as expected for a drift‐kink mode. The decoupling of the ion bulk motion from the electron bulk motion suggests that the current sheet is thin. We discuss the presence of the lower hybrid waves associated with gradients of density as a broadening process of the thin current sheet.
More details from the publisher

Calibrating thermoelastic stress analysis with integrated digital image correlation: Application to fatigue cracks

The Journal of Strain Analysis for Engineering Design SAGE Publications 54:5-6 (2019) 320-330

Authors:

Juliette Gamot, Thibaut Lasserre, Louis Richard, Jan Neggers, Nicolas Swiergiel, François Hild

Abstract:

This article discusses the dual use of digital image correlation and thermoelastic stress analyses for the study of propagating cracks. It is shown that a few critical parameters such as emissivity and the thermoelastic constant required for the latter can be calibrated with the former. A unified framework is introduced, which treats both experimental techniques equally to locate crack tips, and then evaluate stress intensity factors. This framework allows for a detailed and quantitative comparison between both methods. It is found that, for the case at hand, the thermoelastic stress analyses outputs were less noise sensitive while the digital image correlation method was less dependent on calibration. The proposed procedure was very robust for finding the crack tip location for both experimental methods.
More details from the publisher

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