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Papers published in Géotechnique are eligible for awards from the Institution of Civil Engineers. Papers from any of the ICE journals can be nominated for several awards. In addition, each journal has awards dedicated to their specific subject area.

On Friday 6 October 2017, ICE president Tim Broyd presented awards to the following papers published in Géotechnique in 2016. The editorial panel nominated their best papers and an awards committee chaired by Nigel Wright allocated the awards.

The Baker Medal, presented to the third best paper published in all the ICE journals, was awarded to Alonso et al. (2016).

The scope of the paper encompasses planar and compound sliding motions, which may exhibit creeping behaviour during a certain period but may evolve to a very rapid motion. Thermo-mechanical interactions, at the scale of the sliding surface, are accepted as a critical aspect to explain these motion phases and their relationship. The sliding kinetics and global equilibrium are described at a large scale and the evolving shearing strength at the sliding surface derives from the local analysis of the shearing band and its vicinity. Pore pressures, temperatures and related variables are calculated by resolving a set of balance equations. The paper describes the transition from creeping motions to a rapid event. Results are found in terms of dimensionless numbers. Calculation of the slide evolution requires special numerical techniques described in the paper. Band permeability is found to be the dominant property controlling the triggering of fast motions. The creeping stage and the eventual slide blow-up are intiately linked. This relationship is explored in the paper. The models presented can be readily used to back-analyse relevant case histories or, in principle, even to carry out predictive modelling, provided an adequate calibration is available for the material parameters.

The Geotechnical Research Medal, presented for the best paper on geotechnical research, was awarded to Avgerinos et al. (2016).

The use of a kinematic hardening soil model for predicting short- and long-term ground movements due to tunnelling in London Clay is investigated. The model is calibrated against oedometer and triaxial tests on intact samples from different units of the London Clay. The calibrated model is then used in finite-element analysis to simulate the field response at St James's Park during excavation of the Jubilee Line Extension tunnels. The finite-element predictions compare well with the available field monitoring data. The importance of using consistent initial conditions for this complex boundary value problem in conjunction with the model parameters selected is highlighted. The stiffness response of different regions of the finite-element mesh indicates that the rate at which the stiffness degrades and the stiffness response further away from the tunnel boundary affect the short-term predictions significantly. The long-term predictions confirm that the compression characteristics of the soil control the magnitude of the consolidation settlements and its permeability the shape of the long-term settlement profiles.

Baker Medal winners Antonis Zervos, Eduardo Alonso and Núria Pinyol with ICE president Tim Broyd (second from right)

Baker Medal winners Antonis Zervos, Eduardo Alonso and Núria Pinyol with ICE president Tim Broyd (second from right)

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ICE president Tim Broyd (second from right) with Geotechnical Research Medal winners Jamie Standing, David Potts and Vasilis Avgerinos

ICE president Tim Broyd (second from right) with Geotechnical Research Medal winners Jamie Standing, David Potts and Vasilis Avgerinos

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Alonso
,
E. E.
,
Zervos
,
A.
&
Pinyol
,
N. M.
(
2016
).
Thermo-poro-mechanical analysis of landslides: from creeping behaviour to catastrophic failure
.
Géotechnique
66
, No.
3
,
202
219
, .
Avgerinos
,
V.
,
Potts
,
D. M.
&
Standing
,
J. R.
(
2016
).
The use of kinematic hardening models for predicting tunnelling-induced ground movements in London Clay
.
Géotechnique
66
, No.
2
,
106
120
, .

Discussion on this paper is welcomed by the editor.

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