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Dive into the research topics where Adrián Riquelme is active.

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Featured researches published by Adrián Riquelme.


Computers & Geosciences | 2014

A new approach for semi-automatic rock mass joints recognition from 3D point clouds

Adrián Riquelme; Antonio Abellán; Roberto Tomás; Michel Jaboyedoff

This work was partially funded by the University of Alicante (vigrob-157, uausti11–11, and gre09–40 projects), the Swiss National Science Foundation (FNS-138015 and FNS-144040 projects) and by the Generalitat Valenciana (project GV/2011/044).


The 2016 Isrm International Symposium, Eurock 2016 | 2016

Using open-source software for extracting geomechanical parameters of a rock mass from 3D point clouds: Discontinuity set extractor and SMRTool

Adrián Riquelme; Miguel Cano; Roberto Tomás; Antonio Abellán Fernández

Presentacion de Riquelme et al del Workshop M3EF3, celebrado el 16 y 17 de noviembre de 2017 en la Universidad de Alicante.


Landslides | 2018

A multidisciplinary approach for the investigation of a rock spreading on an urban slope

Roberto Tomás; Antonio Abellán; Miguel Cano; Adrián Riquelme; Antonio José Tenza-Abril; F. Baeza-Brotons; J. M. Saval; Michel Jaboyedoff

Landslides are very complex processes controlled by multiple factors. The knowledge and characterization of these factors is essential for a comprehensive understanding of the mechanisms and kinematics of the instabilities and for an efficient design of corrective measures. The aim of this work is to combine traditional geological and geotechnical techniques with geophysical, remote sensing and forensic techniques for obtaining a whole picture of an active lateral spreading affecting the Finestrat municipality in Alicante, SE Spain. Geomorphological, geotechnical and geophysical techniques (i.e. ground penetrating radar and refraction seismic) have provided essential information about the geometry, structure and petro-physical properties of the slope. A Terrestrial Laser Scanner was used for recognizing the most important sets of discontinuities affecting the rock mass and to evaluate the activity of the landslide slope. Complementarily, a forensic analysis of the building damage completed the available datasets, yielding very useful kinematic information of the landslide. Finally, a sensitivity analysis of the stability of the rock slope has been performed considering both block toppling and block sliding models. Therefore, the multisource analysis performed in this work has allowed the identification and characterization of a complex lateral spreading, highlighting its effectiveness for a comprehensive understanding of this type of landslide.


Rock Mechanics and Rock Engineering | 2018

Automatic Mapping of Discontinuity Persistence on Rock Masses Using 3D Point Clouds

Adrián Riquelme; Roberto Tomás; Miguel Cano; José Pastor; Antonio Abellán

Finding new ways to quantify discontinuity persistence values in rock masses in an automatic or semi-automatic manner is a considerable challenge, as an alternative to the use of traditional methods based on measuring patches or traces with tapes. Remote sensing techniques potentially provide new ways of analysing visible data from the rock mass. This work presents a methodology for the automatic mapping of discontinuity persistence on rock masses, using 3D point clouds. The method proposed herein starts by clustering points that belong to patches of a given discontinuity. Coplanar clusters are then merged into a single group of points. Persistence is measured in the directions of the dip and strike for each coplanar set of points, resulting in the extraction of the length of the maximum chord and the area of the convex hull. The proposed approach is implemented in a graphic interface with open source software. Three case studies are utilized to illustrate the methodology: (1) small-scale laboratory setup consisting of a regular distribution of cubes with similar dimensions, (2) more complex geometry consisting of a real rock mass surface in an excavated cavern and (3) slope with persistent sub-vertical discontinuities. Results presented good agreement with field measurements, validating the methodology. Complexities and difficulties related to the method (e.g., natural discontinuity waviness) are reported and discussed. An assessment on the applicability of the method to the 3D point cloud is also presented. Utilization of remote sensing data for a more objective characterization of the persistence of planar discontinuities affecting rock masses is highlighted herein.


Engineering Geology | 2015

Discontinuity spacing analysis in rock masses using 3D point clouds

Adrián Riquelme; Antonio Abellán; Roberto Tomás


International Journal of Rock Mechanics and Mining Sciences | 2016

Characterization of rock slopes through slope mass rating using 3D point clouds

Adrián Riquelme; Roberto Tomás; Antonio Abellán


Landslides | 2018

Multisource data integration to investigate one century of evolution for the Agnone landslide (Molise, southern Italy)

M. Del Soldato; Adrián Riquelme; Silvia Bianchini; Roberto Tomás; D. Di Martire; P. De Vita; Sandro Moretti; Domenico Calcaterra


Procedia Engineering | 2017

Identification of Rock Slope Discontinuity Sets from Laser Scanner and Photogrammetric Point Clouds: A Comparative Analysis

Adrián Riquelme; Miguel Cano; Roberto Tomás; Antonio Abellán


International Journal of Rock Mechanics and Mining Sciences | 2017

Comparing manual and remote sensing field discontinuity collection used in kinematic stability assessment of failed rock slopes

Luis Jordá Bordehore; Adrián Riquelme; Miguel Cano; Roberto Tomás


Archive | 2015

Discontinuity Set Extractor

Adrián Riquelme; Antonio Abellán Fernández; Roberto Tomás; Michel Jaboyedoff

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Miguel Cano

University of Alicante

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Hugo Corbí

University of Alicante

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J. M. Saval

University of Alicante

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