Literature DB >> 28960285

Using Resin-Based 3D Printing to Build Geometrically Accurate Proxies of Porous Sedimentary Rocks.

Sergey Ishutov1, Franciszek J Hasiuk1, Dawn Jobe2, Susan Agar2.   

Abstract

Three-dimensional (3D) printing is capable of transforming intricate digital models into tangible objects, allowing geoscientists to replicate the geometry of 3D pore networks of sedimentary rocks. We provide a refined method for building scalable pore-network models ("proxies") using stereolithography 3D printing that can be used in repeated flow experiments (e.g., core flooding, permeametry, porosimetry). Typically, this workflow involves two steps, model design and 3D printing. In this study, we explore how the addition of post-processing and validation can reduce uncertainty in the 3D-printed proxy accuracy (difference of proxy geometry from the digital model). Post-processing is a multi-step cleaning of porous proxies involving pressurized ethanol flushing and oven drying. Proxies are validated by: (1) helium porosimetry and (2) digital measurements of porosity from thin-section images of 3D-printed proxies. 3D printer resolution was determined by measuring the smallest open channel in 3D-printed "gap test" wafers. This resolution (400 µm) was insufficient to build porosity of Fontainebleau sandstone (∼13%) from computed tomography data at the sample's natural scale, so proxies were printed at 15-, 23-, and 30-fold magnifications to validate the workflow. Helium porosities of the 3D-printed proxies differed from digital calculations by up to 7% points. Results improved after pressurized flushing with ethanol (e.g., porosity difference reduced to ∼1% point), though uncertainties remain regarding the nature of sub-micron "artifact" pores imparted by the 3D printing process. This study shows the benefits of including post-processing and validation in any workflow to produce porous rock proxies.
© 2017, National Ground Water Association.

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Year:  2017        PMID: 28960285     DOI: 10.1111/gwat.12601

Source DB:  PubMed          Journal:  Ground Water        ISSN: 0017-467X            Impact factor:   2.671


  3 in total

1.  Nanofabrication of synthetic nanoporous geomaterials: from nanoscale-resolution 3D imaging to nano-3D-printed digital (shale) rock.

Authors:  Jan Goral; Milind Deo
Journal:  Sci Rep       Date:  2020-12-09       Impact factor: 4.379

2.  Porosity of the porous carbonate rocks in the Jingfengqiao-Baidiao area based on finite automata.

Authors:  Honghai Kuang; Xi Ye; Zhiyi Qing
Journal:  R Soc Open Sci       Date:  2022-01-12       Impact factor: 2.963

Review 3.  Progressive 3D Printing Technology and Its Application in Medical Materials.

Authors:  Daoyang Fan; Yan Li; Xing Wang; Tengjiao Zhu; Qi Wang; Hong Cai; Weishi Li; Yun Tian; Zhongjun Liu
Journal:  Front Pharmacol       Date:  2020-03-20       Impact factor: 5.810

  3 in total

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