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Title: The second Sandia Fracture Challenge: predictions of ductile failure under quasi-static and moderate-rate dynamic loading

Journal Article · · International Journal of Fracture

Ductile failure of structural metals is relevant to a wide range of engineering scenarios. Computational methods are employed to anticipate the critical conditions of failure, yet they sometimes provide inaccurate and misleading predictions. Challenge scenarios, such as the one presented in the current work, provide an opportunity to assess the blind, quantitative predictive ability of simulation methods against a previously unseen failure problem. Instead of evaluating the predictions of a single simulation approach, the Sandia Fracture Challenge relied on numerous volunteer teams with expertise in computational mechanics to apply a broad range of computational methods, numerical algorithms, and constitutive models to the challenge. This exercise is intended to evaluate the state of health of technologies available for failure prediction. In the first Sandia Fracture Challenge, a wide range of issues were raised in ductile failure modeling, including a lack of consistency in failure models, the importance of shear calibration data, and difficulties in quantifying the uncertainty of prediction [see Boyce et al. (Int J Fract 186:5–68, 2014) for details of these observations]. This second Sandia Fracture Challenge investigated the ductile rupture of a Ti–6Al–4V sheet under both quasi-static and modest-rate dynamic loading (failure in ~ 0.1 s). Like the previous challenge, the sheet had an unusual arrangement of notches and holes that added geometric complexity and fostered a competition between tensile- and shear-dominated failure modes. The teams were asked to predict the fracture path and quantitative far-field failure metrics such as the peak force and displacement to cause crack initiation. Fourteen teams contributed blind predictions, and the experimental outcomes were quantified in three independent test labs. In addition, shortcomings were revealed in this second challenge such as inconsistency in the application of appropriate boundary conditions, need for a thermomechanical treatment of the heat generation in the dynamic loading condition, and further difficulties in model calibration based on limited real-world engineering data. As with the prior challenge, this work not only documents the ‘state-of-the-art’ in computational failure prediction of ductile tearing scenarios, but also provides a detailed dataset for non-blind assessment of alternative methods.

Research Organization:
Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)
Sponsoring Organization:
USDOE National Nuclear Security Administration (NNSA)
Grant/Contract Number:
AC04-94AL85000
OSTI ID:
1503056
Alternate ID(s):
OSTI ID: 1257796
Report Number(s):
SAND2016-4409J; PII: 89
Journal Information:
International Journal of Fracture, Journal Name: International Journal of Fracture Vol. 198 Journal Issue: 1-2; ISSN 0376-9429
Publisher:
Springer Science + Business MediaCopyright Statement
Country of Publication:
Netherlands
Language:
English
Citation Metrics:
Cited by: 69 works
Citation information provided by
Web of Science

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Cited By (14)

Application of uncertainty quantification techniques to ductile damage predictions in the third Sandia Fracture Challenge journal June 2019
The third Sandia fracture challenge: predictions of ductile fracture in additively manufactured metal journal July 2019
A framework for material calibration and deformation predictions applied to additive manufacturing of metals journal June 2019
Predicting the reliability of an additively-manufactured metal part for the third Sandia fracture challenge by accounting for random material defects journal July 2019
Sandia Fracture Challenge 3: detailing the Sandia Team Q failure prediction strategy journal July 2019
The second Sandia Fracture Challenge: predictions of ductile failure under quasi-static and moderate-rate dynamic loading text January 2016
A gradient reproducing kernel collocation method for high order differential equations journal May 2019
The third Sandia Fracture Challenge: deterministic and probabilistic modeling of ductile fracture of additively-manufactured material journal March 2019
The third Sandia Fracture Challenge: from theory to practice in a classroom setting journal June 2019
Predicting ductile tearing of additively manufactured 316L stainless steel journal June 2019
Data-Driven Materials Investigations: The Next Frontier in Understanding and Predicting Fatigue Behavior journal May 2018
New nanoscale toughening mechanisms mitigate embrittlement in binary nanocrystalline alloys journal January 2018
Ductile fracture prediction of EH36 grade steel based on Hosford–Coulomb model journal January 2019
Void growth by dislocation adsorption text January 2019

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