PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 29, 2026International Journal for Numerical Methods in Engineering2 citations

A Generalized Peridynamic Model Based on Seth–Hill Bond‐Strain Measures for Mixed‐Mode Fracture

View Full Paper
RWRui WangHYH. Thomas YuHHHanWei Huang

Key Points

  • The aim is to develop a generalized peridynamic model using Seth–Hill bond-strain measures to accurately simulate mixed-mode fracture behaviors.
  • Reformulated the ordinary state-based peridynamic model for three-dimensional analysis.
  • Constructed a shape tensor state specifically for two-dimensional problems.
  • Derived scalar force states based on bond-strain measures for linear elastic materials.
  • Developed a nonlocal work-conjugate stress tensor using the principle of work conjugacy.
  • Incorporated maximum principal stress and Drucker–Prager criteria for simulation.
  • Validated the model through benchmark cases demonstrating high accuracy in stress evaluation.
  • Predicted failure effectively in various scenarios, capturing complex crack coalescence in rock materials.
  • Showed that the model avoids unphysical material interpenetration, enhancing its reliability.

Abstract

ABSTRACT In this study, a generalized peridynamic model incorporating Seth–Hill bond‐strain measures is proposed to capture mixed‐mode fracture behaviors. We begin with the reformulation of the model introduced by Tupek and Radovitzky within the ordinary state‐based peridynamic (OSB‐PD) framework, where we demonstrate that the three‐dimensional shape tensor state satisfies an integral identity equivalent to the fourth‐order symmetric identity tensor. Based on this identity, the shape tensor state tailored for two‐dimensional problems is constructed, enabling the derivation of the corresponding scalar force state based on Seth–Hill bond‐strain measures for linear elastic materials. This generalized model avoids unphysical material interpenetration and enables the decomposition of the scalar force state over the classic model. Moreover, a nonlocal work‐conjugate stress tensor is developed for the first time by employing the reformulated scalar force state based on the principle of work conjugacy and the integral identity of the shape tensor state. Finally, the maximum principal stress and Drucker–Prager failure criteria are incorporated into the generalized OSB‐PD framework to enable the simulation of mixed‐mode brittle fracture. The accuracy and robustness of the proposed model are validated through several benchmark cases, demonstrating accurate stress evaluation and failure prediction. Notably, the model successfully captures complex crack coalescence patterns in rock subjected to uniaxial compression, underscoring its effectiveness in depicting mixed‐mode fracture processes.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69c8c399de0f0f753b39e760https://doi.org/10.1002/nme.70316
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A hybrid peridynamics-FEM model for weakly coupled thermo-mechanical fracture of brittle and quasi-brittle solids2026
  2. 2Numerical modeling of ductile fracture for high-strength metallic materials with a reformulated bond-level Gurson-type peridynamic model2026
  3. 3Mixed-Mode Dynamic Stress Intensity Factors and Fracture Analysis Using Ordinary State-Based Peridynamics2026
  4. 4Peridynamic‐based modeling of elastoplasticity and fracture dynamics2024 · 1 citations
  5. 5Non-ordinary state-based peridynamics model for rock crack propagation: a combined stress-energy fracture method2026