SearcharxivSearch

arXiv subjects

Weichen Kong

Publications and source records attributed to Weichen Kong.

3 recordsLinked to original sources

Causation-guided mechanism identification and interpretable reduced-order modeling of damage-driving grain-boundary stress in creep

GB local stress is central to the initiation and evolution of long-term creep damage in polycrystalline superalloys. Owing to the high-dimensional nonlinear relationships between the GB stress response and multiple crystallographic, microstructural, and micromechanical characteristics, it remains challenging to identify the key characteristics governing GB stress and to elucidate their mechanisms of influence. Dislocation-climb-affected crystal-plasticity finite-element simulations of minimal grain clusters are combined with an integrated causation-guided machine-learning framework, in which mechanics-informed descriptors are analyzed by causation entropy (CE) to identify governing mechanisms and then distilled into a reduced-order regression form for interpretable prediction of GB normal stress. Unlike conventional black-box surrogate models, the proposed framework combines physically meaningful descriptors, CE-based mechanism identification, and an explicit compact regression form, enabling the dominant physical variables and their effects on GB normal stress to be directly interpreted. Among 18 physically motivated characteristics, the GB inclination angle, the slip transmission, the climb-related Schmid-type indicator, and the elastic-modulus mismatch are found to be dominant, revealing the coupled roles of interfacial geometry, crystallographic compatibility, creep stress relaxation, and micromechanical contrast. The identified characteristics hierarchy and functional representation remain effective under multiaxial loading and can be extended to tricrystal systems through physically interpretable nonlocal augmentation when a purely local description becomes insufficient, demonstrating strong physical consistency and robust generalizability across physical conditions.

cond-mat.mtrl-sci

A dual-scale stochastic analysis framework for creep failure considering microstructural randomness

Creep failure under high temperatures is a complex multiscale and multi-mechanism issue involving inherent microstructural randomness. To investigate the effect of microstructures on the uniaxial/multiaxial creep failure, a dual-scale stochastic analysis framework is established to introduce the grain boundary (GB) characteristics into the macroscopic analysis. The nickel-base superalloy Inconel 617 is considered in this study. Firstly, the damage mechanisms of GBs are investigated based on the crystal plasticity finite element (CPFE) method and cohesive zone model (CZM). Subsequently, based on the obtained GB damage evolution, a novel Monte Carlo (MC) approach is proposed to establish the relationship between the GB orientation and area distribution and macroscopic creep damage. Finally, a dual-scale stochastic multiaxial creep damage model is established to incorporate the influence of the random GB orientation and area distribution. With the numerical application of the proposed creep damage model, the random initiation and growth of creep cracks in the uniaxial tensile specimen and the pressurized tube are captured and analyzed. The proposed stochastic framework effectively considers the inherent randomness introduced by GB characteristics and efficiently realizes full-field multiscale calculations. It also shows its potential applications in safety evaluation and life prediction of creep components and structures under high temperatures.

cond-mat.mtrl-sci

3D front tip fields in creeping solids under constraint effects: a higher-order asymptotic solution

As one of the most important topics studied in creep fracture mechanics, mechanics fields at three-dimensional (3D) sharp V-notches and crack tip have drawn tremendous attentions. With many years efforts on constraint theory developed in creeping solids, there still seems dense fog on how in-plane and out-of-plane constraint effects are interacted for 3D sharp V-notch and crack in creeping solids. To shed lights on this topic, a 3D higher-order termed solution for sharp V-notches in creeping materials subjected to mode 1 loading is established by introducing the out-of-plane factor, which is the out-of-plane stress divided by the sum of in-plane normal stress. The solution can naturally be degenerated to a 3D crack. Based on the 3D higher-order term solution, a new fracture parameter is proposed and combined with to characterize 3D constraint effect. It is found that the stress exponents and angular distribution of higher-order term for 3D notches and cracks are highly related to . The proposed higher order termed solutions show better agreement with the FEA results than the 3D leading-term and 2D two-term solutions, especially for smaller notch angles and ligament width. Moreover, the presented 3D constraint theory shows that effects of and are highly interlinked rather than simply separated. It implies that the 3D constraint level may be significantly influenced by . The 3D mathematical solutions discussed in this paper could enhance the understanding of the 3D effect and has the potential to explain the 3D constraint effect on the notches and cracks under creep conditions.

physics.class-ph