Standard

Relating stiffness changes in porous materials to the evolution of pore space. / Pronina, Yulia ; Narykova, Maria ; Kachanov, Mark.

в: Mechanics of Materials, Том 202, 105236, 01.03.2025.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

APA

Vancouver

Author

Pronina, Yulia ; Narykova, Maria ; Kachanov, Mark. / Relating stiffness changes in porous materials to the evolution of pore space. в: Mechanics of Materials. 2025 ; Том 202.

BibTeX

@article{6dad0572656d43d3926739f6f64fefe7,
title = "Relating stiffness changes in porous materials to the evolution of pore space.",
abstract = "The work aims at relating stiffness changes in porous materials to the evolution of pore space geometry. After a brief review of the relevant micromechanics tools, we apply them to case studies on several metals. In particular, it is clarified, when porosity can or cannot be used as a single quantitative characteristic of the pore space in whose terms the effective stiffness is to be expressed, and when it must be changed to crack density. Namely, the use of porosity parameter is legitimate in cases of isotropic mixtures of pores having approximately equal shape factors, provided the shapes are not strongly oblate (aspect ratios larger than about 0.08). Considered examples show that, in cases of strongly oblate, crack-like pores, noticeable stiffness changes may occur at very low values of porosity; in such cases, the crack density parameter must be used. Besides predicting the effective stiffness in terms of proper characteristics of the pore space, the developed methodology allows monitoring the evolution of pore shapes based on stiffness changes and porosity data. In our analysis, pore geometries are modeled by spheroids of appropriate aspect ratios; they provide sufficient flexibility and allow quantitative modeling. The adequacy of such modeling is supported by agreement of the theoretical results with experimental data.",
keywords = "Crack density, Creep, Fatigue, Pore healing, Porosity, Stiffness",
author = "Yulia Pronina and Maria Narykova and Mark Kachanov",
year = "2025",
month = mar,
day = "1",
doi = "10.1016/j.mechmat.2024.105236",
language = "English",
volume = "202",
journal = "Mechanics of Materials",
issn = "0167-6636",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Relating stiffness changes in porous materials to the evolution of pore space.

AU - Pronina, Yulia

AU - Narykova, Maria

AU - Kachanov, Mark

PY - 2025/3/1

Y1 - 2025/3/1

N2 - The work aims at relating stiffness changes in porous materials to the evolution of pore space geometry. After a brief review of the relevant micromechanics tools, we apply them to case studies on several metals. In particular, it is clarified, when porosity can or cannot be used as a single quantitative characteristic of the pore space in whose terms the effective stiffness is to be expressed, and when it must be changed to crack density. Namely, the use of porosity parameter is legitimate in cases of isotropic mixtures of pores having approximately equal shape factors, provided the shapes are not strongly oblate (aspect ratios larger than about 0.08). Considered examples show that, in cases of strongly oblate, crack-like pores, noticeable stiffness changes may occur at very low values of porosity; in such cases, the crack density parameter must be used. Besides predicting the effective stiffness in terms of proper characteristics of the pore space, the developed methodology allows monitoring the evolution of pore shapes based on stiffness changes and porosity data. In our analysis, pore geometries are modeled by spheroids of appropriate aspect ratios; they provide sufficient flexibility and allow quantitative modeling. The adequacy of such modeling is supported by agreement of the theoretical results with experimental data.

AB - The work aims at relating stiffness changes in porous materials to the evolution of pore space geometry. After a brief review of the relevant micromechanics tools, we apply them to case studies on several metals. In particular, it is clarified, when porosity can or cannot be used as a single quantitative characteristic of the pore space in whose terms the effective stiffness is to be expressed, and when it must be changed to crack density. Namely, the use of porosity parameter is legitimate in cases of isotropic mixtures of pores having approximately equal shape factors, provided the shapes are not strongly oblate (aspect ratios larger than about 0.08). Considered examples show that, in cases of strongly oblate, crack-like pores, noticeable stiffness changes may occur at very low values of porosity; in such cases, the crack density parameter must be used. Besides predicting the effective stiffness in terms of proper characteristics of the pore space, the developed methodology allows monitoring the evolution of pore shapes based on stiffness changes and porosity data. In our analysis, pore geometries are modeled by spheroids of appropriate aspect ratios; they provide sufficient flexibility and allow quantitative modeling. The adequacy of such modeling is supported by agreement of the theoretical results with experimental data.

KW - Crack density

KW - Creep

KW - Fatigue

KW - Pore healing

KW - Porosity

KW - Stiffness

UR - https://kwnsfk27.r.eu-west-1.awstrack.me/L0/https:%2F%2Fauthors.elsevier.com%2Fa%2F1kN5nc7qwm1xK/1/010201942751ce31-7ca232e4-b9e1-4b44-a86c-bf1b447a274d-000000/aU4sIbzoSCnYRsLsKKDse9wACZM=407

UR - https://www.mendeley.com/catalogue/6265b3d8-a07e-37e3-aaf5-0b693fc65db9/

U2 - 10.1016/j.mechmat.2024.105236

DO - 10.1016/j.mechmat.2024.105236

M3 - Article

VL - 202

JO - Mechanics of Materials

JF - Mechanics of Materials

SN - 0167-6636

M1 - 105236

ER -

ID: 129158148