← Volver a resultados
Ficha bibliográfica · Consulta y acceso
Artículo

Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities

ZHANG Tong et al · Emergency Management Press · 2026

Acceso abierto disponible
Lectura rápida. Revisá los datos básicos del recurso y luego accedé al contenido desde el botón principal. En esta ficha solo se muestra la información necesaria para identificar la obra, citarla y abrirla.

Acceso al recurso

Entrá al contenido desde la opción principal o elegí otra fuente disponible.

Acceso principal

Acceso abierto disponible

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Abrir recurso

Resumen

Descripción general del contenido del recurso.

Understanding the strain-damage-energy dissipation mechanisms and evolution characteristics of deep coal and rock under impact loading is of great significance for the prevention and control of rockbursts. In this study, a Split Hopkinson Pressure Bar (SHPB) experimental system was employed to investigate the dynamic tensile instability mechanisms of coal under different impact velocities. The stress-strain-energy responses and damage-failure modes of coal specimens were analyzed. Furthermore, a coupled numerical simulation approach integrating PFC3D and FLAC3D was applied, combined with fractal dimension analysis and fragment size distribution methods, to quantitatively characterize the macro-meso damage-failure features of coal under dynamic loading and to elucidate the energy conversion mechanisms and dynamic instability behavior. The results indicate that: ① Impact velocity and static loading significantly influence dynamic tensile strength, strain rate, and damage degree. As impact velocity increases, fragmentation becomes more severe; under similar impact velocities, combined dynamic-static loading produces greater damage than impact loading alone. ② At the macroscopic scale, the main crack initiates in the specimen's middle region, propagates toward the loading end, and eventually penetrates the specimen. At the mesoscopic scale, cracks initiate at the loading end, gradually extend toward the middle, and coalesce. Crack propagation exhibits stage-wise behavior, with tensile cracks dominating during the plastic deformation and failure stages. ③ Higher impact velocities result in increased incident energy, dissipated energy, and dissipated energy density; under combined dynamic-static loading, both dissipated energy and dissipated energy density are higher than under single impact loading.

Cómo citar

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, Z. T. E. (2026). Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities. https://doi.org/10.19606/j.cnki.jmst.2025078

MLA

al, ZHANG Tong et. "Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities." 2026. https://doi.org/10.19606/j.cnki.jmst.2025078.

Chicago

al, ZHANG Tong et. 2026. "Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities.". https://doi.org/10.19606/j.cnki.jmst.2025078.

Harvard

al, Z. T. E. 2026, Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities, Emergency Management Press, available at: https://doi.org/10.19606/j.cnki.jmst.2025078 [Accessed 29 Jun. 2026].

Compartir e imprimir

Guardá la ficha, copiá su enlace permanente o imprimila como PDF.

Exportar referencia

Si usás un gestor bibliográfico, podés exportar el registro en los formatos más comunes.

Detalles del recurso

Información bibliográfica útil para confirmar que se trata del material correcto.

Título
Research and numerical simulation on dynamic tensile instability evolution mechanism of coal under different impact velocities
Autor / colaboradores
ZHANG Tong et al
Editorial
Emergency Management Press
Año de publicación
2026
ISSN
2096-2193
ISSN
2096-2193
Idioma
eng

Materias

Explorá otros recursos relacionados a partir de estas materias.

Copiado