Energy dissipation at the atomic scale explains how fracture energy depends on crack velocity in silica glass
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arXiv
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| Autori principali: | , , , |
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| Natura: | Preprint |
| Pubblicazione: |
2026
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| _version_ | 1866914528865812480 |
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| author | Guren, Marthe Grønlie Bore, Sigbjørn Løland Renard, François Sveinsson, Henrik Andersen |
| author_facet | Guren, Marthe Grønlie Bore, Sigbjørn Løland Renard, François Sveinsson, Henrik Andersen |
| contents | The fracture energy of brittle materials rises with crack velocity, and this effect is typically attributed to surface roughening from path instabilities. Here we show, using molecular dynamics simulations of silica glass with a first-principles machine learned interatomic potential, that the structural fracture energy rises by up to 33 % already below the branching threshold, showing that fracture energy is not a constant material property. This rise in fracture energy is roughly equally partitioned between an increase in the intrinsic surface energy density and nanoscale roughening that increases the real fracture surface area. Results demonstrate that dynamic fracture in silica glass increases the fracture energy not merely by creating more apparent surface, but also by creating a fundamentally different surface at the nanoscale. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2605_03457 |
| institution | arXiv |
| publishDate | 2026 |
| record_format | arxiv |
| spellingShingle | Energy dissipation at the atomic scale explains how fracture energy depends on crack velocity in silica glass Guren, Marthe Grønlie Bore, Sigbjørn Løland Renard, François Sveinsson, Henrik Andersen Materials Science Mesoscale and Nanoscale Physics Computational Physics The fracture energy of brittle materials rises with crack velocity, and this effect is typically attributed to surface roughening from path instabilities. Here we show, using molecular dynamics simulations of silica glass with a first-principles machine learned interatomic potential, that the structural fracture energy rises by up to 33 % already below the branching threshold, showing that fracture energy is not a constant material property. This rise in fracture energy is roughly equally partitioned between an increase in the intrinsic surface energy density and nanoscale roughening that increases the real fracture surface area. Results demonstrate that dynamic fracture in silica glass increases the fracture energy not merely by creating more apparent surface, but also by creating a fundamentally different surface at the nanoscale. |
| title | Energy dissipation at the atomic scale explains how fracture energy depends on crack velocity in silica glass |
| topic | Materials Science Mesoscale and Nanoscale Physics Computational Physics |
| url | https://arxiv.org/abs/2605.03457 |