| Yazarlar (1) |
Dr. Öğr. Üyesi Hakan ÇAĞLAR
Kırşehir Ahi Evran Üniversitesi, Türkiye |
| Özet |
| Although various nanomaterials have been widely investigated for enhancing the mechanical and fracture properties of Ultra-High Performance Concrete (UHPC), the specific role of Sialon nanoparticles (SNPs) in modifying the multi-mode fracture resistance of carbon fiber-reinforced UHPC (CFR-UHPC) has not yet been addressed.This study examines the effects of SNPs on the fracture toughness of CFR-UHPC through a combined experimental--numerical framework. A high-fidelity three-dimensional multi-scale finite element model was developed, incorporating randomly distributed carbon fibers and an interfacial transition zone (ITZ) represented via traction--separation laws calibrated using a Genetic Algorithm (GA). The model was validated against cracked straight-through Brazilian disk (CSTBD) experiments conducted at crack inclination angles of α = 0°, 29°, and 45°, demonstrating strong agreement in both load--displacement responses and crack propagation patterns. Parametric simulations revealed that SNPs enhance fracture toughness across all fracture modes. The most pronounced improvement was observed in Mode II, where K |
| Anahtar Kelimeler |
| Carbon fiber reinforcement | Fracture toughness | Mixed-mode fracture | Numerical simulation | Sialon nanoparticles (SNPs) | Ultra-high performance concrete (UHPC) |
| Makale Türü | Özgün Makale |
| Makale Alt Türü | SSCI, AHCI, SCI, SCI-Exp dergilerinde yayınlanan tam makale |
| Dergi Adı | Theoretical and Applied Fracture Mechanics |
| Dergi ISSN | 0167-8442 Wos Dergi Scopus Dergi |
| Dergi Tarandığı Indeksler | SCI-Expanded |
| Dergi Grubu | Q1 |
| Makale Dili | İngilizce |
| Basım Tarihi | 03-2026 |
| Cilt No | 142 |
| Sayı | 1 |
| Sayfalar | 1 / 20 |
| DOI Numarası | 10.1016/j.tafmec.2025.105359 |
| Makale Linki | https://www.sciencedirect.com/science/article/pii/S0167844225005178?via%3Dihub |