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◆ Journal of Materials Research and Technology2025-12-19· Materials science

Surface-engineered bimodal yttria powder system enables high-performance ceramic cores via binder jetting for titanium alloy casting

Wei Zhao, Xiuyuan Qin, Kunhao Feng, Kaiqi Zou, Hai Nan, Jiaming Wu, Xiwang Qie, Qingsong Wei

原始摘要(英文原文)· Original abstract
This study employs a bimodal powder system composed of nanoscale agglomerated spherical particles and micrometer-scale irregular particles to fabricate yttria (Y 2 O 3 ) ceramic cores via Binder Jetting (BJ) technology, aiming to overcome sintering challenges in titanium alloy casting. This study employs an innovative two-step surface modification method for spherical powders: first, coating with 4wt% bis (dioctyl pyrophosphate) vinyl titanate to suppress binder adsorption, followed by activation with 3wt% fatty alcohol polyoxyethylene ether to enhance wettability, ultimately achieving a BJ forming process based on nanopowders. The optimized bimodal mixing ratio (fine powder 24.5%/coarse powder 75.5%) endows the powder bed with exceptional packing density (2.143 g/cm 3 ) and flowability (Hausner ratio=1.41), while the formed green body exhibits excellent bulk density (2.10 ± 0.13 g/cm 3 ) and flexural strength (2.56±0.108 MPa). After sintering at 1700°C, the F24.5C75.5 formulation exhibited accurate anisotropic shrinkage (X-axis: 8.67±0.44%, Y-axis: 9.24±0.46%, Z-axis: 11.64±0.74%), achieving a flexural strength of 23.86±1.2 MPa—a 166% improvement compared to the pure micron-scale formulation—along with a surface roughness of 8.96±0.47 μm, meeting aerospace standard SAE AS71051. Mechanistic analysis revealed that nanoclusters promote interparticle neck formation, while micron-scale particles provided a dimensional anchoring effect, establishing a new paradigm for refractory ceramic additive manufacturing.
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Surface-engineered bimodal yttria powder system enables high-performance ceramic cores via binder jetting for titanium alloy casting — 科研速览 Science Skim