Production of complex microchanneled parts of ZrB2-MoSi2 ultra-high temperature ceramics by freeze casting and pressureless spark plasma sintering
Изготовление сложных деталей с микроканалами из сверхвысокотемпературной керамики ZrB2–MoSi2 методом фриз-кастинга и бездавленой искровой плазменной спекания
2024-10-03
SCID: 54.1/8stzaaq3
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MoSi2 sintering additive (15 vol%)ZrB2-MoSi2 ultra-high temperature ceramicsfreeze castinginternal microchannel networkpressureless spark plasma sintering
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Abstract (AI)
A novel approach for manufacturing complex parts of ultra-high-temperature ceramics (UHTCs) is proposed, combining freeze casting with pressureless spark plasma sintering (SPS). With the aid of MoSi 2 sintering additive (15 vol% or more), this combination enables the production of fully dense ZrB 2 -based UHTC parts at 1900 °C. Producing complex-shaped samples including an intricate network of internal microchannels seems feasible, by using additive manufacturing techniques in the production of templates for the external silicone mould and the internal microchannel network to be used during the freeze casting process. Although defects are prone to occur either during freeze drying, due to thermal stresses arising from the expansion mismatch between the internal resin template and the ceramic preform, or during the resin burn-out or SPS cycles, the resulting samples exhibited a fully dense microstructure and similar hardness (17 ± 1 GPa) as the bulk material. Thus, the proposed approach shows promise in the production of arbitrarily complex-shaped UHTC parts that may find application in numerous industrial sectors including aerospace, aviation, and energy generation and storage.
Key Findings
1
Additive manufacturing of templates for external silicone moulds and internal microchannel networks allows fabrication of complex-shaped samples with intricate internal microchannels via freeze casting.
2
Combining freeze casting with pressureless spark plasma sintering (SPS) enables production of fully dense ZrB2-based UHTC parts when using ≥15 vol% MoSi2 sintering additive at 1900 °C.
3
Defects can arise during freeze drying, resin burn-out, or SPS due to thermal stresses from expansion mismatch between internal resin templates and ceramic preforms.
4
Despite possible defects, resulting samples achieved a fully dense microstructure and hardness comparable to bulk material (17 ± 1 GPa).
5
The approach shows promise for producing arbitrarily complex-shaped UHTC parts for aerospace, aviation, and energy applications.
Research Object
Complex microchanneled ZrB2-MoSi2 ultra-high-temperature ceramic parts produced by freeze casting and pressureless spark plasma sintering
Research Subject
Feasibility of producing fully dense complex-shaped ZrB2-based UHTC parts with internal microchannel networks using freeze casting combined with MoSi2 additive and pressureless SPS, including resulting microstructure density, hardness, and defect formation during processing
Publication Details
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2024-10-03
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