Preparation method of ultrahigh-manganese steel based TiC steel bond hard alloy
A technology of steel-bonded hard alloy and ultra-high manganese, applied in the field of preparing ultra-high manganese steel-based TiC steel-bonded hard alloy by reaction sintering method, can solve the adverse effects of material structure and performance, unsuitability for large-scale production, and preparation cost High-level problems, to achieve the effect of improving various performances, small size, and uniform distribution
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Embodiment 1
[0029] A method for preparing an ultra-high manganese steel-based TiC steel-bonded hard alloy, which adopts the following technical scheme:
[0030] (1) Raw materials:
[0031] The raw materials used are titanium powder, ferromolybdenum powder, ferrochrome powder, ferrovanadium powder, ferromanganese powder, ferrosilicon powder, iron powder, nickel powder, colloidal graphite, CeO 2 , PVA, the powder particle size is below 10-50μm;
[0032] (2) Material preparation:
[0033] 1) Preparation of in-situ synthesized TiC mixed powder: Titanium (Ti) powder and graphite powder were prepared at a C / Ti atomic ratio of 0.85 to prepare in-situ synthesized TiC mixed powder;
[0034] 2) Preparation of binder phase matrix alloy powder: The chemical composition of the binder phase metal material is: C1.1%, Cr2.5%, Mo1.5%, V0.7%, Si0.6%, Mn18%, Ni0 .8%, S≤0.02, P≤0.02, CeO 2 ≤0.8%, balance Fe, and unavoidable impurity elements;
[0035] 3) Preparation of ultra-high manganese steel-based ...
Embodiment 2
[0042] A method for preparing an ultra-high manganese steel-based TiC steel-bonded hard alloy, which adopts the following technical scheme:
[0043] (1) Raw materials:
[0044] The raw materials used are titanium powder, ferromolybdenum powder, ferrochrome powder, ferrovanadium powder, ferromanganese powder, ferrosilicon powder, iron powder, nickel powder, colloidal graphite, CeO 2 , Y 3 o 2 Two kinds, PVA, the powder particle size is below 10-50μm;
[0045] (2) Material preparation:
[0046] 1) Preparation of in-situ synthesized TiC mixed powder: Titanium (Ti) powder and graphite powder were prepared with a C / Ti atomic ratio of 0.9 to prepare in-situ synthesized TiC mixed powder;
[0047] 2) Preparation of binder phase matrix alloy powder: The chemical composition of the binder phase metal material is: C1.3%, Cr2.8%, Mo1.8%, V0.8%, Si0.7%, Mn19%, Ni0 .9%, S≤0.02, P≤0.02, CeO 2 0.5%, Y 3 o 2 0.3%, balance Fe, and unavoidable impurity elements;
[0048] 3) Preparati...
Embodiment 3
[0055] A method for preparing an ultra-high manganese steel-based TiC steel-bonded hard alloy, which adopts the following technical scheme:
[0056] (1) Raw materials:
[0057] The raw materials used are titanium powder, ferromolybdenum powder, ferrochrome powder, ferrovanadium powder, ferromanganese powder, ferrosilicon powder, iron powder, nickel powder, colloidal graphite, CeO 2 , Y 3 o 2 , La 2 o 3 , PVA, the powder particle size is below 10-50μm;
[0058] (2) Material preparation:
[0059] 1) Preparation of in-situ synthesized TiC mixed powder: Titanium (Ti) powder and graphite powder were prepared with a C / Ti atomic ratio of 1.0 to prepare in-situ synthesized TiC mixed powder;
[0060] 2) Preparation of binder phase matrix alloy powder: The chemical composition of the binder phase metal material is: C1.5%, Cr3.5%, Mo2.0%, V1.0%, Si0.8%, Mn20%, Ni1 .0%, S≤0.02, P≤0.02, CeO 2 , Y 3 o 2 , La 2 o 3 One or the combination of two or more ≤ 0.8%, the balance Fe, an...
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