Mangan-alloy production
A production process and manganese alloy technology, applied in the field of manganese alloy production technology, can solve the problems of long process flow, long production cycle, environmental pollution, etc., and achieve the effects of strong resource adaptability, improved production efficiency, and reduced production costs
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Embodiment 1
[0026] Example 1 Example 1
[0027] Manganese oxide: 78% carbon: 8%
[0028] Aluminum: 10% Calcium oxide: 48%
[0029] Silicon carbide: 5% Silicon dioxide: 15%
[0030] Activated carbon: 2% Magnesium oxide: 13%
[0031] Resin: 5% Barium oxide: 10%
[0032] Aluminum: 6%
Embodiment 2
[0033] Example 2 Example 2
[0034] Manganese sinter: 79% Carbon: 6%
[0035] Silicon: 7% Calcium oxide: 49%
[0036] Silicon carbide: 3% Silicon dioxide: 15%
[0037] Activated carbon: 4% Magnesium oxide: 10%
[0038] Pitch: 7% Barium oxide: 15%
[0039] Barium: 5%
Embodiment 3
[0040] Example 3 Example 3
[0041] Manganese carbonate: 80% carbon: 14%
[0042] Calcium: 5% Calcium oxide: 43%
[0043] Ferrosilicon: 4% Silicon dioxide: 12%
[0044] Activated carbon: 3% Magnesium oxide: 7%
[0045] Water glass: 8% Barium oxide: 18%
[0046] Magnesium: 6%
[0047] The preparation methods of the above embodiments 1 to 3 are the same as those described in the specification.
[0048] In addition to the above process conditions that can produce manganese alloys, the following embodiments can also produce ferromanganese alloys and silico-manganese alloys.
[0049] Example 1: Manufacturing (production) of ferromanganese alloy
[0050] The manganese ore pellets with a manganese content of about 30.5% are melted into liquid manganese-containing slag in a shaft furnace or cupola (iron furnace) with an hourly output of 3 tons, and then the liquid manganese-containing slag is transferred to a 1.5-ton AC electric arc furnace In the heating c...
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