Ferrosilicon

Alloy of silicon and iron
Ferrosilicon alloy

Ferrosilicon is an alloy of iron and silicon with a typical silicon content by weight of 15–90%. It contains a high proportion of iron silicides.[1]

Production and reactions

Ferrosilicon is produced by reduction of silica or sand with coke in the presence of iron. Typical sources of iron are scrap iron or millscale. Ferrosilicons with silicon content up to about 15% are made in blast furnaces lined with acid fire bricks.[2]

Ferrosilicons with higher silicon content are made in electric arc furnaces.[2] The usual formulations on the market are ferrosilicons with 15%, 45%, 75%, and 90% silicon. The remainder is iron, with about 2% consisting of other elements like aluminium and calcium. An overabundance of silica is used to prevent formation of silicon carbide. Microsilica is a useful byproduct.

A mineral perryite is similar to ferrosilicon, with its composition Fe5Si2. In contact with water, ferrosilicon may slowly produce hydrogen. The reaction, which is accelerated in the presence of base, is used for hydrogen production. The melting point and density of ferrosilicon depends on its silicon content, with two nearly-eutectic areas, one near Fe2Si and second spanning FeSi2-FeSi3 composition range.

Physical properties of ferrosilicon[3][4]
Si mass fraction (%) 0 20 35 50 60 80 100
Solidus point (°C) 1538 1200 1203 1212 1207 1207 1414
Liquidus point (°C) 1538 1212 1410 1220 1230 1360 1414
Density (g/cm3) 7.87 6.76 5.65 5.1 4.27 3.44 2.33

Uses

Ferrosilicon is used as a source of silicon to reduce metals from their oxides and to deoxidize steel and other ferrous alloys. This prevents the loss of carbon from the molten steel (so called blocking the heat); ferromanganese, spiegeleisen, calcium silicides, and many other materials are used for the same purpose.[5] It can be used to make other ferroalloys. Ferrosilicon is also used for manufacture of silicon, corrosion-resistant and high-temperature-resistant ferrous silicon alloys, and silicon steel for electromotors and transformer cores. In the manufacture of cast iron, ferrosilicon is used for inoculation of the iron to accelerate graphitization. In arc welding, ferrosilicon can be found in some electrode coatings.

Ferrosilicon is a basis for manufacture of prealloys like magnesium ferrosilicon (MgFeSi), used for production of ductile iron. MgFeSi contains 3–42% magnesium and small amounts of rare-earth metals. Ferrosilicon is also important as an additive to cast irons for controlling the initial content of silicon.

Magnesium ferrosilicon is instrumental in the formation of nodules, which give ductile iron its flexible property. Unlike gray cast iron, which forms graphite flakes, ductile iron contains graphite nodules, or pores, which make cracking more difficult.

Ferrosilicon is also used in the Pidgeon process to make magnesium from dolomite.

Silanes

Treatment of high-silicon ferrosilicon with hydrogen chloride is the basis of the industrial synthesis of trichlorosilane.

Ferrosilicon is also used in a ratio of 3–3.5% in the manufacture of sheets for the magnetic circuit of electrical transformers.

Hydrogen production

The method has been in use since World War I. Prior to this, the process and purity of hydrogen generation relying on steam passing over hot iron was difficult to control.[6] The chemical reaction uses sodium hydroxide (NaOH), ferrosilicon, and water (H2O). While in the "silicol" process, a heavy steel pressure vessel is filled with sodium hydroxide and ferrosilicon, and upon closing, a controlled amount of water is added; the dissolving of the hydroxide heats the mixture to about 200 °F (93 °C) and starts the reaction; sodium silicate, hydrogen and steam are produced.[7] The overall reaction of the process is believed to be:[2][note 1]

2NaOH + Si + H2O → Na2SiO3 + 2H2

Ferrosilicon is used by the military to quickly produce hydrogen for balloons by the ferrosilicon method. The generator may be small enough to fit in a truck and requires only a small amount of electric power, the materials are stable and not combustible, and they do not generate hydrogen until mixed.[8]

One report notes that this method of hydrogen production wasn't thoroughly investigated for about century despite being reported by the US military in the beginning of 20th century.[2]

Footnotes

  1. ^ The iron is intentionally omitted

References

  1. ^ Rudolf Fichte. "Ferroalloys". Ullmann's Encyclopedia of Industrial Chemistry. Weinheim: Wiley-VCH. doi:10.1002/14356007.a10_305. ISBN 978-3527306732.
  2. ^ a b c d Brack, Paul; Dann, Sandie E.; Wijayantha, K. G. Upul; Adcock, Paul; Foster, Simon (November 2015). "An old solution to a new problem? Hydrogen generation by the reaction of ferrosilicon with aqueous sodium hydroxide solutions". Energy Science & Engineering. 3 (6): 535–540. doi:10.1002/ese3.94. S2CID 54929253.
  3. ^ Materials Science and International Team (2008). Selected Systems from C-Cr-Fe to Co-Fe-S. Springer. p. 22 (Fig. 2 – Phase diagram of the Fe-Si system). doi:10.1007/978-3-540-74196-1_12. ISBN 978-3-540-74193-0. Retrieved 25 December 2011.
  4. ^ Yuan, W.J.; Li, R.; Shen, Q.; Zhang, L.M. (April 2007). "Characterization of the evaluation of the solid solubility of Si in sintered Fe–Si alloys using DSC technique". Materials Characterization. 58 (4): 376–379. doi:10.1016/j.matchar.2006.06.003.
  5. ^ Ramesh Singh (3 October 2011). Applied Welding Engineering: Processes, Codes, and Standards. Elsevier. pp. 38–. ISBN 978-0-12-391916-8. Retrieved 25 December 2011.
  6. ^ Hydrogen for Airships, A.M. Burgess and Cleveland Industrial Archaeology Society
  7. ^ Candid science: conversations with famous chemists, István Hargittai, Magdolna Hargittai, p. 261, Imperial College Press (2000) ISBN 1-86094-228-8
  8. ^ Report No 40: The ferrosilicon process for the generation of hydrogen

Further reading

  • Jorgenson, John D.; Corathers, Lisa A.; Gambogi, Joseph; Kuck, Peter H.; Magyar, Michael J.; Papp, John F.; Shedd, Kim B. "Minerals Yearbook 2006: Ferroalloys" (PDF). United States Geological Survey. Retrieved 2009-04-24.
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Salts and covalent derivatives of the silicide ion
SiH4
+H
He
LiSi Be2Si SiB3
SiB6
+B
SiC
+C
Si3N4
-N
+N
SiO2 SiF4 Ne
NaSi Mg2Si Al Si4− SiP, SiP2
-P
+P
SiS2
-S
SiCl4 Ar
KSi CaSi
CaSi2
ScSi Sc5Si3 Sc2Si3 Sc5Si4 TiSi
TiSi2
V3Si V5Si3, V6Si5, VSi2, V6Si5 Cr3Si Cr5Si3, CrSi, CrSi2 MnSi, MnSi2, Mn9Si2, Mn3Si, Mn5Si3, Mn11Si9 FeSi2
FeSi
Fe5Si3
Fe2Si
Fe3Si
CoSi, CoSi2, Co2Si, Co3Si NiSi, more… Cu17Si3, Cu56Si11, Cu5Si, Cu33Si7, Cu4Si, Cu19Si6, Cu3Si, Cu87Si13 Zn Ga GeSi
+Ge
SiAs, SiAs2
-As
+As
SiSe2 SiSe SiBr4 Kr
RbSi SrSi2 YSi Y5Si3, Y5Si4, Y3Si5, YSi1.4 ZrSi Zr5Si3, Zr5Si4, ZrSi2, Zr3Si2, Zr2Si, Zr3Si Nb4Si Nb5Si3 MoSi2
Mo3Si Mo5Si3
Tc RuSi Ru2Si, Ru4Si3, Ru2Si3 RhSi Rh2Si, Rh5Si3, Rh3Si2, Rh20Si13 PdSi Pd5Si, Pd9Si2, Pd3Si, Pd2Si Ag Cd In Sn Sb TeSi2 Te2Si3 SiI4 Xe
CsSi Ba2Si BaSi2, Ba5Si3 Ba3Si4 * Lu5Si3 HfSi Hf2Si, Hf3Si2, Hf5Si4, HfSi2 Ta9Si2, Ta3Si, Ta5Si3 WSi2 W5Si3 ReSi Re2Si, ReSi1.8 Re5Si3 OsSi IrSi PtSi Au Hg Tl Pb Bi Po At Rn
Fr Ra ** Lr Rf Db Sg Bh Hs Mt Ds Rg Cn Nh Fl Mc Lv Ts Og
 
* LaSi2 La5Si3, La3Si2, La5Si4, LaSi CeSi2 Ce5Si3, Ce3Si2, Ce5Si4, CeSi, Ce3Si5 PrSi2 Pr5Si3, Pr3Si2, Pr5Si4, PrSi NdSi Nd5Si3, Nd5Si4, Nd5Si3, Nd3Si4, Nd2Si3, NdSix Pm SmSi2 Sm5Si4, Sm5Si3, SmSi, Sm3Si5 Eu? GdSi2 Gd5Si3, Gd5Si4, GdSi TbSi2 SiTb, Si4Tb5, Si3Tb5 DySi2 DySi HoSi2 Ho5Si3, Ho5Si4, HoSi, Ho4Si5 ErSi2 Er5Si3, Er5Si4, ErSi Tm? YbSi Si1.8Yb, Si5Yb3, Si4Yb3, Si4Yb5, Si3Yb5
** Ac ThSi PaSi USi2 NpSi2 PuSi Am Cm Bk Cf Es Fm Md No