Gilchrist–Thomas process
Metallurgical process
The Gilchrist–Thomas process or Thomas process is a historical process for refining pig iron, derived from the Bessemer converter. It is named after its inventors who patented it in 1877: Percy Carlyle Gilchrist and his cousin Sidney Gilchrist Thomas.
Nº Q356282 ★★★
Rare · History
Gilchrist–Thomas process
Metallurgical process
The Gilchrist–Thomas process or Thomas process is a historical process for refining pig iron, derived from the Bessemer converter. It is named after its inventors who patented it in 1877: Percy Carlyle Gilchrist and his cousin Sidney Gilchrist Thomas.
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From Wikipedia
The Gilchrist–Thomas process or Thomas process is a historical process for refining pig iron, derived from the Bessemer converter. It is named after its inventors who patented it in 1877: Percy Carlyle Gilchrist and his cousin Sidney Gilchrist Thomas. By allowing the exploitation of phosphorous iron ore, the most abundant, this process allowed the rapid expansion of the steel industry outside the United Kingdom and the United States. The process differs essentially from the Bessemer process in the refractory lining of the converter. The latter, being made of dolomite ((Ca,Mg)(CO3)2) fired with tar, is basic (MgO giving O2− anions), whereas the Bessemer lining, made of packed sand, is acidic (SiO2 accepting O2− anions) according to the Lux-Flood theory of molten oxides. Phosphorus, by migrating from liquid iron to molten slag, allows both the production of a steel of satisfactory quality, and of phosphates sought after as fertilizer, known as "Thomas meal". The disadvantages of the basic process includes larger iron loss and more frequent relining of the converter vessel. After having favored the spectacular growth of the Lorraine iron and steel industry, the process progressively faded away in front of the Siemens-Martin Open-hearth furnace, which also used the benefit of basic refractory lining, before disappearing in the mid-1960s: with the development of gas liquefaction and the cryogenic separation of O2 from air, the use of pure oxygen became economically viable. Even if modern pure oxygen converters all operate with a basic medium, their performance and operation have little to do with their ancestor.
Text: Wikipédia, CC BY-SA 4.0. · Image: Tbachner (Public domain) ·
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