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Porphyry copper deposit formation by sub-volcanic sulphur dioxide flux and chemisorption

机译:次火山二氧化硫通量和化学吸附作用形成斑岩型铜矿床

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摘要

Porphyry copper deposits-the primary source of the world's copper-are a consequence of the degassing of intrusion complexes in magmatic arcs associated with ancient subduction zones(1,2). They are characterized by copper and iron sulphides, commonly found with anhydrite (CaSO4), over scales of several kilometres through intensely altered and fractured rocks(1). The magmatic source of the metals is broadly understood, but the processes that transport and deposit the metals at the megaton scale are unclear. The hydrogen sulphide necessary for metal deposition is commonly assumed to form by a reaction between sulphur dioxide and water, but this reaction is ineffcient(3) and cannot explain the formation of economic-grade deposits. Here we use high-temperature laboratory experiments to show that a very rapid chemisorption reaction occurs between sulphur dioxide gas, a principal component of magmatic gas mixtures, and calcic feldspar, an abundant mineral in the arc crust. The chemisorption reaction generates the mineral anhydrite and hydrogen sulphide gas, and triggers deposition of metal sulphides. We use thermodynamic calculations to show that as magmatic gas cools and expands the concentration of hydrogen sulphide gas increases exponentially to drive efficient deposition of metal sulphides and consequent formation of economic-grade porphyry copper deposits.
机译:斑岩铜矿床-世界铜的主要来源-是与古代俯冲带相关的岩浆弧中侵入复合物脱气的结果(1,2)。它们的特征是铜和铁的硫化物,通常通过硬蚀变和破裂的岩石在数公里的范围内与硬石膏(CaSO4)一起发现(1)。金属的岩浆来源已广为人知,但尚不清楚以百万吨级规模运输和沉积金属的过程。通常认为金属沉积所需的硫化氢是由二氧化硫与水之间的反应形成的,但这种反应效率不高(3),无法解释经济级沉积物的形成。在这里,我们使用高温实验室实验表明,岩浆气体混合物的主要成分二氧化硫气体与弧长壳中的丰富矿物钙长石之间发生了非常快速的化学吸附反应。化学吸附反应产生矿物硬石膏和硫化氢气体,并触发金属硫化物的沉积。我们使用热力学计算表明,随着岩浆气体的冷却和膨胀,硫化氢气体的浓度呈指数增长,从而推动了金属硫化物的有效沉积并因此形成了经济级斑岩铜矿床。

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