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Analysis and design of a calcium-based sulfur sorbent for applications in integrated gasification combined cycle energy systems.

机译:用于集成气化联合循环能源系统的钙基硫吸附剂的分析和设计。

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The reactivity of various Ca-based sorbent materials in pelletized form with H2S or CO2 was investigated at high temperatures (750–880°C). An extensive study was conducted to compare the performance of sorbent pellets derived from plaster of Paris and limestone. Multicycle absorption and regeneration tests showed that plaster-based pellets out performed the limestone-based pellets primarily due to a higher surface area and mesoporosity.; The effect of pore-modifiers on the reactivity of limestone with H 2S was investigated by incorporating additives such as cornstarch, graphite and polyvinylalcohol (PVA) in the sorbent. Multicycle sulfidation and regeneration tests of the modified sorbent showed that starch did not improve the reactivity of the limestone, graphite reduced the reactivity, while PVA improved it.; The effect of the chemical additives MgO and SrO on the performance of CaO-based sorbent pellets was investigated. The effect of MgO was tested by starting with materials that contained MgCO3 in a natural form, such as dolomite. The effect of SrO was tested by starting with SrCO 3 either co-precipitated with CaCO3 or by wet-mixing SrCO 3 with limestone in slurry form. The MgO was found to improve the thermal stability of the CaO-based sorbent but lowered the overall absorption capacity of the material when reacted with CO2 or H2S, while SrO decreased the thermal stability of the sorbent when it was reacted with CO2; no absorption tests were run with H2S.; A study of the performance of pelletized CaO-based cores coated with a refractory material such as alumina and limestone or alumina and kaolin was conducted. The reactivity of the core and shell pellets with H2S was determined. The strength and durability of the pellets were determined by using crushing strength analysis and abrasion resistance tests. Pellets coated with either alumina and limestone or alumina and kaolin proved to be strong and adequate for use in industrial reactors.; A semi-empirical mathematical model was developed to represent the reaction of H2S with a sorbent pellet. The model was based on the well-known shrinking core model and it was applied successfully for the analysis of both pellet cores and core and shell pellets reacting with H2S.
机译:在高温(750–880°C)下研究了各种颗粒状钙基吸附材料与H 2 S或CO 2 的反应性。进行了广泛的研究以比较源自巴黎石膏和石灰石的吸附剂颗粒的性能。多循环吸收和再生测试表明,石膏基颗粒的性能优于石灰石基颗粒,这主要是由于表面积和介孔率较高。通过在吸附剂中掺入添加剂,如玉米淀粉,石墨和聚乙烯醇(PVA),研究了孔隙调节剂对石灰石与H 2 S反应性的影响。改性吸附剂的多循环硫化和再生试验表明,淀粉不能提高石灰石的反应活性,石墨可以降低其反应活性,而PVA可以提高它的活性。研究了化学添加剂MgO和SrO对CaO基吸附剂颗粒性能的影响。 MgO的效果是通过以天然形式包含MgCO 3 的材料(例如白云石)开始进行测试的。通过从与CaCO 3 共沉淀的SrCO 3 开始或通过将SrCO 3 与石灰石在浆液中湿混合来测试SrO的作用形成。发现MgO与Ca 2 或H 2 S反应时可改善CaO基吸附剂的热稳定性,但会降低材料的整体吸收能力,而SrO与CO 2 反应的吸附剂的热稳定性降低; H 2 S没有进行吸收测试;对包覆有难熔材料(如氧化铝和石灰石或氧化铝和高岭土)的CaO基颗粒的性能进行了研究。测定了核和壳颗粒与H 2 S的反应性。粒料的强度和耐久性通过使用抗碎强度分析和耐磨性测试来确定。事实证明,涂有氧化铝和石灰石或氧化铝和高岭土的粒料坚固且足以用于工业反应器。建立了一个半经验数学模型来表示H 2 S与吸附剂颗粒的反应。该模型建立在著名的收缩核模型的基础上,已成功地应用于丸粒核以及与H 2 S反应的核丸和壳丸。

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