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Application of DSC to study the promoting effect of a small amount of high donor number solvent on the solvent swelling of kerogen with non-covalent cross-links in non-polar solvents

机译:DSC在研究少量高施主数溶剂对非极性溶剂中具有非共价交联的干酪根溶剂溶胀的促进作用中的应用

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This paper investigates the effect of a small amount of a strong electron-donating solvent (or high electron donor number solvent) on the solvent swelling of covalently and non-covalently cross-linked Kuker-site oil shale kerogen in non-polar solvents. The non-polar (or non-specifically interacting) solvents used in the study were benzene, o-xylene and tetralin. The specifically interacting (or swelling promoting), high donor number solvent added was N-methyl-2-pyrrolidinone (NMP). The changes in solvent uptake of the samples caused by the specifically interacting solvent, previously in equilibrium with respect to a non-specifically interacting solvent, were studied using a Differential Scanning Calorimeter (DSC). The specifically interacting solvent was added in small amounts, up to roughly 2 mmol of NMP per gram of kerogen (that is, 0.208, 0.416, 0.624, 0.831, 1.039 and 2.07 mmol of NMP per gram of kerogen). The experiments indicated an increase up to about two times in the swelling ratio by adding a strong electron donor solvent at 0.8 mmol per gram of kerogen. The effect was most pronounced in the case of tetralin, the solvent with the lowest initial swelling ratio and the largest molar volume. From solvent melting point depression and gas chromatography (GC) experiments, it could be stated that up to 0.8 mmol(NMP)/g(kerogen) most of the high electron donor solvent was absorbed by the Kukersite kerogen. The value 0.8 mmol NMP per gram of kerogen is specific to Kukersite oil shale kerogen. The DSC-based method applied can be considered quantitative up to this limiting value of 0.8 mmol NMP per gram of kerogen, and above this value the results indicate characteristic trends. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文研究了在非极性溶剂中,少量强供电子溶剂(或高电子给体数溶剂)对共价和非共价交联的Kuker-site油页岩干酪根的溶剂溶胀的影响。研究中使用的非极性(或非特异性相互作用)溶剂为苯,邻二甲苯和四氢化萘。添加的特定相互作用(或促进溶胀)的高供体数的溶剂是N-甲基-2-吡咯烷酮(NMP)。使用差示扫描量热仪(DSC)研究了以前由非特异性相互作用的溶剂达到平衡的,由特异性相互作用的溶剂引起的样品吸收溶剂的变化。少量添加特定相互作用的溶剂,每克干酪根最多添加约2 mmol NMP(即每克干酪根添加0.208、0.416、0.624、0.831、1.039和2.07 mmol NMP)。实验表明,通过添加每克干酪根含量为0.8 mmol的强电子给体溶剂,溶胀率最多可提高两倍。在四氢萘的情况下效果最明显,四氢萘是具有最低初始溶胀比和最大摩尔体积的溶剂。从溶剂熔点降低和气相色谱(GC)实验可以看出,最多0.8 mmol(NMP)/ g(干酪根)的大多数高电子供体溶剂被Kukersite干酪根吸收。每克干酪根0.8 mmol NMP的值特定于Kukersite油页岩干酪根。可以认为所应用的基于DSC的方法的定量上限为每克干酪根0.8 mmol NMP的极限值,超过该极限值,结果表明了特征趋势。 (C)2015 Elsevier Ltd.保留所有权利。

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