The mechanism of decomposition of calcium inosilicate(CaSiO_3) synthesized through chemical deposition method using analytical reagent NaSiO_3·9H_2O and CaCl_2 during the alkali fusion process using NaOH was investigated by Raman spectroscopy in situ,X-ray diffraction and Fourier transform infrared spectrometer(FTIR).The results show that the tetrahedral silica chains within CaSiO_3 are gradually disrupted and transformed into nesosilicate with the isolated SiO_4 tetrahedra at the beginning of the alkali fusion process.The three intermediates including Ca_2SiO_4,Na_2CaSiO_4 and Na_2SiO_3 appear simultaneously in the decomposition of CaSiO_3,while the final products are Ca(OH)_2 and Na_4SiO_4.It can be concluded that there exist two reaction pathways in the alkali fusion process of CaSiO_3:one is ion exchange,the other is in the main form of the framework structure change of silicate.The reaction pathway is led by silicate structure transformation in the alkali fusion process.
根据硅镁型红土镍矿中镁硅酸盐存在形式,采用化学沉淀法合成Mg Si O3,通过正交实验考察反应温度、反应时间、液固比和Na OH浓度对Mg Si O3在Na OH亚熔盐体系中的浸出过程的影响,得出优化实验条件为:反应温度为210℃,反应时间为180min,液固比为6:1,Na OH浓度为80%。在优化实验的基础上,采用Raman光谱对反应过程进行在线检测,利用XRD和IR光谱分析反应后的水浸渣结构变化,解析Mg Si O3在Na OH亚熔盐体系中的反应机理。结果表明:在反应过程中,Si O4中的Si—O被破坏,Na OH介入硅酸盐晶格中,其中间产物为Mg2Si O4和Na2Mg Si O4,Mg2+经过碱浸过程可以脱离Si O4阵列,以Mg(OH)2形式从其硅酸盐中得以释放。