首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Structural and chemical characterization of SiO_2/TiO_2 multicomponent particles during aerosol formation in a coflow diffusion flame
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Structural and chemical characterization of SiO_2/TiO_2 multicomponent particles during aerosol formation in a coflow diffusion flame

机译:共流扩散火焰中气溶胶形成过程中SiO_2 / TiO_2多组分颗粒的结构和化学表征

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摘要

The chemical composition of polydisperse SiO_2/TiO_2 multicomponent particles was investigated at different heights from the burner surface using an in situ measurement system. Multicomponent particles were generated in a H_2/O_2 coflow diffusion flame using two sets of precursors - titanium tetraisopropoxide (TTIP) and tetraethylorthosilicate (TEOS). In order to maintain a 1:1 mole ratio of TTIP to TEOS in the vapor, the flow rate of the carrier gas N_2 was fixed at 0.6 SLM for TTIP and 0.1 SLM for TEOS. An in situ sampling probe was used to supply the particles to the differential mobility analyzer, which was calibrated using a commercial model 3071A manufactured by TSI. The monodisperse multicomponent particles were classified based on their mobility diameter. An electrophoretic collector was used to collect the classified particles and the composition of the particles was measured by energy dispersive spectrometry. The chemical composition of the multicomponent particles was obtained at different heights (z = 40, 60 and 80 mm) from the surface of the burner. The results show that the chemical composition of silica (Si) decreases with increasing height from the burner surface and increasing mobility diameter of the aggregates. The ratio of Si:Ti approacheed 1:1 far downstream.
机译:使用原位测量系统研究了多分散SiO_2 / TiO_2多组分颗粒在距燃烧器表面不同高度的化学组成。使用两组前体-四异丙氧基钛(TTIP)和原硅酸四乙酯(TEOS)在H_2 / O_2共流扩散火焰中生成多组分颗粒。为了保持蒸气中TTIP与TEOS的摩尔比为1:1,对于TTIP,载气N_2的流速固定为0.6 SLM,对于TEOS,载气N_2的流速固定为0.1 SLM。使用原位采样探针将颗粒提供给差动迁移率分析仪,该差示分析仪使用由TSI制造的商业型号3071A进行校准。基于它们的迁移率直径对单分散多组分颗粒进行分类。使用电泳收集器收集分类的颗粒,并且通过能量分散光谱法测量颗粒的组成。从燃烧器表面以不同高度(z = 40、60和80 mm)获得多组分颗粒的化学成分。结果表明,二氧化硅(Si)的化学成分随着距燃烧器表面高度的增加和聚集体迁移直径的增加而降低。在下游,Si:Ti的比例接近1:1。

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