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首页> 外文期刊>Chemical engineering journal >Catalytic isomerisation of alpha-pinene oxide to campholenic aldehyde using silica-supported zinc triflate catalysts II. Performance of immobilised catalysts in a continuous spinning disc reactor
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Catalytic isomerisation of alpha-pinene oxide to campholenic aldehyde using silica-supported zinc triflate catalysts II. Performance of immobilised catalysts in a continuous spinning disc reactor

机译:使用二氧化硅负载的三氟甲磺酸锌催化剂II,将α-pine烯氧化物催化异构化为樟脑醛。固定式催化剂在连续纺丝圆盘反应器中的性能

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摘要

The performance of silica-supported zinc triflate (Zn(CF3SO3)2) catalyst immobilised on the surface of the spinning disc reactor (SDR) has been studied for the isomerisation reaction of a-pinene oxide to campholenic aldehyde. Process selectivity and conversion were assessed to determine the viability of SDR for performing catalytic reactions under a range of SDR operating conditions.Different catalyst loadings and supports were tested in this study: 0.05mmol/g Zn-triflate/K60 (Catalyst 1), 0.01mmol/g Zn-triflate/K100 (Catalyst 2) and 0.05 mmol/g Zn-triflate/HMS24 (Catalyst 3). The latter catalyst was found to give the best performance in the SDR, with observed selectivity of 75% towards campholenic aldehyde and a-pinene oxide conversion of 85% at a disc temperature of 45 °C, disc speed of 1500rpm and reactant feed flow rate of 6 cm~3/s. Empirical models relating conversion and selectivity to disc speed and feed flow rate were developed for each catalyst using multiple linear regression analysis of experimental data collected in the study.A comparison with corresponding batch reactions indicates that the high shear rates in the thin SDR film flowing over the immobilised catalyst may give rise to intense mixing characteristics which overcome any mass transfer limitations within the immobilised matrix which would otherwise restrict the reaction rate. The short and controllable disc residence time in the SDR (of the order of seconds) promotes the desired reaction and minimises unwanted side reactions for enhanced process selectivity. These process advantages demonstrate the potential of the SDR to provide a "greener" approach to catalytic reactions.
机译:研究了二氧化硅负载的三氟甲磺酸锌(Zn(CF3SO3)2)催化剂固定在旋转盘式反应器(SDR)表面上的性能,用于α-pine烯氧化物到樟脑醛的异构化反应。评估工艺选择性和转化率以确​​定SDR在一定范围的SDR操作条件下进行催化反应的可行性。本研究测试了不同的催化剂负载量和载体:0.05mmol / g三氟甲磺酸锌/ K60(催化剂1),0.01 mmol / g三氟甲磺酸锌/ K100(催化剂2)和0.05 mmol / g三氟甲磺酸锌/ HMS24(催化剂3)。发现后一种催化剂在SDR中表现出最佳性能,在圆盘温度为45°C,圆盘速度为1500rpm和反应物进料流速下,观察到的对喜树碱醛的选择性为75%,α-pine烯氧化物的转化率为85%。 6 cm〜3 / s通过对研究中收集的实验数据进行多元线性回归分析,建立了每种催化剂转化率和选择性,圆盘速度和进料流速的经验模型,并与相应的批反应进行了比较,表明流过的SDR薄膜的剪切速率较高。固定的催化剂可产生强烈的混合特性,克服了固定的基质内任何传质限制,否则将限制反应速率。 SDR中盘片的停留时间短且可控(几秒钟),可以促进所需的反应,并使不必要的副反应最小化,从而提高了工艺的选择性。这些工艺优势证明了SDR潜在地为催化反应提供“绿色”方法。

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