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Computational fluid dynamics study of heat transfer in a microchannel reactor for low-temperature Fischer-Tropsch synthesis

机译:低温费-托合成微通道反应器中传热的计算流体动力学研究

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摘要

A three-dimensional computational fluid dynamics (CFD) study of heat transfer in a microchannel reactor for the low-temperature Fischer-Tropsch synthesis (FTS)is presented. The microreactor studied is a steel block with 80 square microchannels of 1 mm of side arranged in cross-flow configuration for the transport of syngas and cooling water. Syngas space velocities in the 5000-30,000h~(-1) (STP) range have been considered. The microreactor exhibited good isothermicity under most simulated conditions. The FTS can be conducted with very low-temperature change between 483 and 523 K within a wide range of CO conversions using boiling water as coolant. To this end the pressure has to be set at the appropriate value between about 5 and 35 atm. The pressure would have to be reduced as the CO conversion increases which might have a negative effect on the FTS selectivity to middle distillates. However, adjusting the cooling water flow rate in the range 0.25-250 g min~(-1) allows maintaining the FTS temperature at suitable values while avoiding the use of low pressures. Relatively high values of the overall heat transfer coefficient in the 20-320 W m~(-2) K~(-1) range have been obtained. A significant effect of the buoyancy forces on the thermal performance of the microreactor has been found.
机译:提出了用于低温费-托合成(FTS)的微通道反应器中传热的三维计算流体动力学(CFD)研究。所研究的微反应器是一种钢块,具有80平方毫米的1毫米侧边微通道,以错流形式排列,用于输送合成气和冷却水。合成气的空间速度已考虑在5000-30,000h〜(-1)(STP)范围内。在大多数模拟条件下,微反应器表现出良好的等温性。 FTS可以使用沸水作为冷却剂,在很宽的CO转化率范围内,在483至523 K的极低温度范围内进行转换。为此,必须将压力设定在约5至35atm之间的适当值。随着CO转化率的增加,必须降低压力,这可能对FTS对中间馏分的选择性产生负面影响。但是,将冷却水流量调节在0.25-250 g min〜(-1)的范围内可以将FTS温度保持在适当的值,同时避免使用低压。已获得在20-320 W m〜(-2)K〜(-1)范围内的相对较高的总传热系数值。已经发现浮力对微反应器的热性能的显着影响。

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