Wardag Alam Nawaz Khan, Larachi Faïçal
Department of Chemical Engineering, Laval University, 1065, Avenue de la Médecine, Québec, G1V 0A6, Canada.
Department of Chemical Engineering, Pakistan Institute of Engineering and Applied Sciences (PIEAS), Islamabad, Pakistan.
Chem Prod Process Model. 2024 Sep 17;19(5):795-807. doi: 10.1515/cppm-2024-0038. eCollection 2024 Oct.
Gas-solid fluidized bed reactors exhibit improved heat and mass transfer performance as compared to packed beds. Corrugated walls installed in narrow gas-solid bubbling fluidized bed (CWBFB) enclosures have been observed to decrease minimum bubbling velocity, reduce bubble size, improve gas distribution, provide stable operation, and minimize particle carryover or loss. Thorough analyses of the wall-to-bed heat transfer coefficient in flat- (FWBFB) and corrugated- (CWBFB) wall bubbling fluidized beds have been performed for a variety of operating conditions and geometric parameters. Fast-response self-adhesive heat flux probes and thermocouples were used to simultaneously measure the wall-to-bed heat flux, surface and bed temperatures, and were used to determine the heat transfer coefficient () at various axial and lateral locations. For a given set of parameters, a significant increase in was observed at lower gas flow rates in CWBFB as compared to FWBFB. It was shown that CWBFB inventory required lower (gas flow rate) as compared to FWBFB. Full 3-D transient Euler-Euler CFD simulations using the kinetic theory of granular flow were also performed, which confirmed the experimental results.
与填充床相比,气固流化床反应器具有更好的传热和传质性能。据观察,安装在狭窄气固鼓泡流化床(CWBFB)内的波纹壁可降低最小鼓泡速度、减小气泡尺寸、改善气体分布、实现稳定运行并使颗粒夹带或损失最小化。针对各种操作条件和几何参数,对平壁(FWBFB)和波纹壁(CWBFB)鼓泡流化床中的壁面与床层间的传热系数进行了全面分析。使用快速响应自粘式热通量探头和热电偶同时测量壁面与床层间的热通量、表面温度和床层温度,并用于确定不同轴向和横向位置处的传热系数()。对于给定的一组参数,与FWBFB相比,在较低气体流速下CWBFB中的传热系数显著增加。结果表明,与FWBFB相比,CWBFB所需的气量(气体流速)更低。还使用颗粒流动力学理论进行了全三维瞬态欧拉-欧拉计算流体动力学模拟,证实了实验结果。