化工学报 ›› 2025, Vol. 76 ›› Issue (6): 2569-2579.DOI: 10.11949/0438-1157.20241257
收稿日期:2024-11-08
修回日期:2024-12-04
出版日期:2025-06-25
发布日期:2025-07-09
通讯作者:
谷德银
作者简介:谷德银(1989—),男,博士,副教授,gdy0811@126.com
基金资助:
Deyin GU1(
), Hao YANG1, Changshu LI1, Zuohua LIU2
Received:2024-11-08
Revised:2024-12-04
Online:2025-06-25
Published:2025-07-09
Contact:
Deyin GU
摘要:
为了增大洞穴区,减小停滞区,提高假塑性流体的混合效率,将分形理论应用于桨叶的穿孔设计,提出一种分形穿流搅拌桨来强化假塑性流体的混合行为。采用实验和计算流体力学探究了分形穿流桨搅拌槽内假塑性流体的混合行为。结果表明,在相同Reynolds数下,分形穿流桨(FPT)体系的搅拌功耗和功率准数均低于RT桨体系,但随着穿流孔分形迭代次数的递增,搅拌功耗和功率准数有所增加。在相同功耗下,相较于RT桨,FPT桨能够增强对流体的剪切作用,增大剪切应变率,增加流体的流动性,缩短流体的无量纲混合时间,增大洞穴区,减小停滞区,增大流体的混沌混合程度。其中,FPT-1桨体系的无量纲混合时间缩短了2.88%~5.65%,洞穴区域面积增加了6.58%;FPT-2桨体系的无量纲混合时间缩短了8.04%~11.00%,洞穴区域面积增加了8.25%。与普通矩阵排列的穿流孔相比,分形排布的穿流孔更有助于改善流体混合效果,提高流体混合效率。
中图分类号:
谷德银, 杨豪, 李昌树, 刘作华. 分形穿流桨搅拌槽内假塑性流体的混合行为[J]. 化工学报, 2025, 76(6): 2569-2579.
Deyin GU, Hao YANG, Changshu LI, Zuohua LIU. Mixing behavior of pseudoplastic fluid in a fractal perforated impeller stirred tank[J]. CIESC Journal, 2025, 76(6): 2569-2579.
图18 FPT-2和MPT搅拌体系的无量纲混合时间对比n —— 流体的流变指数P —— 搅拌功耗,WRey —— Reynolds数T —— 搅拌槽内径,m
Fig.18 Comparison of dimensionless mixing time in FPT-2 and MPT stirring systems
| [1] | Khapre A, Munshi B. Numerical investigation of hydrodynamic behavior of shear thinning fluids in stirred tank[J]. Journal of the Taiwan Institute of Chemical Engineers, 2015, 56: 16-27. |
| [2] | Kazemzadeh A, Ein-Mozaffari F, Lohi A, et al. Investigation of hydrodynamic performances of coaxial mixers in agitation of yield-pseudoplasitc fluids: single and double central impellers in combination with the anchor[J]. Chemical Engineering Journal, 2016, 294: 417-430. |
| [3] | Arratia P E, Kukura J, Lacombe J, et al. Mixing of shear-thinning fluids with yield stress in stirred tanks[J]. AIChE Journal, 2006, 52(7): 2310-2322. |
| [4] | Ayala J S, de Moura H L, de Lima Amaral R, et al. Two-dimensional shear rate field and flow structures of a pseudoplastic fluid in a stirred tank using particle image velocimetry[J]. Chemical Engineering Science, 2022, 248: 117198. |
| [5] | Sossa-Echeverria J, Taghipour F. Computational simulation of mixing flow of shear thinning non-Newtonian fluids with various impellers in a stirred tank[J]. Chemical Engineering and Processing: Process Intensification, 2015, 93: 66-78. |
| [6] | 栾德玉, 周慎杰, 陈颂英. 错位六弯叶桨搅拌假塑性流体的洞穴变化[J]. 机械工程学报, 2012, 48(16): 152-157. |
| Luan D Y, Zhou S J, Chen S Y. Cavern development of pseudoplastic fluids stirred by impeller of perturbed six-bent-bladed turbine[J]. Journal of Mechanical Engineering, 2012, 48(16): 152-157. | |
| [7] | 刘宝庆, 郑毅骏, 梁慧力, 等. 剪切变稀体系同心双轴搅拌釜内的气液分散模拟[J]. 化工学报, 2017, 68(6): 2280-2289. |
| Liu B Q, Zheng Y J, Liang H L, et al. CFD simulation on shear-thinning gas-liquid dispersion in coaxial mixer[J]. CIESC Journal, 2017, 68(6): 2280-2289. | |
| [8] | Nomura T, Uchida T, Takahashi K. Enhancement of mixing by unsteady agitation of an impeller in an agitated vessel[J]. Journal of Chemical Engineering of Japan, 1997, 30(5): 875-879. |
| [9] | Ascanio G, Foucault S, Tanguy P A. Time-periodic mixing of shear-thinning fluids[J]. Chemical Engineering Research and Design, 2004, 82(9): 1199-1203. |
| [10] | 刘仁龙, 李爽, 刘作华, 等. 穿流-柔性组合桨强化搅拌槽中流体混沌混合特性[J]. 化工学报, 2015, 66(12): 4736-4742. |
| Liu R L, Li S, Liu Z H, et al. Chaotic mixing enhanced by punched-flexible impeller in stirred vessel[J]. CIESC Journal, 2015, 66(12): 4736-4742. | |
| [11] | 栾德玉, 周慎杰, 陈颂英. 错位六弯叶搅拌槽内假塑性流体的混合特性[J]. 高校化学工程学报, 2012, 26(5): 787-792. |
| Luan D Y, Zhou S J, Chen S Y. Mixing characteristics of pseudoplastic fluid in a stirred tank with the stirrer composed of perturbed six-bent-bladed turbine[J]. Journal of Chemical Engineering of Chinese Universities, 2012, 26(5): 787-792. | |
| [12] | Başbuğ S, Papadakis G, Vassilicos J C. Reduced power consumption in stirred vessels by means of fractal impellers[J]. AIChE Journal, 2018, 64(4): 1485-1499. |
| [13] | 杨锋苓, 张翠勋, 李美婷. 柔性Rushton搅拌桨混合性能的实验研究[J]. 化工学报, 2020, 71(2): 626-632. |
| Yang F L, Zhang C X, Li M T. Experimental study on mixing characteristics of flexible-blade Rushton impeller[J]. CIESC Journal, 2020, 71(2): 626-632. | |
| [14] | Ameur H. Mixing of complex fluids with flat and pitched bladed impellers: effect of blade attack angle and shear-thinning behaviour[J]. Food and Bioproducts Processing, 2016, 99: 71-77. |
| [15] | Ameur H. Modifications in the Rushton turbine for mixing viscoplastic fluids[J]. Journal of Food Engineering, 2018, 233: 117-125. |
| [16] | Ameur H. Newly modified curved-bladed impellers for process intensification: energy saving in the agitation of hershel-bulkley fluids[J]. Chemical Engineering and Processing - Process Intensification, 2020, 154: 108009. |
| [17] | 王呈祥. 穿流型搅拌器结构参数优化研究[D]. 武汉: 武汉工程大学, 2013. |
| Wang C X. Structural parameters optimization of punched impeller[D]. Wuhan: Wuhan Institute of Technology, 2013. | |
| [18] | Hurst D, Vassilicos J C. Scalings and decay of fractal-generated turbulence[J]. Physics of Fluids, 2007, 19(3): 035103. |
| [19] | Mazellier N, Vassilicos J C. Turbulence without Richardson-Kolmogorov cascade[J]. Physics of Fluids, 2010, 22(7): 075101. |
| [20] | Steiros K, Bruce P J K, Buxton O R H, et al. Effect of blade modifications on the torque and flow field of radial impellers in stirred tanks[J]. Physical Review Fluids, 2017, 2(9): 094802. |
| [21] | Steiros K, Bruce P J K, Buxton O R H, et al. Power consumption and form drag of regular and fractal-shaped turbines in a stirred tank[J]. AIChE Journal, 2017, 63(2): 843-854. |
| [22] | 李红军, 李星彰, 李旭, 等. 基于分形桨的湍流耗散强度特征研究[J]. 化学工程, 2023, 51(2): 63-67. |
| Li H J, Li X Z, Li X, et al. Characteristics analysis of turbulent energy dissipation intensity based on fractal impellers[J]. Chemical Engineering (China), 2023, 51(2): 63-67. | |
| [23] | 王松松. 错位六弯叶桨搅拌假塑性流体流场轴向洞穴演化特征研究[D]. 青岛: 青岛科技大学, 2021. |
| Wang S S. Study on cavern axial development law of pseudoplastic fluid stirred with perturbed six-bent-bladed turbine impeller[D]. Qingdao: Qingdao University of Science & Technology, 2021. | |
| [24] | 高勤, 肖清泰, 王仕博, 等. 基于0-1测试的底吹搅拌混合过程混沌特性分析[J]. 过程工程学报, 2018, 18(2): 288-293. |
| Gao Q, Xiao Q T, Wang S B, et al. Analysis on chaotic characteristics of bottom-blowing stirred mixing process based on 0-1 test[J]. The Chinese Journal of Process Engineering, 2018, 18(2): 288-293. | |
| [25] | Ameur H, Sahel D, Kamla Y. Energy efficiency of a deep hollow bladed impeller for mixing viscoplastic fluids in a cylindrical vessel[J]. Advances in Mechanical Engineering, 2017, 9(5): 168781401668791. |
| [26] | Luan D Y, Zhang S F, Wei X, et al. Effect of the 6PBT stirrer eccentricity and off-bottom clearance on mixing of pseudoplastic fluid in a stirred tank[J]. Results in Physics, 2017, 7: 1079-1085. |
| [27] | Luan D Y, Wang Z R, Wang H, et al. Determination method of the cavern boundary viscosity in a stirred tank with pseudoplastic fluid[J]. AIChE Journal, 2020, 66(5): e16941. |
| [28] | Wang S S, Li H, Tao C Y, et al. Study on cavern evolution and performance of three mixers in agitation of yield-pseudoplastic fluids[J]. Chinese Journal of Chemical Engineering, 2023, 55: 111-122. |
| [29] | Ameur H. Effect of some parameters on the performance of anchor impellers for stirring shear-thinning fluids in a cylindrical vessel[J]. Journal of Hydrodynamics, Ser. B, 2016, 28(4): 669-675. |
| [30] | Zhang Z, Chen G R. Liquid mixing enhancement by chaotic perturbations in stirred tanks[J]. Chaos, Solitons & Fractals, 2008, 36(1): 144-149. |
| [31] | Rutherford K, Lee K C, Mahmoudi S M S, et al. Hydrodynamic characteristics of dual Rushton impeller stirred vessels[J]. AIChE Journal, 1996, 42(2): 332-346. |
| [1] | 杨语晴, 李银龙, 晏刚. 采用低GWP制冷剂的级联加热自复叠高温热泵循环热力学分析[J]. 化工学报, 2025, 76(S1): 43-53. |
| [2] | 冯彪, 张昭, 李思琪, 王秉睿, 吴红颖, 史淼, 王丹, 马素霞. 适配环保制冷剂R290的阻燃剂性能研究[J]. 化工学报, 2025, 76(S1): 462-468. |
| [3] | 郭松源, 周晓庆, 缪五兵, 汪彬, 耑锐, 曹庆泰, 陈成成, 杨光, 吴静怡. 火箭上升段含多孔板液氧贮箱增压输运数值研究[J]. 化工学报, 2025, 76(S1): 62-74. |
| [4] | 丁昊, 王林, 刘豪. R290/R245fa汽液相平衡混合规则对比研究[J]. 化工学报, 2025, 76(S1): 9-16. |
| [5] | 臧子晴, 李修真, 谈莹莹, 刘晓庆. 分凝器对两级分离自复叠制冷循环特性影响研究[J]. 化工学报, 2025, 76(S1): 17-25. |
| [6] | 孙九春, 桑运龙, 王海涛, 贾浩, 朱艳. 泥水盾构仓体内射流对泥浆输送特性影响研究[J]. 化工学报, 2025, 76(S1): 246-257. |
| [7] | 李银龙, 刘国强, 晏刚. 分馏与闪蒸分离耦合自复叠制冷循环性能分析[J]. 化工学报, 2025, 76(S1): 26-35. |
| [8] | 刘豪, 王林, 丁昊, 耿嘉怡. R1150+R1234ze(E)二元体系223.15~253.15 K汽液相平衡研究[J]. 化工学报, 2025, 76(S1): 1-8. |
| [9] | 王富玉, 周晅毅. 结合非定常伴随方程和遗传算法的化工区反演[J]. 化工学报, 2025, 76(6): 3104-3114. |
| [10] | 张亿韵, 陈恒志, 李洋, 慕长安, 王泉海. 湍流对双组分颗粒流化床气体径向扩散的影响[J]. 化工学报, 2025, 76(6): 2559-2568. |
| [11] | 程刘惠美, 闫军营, 刘慧情, 王治澎, 王报英, 徐铜文, 汪耀明. 双极膜电渗析在醇水体系的应用研究进展[J]. 化工学报, 2025, 76(5): 1960-1972. |
| [12] | 顾栋, 皮行健, 张叠, 张瑛. 不同粒径CAU-1/PI混合基质膜的构建与H2/CO2分离性能研究[J]. 化工学报, 2025, 76(5): 2410-2418. |
| [13] | 何燎, 李俊, 高梦舒, 刘东阳, 张宇豪, 赵亮, 高金森, 徐春明. 石油烃中芳烃分离技术研究进展[J]. 化工学报, 2025, 76(5): 1909-1926. |
| [14] | 拓振光, 李荣亮, 康绍辉, 牛玉清, 周志全, 叶开凯, 马海桃, 刘顺, 李洪, 高鑫. 静态法测定WF6-MoF6体系汽液相平衡数据的误差分析与修正[J]. 化工学报, 2025, 76(5): 2270-2278. |
| [15] | 牛宏斌, 邱丽, 杨景轩, 张忠林, 郝晓刚, 赵忠凯, 阿布里提, 官国清. 筒体直径对旋风分离器性能的影响及其流场机制[J]. 化工学报, 2025, 76(5): 2367-2376. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||
京公网安备 11010102001995号