Blending in above ground storage tanks with side-entering agitators

被引:5
|
作者
Grenville, R. K. [1 ]
Giacomelli, J. J. [1 ]
VanOmmeren, G. J. [2 ]
Hastings, C. F. [1 ]
Walters, M. J. [1 ]
机构
[1] Philadelphia Mixing Solut Ltd, Palmyra, PA 17078 USA
[2] Rowan Univ, Dept Chem Engn, Glassboro, NJ USA
来源
关键词
Mixing; Petroleum storage; Side-entering; Propeller; Stratified; Blend time; TIME;
D O I
10.1016/j.cherd.2018.07.017
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The blending of fluids in large, above ground storage tanks is widely practiced in the petroleum industry yet there have been very few studies of this mixing operation. The most demanding application is found when the tank contents have been allowed to stratify creating a light and heavy layer. The blend time in this case is defined as the time taken for the density of the fluid to become axially homogeneous. Wesselingh (1975) measured blend times using brine and water to produce the heavy and light layers and measured conductivity changes to assess the blending process. He only looked at one propeller geometry but did study the effects of several important geometrical system properties, such as the ratio of propeller to vessel diameter and liquid depth to vessel diameter. The study reported here uses Wesselingh's technique but examines the blending performance of four commercially available propellers. The results show that the Advanced Pitch propeller sold by Philadelphia Mixing Solutions Ltd. and Mixing Solutions Ltd. is significantly more efficient than the competitors' propellers when compared based on energy usage. These results, and Wesselingh's, show that there are two operating regimes which are separated by a critical Froude number, Frc. At high Froude numbers (Fr >Fr-c) the dimensionless blend time is constant, and at lower Froude numbers (Fr < Fr-c) the dimensionless blend time is inversely proportional to Froude number. The implications for scale-up in both regimes are discussed. (C) 2018 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:395 / 402
页数:8
相关论文
共 50 条
  • [21] The influence of maintenance on the life cycle of above-ground storage tanks
    Pearson, N. R.
    Mason, J. S. D.
    Priewald, R. H.
    INSIGHT, 2012, 54 (06) : 311 - 315
  • [22] Evaluating the Seismic Resilience of Above-Ground Liquid Storage Tanks
    Brunesi, Emanuele
    Nascimbene, Roberto
    BUILDINGS, 2024, 14 (10)
  • [23] FRP linings in above-ground storage tanks: How strong are they?
    Hummel, B
    WATER-ENGINEERING & MANAGEMENT, 2000, 147 (05): : 18 - +
  • [24] ACOUSTIC-EMISSION MONITORING OF ABOVE-GROUND STORAGE TANKS
    NICKOLAUS, CM
    MATERIALS EVALUATION, 1988, 46 (04) : 508 - 512
  • [25] Solids Suspension Study in a Side-Entering Stirred Tank Through CFD Modeling
    Chen, Jia
    Xiao, Wende
    INTERNATIONAL JOURNAL OF CHEMICAL REACTOR ENGINEERING, 2013, 11 : 331 - 346
  • [26] Mixing time and mixing energy in an agitated vessel with side-entering propeller agitator
    Lacki, Henryk
    Inzynieria Chemiczna i Procesowa, 2001, 22 (3 A): : 490 - 491
  • [27] MITIGATION OF THE LIGHTNING HAZARD FOR ABOVE GROUND HYDROCARBON FLOATING ROOF STORAGE TANKS
    Haigh, Stephen
    Leichauer, Philip
    Scanlon, Mark
    Burrows, Brian
    HAZARDS XXI: PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2009, (155): : 358 - 364
  • [28] OVERVIEW OF REGULATIONS AND CODES/STANDARDS FOR INSPECTION INTERVALS OF ABOVE GROUND STORAGE TANKS
    Tahara, Takayasu
    Sando, Shinsuke
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE (PVP-2011), VOL 7, 2012, : 113 - 123
  • [30] Numerical study on flue gas-liquid flow with side-entering mixing
    Fan, Ruonan
    Liu, Jingting
    Yang, Xinzheng
    Chen, Songying
    Luan, Deyu
    Lu, Guanlong
    OPEN PHYSICS, 2022, 20 (01): : 693 - 704