A physically based model for air-lift pumping

被引:13
|
作者
Francois, O [1 ]
Gilmore, T [1 ]
Pinto, MJ [1 ]
Gorelick, SM [1 ]
机构
[1] PACIFIC NW LAB, RICHLAND, WA 99352 USA
关键词
D O I
10.1029/96WR00899
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A predictive, physically based model for pumping water from a well using air injection (air-lift pumping) was developed for the range of flow rates that we explored in a series of laboratory experiments. The goal was to determine the air flow rate required to pump a specific flow rate of water in a given well, designed for in-well air stripping of volatile organic compounds from an aquifer. The model was validated against original laboratory data as well as data from the literature. A laboratory air-lift system was constructed that consisted of a 70-foot-long (21-m-long) pipe, 5.5 inches (14 cm) inside diameter, in which an air line of 1.3 inches (3.3 cm) outside diameter was placed with its bottom at different elevations above the base of the long pipe. Experiments were conducted for different levels of submergence, with water-pumping rates ranging from 5 to 79 gallons/min (0.32-4.4 L/s), and air flow ranging from 7 to 38 standard cubic feet/min (0.2-1.1 m(3) STP/min). The theoretical approach adopted in the model was based on an analysis of the system as a one-dimensional two-phase flow problem. The expression for the pressure gradient includes inertial energy terms, friction, and gas expansion versus elevation. Data analysis revealed that application of the usual drift-flux model to estimate the air void fraction is not adequate for the observed flow patterns: either slug or churn flow. We propose a modified drift-flux model that accurately predicts air-lift pumping requirements for a range of conditions representative of in-well air-stripping operations.
引用
收藏
页码:2383 / 2399
页数:17
相关论文
共 50 条
  • [21] AIR-LIFT CONVEYING OF LIQUIDS AND SUSPENSIONS
    SHEBATIN, VG
    DOMANSKII, IV
    SOKOLOV, VN
    DAVYDOV, IV
    JOURNAL OF APPLIED CHEMISTRY OF THE USSR, 1977, 50 (04): : 823 - 826
  • [22] Hydrodynamics in an air-lift loop reactor
    Liu, Y.
    Zhang, Q.
    Zhang, K.
    Shiyou Huagong Gaodeng Xuexiao Xuebao/Journal of Petrochemical Universities, 2001, 14 (04): : 13 - 15
  • [23] ARTIFICIAL BLOOD - AN EMERGENCY AIR-LIFT
    ROSE, M
    NEW SCIENTIST, 1980, 88 (1229) : 562 - 565
  • [24] Experimental study on an air-lift in mining
    Tang, Chuanlin
    Cai, Shupeng
    Hu, Dong
    Yang, Lin
    Yingyong Jichu yu Gongcheng Kexue Xuebao/Journal of Basic Science and Engineering, 2009, 17 (03): : 374 - 379
  • [25] AIR-LIFT PUMP WITHOUT WELL
    GUTTECK, U
    LEBENSMITTELINDUSTRIE, 1988, 35 (06): : 256 - 258
  • [26] Comparison of pullulan production performances of air-lift and bubble column bioreactors and optimization of process parameters in air-lift bioreactor
    Ozcan, Emrah
    Sargin, Sayit
    Goksungur, Yekta
    BIOCHEMICAL ENGINEERING JOURNAL, 2014, 92 : 9 - 15
  • [27] Computational Fluid Dynamics Model of BioCAST Multienvironment Air-Lift Bioreactor
    Calder, Ryan S. D.
    Yerushalmi, Laleh
    Li, S. Samuel
    JOURNAL OF ENVIRONMENTAL ENGINEERING, 2013, 139 (06) : 849 - 863
  • [28] Model test of active drainage consolidation method on air-lift effect
    Wu Hui-ming
    Zhao Zi-rong
    Lin Xiao-fei
    Shi Jian-qian
    Gong Xiao-nan
    ROCK AND SOIL MECHANICS, 2021, 42 (08) : 2151 - 2159
  • [29] Unwatering the Tiro General Mine by air-lift
    Shaw, SF
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1920, 63 : 421 - 454
  • [30] A JET-LESS ATOMIZER AND AIR-LIFT
    RENDLE, AB
    CHEMISTRY & INDUSTRY, 1955, (44) : 1405 - 1405