Experimental investigation of performance of obstruction flow-meters designed with theoretical methods and computational fluid dynamics

被引:0
|
作者
Kucuk, Hasan [1 ]
Unverdi, Murat [2 ]
机构
[1] Sakarya Univ, Makine Muhendisligi Bolumu, Muhendislik Fak, Sakarya, Turkey
[2] Adnan Menderes Univ, Makine Met Teknol Bolumu, Aydin Meslek Yuksekokulu, Aydin, Turkey
关键词
Flow nozzle; Orifice plate; Flow straightener (Flow conditioner); Flow rate measurement; Computational fluid dynamics; Additive manufacturing;
D O I
10.5505/pajes.2021.22844
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The aim of this study was to design obstruction flow meters to measure and control the volumetric flow of air, to manufacture them with additive manufacturing (3D printer) and to compare numerical and experimental performance. An ASME long radius low ft flow nozzle and sharp-edge orifice was the obstruction flow meter of choice due to ease of design and manufacture and common use. This study employed Computational Fluid Dynamics (CFD) to compare the numerical performance of 3D flow meters, whose geometric dimensions are determined using current design methods in the literature. Experiments were performed to calculate the performance of the obstruction flow meters produced using additive manufacturing. The inner diameter of the flow channel (152 mm) was based on the volume flow rate of 80 to 300 m(3)/h and the Reynolds number of 12,000 to 46,000 at the inlet of the flow meters. The ratio of the flow cross section diameter (d) of the flow meters to the channel cross section diameter (D) was beta-0.45 to limit pressure losses. The effectiveness of the tube bundle-type flow straightener and the effect of the distance between the flow meters and fans downstream of the flow meter on measurements were also investigated in the experiments to develop the flow at the upstream of the flow meters at a shorter distance and to shorten the tube length. The numerical results agreed with the theoretical design calculations with an average difference of 1.6% in the flow nozzle and an average difference of 7.8% in the orifice. The experimental results also agreed with the theoretical results with an average difference of 8% in the flow nozzle and an average difference of 14.3% in the orifice. The mean difference between the numerical and experimental results was 7.3% and 14.8% in the flow nozzle and orifice, respectively. Volume flow rate equations based on pressure drops were developed using the experimental results of both flow meters.
引用
收藏
页码:37 / 50
页数:14
相关论文
共 50 条
  • [41] On the onset of nonlinear fluid flow transition in rock fracture network: Theoretical and computational fluid dynamic investigation
    Xue, Kangsheng
    Zhang, Zhenyu
    Hao, Shengpeng
    Luo, Peng
    Wang, Yakun
    PHYSICS OF FLUIDS, 2022, 34 (12)
  • [42] Flow investigation of two-stand ultrasonic flow meters in a wide dynamic range by numerical and experimental methods
    Rincon, Mario Javier
    Caspersen, Anders
    Ingwersen, Nicolai Thorenfeldt
    Reclari, Martino
    Abkar, Mahdi
    FLOW MEASUREMENT AND INSTRUMENTATION, 2024, 96
  • [43] Annular Gap Bubble Column: Experimental Investigation and Computational Fluid Dynamics Modeling
    Besagni, Giorgio
    Guedon, Gael Raymond
    Inzoli, Fabio
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2016, 138 (01):
  • [44] An Experimental and Computational Investigation on Fluid Flow and Thermal Performance of a Rhombus Passage Solar Air Heater of Various Configurations
    Dara, Rambabu
    Muvvala, Pullarao
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2024, 49 (08) : 10839 - 10857
  • [45] Investigation of Blood Flow Behavior in an Aneurysm Sac Using Computational Fluid Dynamics
    Guclu, Gorkem
    Gunaydin, Talha
    Unsal, Can
    Olcay, Ali Bahadir
    Bilgin, Cem
    Hakyemez, Bahattin
    2019 MEDICAL TECHNOLOGIES CONGRESS (TIPTEKNO), 2019, : 55 - 57
  • [46] Design and Computational Fluid Dynamics Investigation of a Personal, High Flow Inhalable Sampler
    Anthony, T. Renee
    Landazuri, Andrea C.
    Van Dyke, Mike
    Volckens, John
    ANNALS OF OCCUPATIONAL HYGIENE, 2010, 54 (04): : 427 - 442
  • [47] Investigation of air flow around buildings using computational fluid dynamics techniques
    Baskaran, A
    Kashef, A
    ENGINEERING STRUCTURES, 1996, 18 (11) : 861 - &
  • [48] Investigation of Grooved Circular Jet Flow Experimentally and Using Computational Fluid Dynamics
    Inan, A. T.
    Sisman, T.
    ACTA PHYSICA POLONICA A, 2015, 127 (04) : 1145 - 1149
  • [49] Investigation of the In Vitro Culture Process for Skeletal-Tissue-Engineered Constructs Using Computational Fluid Dynamics and Experimental Methods
    Hossain, Md. Shakhawath
    Chen, X. B.
    Bergstrom, D. J.
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2012, 134 (12):
  • [50] Investigation of the Cold Flow Field in a Flow Reversal Reactor through Computational Fluid Dynamics Models
    Liang, Wenjun
    Sun, Yujie
    Ju, Haolin
    Ren, Sida
    Li, Xiang
    Liu, Jia
    CHEMICAL ENGINEERING & TECHNOLOGY, 2023, 46 (07) : 1448 - 1454