Direct numerical simulation of turbulent jet in regular waves: A comparison between circular and non-circular cross-sections

被引:1
|
作者
Anghan, Chetankumar [1 ]
Bade, Mukund H. [1 ]
Banerjee, Jyotirmay [1 ]
机构
[1] Sardar Vallabhbhai Natl Inst Technol, Dept Mech Engn, Surat 395 007, India
关键词
Ocean outfall; Rectangular jet; Non-circular jet; Instabilities in jet; Vortex dynamics; ROUND JET; DYNAMICS;
D O I
10.1016/j.oceaneng.2023.116084
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Direct numerical simulations of circular and non-circular jets (square and rectangular) when released into regular waves are performed and reported in this article. In case of a rectangular jet, two different orientations of the nozzle have been simulated i.e major axis parallel (case 1) and perpendicular (case 2) to wave advancement direction. An analysis of the leading vortex ring reveals that axis switching in a rectangular jet takes place irrespective of nozzle orientation with respect to wave advancement direction. The axis switching is absent in the square jet. Further, the roll-up frequency of the non-circular jets is found less than the circular jet. Also, the roll-up frequency is independent of the orientation of the rectangular jet with respect to the wave direction. The braid region shows that the number of counter-rotating pairs are four for all the cases, however, the lateral jets are three for circular, square and case 1 of rectangular jets. The lateral jets in case 2 of the rectangular jet remain four due to change in orientation of the lateral jets owing to change in the nozzle orientation. The time-averaged quantities suggest increased mixing and entrainment in the rectangular jet as compared to circular jet. The highest mixing and shortest potential core are observed in case 2 of the rectangular jet. Therefore, for better mixing, the rectangular nozzle should be placed in the ocean outfall such that its major axis remains perpendicular to the direction of wave advancement.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Correction to: Non-localised contact between beams with circular and elliptical cross-sections
    Marco Magliulo
    Jakub Lengiewicz
    Andreas Zilian
    Lars A. A. Beex
    Computational Mechanics, 2020, 66 : 1051 - 1051
  • [42] Direct Numerical Simulation of Naturally Evolving Free Circular Jet
    Gohil, Trushar B.
    Saha, Arun K.
    Muralidhar, K.
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2011, 133 (11):
  • [43] Geodesic acoustic mode in toroidally axisymmetric plasmas with non-circular cross sections
    Shi, BR
    Li, JQ
    Dong, JQ
    CHINESE PHYSICS LETTERS, 2005, 22 (05) : 1179 - 1182
  • [44] Brief communication oscillating jet flow in enclosures with non-circular cross section
    Scholler, Marek
    Fritsching, Udo
    International Journal of Flow Control, 2009, 1 (02) : 167 - 173
  • [45] Simulation on dispersal stability for non-circular cross-section structure
    Chen, Ming-Sheng
    Li, Jian-Ping
    Bai, Chun-Hua
    Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology, 2015, 35 : 10 - 13
  • [46] Direct numerical simulation of turbulent flow around a rotating circular cylinder
    Hwang, Jong-Yeon
    Yang, Kyung-Soo
    Bremhorst, Klaus
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2007, 129 (01): : 40 - 47
  • [47] Numerical simulation of a submerged circular turbulent jet impinging on flat and eroded boundaries
    Haque, Z. F.
    Carrillo Serrano, V. M.
    Petrie, J. E.
    RIVER FLOW 2016, 2016, : 96 - 100
  • [48] Numerical simulation of non-circular spinning: a rotationally non-symmetric spinning process
    Awiszus, B.
    Haertel, S.
    PRODUCTION ENGINEERING-RESEARCH AND DEVELOPMENT, 2011, 5 (06): : 605 - 612
  • [49] Experimental investigation of the heat transfer for non-circular tubes in a turbulent air cross flow
    Akbari, Mohsen
    Mirabdolah Lavasani, Arash
    Naseri, Ali
    Experimental Heat Transfer, 2020, : 1 - 18
  • [50] Experimental investigation of the heat transfer for non-circular tubes in a turbulent air cross flow
    Akbari, Mohsen
    Mirabdolah Lavasani, Arash
    Naseri, Ali
    EXPERIMENTAL HEAT TRANSFER, 2021, 34 (06) : 513 - 530