Heat transfer characteristic of the asymmetrical impingement cooling on the guide shield

被引:0
|
作者
Shi, Qingqing [1 ]
Zhang, Li [1 ]
Liu, Cunliang [1 ]
Xu, Ling [2 ]
Li, Ji [2 ]
Wang, Bo [3 ]
机构
[1] Northwestern Polytech Univ, Sch Power & Energy, Xian 710072, Peoples R China
[2] Aero Engine Corp China, Shenyang Engine Res Inst, Shenyang 110015, Peoples R China
[3] CRRC Zhuzhou Inst CO Ltd, Zhuzhou 412001, Peoples R China
基金
中国国家自然科学基金;
关键词
Guide shield; Impingement cooling; Asymmetric leading edge; Reynolds number; Impingement distance; LEADING-EDGE MODEL; JET IMPINGEMENT; FLOW; UNCERTAINTIES;
D O I
10.1016/j.applthermaleng.2024.124331
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper investigates the experimental and computational examination of the impingement-film compound cooling structure on the asymmetric leading edge (LE) of the guide shield. The experiments involve varying the diameters of impingement holes (D-1 and D-2) and analyzing how Reynolds number (Re) and impingement distances (H/D-1, H/D-2) affect heat transfer using transient liquid crystal (TLC) measurement technology. Additionally, numerical simulations are utilized to study the flow dynamics and heat transfer mechanisms in impingement cooling. The findings reveal that heat transfer uniformity is notably enhanced when using a diameter of D-1 = 8.5 mm. The convergence of two impingement jets results in the generation of a fountain flow, creating secondary vortices near the wall that induce secondary impingement, thereby enhancing heat transfer. This phenomenon becomes more pronounced at higher Res and smaller impingement distances. As the Re increases, impingement velocity rises, consequently boosting heat transfer. The suction effect of the film holes strengthens, resulting in a more significant difference in heat transfer between the suction surface (SS) and pressure surface (PS). Decreasing the impingement distance enhances the velocity of the jet reaching the target surface, thereby substantially improving heat transfer. Within the scope of this study, the optimal structure is D-2 = 12 mm and H/D-2 = 2.6, which increases the area-averaged Nu (Nu(ave)) by 35.7 % and 73.5 % compared to H/D-2 of 3.6 and 5 at all Re conditions, respectively. An empirical correlation formula for the Nu(ave) is summarized, providing effective guidance for implementing the impingement-film compound cooling structure on the guide shield.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Effect of channel orientation on heat transfer in a rotating impingement cooling channel
    Li, Hua
    Deng, Hongwu
    Qiu, Lu
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2022, 187
  • [32] Heat transfer and flow characteristics of an engine representative impingement cooling system
    Son, CM
    Gillespie, D
    Ireland, P
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2001, 123 (01): : 154 - 160
  • [33] Heat transfer characteristics in a narrow confined channel with discrete impingement cooling
    Yang LI
    Tao LIU
    Jianjun TAO
    Weihua YANG
    Likun DONG
    Chinese Journal of Aeronautics , 2022, (04) : 220 - 229
  • [34] Effect of internal crossflow on impingement cooling flow and heat transfer characteristics
    Wang, Pengfei
    Liu, Jun
    Wang, Pei
    Liu, Jiajie
    Wang, Haohan
    Yang, Wenshuai
    Zhu, Junqiang
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2024, 159
  • [35] Steady and Unsteady Air Impingement Heat Transfer for Electronics Cooling Applications
    Arik, Mehmet
    Sharma, Rajdeep
    Lustbader, Jason
    He, Xin
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2013, 135 (11):
  • [36] The Impingement Heat Transfer Data of Inclined Jet in Cooling Applications: A Review
    Shashikant Pawar
    Devendra Kumar Patel
    Journal of Thermal Science, 2020, 29 : 1 - 12
  • [37] Numerical investigation of conjugate heat transfer for combined film and impingement cooling
    Zhang, Peng
    Fu, Jing-Lun
    Liu, Jian-Jun
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2015, 36 (11): : 2352 - 2355
  • [38] Heat transfer in a rotating impingement cooling channel with concave target surface
    Li, Hua
    Deng, Hongwu
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2023, 216
  • [39] Impingement cooling for modern combustors: experimental analysis of heat transfer and effectiveness
    B. Facchini
    M. Surace
    Experiments in Fluids, 2006, 40 : 601 - 611
  • [40] Numerical Study of Flow and Heat Transfer Characteristics of Impingement/Effusion Cooling
    Zhang Jingzhou
    Xie Hao
    Yang Chengfeng
    CHINESE JOURNAL OF AERONAUTICS, 2009, 22 (04) : 343 - 348