Heat Transfer Mechanism Study of an Embedded Heat Pipe for New Energy Consumption System Enhancement

被引:0
|
作者
Cheng, Yuanlin [1 ]
Yu, Hu [1 ]
Zhang, Yi [1 ]
Zhang, Shu [1 ]
Shi, Zhipeng [1 ]
Xie, Jinlin [1 ]
Zhang, Silu [1 ]
Liu, Changhui [2 ]
机构
[1] Hunan Elect Power Designing Inst Co Ltd, China Energy Engn Grp, Changsha 410007, Peoples R China
[2] China Univ Min & Technol, Sch Low Carbon Energy & Power Engn, Xuzhou 221116, Peoples R China
关键词
new energy consumption; embedded heat pipe; vapor-liquid two-phase flow; CFD numerical simulation; filling ratio; CFD;
D O I
10.3390/en17236162
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Aiming at the demand for new energy consumption and mobile portable heat storage, a gravity heat pipe with embedded structure was designed. In order to explore the two-phase heat transfer mechanism of the embedded heat pipe, CFD numerical simulation technology was used to study the internal two-phase flow state and heat transfer process of the embedded heat pipe under different working conditions. The evolution law of the internal working medium of the heat pipe under different working conditions was obtained. With the increase in heating power, it is easier to form large bubbles and large vapor slugs inside the heat pipe. When the heating power increases to a certain extent, the shape of the vapor slugs can no longer be maintained at the bottom of the adiabatic section, and the vapor slugs begin to break and merge, forming local annular flow. When the filling ratio (FR) is relatively low, the bubble is easy to break through the liquid level and rupture, unable to form a vapor slug. With the increase in FR, the possibility of projectile flow and annular flow in the heat pipe increases. Under the same heating power, the temperature uniformity of the heat pipe becomes stronger with the increase in heating time. The velocity distribution in the heat pipe is affected by the FR. The heating power has almost no effect on the distribution of the velocity field inside the heat pipe, but the maximum velocity is different. At an FR of 30%, there are two typical velocity extremes in the tube near positions of 120 mm and 160 mm, respectively, and the velocity in the tube is basically unchanged above a position of 200 mm. There are also multiple velocity extremes at an FR of 70%, with the maximum velocity occurring near 240 mm.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Study on Heat Transfer Characteristics of Reservoir Embedded Loop Heat Pipe (Influence of Condenser Cooling Method on Heat Transfer Characteristics)
    Ishikawa, Hiroaki
    Nomura, Takehide
    Ogushi, Tetsuro
    Noda, Hiroyuki
    Kawasaki, Haruo
    Yabe, Takahiro
    HEAT TRANSFER-ASIAN RESEARCH, 2009, 38 (02): : 118 - 133
  • [22] Experimental study and analysis of a new type of variable heat conduction pipe heat transfer and temperature control mechanism
    Zhao, Xiaobao
    Yuan, Zhulin
    Zhang, Mingyao
    Journal of Engineering and Applied Science, 1998, 13 (05): : 328 - 330
  • [23] On heat transfer enhancement in swirl pipe flows
    Martemianov, S
    Okulov, VL
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2004, 47 (10-11) : 2379 - 2393
  • [24] Study on heat transfer and flow mechanism in loop-type micro heat pipe
    Sakurai, Hisashi
    Koizumi, Yasuo
    Ohtake, Hiroyasu
    Am. Soc. Mech. Eng. Micro Electro Mech. Syst. Div.,
  • [25] Analytical study of the heat transfer limits of a novel loop heat pipe system
    Wang, Zhangyuan
    Zhao, Xudong
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2011, 35 (05) : 404 - 414
  • [26] Heat transfer mechanism of cold-water pipe in ocean thermal energy conversion system
    Mao, Liangjie
    Wei, Changjiang
    Zeng, Song
    Cai, Mingjie
    ENERGY, 2023, 269
  • [27] Research progress on heat transfer enhancement and application of oscillating heat pipe
    Zhao, Jiateng
    Wu, Chenhui
    Dai, Yucheng
    Rao, Zhonghao
    Huagong Xuebao/CIESC Journal, 2022, 73 (02): : 535 - 565
  • [28] Study on Heat Transfer Capability of Passive Residual Heat Removal System Based on Heat Pipe
    Xian L.
    Zhou K.
    Li F.
    Yang F.
    Zhang Z.
    Zhang D.
    Wang X.
    Hedongli Gongcheng/Nuclear Power Engineering, 2019, 40 (06): : 100 - 104
  • [29] Experimental study on the heat transfer characteristics of a new type flat micro heat pipe heat exchanger with latent heat thermal energy storage
    Diao, Y. H.
    Wang, S.
    Li, C. Z.
    Zhao, Y. H.
    Zhu, T. T.
    EXPERIMENTAL HEAT TRANSFER, 2017, 30 (02) : 91 - 111
  • [30] Heat Transfer Enhancement by using Nanofluids in Heat Pipe-A Review
    Balasao, Kusure D.
    Warkhedkar, R. M.
    Harde, P. R.
    Shirke, P. K.
    DYNAMICS OF MACHINES AND MECHANISMS, INDUSTRIAL RESEARCH, 2014, 592-594 : 932 - 938