Investigations on the Performance of a Downhole Electric Heater with Different Parameters Used in Oil Shale In Situ Conversion

被引:0
|
作者
Ren, Dazhong [1 ,2 ,3 ]
Wang, Zhendong [3 ,4 ]
Yang, Fu [3 ]
Zeng, Hao [1 ,2 ]
Zhang, Zengzeng [5 ]
机构
[1] State Key Lab Shale Oil & Gas Enrichment Mech & Ef, Beijing 100083, Peoples R China
[2] State Ctr Res & Dev Oil Shale Exploitat, Beijing 100083, Peoples R China
[3] Xian Shiyou Univ, Shaanxi Key Lab Adv Stimulat Technol Oil & Gas Res, Xian 710065, Peoples R China
[4] Xi An Jiao Tong Univ, Sch Energy & Power Engn, Key Lab Thermo Fluid Sci & Engn, Minist Educ, Xian 710049, Peoples R China
[5] Shandong Univ Technol, Sch Civil Engn & Geomat, Zibo 255049, Peoples R China
来源
ACS OMEGA | 2024年 / 9卷 / 33期
基金
中国博士后科学基金; 国家重点研发计划;
关键词
EXCHANGER;
D O I
10.1021/acsomega.4c03425
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In situ conversion is the most potential technology for efficient and clean development of oil shale, and a downhole electric heater is key equipment for clean, efficient, and low-carbon in situ conversion. Three electric heating rods with different diameters are used to explore their influence on heater performances. The simulation results indicate that increasing the diameter of the heating rod helps to increase the minimum and maximum velocity of shell-side air, and the maximum velocity of H110-24 is 16.34 m/s, which is 1.25 and 1.13 times those of H110-16 and H110-20, respectively. In addition, the location of the local high temperature zone coincides with the area with low air flow velocity, and increasing the diameter of the heating rod can effectively reduce the heating rod surface temperature during high-power heating. Moreover, at the same heat flux, the heat transfer coefficients of H110-24 and H110-20 are 44.82-48.49% and 87.52-95.48% higher than those of H110-16, respectively. With the same heating power, the heat transfer coefficients of heaters have the same trend, indicating that the heat transfer coefficient of the heating rod can be effectively improved by increasing the diameter of the heating rod. Finally, the newly defined comprehensive performance is used to evaluate the heaters with different heating parameters. Increasing the heating power can improve the comprehensive performance of the heater, but the most effective way is to increase the diameter of the heating rod. With the same heating power, the new comprehensive performance of H110-24 and H110-20 is 48.38-52.34% and 87.29-95.19% higher than that of H110-16, respectively, and the electric heating rod with the diameter of 20 mm has the best performance.
引用
收藏
页码:35600 / 35613
页数:14
相关论文
共 50 条
  • [31] Research progress on electric heating technology for oil shale in situ mining
    Pan, Yi
    Fan, Xukun
    OIL SHALE, 2024, 41 (04) : 273 - 288
  • [32] Oil shale pyrolysis and electric heating in situ mining technology improvements
    Pan, Yi
    Fan, Xukun
    Yang, Shuangchun
    Hu, Zhiyong
    Yan, Yulin
    OIL SHALE, 2024, 41 (04) : 257 - 272
  • [33] Design of Oil Shale In-Situ Extraction Heater Structure and Numerical Simulation of the Fracturing Process
    Hao Liu
    Tengfei Sun
    Yang Zhang
    Baokang Wu
    Zhilei Wang
    Yacong Fan
    Chemistry and Technology of Fuels and Oils, 2023, 58 : 990 - 1004
  • [34] Design of Oil Shale In-Situ Extraction Heater Structure and Numerical Simulation of the Fracturing Process
    Liu, Hao
    Sun, Tengfei
    Zhang, Yang
    Wu, Baokang
    Wang, Zhilei
    Fan, Yacong
    CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2023, 58 (06) : 990 - 1004
  • [35] Controlling the in-situ conversion process of oil shale via geochemical methods: A case study on the Fuyu oil shale, China
    He, Wentong
    Sun, Youhong
    Guo, Wei
    Shan, Xuanlong
    FUEL PROCESSING TECHNOLOGY, 2021, 219
  • [36] Development review and the prospect of oil shale in-situ catalysis conversion technology
    Li Wang
    Chen-Hao Gao
    Rui-Ying Xiong
    Xiao-Jun Zhang
    Ji-Xiang Guo
    Petroleum Science, 2024, 21 (02) : 1385 - 1395
  • [37] Selection of favourable targets for the in-situ conversion of continental oil shale in China
    Sun, Pingchang
    Li, Wangpeng
    Liu, Zhaojun
    Niu, Daming
    Wu, Xiaoling
    Tao, Lianxin
    Wang, Zhuo
    Luan, Zhisheng
    OIL SHALE, 2023, 40 (03) : 177 - 193
  • [38] Development review and the prospect of oil shale in-situ catalysis conversion technology
    Li Wang
    Chen-Hao Gao
    Rui-Ying Xiong
    Xiao-Jun Zhang
    Ji-Xiang Guo
    Petroleum Science, 2024, (02) : 1385 - 1395
  • [39] Development review and the prospect of oil shale in-situ catalysis conversion technology
    Wang, Li
    Gao, Chen-Hao
    Xiong, Rui-Ying
    Zhang, Xiao-Jun
    Guo, Ji-Xiang
    PETROLEUM SCIENCE, 2024, 21 (02) : 1385 - 1395
  • [40] Oil shale in situ conversion with catalyzing by mineral-based solid acids
    Meng, Xianglong
    Qi, Zhilei
    Yu, Cong
    Song, Ranran
    Bian, Junjie
    Ma, Zhongliang
    Long, Qiulian
    Su, Jianzheng
    6TH INTERNATIONAL CONFERENCE ON ADVANCES IN ENERGY RESOURCES AND ENVIRONMENT ENGINEERING, 2021, 647