Effect of superheat degree on the performance of an organic Rankine cycle system that utilizes a wet working fluid

被引:0
|
作者
Hsieh, Jui-C. [1 ]
Hsieh, Yi-C. [1 ]
Chen, Yen-H. [1 ]
机构
[1] Natl Chin Yi Univ Technol, Dept Mech Engn, Taichung, Taiwan
关键词
low-grade heat; organic Rankine cycle (ORC); R134a; scroll expander; superheat degree; wet working fluid; WASTE HEAT-RECOVERY; MULTIOBJECTIVE OPTIMIZATION; ORC; OPERATION;
D O I
10.1002/ese3.1924
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
Limited experimental research has been conducted on organic Rankine cycle (ORC) systems that use wet working fluids. Therefore, the present study examined how the performance of an ORC system that uses a wet working fluid (R134a) was affected by the superheat degree ratio (SDR) under various scroll rotation speeds. The SDR is the dimensionless ratio between superheat degree and evaporation temperature at a given heat source temperature. Experimental results indicated that at scroll rotation speeds of 900, 1350, and 1800 rpm, the maximum output power of the aforementioned system was 1103, 1464, and 1537 W, respectively, with SDRs of 0.49, 0.49, and 0.54, respectively. The maximum net efficiencies at these speeds were 5.87%, 5.91%, and 5.32%, respectively, which occurred at SDRs of 0.61, 0.49, and 0.48, respectively. This level of system performance was attributable to the high enthalpy at the expander inlet and the high mass flow rate at the high evaporation pressure under an SDR of approximately 0.5. Although increasing the SDR did not enhance the scroll expander's isentropic efficiency, this efficiency decreased considerably when the SDR fell below 0.2. These findings emphasize the importance of optimizing the SDR of ORC systems to improve their performance. Effect of the SDR on the power output and net efficiency at varied heat source temperatures under different expander rotation speeds. image
引用
收藏
页码:5019 / 5030
页数:12
相关论文
共 50 条
  • [41] Influence of superheat and expansion ratio on performance of organic Rankine cycle-based combined heat and power (CHP) system
    Jang, Yongtae
    Lee, Jaeseon
    ENERGY CONVERSION AND MANAGEMENT, 2018, 171 : 82 - 97
  • [42] Performance Simulation of a Twin-screw Expander Using R513A as Working Fluid in Organic Rankine Cycle System
    Zhang, Zhiping
    Wang, Ying
    Wu, Xiaokun
    Pan, Xi
    Xing, Ziwen
    2020 IEEE 3RD INTERNATIONAL CONFERENCE ON RENEWABLE ENERGY AND POWER ENGINEERING (REPE), 2020, : 18 - 25
  • [43] Thermodynamic performance limits of the organic Rankine cycle: Working fluid parameterization based on corresponding states modeling
    Yang, Fufang
    Yang, Fubin
    Chu, Qingfu
    Liu, Qiang
    Yang, Zhen
    Duan, Yuanyuan
    ENERGY CONVERSION AND MANAGEMENT, 2020, 217
  • [44] Effects of superheat and internal heat exchanger on thermo-economic performance of organic Rankine cycle based on fluid type and heat sources
    Zhang, Cheng
    Liu, Chao
    Xu, Xiaoxiao
    Li, Qibin
    Wang, Shukun
    Chen, Xi
    ENERGY, 2018, 159 : 482 - 495
  • [45] Working fluid selection for a combined system based on coupling of organic Rankine cycle and air source heat pump cycle
    Liang, Youcai
    Yu, Zhibin
    INNOVATIVE SOLUTIONS FOR ENERGY TRANSITIONS, 2019, 158 : 1485 - 1490
  • [46] Effects of different working fluids on the performance of a radial turbine in an organic Rankine cycle power system
    Ze-min Bo
    Zhenkun Sang
    Xiaojing Lv
    Yi-wu Weng
    Journal of Mechanical Science and Technology, 2018, 32 : 4503 - 4515
  • [47] Effects of different working fluids on the performance of a radial turbine in an organic Rankine cycle power system
    Bo, Ze-min
    Sang, Zhenkun
    Lv, Xiaojing
    Weng, Yi-wu
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2018, 32 (09) : 4503 - 4515
  • [48] Performance Assessment of Controlled Organic Rankine Cycle System
    Zhang, Jianhua
    Shui, Fuli
    Jiang, Man
    Chen, Junghui
    INTERNATIONAL CONFERENCE ON APPLIED ENERGY, ICAE2014, 2014, 61 : 691 - 694
  • [49] Zeotropic working fluid selection for an organic Rankine cycle bottoming with a marine engine
    Wang, Enhua
    Zhang, Mengru
    Meng, Fanxiao
    Zhang, Hongguang
    ENERGY, 2022, 243
  • [50] A Computer Program for Working Fluid Selection of Low Temperature Organic Rankine Cycle
    Ali, Muhammad Ansab
    Khan, Tariq Saeed
    Al Hajri, Ebrahim
    Ayub, Zahid H.
    PROCEEDINGS OF THE ASME POWER CONFERENCE, 2015, 2016,