Analysis of Turbomachinery Losses in sCO2 Brayton Power Blocks

被引:4
|
作者
Seshadri, Lakshminarayanan [1 ]
Kumar, Pramod [2 ]
Nassar, Abdul [3 ]
Giri, Gaurav [3 ]
机构
[1] Indian Inst Sci Bangalore, Dept Mech Engn, Bengaluru 560012, India
[2] Indian Inst Sci Bangalore, Interdisciplinary Ctr Energy Res, Dept Mech Engn, Bengaluru 560012, India
[3] SoftInWay Digital Engn Private Ltd, Bengaluru 560043, India
关键词
supercritical carbon dioxide (s-CO2) Brayton power cycle; turbomachinery loss models;
D O I
10.1115/1.4054133
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
This paper analyzes the contribution of different turbomachinery loss mechanisms to the overall efficiency of a simple recuperated supercritical carbon dioxide (s-CO2) Brayton cycle for output capacities ranging from 100 kW to 1 GW. The optimum turbomachinery specifications suitable for the specified powers are retrieved using a standard design tool that provides information on various turbomachinery losses. The losses are influenced by operating pressures and mass flowrates, which are unknown a priori. An iterative approach is used to arrive at the turbomachinery efficiency and mass flowrate. Earlier studies have shown the dependence of optimal pressures on heat source and sink temperatures alone. This analysis reveals that design-point optimal cycle pressure ratios differ with varying power outputs due to differences in realizable turbomachinery efficiencies. The information on dominant loss mechanisms provides insights on a viable scale of power generation at which s-CO2 Brayton cycles become worthwhile. Poor turbomachinery efficiencies (less than 80%) render the s-CO2 technology commercially unviable at the sub-MW scale. For higher power scales (10 MW and above), axial machines are found to be appropriate, with corresponding turbomachinery efficiencies greater than 85%. The dominant loss mechanisms also help identify issues related to improving turbomachinery efficiencies at the sub-MW power levels, where the cycle efficiencies are not competitive.
引用
下载
收藏
页数:9
相关论文
共 50 条
  • [41] Thermodynamic Performance Comparison and Optimization of sCO2 Brayton Cycle, tCO2 Brayton Cycle and tCO2 Rankine Cycle
    JIANG Yu
    ZHAN Li
    TIAN Xuelian
    NIE Changhua
    Journal of Thermal Science, 2023, 32 (02) : 611 - 627
  • [42] Thermodynamic and exergoeconomic investigation of various SCO2 Brayton cycles for next generation nuclear reactors
    Luo, Dan
    Huang, Diangui
    ENERGY CONVERSION AND MANAGEMENT, 2020, 209
  • [43] Influence of marine conditions on thermal efficiency of SCO2 Brayton cycle for waste heat recovery
    Hu, Keqi
    Liu, Xiuliang
    Chen, Yanjun
    He, Deqiang
    APPLIED THERMAL ENGINEERING, 2023, 227
  • [44] An analytical method for quickly evaluating the performances of refractory alloys in sCO2 Brayton cycle applications
    Yang, Jiaqi
    Ma, Yuan
    Wang, Wujun
    ENERGY, 2023, 283
  • [45] Comparative study of three modified sCO2 Brayton recompression cycles based on energy and exergy analysis with GA optimisation
    Li, Chunlei
    Eri, Qitai
    INTERNATIONAL JOURNAL OF EXERGY, 2021, 35 (02) : 241 - 262
  • [46] Dynamic analysis of the PCHE in 5MWth small modular SCO2 Brayton-Cycle reactor system
    Ming, Yang
    Shen, Haoran
    Liu, Kai
    Hong, Junying
    Tian, Ruifeng
    Zhao, Fulong
    Tan, Sichao
    NUCLEAR ENGINEERING AND DESIGN, 2024, 427
  • [47] Design and performance analysis of a supercritical CO2 (sCO2)-water separator for power generation systems using hot sCO2 from geothermal reservoirs
    Qiao, Zongliang
    Tang, Youfei
    Zhang, Lei
    Pan, Chunjian
    Romero, Carlos E.
    Wang, Xingchao
    Charles, Joshua
    Si, Fengqi
    Maya, Carlos Rubio
    GEOTHERMICS, 2019, 81 : 123 - 132
  • [48] Integrated Performance of a Modular Biomass Boiler With a Combined Heat and Power Industrial Rankine Cycle and Supplementary sCO2 Brayton Cycle
    Haffejee, Rashid A.
    Rousseau, Pieter
    Laubscher, Ryno
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2024, 16 (09)
  • [49] Optimization and techno-economic comparison of regenerators and recuperators in sCO2 recompression Brayton cycles for concentrating solar power applications
    Reznicek, Evan P.
    Neises, Ty
    Braun, Robert J.
    SOLAR ENERGY, 2022, 238 : 327 - 340
  • [50] Thermodynamic Performance Comparison and Optimization of sCO2 Brayton Cycle, tCO2 Brayton Cycle and tCO2 Rankine Cycle
    Yu, J. I. A. N. G.
    Li, Z. H. A. N.
    Xuelian, T. I. A. N.
    Changhua, N. I. E.
    JOURNAL OF THERMAL SCIENCE, 2023, 32 (02) : 611 - 627