Thermodynamic analysis of rhombic-driven and crank-driven beta-type Stirling engines

被引:12
|
作者
Alfarawi, Suliman [1 ]
机构
[1] Univ Benghazi, Dept Mech Engn, Benghazi, Libya
关键词
analysis; beta-type; crank-driven; rhombic-driven; Stirling engine; thermodynamic; THERMAL-MODEL; DYNAMIC SIMULATION; OPTIMIZATION; PERFORMANCE; MECHANISM; DESIGN; ENERGY; POWER;
D O I
10.1002/er.5309
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 work aims to compare beta-type Stirling engine performance (GPU-3 [ground power unit]) driven by rhombic and crank mechanisms. A modified non-ideal adiabatic model accounting for different frictional and thermal losses was adopted in this study. After validating the current model with engine experimental data, different scenarios of operating conditions including heater temperature, cooler temperature, charge pressure and engine speed were investigated. The results revealed that rhombic drive mechanism generates 32% more power and provides 20% more efficiency than crank mechanism at normal operating conditions. However, at low hot end temperature (300 degrees C) and high charge pressure (50 bar) crank drive mechanism tends to slightly generate power more than rhombic drive mechanism at lower engine speeds. At low hot end temperature (300 degrees C) and charge pressure (10 bar) both mechanisms cannot deliver any positive power. Higher power loss is recognized in crank drive mechanism at higher speeds due to increased pumping and gas spring hysteresis losses. This study highlights a wide analysis opportunity for designers and researchers of GPU-3 Stirling engine for further optimization.
引用
收藏
页码:5596 / 5608
页数:13
相关论文
共 29 条
  • [21] The experimental investigation of performance behaviors of a beta-type Stirling engine with bell-crank motion mechanism
    Erol, Dervis
    INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2025, 26 (03) : 401 - 413
  • [22] Dynamic simulation of a beta-type Stirling engine with cam-drive mechanism via the combination of the thermodynamic and dynamic models
    Cheng, Chin-Hsiang
    Yu, Ying-Ju
    RENEWABLE ENERGY, 2011, 36 (02) : 714 - 725
  • [23] A new second order thermal model for accurate simulation of the transient and steady-state response of beta-type Stirling engines based on time-varying calculation of thermal losses
    Tzouganakis, Panteleimon
    Kalligeros, Christos
    Papalexis, Christos
    Koronaki, Irene
    Antonakos, Georgios
    Spitas, Vasilios
    INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2023, 24 (06) : 2739 - 2760
  • [24] Investigation of the effect of compression ratio on performance of a beta type Stirling engine with rhombic mechanism by CFD analysis
    Arslan, Turan Alp
    Solmaz, Hamit
    Ipci, Duygu
    Aksoy, Fatih
    ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2023, 42 (04)
  • [25] The investigation of effects on the engine performance characteristics of different channel geometries in the displacer cylinder for a beta-type Stirling engine with the slider-crank drive mechanism
    Yaman, Hayri
    Dogan, Battal
    Erol, Dervis
    Yesilyurt, Murat Kadir
    INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2023, 24 (07) : 3017 - 3030
  • [26] Parametric investigation of the phase characteristics of a beta-type free piston Stirling engine based on a thermodynamic-dynamic coupled model
    Chen, Pengfan
    Yang, Peng
    Liu, Liu
    Liu, Yingwen
    ENERGY, 2021, 219
  • [27] Mechanical Configuration and Thermodynamic Analysis of an Alpha-Type Stirling Engine with Crank-Shifted Driving Mechanism
    Karabulut, Halit
    Okur, Melih
    Cinar, Can
    IRANIAN JOURNAL OF SCIENCE AND TECHNOLOGY-TRANSACTIONS OF MECHANICAL ENGINEERING, 2022, 46 (02) : 431 - 448
  • [28] Energy and exergy equilibrium analysis of Stirling-type thermal compressor (STC)-The core part in thermal-driven Vuilleumier machines
    Wang, Jue
    Xi, Xiaotong
    Luo, Kaiqi
    Chen, Liubiao
    Wang, Junjie
    Zhou, Yuan
    ENERGY CONVERSION AND MANAGEMENT, 2019, 199
  • [29] Thermodynamic characteristics of a single-stage stirling-type pulse tube cryocooler capable of 1220 W at 77 K with two cold fingers driven by one linear compressor
    Xue, Renjun
    Tan, Jun
    Zhao, Bangjian
    Zhao, Yongjiang
    Tan, Han
    Wu, Shiguang
    Zhai, Yujia
    Ma, Dong
    Wu, Dirui
    Dang, Haizheng
    ENERGY, 2023, 278