Numerical simulation for the design analysis of kinematic Stirling engines

被引:35
|
作者
Araoz, Joseph A. [1 ,2 ]
Salomon, Marianne [1 ]
Alejo, Lucio [2 ]
Fransson, Torsten H. [1 ]
机构
[1] Royal Inst Technol KTH, Sch Ind Technol & Management ITM, Dept Energy Technol, S-10044 Stockholm, Sweden
[2] UMSS, FCyT, Cochabamba, Bolivia
关键词
Thermal model; Stirling engine; CHP; Simulation; Thermodynamics; THERMODYNAMIC ANALYSIS; CHP SYSTEMS; PERFORMANCE; HEAT; OPTIMIZATION; BIOMASS; MODEL; TECHNOLOGIES; REGENERATOR; VALIDATION;
D O I
10.1016/j.apenergy.2015.09.024
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
The Stirling engine is a closed-cycle regenerative system that presents good theoretical properties. These include a high thermodynamic efficiency, low emissions levels thanks to a controlled external heat source, and multi-fuel capability among others. However, the performance of actual prototypes largely differs from the mentioned theoretical potential. Actual engine prototypes present low electrical power outputs and high energy losses. These are mainly attributed to the complex interaction between the different components of the engine, and the challenging heat transfer and fluid dynamics requirements. Furthermore, the integration of the engine into decentralized energy systems such as the Combined Heat and Power systems (CHP) entails additional complications. These has increased the need for engineering tools that could assess design improvements, considering a broader range of parameters that would influence the engine performance when integrated within overall systems. Following this trend, the current work aimed to implement an analysis that could integrate the thermodynamics, and the thermal and mechanical interactions that influence the performance of kinematic Stirling engines. In particular for their use in Combined Heat and Power systems. The mentioned analysis was applied for the study of an engine prototype that presented very low experimental performance. The numerical methodology was selected for the identification of possible causes that limited the performance. This analysis is based on a second order Stirling engine model that was previously developed and validated. The simulation allowed to evaluate the effect that different design and operational parameters have on the engine performance, and consequently different performance curves were obtained. These curves allowed to identify ranges for the charged pressure, temperature ratio, heat exchangers dimensions, crank phase angle and crank mechanical effectiveness, where the engine performance was improved. In addition, the curves also permitted to recognise ranges were the design parameters could drastically reduce the brake power and efficiency. The results also showed that the design of the engine is affected by the conditions imposed by the CHP interactions, and that the engine could reach a brake power closer to 832 W with a corresponding brake efficiency of 26% when the adequate design parameters were considered. On the other hand, the performance could also be very low; as the reported in experimental tests, with brake power measurements ranging 52-120W. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:633 / 650
页数:18
相关论文
共 50 条
  • [21] Trends for Stirling Engines in Households: A Systematic Literature Review
    Kubule, Anna
    Kramens, Janis
    Bimbere, Madara
    Pedisius, Nerijus
    Blumberga, Dagnija
    ENERGIES, 2024, 17 (02)
  • [22] Solar parabolic dish Stirling engine system design, simulation, and thermal analysis
    Hafez, A. Z.
    Soliman, Ahmed
    El-Metwally, K. A.
    Ismail, I. M.
    ENERGY CONVERSION AND MANAGEMENT, 2016, 126 : 60 - 75
  • [23] NUMERICAL STUDY OF REGENERATOR CONFIGURATION IN THE DESIGN OF A STIRLING ENGINE
    Ferreira, Ana C.
    Teixeira, Senhorinha
    Nunes, Manuel L.
    Martins, Luis B.
    ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2014, VOL 6A, 2015,
  • [24] Prediction of output power with artificial neural network using extended datasets for Stirling engines
    Jiang, Han
    Xi, Zhongli
    Rahman, Anas A.
    Zhang, Xiaoqing
    APPLIED ENERGY, 2020, 271
  • [25] Viability of low-grade heat conversion using liquid piston Stirling engines
    Mazhar, Abdur Rehman
    Shen, Yongliang
    Liu, Shuli
    WILEY INTERDISCIPLINARY REVIEWS-ENERGY AND ENVIRONMENT, 2024, 13 (02)
  • [26] Analytical method for Stirling engines and coolers
    Kagawa, N
    JSME INTERNATIONAL JOURNAL SERIES B-FLUIDS AND THERMAL ENGINEERING, 1998, 41 (03) : 632 - 640
  • [27] Decoupled duplex Stirling machine: Conceptual design and theoretical analysis
    Luo, Baojun
    Zou, Peng
    Jiang, Tao
    Gao, Qun
    Liu, Jingping
    ENERGY CONVERSION AND MANAGEMENT, 2020, 210
  • [29] Design and performance optimization of GPU-3 Stirling engines
    Timoumi, Youssef
    Tlili, Iskander
    Ben Nasrallah, Sassi
    ENERGY, 2008, 33 (07) : 1100 - 1114
  • [30] Similarity design and experimental investigation of a beta-type Stirling engine with a rhombic drive mechanism
    Duan, Chen
    Sun, Chuan
    Shu, Shuiming
    Ding, Guozhong
    Jing, Changwei
    Chang, Jinxing
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2015, 39 (02) : 191 - 201