Optimization of Flywheel Rotor Energy and Stability Using Finite Element Modelling

被引:0
作者
Coppede, Daniel [1 ]
Bortoli, Fabio da Silva [2 ]
Moreira, Joao Manoel Losada [1 ]
Magalhaes, Nadja Simao [3 ]
Frajuca, Carlos [2 ,4 ]
机构
[1] Univ Fed ABC, PPG ENE, BR-09280560 Santo Andre, Brazil
[2] Inst Fed Sao Paulo, BR-01109010 Sao Paulo, SP, Brazil
[3] Univ Fed Sao Paulo, Phys Dept, BR-09913030 Diadema, SP, Brazil
[4] Univ Fed Rio Grande, Inst Matemat Estat & Fis, BR-96203900 Rio Grande, Brazil
基金
巴西圣保罗研究基金会;
关键词
flywheel; flywheel rotor; flywheel stability; flywheel energy density; STORAGE;
D O I
10.3390/en17123042
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
An investigation on a flywheel is presented based on finite element modelling simulations for different geometries. The goal was to optimise the energy density (rotational energy-to-mass ratio) and, at the same time, the rotational energy of a flywheel rotor. The stress behaviour of flywheel rotors under the rotational speed at the maximum stress achievable by the flywheel was analysed. Under this condition, the energy density was obtained for the different geometries, as well as the rotational energy. The best energy density performance due to geometry was achieved with a flywheel rotor presenting a new Gaussian section, which is different from the known Laval disk shape. The best results using a single disk involved a rotational speed of nearly 279,000 rpm and a rotational energy density around 1584 kJ/kg (440 Wh/kg). These values still yielded low total energy; to increase its value, two or three rotors were added to the flywheel, which were analysed in regard to stability. In particular, the triple rotor energy density was approximate to 1550 kJ/kg (431 Wh/kg). As some instability was found in these rotors, a solution using reinforcement was developed to avoid such instabilities. The energy density of such a reinforced double rotor neared 1451 kJ/kg (403 Wh/kg), and the system achieved higher total energy. The material assumed for the devices was carbon fibre Hexcel UHM 12,000, a material kept constant throughout the simulations to allow comparison among the different geometries.
引用
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页数:24
相关论文
共 29 条
  • [1] Ashby M.F., 2016, Materials Selection in Mechanical Design
  • [2] Storage of Mechanical Energy Based on Carbon Nanotubes with High Energy Density and Power Density
    Bai, Yunxiang
    Shen, Boyuan
    Zhang, Shenli
    Zhu, Zhenxing
    Sun, Silei
    Gao, Jun
    Li, Banghao
    Wang, Yao
    Zhang, Rufan
    Wei, Fei
    [J]. ADVANCED MATERIALS, 2019, 31 (09)
  • [3] Bankston S., 2015, Energy Res. J, V6, P54, DOI [10.3844/erjsp.2015.54.63, DOI 10.3844/ERJSP.2015.54.63]
  • [4] A physical criterion for validating the method used to design mechanical impedance matchers for Mario Schenberg's transducers
    Bortoli, F. S.
    Frajuca, C.
    Magalhaes, N. S.
    Duarte, E. N.
    [J]. 8TH EDOARDO AMALDI CONFERENCE ON GRAVITATIONAL WAVES, 2010, 228
  • [5] Flywheel energy storage systems: A critical review on technologies, applications, and future prospects
    Choudhury, Subhashree
    [J]. INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2021, 31 (09)
  • [6] Design optimization, construction, and testing of a hydraulic flywheel accumulator
    Cronk, Paul
    Van de Ven, James
    Strohmaier, Kyle
    [J]. JOURNAL OF ENERGY STORAGE, 2021, 44
  • [7] Compatible alternative energy storage systems for electric vehicles: Review of relevant technology derived from conventional systems
    El Bakkari, Fatima
    Mounir, Hamid
    [J]. ENERGY, 2024, 288
  • [8] Feasibility Study for Small Scaling Flywheel-Energy-Storage Systems in Energy Harvesting Systems
    Ertz, Gabriel
    Twiefel, Jens
    Krack, Malte
    [J]. Energy Harvesting and Systems, 2014, 1 (03) : 233 - 241
  • [9] Fiske O.J., 2016, Third Generation Flywheels For High Power Electricity Storage
  • [10] Fowler T.K., 1973, P W APPL MECH C HAMP