Coupling a Stirling engine with a fluidized bed combustor for biomass

被引:7
作者
Marra, Francesco Saverio [1 ]
Miccio, Francesco [2 ]
Solimene, Roberto [1 ]
Chirone, Riccardo [1 ]
Urciuolo, Massimo [1 ]
Miccio, Michele [3 ]
机构
[1] Inst Res Combust CNR IRC, Naples, Italy
[2] Inst Sci & Technol Ceram ISTEC CNR, Via Granarolo 64, I-48018 Faenza, RA, Italy
[3] Univ Salerno, Dept Ind Engn DIIn, Fisciano, SA, Italy
关键词
biomass; fluidized bed combustion; mathematical modeling; micro-generation; Stirling engine; system dynamics; INTEGRATION; GENERATION; HEAT;
D O I
10.1002/er.5662
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 paper deals with the integration between a kinematic Stirling engine and a fluidized bed combustor for micro-scale cogeneration of renewable energy. A pilot-scale facility integrating a 40 kW(t)combustor and a gamma-type Stirling engine (0.5 kW(e)) was set up and tested to demonstrate the feasibility of this solution. The Stirling engine was installed at a lateral wall of the combustor in direct contact with the fluidized bed region. An experimental campaign was executed to assess the performance of the innovative integrated system. The experimental results can be summarized in: (a) very high combustion efficiency with biomass feeding, (b) elevated heat transfer rate to the engine, (c) a relatively small share (about 2 kW(t)) transferred to the engine from the thermal power generated by the combustor (around 13 kW(t)), (d) conversion to electric power close to the upper limit of the engine, (e) limited impact of the Stirling engine on the fluidized bed behavior, for example, temperature. From the analysis of measured variables, the dynamics is dominated by the fast response of the Stirling engine, which rapidly reacts to the slow changes of the fluidized bed combustor regime: the dynamic response of the tested facility as a thermal system was slow, the time constant being of the order of 10 minutes.
引用
收藏
页码:12572 / 12582
页数:11
相关论文
共 26 条
  • [1] Performance assessment of a Stirling engine plant for local micro-cogeneration
    Alanne, Kari
    Paatero, Jukka
    Beausoleil-Morrison, Ian
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2012, 36 (02) : 218 - 230
  • [2] Development of a new concept solar-biomass cogeneration system
    Angrisani, G.
    Bizon, K.
    Chirone, R.
    Continillo, G.
    Fusco, G.
    Lombardi, S.
    Marra, F. S.
    Miccio, F.
    Roselli, C.
    Sasso, M.
    Solimene, R.
    Tariello, F.
    Urciuolo, M.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2013, 75 : 552 - 560
  • [3] Bain RL, 2002, FOREST PROD J, V52, P12
  • [4] Batu A., 2002, TURKISH J ENG ENV SC, V26, P49
  • [5] Bizon K, 2015, 23 EUR BIOM C EXH
  • [6] Not carbon neutral: Assessing the net emissions impact of residues burned for bioenergy
    Booth, Mary S.
    [J]. ENVIRONMENTAL RESEARCH LETTERS, 2018, 13 (03):
  • [7] Cammarota A, 2009, P 20 INT C FUID BED, P441
  • [8] Integration of a wood pellet burner and a Stirling engine to produce residential heat and power
    Cardozo, Evelyn
    Erlich, Catharina
    Malmquist, Anders
    Alejo, Lucio
    [J]. APPLIED THERMAL ENGINEERING, 2014, 73 (01) : 671 - 680
  • [9] Chen JC., 2003, Handbook of Fluidization and Fluid-particle systems
  • [10] Cooper DJ, 2008, PRACTICAL PROCESS CO