Utilization of distillery stillage for energy generation and concurrent production of valuable microalgal biomass in the sequence: biogas-cogeneration-microalgae-products

被引:61
作者
Douskova, Irena [1 ]
Kastanek, Frantisek [2 ]
Maleterova, Ywette [2 ]
Kastanek, Petr [3 ]
Doucha, Jiri [1 ]
Zachleder, Vilem [1 ]
机构
[1] Acad Sci Czech Republic, Inst Microbiol, Dept Autotroph Microorganisms, Lab Cell Cycles Algae, Trebon 37981, Czech Republic
[2] Acad Sci Czech Republic, Inst Chem Proc Fundamentals, CR-16502 Prague 6, Suchdol, Czech Republic
[3] Biocen Ltd, Prague 13000, Czech Republic
关键词
Biogas; Stillage; Microalgae; Chlorella; Waste recovery; Carbon dioxide; ANAEROBIC TREATMENT; CHLORELLA-SP; FLUE-GAS; CULTIVATION;
D O I
10.1016/j.enconman.2009.11.008
中图分类号
O414.1 [热力学];
学科分类号
摘要
The aim of the study was the experimental verification of a proposed novel technology of energy and materials production, consisting of the following process steps: production of biogas from agricultural waste (distillery stillage), presumed utilization of biogas for electricity and heat production (cogeneration) in association with its use as a source of carbon dioxide for microalgae cultivation. The microalgal biomass can be hereafter processed to valuable products such as food and feed supplements. A part of the process wastewater can be utilized as a nitrogen source (ammonium ions) for microalgae cultivation, so the whole process is technologically closed. The tests were performed in a pilot-scale device. Optimization of biogas production from distillery stillage is described. The growth kinetics of microalgae Chlorella sp. consuming biogas or mixture of air and carbon dioxide in the concentration range of 2-20% (v/v) (simulating a flue gas from biogas incineration) in laboratory-scale photo-bioreactors are presented. It was proven that the raw biogas (even without the removal of hydrogen sulphide) could be used as a source of carbon dioxide for growth of microalgae. The growth rate of microalgae consuming biogas was the same as the growth rate of the culture grown on a mixture of air and food-grade carbon dioxide. Using biogas as a source of carbon dioxide has two main advantages: the biomass production costs are reduced and the produced biomass does not contain harmful compounds, which can occur in flue gases. The microalgal growth in bubbled cylinders was typically linear with time. The growth rate dependence on the diameter of the photobioreactor can be correlated using an empirical formula M = 2.2 D(-0.8) (valid for the linear bubbling velocities in the range of w = 0.1-0.3 cm/s), where M is the growth rate in g/L/h, and D is the photobioreactor diameter in mm. Processing of the fermenter wastewater was also quantified. Particularly the removal of ammonia via distillation of the previously alkalized digested sludge was investigated. The possible reuse of ammonia as a fertilizer or as a nitrogen source for microalgae cultivation was examined. About 10% of the distillate (free ammonia concentration up to 20 g/L) can be utilized. The process can be economically viable if a suitable photobioreactor is chosen and the electricity, microalgal biomass and the fertilizer production are valued. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:606 / 611
页数:6
相关论文
共 9 条
  • [1] Commercial production of microalgae: ponds, tanks, tubes and fermenters
    Borowitzka, MA
    [J]. JOURNAL OF BIOTECHNOLOGY, 1999, 70 (1-3) : 313 - 321
  • [2] Productivity, CO2/O2 exchange and hydraulics in outdoor open high density microalgal (Chlorella sp.) photobioreactors operated in a Middle and Southern European climate
    Doucha, J.
    Livansky, K.
    [J]. JOURNAL OF APPLIED PHYCOLOGY, 2006, 18 (06) : 811 - 826
  • [3] Utilization of flue gas for cultivation of microalgae (Chlorella sp.) in an outdoor open thin-layer photobioreactor
    Doucha, J
    Straka, F
    Lívansky, K
    [J]. JOURNAL OF APPLIED PHYCOLOGY, 2005, 17 (05) : 403 - 412
  • [4] Simultaneous flue gas bioremediation and reduction of microalgal biomass production costs
    Douskova, I.
    Doucha, J.
    Livansky, K.
    Machat, J.
    Novak, P.
    Umysova, D.
    Zachleder, V.
    Vitova, M.
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2009, 82 (01) : 179 - 185
  • [5] Hutnan M, 2003, CHEM BIOCHEM ENG Q, V17, P233
  • [6] Sequential heterotrophic/autotrophic cultivation - An efficient method of producing Chlorella biomass for health food and animal feed
    Ogbonna, JC
    Masui, H
    Tanaka, H
    [J]. JOURNAL OF APPLIED PHYCOLOGY, 1997, 9 (04) : 359 - 366
  • [7] PULZ O, 1998, ADV BIOCH ENG BIOTEC
  • [8] TRAVIESCO L, 1993, BIOTECHNOL LETT, V16, P11091
  • [9] Stillage characterization and anaerobic treatment of ethanol stillage from conventional and cellulosic feedstocks
    Wilkie, AC
    Riedesel, KJ
    Owens, JM
    [J]. BIOMASS & BIOENERGY, 2000, 19 (02) : 63 - 102