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Wet explosion of wheat straw and codigestion with swine manure: Effect on the methane productivity

机译:小麦秸秆的湿爆和与猪粪的共消化:对甲烷生产率的影响

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摘要

The continuously increasing demand for renewable energy sources renders anaerobic digestion to one of the most promising technologies for renewable energy production. Twenty-two (22) large-scale biogas plants are currently under operation in Denmark. Most of these plants use manure as the primary feedstock but their economical profitable operation relies on the addition of other biomass products with a high biogas yield. Wheat straw is the major crop residue in Europe and the second largest agricultural residue in the world. So far it has been used in several applications, i.e. pulp and paper making, production of regenerated cellulose fibers as an alternative to wood for cellulose-based materials and ethanol production. The advantage of exploiting wheat straw for various applications is that it is available in considerable quantity and at low-cost. In the present study, the codigestion of swine manure with wheat straw in a continuous operated system was investigated, as a method to increase the efficiency of biogas plants that are based on anaerobic digestion of swine manure. Also, the pretreatment of wheat straw with the wet explosion method was studied and the efficiency of the wet explosion process was evaluated based on (a) the sugars release and (b) the methane potential of the pretreated wheat straw compared to that of the raw biomass. It was found that, although a high release of soluble sugars was observed after wet explosion, the methane obtained from the wet-exploded wheat straw was slightly lower compared to that from the raw biomass. On the other hand, the results from the codigestion of raw (non-pretreated) wheat straw with swine manure were very promising, suggesting that 4.6 kg of straw added to 1 t of manure increase the methane production by 10%. Thus, wheat straw can be considered as a promising, low-cost biomass for increasing the methane productivity of biogas plants that are based mainly on swine manure.
机译:对可再生能源的需求不断增加,使得厌氧消化成为可再生能源生产中最有希望的技术之一。丹麦目前有22(22)个大型沼气厂在运营。这些工厂大多数使用粪便作为主要原料,但其经济上可盈利的运营取决于添加其他具有高沼气产量的生物质产品。小麦秸秆是欧洲的主要农作物残留物,也是世界第二大农业残留物。迄今为止,它已用于多种应用中,即纸浆和造纸,生产再生纤维素纤维,以代替纤维素基材料的木材和乙醇生产。利用小麦秸秆进行各种应用的优势在于,其数量可观且成本低廉。在本研究中,研究了猪粪与小麦秸秆在连续操作系统中的共消化,以此作为基于猪粪厌氧消化提高沼气植物效率的方法。此外,还研究了湿爆炸法对麦秸的预处理,并基于(a)预处理过的麦秸的糖分释放和(b)与未处理过的麦秸相比的甲烷潜力,评估了湿炸过程的效率。生物质。已经发现,尽管在湿爆之后观察到可溶性糖的高释放,但是与从原始生物质中获得的甲烷相比,从湿爆麦秸中获得的甲烷略低。另一方面,生的(未经预处理的)小麦秸秆与猪粪的共同消化的结果非常有前途,这表明在1吨粪肥中添加4.6千克秸秆可使甲烷产量提高10%。因此,可以将小麦秸秆视为一种有前途的低成本生物质,用于提高主要基于猪粪的沼气厂的甲烷生产率。

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  • 来源
    《Waste Management》 |2009年第11期|2830-2835|共6页
  • 作者单位

    Bioscience and Technology Group, Biosys-DTU and Riso-DTU, Building 227, Technical University of Denmark, 2800 Lyngby, Denmark;

    Bioscience and Technology Group, Biosys-DTU and Riso-DTU, Building 227, Technical University of Denmark, 2800 Lyngby, Denmark Copenhagen Institute of Technology (Aalborg University Copenhagen), Section for Sustainable Biotechnology, Department of Biotechnology, Chemistry and Environmental Engineering, Lautrupvang 15, DK 2750 Ballerup, Denmark;

    Bioscience and Technology Group, Biosys-DTU and Riso-DTU, Building 227, Technical University of Denmark, 2800 Lyngby, Denmark Copenhagen Institute of Technology (Aalborg University Copenhagen), Section for Sustainable Biotechnology, Department of Biotechnology, Chemistry and Environmental Engineering, Lautrupvang 15, DK 2750 Ballerup, Denmark;

    Bioscience and Technology Group, Biosys-DTU and Riso-DTU, Building 227, Technical University of Denmark, 2800 Lyngby, Denmark Copenhagen Institute of Technology (Aalborg University Copenhagen), Section for Sustainable Biotechnology, Department of Biotechnology, Chemistry and Environmental Engineering, Lautrupvang 15, DK 2750 Ballerup, Denmark;

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