Das Oisik, Sarmah Ajit K, Bhattacharyya Debes
Department of Civil and Environmental Engineering, University of Auckland, Auckland 1142, New Zealand.
Department of Civil and Environmental Engineering, University of Auckland, Auckland 1142, New Zealand.
Waste Manag. 2016 Mar;49:560-570. doi: 10.1016/j.wasman.2015.12.007. Epub 2015 Dec 24.
To identify a route for organic wastes utilisation, biochar made from various feedstocks (landfill pine saw dust, sewage sludge, and poultry litter) and at diverse pyrolysis conditions, were collected. These biochars were used to fabricate wood and polypropylene biocomposites with a loading level of 24 mass%. The composites were tested for their mechanical, chemical, thermal, morphological, and fire properties. The poultry litter biochar biocomposite, with highest ash content, was found to have high values of tensile/flexural strength, tensile/flexural modulus, and impact strength, compared to other composites. In general, addition of all the biochars enhanced the tensile/flexural moduli of the composites. The crystal structure of polypropylene in the composite was intact after the incorporation of all the biochars. The final chemical and crystal structure of the composite were an additive function of the individual components. The biochar particles along with wood acted as nucleating agents for the recrystallization of polypropylene in composite. Each component in the composites was found to decompose individually under thermal regime. The electron microscopy revealed the infiltration of polypropylene into the biochar pores and a general good dispersion in most composites. The poultry litter composite was found to have lower heat release rate under combustion regime.
为确定有机废物的利用途径,收集了由各种原料(垃圾填埋场的松木屑、污水污泥和家禽粪便)在不同热解条件下制成的生物炭。这些生物炭用于制备负载量为24质量%的木材和聚丙烯生物复合材料。对复合材料的机械、化学、热、形态和燃烧性能进行了测试。与其他复合材料相比,灰分含量最高的家禽粪便生物炭生物复合材料的拉伸/弯曲强度、拉伸/弯曲模量和冲击强度值较高。一般来说,添加所有生物炭都提高了复合材料的拉伸/弯曲模量。加入所有生物炭后,复合材料中聚丙烯的晶体结构保持完整。复合材料的最终化学和晶体结构是各组分的加和函数。生物炭颗粒与木材一起作为复合材料中聚丙烯重结晶的成核剂。发现复合材料中的每个组分在热作用下单独分解。电子显微镜显示聚丙烯渗入生物炭孔隙,并且在大多数复合材料中普遍分散良好。发现家禽粪便复合材料在燃烧时具有较低的热释放速率。