NUS Environmental Research Institute, National University of Singapore, 1 Create Way, Create Tower, #15-02, Singapore 138602, Singapore; Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore 117585, Singapore.
NUS Environmental Research Institute, National University of Singapore, 1 Create Way, Create Tower, #15-02, Singapore 138602, Singapore.
Bioresour Technol. 2017 Mar;228:77-88. doi: 10.1016/j.biortech.2016.12.064. Epub 2016 Dec 28.
Lignocellulosic biomass waste, a heterogeneous complex of biodegradables and non-biodegradables, accounts for large proportion of municipal solid waste. Due to limitation of single-stage treatment, a two-stage hybrid AD-gasification system was proposed in this work, in which AD acted as pre-treatment to convert biodegradables into biogas followed by gasification converting solid residue into syngas. Energy performance of single and two-stage systems treating 3 typical lignocellulosic wastes was studied using both experimental and numerical methods. In comparison with conventional single-stage gasification treatment, this hybrid system could significantly improve the quality of produced gas for all selected biomass wastes and show its potential in enhancing total gas energy production by a maximum value of 27% for brewer's spent grain treatment at an organic loading rate (OLR) of 3gVS/L/day. The maximum overall efficiency of the hybrid system for horticultural waste treatment was 75.2% at OLR of 11.3gVS/L/day, 5.5% higher than conventional single-stage system.
木质纤维素生物质废物是一种由可生物降解物和不可生物降解物组成的不均匀复杂混合物,占城市固体废物的很大比例。由于单级处理的局限性,本工作提出了两级混合 AD-气化系统,其中 AD 作为预处理将可生物降解物转化为沼气,然后气化将固体残渣转化为合成气。使用实验和数值方法研究了单级和两级系统处理 3 种典型木质纤维素废物的能量性能。与传统的单级气化处理相比,该混合系统可以显著提高所选生物质废物的产气质量,并在提高总气体能量产量方面具有潜力,在有机负荷率(OLR)为 3gVS/L/天时,啤酒糟处理的最大总气体能量产量可提高 27%。在 OLR 为 11.3gVS/L/天时,园艺废物处理的混合系统的最大总效率为 75.2%,比传统的单级系统高 5.5%。