生物量(生态学)
能量转换
微波食品加热
能量载体
材料科学
高效能源利用
工艺工程
环境科学
可再生能源
热力学
物理
电气工程
海洋学
工程类
量子力学
地质学
作者
Cunfeng Ke,Ce Shi,Yaning Zhang,Mengmeng Guang,Bingxi Li
标识
DOI:10.1016/j.ijhydene.2021.12.137
摘要
Biomass gasification technology under microwave irradiation is a new and novel method, and the energy conversion performances during the process play a guiding role in improving the energy conversion efficiencies and developing the gasification simulation models. In order to improve the energy utilization efficiency of microwave biomass gasification system, this study investigated and presented the energy conversion performances during biomass gasification process under microwave irradiation, and these were materialized through detailing (a) the energy conversion performance in the microwave heating stage, and (b) the energy conversion performance in the microwave assisted biomass gasification stage. Different forms of energies in the biomass microwave gasification process were calculated by the method given in this study based on the experimental data. The results showed that the useful energy (energy in silicon carbide (SiC), 18.73 kJ) accounted for 31.22% of the total energy input (electrical energy, 60.00 kJ) in the heating stage, and the useful energy (energy in the products, 758.55 kJ) accounted for 63.41% of the total energy input (electrical and biomass energy, 1196.28 kJ) in the gasification stage. During the whole biomass gasification process under microwave irradiation, the useful energy output (energy in the products, 758.55 kJ) accounted for 60.38% of the total energy input (electrical and biomass energy, 1256.28 kJ), and the energy in the gas (523.40 kJ) product played a dominate role in product energy (758.55 kJ). The energy loss mainly included the heat loss in the gas flow (89.20 kJ), magnetron loss (191.80 kJ) and microwave dissipation loss (198.00 kJ), which accounted for 7.10%, 15.27% and 15.76% of the total energy, respectively. The contents detailed in this study not only presented the energy conversion performances during microwave assisted gasification process but also supplied important data for developing gasification simulation models. • Energy conversion performances of microwave biomass air gasification were detailed. • Effects of gasification temperature and SiC loading were investigated. • The useful energy output accounted for 60.38% of the total energy input. • Energy loss was mainly by magnetron (15.27%) and microwave dissipation (15.76%).
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