Feng Lei, Gao Yuan, Kou Wei, Lang Xianming, Liu Yiwei, Li Rundong, Yu Meiling, Shao Lijie, Wang Xiaoming
Liaoning Province Clean Energy Key Laboratory, Shenyang Aerospace University, Shenyang Daoyi Street 37, Shenyang 110136, China.
Liaoning Institute of Energy Resources, 65# Yingquan St., Yingkou, Liaoning, China.
Biomed Res Int. 2017;2017:3808521. doi: 10.1155/2017/3808521. Epub 2017 May 4.
This article proposes a methane production approach through sequenced anaerobic digestion of kitchen waste, determines the hydrolysis constants and reaction orders at both low total solid (TS) concentrations and high TS concentrations using the initial rate method, and examines the population growth model and first-order hydrolysis model. The findings indicate that the first-order hydrolysis model better reflects the kinetic process of gas production. During the experiment, all the influential factors of anaerobic fermentation retained their optimal values. The hydrolysis constants and reaction orders at low TS concentrations are then employed to demonstrate that the first-order gas production model can describe the kinetics of the gas production process. At low TS concentrations, the hydrolysis constants and reaction orders demonstrated opposite trends, with both stabilizing after 24 days at 0.99 and 1.1252, respectively. At high TS concentrations, the hydrolysis constants and the reaction orders stabilized at 0.98 (after 18 days) and 0.3507 (after 14 days), respectively. Given sufficient reaction time, the hydrolysis involved in anaerobic fermentation of kitchen waste can be regarded as a first-order reaction in terms of reaction kinetics. This study serves as a good reference for future studies regarding the kinetics of anaerobic digestion of kitchen waste.
本文提出了一种通过厨余垃圾顺序厌氧消化来生产甲烷的方法,使用初始速率法确定了低总固体(TS)浓度和高TS浓度下的水解常数和反应级数,并研究了种群增长模型和一级水解模型。研究结果表明,一级水解模型能更好地反映产气动力学过程。实验过程中,厌氧发酵的所有影响因素均保持其最佳值。然后利用低TS浓度下的水解常数和反应级数来证明一级产气模型可以描述产气过程的动力学。在低TS浓度下,水解常数和反应级数呈现相反趋势,分别在24天后稳定在0.99和1.1252。在高TS浓度下,水解常数和反应级数分别在18天后稳定在0.98和14天后稳定在0.3507。在有足够反应时间的情况下,就反应动力学而言,厨余垃圾厌氧发酵中的水解可视为一级反应。本研究为今后厨余垃圾厌氧消化动力学的研究提供了很好的参考。