Civil Engineering Department, New Mexico State University, Las Cruces, NM 88002, USA.
Bioresour Technol. 2013 May;136:689-96. doi: 10.1016/j.biortech.2013.02.028. Epub 2013 Feb 28.
In previous proof-of-concept studies, feasibility of a new airlift-raceway configuration and its energetic advantage and improved CO2 utilization efficiency over the traditional raceways and photobioreactors have been documented. In the current study, a mathematical model for predicting biomass growth in the airlift-raceway reactor is presented, which includes supply and transfer of CO2 and the synergetic effects of light, CO2, nitrogen, and temperature. The model was calibrated and validated with data from prototype scale versions of the reactor on two test species: Nannochloropsis salina and Scenedesmus sp., cultivated under indoor and outdoor conditions. Predictions of biomass concentrations by the proposed model agreed well with the temporal trend of the experimental data, with r(2) ranging from 0.96 to 0.98, p<0.001. A sensitivity analysis of the 10 model parameters used in this study revealed that only three of them were significant, with sensitivity coefficients ranging from 0.08 to 0.13.
在之前的概念验证研究中,已经证明了新型气升式环流通道配置的可行性,以及与传统的环流通道和光生物反应器相比,其在能源利用效率和提高 CO2 利用率方面的优势。在当前的研究中,提出了一种用于预测气升式环流反应器中生物质生长的数学模型,该模型包括 CO2 的供应和传递,以及光、CO2、氮和温度的协同作用。该模型使用室内和室外条件下两种测试物种(盐藻和小球藻)的原型规模版本的数据进行了校准和验证。所提出的模型对生物质浓度的预测与实验数据的时间趋势吻合较好,r(2) 值范围从 0.96 到 0.98,p<0.001。对本研究中使用的 10 个模型参数的敏感性分析表明,只有三个参数是显著的,其敏感性系数范围从 0.08 到 0.13。