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Black-box modelling bi-objective optimization and ASPEN batch simulation of phenolic compound extraction from

机译:酚类化合物提取的黑匣子建模双目标优化和白杨批量模拟

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摘要

Nauclea latifolia root (NLR) extract is one of phytochemicals used to treat various ailments in most of developing countries. This investigation focuses on modelling, optimization and computer-aided simulation of phenolic solid-liquid extraction from NLR. The extraction experiments were conducted at extraction temperature (ET: 33.79–76.21 °C), process time (PT: 2.79–4.21 h) and solid-liquid ratio (SLC: 0.007929–0.018355 g/ml). Regression models (RM) were developed, using Response Surface Methodology (RSM) in Design Expert software, for predicting and optimizing total phenolic content (TPC) and total flavonoid content (TFC) and also compared with adaptive neuro-fuzzy inference system (ANFIS) modelling in Matlab environment. Aspen Batch Process Developer (ABPD) V10 was used to simulate phenolic extract production and perform material balance of the process. Both Coefficients of determination (R2) of RSM (TFC: 0.9996, TPC: 0.9932) and ANFIS models (TFC: 0.99998, TPC: 0.9982) were compared and predicted satisfactorily. Optimization results show: ET (2.79 h), PT (38.8 °C), SLC (0.0198 g/ml), TFC (25.92 25.92 μg RE/g) and TPC (8.47 mg GAE/g). The phenolic extraction base case simulation results gave batch throughput, annual throughput, number of batches per year 0.0089 g/batch, 0.139 g/year and 1019 batches, respectively. The ABPD predicted TPC and experimental TPC results were compared and gave mean relative deviation error of 3.75%. Thus, ABPD simulation model is reasonably reliable for the scale-up design engineering of the phenolic extract production from NLR.
机译:Nauclea Latifolia Root(NLR)提取物是用于治疗大多数发展中国家的各种疾病的植物化学物质之一。本研究侧重于NLR的酚类固体液萃取的建模,优化和计算机辅助模拟。提取实验在提取温度(等:33.79-76.21℃),加工时间(Pt:2.79-4.21h)和固液比(SLC:0.007929-0.018355g / ml)。在设计专家软件中使用响应面方法(RSM)开发了回归模型(RM),用于预测和优化总酚类含量(TPC)和总类黄酮含量(TFC),也与自适应神经模糊推理系统(ANFIS)进行比较Matlab环境建模。 Aspen Batch Process Developer(ABPD)V10用于模拟酚类提取物生产并进行该过程的材料平衡。对RSM的判定系数(R2)(TFC:0.9996,TPC:0.9932)和ANFIS模型(TFC:0.99998,TPC:0.9982)进行比较,并令人满意地预测。优化结果表明:ET(2.79h),Pt(38.8°C),SLC(0.0198g / ml),TFC(25.9225.92μgRE / g)和TPC(8.47mg gae / g)。酚类提取基础案例仿真结果得到了批量吞吐量,年吞吐量,每年批量0.0089克/批次,0.139克/年和1019批批次。比较ABPD预测的TPC和实验TPC结果,并给出了3.75%的平均相对偏差误差。因此,ABPD仿真模型对于NLR的酚类提取物生产的扩展设计工程是合理的。

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