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Cefalexin crystallization residual liquor separation via nanofiltration based multistage process

机译:基于纳米过滤的多级过程,Cefalexin结晶残留液分离

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摘要

Pharmaceuticals manufacture is of importance to human life and health. Great amount of pharmaceuticals crystallization residual liquor was produced in the pharmaceuticals manufacture, which lead to adverse influence on the green chemical engineering and environment. Herein, we proposed a multistage separation process based on nanofiltration technology to recover cefalexin crystallization residual liquor separation. The influence of membranes, pH value, concentration as well as separation stages on the separation performance was explored. The nanofiltration membrane (NF-200D) with strong electronegative charge showed a high rejection of 74.00% for 7-amino-3-desacetoxycephalosporanic acid (7-ADCA) and low rejection of 7.06% for D-phenylglycine in mixed solution. The increase in the electronegative charge of NF membranes could enhance the repulsion between membrane and solute molecules. The separation factor of nanofiltration membrane for 7-ADCA and Dphenylglycine reached a peak value of 3.06 at pH 8.0 and concentration of 10 mmol L-1. Using three stage separation, the concentrated 7-ADCA (C7-ADCA = 23.12 g L-1) and the permeate D-phenylglycine (CD-phenylglycine = 0.19 g L-1) were obtained. Further improved separation sequence should focus on the preparation of nanofiltration membranes with strong electronegative charge and acid-base tolerance, and the nanofiltration process design with enhanced efficiency of separation process.
机译:药品制造对人类生活和健康的重要性。在药物制造中生产大量药物结晶残留液体,这导致对绿化学工程和环境的不利影响。在此,我们提出了一种基于纳米滤波技术的多级分离过程,以回收Cefalexin结晶残留液分离。探讨了膜,pH值,浓度以及分离阶段对分离性能的影响。具有强电负电荷的纳滤膜(NF-200d)显示出7-氨基-3-苯乙酰鎓苯磺酸(7-ADCA)的高抑制物74.00%,并低抑制在混合溶液中的D-苯基甘氨酸的7.06%。 NF膜的电负荷电荷的增加可以增强膜和溶质分子之间的排斥。 7-AdCa和Dphenylglycine的纳米滤膜的分离因子达到pH8.0的峰值3.06,浓度为10mmol L-1。使用三级分离,得到浓缩的7-ADCA(C7-ADCA = 23.12g L-1)和渗透物D-苯基甘氨酸(Cd-苯基甘氨酸= 0.19g L-1)。进一步改善的分离序列应专注于具有强电负电荷和酸基耐耐酸的纳米滤膜的制备,以及具有增强的分离过程效率的纳米过滤过程设计。

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