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1.
用混合二元酸制备混合酸二甲酯   总被引:1,自引:0,他引:1  
以工业副产物混合二元酸(DBA)和甲醇为原料,用自制PW12/SiO2作催化剂制备混合酸二甲酯(DME),确定了最佳制备条件:甲醇与DBA摩尔比为3.5,PW12/SiO2加入量(PW12/SiO2中PW12占DBA的质量分数)为2%,反应时间为4.5h,100gDBA中甲苯加入量为50mL。在此最佳条件下,DME收率为84.7%,所得DME为无色澄清液体,其中丁二酸二甲酯的质量分数为11.03%,戊二酸二甲酯的质量分数为13.88%,己二酸二甲酯的质量分数为73.79%。PW12/SiO2具有较好的稳定性和一定的重复使用性,PW12/SiO2重复使用5次时的DME收率仍大于70%。  相似文献   

2.
混合二元酸中戊二酸的分离提纯   总被引:3,自引:2,他引:3  
采用溶剂溶解和气泡结晶的方法从混合二元酸中分离、提纯戊二酸。考察了溶解温度、溶剂用量和结晶过程对戊二酸纯度和收率的影响 ,并确定了分离与提纯的最佳工艺条件。分离过程 :溶解温度 5 5℃、溶剂与二元酸用量比 30mL∶10g ;提纯过程 :结晶气速 5× 10 -6~ 8× 10 -6m3 /s、降温速率 1/ 3℃ /min、降温终点 2 0℃、结晶保温时间 2 0min、升温速率 1/ 2℃ /min、发汗终温 6 5℃、发汗保留时间 10min。在最佳工艺条件下分离、提纯得到的戊二酸纯度为 99 36 % ,戊二酸的回收率为 70 16 %。  相似文献   

3.
已二酸生产副产物——混合二元酸的综合利用   总被引:1,自引:1,他引:0  
采用一水合硫酸氢钠作为催化剂,催化己二酸生产副产物——混合二元酸与甲醇反应合成混合二元酸二甲酯。优化工艺条件为:混合二元酸加入量0.1mol,无水甲醇加入量0.5mol,一水合硫酸氢钠加入量4.0g,环己烷加入量20mL,反应时间1.5h。合成混合二元酸二甲酯的酯化反应收率大于97%。经气相色谱检测,产物中酯的质量分数为98.91%。一水合硫酸氢钠可重复使用3次。  相似文献   

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以木薯淀粉为原料,在氧化木薯淀粉的基础上,以丁二酸酐为酯化剂、对甲苯磺酸为催化剂得到氧化木薯淀粉丁二酸酯(OCSS),进一步以丙烯酸乙酯为接枝单体、过硫酸铵为引发剂得到氧化木薯淀粉丁二酸酯-g-丙烯酸乙酯(OCSS-g-EA)。在酯化剂加入量(相对于淀粉干基质量)为100%、酯化时间为3.0 h、酯化温度为35 ℃、催化剂加入量为3%的条件下,OCSS的酯化取代度可达0.133;在接枝时间为4.0 h、接枝温度为45 ℃、丙烯酸乙酯与淀粉干基的质量比为1.50∶1、引发剂浓度为50 mmol/L的条件下,OCSS-g-EA的接枝率和接枝效率分别可达67.02%和41.93%。OCSS-g-EA的吸油率达84.37%,对污水COD的吸附去除率达75%以上,对Cu2+的吸附量可达19 mg/g,吸附性能优良。  相似文献   

6.
采用浸取—抽滤分离—减压蒸发—结晶的方法处理三烯丙基异氰脲酸酯(TAIC)合成废渣,回收其中的氯化钠。通过单因素实验和正交实验探讨了液固比、浸取温度、搅拌时间对氯化钠回收率的影响。实验结果表明,在浸取温度为30℃、搅拌时间为30 min、液固比为15的最佳工艺条件下,氯化钠回收率为81.53%。回收氯化钠产品符合GB/T 5462—2003《工业盐》精制工业盐一级标准。采用本工艺每处理1 t TAIC合成废渣可节约费用3 064元,经济效益显著。  相似文献   

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自催化法合成聚天冬氨酸   总被引:1,自引:0,他引:1  
以马来酸酐和乙酸铵为原料,在微波条件下用自催化法合成了聚天冬氨酸(PASP)。通过正交实验确定了最佳合成条件:n(乙酸铵):n(马来酸酐)=1.2,微波功率为1200W,反应时间为10min。在最佳合成条件下,PASP的收率为91.6%,PASP的黏均相对分子质量约为1.5×10^4。经红外光谱表征和核磁共振氢谱测试结果表明,PASP的各种主要官能团表现明显。当Ca^2+质量浓度为250mg/L、PASP加入量为3mg/L时,PASP的阻垢率达到95%,表明PASP具有较好的阻垢性能。  相似文献   

11.
The utilization of captured CO2 as a part of the CO2 capture and storage system to produce biopolymers could address current environmental issues such as global warming and depletion of resources. In this study, the effect of feeding strategies of CO2 and valeric acid on cell growth and synthesis of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) [P(3HB-co-3HV)] in Cupriavidus necator was investigated to determine the optimal conditions for microbial growth and biopolymer accumulation. Among the studied CO2 concentrations (1–20 %), microbial growth and poly(3-hydroxybutyrate) accumulation were optimal at 1 % CO2 using a gas mixture at H2:O2:N2 = 7:1:91 % (v/v). When valeric acid was fed together with 1 % CO2, (R)-3-hydroxyvalerate synthesis increased with increasing valeric acid concentration up to 0.1 %, but (R)-3-hydroxybutyrate synthesis was inhibited at >0.05 % valeric acid. Sequential addition of valeric acid (0.05 % at Day 0 followed by 0.025 % at Day 2) showed an increase in 3HV fraction without inhibitory effects on 3HB synthesis during 4 d accumulation period. The resulting P(3HB-co-3HV) with 17–32 mol  % of 3HV is likely to be biocompatible. The optimal concentrations and feeding strategies of CO2 and valeric acid determined in this study for microbial P(3HB-co-3HV) synthesis can be used to produce biocompatible P(3HB-co-3HV).  相似文献   

12.
Journal of Polymers and the Environment - Demand for light-packaging materials for food and beverages is on the rise globally, especially in developing countries where several depend on packaged...  相似文献   

13.
碱性和弱酸性染料混合废水处理方法   总被引:11,自引:0,他引:11  
采用“中和-氯氧化-电化学反应-催化氧化”组合工艺处理碱性、弱酸性染料混合废水,可使混合废水的COD由14560mg/L降至215mg/L,色度由5000倍降至10倍以下。试验结果表明,不同染料废水混合后可发生沉淀效应,若组合得当,可使染普废得到很大程度的净化;ClO2对某些染料废水具有良好的去除COD和脱色作用。  相似文献   

14.
The use of fully bio-based and biodegradable materials for massive applications, such as food packaging, is an emerging tendency in polymer research. But the formulations proposed in this way should preserve or even increase the functional properties of conventional polymers, such as transparency, homogeneity, mechanical properties and low migration of their components to foodstuff. This is not always trivial, in particular when brittle biopolymers, such as poly(lactic acid) (PLA), are considered. In this work the formulation of innovative materials based on PLA modified with highly compatible plasticizers, i.e. oligomers of lactic acid (OLAs) is proposed. Three different synthesis conditions for OLAs were tested and the resulting additives were further blended with commercial PLA obtaining transparent and ductile materials, able for films manufacturing. These materials were tested in their structural, thermal and tensile properties and the best formulation among the three materials was selected. OLA with molar mass (Mn) around 1,000 Da is proposed as an innovative and fully compatible and biodegradable plasticizer for PLA, able to replace conventional plasticizers (phthalates, adipates or citrates) currently used for films manufacturing in food packaging applications.  相似文献   

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