首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 868 毫秒
1.
采用一步相分离法,制备以聚醚砜(PES)为主体材料,二乙醇胺(DEA)为添加剂和氨基载体的膜,用于CO_2分离。考察了PES浓度、DEA浓度、膜厚度对CO_2/N_2分离性能的影响,同时考察了膜性能的长时间稳定性。当涂膜液中DEA/PES的质量比为12/26、刮刀与无纺布的距离为300μm、进料气压力为0.11 MPa(表压)时,膜的CO_2渗透速率可达274 GPU,CO_2/N_2分离因子可达50。测试温度低于40℃时,DEA/PES膜的CO_2渗透速率和CO_2/N_2分离因子保持稳定。另外,对CO_2/N_2分离性能较好的DEA/PES膜(质量比为12/27)进行CO_2/CH_4分离性能测试,在1 MPa(表压)下性能优于商品膜。上述结果表明,本文研制的DEA/PES膜制备步骤简单,易于规模化制备,性能较优,在CO_2分离领域具有良好的应用前景。  相似文献   

2.
何玉鹏  王志  乔志华  远双杰  王纪孝 《化工学报》2015,66(10):3979-3990
为了提高CO2分离膜的性能,将接枝了氨基的MCM-41分子筛(MCM-NH2)添加到聚乙烯基胺(PVAm)水溶液中配制涂膜液,并将PVAm-MCM-NH2涂膜液涂覆到聚砜(PSf)超滤膜上制备PVAm-MCM-NH2/PSf混合基质复合膜。复合膜分离层较薄,有利于CO2渗透速率的提高。接枝的胺基提高了分子筛与聚合物的相容性和膜内胺基含量,有利于膜渗透选择性能的提高。使用CO2/N2混合气(15% CO2 + 85% N2,体积分数)考察了不同MCM-NH2添加量的PVAm-MCM-NH2/PSf膜的渗透选择性能。当涂膜液中mMCM-NH2/mPVAm为0.2、湿涂层厚度为50 μm,测试温度为22℃ 、进料气压力为0.11 MPa时,膜的CO2渗透速率可达4.66×10-7 mol·m-2·s-1·Pa-1,CO2/N2分离因子可达150。较高的CO2/N2分离性能表明PVAm-MCM-NH2/PSf膜在烟道气碳捕集领域具有良好的应用前景。此外,考察了湿涂层厚度、热处理、添加小分子胺等条件对膜渗透选择性能的影响。  相似文献   

3.
制备高性能的气体分离膜,是实现CO2高效回收的关键。为了提高CO2分离膜的性能,将中空管状结构的埃洛石纳米管(HNTs)添加到聚乙烯胺(PVAm)中配制涂膜液,并将PVAm-HNTs涂膜液涂覆到聚砜(PSf)超滤膜上制备PVAm-HNTs/PSf混合基质膜。其中PSf超滤膜作为支撑层,PVAm-HNTs致密涂层作为功能层,功能层结构与形态对CO2分离具有关键作用。采用XRD、SEM对HNTs的结构与形态进行表征,并借助FTIR和SEM对膜的形态与结构进行分析。在进料气为纯气条件下,系统地研究了HNTs添加量、进料压力、PVAm-HNTs涂层厚度对PVAm-HNTs/PSf膜的CO2分离性能影响,并考察了混合基质膜的CO2/N2混合气分离性能。结果显示:在水溶液中显示正电性的PVAm与负电性的HNTs具有较好的界面相容性。HNTs添加量为1%(质量)、PVAm-HNTs湿涂层厚度为50 μm的混合基质膜,表现出最优的CO2分离性能。在进料气压力为0.1 MPa、测试温度为25℃、CO2/N2(15/85,体积比)混合气进料的条件下,膜的CO2渗透速率为178 GPU,CO2/N2选择性为83;该膜具有较好的稳定性,经过120 h运行后,渗透性和选择性仍能保持稳定。  相似文献   

4.
靳卓  王永洪  张新儒  白雪  李晋平 《化工学报》2022,73(10):4527-4538
为了获得高性能的CO2/N2分离膜,把空气中氧刻蚀的二硫化钼(a-MoS2)和金属有机框架材料MIP-202通过机械力化学反应制备的双功能填料作为分散相,聚醚嵌段酰胺(Pebax-1657)作为连续相,采用溶液浇铸法制备了Pebax/a-MoS2/MIP-202混合基质膜。采用FT-IR表征了填料的化学结构,借助ATR-FTIR、SEM、TG和力学性能测试表征了混合基质膜的化学结构、微观形貌结构、热稳定性和物理力学性能。研究了水含量、双功能填料配比、含量、膜两侧压差和操作温度对膜气体分离性能的影响,并考察了模拟烟道气(CO2/N2体积比15/85)条件下混合基质膜的长时间运行稳定性。结果表明:在温度为25℃、膜两侧压差为0.1 MPa的操作条件下,a-MoS2与MIP-202质量比为5∶5和双功能填料含量为6%(质量)时,膜的气体分离性能达到最优,CO2渗透性和CO2/N2选择性分别为380 Barrer和124.7,超过了2019年McKeown等提出的上限值。连续测试360 h后,混合基质膜的性能没有明显降低,其平均CO2渗透性和CO2/N2选择性分别为358 Barrer和120.1。这主要是由于a-MoS2和MIP-202协同提高了膜的气体分离性能。  相似文献   

5.
靳卓  王永洪  张新儒  白雪  李晋平 《化工学报》1951,73(10):4527-4538
为了获得高性能的CO2/N2分离膜,把空气中氧刻蚀的二硫化钼(a-MoS2)和金属有机框架材料MIP-202通过机械力化学反应制备的双功能填料作为分散相,聚醚嵌段酰胺(Pebax-1657)作为连续相,采用溶液浇铸法制备了Pebax/a-MoS2/MIP-202混合基质膜。采用FT-IR表征了填料的化学结构,借助ATR-FTIR、SEM、TG和力学性能测试表征了混合基质膜的化学结构、微观形貌结构、热稳定性和物理力学性能。研究了水含量、双功能填料配比、含量、膜两侧压差和操作温度对膜气体分离性能的影响,并考察了模拟烟道气(CO2/N2体积比15/85)条件下混合基质膜的长时间运行稳定性。结果表明:在温度为25℃、膜两侧压差为0.1 MPa的操作条件下,a-MoS2与MIP-202质量比为5∶5和双功能填料含量为6%(质量)时,膜的气体分离性能达到最优,CO2渗透性和CO2/N2选择性分别为380 Barrer和124.7,超过了2019年McKeown等提出的上限值。连续测试360 h后,混合基质膜的性能没有明显降低,其平均CO2渗透性和CO2/N2选择性分别为358 Barrer和120.1。这主要是由于a-MoS2和MIP-202协同提高了膜的气体分离性能。  相似文献   

6.
何文娟  王志  李雯  李诗纯  王纪孝 《化工学报》2014,65(11):4420-4429
含有醚氧基团的膜与CO2分子具有较强的极性作用,可以实现对CO2/N2物系的高效分离.其中,含丙烯氧(PO)基团的聚合物链段自由体积较大且不易结晶,是一类具有发展潜力的溶解选择性膜材料.以均苯三甲酰氯为油相单体,含PO基团的多胺为水相单体,通过界面聚合,成功制备了含PO基团的复合膜.分别采用聚醚胺D400、D230及T403为多胺水相单体,考察了膜内PO基团数量和交联度对复合膜分离性能的影响.结果表明,采用D400所制的复合膜由于具有最高的PO基团含量及较低的交联度,因此具有最高的CO2渗透速率和CO2/N2分离因子.之后,考察了单体浓度、酸吸收剂种类以及水相溶液pH对复合膜分离性能的影响.通过优化这些制膜条件,制备出了CO2/N2分离性能较好的复合膜.  相似文献   

7.
为了获得经济节能的烟道气CO2回收方法,制备了一种新型的N2优先渗透ZIF-8复合膜。以柔性聚砜(PSf)多孔膜为支撑层,采用Zn2+与壳聚糖的交联溶液对聚砜支撑层表面改性,使Zn2+固定在PSf膜表面;然后与2-甲基咪唑(Hmim)配位得到ZIF-8晶种层;最后通过界面聚合法二次生长制得ZIF-8复合膜。采用FTIR、XRD及SEM对ZIF-8复合膜的形貌结构进行表征,结果显示成功制备了致密的ZIF-8复合膜。在进料气为纯气条件下,探究了二次生长时间、Zn2+溶液的浓度、测试时间及测试压力对ZIF-8复合膜N2/CO2分离性能的影响,阐明其N2优先渗透机理;并进一步考察了混合气分离性能。结果表明:在25℃和0.1 MPa下,最优ZIF-8复合膜的N2渗透性为523 GPU,N2/CO2选择性为19;同条件下混合气的N2渗透性和N2/CO2选择性分别为517 GPU和18。所制备的ZIF-8复合膜可以使N2优先渗透,实现烟道气中高浓度N2渗透,低浓度CO2截留在膜的上游侧。原因主要是ZIF-8复合膜含有较多的CO2强吸附位点,使CO2被吸附在膜内不易从膜的下游侧脱附,渗透性小,而N2优先渗透,这为N2优先渗透膜的制备提供了一种新思路。  相似文献   

8.
宁梦佳  代岩  郗元  章星  刘红晶  贺高红 《化工进展》2021,40(10):5652-5659
为了提高Pebax-1657的CO2分离性能,本文制备了对CO2有吸附作用的金属有机骨架Cu(Qc)2,将其加入到Pebax-1657基质中,制备混合基质膜,用于CO2的气体分离。通过扫描电子显微镜、热重分析、红外光谱和X射线衍射对溶液浇铸法制备的膜进行表征,通过膜的气体渗透性能测试考察填料含量、操作压力和混合气对膜气体渗透性能的影响。结果表明,Cu(Qc)2在Pebax基质中随机有效地堆叠形成了高选择性的气体传输通道,极大地提高了CO2/N2的选择性。随着Cu(Qc)2填充量的增加,CO2渗透系数和CO2/N2选择性均呈现先上升后下降的趋势。当Cu(Qc)2的质量分数为3%时,呈现最佳的CO2/N2分离性能,CO2 渗透系数和CO2/N2选择性分别为102Barrer和84,与Pebax-1657膜相比,分别提高了45.7%和40.0%,突破了Robeson分离上限,表明该混合基质膜在CO2的分离应用上具有潜力。  相似文献   

9.
作为一种高效的分离方法,膜法分离非常规天然气具有较理想的应用前景。相较CH4优先渗透膜,N2优先渗透膜优势在于分离N2/CH4混合气后CH4处于高压侧,利于后续处理。以均苯三甲酰氯为油相单体,间苯二胺为水相单体,采用界面聚合法在聚砜基膜上制备致密超薄聚酰胺分离层,并通过向其中引入孔径可允许N2分子通过而不允许CH4分子通过的纳米颗粒ZIF-90,在膜内形成固定的N2传递通道,成功制备了用于脱氮提纯CH4的N2优先渗透混合基质膜。膜渗透选择性能测试结果显示当混合基质膜中纳米颗粒掺杂量为0.30 g·L-1时,2 bar(1 bar=0.1 MPa)进料压力下,N2渗透速率达1.16×10-9 mol·m-2·s-1·Pa-1,N2/CH4分离因子达16.6,分离因子比未掺杂ZIF-90的聚酰胺膜提高46.5%,具有一定的处理非常规天然气脱氮提纯甲烷的应用潜力。  相似文献   

10.
作为一种高效的分离方法,膜法分离非常规天然气具有较理想的应用前景。相较CH4优先渗透膜,N2优先渗透膜优势在于分离N2/CH4混合气后CH4处于高压侧,利于后续处理。以均苯三甲酰氯为油相单体,间苯二胺为水相单体,采用界面聚合法在聚砜基膜上制备致密超薄聚酰胺分离层,并通过向其中引入孔径可允许N2分子通过而不允许CH4分子通过的纳米颗粒ZIF-90,在膜内形成固定的N2传递通道,成功制备了用于脱氮提纯CH4的N2优先渗透混合基质膜。膜渗透选择性能测试结果显示当混合基质膜中纳米颗粒掺杂量为0.30 g·L-1时,2 bar(1 bar=0.1 MPa)进料压力下,N2渗透速率达1.16×10-9 mol·m-2·s-1·Pa-1,N2/CH4分离因子达16.6,分离因子比未掺杂ZIF-90的聚酰胺膜提高46.5%,具有一定的处理非常规天然气脱氮提纯甲烷的应用潜力。  相似文献   

11.
使用氨基硫脲(TSC)对氧化石墨烯(GO)进行改性,制备GO-TSC层状复合材料。随后,将该复合材料加入到Matrimid®5218(PI)基质中,制备用于二氧化碳分离的混合基质膜(MMMs)。通过TGA、SEM及气体分离性能测试考察了GO-TSC对膜热稳定性、结构和气体分离性能等的影响。SEM结果显示GO-TSC可均匀分散在聚合物基质上并与基质紧密结合;TGA结果显示混合基质膜在250 ℃以上仍保持稳定。与纯PI膜相比,MMMs显著增强了二氧化碳的渗透性。GO-TSC中所含的氨基与二氧化碳具有良好的亲和力,增加的碱性位点可以有效地转运二氧化碳。GO-TSC的层状结构增加了气体的传输路径,不利于大动态直径气体(甲烷、氮气)的通过,从而提高了分离性能。GO-TSC负载量为0.75%(质量分数)时混合基质膜的分离性能最佳。相比较纯PI膜,混合基质膜的二氧化碳渗透系数和二氧化碳/甲烷、二氧化碳/氮气分离系数分别提高了42.16%、95.79%和83.72%。  相似文献   

12.
利用金属-有机骨架UTSA-280具有特定刚性尺寸的一维孔道可以筛分CO2、CH4、N2的特性,采用机械化学研磨法减小其颗粒尺寸,将UTSA-280掺入聚砜(PSf)中制备MOF基混合基质膜,用于天然气提纯和烟道气CO2捕获。结果表明,在PSf中掺入UTSA-280不仅可以增加聚合物的CO2渗透通量而且提高了气体分离选择性。当UTSA-280掺杂量为30%(质量)时,混合基质膜对CO2/CH4、CO2/N2的分离因子分别为56.39和53.17,CO2的渗透通量为18.61 Barrer,相对于PSf纯膜,选择性分别提高了47.3%和63.5%,CO2渗透通量提高了128.9%,打破了“trade-off”效应。该工作通过引进具有分子筛分效应的MOF填料,能够增加气体通量的同时提高混合基质膜对含CO2气体的分离性能,对天然气的提纯以及烟道气的CO2的捕获有重要意义。  相似文献   

13.
SSZ-13 membranes with high separation performances were prepared using ball-milled nanosized seeds by once hydrothermal synthesis. Separation performances of SSZ-13 membranes in CO_2/CH_4 and N_2/CH_4 mixtures were enhanced after synthesis modification. Single-gas permeances of CO_2, N_2 and CH_4 and ideal selectivities were recorded through SSZ-13 membranes. The effects of temperature, pressure, feed flow rate and humidity on separation performance of the membranes were discussed. Three membranes prepared after synthesis modifications had an average CO_2 permeance of 1.16 × 10~(-6) mol·(m~2· s·Pa)~(-1)(equal to 3554 GPU) with an average CO_2/CH_4 selectivity of 213 in a 50 vol%/50 vol% CO_2/CH_4 mixture. It suggests that membrane synthesis has a good reproducible. The membrane also displayed a N_2 permeance of 1.07 × 10~(-7) mol·(m~2·s·Pa)~(-1)(equal to 320 GPU) with a N_2/CH_4 selectivity of 13 for a 50 vol%/50 vol% N_2/CH_4 mixture. SSZ-13 membrane displayed stable and good separation performance in the wet CO_2/CH_4 mixture for a long test period over 100 h at 348 K. The current SSZ-13 membranes show great potentials for the simultaneous removals of CO_2 and N_2 in natural gas purification as a facile process suitable for industrial application.  相似文献   

14.
Thin film composite (TFC) membranes with nanofillers additives for CO2 separation show promising applications in energy and environment-related fields. However, the poor compatibility between nanofillers and polymers in TFC membranes is the main problem. In this work, covalent organic frameworks (COFs, TpPa-1) with rich —NH— groups were incorporated into polyamide (PA) segment via in situ interfacial polymerization to prepare defect-free TFC membranes for CO2/N2 separation. The formed covalent bonds between TpPa-1 and PA strengthen the interaction between nanofillers and polymers, thereby enhancing compatibility. Besides, the incorporated COFs disturb the rigid structure of the PA layer, and provide fast CO2 transfer channels. The incorporated COFs also increase the content of effective carriers, which enhances the CO2 facilitated transport. Consequently, in CO2/N2 mixed gas separation test, the optimal TFC (TpPa0.025-PIP-TMC/mPSf) membrane exhibits high CO2 permeance of 854 GPU and high CO2/N2 selectivity of 148 at 0.15 MPa, CO2 permeance of 456 GPU (gas permeation unit) and CO2/N2 selectivity of 92 at 0.5 MPa. In addition, the TpPa0.025-PIP-TMC/mPSf membrane also achieves high permselectivty in CO2/CH4 mixed gas separation test. Finally, the optimal TFC membrane showes good stability in the simulated flue gas test, revealing the application potential for CO2 capture from flue gas.  相似文献   

15.
In the present work, the response surface method software was used with five measurement levels with three factors.These were applied for the optimization of operating parameters that affected gas separation performance of polyurethane–zeolite 3A, ZSM-5 mixed matrix membranes.The basis of the experiments was a rotatable central composite design(CCD).The three independent variables studied were: zeolite content(0–24 wt%), operating temperature(25–45 ℃) and operating pressure(0.2–0.1 MPa).The effects of these three variables on the selectivity and permeability membranes were studied by the analysis of variance(ANOVA).Optimal conditions for the enhancement of gas separation performances of polyurethane–3A zeolite were found to be 18 wt%, 30 ℃ and 0.8 MPa respectively.Under these conditions, the permeabilities of carbon dioxide, methane, oxygen and nitrogen gases were measured at 138.4, 22.9, 15.7 and 6.4 Barrer respectively while the CO_2/CH_4, CO_2/N_2 and O_2/N_2 selectivities were 5.8, 22.5 and 2.5, respectively.Also, the optimal conditions for improvement of the gas separation performance of polyurethane–ZSM 5 were found to be 15.64 wt%, 30 ℃ and 4 bar.The permeabilities of these four gases(i.e.carbon dioxide, methane, oxygen and nitrogen) were 164.7, 21.2, 21.5 and 8.1 Barrer while the CO_2/CH_4, CO_2/N_2 and O_2/N_2 selectivities were 7.8, 20.6 and 2.7 respectively.  相似文献   

16.
In this study, the effects of 1-Ethyl-3-methylimidazolium tetrafluoroborate ionic liquid on CO2/CH4 separation performance of symmetric polysulfone membranes are investigated. Pure polysulfone membrane and ionic liquid-containing membranes are characterized. Field emission scanning electron microscopy (FE-SEM) is used to analyze surface morphology and thickness of the fabricated membranes. Energy dispersive spectroscopy (EDS) and elemental mapping, Fourier transform infrared (FTIR), thermal gravimetric (TGA), X-ray diffraction (XRD) and Tensile strength analyses are also conducted to characterize the prepared membranes. CO2/CH4 separation performance of the membranes are measured twice at 0.3 MPa and room temperature (25 °C). Permeability measurements confirm that increasing ionic liquid content in polymer-ionic liquid membranes leads to a growth in CO2 permeation and CO2/CH4 selectivity due to high affinity of the ionic liquid to carbon dioxide. CO2 permeation significantly increases from 4.3 Barrer (1 Barrer=10-10 cm3(STP)·cm·cm-2·s-1·cmHg-1, 1cmHg=1.333kPa) for the pure polymer membrane to 601.9 Barrer for the 30 wt% ionic liquid membrane. Also, selectivity of this membrane is improved from 8.2 to 25.8. mixed gas tests are implemented to investigate gases interaction. The results showed, the disruptive effect of CH4 molecules for CO2 permeation lead to selectivity decrement compare to pure gas test. The fabricated membranes with high ionic liquid content in this study are promising materials for industrial CO2/CH4 separation membranes.  相似文献   

17.
混合基质膜(MMMs)在气体分离领域具有良好的应用前景,金属有机框架(MOFs)由于具有高孔隙率和有机连接基团,常被用作填料制备MMMs。但由于MOFs与聚合物的界面相容性问题,MMMs的气体分离性能提升受到限制。本文合成了功能化的Zr-MOF(UiO-66-AC),并利用其与聚醚共聚酰胺(Pebax)共同制备了混合基质膜。填料中引入的羰基和羧基等基团提供了MOFs与聚合物基质之间较强的界面相互作用。与纯Pebax膜相比,UiO-66-AC/Pebax MMMs的气体渗透性能得到了显著提高。当填料质量分数为6%时,膜的CO2渗透系数为102.4 Barrer,CO2/N2和CO2/CH4选择性分别为90.6和26.0,CO2/N2分离性能突破了Robeson上限(2008),表明该混合基质膜在CO2的分离应用上具有潜力。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号