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1.
使用溶剂共混法制备了热塑性聚氨酯弹性体/纳米二氧化硅复合材料,采用多种实验技术阐明了纳米二氧化硅诱导聚氨酯弹性体中软段结晶的微观机理.TEM表明纳米二氧化硅在聚氨酯弹性体中有很好的分散性,DSC实验发现高温退火后等温结晶处理的聚氨酯纳米复合材料中软段的结晶性和玻璃化转变温度显著提高,纳米二氧化硅的加入量影响玻璃化转变温度和熔融焓最终的平衡值以及它们的增长速率.固体NMR实验发现退火后复合材料中的软段分子运动受到限制,而硬段的链运动明显提高.上述实验结果表明硬段链间的氢键在高温下被破坏,在退火过程中纳米二氧化硅与硬段间的相互作用使得硬段链运动增强,进而促进了与硬段相连的软段结晶能力的提高.基于实验结果建立了聚氨酯/无机纳米复合材料在高温退火和低温等温结晶处理下微观结构和动力学演化的物理模型.  相似文献   

2.
扩链剂对脂肪族聚氨酯脲和聚脲弹性体结构与性能的影响   总被引:4,自引:0,他引:4  
杨娟  王贵友  胡春圃 《化学学报》2006,64(16):1737-1742
用异佛尔酮二胺(IPDA)、乙二胺(EDA)和己二胺(HDA)三种扩链剂合成了不同结构的脂肪族聚氨酯脲和聚脲, 并考察了扩链剂对聚氨酯脲和聚脲形态结构与性能的影响. 研究结果表明, 与EDA和HDA扩链的聚氨酯脲和聚脲相比, IPDA扩链的聚氨酯脲和聚脲中脲羰基的氢键化程度较低, 软段和硬段间的相混合程度较好; 同时它们具有更好的拉伸强度、硬度和撕裂强度, 但断裂伸长率较低. EDA和HDA扩链的聚氨酯脲和聚脲相比, 两者性能相差不大. 聚氨酯脲的脲羰基较完善氢键化程度以及整个氢键化程度都比聚脲的要低, 同时聚氨酯脲的吸水率也较低.  相似文献   

3.
引入PNA、1, 2-PG对聚氨酯胶粘剂微相形态及性能的影响   总被引:1,自引:0,他引:1  
引入PNA、1; 2-PG对聚氨酯胶粘剂微相形态及性能的影响;聚氨酯胶粘剂;结晶;微相分离;软段;硬段  相似文献   

4.
用DSC法研究了二乙基甲苯二胺和4,4'-二氨基二苯基甲烷扩链的硬段含量为27%-60%的两个系列的反应注射成型聚氨酯脲弹性体的微相分离,聚合反应动力学对RIM PUU的微相分离有很大影响,随着硬段浓度的增加微相分离程度下降,MDA扩链系列聚合总反应速度快,微相分离驱动力弱,在硬段生成反应比软段生成反应快的条件下,该系列的微相分离程度较低,聚合总反应快,且硬段间氢键化作用很强的性质造成RIM PU  相似文献   

5.
利用 1 ,5_萘二异氰酸酯 (NDI)和 1 ,4_丁二醇 (BDO)为均匀硬质分子单体 ,与不同软质分子单体 (聚醚、聚酯、聚硅氧烷 )缩合制备多嵌段聚氨酯弹性体 ,详细研究了硬嵌段相 (NDI)弹性体的结构与性能间的关系 ,发现随着硬嵌段相长度的增加 ,或者氨基甲酸酯中胺基与聚醚、聚酯、聚硅氧烷中软段氧原子间氢键的减弱 ,都导致微相分离程度的增加 ,造成聚合物熔点和熔化热的升高。硬嵌段相熔化的多峰行为是由于形成了NDI/BDO半微晶区 ,在退火时转变为更加有序的结晶微区 ,当温度高于 1 80℃时 ,由于氢键的断裂 ,NDI/BDO硬嵌段发生分解反应 ,该过程源于不很有序的硬嵌段半结晶微区。当温度高于 2 5 0℃时 ,发生快速的分解。在动态力学行为方面 ,NDI基聚醚弹性体比其它硅氧烷基的弹性体展示了更高的硬嵌段区的稳定性 ,同时 ,在使用温度范围内 ,也显示出最高的储能模量值 ,表明刚性对温度的依赖性 ,以及NDI/BDO硬嵌段中活性填料的显著影响  相似文献   

6.
聚氨酯硬链段球晶生长与软硬链锻混容性的关系   总被引:4,自引:1,他引:3  
线型可溶性聚氨酯的硬链段结晶难以长成球晶 ,然而本实验室已经证明即使从熔体结晶硬链段也是能够长成球晶的 .研究了聚酯与聚醚型聚氨酯硬链段长球晶的规律 ,并发现聚氨酯硬链段长球晶的难易与聚氨酯软硬链段混容性密切相关 .动态力学分析 (DMA)与示差扫描量热 (DSC)实验表明聚ε 已内酯 (PCL)、聚已二酸丁二醇酯 (PTMA)、聚四氢呋喃 (PTMO)及聚环氧丙烷 (PPO)型聚氨酯的软硬链段混容性从前至后递减 .从熔体退火结晶时 ,聚氨酯硬链段长成球晶的退火温度范围是有限的 ,软硬链段混容性越好 ,聚氨酯硬链段能长成球晶的温度范围越窄 ,所需长的时间越长 .聚氨酯硬链段长球晶的下限温度取决于软硬链段间所存在的氢键作用 ,聚氨酯硬链段长球晶的上限温度与软硬链段混容性直接相关 .  相似文献   

7.
用DSC法研究了二乙基甲苯二胺和4,4'-氨基二苯基甲烷(MDA)扩链的硬段含量为27%~60%的两个系列的反应注射成型(RIM)聚氨酯脲(PUU)弹性体的微相分离。聚合反应动力学对RIMPUU的微相分离有很大影响.随着硬段浓度的增加微相分离程度下降,MDA扩链系列聚合总反应速度快,微相分离驱动力弱,在硬段生成反应比软段生成反应快的条件下,该系列的微相分离程度较低。聚合总反应快,且硬段间氢键化作用很强的性质造成RIMPUU非平衡的形态。聚合总反应速度的增加相当于微相分离驱动力的下降。  相似文献   

8.
脂肪族水性聚氨酯的动态力学行为研究   总被引:4,自引:1,他引:4  
合成了一系列脂肪族水性聚氨酯 .考察了软段的组成、软段分子量及DMPA用量对产物动态力学性能的影响作用 .实验结果表明 ,软段的化学结构对水性聚氨酯的相态结构影响很大 .聚醚型水性聚氨酯具有较低的软段玻璃化转变温度 (Tgs) .聚醚型产物的微相分离程度高于聚酯型产物 .当采用聚酯和聚醚二元醇为混合软段时 ,Tgs随软段中聚醚含量的提高而逐渐降低 .提高DMPA用量 ,软段玻璃化转变温度Tgs移向低温区 ,硬段玻璃化转变温度Tgh移向高温区 ,说明体系的微相分离程度加大 .当软段分子量较低时 ,产物为半相容结构 ,只有一个主转变峰 ,软段的玻璃化转变以肩峰的形式出现 ;当软段分子量较高时 ,产物的微相分离程度较高 ,可以分别观察到软段及硬段的玻璃化转变 .总之 ,通过改变软段的种类、组成和分子量以及DMPA用量 ,可以大幅度地改变水性聚氨酯的形态结构 .  相似文献   

9.
丁苯、丁腈基聚氨酯的形态与性能   总被引:2,自引:0,他引:2  
用示差扫描量热法 (DSC)、红外分光光度计 (FTIR)和原子力显微镜 (AFM)研究了端羟基聚丁二烯 苯乙烯共聚物 (HTBS)、端羟基聚丁二烯 丙烯腈共聚物 (HTBN)和端羟基聚丁二烯 (HTPB)与甲苯二异氰酸酯、1 ,4 丁二醇构成的溶液法聚二烯烃基聚氨酯 (PU)的形态结构 .结果表明HTPB和HTBS基PU的相分离程度很大 ,而HTBN基PU的相分离程度小 .这可能归因于HTBS软段的极性低 ,不能与硬段形成氢键 ,而HTBN软段中的腈基具有很强的极性 ,且可以与硬段形成氢键作用 ,增加了软硬段间的相容性 ,相分离程度明显降低 .AFM表明HTBN PU随着硬段含量提高 ,表面粗糙度增大 ,由软段为连续相逐渐过渡到双连续结构 .在硬段含量 6 3%时 ,HTBN和HTPB基PU均呈双连续结构 ,而HTBS PU中硬段为连续相 .HTBN PU软段的相区尺寸在1 2nm左右 ,表面粗糙度较大 ,HPBS PU软段的相区尺寸在 1 1nm左右 ,表面粗糙度最小 ,HTPB PU存在 1 4nm和 5 0nm大小不等的软段相区尺寸 .力学性能表明 ,在软段中引入苯乙烯和丙烯腈结构 ,可使聚氨酯抗张强度分别提高 1 5和 2倍 ,模量和断裂伸长率也明显提高  相似文献   

10.
<正> 分子间形成氢键对低分子化合物及高分子化合物物理性质的影响研究得比较多,对低分子有机化合物化学性质的影响研究也进行了大量工作。于宝善等研究表明单体分子间形成氢键对单体的自由基聚合能力是有影响的。 上述研究都是在芳香族酰胺及脂肪族酰胺类单体的液相本体聚合或熔融态的本体聚  相似文献   

11.
The phase structure and macromolecular chain motion of aromatic waterborne polyurethane film were examined by the fluorescence technique. Excimer emission of the phenyls appears at 436 and 468 nm and is temperature dependent, suggesting that the hard segments in the intermediate phase can be locally oriented. Binding energy of the excimer structure determined by the intrinsic fluorescence spectra is 16 kJ/mol. The intrinsic fluorescence technique can supply more information than the DSC method on segment relaxations, including α-relaxation for the hard or soft segments, β-relaxation of small molecular units, crystallization of the soft segments, γ-relaxation of the classical consecutive –CH2– units, and even phase separation degree.  相似文献   

12.
A series of non-isocyanate linear high molecular weight poly(ester urethane)s(PETUs)were prepared through an environmentallyfriendly route based on dimethyl carbonate,1,6-hexanediol and 1,6-hexanediamine.In this route,the polyurethane diol was first prepared by the reaction between bis-1,6-hexamethylencarbamate(BHC)and 1,6-hexanediol.A series of polyester soft segments of polyurethane have been synthesized from the polycondensation of adipic acid and different diols,including butanediol,hexanediol,octanediol and decanediol.The subsequent polycondensation of polyurethane diol and polyester diol led to linear PETUs.The resultant polymers were characterized by GPC,FTIR,1H-NMR,13C-NMR,DSC,WAXD,TGA and tensile test.The results indicated that PETUs possess weight-average molecular weights higher than 1×105 and the tensile strength as high as 10 MPa.The thermal properties,crystallization behavior,microphase separation behavior and morphology were studied by DSC and AFM,and the results indicated that the degree of phase separation was affected by two factors,the crystallization and hydrogen bonding interaction between soft segment and hard segment.  相似文献   

13.
聚乙二醇型聚氨酯软硬段对其相变储热性能的影响   总被引:2,自引:0,他引:2  
以不同分子量的聚乙二醇(PEG)为软段,MDI-BDO为硬段,采用两步法溶液聚合合成一种具有固-固相变储热性能的聚氨酯材料.通过DSC,WAXD等测试手段对体系的软硬段结晶性,微相分离,相变可逆性及循环热稳定性进行研究,结果表明,聚氨酯中硬段的存在对软段结晶有着很大的影响,当软段分子量达到2000或以上时,软段才具有较大的结晶度和熔融相变焓,且硬段含量必须高于一定值才能形成较为完善的物理交联网络以保证材料在发生相变时维持固体状态.同时符合这两个条件的试样能具有较好的固-固相变储热性能.就软段PEG含量及分子量对材料储热性能的影响进行了研究,通过调节软段含量与分子量得到一系列具有不同相变焓和相变温度的聚氨酯固-固相变储热材料.经测试还发现,该材料具备很好的相变可逆性和循环热稳定性,是一类很有开发前景的相变储热材料.  相似文献   

14.
Equilibrium melting temperatures and crystallization parameters of polyamide 6/polyurethane blends were investigated. Thermal properties of the crystalline phase of blends obtained from polyamide 6 and polyurethane containing 40 wt% of hard segments, are only limited influenced by the overall blend compositon. Because from separate measurements single glass transitions for all samples were estimated, so in the investigated case the blending process may occur mainly between amorphous fraction of polyamide 6 and the polyurethane or, what is more probable, the polyurethane phase is dispersed in the continuous polyamide matrix, although some interactions exist.  相似文献   

15.
Diphenylmethane-4,4′-diisocyanate based polyether polyurethane cationomers were synthesized using 3-trialkylammonium-(1,2-propanediol)iodide (TAPI) as the chain extender. The ionic content was varied by substituting up to 100% of 3-dialkylamino-1,2-propanediol (DAP) for TAPI. Cationomers with bromine and chlorine ions were prepared from the iodine-based polymer via ion exchange. The morphology and properties of the cationomers were studied as a function of alkyl group, ion content, and anion type using small-angle x-ray scattering, tensile testing, dynamic mechanical thermal analysis, and differential scanning calorimetry. The bulky side groups of DAP and TAPI prevented crystallization in the hard domains, and consequently little or no phase separation was evident in the unionized materials. Polyurethanes with cationic functionality showed dramatic improvements in phase separation and tensile properties. Results suggest tht while ionic interactions are the primary driving force for phase separation, they produce a morphology not typical of ionomers, but rather akin to that of a conventional polyurethane with semicrystalline hard segments. © 1994 John Wiley & Sons, Inc.  相似文献   

16.
研究了介观相分离对烯烃嵌段共聚物(OBC)结晶动力学的影响.结果表明,OBC在保持介观相分离形态的情况下,结晶以三维生长的方式进行.原因可能是由于OBC的“相区溶合”造成的.OBC嵌段长度和嵌段数目存在一定的统计分布,其中某些较短的结晶性链段“溶解”于非晶区,这部分结晶性链段在结晶时起到了“传递”结晶的作用.  相似文献   

17.
The hydrogen bonding and crystallization of a biodegradable poly(ester urethane) copolymer based on poly(L ‐lactide) (PLLA) as the soft segment were investigated by FTIR. On slow cooling from melt, the onset and the progress of the crystallization of the urethane hard segments were correlated to the position, width, and relative intensity of the hydrogen‐bonded N? H stretching band. The interconversion between the “free” and hydrogen‐bonded N? H and C?O groups in the urethane units in the process was also revealed by 2D correlation analysis of the FTIR data. The crystallization of the PLLA soft segments was monitored by the ester C?O stretching and the skeletal vibrations. It was revealed that the PLLA crystallization was restricted by the phase separation and the urethane crystallization, and at cooling rates of 10 °C/min or higher, the crystallization of the PLLA soft segments was prohibited. © 2009 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 47: 685–695, 2009  相似文献   

18.
The effects of soft segment length on the variations in morphology, surface composition, and hydrophilicity have been studied in fluorinated polyurethanes (FPUs) and correlated with their preliminary blood compatibility as evidenced by in vitro platelet adhesion experiments. The fluorinated polyurethanes were obtained using hexamethylene diisocyanate (HDI) and chain extender of 2,2,3,3-tetrafluoro-1,4-butanediol (TF) as the hard segment as well as various soft segments—polytetramethyl oxides (PTMO) with molecular weights of 650, 1000, 1400, and 2000. The increased phase separation in hard-segment domains with lengthening soft segment was observed by FT-IR, which is believed to result in enhanced strength of hydrogen bonds and good hard-segment order arrangement. Thin-film XRD results indicate at least three lateral distances existing between adjacent hard segments in the crystallized hard segment. Their distribution depends strongly on the length of soft segment. Lengthening soft segment promotes the formation of dense arrangement of crystallized hard segments. Compared with the effect of phase separation, surface composition was found to exert a major influence on the preliminary blood compatibility of fluorinated polyurethanes. Increasing fluorine content by decreasing soft segment length promotes reduction in platelet adhesion and activation on polyurethane surfaces.  相似文献   

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