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A comprehensive investigation into the structure-property relationship of wax and how it influences the properties of hot melt adhesives

机译:宽阔的蜡结构性质关系的全面调查及其如何影响热熔粘合剂的性质

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A detailed study was conducted on seven different waxes used in hot melt adhesive formulations together with conventional resins and tackifiers, to characterize the waxes and investigate the effects of wax structure and morphology on the thermal behaviour and basic properties of the resultant hot melt adhesive formulations (HMAs). The waxes selected included representatives of each of the following types: Fischer-Tmpsch wax (FT), fully refined paraffin wax (FRP), by-product polyethylene wax (BPPE), microcrystalline wax (microwax), alpha-olefin wax (AO), carnauba wax and first intention polyethylene wax (FIPE). Fourier-transform infrared spectroscopy (FTIR), differential scanning calorimetry (DSC), high temperature size exclusion chromatography (HT-SEC), nuclear magnetic resonance spectroscopy (NMR) and confocal laser scanning microscopy (CLSM) were used as analytical tools to characterize the waxes. Molecular chain architecture as determined by solution C-13 NMR highlighted the superior chain linearity of FT wax. Methyl, ethyl and butyl short chain branching were detected in other waxes. Solid-state C-13 CP-MAS NMR provided information on the semi-crystalline nature of the waxes. FIPE, AO and Microwax showed significant structural mobility at room temperature as observed by H-1 Wideline NMR and was attributed to chain branching and mobile crystalline domains respectively. This was supported by CLSM micrographs. All waxes enhanced crystallinity in both metallocene catalysed polyethylene (mPE) and ethylene-vinyl acetate (EVA) based HMAs. This was confirmed by the characteristic splitting in FTIR bands and increased DSC enthalpies observed for the HMA relative to the neat polymers. Of the formulations containing high melting waxes, FT wax resulted in HMAs with narrower crystallization profiles, an important factor in determining HMA set times. HMA viscosities were found to be dependent on the molecular weight of the wax while the HMA melting temperatures and enthalpies were more dependent on the crystalline morphology of the waxes.
机译:在热熔粘合剂制剂中使用的七种不同蜡与常规树脂和粘贴剂一起进行了详细研究,以表征蜡,并研究蜡结构和形态对所得热熔粘合剂制剂的热行为和碱性特性的影响( HMAS)。选择的蜡包括以下各种类型的各种代表:Fischer-TMPSCH蜡(FT),全精制的石蜡(FRP),副产物聚乙烯蜡(BPPE),微晶蜡(微织机),α-烯烃蜡(AO) ,Carnauba蜡和第一个意图聚乙烯蜡(fipe)。傅里叶变换红外光谱(FTIR),差示扫描量热法(DSC),高温尺寸排阻色谱(HT-SEC),核磁共振光谱(NMR)和共聚焦激光扫描显微镜(CLSM)用作分析工具,以表征蜡。通过溶液C-13 NMR确定的分子链架构突出了FT蜡的优势链线性。在其他蜡中检测甲基,乙基和丁基短链支化。固态C-13 CP-MAS NMR提供了有关蜡的半晶性质的信息。 FIPE,AO和微针在室温下表现出显着的结构迁移率,如H-1鸽型NMR所观察到的,并且分别归因于链分支和移动结晶结构域。这是CLSM显微照片的支持。所有蜡在茂金属催化聚乙烯(MPE)和乙烯 - 乙酸乙烯酯(EVA)的HMA中增强了结晶度。这通过FTIR带中的特征分裂来证实,并且对于HMA相对于整洁聚合物,观察到的DSC焓增加。在含有高熔化蜡的制剂中,FT蜡导致HMA具有较窄的结晶曲线,是确定HMA设定时间的重要因素。发现HMA粘度依赖于蜡的分子量,而HMA熔化温度和焓更依赖于蜡的晶体形态。

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