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1.
张燕红  黄洪  夏正斌  陈焕钦 《色谱》2008,26(4):519-522
采用高分辨裂解气相色谱-质谱法(PyGC-MS)分析了FR-4型印刷电路板粉末样品的裂解产物。在氦气氛围中,分别在350,450,550,650和750 ℃下对印刷电路板粉末样品进行热裂解,并通过毛细管气相色谱-质谱对裂解产物进行分析,研究了不同裂解温度下裂解产物分布以及主要裂解产物的产率与裂解温度的关系,根据热分解产物的组成,探讨了热分解反应机理。  相似文献   

2.
将热分析-傅里叶红外光谱-气相色谱-质谱组成同步联用检测系统,对果胶在N2气和N2/O2氛围中,243、270和335 ℃ 3个温度点的热解产物经傅里叶红外光谱和GC-MS进行同步分析,在2种氛围下共检测鉴别了26种热分解产物。  相似文献   

3.
应用同步热分析法对淀粉样品进行了热失重研究。分别在氮气和氮氧(91+9,体积比)混合气氛围中,对淀粉样品在动态升温条件下的热重、微分热重和温度变化曲线的差异进行了比较,将315℃和350℃时所得的热解产物进行傅里叶变换红外光谱和气相色谱-质谱分析,在氮气和氮氧混合气氛围下共检出并鉴定了51种化合物。  相似文献   

4.
采用在线热裂解/气相色谱-质谱(Py/GC-MS)联用技术对3-吡啶甲酸茴香酯进行热裂解分析。通过酰氯化和酯化反应合成了新型目标化合物3-吡啶甲酸茴香酯,其分子式为C14H14NO3。目标化合物的结构经核磁氢谱(1H NMR)、核磁碳谱(13C NMR)、红外光谱(IR)和高分辨质谱(HRMS)进行确证,并通过热重-微热重-差示扫描量热(TG-DTG-DSC)分析方法对目标化合物的热稳定性进行分析。在空气氛围中,将目标化合物分别于300,600,900℃下进行热裂解,并通过气相色谱-质谱法对其挥发性热裂解产物进行定性和半定量分析。研究显示:目标化合物共经历了两次失重过程。第一次失重在129.9~158.9℃之间,失重2.3%;第二次失重在158.9~274.9℃之间,失重达90.1%,230.1℃时失重率最大。热裂解共产生44种产物,包括具有香味特征的大茴香醛、对甲基苯酚、松油醇、D-香茅醇、大茴香醚和茴香醚等化合物。其中裂解温度对裂解产物的种类和相对含量具有明显影响。300℃时α-二去氢菖蒲烯的相对含量最高,600,900℃时,相对含量最高的分别是大茴香醛和对甲基苯酚。苯甲醛、茴香醚和大茴香醚的相对含量随着温度的升高呈先增加后降低趋势;而对甲基苯酚含量则随着温度的升高而增加。根据主要裂解产物及其相对含量的变化,对目标化合物的裂解机理进行了初步探讨。  相似文献   

5.
采用在线热裂解-气相色谱-质谱联用技术(Py-GC-MS)分析了潜香吡嗪类化合物N-(2,3-吡嗪二甲酰基)-丙氨酸甲酯的热裂解行为。首先通过对2,3-吡嗪二羧酸酰胺化反应合成了新型目标化合物N-(2,3-吡嗪二甲酰基)-丙氨酸甲酯,其结构经X射线单晶衍射(XRD),1H NMR,13C NMR,IR和HR-MS证实,然后在空气氛围中,对目标化合物分别在300,600,900℃下进行热裂解,并通过GC-MS对其挥发性热裂解产物进行定性和半定量分析。结果表明:1裂解形成了包括具有香味特征的吡嗪类、大茴香醇和大茴香醛在内的裂解产物共48种。不同温度下挥发性热裂解产物的类型和相对含量不同,300℃和600℃时相对含量最高的均为乙酸,而900℃时相对含量最高的为吡嗪,且与300℃和600℃裂解条件相比所形成的吡嗪类衍生物种类较多,相对含量较高。2在具有香味特征的裂解产物中,大茴香醇的相对含量随温度升高而升高,而大茴香醛和苯甲醛的相对含量则呈现随着温度升高而降低的趋势。基于目标化合物的热裂解产物的定性及定量变化情况,初步探讨了该物质可能的裂解机理。  相似文献   

6.
采用在线热裂解/气相色谱-质谱联用技术(Py/GC-MS)对壬酸香草酰胺(PAVA)的热裂解行为进行了研究,在氦气氛围中考察了不同裂解温度和裂解时间对PAVA裂解的影响,通过GC-MS对裂解产物进行定性和半定量分析。结果表明,随着裂解温度的升高,PAVA裂解率快速提高,裂解产物也进一步增多,当裂解温度达到700℃以上时,可裂解出壬酰胺、2-甲氧基-4-甲基苯酚、1-己烯、壬基腈、壬醛等14种产物。同一温度下随着裂解时间的延长,PAVA的裂解率逐步升高,裂解产物发生了进一步的裂解。根据热裂解产物及主要裂解产物的含量变化,初步推断了PAVA的裂解规律。  相似文献   

7.
采用热裂解-气相色谱-质谱联用技术(Py—GC-MS),选择不同温度,在空气存在的条件下对烟叶重要组分多羟基吡嗪进行了热裂解挥发性成分分析,结果表明:该方法具有较好的重复性(相对标准偏差〈1.1%);不同温度下挥发性的热裂解产物不同;该化合物的热裂解能够产生吡嗪类化合物,而且,随着热裂解温度的升高吡嗪类化合物的含量增加。在挥发性的热裂解产物中,在300℃时吡嗪类化合物只占8.35%,吡啶类化合物占19.07%;在600℃时吡嗪类化合物占16.96%,吡啶类化合物占30.58%;在900℃时吡嗪类化合物占21.61%,吡啶类化合物占27.08%。  相似文献   

8.
提出了热裂解气相色谱-质谱法(Py-GC-MS)研究聚四氟乙烯涂层的热裂解性质。采用管炉型热裂解装置和不锈钢毛细管柱,根据样品的复杂程度进行分阶段释放气体分析,得到聚四氟乙烯涂层不同热裂解阶段的释放气体色谱图。结果表明:聚四氟乙烯涂层在100~300℃热裂解温度下检测到的热裂解产物为1,4-二甲基-2,5-二乙基苯、异丙氧基苯胺、双酚A;在300~380℃热裂解温度下检测到的热裂解产物为苯乙烯、α-甲基苯乙烯、4,4′-二甲基苯胺;在380~460℃热裂解温度下检测到的热裂解产物为苯酚、苯胺、对氨基甲苯、二苯醚;在460~600℃热裂解温度下检测到的热裂解产物为四氟乙烯单体。  相似文献   

9.
裂解气相色谱-质谱法研究聚醚酰亚胺的热裂解行为   总被引:1,自引:0,他引:1  
采用裂解气相色谱-质谱技术研究了聚醚酰亚胺(PEI)在550℃、650℃和750℃裂解温度下的热分解行为.随着裂解温度上升,裂解产物明显增加.在750℃时聚合物分子链断裂完全,共鉴别到25种碎片组分.PEI热分解的碎片中叔丁基苯酚、叔丁基甲基苯酚、苯酚、苯胺、氰苯、2-苯基-1H-异吲哚-1,3(2H)-二酮等5种裂解产物最重要,因此可以依据这几种化合物定性鉴别聚醚酰亚胺.依据热分解产物的数量以及结构推断降解机理为:裂解首先从醚键开始,其次是酰胺基团中的C-N键,然后再经过一系列消除反应、成环反应、重排反应等形成多种裂解碎片.  相似文献   

10.
不同氛围下烟草的热裂解行为研究   总被引:2,自引:0,他引:2  
烟丝分别在He和空气环境中于600、700、800、900、1 000 ℃下进行热裂解,裂解产物用GC-MS进行在线检测,研究了烟丝样品分别在惰性和有氧氛围中不同温度下的热裂解行为.数据表明,烟丝在He气和空气中热裂解时的产物有较大差异,He气下的裂解产物以烯烃、苯和苯系物为主;在空气下裂解的主要产物为酮、醛、醇、酸和酯等羰基化合物.有氧氛围有益于异戊二烯和1,3-丁二烯的生成,但在一定程度上抑制了酚类物质的产生.在惰性和有氧氛围下,随着温度的升高,多环芳烃化合物的产生量均进一步增加.He氛围下得到的裂解产物类型接近卷烟燃烧时的热解区,而空气氛围下得到的裂解产物类型接近燃烧区.  相似文献   

11.
2,2,2-三硝基乙基-N-硝基甲胺的热安全性   总被引:1,自引:0,他引:1  
为评价2,2,2-三硝基乙基-N-硝基甲胺(TNMA)的热安全性, 得到计算TNMA热安全性参数用的基本数据, 用经验式估算了TNMA的比热容(Cp)和热导率(λ). 用键能贡献于生成热Qf的加和法, 估算了TNMA的标准生成焓ΔcHmθ(TNMA, s, 298.15 K). 用热力学公式计算了TNMA的标准燃烧焓ΔUmθ(TNMA, s, 298.15 K)和标准燃烧能ΔcHmθ(TNMA, s, 298.15 K). 用Kamlet-Jacobs 公式估算了爆速、爆压和爆热. 用经验式估算了分解热(Qd). 通过差示扫描量热(DSC)曲线和高灵敏度布鲁顿玻璃薄膜压力计测得的逸出气体标准体积(VH)-时间(t)曲线, 得到了TNMA放热分解反应的动力学参数. 用上述基本数据得到了评价TNMA的热安全性参数: 自加速分解温度(TSADT), 热爆炸临界温度(Tbe0和Tbp0), 绝热至爆时间(tTIad), 撞击感度50%落高(H50), 热点起爆临界温度(Tcr), 被300 K环境包围的半厚和半径为1 m的无限大平板、无限长圆柱和球形TNMA的热感度概率密度函数S(T), 相应于S(T)-T关系曲线最大值的峰温(TS(T)max), 安全度(SD), 临界热爆炸环境温度(Tacr)和热爆炸概率(PTE). 结果表明: (1) TNMA有较好的热安全性和对热抵抗能力, 与环三亚甲基三硝胺(RDX)相比, TNMA易从热分解过渡到热爆炸; (2) 不同形状大药量TNMA 热安全性降低的次序为: 球>无限长圆柱>无限大平板; (3)TNMA有高的燃烧能、高的爆轰化学能(爆热)和接近环四亚甲基四硝胺(HMX)的爆炸性能, 其对冲击敏感, 冲击感度与季戊四醇四硝酸酯(PETN)和特屈尔接近, 可用作混合炸药主组分.  相似文献   

12.
介绍了有关聚氨酯热性能研究的状况,着重阐述了聚氨酯在不同气氛下的热解机理及热解动力学的内容,同时也阐述了聚氨酯今后热解研究的发展方向。  相似文献   

13.
Thermal batteries(TBs) as primary power sources are widely applied in defense and military affairs, and used in electronic packages and nuclear weapons. The activation time(AT) of TBs restricts the reactive speed of them. Therefore, it is a remarkably important parameter and needs to be studied in detail. In our previous study, the thermal transfer model has already been found during the activation process in TBs. In this work, the experimental TBs were fabricated and tested for validating the model. The error between the average value of test and calculation value from this model is less than 1%. As a result, the thermal transfer function for the activation process in the given TBs[FeS2/LiCl-KCl(MgO)/LiSi containing Fe/KClO4 heat pellet] is suggested.  相似文献   

14.
The thermal behavior, nonisothermal decomposition reaction kinetics and specific heat capacity of nitrate glycerol ether cellulose(NGEC) were determined by thermogravimetric analysis(TGA), differential scanning calorimetry(DSC) and microcalorimetry. The apparent activity energy(Ea), reaction mechanism function, quadratic equation of specific heat capacity(Cp) with temperature were obtained. The kinetic parameters of the decomposition reaction are Ea=170.2 kJ/mol and lg(A/s–1)=16.3. The kinetic equation is f(α)=(4/3)(1–α)[–ln(1–α)]1/4. The specific heat capacity equation is Cp=1.285–6.276×10–3T+1.581×10–5T2(283 KSADT), critical temperature of thermal explosion(Tb) and adiabatic time-to-explosion(tTlad). The results of the thermal safety evaluation of NGEC are: TSADT=459.6 K, Tb=492.8 K, tTlad=0.8 s.  相似文献   

15.
本文考察了正辛烷、正壬烷、正癸烷、正十一烷和正十二烷等5种直链烷烃在超临界条件下的恒容热裂解,采用一级反应动力学简化描述其热裂解过程。跟踪裂解气液产物分布,探讨了液体产物中芳烃含量与热稳定性的关系。在相同反应条件下,奇数碳和偶数碳烷烃热裂解速率、转化率和液体组分中芳烃含量分别随碳数的增加而增加。芳烃产物含量随裂解转化率增加呈指数形式增加,表达了烷烃类化合物热稳定性和裂解变化的规律。  相似文献   

16.
The object of this paper is to determine the thermal expansion behavior of nine different encapsulants in order to identify possible deficiencies in production processes and allow for the optimization of the process parameters. High dimensional stability of the encapsulant is of great importance in photovoltaic (PV) module production to avoid problems during lamination and/or in application. For this purpose, the samples were heated twice in a thermo-mechanical analyzer (TMA) in tensile mode, and the coefficient of thermal expansion (CTE) over temperature was evaluated. To get additional information about transition temperatures of the encapsulants, differential scanning calorimetry (DSC) measurements were made. The TMA results for most samples showed anisotropic behavior which was eliminated after the first heating run. Three samples showed shrinkage with subsequent increased thermal expansion as well as anisotropic behavior. It could be shown that knowing the thermal expansion behavior of the solar cell encapsulants is highly relevant for the PV module lamination process, and Thermo-Mechanical Analysis proved to be a suitable method to evaluate and also for quality control of solar cell encapsulation films.  相似文献   

17.
Thermal decomposition of ammonium perchlorate   总被引:10,自引:0,他引:10  
This review represents an attempt to summarize literature data on thermal decomposition of ammonium perchlorate. The mechanism of thermal decomposition and various factors which influence on the thermal decomposition of ammonium perchlorate are discussed.  相似文献   

18.
Thermal stabilization of TEMPO-oxidized cellulose   总被引:1,自引:0,他引:1  
A partially C6-carboxylated cellulose with carboxylate content of 1.68 mmol/g was prepared by 2,2,6,6-tetramethylpiperidine-1-oxyl radical (TEMPO)-mediated oxidation of a softwood bleached kraft pulp. Thermogravimetric analyses of the TEMPO-oxidized cellulose (TOC) and its related materials were studied to improve thermal stability of the TOC. Thermal decomposition (Td) points of the TOC with sodium carboxylate groups, alkali-treated TOC with free carboxyl groups of 0.23 mmol/g and the original cellulose were 222 °C, 264 °C and 275 °C, respectively. Thus, the anhydroglucuronic acid units formed by TEMPO-mediated oxidation of the native wood cellulose and present in the TOC cause the decrease in Td point by decarbonation during heating process. When carboxyl groups in the TOC were methylated with trimethylsilyl diazomethane (TMSCHN2), the Td point increased from 222 °C to 249 °C, and the peak temperature in its derivative thermogravimetric (DTG) curve increased from 273 °C to 313 °C, which was almost equal to that of the original cellulose. Thus, the methyl esterification of carboxyl groups in the TOC is effective in improving thermal stability. When sodium ions present in the TOC as counter ions of carboxylate groups were exchanged to some other metal ions, thermal stability was improved to some extent. Especially, when CaCl2, Ca(OAc)2, Ca(NO3)2 and CaI2 solutions were used in the ion-exchange treatments, the peak temperatures in the DTG curves increased to approximately 300 °C. MgCl2, NiCl2, SrCl2 and Sr(OAc)2 solutions were also effective to some extent in increasing the peak temperatures of DTG curves. Thus, thermal stability of the fibrous TOC can be improved to some extent by methyl esterification of the sodium carboxylate groups present in the original TOC with TMSCHN2 or ion-exchange treatments with some metal salt solutions.  相似文献   

19.
The thermal decomposition processes of silver behenate have been studied by infrared spectroscopy (IR), X-ray diffraction (XRD), combined thermogravimetry-differential thermal analysis-mass spectrometry (TG-DTA-MS), transmission electron microscopy (TEM) and UV-vis spectroscopy. The TG-DTA and the higher temperature IR and XRD measurements indicated that complicated structural changes took place while heating silver behenate, but there were two distinct thermal transitions. During the first transition at 138 °C, the alkyl chains of silver behenate were transformed from an ordered into a disordered state. During the second transition at about 231 °C, a structural change took place for silver behenate, which was the decomposition of silver behenate. The major products of the thermal decomposition of silver behenate were metallic silver and behenic acid. Upon heating up to 500 °C, the final product of the thermal decomposition was metallic silver. The combined TG-MS analysis showed that the gas products of the thermal decomposition of silver behenate were carbon dioxide, water, hydrogen, acetylene and some small molecule alkenes. TEM and UV-vis spectroscopy were used to investigate the process of the formation and growth of metallic silver nanoparticles.  相似文献   

20.
聚硅氧烷热稳定性研究进展   总被引:26,自引:0,他引:26  
综述了聚硅氧烷的热老化机理、影响其热稳定性的因素和提高其热稳定性的途径。聚硅氧烷的热老化反应主要包括热解聚和热氧化两个反应。氧气、水或醇、酸、碱或残留催化剂、硅油、机械外力、填料、聚硅氧烷的链端基等都会影响聚硅氧烷的热稳定性。提高聚硅氧烷热稳定性的途径主要有改变聚硅氧烷的分子结构以及在体系中添加热稳定剂。  相似文献   

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