首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 78 毫秒
1.
采用固相微萃取-气相色谱质谱法分离和鉴定千里光挥发油成分,用归一化法测定其相对含量。共分离出93个组分,鉴定出71种化学物,其含量占总挥发油组分峰面积的96.39%。主要挥发成分及其含量为十四烯(11.55%)、4乙烯基苯酚(10.99%)、δ-榄香烯(10.25%)、4-乙烯基-2甲氧基-苯酚(9.75%)、莰烯(8.7%)、(E,E)-α-金合欢烯(7.1%)和三环烯(4.6%)等。  相似文献   

2.
气相色谱-质谱法测定艾叶挥发油中化学成分   总被引:1,自引:0,他引:1  
采用水蒸气蒸馏法提取艾叶的挥发油,用气相色谱-质谱法分离和鉴定挥发油成分,并用归一化法测定其相对含量。共分离出76个组分,鉴定出59种化合物。其含量占总挥发油组分峰面积的94.3%。贵州遵义产艾叶主要挥发油成分及其含量为1,8-桉叶油素(22.19%)、樟脑(10.39%)、绿花白千层醇(6.57%)、蒿醇(4.95%)、L-龙脑(4.88%)、α-松油烯(3.98%)、蒿酮(3.44%)、顺式桧烯水合物(3.36%)、4-松油醇(2.68%)、菊油环酮(2.51%)、β-崖柏酮(2.41%)、1-松油醇(2.32%)和丁香酚(2.26%)等。  相似文献   

3.
顶空萃取-气相色谱-质谱法分析马鞭草的挥发油组分   总被引:2,自引:0,他引:2  
采用顶空萃取-气相色谱-质谱法分离和鉴定马鞭草挥发油化学成分,用归一化法测定其相对含量.鉴定出64个组分,其含量占总挥发油组分峰面积的97.76%.主要成分是乙酸(3.55%)、芳樟醇(4.41%)、反-石竹烯(9.30%)、反-β-金合欢烯(3.99%)、律草烯(5.61%)、α-姜黄烯(8.50%)、十五烷(8.48%)、γ-芹子烯(3.75%)、β-没药烯(5.66%)、β-杜松烯(3.57%).  相似文献   

4.
采用固相微萃取-气相色谱-质谱法分离和鉴定香樟籽的挥发性成分,用归一化法测定其相对含量。共分离出76种组分,鉴定出47种化合物,其含量占总挥发性成分的97.4%。主要挥发成分为樟脑(57.89%)、柠檬烯(12.68%)、α-蒎烯(4.42%)、莰烯(2.69%)、香橙烯(2.34%)、伞花烃(2.26%)及β-蒎烯(2.12%)。  相似文献   

5.
张峻松  姚二民  王建民  徐如彦 《色谱》2007,25(3):422-424
采用超临界CO2流体从树兰花中提取挥发油,得油率为2.64%。利用气相色谱-质谱联用仪(GC-MS)对树兰花油中的化学成分进行分离和鉴定,共分离出54种组分,确认了其中的48种成分,其中有18种萜烯类化合物和12种酯类物质等成分,如α-蛇麻烯、亚麻酸乙酯、大根香叶烯-D、β-榄香烯、古巴烯、石竹烯、茉莉酮酸甲酯、β-蛇麻烯-7-醇和棕榈酸乙酯等。  相似文献   

6.
气相色谱-质谱法分析蘘荷花穗挥发油化学成分   总被引:3,自引:0,他引:3  
采用水蒸气蒸馏法提取黔产蘘荷花穗挥发油,并用气相色谱-质谱对其成分进行定性分析和峰面积相对含量的测定.共鉴定出45个化学成分,占挥发油总量的95.89%.主要成分为β-水芹烯(34.96%)、α-律草烯(13.09%)、β-榄香烯(7.31%)、β-蒎烯(6.50%)、α-水芹烯(6.07%)、α-蒎烯(3.87%)、β-石竹烯(3.18%)等。  相似文献   

7.
采用水蒸气蒸馏法从青蒿、桂枝及其药对中提取挥发油成分,利用气相色谱-质谱(GC-MS)联用技术进行分离检测,通过化学计量学解析法(CRM)对重叠色谱峰解析,并结合程序升温保留指数辅助定性.从药对及其单味药青蒿、桂枝中分别鉴定出69、66、68种挥发油;组成药对后,单味药成分减少,新成分增加,药对与单味药挥发油共存17种组分,它们是cis-细辛醚、丁子香烯、丁子香烯环氧化物等成分,占药对挥发油总含量的35.82%;而药对中挥发油的主要成分是(E)-桂皮醛(18.32%)和cis-细辛醚(10.20%)等,其含量并非单味药含量的简单相加,相关作用机理有待进一步研究.  相似文献   

8.
宋文东  王浩  张夏娟 《分析试验室》2007,26(Z1):353-356
采用气相色谱-质谱联用分析法,分析测定了红树植物桐花树AegicerasCorniculatum叶子中挥发油和脂肪酸的成分.结果表明:挥发油中分离出24个峰,鉴定出8种化合物,2,6-二叔丁基-4-甲基苯酚含量丰富,占挥发油总量的20.60%;脂肪酸中分离出16个峰,鉴定出10种脂肪酸,其中主要成分有十六酸(棕榈酸,16.17%)、9,12-十八碳二烯酸(亚油酸,25.73%)、9-十八碳烯酸(油酸,41.52%)等.  相似文献   

9.
研究紫罗兰花挥发油的挥发性成分及其卷烟加香效果。采用同时蒸馏萃取法提取紫罗兰花挥发油,利用气相色谱—飞行时间质谱(GC-TOFMS)联用技术对其化学成分进行分离鉴定,采用峰面积归一化法计算各个组分相对含量,并将其加入卷烟中进行感官评吸。共鉴定了66个化合物,占检出化合物总量的79.03%,主要成分为2-β-蒎烯(13.28%)、3-蒈烯(10.16%)、(-)-异喇叭烯(4.80%)、β-波旁烯(4.53%)、斯巴醇(3.39%)和β-杜松烯(3.29%)等;评吸结果发现:适量浓度的紫罗兰挥发油能提高卷烟整体的协调性,提升卷烟的香气质和香气量,降低对口腔、鼻腔的刺激性,减少杂气,回味甜香,余味清爽。紫罗兰挥发油中化学成分丰富,主要为萜类及其含氧衍生物,其中,许多化合物具有芳香性和药用活性。  相似文献   

10.
槐花样品经蒸气蒸馏及乙醚萃取处理所得挥发油,用气相色谱-质谱联用法进行分析,按峰面积归一化法求出挥发性化学成分的相对含量.分离出42个峰,已鉴定了26个化合物,占其挥发油总相对含量的87.76%.已鉴定的有酸、酯、烯烃、醇、烷烃等10类化合物.其中酸类化合物占总色谱流出峰面积的30.53%,酯类占19.26%,烯烃类占18.01%,醇类占8.64%,烷烃类占5.52%.其主要组分有n-十六酸(26.43%)、17-三十五(烷)烯(14.84%)、喇叭茶萜醇(8.00%)、十六酸甲酯(4.18%)、肉豆蔻酸(4.10%)、8,11-十八碳二烯酸甲酯(3.79%)、月桂酸酐(3.60%)、9-十八(碳)炔酸甲酯(3.26%)、1,2-邻苯二甲酸丁基环己基酯(3.03%)、c-榄香烯(2.66%).  相似文献   

11.
The spectral-polarization characteristics of absorption and phosphorescence of molecules of the initial form of nitro-substituted indolinospirobenzothiopyran were studied in oriented polyethylene films and in solutions with different polarity. An oscillator model of the electron transitions responsible for the formation of absorption and luminescence spectra was suggested. It was established that the principal differences in the spectral and photophysical properties of the compound studied and its oxygen-containing analog are associated with the fact that the electronegativity of the S atom is lower than that of the O atom. Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 6, pp. 1143–1146, June, 1997.  相似文献   

12.
Two vanilloids, (5E)-8-(4-hydroxy-3-methoxyphenyl)oct-5-en-4-one (1) and 4-[3-hydroxydecyl]-2-methoxyphenol (2), isolated from the dried seeds of Grains of Paradise (Aframomum melegueta), were synthesized; the latter compound was made as the S-enantiomer and the material derived from the seeds was found to be a 1:1.7 mixture of the R and S isomers. The synthetic route used should allow the preparation of analogs having extended alkyl chains and consequently different lipophilicity, and 3, a homolog of 2, was also prepared.  相似文献   

13.
非那雄胺能抑制5α-还原酶的活性,明显降低二氢睾酮水平,是一种治疗良性前列腺增生的有效药品。该合成工艺以甾烯酮酸为原料,将其与氯化亚砜反应,无须分离即与叔丁胺反应得17β-酰胺化合物,再氧化开环,环合,氢化,脱氢合成了非那雄胺。经元素分析、IR、1HNMR、13CNMR、MS分析表征了其结构。该法无须使用昂贵的2,2-二吡啶二硫化物和剧毒药品苯亚硒酸酐,且以乙酸铵代替氨气,降低了对设备的要求和腐蚀,更适用于工业生产。  相似文献   

14.
Main hydration products of two cement pastes, i.e. CSH-gel, portlandite (P) (and specific surface S) were studied by static heating, and by SEM, TEM and XRD, as a function of cement strength (C-33 and C-43) hydration time (th) and subsequent hydration in water vapour.Total change in mass on hydration and air drying, Mo, increased with strength of cement paste and with hydration time. Content of water escaping at 110 to 220°C, defined as water bound with low energy, mainly interlayer and hydrate water, was independent on cement strength but its content increased with (th). Content of chemically bound (zeolitic) water in CSH-gel, escaping at 220-400°C, was slightly dependent on strength and increased with (th). It was possibly derived from the dehydroxylation of CSH-gel and AFm phase. Portlandite water, escaping at 400-500°C, was independent on cement strength and was higher on longer hydration. Large P crystals were formed in the weaker cement paste C-33. Smaller crystals were formed in C-43 but they increased with (th). Carbonate formated on contact with air (calcite, vaterite and aragonite), decomposed in cement at 600-700oC. It was high in pastes C-33(1 month) and C-43(1 month), i.e. 5.7 and 3.3%, respectively; it was less than 1% after 6 hydration months (low sensitivity to carbonation) in agreement with the XRD study showing carbonates in the air dry paste (1month), and its absence on prolonged hydration (6 months) and on acetone treatment. Water vapour treatment of (6 months) pastes or wetting-drying increased this sensitivity.Nanosized P-crystals, detected by TEM, could contribute to the cement strength; carbonate was observed on the rims of gel clusters.This revised version was published online in November 2005 with corrections to the Cover Date.  相似文献   

15.
16.

The heats of detonation of 20 simple high explosives and explosive mixtures were determined by means of an adiabatic detonation calorimeter designed by the authors. The results indicated that the performance of the instrument was reliable and the experimental data were very accurate. For explosive mixtures, there was a linear accumulative relationship between the heats of detonation of the explosive mixture and its components. Accordingly, the heats of detonation of explosive mixtures could be calculated directly from the heats of detonation of simple explosives and the characteristic heats of other components. The experiments showed that the gold or brass shell of the cylindrical charge could be substituted by a thick-walled porcelain shell, which had the advantage of cheapness.

  相似文献   

17.
针对恶臭测试的环境影响问题,提出了解决的实例方案,并对方案的要点及优缺点进行讨论,此方案在实际操作中具有较好的效果。  相似文献   

18.
The kinetics of the interaction between lithium carbonate and silica with various degrees of dispersion was investigated by TG and DTA methods. It was found that the utilization of pyrogenic silica with a specific surface area of about 300 m2g-1 instead of aerosil with one of 175 m2g-1 leads to an increase of the reaction rate between lithium carbonate and silica, which depends on the formation and growth of lithium orthosilicate crystals in the first stage, and is conditioned by the diffusion of lithium and oxygen ions through the lithium orthosilicate layer formed at temperatures above 800 K. This supposition is supported by the kinetic analysis results obtained with the use of the different models. The optimal regime of heating is recommended. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

19.
小环化合物中饱和碳质子化学位移的计算   总被引:3,自引:0,他引:3  
小环化合物由于其张力、构型、构象和各向异性效应等原因,环碳上质子化学位移缺乏规律性,难以预测,对此作者曾提出一种近似算法。本文根据303种小环化合物中饱和碳质子的化学位移实验数据,将适于计算这类质子化学位移的公式表述为:  相似文献   

20.
袁丽秋 《化学教育》2006,27(5):8-10
面对日益枯竭的能源危机,氢能是一种洁净、最有前景的替代能源。目前在各种制氢的方法中光催化分解水制氢的研究最多,光解水过程中催化剂最关键,本文对利用太阳能光解水的途径、提高光催化反应效率以及光催化剂的开发研究进行了综述。  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