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 46 毫秒
1.
采用单因素试验和正交试验,对微波法提取楮实子多糖的工艺进行研究,得到了最佳工艺条件:料液比1∶15,微波处理时间12 min,微波功率450 w,浸泡时间180min.在此条件下,楮实子多糖的提取率为8.79%.  相似文献   

2.
为了研究微波法从黄连中提取黄连素的效果,分别考察不同微波功率、原料浸泡时间、料液比(g/mL,下同)、提取次数、微波辐射时间对黄连素提取率的影响。结果微波法从黄连中提取黄连素的最佳工艺条件为:提取功率500W,原料浸泡时间24 h,料液比1∶120,提取次数2次,微波辐射时间3 min,提取率达5.61%,提取效果较好。与硫酸法、石灰法、乙醇浸取法相比,不仅提高了提取速度,并且更加环保。  相似文献   

3.
本论文采用超声-微波协同提取新工艺,通过单因素实验分别考察提取时间、微波功率、料液比等因素对黄芪多糖提取率及纯度的影响;通过正交实验得出最佳提取工艺参数;通过平行提取实验,与水提法、微波及超声波辅助提取进行比照。得出最佳提取条件为微波功率120 W,提取时间为150 s,料液比1∶25(g/mL)时,黄芪多糖的提取率最高达4.25%,并且证明了超声微波协同提取法的提取效率高于水提法、微波法及超声波法等传统的提取方法。  相似文献   

4.
微波辅助法从黎蒿中提取黄酮类化合物的研究   总被引:6,自引:1,他引:6  
本文介绍了一种有效利用微波辅助从藜蒿(Artemisia selengnesisTurcz)中提取黄酮类化合物的方法。通过考察了微波辐射时间、功率、料液比及提取溶剂等因素对提取率的影响,得出的结论为:以75%乙醇做提取溶剂,密封条件下,功率200 W,料液比1 g∶25 mL,辐射时间20 s/次×3次,提取率最高。与传统提取方法相比,该方法不仅工艺简单,而且可以提高产率,缩短提取时间。  相似文献   

5.
微波辅助提取灰树花多糖工艺研究   总被引:1,自引:0,他引:1  
采用提取时间、微波功率、液料比的单因素试验和正交试验法优化微波辅助提取灰树花多糖条件.结果表明,以净多糖得率为指标,影响微波辅助提取灰树花多糖的主次因素为:提取时间>微波功率>液料比,并且提取时间和微波功率的影响达到了极显著水平.灰树花多糖最佳提取工艺条件为:提取时间为10 min,微波功率为80%(全功率为800 W),液料比为25∶1.创立了一种用苯酚-硫酸法测定多糖时排除蛋白质干扰的方法.  相似文献   

6.
采用正交试验比较研究热水浸提法和微波提取法提取香菇多糖。热水浸提法的最佳工艺为:提取温度70℃、提取时间4h、料液比1∶15,提取率3.243%;微波提取法的最佳工艺为:微波功率560W、微波处理时间60s、料液比1∶10,提取率4.771%。微波提取法效率高、时间短,是理想的香菇多糖提取方法。  相似文献   

7.
采用正交试验比较研究热水浸提法和微波提取法提取香菇多糖.热水浸提法的最佳工艺为:提取温度70℃、提取时间4h、料液比1∶15,提取率3.243 %;微波提取法的最佳工艺为:微波功率560W、微波处理时间60 s、料液比1∶10,提取率4.771%.微波提取法效率高、时间短,是理想的香菇多糖提取方法.  相似文献   

8.
采用微波技术提取桑叶多糖的工艺研究   总被引:1,自引:0,他引:1  
本试验以干燥桑叶粉为材料,在单因素实验的基础上,采用Box-Benhnken中心组合实验和响应面分析法,研究了提取时间、微波功率和料液比对桑叶多糖提取率的影响,确定了微波提取桑叶多糖的最佳工艺条件;与热水浸提法相比,微波法提取率高,且所得桑叶多糖更能明显提高四氧嘧啶糖尿病小鼠的糖耐量,是一种更好的桑叶多糖提取方法。  相似文献   

9.
提取防风多糖的工艺优化   总被引:2,自引:1,他引:1  
采用超声波强化和微波辅助提取2种方法提取防风多糖,并与传统热水浸提法在多糖的提取率上进行比较。防风多糖超声提取的最佳工艺条件为超声功率1 000 W、提取时间25 min、液固体积质量比为25,防风多糖微波提取的最佳工艺条件为微波功率560 W、液固体积质量比为30、提取时间10 min,在最佳提取工艺下,2种方法的提取率分别为6.103%和7.639%。与传统热水浸提法相比,超声法和微波法提取防风多糖具有迅速、节能、高效、提取率高等诸多优点。  相似文献   

10.
朱辉  孙家英  彭林彩  赖川  朱朝菊 《广西植物》2017,37(8):1074-1082
通过微波辅助提取技术结合响应面法优化山苍子核仁油提取条件,以期建立更高产率的提取方法。该研究在单因素设计基础上,选取液料比、微波功率、萃取时间、萃取温度4个主要因素,分析这4个因素对山苍子核仁油提取率的影响。结果表明:通过建立多元回归拟合分析,得出山苍子核仁油提取最佳工艺条件为液料比1∶16,萃取温度为69℃,微波功率为337 W,萃取时间为63 min,在此条件下山苍子核仁油提取率为37.42%,与环己烷溶剂回流法相比较提取率提高了30.11%。气质联用仪分析结果显示,山苍子核仁油主要成分有16种占总成分的88.21%,鉴定出10种脂肪酸占总成分的78.24%,饱和脂肪酸有4种占总成分的43.23%,不饱和脂肪酸有6种占总成分的35.01%,脂肪酸中含量最高的为月桂酸(31.36%)。该研究结果表明该方法严谨、可靠,采用微波辅助提取山苍子核仁油是可行的。  相似文献   

11.
12.
13.
14.
15.
In experiments on Black Sea skates (Raja clavata), the potential of the receptor epithelium of the ampullae of Lorenzini and spike activity of single nerve fibers connected to them were investigated during electrical and temperature stimulation. Usually the potential within the canal was between 0 and –2 mV, and the input resistance of the ampulla 250–400 k. Heating of the region of the receptor epithelium was accompanied by a negative wave of potential, an increase in input resistance, and inhibition of spike activity. With worsening of the animal's condition the transepithelial potential became positive (up to +10 mV) but the input resistance of the ampulla during stimulation with a positive current was nonlinear in some cases: a regenerative spike of positive polarity appeared in the channel. During heating, the spike response was sometimes reversed in sign. It is suggested that fluctuations of the transepithelial potential and spike responses to temperature stimulation reflect changes in the potential difference on the basal membrane of the receptor cells, which is described by a relationship of the Nernst's or Goldman's equation type.I. P. Pavlov Institute of Physiology, Academy of Sciences of the USSR, Leningrad. I. M. Sechenov, Institute of Evolutionary Physiology and Biochemistry, Academy of Sciences of the USSR, Leningrad. Pacific Institute of Oceanology, Far Eastern Scientific Center, Academy of Sciences of the USSR, Vladivostok. Translated from Neirofiziologiya, Vol. 12, No. 1, pp. 67–74, January–February, 1980.  相似文献   

16.
Evolution of living organisms is closely connected with evolution of structure of the system of regulations and its mechanisms. The functional ground of regulations is chemical signalization. As early as in unicellular organisms there is a set of signal mechanisms providing their life activity and orientation in space and time. Subsequent evolution of ways of chemical signalization followed the way of development of delivery pathways of chemical signal and development of mechanisms of its regulation. The mechanism of chemical regulation of the signal interaction is discussed by the example of the specialized system of transduction of signal from neuron to neuron, of effect of hormone on the epithelial cell and modulation of this effect. These mechanisms are considered as the most important ways of the fine and precise adaptation of chemical signalization underlying functioning of physiological systems and organs of the living organism  相似文献   

17.
18.
19.
20.
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