178 resultados para oil body

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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麻疯树(Jatropha curcas L.)属大戟科麻疯树属多年生亚乔木,耐干旱、高温和贫瘠等,具很强的抗逆性,在干热河谷等边际土地上生长良好。其种子富含油脂,是制备生物柴油的理想材料,为重要的能源植物之一。油体(oil body)是种子细胞中重要的细胞器, 脂肪酸以三脂酰甘油(triacylglyeerols,TAG)的形式储存其内,是种子萌发和幼苗生长时所需碳骨架和能量的主要来源。种子萌发为生命萌动并构建成自养个体的过程,是高等植物生长发育中的重要事件。 本论文运用高通量的蛋白质组学研究手段,结合电镜技术和生理学分析,对麻疯树种子油体以及种子萌发过程中蛋白质表达、生理学响应和细胞结构变化进行了研究。 从麻疯树种子胚乳中分离油体,再从油体中提取蛋白,经双向凝胶电泳后,得到油体蛋白质组的二维表达谱,这些蛋白质主要分布在等电点5 ~ 10、分子量12 ~ 66 kDa的范围内;图像分析表明,油体蛋白质组至少有141个蛋白点,其中酸性蛋白74个,碱性蛋白67个,表达丰度较高的多为低分子量碱性蛋白。对其中36个重要蛋白点进行LC-MS/MS质谱分析,得到鉴定的蛋白分别为30个基因的表达产物,主要包括油体重要的结构蛋白油质蛋白(oleosin)和caleosin,麻疯树种子毒蛋白curcin,以及新鉴定得到的另一种可能的麻疯树种子毒蛋白,人体过敏反应蛋白橡胶延伸因子(REF)。还有四个与脂肪酸代谢相关的酶,其中3-羟酰-酰基载体蛋白(ACP)脱水/催化酶和醇酰基转移酶与脂肪酸合成有关,而脂氧合酶和磷脂酶D在脂肪酸降解中发挥作用,显示部分脂肪酸代谢相关的酶在油体储存状态就已附着在油体上,为种子萌发时动员油脂做好了准备。 麻疯树种子胚乳发达,在32℃湿润土壤中很快就会萌动,胚轴伸长露出胚根,长出新根,约4天后形成出土子叶幼苗。种子萌发过程中胚乳主要成分含量测定表明,含水量在前24小时迅速上升,至48小时增加缓慢,此后开始较快上升,可分为三个阶段,呈现“S”型的变化;粗脂肪和粗蛋白在前两个阶段变化不大,进入第三阶段后其含量迅速下降,前者先于后者,分别在萌发后72小时和96小时后开始明显减少,说明被大量降解、转化,供萌发生长利用,其中主要组分亚油酸最为明显。细胞超微结构观察发现,排列整齐充满整个胚乳细胞的油体和嵌合在油体中的蛋白储存泡在种子萌发过程中,随着线粒体、乙醛酸循环体和液泡的出现增多或增大而被逐渐解体、减少或消失;同时,发现脂肪酸主要在乙醛酸循环体、蛋白颗粒主要在液泡中被降解或转化。 蛋白质组学分析表明,麻疯树种子在萌发72小时过程中变化量在两倍以上的差异蛋白点共有141个,所有的差异蛋白均通过LC-MS/MS分析和NCBI蛋白数据库搜索得到鉴定。其中包括多个参与降解储藏油脂的酶,如乙醛酸循环途径中的顺乌头酸酶,异柠檬酸裂解酶和苹果酸脱氢酶等,均从种子萌发48小时开始表达量明显上升;葡糖异生途径中的酶在种子萌发中的积累略晚于乙醛酸循环途径,如烯醇酶,磷酸甘油酸变位酶,磷酸甘油酸激酶,磷酸丙糖异构酶和醛缩酶大多在萌发约60小时后表达量开始上调。分析结果表明,乙醛酸循环途径在种子萌发48小时后被激活,与电镜观察胚乳细胞发现油脂在萌发48小时时开始被动员相一致,因而大规模的油脂动员开始于种子萌发的第三阶段。 同时,蛋白质组学的分析结果也得到了种子胚乳组分变化分析及电镜观察结果的印证。超微细胞结构观察显示种子储藏蛋白降解在萌发第二阶段启动,主要在液泡中进行降解。粗脂肪的含量在72小时时显著降低,而电镜观察显示此时胚乳细胞中出现中央大液泡,出现大量的线粒体和乙醛酸循环体,细胞结构发生重大变化,萌发96小时后仅有少量油体残留于胚乳细胞中,这些都为储藏油脂在麻疯树种子萌发过程中的降解方式提供了重要证据。许多其他的功能蛋白在种子萌发过程中也发生了变化,表明种子萌发过程中不仅发生储藏物质的动员,也发生抗逆反应以及植物形态的构建等众多其他生理生化反应。 本研究首次对麻疯树种子油体进行了蛋白组成分析,并结合电镜技术及生理分析深入探讨了种子储藏物质在萌发中的降解方式,为更好的理解油体结构、木本油料种子的萌发机制和对麻疯树进行品种的改良提供了参考。

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The effect of feeding 0, 4, 8 and 16% rapeseed oil from 12-42 days of age was studied in broiler chickens on performance, digestibility of nutrients, and development of gastrointestinal tract, protein and energy metabolism. Thirty six female chickens (Ross 208) with initial body weight average 246 g were allocated to the four groups and kept pair-wise in metabolism cages. The chickens were fed similar amounts of metabolisable energy (ME) per day and similar amounts of essential amino acids relative to ME by adjusting with crystalline amino acids. The chickens were subjected to four balance periods each of five days with two 24 h measurements of gas exchange in two open-air-circuit respiration chambers inserted on the second and third day of each period. The addition of rapeseed oil increased the amount of gutfill indicating a reduced rate of passage and causing a hypertrophy of the gastrointestinal tract. There was a positive effect on feed utilisation as well as on digestibility especially of dietary fat together with higher utilisation of protein with addition of rapeseed oil. The partial fat digestibility of rapeseed oil estimated by regression was 91.1% and the partial metabolisability (ME/GE) of the rapeseed oil was estimated to 85% yielding an apparent metabolisable energy value of 34.30 MJ/kg.

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介绍一种可应用于高粘度稠油管输的新工艺。即用自行研制的蒸汽引射器采用无界引射方式,将蒸汽直接注入到输油管道中,利用蒸汽释放的热量提高稠油温度降低粘度,从而达到降低稠油输送压降的目的,它比间接加热输送工艺所用的蒸汽量或耗煤量大大减少。方法在辽河油田输油管线上进行了工业现场试验,取得了很好的效果。

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Presented is an experimental study on the performance of an oil-gas multiphase transportation system, especially on the multiphase flow patterns, multiphase pumping and multiphase metering of the system. A dynamic simulation analysis is conducted to deduce simulation parameters of the system and similarity criteria under simplified conditions are obtained. The reliability and feasibility of two-phase flow experiment with oil and natural gas simulated by water and air are discussed by using the similarity criteria.

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The behaviors of a crack in body-centered-cubic metal Mo under different loading modes were studied using the molecular dynamics method. Dislocation emission was observed near the crack tip in response to mode II loading with theta = 0 degrees in which theta is the inclination angle of the slip plane with respect to the crack plane, and two full dislocations were observed at the stress level of K-II = 1.17 MPa m(1/2) without any evidence of crack extension. Within the range of 0 degrees less than or equal to theta less than or equal to 45 degrees, crack extension was observed in response to mode I loading, and the effect of crystal orientation on the crack propagation was studied, The crack propagated along the [111] slip direction without any evidence of dislocations emission.

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Numerical simulation of an oil slick spreading on still and wavy surfaces is described in this paper. The so-called sigma transformation is used to transform the time-varying physical domain into a fixed calculation domain for the water wave motions and, at the same time, the continuity equation is changed into an advection equation of wave elevation. This evolution equation is discretized by the forward time and central space scheme, and the momentum equations by the projection method. A damping zone is set up in front of the outlet boundary coupled with a Sommerfeld-Orlanski condition at that boundary to minimize the wave reflection. The equations for the oil slick are depth-averaged and coupled with the water motions when solving numerically. As examples, sinusoidal and solitary water waves, the oil spread on a smooth plane and on still and wavy water surfaces are calculated to examine the accuracy of simulating water waves by Navier-Stokes equations, the effect of damping zone on wave reflection and the precise structures of oil spread on waves.

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The gathering systems of crude oil are greatly endangered by the fine sand and soil in oil. Up to now , how to separate sand from the viscid oil is still a technical problem for oil production home or abroad. Recently , Institute of Mechanics in Chinese Academy of Sciences has developed a new type of oil-sand separator , which has been applied successfully in oil field in situ. In this paper, the numerical method of vortex-stream function is used to predict the liquid-solid separating course and the efficiency for this oil-sand separator. Results show that the viscosity and particle diameter have much influence on the particle motion. The calculating separating efficiency is compared with that of experiment and indicates that this method can be used to model the complex two-phase flow in the separator.

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This paper carries out the analysis of mechanics of a grip system of three-key-board hydraulic tongs developed for offshore oil pipe lines which has been successfully used in oil fields in China. The main improvement of this system is that a lever frame structure is used in the structural design, which reduces greatly the stresses of the major components of the oil pipe tongs. Theoretical analysis and numerical calculation based on thirteen basic equations developed Show that the teeth board of the tongs is not easy to slip as frequently happens to other systems and is of higher reliability.

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We report a previously unknown body-centered-tetragonal structure for ZnO. This structure results from a phase transformation from wurtzite in [0001]-oriented nanorods during uniaxial tensile loading and is the most stable phase for ZnO when stress is above 7 GPa. The stress-induced phase transformation has important implications for the electronic, piezoelectric, mechanical, and thermal responses of ZnO. The discovery of this polymorph brings about a more complete understanding of the extent and nature of polymorphism in ZnO. A crystalline structure-load triaxiality map is developed to summarize the relationship between structure and loading.

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The oil/water two-phase flow inside T-junctions was numerically simulated with a 3-D two-fluid model, and the turbulence was described using the mixture k - epsilon model. Some experiments of oil/water flow inside a single T-junction were conducted in the laboratory. The results show that the separating performance of T-junction largely depends oil the inlet volumetric fraction and flow patterns. A reasonable agreement is reached between the numerical simulation and the experiments for both the oil fraction distribution and the separation efficiency.

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This work is devoted to study of the slip phenomenon between phases in water-oil two-phase flow in horizontal pipes. The emphasis is placed on the effects of input fluids flow rates, pipe diameter and viscosities of oil phase on the slip. Experiments were conducted to measure the holdup in two horizontal pipes with 0.05 m diameter and 0.025 m diameter, respectively, using two different viscosities of white oil and tap water as liquid phases. Results showed that the ratios of in situ oil to water velocity at the pipe of small diameter are higher than those at the pipe of big diameter when having same input flow rates. At low input water flow rate, there is a large deviation on the holdup between two flow systems with different oil viscosities and the deviation becomes gradually smaller with further increased input water flow rate. (C) 2008 Elsevier Inc. All rights reserved.

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An experimental investigation was conducted to study the holdup distribution of oil and water two-phase flow in two parallel tubes with unequal tube diameter. Tests were performed using white oil (of viscosity 52 mPa s and density 860 kg/m(3)) and tap water as liquid phases at room temperature and atmospheric outlet pressure. Measurements were taken of water flow rates from 0.5 to 12.5 m(3)/h and input oil volume fractions from 3 to 94 %. Results showed that there were different flow pattern maps between the run and bypass tubes when oil-water two-phase flow is found in the parallel tubes. At low input fluid flow rates, a large deviation could be found on the average oil holdup between the bypass and the run tubes. However, with increased input oil fraction at constant water flow rate, the holdup at the bypass tube became close to that at the run tube. Furthermore, experimental data showed that there was no significant variation in flow pattern and holdup between the run and main tubes. In order to calculate the holdup in the form of segregated flow, the drift flux model has been used here.

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The temperature and stress field in a thin plate with collinear cracks interrupting an electric current field are determined. This is accomplished by using a complex function method that allows a direct means of finding the distribution of the electric current, the temperature and stress field. Temperature dependency for the heat-transfer coefficient, coefficient of linear expansion and the elastic modulus are considered. As an example, temperature distribution is calculated for an alloy (No. GH2132) plate with two collinear cracks under high temperature. Relationships between the stress, temperature, electric density and crack length are obtained. Crack trajectories emanating from existing crack are predicted by application of the strain energy density criterion which can also be used for finding the load carrying capacity of the cracked plate. (C) 2003 Elsevier Ltd. All rights reserved.

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A mathematical model for coupled multiphase fluid flow and sedimentation deformation is developed based on fluid-solid interaction mechanism. A finite difference-finite element numerical approach is presented. The results of an example show that the fluid-solid coupled effect has great influence on multiphase fluid flow and reservoir recovery performances, and the coupled model has practical significance for oilfield development.