987 resultados para 614.902252


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利用强流低能氘离子束轰击由吸氢金属形成的氘自吸收靶,研究固体内D-D聚变反应规律。并通过对实验测得的D-D聚变伴随粒子能谱,探索D-D聚变反应与靶材料结构的相关性。同时,利用氘团族离子(d3+)和氘核(d+)来轰击吸氘固体,研究固体内D-D聚变反应的特性。实验中观测到了伴随离子能谱中介于质子峰(3MeV)和氚峰(1MeV)之间的一个宽峰。结果分析表明。该峰是由固体靶内超出离子射程几倍至十几倍处发生的D-D聚变反应出射的质子所形成。同时还发现独立氘核产生的这种深部D-D核聚变的反应率高于速度相同的氘团簇离子中的氘核的反应率。

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The symmetries of a free incompressible fluid span the Galilei group, augmented with independent dilations of space and time. When the fluid is compressible, the symmetry is enlarged to the expanded Schrodinger group, which also involves, in addition, Schrodinger expansions. While incompressible fluid dynamics can be derived as an appropriate non-relativistic limit of a conformally invariant relativistic theory, the recently discussed conformal Galilei group, obtained by contraction from the relativistic conformal group, is not a symmetry. This is explained by the subtleties of the non-relativistic limit.

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将影响水禽生境选择的因子划分为水、食物、隐蔽物和干扰4类.用遥感(RS)和地理信息系统(GIS)软件对黄河三角洲地区3期TM数据进行处理,对各生境因子采取一定的分类方法,得出该地区3个时期各生境因子图.通过面积、斑块数变化及转移矩阵的分析可以看出,各生境因子的结构发生了明显的变化,变化表现为干扰加重,积水地区面积增大,谷物草籽面积及适宜隐蔽物范围减少.人类的有意识活动(干扰)是引起各生境因子发生变化的主要驱动力.生境因子变化对水禽生境既有正面影响,又有负面影响.图9表5参30

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以阐明黄土高原典型区域土壤有机碳(SOC)含量和储量及微生物碳(Mc)含量随土壤类型、土层和土地利用方式变异规律为目的,研究了从北向南依次分布的干润砂质新成土(神木)、黄土正常新成土(延安)和土垫旱耕人为土(杨凌)等典型土壤的SOC含量和储量及Mc含量的变化特征。结果表明,不同土壤类型、不同土层SOC和Mc含量存在显著差异。同一土壤类型SOC和Mc含量在0~60cm随土层深度增加下降很明显,60~120cm土层有轻微下降,120cm土层以下低而稳定,同层次土壤从南到北,SOC、Mc和SOC储量含量显著下降,均以土垫旱耕人为土最高,黄土正常新成土次之,干润砂质新成土最低,且差异显著(P<0.05);0~200cm土层SOC总储量也沿土垫旱耕人为土(102.23±30.12t/hm2)、黄土正常新成土(67.78±9.23t/hm2)、干润砂质新成土(27.07±4.59t/hm2)依次下降;土垫旱耕人为土、黄土正常新成土和干润砂质新成土在100~200cm土层SOC累积量分别是0~100cm土层的65%、74%和58%,因此在研究黄土高原SOC贮量时必需考虑深层贮量的贡献。Mc随土壤类型的变化趋势与SOC基本相...

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为了研究岷江上游居民点格局及其影响因子,利用1:25万基础地理信息数据和统计数据,在GIS的支持下,对居民点空间格局以及影响因子进行了较为深入的研究。结果表明:(1)研究区大散居、小聚居的农村居民点特征显著。(2)居民点分布主要集中在河流与道路的两侧,属于典型的高山峡谷地带居民点分布;居民点离散特征不显著。(3)居民点分布与海拔存在一种非线性的关系。研究成果为进一步分析人口的分布格局与人口数据空间化;实现生态退耕,区域景观格局优化以及区域可持续发展提供重要的依据。

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Dynamics of soil nematode communities amended with agrochemicals and bio control preparations were investigated in a soybean field. The results showed that the frequency of plant non parasitic nematodes were obviously higher in soil amended with bio control preparations (Doufeng 1) than with urea and herbicide, however, that of plant parasitic nematodes exhibited an inverse trend.

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Chinese Academy of Sciences [KZCX2-YW-315-2]; National Natural Science Foundation of China [40701021, 40625002]

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National Natural Science Foundation of China [40871177]; Project of State Key Lab of Resources and Environmental Information System [088RA304SA]; CAS Knowledge Innovation Project

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Large-scale GdVO4:Eu3+ nanowires with diameters of about 15 nm and lengths of several micrometers were achieved by a facile hydrothermal method in the presence of disodium ethylenediamine tetraacetate (Na2H2L). The influences of several parameters, such as pH value, reaction temperature, and molar ratio of Na2H2L to Gd3+ on the final products were investigated. The formation mechanism of the as-obtained GdVO4:Eu3+ nanowires is proposed on the basis of time-dependent experiments. It is found that the organic additive Na2H2L, which acts as a shape modifier, has a dynamic effect by adjusting the growth rates of different facets, resulting in the formation of the GdVO4:Eu3+ nanowires. The luminescent spectrum of GdVO4:Eu3+ nanowires shows the strong characteristic dominant emission of the Eu3+ ions at 614 nm.

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Monodisperse, core-shell-structured SiO2@NaGd(WO4)(2):Eu3+ particles were prepared by the sol-gel method. The samples were characterized by X-ray diffraction, field emission scanning electron microscopy, transmission electron microscopy, photoluminescence (PL), and low-voltage cathodoluminescence (CL) as well as time-resolved PL spectra and lifetimes. PL and CL study revealed that the core-shell-structured SiO2@NaGd (WO4)(2):Eu3+ particles show strong red emission dominated by the D-5(0) - F-7(2) transition of Eu3+ at 614 nm with a lifetime of 0.74 ms. The PL and CL emission intensity can be tuned by the coating number of NaGd(WO4)(2):Eu3+ phosphor layers on SiO2 and by accelerating voltage and the filament current, respectively.