31 resultados para Intermedia circulation
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In this paper, a ground hydrologic model(GHM) is presented in which the vapor, heat and momentum exchanges between ground surface covers (including vegetation canopy) and atmosphere is described more realistically. The model is used to simulate three sets of field data and results from the numerical simulation agree with the field data well. GHM has been tested using input data generated by general circulation model (GCM) runs for both the North American regions and the Chinese regions, The results from GHM are quite different from those of GHMs in GCMs. It shows that a more active concerted effort on the land surface process study to provide a physically realistic GHM for predicting the exchange between land and atmosphere is important and necessary.
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本文对中麻黄(Ephedra intermedia)的双受精作用进行了较为详细的研究。其主要结果如下: 1.中麻黄约5月中旬传粉,5月下旬受精。中央细胞分裂形成卵核及腹沟核。卵核沿合点端方向移至卵细胞质富含细胞器区,被富含细胞器的细胞质所包围。卵核的受精发生在浓厚卵细胞质区内。精子向卵核靠近,穿过浓厚细胞质区,与卵核建立联系,二核逐渐靠拢。卵核核膜出现凹陷,并逐渐包围精子,最后完成受精。刚受精后的精核卵核的核质并不立即融合,各自保持独立。之后不久,二核完成融合,形成合子。 2.腹沟核刚形成后, 并不退化而是继续发育,并象卵核一样沿合点端方向从其顶端位置向卵细胞基部移动至卵细胞质富含细胞器区。第二个精子向腹沟核移动,靠近,并建立联系,最后完成融合,形成第二个合子。 3.双受精是中麻黄的正常生殖特征。中麻黄的双受精及第二次受精产物的命运具有重要的进化上的意义。 4.两个合子连续二次分裂形成八个游离核,或者叫次生合子。八个游离核进一步发育并细胞化形成具胚性功能的单细胞原胚.或者次生合子进一步分裂增殖形成多余游离核后再进一步发育并细胞化形成具胚性功能的单细原胚或在胚的发育中解体退化,以提供营养.一个胚珠可观察到一至七个发育时期不同的胚成熟胚珠中只有一个成熟胚,双子叶。 5.由游离核发育而来的单细胞原胚在进一步的发育中沿合点端方向向配子体内上移并形成单细胞球形胚。单细胞球形胚分裂形成二细胞胚,即胚原始细胞及胚柄细胞。胚原始细胞先进行一次平周分裂而后进行一次垂周分裂形成四细胞胚。之后胚体进一步分裂发育形成多细胞球形胚。发育至一定时期后,胚柄细胞及次生胚柄分裂、膨大、伸长形成胚柄,胚柄细胞逐渐增多、增长、弯曲疏松,成熟的胚中胚柄系统消失。胚体发育至圆柱状后,中央一层弧行排列的细胞形成根冠原始细胞,之后这些根冠原始细胞不断分裂、发育分化形成成熟胚的各种组织包括胚皮层、髓、原形成层及根冠等等。
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We investigated the solid particle flow characteristics and biomass gasification in a clapboard-type internal circulating fluidized bed reactor. The effect of fluidization velocity on particle circulation rate and pressure distribution in the bed showed that fluidization velocities in the high and low velocity zones were the main operational parameters controlling particle circulation. The maximum internal circulation rates in the low velocity zone came almost within the range of velocities in the high velocity zone, when uH/umf = 2.2-2.4 for rice husk and uH/umf = 3.5-4.5 for quartz sand. In the gasification experiment, the air equvalence ratio (ER) was the main controlling parameter. Rice husk gasification gas had a maximum heating value of around 5000 kJ/m3 when ER = 0.22-0.26, and sawdust gasification gas reached around 6000-6500 kJ/m3 when ER = 0.175-0.24. The gasification efficiency of rice husk reached a maximum of 77% at ER = 0.28, while the gasification efficiency of sawdust reached a maximum of 81% at ER = 0.25.
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IEECAS SKLLQG
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采用5台1.5W/4.2KG-M制冷机(日本住友RDK415D)并联研制出了1台方便实验室使用的小型氦液化装置,并为其建立了性能测量实验台。实验结果表明:液氦温度为4.17K(饱和压力为96kPa)时,氦液化率为74L/d;液氦温度为4.42K(饱和压力为121kPa)时,液化率为116L/d,经拟合,在4.2K(饱和压力为100kPa)时液化率为83L/d,并且通过100小时以上的连续运行,说明该氦液化装置自循环性能良好。通过实验发现:实测氦液化率远大于制冷机冷头制冷量对应的计算氦液化率。分析认为:G-M制冷机气缸壁对氦气预冷是提高实际氦液化率的主要因素。