272 resultados para heat tolerance

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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本实验以大百合和百合东方杂种系“索蚌”为材料,对大百合、百合杂交的亲和性、大百合离体培养及其耐热性进行了研究,以期为大百合与百合杂交育种及相应的耐热百合材料的筛选、种质保存、新品种快繁及栽培应用提供理论依据。   以大百合为母本,百合为父本,对属间杂交授粉后花粉管的行为进行观察,结果表明:大百合与百合属间杂交授粉后,百合的花粉在大百合的花柱内的伸长过程中,出现少部分花粉管末端分叉、膨胀或变细,胼胝质大量不规则沉淀,及部分花粉管在伸长过程中受阻等不亲和现象,但大部分花粉仍能够正常萌发,穿过花柱道,进入子房,到达胚珠,且能够观测到早期的胚。虽然杂交亲和性与花粉管的行为有关,但杂交的成功与否还受到受精后诸多因素的影响,还需要从胚胎学和遗传学方面进一步探讨。   以大百合的鳞片、叶柄和子房为外植体,进行离体培养,结果表明:大百合的鳞片和叶柄外植体均可成功地诱导小鳞茎,叶柄相对更容易。鳞茎诱导小鳞茎的最佳培养基为MS+NAA0.5-1.0mg/ml +BA2.5mg/ml +KT2.5mg/ml +蔗糖3%+琼脂0.7%,28周后,每个外植体平均可以分化4-11个小鳞茎;叶柄诱导小鳞茎的最佳培养基为MS+NAA1.0-2.0mg/ +BA2.5-3.0mg/ml +KT2.5-3.0mg/ml +蔗糖3%+琼脂0.7%,26周后,每个外植体平均可以分化3-9个小鳞茎。同时也发现,用鳞茎作为外植体,污染率较高。在大百合的子房离体培养实验中发现:BA和KT 是影响大百合子房分化途径的关键因素,其浓度分别为0.1-1.0mg/L、2.0-4.0 mg/L和高于4.0mg/L时,外植体分别分化为愈伤组织、芽和叶。外植体分化的基本培养基以N6、B5为佳。愈伤组织诱导小鳞茎的最佳培养基为MS+0.1-0.5mg/L NAA +2.5mg/L BA+2.5mg/L KT +10%蔗糖+0.7%琼脂。在1/2MS +3%的蔗糖+0.7%琼脂+1%活性炭的生根培养基上,生根率为100%。炼苗一周后移栽,长势良好。   对长至5-6片真叶的大百合植株在不同高温(30℃、35℃和40℃)下,分别进行4h、10h及24h(热胁迫10h,然后在22℃对照温度下缓苗14h)的热胁迫处理,测定了不同处理下,植株的净光合速率(Pn),实际光化学效率(φPS2),最大光化学效率(Fv/Fm)和叶片的相对电导率,游离脯氨酸含量,可溶性蛋白含量,以及叶片中超氧化物歧化酶(SOD)和过氧化氢酶(CAT)的活性。结果表明:大百合对30℃的高温胁迫有较好的适应能力,表现为可溶性蛋白、游离脯氨酸等渗透调节物质的积累,抗氧化酶活性的提高,以及缓苗后细胞膜的自我修复和光合能力的恢复;随着胁迫温度的升高(35℃、40℃)和胁迫时间的延长(4h、10h),大百合一方面对高温胁迫做出了积极的响应,另一方面,光系统的光合能力,细胞膜的稳定性,抗氧化酶的活性,也受到了一定程度的伤害,在缓苗后,细胞膜的稳定性、细胞的渗透势、抗氧化酶的活性等都在一定程度上得到恢复。   

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百合是重要的球根花卉,是世界五大切花之一。我国的百合野生资源丰富,但百合鲜切花生产与世界花卉大国相比仍然存在差距,优质的商品种球大量依靠进口,实现商品种球国产化能够促进百合鲜切花生产和农业经济发展。温度是影响百合生长发育最重要的因子之一,影响百合鳞茎发育,限制百合的分布区域。 百合鳞茎具有自然休眠的特性,低温处理是目前打破百合鳞茎休眠的最常用的方法。低温处理期间,鳞茎内发生复杂的反应,淀粉水解,鳞茎内的淀粉酶(α-淀粉酶和β-淀粉酶)活性增加,可溶性糖主要是蔗糖积累;可溶性蛋白质含量增加,游离氨基酸在鳞茎相对幼嫩的器官中集中;休眠解除期间脱落酸和玉米素核苷含量呈下降趋势,赤霉素含量呈上升趋势且活性增高,鳞茎各部位生长素都有上升,一些其他生长调节剂如Me-JA和多胺对解除百合鳞茎也有作用。低温处理期间,鳞茎内各种激素相互作用,共同调控鳞茎的休眠状态。利用低温处理打破百合鳞茎休眠的过程中,温度要求控制在稳定的范围内。利用冰箱低温处理打破百合鳞茎休眠的实验中,放入样品前冰箱内的温度在所设定温度±1℃范围内波动,且不同部位温度均匀;但冰箱内放入样品后,其内部不同部位的温度相差较大,表现为上部温度高,下部温度低,冰箱内部不同部位温度差异很大。 从百合资源在中国的分布看,华北地区的百合资源相对稀缺,温度是限制其生长的重要环境因子。新铁炮百合能够在炎热的华南地区露地栽培,将其在华北地区进行区域化露地栽培实验,对百合栽培应用推广,扩大栽培面积,降低运输成本,以及保证鲜切花质量有重要意义。通过气体交换测定的光合作用是对高温最敏感和综合的生理指标,可以在植物生长和生物量积累未发生明显变化之前揭示高温的影响。本研究通过人工气候箱,设定四个温度梯度:25℃,32℃,38℃,44℃,处理2h,通过测定新铁炮百合幼苗的光合特性研究其耐热程度、探讨可能的耐热机制。结果表明:净光合作用速率(Pn)在小于38℃时下降幅度不大,大于38℃后显著下降,随着处理温度的提高,气孔导度(Gs)呈下降的趋势,胞间二氧化碳浓度(Ci)则上升,而气孔限制值(Ls)下降。高温下,两品种叶片最小荧光(Fo)无明显变化,最大荧光(Fm)和光系统II(PSⅡ)最大光化学效率(Fv/Fm)下降程度较小;光下,PSⅡ实际光化学效率(ΦPSⅡ)呈下降趋势,44℃处理后显著下降;NPQ随处理温度的提高而上升;处理温度升高,SOD、APX、CAT、POD活力增强。研究表明新铁炮百合能够耐受32-38℃的高温;热胁迫下,叶片通过提高非光化猝灭和抗氧化酶活性两种机制来抵御高温胁迫。

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番茄(Lycopersicon esculentum Miller)原产于南美西部高原地带,适应原产地赤道附近高地干燥冷凉的气候特点,不耐高温多湿,种子萌发期间对高温非常敏感。本研究以佳粉17番茄种子为材料,试图寻找诱导番茄种子萌发期间高温耐性的方法,并通过研究高温耐性被诱导前后种子内部发生的生理生化变化,探索番茄种子萌发期间不耐高温以及高温耐性诱导的机理。试验结果显示: 25 ℃是种子萌发的最适温度,种子发芽率为97.5%。高温抑制种子的萌发,33 ℃和35 ℃条件下萌发率分别为58.5%和8.5%。 萌发适宜温度预吸胀、低温预吸胀、吸湿-回干预处理可提高番茄种子萌发期间的高温耐性,而水杨酸处理则没有明显效果。种子经25 ℃预吸胀30 h、0 ℃预吸胀10 h、吸湿-回干预处理后在33 ℃条件下的萌发率分别为81.5%、78.0%、90%,在35 ℃下的萌发率分别达到33.5%、42%、48.5%。经以上处理后,种子萌发速率提高,萌发高峰期提前,幼苗生长健壮,根干重增加,活力指数变大。 番茄种子萌发期间遭受高温危害时,电解质渗漏增加,相对电导率升高;脂膜过氧化作用加剧,其产物MDA的含量增加。经萌发适宜温度预吸胀、低温预吸胀、吸湿-回干等方法预处理后,高温伤害减轻,膜的完整性增强,电解质渗漏减缓,膜脂过氧化作用减弱,因而相对电导率降低,MDA含量减少。 高温抑制了抗氧化酶的活性,种子内部SOD、APX、CAT、GR等抗氧化酶活性降低。经萌发适宜温度预吸胀、低温预吸胀、吸湿-回干等方法预处理以后,抗氧化酶活性有不同程度的提高,清除细胞内超氧阴离子自由基的能力增强,因而使过氧化伤害减弱, 适宜温度预吸胀、低温预吸胀、吸湿-回干等预处理方法在保护生物膜的同时,增强抗氧化作用,抑制过氧化伤害,从而提高了番茄种子萌发的高温耐性,这是番茄种子高温耐性提高的生理机制之一。

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There were large losses of exotic species Elodea nuttallii during summer in eutrophic lakes of the middle and lower reaches of the Yanatze River, China. To investigate the main causes, the heat tolerance of E. nuttallii was studied and compared with that of native species Ceratopkyllum demersum by using an aquaria system in the laboratory. Under 4500 lx light intensity and 12-h L/12-h D cycle, E. nuttallii cultured in 1/5 Hoaglands solution at 39 degrees C showed a positive growth rate during the first 15 days, and the growth rate was higher than that at 35 degrees C. But after 15 days, the growth rates became negative for those cultured both at 39 and 35 degrees C. However, the growth rate was positive for more than 20 days for those cultured at 25 degrees C. Under the same conditions, the growth rate, productivity and chlorophyll content of E. nuttallii were significantly higher than that of C. demersum. Heat tolerance of E. nuttallii was also stronger than that of C. demersum. The optimal temperature for the growth of the two plants depended on the experimental period: both plants grew at an optimal rate at higher temperature if the experimental period was short; nevertheless the plants achieved optimal growth at a lower temperature if the experiment was conducted for a longer period. At the same light intensity, the heat tolerance of C. demersum in tap water with sediment was markedly stronger than that of E. nuttallii at 39 degrees C. Average growth rate of C. demersum was 4.5 times higher than that of E. nuttallii within 25 days. The positive growth period lasted for less than 25 days for E. nuttallii and for more than 25 days for C. demersum. When they were cultured in 1/5 Hoaglands solution and in tap water with sediment, the growth rate of C. demersum increased from 0.4 to 79.4 mg/d.g fresh weight (FW) within 20 days. E. nuttallii increased from 8.3 to 24.4 mg/d-g FW within 20 days. Both grew better in tap water with sediment than in 1/5 Hoaglands solution. The results demonstrated that the nutritional status of the water other than the high temperature affected the heat tolerance of E. nuttallii during summer. E. nuttallii has great ecological safe risk in China.

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In this paper, a theoretical model proposed in Part I (Zhu et al., 2001a) is used to simulate the behavior of a twin crank NiTi SMA spring based heat engine, which has been experimentally studied by Iwanaga et al. (1988). The simulation results are compared favorably with the measurements. It is found that (1) output torque and heat efficiency decrease as rotation speed increase; (2) both output torque and output power increase with the increase of hot water temperature; (3) at high rotation speed, higher water temperature improves the heat efficiency. On the contrary, at low rotation speed, lower water temperature is more efficient; (4) the effects of initial spring length may not be monotonic as reported. According to the simulation, output torque, output power and heat efficiency increase with the decrease of spring length only in the low rotation speed case. At high rotation speed, the result might be on the contrary.

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A Ni-B coating was prepared with EN using potassium borohydride reducing agent. The as-plated micro-structure of the coating was confirmed from XRD to be a mixture of amorphous and supersaturated solid solution. Three kinds of phase transformation were observed from the DSC curve. Different from the previous works, the formation of Ni4B3 and Ni2B was found during some transformation processes. The key factors which influence the variation of micro-hardness and micro-structure in deposits are the formation, the size and amount of Ni3B, Ni4B3 and Ni2B. Aging of the deposits treated under some heat treatment conditions occurred at room temperature. Changes of the micro-hardness indicated aging phenomena evidently. the natural aging phenomena are concerned with various kinds of decomposition of borides, especially with Ni4B3 phase. The extent of natural aging depends on the formation and the quantity of Ni(4)B3 and Ni2B.

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The heat transfer coefficients for horizontally immersed tubes have been studied in model internally circulating fluidized bed (ICFB) and pilot ICFB incinerators. The characteristics in the ICFB were found to be significantly different from those in a bubbling bed. In ICFB, there is a flowing zone with high velocity, a heat exchange zone, and a moving zone with low velocity. The controllable heat transfer coefficients in ICFB strongly depend on the fluidized velocity in the flowing zone, and also the flow condition in the moving zone. The heat exchange process and suitable bed temperature can be well controlled according to this feature. Based on the results of experiments, a formulation for heat transfer coefficient has been developed. These results were applied to an external superheater of a CFB incinerator with a 450 degreesC steam outlet in a waste-to-energy pilot cogeneration plant of 12 MW in Jiaxing City, China.

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发展了测定实验室土样热扩散率的方法,介绍了研制的实验装置和建议的操作程序。给出的实验结果表明土壤热扩散率随土壤空隙率、含水量和温度等许多参数而变化。

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A two-dimensional model has been developed based on the experimental results of stainless steel remelting with the laminar plasma technology to investigate the transient thermo-physical characteristics of the melt pool liquids. The influence of the temperature field, temperature gradient, solidification rate and cooling rate on the processing conditions has been investigated numerically. Not only have the appropriate processing conditions been determined according to the calculations, but also they have been predicted with a criterion established based on the concept of equivalent temperature area density (ETAD) that is actually a function of the processing parameters and material properties. The comparison between the resulting conditions shows that the ETAD method can better predict the optimum condition.

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The two-dimensional problem of a thermopiezoelectric material containing an elliptic inclusion or a hole subjected to a remote uniform heat flow is studied. Based on the extended Lekhnitskii formulation for thermopiezoelectricity, conformal mapping and Laurent series expansion, the explicit and closed-form solutions are obtained both inside and outside the inclusion (or hole). For a hole problem, the exact electric boundary conditions on the hole surface are used. The results show that the electroelastic fields inside the inclusion or the electric field inside the hole are linear functions of the coordinates. When the elliptic hole degenerates into a slit crack, the electroelastic fields and the intensity factors are obtained. The effect of the heat how direction and the dielectric constant of air inside the crack on the thermal electroelastic fields are discussed. Comparison is made with two special cases of which the closed solutions exist and it is shown that our results are valid.

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Modeling study is performed concerning the heat transfer and fluid flow for a laminar argon plasma jet impinging normally upon a flat workpiece exposed to the ambient air. The diffusion of the air into the plasma jet is handled by using the combined-diffusion-coefficient approach. The heat flux density and jet shear stress distributions at the workpiece surface obtained from the plasma jet modeling are then used to study the re-melting process of a carbon steel workpiece. Besides the heat conduction within the workpiece, the effects of the plasma-jet inlet parameters (temperature and velocity), workpiece moving speed, Marangoni convection, natural convection etc. on the re-melting process are considered. The modeling results demonstrate that the shapes and sizes of the molten pool in the workpiece are influenced appreciably by the plasma-jet inlet parameters, workpiece moving speed and Marangoni convection. The jet shear stress manifests its effect at higher plasma-jet inlet velocities, while the natural convection effect can be ignored. The modeling results of the molten pool sizes agree reasonably with available experimental data.

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Heat and mass transfer of a porous permeable wall in a high temperature gas dynamical flow is considered. Numerical simulation is conducted on the ground of the conjugate mathematical model which includes filtration and heat transfer equations in a porous body and boundary layer equations on its surface. Such an approach enables one to take into account complex interaction between heat and mass transfer in the gasdynamical flow and in the structure subjected to this flow. The main attention is given to the impact of the intraporous heat transfer intensity on the transpiration cooling efficiency.