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The results show that Fe0.13[Co20Ni80]0.87 alloy fibers are characterized with thin diameters between 0.3 and 2.0 μm, with high aspect ratio, dense and smooth surfaces. The crystalline size of the alloy fibers are mainly influenced by the thermal reduction temperature and are in the range of 20 to 50 nm with a corresponding reduction temperature range of 300 to 700 ℃. The magnetic properties of the alloy fibers are largely affected by the carbon content and crystalline sizes of the alloy fibers. With increasing thermal reduction temperature, the coercivity decreases while the saturation magnetisation value of the alloy fibers dramatically increases at lower reduction temperatures. The alloy fibers prepared at reduction temperature of 700 ℃ have a saturation magnetisation value of 120 Am2/kg and a coercivity value of 10.4 kA/m, respectively.

结果表明:Fe0.13[Co20Ni80]0.87合金纤维的直径为0.3~2.0 μm,表面光滑、长径比大;组成合金纤维的晶粒大小与还原温度密切相关,当温度为300~700 ℃时,晶粒尺寸由约20 nm增加到约50 nm;该合金纤维显铁磁性,其矫顽力主要受合金中C含量及晶粒大小的影响,随制备温度的升高而降低;饱和磁化强度则主要与合金的组分相关,随还原温度的升高和合金纯度的提高而增大;经700 ℃热还原后,合金纤维的饱和磁化强度 m s为120 Am2/kg,矫顽力 H c为10.4 kA/m。

The selected process consists of several steps as follows. Firstly, ammonifying the oily mixture of PXA pyrolysis by ammonia or aqueous ammonia, then adding the organic solvent to extra

实验结果表明,合适的分离提纯工艺为:先将裂解产物用氨水氨化、有机溶剂萃取,然后用硫酸酸化11-CUA铵盐水溶液、再将粗品11-CUA于合适介质中结晶,得到高纯度11-CUA晶体;优化工艺条件为:氨化pH值8.0~10.0、温度25-35℃,甲苯为萃取剂,酸化pH值1.5~2.0、温度55-60℃,环己烷为结晶介质,粗品11-CUA在环己烷中溶解温度50~55℃、与环己烷初始质量比4:100、结晶前沉降分层时间10min、结晶温度20℃。

Twenty seven tree-ring chronologies from 7 individual sites in western and northeastern China, which have been proved good in quality and being capable of indicating seasonal temperature variation at regional scale, are collected and used to reconstruct regional annual mean temperature series.

本文通过对我国器测温度资料与代用温度资料的研究,分析了我国近一千年地表温度序列重建的可行性,并对我国过去千年地表温度序列重建做了初步尝试。

The character of surface radiation and energy expended over soil temperature variation is that the temperature variation at surface, 5cm depth and 10cm depth are approximately sine curve on clear and cloudy day while this way the temperature variation at 20cm depth shows small extent anti-phase variation and the temperature under 50cm is no diurnal. In contrast, the temperature at 5m, 10cm and 20cm shows linear decrease and the soil-surface temperature is concaved on rainy day.

地表辐射和能量耗散反映在土壤温度变化上的特征是晴天和阴天地表、5cm、10cm的温度变化表现为准正玄曲线,20cm深处的温度变化呈现出幅度很小的反位向变化,50cm以下地温已不存在日变化特征;雨天5cm、10cm和20cm的温度呈线性递减,地表温度表现出由降雨引起的凹陷现象。

The results show that the mechanical properties of this PMMA depend strongly on the testing temperature. The Young's modulus and flow stress were found to decrease with increasing temperature at low strain rate. At the strain rate of 10^(-1) 1/s, strain soften was observed under all experiment temperatures. At high strain rate, with the temperature increase, the flow stress deceases remarkably while the failure strain increases, and the strain softening was also observed at the temperature above 333K.

试验结果表明:在准静态载荷下,随着温度的升高,材料的弹性模量和流动应力减小,在应变率为10^(-1) 1/s时表现出明显的应变软化行为;在高应变率(550 1/s)下,随着温度的升高,材料的流动应力逐渐减小而破坏应变增大,当温度超过333K时也有应变软化现象发生;在相同温度下,随着应变率的升高,材料的流动应力增大,但破坏应变减小。

As showed in Fig.1, the diagrammed stress of short time endurance test forAs showed in Fig.1, the diagrammed stress of short time endurance test for500 hours at 565℃on welded-joint of T91-F12 is 240MPa. Considering the℃on welded-joint of T91-F12 is 240MPa. Considering thedispersity of±20%, stress of check test for 500 hours is 192MPa. The result±20%, stress of check test for 500 hours is 192MPa. The resultof short time endurance test for 500 hours at 565of short time endurance test for 500 hours at 565℃on T91-X20CrMoV121℃on T91-X20CrMoV121welded-joints is showed in Tab.5. The result shows that the short timewelded-joints is showed in Tab.5. The result shows that the short timeendurance stress of weldedendurance stress of welded-joints with two procedures at 565℃for 500 hours-joints with two procedures at 565℃for 500 hoursboth above 192MPa, and meet the requirement.both above 192MPa, and meet the requirement.

依据图1,对T91-F12 焊接接头 565℃温度下的短时持久性能 500 小时考核试验依据图1,对T91-F12 焊接接头 565℃温度下的短时持久性能 500 小时考核试验的图示应力值应为 240MPa,按照持久强度试验数据的±20%的分散度,取 500的图示应力值应为 240MPa,按照持久强度试验数据的±20%的分散度,取 500小时考核试验应力值为 192MPa.T91-X20CrMoV121 焊接接头 565℃、500 小时小时考核试验应力值为 192MPa.T91-X20CrMoV121 焊接接头 565℃、500 小时短时持久考核试验试验结果见表5 ,试验结果表明,两种工艺条件下的焊接接头短时持久考核试验试验结果见表5 ,试验结果表明,两种工艺条件下的焊接接头565℃温度下的短时持久性能,500 小时的持久断裂应力均高于 192MPa,结果符565℃温度下的短时持久性能,500 小时的持久断裂应力均高于 192MPa,结果符合要求。

Electronic laminating machine this behavior particularly acute exceeded the critical temperature to master film covering the work area, not only complex, as well as well so that the markinf matozoa near the cross-linking reaction, matozoa issued the curing approximate hard, so that when it again when heated intenerated reluctant, covered with plastic film operation the correct temperature control methods, and that is fine is extremely close to master the cross-linking reaction temperature of the resin coated temperature.

电子复膜机这种现象特别明显)恰到好处地掌握覆膜温度临界工作区域,不仅复合效果好,同时还使热熔胶体接近交联反应的热点,胶体的固化近似发硬、这样当其再度受热时就不会轻易软化,覆膜操作正确的温度控制方法,就是精细掌握这种极为接近交联反应温度的覆膜温度

An ultra-high strength, weldable, low alloy steel with excellent cryogenic temperature toughness in the base plate and in the heat affected zone when welded, having a tensile strength greater than 830 MPa (120 ksi) and a micro-laminate microstructure comprising austenite film layers and fine-grained martensite/lower bainite laths, is prepared by heating a steel slab comprising iron and specified weight percentages of some or all of the additives carbon, manganese, nickel, nitrogen, copper, chromium, molybdenum, silicon, niobium, vanadium, titanium, aluminum, and boron; reducing the slab to form plate in one or more passes in a temperature range in which austenite recrystallizes; finish rolling the plate in one or more passes in a temperature range below the austenite recrystallization temperature and above the Ar3 transformation temperature; quenching the finish rolled plate to a suitable Quench Stop Temperature; stopping the quenching; and either, for a period of time, holding the plate substantially isothermally at the QST or slow-cooling the plate before air cooling, or simply air cooling the plate to ambient temperature.

在基体板以及焊接时的热影响区处的低温韧性优异的超高强度、可焊接、低合金钢具有高于830MPa(120ksi)的抗拉强度,并且具有包含奥氏体薄膜层和细晶粒的马氏体/下贝氏体板条的显微层状组织,所述钢的制备过程为:加热含有铁以及特定重量百分比的添加元素的钢坯,所述添加元素为碳,锰,镍,氮,铜,铬,钼,硅,铌,钒,钛,铝,以及硼中的一些或全部;在奥氏体可发生再结晶的温度范围内,采用一个或多个道次,将所述钢坯轧制成板材;在低于奥氏体再结晶温度但高于Ar 3 转变点的温度下,采用一个或多个道次对所述板材进行终轧;将所述终轧板材淬火至一适当淬火终止温度;停止所述淬火;或者在空冷前在QST点基本等温保持所述板材一段时间,或者对所述板材进行缓慢冷却,或者只是简单地将所述板材空冷至室温。

From results, the temperature rises very quickly in the initial transient, after 2000ns the temperature rise saturates, and temperature of the active layer is 15-25℃ higher than that of substrate.

分析结果表明器件在最初时间内温度的升高很快,当到2000ns以后温度的升高趋于平缓,同时有源区的温度升高比衬底的温度高大约15-25℃左右。

From results, the temperature risesvery quickly in the initial transient, after 2000ns the temperature rise saturates, and temperature of the active layer is 15-25癈 higher than that of substrate.

分析结果表明器件在最初时间内温度的升高很快,当到2000ns以后温度的升高趋于平缓,同时有源区的温度升高比衬底的温度高大约15-25℃左右。

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