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heat capacity相关的网络例句

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与 heat capacity 相关的网络例句 [注:此内容来源于网络,仅供参考]

Furthermore the performances of heat transfers including corrugate plate, tube and fin-tube were compared under the same conditions. The results show that when the air frontal velocity is between 2.45 and 4.1m/s, the overall heat-transfer coefficient of plate heat exchanger ranges from 100 to 160 W/m^2/ equal to one sixth of that of fin- tube cooler based on tube outside area, which is about 70% higher than that of tube cooler. The volumetric heat transfer capacity of plate cooler is 1.5 times as that of fin-tube cooler and 15 times as that of tube cooler. The heat transfer capacity of per unit power of plate cooler is 5.5 times as that of tube cooler and similar results for fin-tube cooler.

在相同工况下,比较了波纹板式、光管式和翅片管式空冷器的性能指标,结果表明:迎面风速在2.45~4.1m/s之间,波纹板式空冷器传热系数达到100~160W/平方公尺/℃;约比光管式提高70%,但只有以管束外表面为基准的翅片管式传热系数的六分之一;板式空冷器单位体积换热量约是翅片管式空冷器的1.5倍,是光管式的15倍;板式空冷器单位功耗换热量约是光管式空冷器的5.5倍,而翅片管式空冷器与光管式空冷器则相差不大。

The result shows that the cooling capacity increases with increasing generator heat transfer. The coefficient of performance of the system increases when the quantity of the generator heat transfer is increased from 6 kW to 7 kW, however it decreases in the range of 7 kW-9 kW. When the fan frequency increases, the temperature of liquid ammonia leaving condenser decreases, while the cooling capacity and the COP of the system increases. When the flow rate and inlet temperature of water/glycol increases, the evaporator takes more heat away and the cooling capacity and COP of the system increases.

其结果可发现当发生器加热量增加,系统温度增加系统冷冻能力增加,但其COP於6 kW-7 kW 系统COP会有先增加,於7 kW-9 kW,系统COP会有下掉的趋势;在冷凝器方面,当风扇频率增加,冷凝器温度降低时,冷凝器出口冷媒随之降低,系统冷冻能力会有所提高,COP亦增加;在蒸发器方面,蒸发器卤水出口温度及卤水流量增加,可以使蒸发器带走更多的热量其系统冷冻能力及COP也就会相对增加。

Heat capacity and excess chemical potential computed in lattice simulation have been used to analysis folding transition temperature of the model proteins of different length.

结果表明在折叠子尺度附近的序列其折叠相变更显著,我们所研究的尺度范围内折叠温度是和序列长度成正比的。

The signature of a gas made up by these monopoles has also been observed in heat capacity measured by Bastian Klemke.

研究人员也在热容量测量中发现了由这些单极子组成的气体的特征。

There are mainly two statistic methods;one is that the heat capacity of solid is statistically calculated when the solid atomic system is in the quasi-independent particle system,this kind of methods is known as Einstein theory.

一种统计方法是:将固体原子系统看作近独立粒子系统,统计运算固体热容随温度的变化,称为爱因斯坦理论;另一种方法则是:应用系综统计理论,统计运算固体热容随温度的变化情况,称为德拜理论。

Tiles evenly close to the back wall of the bearing bore, it has good load-carrying and heat capacity, improve reliability, extend service life.

瓦片背面均匀地紧贴在轴承孔壁上,使它有很好的承载和散热能力,提高工作可靠性,延长使用寿命。

Experimental data of critical parameters, and the correlations of saturated liquid and vapor density, enthalpy of vaporization, vapor pressure, pVT properties, second virial coefficient, ideal-gas heat capacity, surface tension, viscosity and thermal conductivity are obtained in this paper.

介绍了三氟碘甲烷(CF3I)热物理性质的研究成果,包括临界参数的实验数据以及饱和气液密度、饱和蒸气压、汽化潜热、 pVT性质、第二virial系数、理想气体比热容、表面张力、粘度、导热系数等的关联式,并与文献数据进行了比较,分析了实验数据对关联式的偏差。

On the basis of the concept of perfect quantum gas, a physical model of extreme relativity is established for perfect quantum gas, and also according to the conclusions of the state density of the extreme theory of relativity, the densities of quantum statistics′ particle numbers and energy, the extreme relativity′s result of the enthalpy、internal energy and heat capacity of the perfect quantum gas is obtained under the high temperature by strict theory inference.

在理想量子气体概念的基础上,首先建立极端相对论理想量子气体的物理模型;再根据极端相对论的态密度和量子统计的粒子数、能量的密度结论,通过严格的理论推导,得出理想量子气体在高温条件下的极端相对论性的焓、内能和热容量的结果,并将其热容量与高温条件下的理想量子气体、经典理想气体的热容量对比,指出极端相对论与非相对论两种模型、理想量子气体与经典理想气体两种模型的热容量之间的差异,同时分析这些差异的物理原因在于各自气体模型的态密度以及对应体系的波函数的对称性;最后阐明高温条件下极端相对论理想量子气体的热容量在量子统计方面的先进性及应用前景。

Finally it clarifies the advance in quantum statistics and the practical prospect of heat capacity of the extreme relativity's perfect quantum gas under high tamperature.

摘 要:在理想量子气体概念的基础上,首先建立极端相对论理想量子气体的物理模型;再根据极端相对论的态密度和量子统计的粒子数、能量的密度结论,通过严格的理论推导,得出理想量子气体在高温条件下的极端相对论性的焓、内能和热容量的结果,并将其热容量与高温条件下的理想量子气体、经典理想气体的热容量对比,指出极端相对论与非相对论两种模型、理想量子气体与经典理想气体两种模型的热容量之间的差异,同时分析这些差异的物理原因在于各自气体模型的态密度以及对应体系的波函数的对称性;最后阐明高温条件下极端相对论理想量子气体的热容量在量子统计方面的先进性及应用前景。

Calculation of Induced Refraction Index in Heat Capacity Slab Laser.

热容型板条激光器的感应折射率计算。

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