首页> 外文期刊>Physical chemistry chemical physics: PCCP >The evolution of multicomponent systems at high pressures Part II. The Alder-Wainwright, high-density, gas-solid phase transition of the hard-sphere fluid
【24h】

The evolution of multicomponent systems at high pressures Part II. The Alder-Wainwright, high-density, gas-solid phase transition of the hard-sphere fluid

机译:高压下多组分系统的演变第二部分。硬球流体的Alder-Wainwright高密度气固相变

获取原文
获取原文并翻译 | 示例
           

摘要

The thermodynamic stability of the hard-sphere gas has been examined, using the formalism of scaled particle theory (SPT), and by applying explicitly the conditions of stability required by both the second and third laws of thermodynamics. The temperature and volume limits to the validity of SPT have also been examined. It is demonstrated that SPT predicts absolute limits to the stability of the fluid phase of the hard-sphere system, at all temperatures within its range of validity. Because SPT describes fluids equally well as dilute gases or dense liquids, the limits set upon the system stability by SPT must represent limits for the existence of the fluid phase and transition to the solid. The reduced density at the stability limits determined by SPT is shown to agree exactly with those of that estimated for the Alder-Wainwright, high-density gas-solid phase transition in a hard-sphere system, at a specific temperature, and closely over a range of more than 1000 K. The temperature dependence of the gas-solid phase stability limits has been examined over the range 0.01 K-10 000 K. It is further shown that SPT describes correctly the variation of the entropy of a hard-core fluid at low temperatures, requiring its entropy to vanish as T -> 0 by undergoing a gas-solid phase transition at finite temperature and all pressures.
机译:已经使用定标粒子理论(SPT)的形式主义,并通过明确应用热力学第二定律和第三定律要求的稳定性条件,对硬球气体的热力学稳定性进行了研究。还检查了温度和体积对SPT有效性的限制。结果表明,SPT预测了在有效范围内的所有温度下,硬球系统液相稳定性的绝对极限。由于SPT对流体的描述与稀释气体或稠密液体一样好,因此SPT对系统稳定性设置的限制必须代表对流体相的存在和向固体过渡的限制。在SPT确定的稳定极限下降低的密度显示出与在硬球系统中,在特定温度下,并且在一定温度范围内对Alder-Wainwright的高密度气固相变所估计的密度完全一致。超过1000 K的范围。已经在0.01 K到10 000 K的范围内检查了气固相稳定性极限的温度依赖性。进一步表明SPT可以正确描述硬核流体的熵变在低温下,通过在有限温度和所有压力下进行气固相变,要求其熵随着T-> 0消失。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号