首页|期刊导航|爆炸与冲击|基于等熵曲线与Hugoniot曲线下的一种防奇点Mie-Grüneisen多介质混合模型

基于等熵曲线与Hugoniot曲线下的一种防奇点Mie-Grüneisen多介质混合模型OA

An anti-singularity Mie-Grüneisen mixture model based on isentropic and Hugoniot curves

中文摘要英文摘要

Mie-Grüneisen 多介质混合模型可以很方便地应用于 Mie-Grüneisen 状态方程下的多介质问题.在 Mie-Grüneisen 状态方程中,等熵曲线与 Hugoniot 绝热曲线是两种典型的参考状态曲线.然而,这两类曲线存在奇点,利用体积分数进行界面处理时会造成困难,其中的难点在于体积分数模型会因界面的扩散形态而产生零碎的流体体积.这些零碎的体积使得部分等熵曲线中出现声速在界面附近不合理的偏高,并在收敛性条件下需要耗费更多的时间步来计算.另一方面,奇点会使得 Hugoniot 参考状态曲线下声速出现负值,阻断计算的进行.为了避免产生零碎的体积,这里将质量分数代替体积分数,并将流场中占一定比例的介质密度的倒数定义为比容.重定义后的比容,可以使得相对体积不小于流场整体的相对体积.这样,声速在界面附近形成一个低谷形状并避免出现峰值.另外,Mie-Grüneisen 混合模型中部分方程含有参考状态参数的导数项,这些导数项在界面附近被定义成加权平均,但如果用质量分数直接做加权平均容易出现负值.为了保证界面附近不出现负值,对界面处的参考状态进行了优化.数值算例显示,质量分数虽然对计算结果的影响十分微弱,但是可以在等熵状态曲线下保证声速稳定,从而使用比体积分数更少的时间步.同时,质量分数还能在 Hugoniot 曲线下很好地处理声速的负值.这样可以保证计算既平稳又准确.

The Mie-Grüneisen mixture model is conveniently used in the multi-component problem with Mie-Grüneisen EOS(equation of states).In the Mie-Grüneisen EOS,the isentropic and Hugoniot curves are two typical reference states curves.However,the curves of these two reference states contain singularity points and cause difficulty when the interface is treated by volume fraction,which is accustomed to being used as a color function in traditional models.The difficulty lies in that the volume fraction model produces fragments of fluid volumes near the interface due to its diffused style.Meanwhile,these volume fragments may encounter the singularity points and make the sound velocity abnormally high at the interface in some isentropic reference curves.On the other side,the singularity points may cause the sound velocity to be negative for some Hugoniot reference states and interrupt the calculation.To avoid volume fragments near the interface area,the volume fraction is replaced by mass fraction,in which the relative volume is defined by the reciprocal of proportional density of fluid component.Based on this new definition,the reconstructed relative volume is no less than that of the fluids mixture.Consequently,the sound velocity forms a trough shape at the interface and does not cause high peak value.Moreover,some equations in Mie-Grüneisen mixture model contain the derivative terms of reference states parameters.When these items are defined as weighted average mixture at the interface,they often become negative if weighted average of mass fraction is directly used.To prevent the negative value at the interface,the reference states are optimized at the interface.Numerical examples show that although the mass fraction has negligible effect on the improvement of the accuracy of results,it makes the sound velocity steady under the isentropic reference states of medium,and therefore,less time steps are needed than those used for the volume fraction model.Furthermore,the mass fraction can be used to correct the negative sound velocity in Hugoniot reference states to ensure the smooth and accurate calculations.

吴宗铎;严谨;庞建华;孙一方;张大朋

广东海洋大学船舶与海运学院,广东 湛江 524088广东海洋大学船舶与海运学院,广东 湛江 524088广东海洋大学深圳研究院智能海洋工程中心,广东 深圳 518055广东海洋大学船舶与海运学院,广东 湛江 524088广东海洋大学船舶与海运学院,广东 湛江 524088

数理科学

Mie-Grüneisen混合模型Mie-Grüneisen状态方程防奇点参考状态

Mie-Grüneisen mixture modelMie-Grüneisen equation of stateanti-singularityreference state

《爆炸与冲击》 2026 (8)

33-45,13

国家自然科学基金(11702066)广东省基础与应用基础研究基金(2024A1515012815)湛江市海洋青年人才创新项目(2021E5007)

10.11883/bzycj-2025-0102

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