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1.
本文分析了液滴冲击固体表面的流体动力学过程,建立了适用于高速撞击条件的非线性激波理论模型。模型可以计算所有撞击参数,并能够考虑固体的可压缩性。模型采用无量纲形式,为工程计算提供了简明的方法,具有很大的通用性和实用价值。  相似文献   

2.
球形弹丸正撞击薄板防护屏碎片云特性研究   总被引:3,自引:0,他引:3  
以质量、动量和能量守恒为基础,结合平面激波理论和热力学理论,对球形铝弹丸正撞击薄板铝防护屏形成的碎片云特性进行了建模,模型计算结果与实验结果吻合较好。利用该模型对多种工况下碎片云特性进行了计算,结果表明:(1)碎片云质心速度和膨胀速度随撞击速度和弹丸直径的增加而增大,随防护屏厚度增大而减小;膨胀半角随撞击速度和防护屏厚度的增大而增大,随弹丸直径的增大而减小;(2)速度和膨胀半角变化曲线具有相似性;(3)对于给定的弹丸和防护屏材料,碎片云中受到激波加载部分的材料各相态质量分数只与弹丸撞击速度有关。这些规律与实验规律吻合。  相似文献   

3.
本文联立求解可压缩平面液体撞击弹性固体表面时液体激波面及液固相界面上的物理过程控制方程组,导出了激波速度、撞击压力和固体表面变形速度的计算公式.导出的公式中包括了表征液体可压缩性的撞击马赫数M_0和表征固体弹性的液固声阻抗比Γ.通过计算液体撞击PMMA,钙钠玻璃、ZnSe和1Cr13时的撞击压力,本文具体分析了M_0和Γ对撞击压力产生的综合影响。  相似文献   

4.
高压短脉冲激波的传播及衰减   总被引:7,自引:0,他引:7  
袁钢  周光泉 《爆炸与冲击》1992,12(4):307-312
本文给出一个简单的分析模型,以此研究高压短脉冲激波的传播和衰减,并给出了一个激光加载下激波传播的算例。计算结果和实验结果误差在10%左右,这一方法对于短脉冲激波传播的近似分析,试验前的预估,以及实验的设计等将是十分有用的。文中还对平板撞击和高能量束在脉冲加载过程中的异同作了讨论。  相似文献   

5.
基于双流体模型,采用跟踪法处理火焰内边界,TVD格式计算气相激波,MacCo-mack格式计算颗粒相流场,对两相可燃介质中火焰诱导激波现象进行了理论分析与实验模拟,研究了颗粒相参数对火焰诱导激波现象的影响。  相似文献   

6.
由于泡沫铝合金具有可压缩性,经典的Taylor理论模型已不适用于描述该类材料。在适当假设的基础上建立了泡沫铝合金Taylor撞击实验分析的理论模型,并利用Taylor撞击实验数据验证了该模型的有效性,研究了泡沫铝合金的动态力学特性。实验结果表明,所考察的泡沫铝合金的应变率敏感性不强。  相似文献   

7.
为了研究钇铝石榴石(yttrium aluminum garnet, YAG)透明陶瓷及玻璃材料的抗弹性能和冲击破坏机制,开展了12.7 mm穿甲燃烧弹侵彻YAG透明陶瓷/玻璃的剩余侵彻深度实验研究。基于变形侵彻和刚性侵彻机制建立理论模型分析子弹撞击YAG透明陶瓷和玻璃的作用过程,并利用空腔膨胀模型确定了剩余弹体对2024T351航空铝的剩余侵彻深度。实验结果表明:YAG透明陶瓷对子弹有较强的破碎作用,其防护能力显著高于玻璃材料。理论模型计算得到的剩余弹体质量和侵彻深度结果与实验结果吻合较好,可见本文建立的理论模型可用于评估不同面板材料的抗弹性能。  相似文献   

8.
采用高精度的多介质Ghost-Fluid方法,对马赫数为1.15的激波分别作用于单模大扰动Air-CO2、Air-SF6、Air-N2和Air-He界面后的Richtmyer-Meshkov不稳定现象进行了数值研究,得到了不同时刻扰动界面的演化图像,给出了流场的密度等值线和密度纹影图,同实验结果吻合较好。给出了界面的扰动增长随时间变化的情况,并同理论模型进行了对比。对激波从轻气体进入重气体的情况,扰动增长可采用Sadot模型描述线性阶段和早期非线性阶段;对于弱激波同密度接近的气体界面的相互作用,线性阶段时间较长,可用线性模型描述。  相似文献   

9.
界面击溃/驻留效应可以有效提高装甲陶瓷的抗侵彻能力。为研究长杆弹撞击装甲陶瓷界面击溃及侵彻特性,开展了长杆弹撞击装甲陶瓷实验研究。同时,基于裂纹扩展理论建立了考虑界面击溃/驻留效应的长杆弹侵彻装甲陶瓷计算模型,以定量描述界面击溃/驻留效应对装甲陶瓷抗侵彻性能的影响。不同弹靶条件下的界面击溃/侵彻转变速度、界面驻留时间、侵彻速度与侵彻深度的理论计算值与实验结果具有较好的一致性,表明计算模型可靠。在此基础上,分析了弹体及陶瓷材料对界面击溃/驻留及侵彻过程的影响规律。研究结果表明:随着弹体撞击速度的提高,陶瓷表面由界面击溃向侵彻转变。考虑界面击溃/驻留效应的长杆弹侵彻装甲陶瓷理论模型,可以较好地反映不同弹体撞击速度对应的弹靶作用模式。弹体材料的屈服强度和密度越高,界面驻留时间越短,弹体侵彻靶体的能力越强;陶瓷的屈服强度越高,界面击溃/驻留效应越显著,靶体的抗侵彻能力越强。考虑界面击溃/驻留效应的长杆弹侵彻装甲陶瓷理论模型揭示了部分界面击溃作用机理,可为陶瓷复合靶的设计提供参考。  相似文献   

10.
通过建立杆弹塑性碰撞的动态子结构模型,推导弹塑性撞击子结构动力学控制方程,采用固定界阶模态综合法和无条件稳定积分法(Newmark隐式积分法)对动力学方程进行求解,成功地将动态子结构方法运用于柔性杆的弹塑性撞击问题。与有限元方法的计算结果和理论解结果的对比表明,动态子结构方法可以应用于柔性杆的弹塑性撞击问题的研究,它能...  相似文献   

11.
ABSTRACT

The coupled level set and volume of fluid method is applied to the numerical study on the successive impact of double droplets on a super-hydrophobic tube. The impact velocity varies from 0.25 to 2?m/s. These impact processes present spread, retract, rebound, breakup and splash. The out-of-phase impact takes place with the impact velocity from 0.25 to 1.25?m/s, while the in-phase impact takes place with the impact velocity from 1.44 to 2?m/s. With the impact velocity larger than 1.25?m/s, the liquid crown presents and deforms after the trailing droplet impact, then it would gather at the film edge, rebound or break up. When impact velocities range from 1.44 to 1.5?m/s, the finger liquid film presents before the liquid crown appearing. The finger head breaks with the impact velocity of 1.5?m/s during the leading droplet spreading. The zigzag liquid film becomes more obvious for larger velocities.  相似文献   

12.
We present a multiscale approach to simulate the impact of a solid object on a liquid surface: upon impact a thin liquid sheet is thrown upwards all around the rim of the impactor while in its wake a large surface cavity forms. Under the influence of hydrostatic pressure the cavity immediately starts to collapse and eventually closes in a single point from which a thin, needle‐like jet is ejected. The existing numerical treatments of liquid impact either consider the surrounding air as an incompressible fluid or neglect air effects altogether. In contrast, our approach couples a boundary‐integral method for the liquid with a Roe scheme for the gas domain and is thus able to handle the fully compressible gas stream that is pushed out of the collapsing impact cavity. Taking into account that air compressibility is crucial, since, as we show in this work, the impact crater collapses so violently that the air flow through the cavity neck attains supersonic velocities already at cavity diameters larger than 1 mm. Our computational results are validated through corresponding experimental data. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

13.
The current work focuses on the initial basic stage of filtering droplets. We study the factors that have an effect upon the amount of liquid trapped on a dry smooth horizontal wire. These factors include the impact velocity, impact eccentricity, initial drop size, wire thickness, and liquid thermodynamic properties. Based on elementary analysis of some simple experiments, we propose a non-dimensional criterion for the critical eccentricity for which the maximum amount of liquid is trapped by the wire.  相似文献   

14.
The influence of the thickness of a covering liquid layer and its viscosity as well as the impact velocity on energy loss during the normal impact on a flat steel wall of spherical granules with a liquid layer was studied. Free-fall experiments were performed to obtain the restitution coefficient of elastic-plastic γ- Al2O3 granules by impact on the liquid layer, using aqueous solutions of hydroxypropyl methylcellulose with different concentrations for variation of viscosity (1-300 mPa s), In the presence of a liquid layer, increase of liquid viscosity decreases the restitution coefficient and the minimum thickness of the liquid layer at which the granule sticks to the wall. The measured restitution coefficients were compared with experiments performed without liquid layer. In contrast to the dry restitution coefficient, due to viscous losses at lower impact velocity, higher energy dissipation was obtained, A rational explanation for the effects obtained was given by results of numerically solved force and energy balances for a granule impact on a liquid layer on the wall. The model takes into account forces acting on the granule including viscous, surface tension, capillary, contact, drag, buoyancy and gravitational forces. Good agreement between simulations and experiments has been achieved.  相似文献   

15.
为探究部分充液多胞元结构的抗冲击防护性能,结合充液内凹胞元的落锤冲击试验,建立了充液内凹胞元、部分充液内凹多胞元结构的冲击动态特性二维FEM数值分析,计算得到了部分充液内凹多胞元结构的变形破坏模式,讨论了不同冲击速度下部分充液内凹多胞元结构的动力学响应特性。结果表明:在充液胞元破损后,水介质会流入相邻未充液胞元,形成二次鼓胀吸能效应,从而有效提高结构壁面的变形吸能水平;结构中的充液区域和未充液区域的变形破坏模式分别为鼓胀拉伸和屈曲弯折;随着冲击速度的提高,结构的单位体积应变能以及对初始冲击载荷的削弱作用均得到增强。横向充液方式可以等效为变刚度弹簧的串联布置,该方式仅影响结构的局部刚度,纵向充液方式可以等效为多层变刚度弹簧的并联布置,该方式会影响结构的整体刚度;充液区域与未充液区域的等效刚度呈动态变化,结构变形模式由各区域实时的等效刚度决定。当载荷冲击速度较高时,横向和纵向部分充液内凹多胞元结构对初始冲击载荷的削弱能力均优于未充液内凹多胞元结构。  相似文献   

16.
The process of single liquid drop impact on thin liquid surface is numerically simulated with moving particle semi‐implicit method. The mathematical model involves gravity, viscosity and surface tension. The model is validated by the simulation of the experimental cases. It is found that the dynamic processes after impact are sensitive to the liquid pool depth and the initial drop velocity. In the cases that the initial drop velocity is low, the drop will be merged with the liquid pool and no big splash is seen. If the initial drop velocity is high enough, the dynamic process depends on the liquid depth. If the liquid film is very thin, a bowl‐shaped thin crown is formed immediately after the impact. The total crown subsequently expands outward and breaks into many tiny droplets. When the thickness of the liquid film increases, the direction of the liquid crown becomes normal to the surface and the crown propagates outward. It is also found that the radius of the crown is described by a square function of time: rC = [c(t ? t0)]0.5. When the liquid film is thick enough, a crown and a deep cavity inside it are formed shortly after the impact. The bottom of the cavity is initially oblate and then the base grows downward to form a sharp corner and subsequently the corner moves downward. Copyright © 2004 John Wiley & Sons, Ltd.  相似文献   

17.
High-speed liquid jets have been applied to many fields of engineering, science and medicine. It is therefore of benefit to all these areas to investigate their characteristics by modern and inexpensive methods using a computational fluid dynamics (CFD) technique. Previously, high-speed liquid jets have been studied experimentally using a momentum exchange method, called the “impact driven method (IDM)”, by which the impact of a high-velocity projectile on the liquid package contained in the nozzle cavity produced the jet. The shock pulse reflections in the cavity caused by the impact then drove a multiple pulsed jet from the nozzle exit. In this study, a two-fluid simulation consisting of liquid and air can be successfully calculated by using a two-phase flow mixture model and a moving mesh for the projectile motion. The CFD results show good agreement to the results of previous experimental studies, both quantitatively and qualitatively. For the first time, the wave propagation within the liquid in the nozzle has been captured and analyzed, thereby demonstrating the dynamic characteristics of multiple pulsed high-speed liquid jets initiated by the IDM. This provides a breakthrough in the simulation of the supersonic injection of a liquid into air by using a well-known and user-friendly CFD software. It is useful fundamental knowledge for future studies of high-speed injection with applications in all its related fields.  相似文献   

18.
A. Korobkin 《Shock Waves》1995,4(4):209-216
The evolution of a weak, nearly plane shock wave produced by the impact on the plane boundary of a compressible liquid is considered. At the initial moment the liquid is at rest and occupies the lower half-plane. Then the points of its boundary get instantly velocities directed into the liquid domain. This leads to the formation of a shock wave the intensity of which is non-uniform due to a non-uniform distribution of the impact velocities. Initially the shock wave is plane but then it bends due to the non-linear effects and can later be focused. To analyze the liquid flow, the method of matched asymptotic expansions is used. For finite times the flow and the evolution of the shock wave are described within the framework of the acoustic approximation. For large times the flow becomes non-linear, and the form of the shock front depends essentially on the characteristics of the liquid flow behind it. If the non-uniformity of the impact velocity distribution is slight then the focusing of the shock wave is shown not to occur. The influence of viscosity of the liquid on the structure of its motion is discussed.  相似文献   

19.
In this paper, the whole dynamic process of a single drop impact onto a thin liquid surface up to the consequent formation of a thin crown is numerically studied using the smoothed particle hydrodynamics (SPH) method. Especially, the gravity, artificial viscosity, and surface tension are introduced into the model. The obtained SPH numerical results are compared with experimental results. The numerical model of the SPH method is valid for simulating the dynamic process of a single drop impact onto a liquid surface. Meanwhile, it is found that the whole dynamic process mainly depends on the depth of the liquid pool and the initial velocity of the droplet.  相似文献   

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