振动与冲击
振動與遲擊
진동여충격
JOURNAL OF VIBRATION AND SHOCK
2015年
16期
19-24,47
,共7页
林晓东%卢义玉%汤积仁%章文峰%程玉刚
林曉東%盧義玉%湯積仁%章文峰%程玉剛
림효동%로의옥%탕적인%장문봉%정옥강
磨料水射流%磨料%加速机理%SPH-FEM耦合%数值模拟
磨料水射流%磨料%加速機理%SPH-FEM耦閤%數值模擬
마료수사류%마료%가속궤리%SPH-FEM우합%수치모의
abrasive water jet%abrasive%acceleration mechanism%SPH-FEMintegrated algorithm%numerical simulation
针对前混合式磨料射流磨料加速过程运动复杂、实验研究困难及有限元处理超大变形存在网格畸变等问题,基于光滑粒子(SPH)耦合有限元(FEM)方法模拟前混合式磨料射流喷嘴不同阶段磨料粒子加速特征及磨料射流破碎靶体全过程。其中水介质用 SPH 建模,磨料粒子、喷嘴、靶体等用 FEM建模。揭示磨料粒子群在喷嘴中的运动轨迹及喷嘴结构对磨料粒子加速影响规律。研究表明,磨料粒子进入喷嘴收敛段之前已基本达到与水介质相同速度,进入收敛段后因与水介质存在速度差使其获得加速,但与水介质速度差逐渐增大;进入直线段后水介质与磨料粒子一直加速,且水介质速度在直线段末端趋于稳定,在离开喷嘴的短距离范围内水介质速度趋于稳定,磨料粒子在核心段水流作用下继续加速,最终趋于稳定;磨料粒子群在喷嘴收敛段相互碰撞运动剧烈,进入直线段后相对平缓;流量一定下磨料粒子速度随喷嘴收敛段延长而增加,但增加有限;随直线段延长而增加,增加显著。数值模拟结果与相关文献吻合较好。
針對前混閤式磨料射流磨料加速過程運動複雜、實驗研究睏難及有限元處理超大變形存在網格畸變等問題,基于光滑粒子(SPH)耦閤有限元(FEM)方法模擬前混閤式磨料射流噴嘴不同階段磨料粒子加速特徵及磨料射流破碎靶體全過程。其中水介質用 SPH 建模,磨料粒子、噴嘴、靶體等用 FEM建模。揭示磨料粒子群在噴嘴中的運動軌跡及噴嘴結構對磨料粒子加速影響規律。研究錶明,磨料粒子進入噴嘴收斂段之前已基本達到與水介質相同速度,進入收斂段後因與水介質存在速度差使其穫得加速,但與水介質速度差逐漸增大;進入直線段後水介質與磨料粒子一直加速,且水介質速度在直線段末耑趨于穩定,在離開噴嘴的短距離範圍內水介質速度趨于穩定,磨料粒子在覈心段水流作用下繼續加速,最終趨于穩定;磨料粒子群在噴嘴收斂段相互踫撞運動劇烈,進入直線段後相對平緩;流量一定下磨料粒子速度隨噴嘴收斂段延長而增加,但增加有限;隨直線段延長而增加,增加顯著。數值模擬結果與相關文獻吻閤較好。
침대전혼합식마료사류마료가속과정운동복잡、실험연구곤난급유한원처리초대변형존재망격기변등문제,기우광활입자(SPH)우합유한원(FEM)방법모의전혼합식마료사류분취불동계단마료입자가속특정급마료사류파쇄파체전과정。기중수개질용 SPH 건모,마료입자、분취、파체등용 FEM건모。게시마료입자군재분취중적운동궤적급분취결구대마료입자가속영향규률。연구표명,마료입자진입분취수렴단지전이기본체도여수개질상동속도,진입수렴단후인여수개질존재속도차사기획득가속,단여수개질속도차축점증대;진입직선단후수개질여마료입자일직가속,차수개질속도재직선단말단추우은정,재리개분취적단거리범위내수개질속도추우은정,마료입자재핵심단수류작용하계속가속,최종추우은정;마료입자군재분취수렴단상호팽당운동극렬,진입직선단후상대평완;류량일정하마료입자속도수분취수렴단연장이증가,단증가유한;수직선단연장이증가,증가현저。수치모의결과여상관문헌문합교호。
Considering the difficulties in experimental research on abrasive particles acceleration process in pre-mixed abrasive water jet(AWJ)and the mesh distortion problem in dealing with large structural deformation with finite element method (FEM),the abrasive particles acceleration characteristics at different stages of nozzle operation and the process of target body breaking by AWJ were simulated based on an integrated algorithm of smoothed particle hydrodynamics (SPH)and FEM,in which the water was simulated by SPH,and the abrasive particles,the nozzle,the target body and so on were simulated by FEM.The abrasive particle swarm trajectories in the nozzle and the impact of nozzle structure on abrasive particles acceleration were analyzed.The results show that,the erosion pit section of the target body is "V"shaped and continues to deepen under the AWJ action.The abrasive particles have substantially reached the same speed as the water before entering the nozzle converging section.After the abrasive particles enter the nozzle convergent section,they are accelerated.However,the velocity difference between the water and the abrasive particles gradually widens.After entering the straight segment,the water and the abrasive particles are accelerated all the time, and the water velocity approaches to be steady at the end of the line segment.Within a short distance from the nozzle,the water velocity stabilizes,and the abrasive particles in the core segment of water flow continue to accelerate and finally approach to be steady.Abrasive particles collide one another violently in the nozzle convergent section,and their movement is relatively flat after entering the nozzle straight segment.Under constant flow,the abrasive particle velocity increases with the extension of the nozzle convergence section,but the velocity increases slightly.The abrasive particle velocity increases with the extension of the straight segment,but the velocity increases significantly.On the whole,the results are basically consistent with the results in relevant literatures.