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喷射角对微磨料多相射流加工效果的影响
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作者 方钰 时礼平 +2 位作者 王秀英 黄巍 王晓雷 《安徽工业大学学报(自然科学版)》 CAS 2017年第1期49-54,共6页
针对绿碳化硅微磨料多相射流在加工反应烧结碳化硅表面织构时存在加工效率低、加工一致性差等问题,进行不同喷射角的绿碳化硅微磨料多相射流加工对比实验,研究4种粒径的绿碳化硅微磨料在不同喷射角下对反应烧结碳化硅表面织构的加工效果... 针对绿碳化硅微磨料多相射流在加工反应烧结碳化硅表面织构时存在加工效率低、加工一致性差等问题,进行不同喷射角的绿碳化硅微磨料多相射流加工对比实验,研究4种粒径的绿碳化硅微磨料在不同喷射角下对反应烧结碳化硅表面织构的加工效果,讨论喷射角对加工效率提高的影响机理。结果表明,适当减小喷射角可以有效提高微磨料多相射流的加工效率,并具有减少加工区域内残留凸台的效果。 展开更多
关键词 微磨料多相射流加工 表面织构 碳化硅 喷射角
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后混式射流粉碎中多相射流特性及加速分区理论研究 被引量:3
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作者 万继伟 牛争鸣 +1 位作者 廖伟丽 牛助农 《水动力学研究与进展(A辑)》 CSCD 北大核心 2012年第5期546-553,共8页
针对后混式高速水射流超细粉碎技术,采用理论分析、数值计算和粉碎实验相结合的方法对D 25和D 50两种加速管管型下的复杂流场做了分析,着重研究了多相流流动特性并提出了加速分区理论。研究结果表明:采用FLUENT软件包对多相射流流动进... 针对后混式高速水射流超细粉碎技术,采用理论分析、数值计算和粉碎实验相结合的方法对D 25和D 50两种加速管管型下的复杂流场做了分析,着重研究了多相流流动特性并提出了加速分区理论。研究结果表明:采用FLUENT软件包对多相射流流动进行模拟研究结果可靠;射流紊动、掺气和卷吸特性是多相射流相间能量传递和附加相获取一定的初始动能的主要方式;加速管管径对射流流动特性和粉碎效率影响显著,其管径越大水射流紊动越剧烈,能量耗散越快,对附加相加速不利且粉碎效率也越低;附加相加速存在明显的分区,分别为理想加速区(1 R)、内层高效加速区(1R 2 R)、外层高效加速区(2 R 3 R)和低效加速区(3 R);为了获取更高的粉碎效率,需采用较小管径加速管使颗粒尽量靠近射流理想加速区。 展开更多
关键词 多相射流 射流特性 加速分区 粉碎
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单进口后混式射流粉碎中多相流混合机理及加速特性 被引量:3
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作者 万继伟 牛争鸣 +1 位作者 廖伟丽 牛助农 《化工学报》 EI CAS CSCD 北大核心 2013年第7期2418-2427,共10页
为了深入了解后混式高速水射流超细粉碎技术,以4种加速管管径条件下的液、气、固三相混合射流为对象,利用数值计算和粉碎实验相结合的方法,研究了多相混合射流相间的混合机理和加速特性,探讨了颗粒在加速空间中的分布规律。结果表明:水... 为了深入了解后混式高速水射流超细粉碎技术,以4种加速管管径条件下的液、气、固三相混合射流为对象,利用数值计算和粉碎实验相结合的方法,研究了多相混合射流相间的混合机理和加速特性,探讨了颗粒在加速空间中的分布规律。结果表明:水射流紊动掺气和卷吸作用是混合附加相的内在机理;混合射流对颗粒的加速存在分区,越靠近势流区冲击能量越大,优化喷嘴直径与加速管管径配置,迫使颗粒靠近或进入该区域可有效提高粉碎产率。颗粒在加速管内的空间分布为外层、内层高效加速区内含量最高,越靠近势流区颗粒含量越少,气流区内颗粒含量随加速管管径增大而增大。颗粒很难进入理想加速区,大部分仍依靠内、外层高效加速区加速。在保持自由射流流动形态的情况下,粉碎产率随加速管管径增大而下降,小管径对水射流能量和颗粒运动空间均具有更好的约束集中作用。 展开更多
关键词 多相射流 混合机理 加速特性 射流粉碎
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超短半径水平井钻头喷嘴多相流规律分析 被引量:7
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作者 王智锋 管志川 李文飞 《煤炭学报》 EI CAS CSCD 北大核心 2011年第7期1098-1101,共4页
为了解决高压射流钻进超短半径水平井技术中钻孔直径与钻孔深度间的矛盾问题,在考虑液固两相相间作用力的基础上,采用连续介质假设,依据液固两相双流体模型,对超短半径水平井钻头喷嘴内液固多相射流进行了模拟研究,并将结果同单相射流... 为了解决高压射流钻进超短半径水平井技术中钻孔直径与钻孔深度间的矛盾问题,在考虑液固两相相间作用力的基础上,采用连续介质假设,依据液固两相双流体模型,对超短半径水平井钻头喷嘴内液固多相射流进行了模拟研究,并将结果同单相射流进行了对比。对比结果显示:单相与多相两种情况下液相轴线速度分布趋势基本相同,喷嘴轴线上湍流强度发展趋势一致;但当流动进入喷嘴直柱段并逐渐向出口运动时,单相射流液相轴线速度要低于多相情况下液相轴线速度,单相射流的湍流强度要高于多相射流条件下湍流强度;在喷嘴出口截面上,越靠近轴心液相速度越接近;反之,越靠近壁面液相速度差别越大,并且固相颗粒在喷嘴内壁附近存在速度超前滑移现象。 展开更多
关键词 超短半径水平井 喷嘴 多相射流 单相射流
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高速水射流粉碎中加速管对射流特性的影响及粉碎机理研究 被引量:1
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作者 万继伟 牛争鸣 牛助农 《机械科学与技术》 CSCD 北大核心 2014年第3期354-360,共7页
介绍了后混式射流粉碎技术中射流粉碎工作原理和流动特性。通过理论分析、数值计算和粉碎实验相结合的方法,基于加速管内的气、液、固多相混合介质耦合流动特性,研究了加速管管径对射流的流动特性和粉碎效率的影响,并利用加速分区理论... 介绍了后混式射流粉碎技术中射流粉碎工作原理和流动特性。通过理论分析、数值计算和粉碎实验相结合的方法,基于加速管内的气、液、固多相混合介质耦合流动特性,研究了加速管管径对射流的流动特性和粉碎效率的影响,并利用加速分区理论对各加速区域特征参数进行了定量。研究表明:加速管管径对射流流动特性和粉碎效率影响显著;加速管管径越小对射流能量的约束集中效果越好;使颗粒尽量靠近或进入射流高效加速区,可获得更高粉碎效率;管径越大粉碎效率越低。 展开更多
关键词 多相射流 射流粉碎 加速分区 粉碎机理
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Influence of Diesel Nozzle Geometry on Cavitation Using Eulerian Multi-Fluid Method 被引量:3
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作者 张军 杜青 杨延相 《Transactions of Tianjin University》 EI CAS 2010年第1期33-39,共7页
Dependent on automatically generated unstructured grids, a comprehensive computational fluid dynamics(CFD)numerical simulation is performed to analyze the influence of nozzle geometry on the internal flow characterist... Dependent on automatically generated unstructured grids, a comprehensive computational fluid dynamics(CFD)numerical simulation is performed to analyze the influence of nozzle geometry on the internal flow characteristics of a multi-hole diesel injector with the multi-phase flow model based on Eulerian multi-fluid method.The diesel components in nozzle are considered as two continuous phases, diesel liquid and diesel vapor respectively.Considering that both of them are fully coupled and interpenetrated, sepa... 展开更多
关键词 diesel injection CAVITATION nozzle geometry multi-phase flow numerical simulation
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Volumetric fraction measurement in oil-water-gas multiphase flow with dual energy gamma-ray system 被引量:3
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作者 李东晖 吴应湘 +1 位作者 李志彪 钟兴福 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2005年第12期1405-1411,共7页
Volumetric fraction distribution measurement is a constituent part of process tomography system in oil-water-gas multiphase flow. With the technological development of nuclear radial inspection, dual-energy γ-ray tec... Volumetric fraction distribution measurement is a constituent part of process tomography system in oil-water-gas multiphase flow. With the technological development of nuclear radial inspection, dual-energy γ-ray techniques make it possible to investigate the concentration of the different components on the cross-section of oil-water-gas multiphase pipe-flow. The dual-energy gamma-ray technique is based on materials attenuation coefficients measurement comprised of two radioactive isotopes of 241Am and 241Cs which have emission energies at 59.5 keV and 662 keV in this project. Nuclear instruments and data acquisition system were designed to measure the material’s attenuation dose rate and a number of static tests were conducted at the Multiphase Laboratory, Institute of Mechanics, Chinese Academy of Sciences. Three phases of oil-water-gas media were inves- tigated for their possible use to simulate different media volumetric fraction distributions in experimental vessels. Attenuation intensities were measured, and the arithmetic of linear attenuation coefficients and the equations of volumetric fractions were studied. Investigation of an unexpected measurement error from attenuation equations revealed that a modified arithmetic was involved and finally the system achieved acceptable accuracy in experimental research. 展开更多
关键词 Volumetric fraction Multiphase flow Dual-energy γ-ray Process tomography
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Study on absorption coefficients of dual-energy γ-rays in determining phase fractions of multiphase flows
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作者 李志彪 李东晖 吴应湘 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2005年第12期1416-1419,共4页
This paper discusses the principle and mathematical method to measure the phase fractions of multiphase flows by using a dual-energy gamma-ray system. The dual-energy gamma-ray device is composed of radioactive isotop... This paper discusses the principle and mathematical method to measure the phase fractions of multiphase flows by using a dual-energy gamma-ray system. The dual-energy gamma-ray device is composed of radioactive isotopes of 241Am and 137Cs with emission energies of 59.5 keV and 662 keV respectively. A rational method to calibrate the absorption coefficient was introduced in detail. The statistical error has been analyzed on the basis of the accurate absorption coefficient which enables determination phrase fractions almost independent of the flow regime. Improvement has been achieved on the measurement accuracy of phase fractions. 展开更多
关键词 Absorption coefficient γ-rays DUAL-ENERGY Phase fraction
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Breakup Structure of Two-phase Jets with Various Momentum Flux from a Porous Injector 被引量:2
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作者 Inchul Lee Dohun Kim Jaye Koo 《Journal of Thermal Science》 SCIE EI CAS CSCD 2014年第1期60-67,共8页
Spray structure and atomization characteristics were investigated through a comparison of a porous and a shear coaxial injector. The porous injector shows better atomization performance than the shear coaxial injector... Spray structure and atomization characteristics were investigated through a comparison of a porous and a shear coaxial injector. The porous injector shows better atomization performance than the shear coaxial injector. To in- crease atomization performance and mixing efficiency of two-phase jets, a coaxial porous injector which can be applicable to liquid rocket combustors was designed and tested. The characteristics of atomization and spray from a porous and a shear coaxial injector were characterized by the momentum flux ratio. The breakup mechanism of the porous injector is governed by Taylor-Culick flow and axial shear forces. Momentum of injected gas flow through a porous material which is composed of sintered metal is radically transferred to the center of the liquid column, and then liquid column is effectively broken up. Although the shapes of spray from porous and shear co- axial jets were similar for various momentum ratio, spray structures such as spray angle and droplet sizes were different. As increasing the momentum flux ratio, SMD from the porous injector showed smaller value than the shear coaxial injector 展开更多
关键词 Porous injector Shear coaxial injector Breakup mechanism Momentum flux ratio
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