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Highly stable Li^(+) deposition guided by a lithiophilic microchannel
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作者 Fuliang Xu Shuling Fan +3 位作者 Zhongcheng Sun Yang Peng Qikai Wang Fangmin Ye 《Materials Reports(Energy)》 2025年第1期70-76,共7页
The repeated volume variation of lithium(Li)metal anode(LMA)upon Li^(+) plating/stripping,the volatile interface between Li and the electrolyte,and the incessant growth of Li dendrites on Li metal surface have severel... The repeated volume variation of lithium(Li)metal anode(LMA)upon Li^(+) plating/stripping,the volatile interface between Li and the electrolyte,and the incessant growth of Li dendrites on Li metal surface have severely hindered the practical application of Li in constructing high energy-density Li metal batteries(LMBs).Herein,a novel Li host(3D ZnO/CNTs/Cu)featuring ordered microchannels and lithiophilic ZnO species on the inner walls of the microchannels is introduced,which induces the uniform Li^(+) deposition into the microchannels and finally suppresses the formation of Li dendrites.The stable structure of the fabricated 3D Li host can adapt to volume variations upon Li^(+) plating/stripping,thereby enhancing electrochemical performances.Symmetric cells with the 3D ZnO/CNTs/Cu@Li anode exhibited long cycle stability at areal current densities of 0.5 and 2 mA cm^(-2);Full cells maintained a reversible discharge capacity of 105 mAh g^(-1) after 400 cycles at 1C with a capacity retention of 70%.Meanwhile,ex-situ SEM observations proved that the 3D ZnO/CNTs/Cu@Li anode can keep the structural integrity during charging/discharging(or plating/stripping).This work suggested that lithiophilic nanochannels in the Li host can significantly improve the electrochemical performance and safety of LMBs. 展开更多
关键词 Lithium metal battery Uniform Li^(+)deposition 3-Dimensional Li host Lithiophilic microchannel
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A comprehensive review on microchannel heat sinks for electronics cooling 被引量:1
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作者 Zhi-Qiang Yu Mo-Tong Li Bing-Yang Cao 《International Journal of Extreme Manufacturing》 SCIE EI CAS CSCD 2024年第2期133-162,共30页
The heat generation of electronic devices is increasing dramatically,which causes a serious bottleneck in the thermal management of electronics,and overheating will result in performance deterioration and even device ... The heat generation of electronic devices is increasing dramatically,which causes a serious bottleneck in the thermal management of electronics,and overheating will result in performance deterioration and even device damage.With the development of micro-machining technologies,the microchannel heat sink(MCHS)has become one of the best ways to remove the considerable amount of heat generated by high-power electronics.It has the advantages of large specific surface area,small size,coolant saving and high heat transfer coefficient.This paper comprehensively takes an overview of the research progress in MCHSs and generalizes the hotspots and bottlenecks of this area.The heat transfer mechanisms and performances of different channel structures,coolants,channel materials and some other influencing factors are reviewed.Additionally,this paper classifies the heat transfer enhancement technology and reviews the related studies on both the single-phase and phase-change flow and heat transfer.The comprehensive review is expected to provide a theoretical reference and technical guidance for further research and application of MCHSs in the future. 展开更多
关键词 microchannel heat sink thermal management of electronics microscale heat transfer heat transfer enhancement
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Molecular dynamics simulation of the flow mechanism of shear-thinning fluids in a microchannel
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作者 杨刚 郑庭 +1 位作者 程启昊 张会臣 《Chinese Physics B》 SCIE EI CAS CSCD 2024年第4期516-525,共10页
Shear-thinning fluids have been widely used in microfluidic systems,but their internal flow mechanism is still unclear.Therefore,in this paper,molecular dynamics simulations are used to study the laminar flow of shear... Shear-thinning fluids have been widely used in microfluidic systems,but their internal flow mechanism is still unclear.Therefore,in this paper,molecular dynamics simulations are used to study the laminar flow of shear-thinning fluid in a microchannel.We validated the feasibility of our simulation method by evaluating the mean square displacement and Reynolds number of the solution layers.The results show that the change rule of the fluid system's velocity profile and interaction energy can reflect the shear-thinning characteristics of the fluids.The velocity profile resembles a top-hat shape,intensifying as the fluid's power law index decreases.The interaction energy between the wall and the fluid decreases gradually with increasing velocity,and a high concentration of non-Newtonian fluid reaches a plateau sooner.Moreover,the velocity profile of the fluid is related to the molecule number density distribution and their values are inversely proportional.By analyzing the radial distribution function,we found that the hydrogen bonds between solute and water molecules weaken with the increase in velocity.This observation offers an explanation for the shear-thinning phenomenon of the non-Newtonian flow from a micro perspective. 展开更多
关键词 molecular dynamics simulation non-Newtonian fluid microchannel SHEAR-THINNING
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Microchannel reactive distillation for the conversion of aqueous ethanol to ethylene
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作者 Johnny Saavedra-Lopez Stephen D.Davidson +6 位作者 Paul H.Humble Dan R.Bottenus Vanessa Lebarbier Dagle Yuan Jiang Charles J.Freeman Ward E.Te Grotenhuis Robert A.Dagle 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第11期481-493,共13页
Here we demonstrate the proof-of-concept for microchannel reactive distillation for alcohol-to-jet application:combining ethanol/water separation and ethanol dehydration in one unit operation.Ethanol is first distille... Here we demonstrate the proof-of-concept for microchannel reactive distillation for alcohol-to-jet application:combining ethanol/water separation and ethanol dehydration in one unit operation.Ethanol is first distilled into the vapor phase,converted to ethylene and water,and then the water co-product is condensed to shift the reaction equilibrium.Process intensification is achieved through rapid mass transfer-ethanol stripping from thin wicks using novel microchannel architectures-leading to lower residence time and improved separation efficiency.Energy savings are realized with integration of unit operations.For example,heat of condensing water can offset vaporizing ethanol.Furthermore,the dehydration reaction equilibrium shifts towards completion by immediate removal of the water byproduct upon formation while maintaining aqueous feedstock in the condensed phase.For aqueous ethanol feedstock(40%_w),71% ethanol conversion with 91% selectivity to ethylene was demonstrated at 220℃,600psig,and 0.28 h^(-1) wt hour space velocity.2.7 stages of separation were also demonstrated,under these conditions,using a device length of 8.3 cm.This provides a height equivalent of a theoretical plate(HETP),a measure of separation efficiency,of ^(3).3 cm.By comparison,conventional distillation packing provides an HETP of ^(3)0 cm.Thus,9,1 × reduction in HETP was demonstrated over conventional technology,providing a means for significant energy savings and an example of process intensification.Finally,preliminary process economic analysis indicates that by using microchannel reactive distillation technology,the operating and capital costs for the ethanol separation and dehydration portion of an envisioned alcoholto-jet process could be reduced by at least 35% and 55%,respectively,relative to the incumbent technology,provided future improvements to microchannel reactive distillation design and operability are made. 展开更多
关键词 Catalytic distillation Ethanol dehydration Process intensification microchannel Alcohol-to-jet process
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Overall Assessment of Heat Transfer for a Rarefied Flow in a Microchannel with Obstacles Using Lattice Boltzmann Method
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作者 Siham Hammid Khatir Naima +7 位作者 Omolayo M.Ikumapayi Cheikh Kezrane Abdelkrim Liazid Jihad Asad Mokdad Hayawi Rahman Farhan Lafta Rashid Naseer Ali Hussien Younes Menni 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第1期273-299,共27页
The objective of this investigation is to assess the effect of obstacles on numerical heat transfer and fluid flow momentum in a rectangular microchannel(MC).Two distinct configurations were studied:one without obstac... The objective of this investigation is to assess the effect of obstacles on numerical heat transfer and fluid flow momentum in a rectangular microchannel(MC).Two distinct configurations were studied:one without obstacles and the other with alternating obstacles placed on the upper and lower walls.The research utilized the thermal lattice Boltzmann method(LBM),which solves the energy and momentum equations of fluids with the BGK approximation,implemented in a Python coding environment.Temperature jump and slip velocity conditions were utilized in the simulation for the MC and extended to all obstacle boundaries.The study aims to analyze the rarefaction effect,with Knudsen numbers(Kn)of 0.012,0.02,and 0.05.The outcomes indicate that rarefaction has a significant impact on the velocity and temperature distribution.The presence of nine obstacles led to slower fluid movement inside the microchannel MC,resulting in faster cooling at the outlet.In MCs with obstacles,the rarefaction effect plays a crucial role in decreasing the Nusselt number(Nu)and skin friction coefficient(Cf).Furthermore,the study demonstrated that the obstacles played a crucial role in boosting fluid flow and heat transfer in the MC.The findings suggest that the examined configurations could have potential applications as cooling technologies in micro-electro-mechanical systems and microdevice applications. 展开更多
关键词 MICROFLUID rarefied flow LBM microchannel Knudsen number numerical simulation
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Effect of boundary slip on electroosmotic flow in a curved rectangular microchannel
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作者 刘勇波 《Chinese Physics B》 SCIE EI CAS CSCD 2024年第7期303-309,共7页
The aim of this study is to numerically investigate the impact of boundary slip on electroosmotic flow(EOF) in curved rectangular microchannels. Navier slip boundary conditions were employed at the curved microchannel... The aim of this study is to numerically investigate the impact of boundary slip on electroosmotic flow(EOF) in curved rectangular microchannels. Navier slip boundary conditions were employed at the curved microchannel walls. The electric potential distribution was governed by the Poisson–Boltzmann equation, whereas the velocity distribution was determined by the Navier–Stokes equation. The finite-difference method was employed to solve these two equations. The detailed discussion focuses on the impact of the curvature ratio, electrokinetic width, aspect ratio and slip length on the velocity. The results indicate that the present problem is strongly dependent on these parameters. The results demonstrate that by varying the dimensionless slip length from 0.001 to 0.01 while maintaining a curvature ratio of 0.5 there is a twofold increase in the maximum velocity. Moreover, this increase becomes more pronounced at higher curvature ratios. In addition, the velocity difference between the inner and outer radial regions increases with increasing slip length. Therefore, the incorporation of the slip boundary condition results in an augmented velocity and a more non-uniform velocity distribution. The findings presented here offer valuable insights into the design and optimization of EOF performance in curved hydrophobic microchannels featuring rectangular cross-sections. 展开更多
关键词 electroosmotic flow(EOF) curved rectangular microchannels slip boundary conditions
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Numerical Simulation of Droplet Generation in Coaxial Microchannels
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作者 Zongjun Yin Rong Su Hui Xu 《Fluid Dynamics & Materials Processing》 EI 2024年第3期487-504,共18页
In this study,numerical simulations of the pinching-off phenomena displayed by the dispersed phase in a continuous phase have been conducted using COMSOL Multiphysics(level-set method).Four flow patterns,namely“drop ... In this study,numerical simulations of the pinching-off phenomena displayed by the dispersed phase in a continuous phase have been conducted using COMSOL Multiphysics(level-set method).Four flow patterns,namely“drop flow”,“jet flow”,“squeeze flow”,and“co-flow”,have been obtained for different flow velocity ratios,channel diameter ratios,density ratios,viscosity ratios,and surface tension.The flow pattern map of two-phase flow in coaxial microchannels has been obtained accordingly,and the associated droplet generation process has been critically discussed considering the related frequency,diameter,and pinch-off length.In particular,it is shown that the larger the flow velocity ratio,the smaller the diameter of generated droplets and the shorter the pinch-off length.The pinch-off length of a droplet is influenced by the channel diameter ratio and density ratio.The changes in viscosity ratio have a negligible influence on the droplet generation pinching frequency.With an increase in surface tension,the frequency of generation and pinch-off length of droplets decrease,but for small surface tension the generation diameter of droplet increases. 展开更多
关键词 Droplet generation characteristics coaxial microchannels flow patterns pinch-off length
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Gas microchannel plate-pixel detector for X-ray polarimetry
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作者 Huan-Bo Feng Hong-Bang Liu +16 位作者 Dong Wang Zi-Li Li Shu-Lin Liu Qian Liu Hang-Zhou Li Bin-Long Wang Yan-Jun Xie Zong-Wang Fan Hui Wang Ran Chen Di-Fan Yi Rui-Ting Ma Fei Xie Bo Peng Xiang-Ming Sun Jin Li En-Wei Liang 《Nuclear Science and Techniques》 SCIE EI CAS CSCD 2024年第5期60-73,共14页
POLAR-2 is a gamma-ray burst(GRB)polarimeter that is designed to study the polarization in GRB radiation emissions,aiming to improve our knowledge of related mechanisms.POLAR-2 is expected to utilize an on-board polar... POLAR-2 is a gamma-ray burst(GRB)polarimeter that is designed to study the polarization in GRB radiation emissions,aiming to improve our knowledge of related mechanisms.POLAR-2 is expected to utilize an on-board polarimeter that is sensitive to soft X-rays(2-10 keV),called low-energy polarization detector.We have developed a new soft X-ray polari-zation detector prototype based on gas microchannel plates(GMCPs)and pixel chips(Topmetal).The GMCPs have bulk resistance,which prevents charging-up effects and ensures gain stability during operation.The detector is composed of low outgassing materials and is gas-sealed using a laser welding technique,ensuring long-term stability.A modulation factor of 41.28%±0.64% is obtained for a 4.5 keV polarized X-ray beam.A residual modulation of 1.96%±0.58% at 5.9 keV is observed for the entire sensitive area. 展开更多
关键词 X-ray polarimetry Gas microchannel plate-pixel detector Gamma-ray bursts
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Applying the Shearlet-Based Complexity Measure for Analyzing Mass Transfer in Continuous-Flow Microchannels
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作者 Elena Mosheva Ivan Krasnyakov 《Fluid Dynamics & Materials Processing》 EI 2024年第8期1743-1758,共16页
Continuous-flow microchannels are widely employed for synthesizing various materials,including nanoparticles,polymers,and metal-organic frameworks(MOFs),to name a few.Microsystem technology allows precise control over... Continuous-flow microchannels are widely employed for synthesizing various materials,including nanoparticles,polymers,and metal-organic frameworks(MOFs),to name a few.Microsystem technology allows precise control over reaction parameters,resulting in purer,more uniform,and structurally stable products due to more effective mass transfer manipulation.However,continuous-flow synthesis processes may be accompanied by the emergence of spatial convective structures initiating convective flows.On the one hand,convection can accelerate reactions by intensifying mass transfer.On the other hand,it may lead to non-uniformity in the final product or defects,especially in MOF microcrystal synthesis.The ability to distinguish regions of convective and diffusive mass transfer may be the key to performing higher-quality reactions and obtaining purer products.In this study,we investigate,for the first time,the possibility of using the information complexity measure as a criterion for assessing the intensity of mass transfer in microchannels,considering both spatial and temporal non-uniformities of liquid’s distributions resulting from convection formation.We calculate the complexity using shearlet transform based on a local approach.In contrast to existing methods for calculating complexity,the shearlet transform based approach provides a more detailed representation of local heterogeneities.Our analysis involves experimental images illustrating the mixing process of two non-reactive liquids in a Y-type continuous-flow microchannel under conditions of double-diffusive convection formation.The obtained complexity fields characterize the mixing process and structure formation,revealing variations in mass transfer intensity along the microchannel.We compare the results with cases of liquid mixing via a pure diffusive mechanism.Upon analysis,it was revealed that the complexity measure exhibits sensitivity to variations in the type of mass transfer,establishing its feasibility as an indirect criterion for assessing mass transfer intensity.The method presented can extend beyond flow analysis,finding application in the controlling of microstructures of various materials(porosity,for instance)or surface defects in metals,optical systems and other materials that hold significant relevance in materials science and engineering. 展开更多
关键词 Shearlet analysis complexity measure entropy measure CONVECTION microchannels double-diffusive instability
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Air-Side Heat Transfer Performance Prediction for Microchannel Heat Exchangers Using Data-Driven Models with Dimensionless Numbers
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作者 Long Huang Junjia Zou +2 位作者 Baoqing Liu Zhijiang Jin Jinyuan Qian 《Frontiers in Heat and Mass Transfer》 EI 2024年第6期1613-1643,共31页
This study explores the effectiveness of machine learning models in predicting the air-side performance of microchannel heat exchangers.The data were generated by experimentally validated Computational Fluid Dynam-ics... This study explores the effectiveness of machine learning models in predicting the air-side performance of microchannel heat exchangers.The data were generated by experimentally validated Computational Fluid Dynam-ics(CFD)simulations of air-to-water microchannel heat exchangers.A distinctive aspect of this research is the comparative analysis of four diverse machine learning algorithms:Artificial Neural Networks(ANN),Support Vector Machines(SVM),Random Forest(RF),and Gaussian Process Regression(GPR).These models are adeptly applied to predict air-side heat transfer performance with high precision,with ANN and GPR exhibiting notably superior accuracy.Additionally,this research further delves into the influence of both geometric and operational parameters—including louvered angle,fin height,fin spacing,air inlet temperature,velocity,and tube temperature—on model performance.Moreover,it innovatively incorporates dimensionless numbers such as aspect ratio,fin height-to-spacing ratio,Reynolds number,Nusselt number,normalized air inlet temperature,temperature difference,and louvered angle into the input variables.This strategic inclusion significantly refines the predictive capabilities of the models by establishing a robust analytical framework supported by the CFD-generated database.The results show the enhanced prediction accuracy achieved by integrating dimensionless numbers,highlighting the effectiveness of data-driven approaches in precisely forecasting heat exchanger performance.This advancement is pivotal for the geometric optimization of heat exchangers,illustrating the considerable potential of integrating sophisticated modeling techniques with traditional engineering metrics. 展开更多
关键词 Machine learning microchannel heat exchangers heat transfer data-driven modeling computational fluid dynamics
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Effect of the Geometrical Parameter of OpenMicrochannel on Pool Boiling Enhancement
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作者 Ali M.H.Al-Obaidy Ekhlas M.Fayyadh Amer M.Al-Dabagh 《Frontiers in Heat and Mass Transfer》 EI 2024年第5期1421-1442,共22页
High heat dissipation is required for miniaturization and increasing the power of electronic systems.Pool boiling is a promising option for achieving efficient heat dissipation at low wall superheat without the need f... High heat dissipation is required for miniaturization and increasing the power of electronic systems.Pool boiling is a promising option for achieving efficient heat dissipation at low wall superheat without the need for moving parts.Many studies have focused on improving heat transfer efficiency during boiling by modifying the surface of the heating element.This paper presents an experimental investigation on improving pool boiling heat transfer using an open microchannel.The primary goal of this work is to investigate the impact of the channel geometry characteristics on boiling heat transfer.Initially,rectangular microchannels were prepared on a circular copper test piece with a diameter of 20 mm.Then,the boiling characteristics of these microchannels were compared with those of a smooth surface under saturated conditions using deionized water.In this investigation,a wire-cutting electrical discharge machine(EDM)machine was used to produce parallel microchannels with channel widths of 0.2,0.4,and 0.8 mm.The fin thicknesses were 0.2,0.4,and 0.6 mm,while the channel depth remained constant at 0.4 mm.The results manifested that the surface featuring narrower fins and broader channels achieved superior performance.The heat transfer coefficient(HTC)was enhanced by a maximum of 248%,and the critical heat flux(CHF)was enhanced by a maximum of 101%compared to a plain surface.Eventually,the obtained results were compared with previous research and elucidated a good agreement. 展开更多
关键词 Pool boiling microchannel surface geometrical parameter heat transfer enhancement critical heat flux
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新型微通道的流动与传热性能研究 被引量:1
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作者 王鹏 姚志敏 +3 位作者 陈汉玉 张昊 赵谍 袁潇康 《武汉理工大学学报(交通科学与工程版)》 2025年第1期74-79,85,共7页
采用数值模拟方法同时结合熵产原理研究不同劈缝形状结构对流体流动传热的影响,分析强化换热的本质原因,对微通道做了综合性能评价.结果表明:随着Re的增大模型的摩擦系数均减小,其中布置带竖直劈缝结构摩擦系数最小,为2.67,其次是布置... 采用数值模拟方法同时结合熵产原理研究不同劈缝形状结构对流体流动传热的影响,分析强化换热的本质原因,对微通道做了综合性能评价.结果表明:随着Re的增大模型的摩擦系数均减小,其中布置带竖直劈缝结构摩擦系数最小,为2.67,其次是布置带交叉劈缝的结构,为3.45;努塞尔数均随雷诺数增大而增大,其中布置交叉劈缝的结构努塞尔数最大,为17.28;布置劈缝可以有效的产生二次流及漩涡,破坏流动边界层及温度边界层进而加强换热,熵产分析表明,模型的传热熵产均随雷诺数增大而降低,而流动熵产随雷诺数增大而增大,综合性能评估表明:η交叉劈缝>η竖直劈缝>η十字劈缝>η横劈缝.综合考虑得出结论:布置交叉劈缝具有最优的换热效果. 展开更多
关键词 微通道 强化传热 熵产原理 换热性能
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侧壁凹槽结构微通道流动与换热特性
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作者 朱崎峰 崔阳 +3 位作者 赵同乐 温小萍 孙好雷 和文强 《河南理工大学学报(自然科学版)》 北大核心 2025年第2期99-107,共9页
目的为探究凹槽形状对微通道热沉内液体流动与换热性能的影响,寻找适用于微通道流动减阻和强化传热的最优凹槽几何结构,以提高微通道热沉的冷却效率,方法通过试验测试不同体积流量下去离子水在扇形凹槽结构微通道、水滴形凹槽结构微通... 目的为探究凹槽形状对微通道热沉内液体流动与换热性能的影响,寻找适用于微通道流动减阻和强化传热的最优凹槽几何结构,以提高微通道热沉的冷却效率,方法通过试验测试不同体积流量下去离子水在扇形凹槽结构微通道、水滴形凹槽结构微通道和梯形凹槽结构微通道内的进出口压力降和温升,采用流动摩擦因子、平均努塞尔数、强化传热因子和场协同数评价不同微通道内液体强制对流的流动和换热性能,并与光滑微通道的性能进行对比。结果随着体积流量增加,微通道内液体流动压降、平均努塞尔数和强化传热因子增大,流动摩擦因子、进出口温差和场协同数则相应减小,表明微通道内液体流动的泵耗功率增大,但其对流换热性能和换热效率却均得到显著提升;3种凹槽结构内液体流动压降和平均摩擦因子均小于光滑微通道,降低了流动的泵耗功率;在液体流量较大时,水滴形凹槽结构微通道和梯形凹槽结构微通道的换热性能和换热效率均优于光滑微通道;扇形凹槽结构微通道的换热性能和换热效率最好,其平均努塞尔数和综合强化传热因子最高分别达到7.81和1.32。结论研究结果为改进微通道设计以解决超大规模集成电路芯片冷却问题提供了参考。 展开更多
关键词 微通道 凹槽 传热 努塞尔数
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微通道内纳米流体传热流动特性
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作者 刘萍 邱雨生 +2 位作者 李世婧 孙瑞奇 申晨 《化工学报》 北大核心 2025年第1期184-197,共14页
为提高微通道散热器的传热效率,需要对微通道进行结构优化设计。以热阻Rt和泵功Pp为目标函数,在Re=100的条件下,采用多目标遗传算法对文丘里管微通道的结构参数,如通道深度、收缩角度、喉颈宽度和扩散角度进行优化,通过遗传迭代计算得到... 为提高微通道散热器的传热效率,需要对微通道进行结构优化设计。以热阻Rt和泵功Pp为目标函数,在Re=100的条件下,采用多目标遗传算法对文丘里管微通道的结构参数,如通道深度、收缩角度、喉颈宽度和扩散角度进行优化,通过遗传迭代计算得到Pareto优化解集,利用k-means聚类法对优化解集进行比较分析,通过强化传热因子η对各聚类点综合性能进行评价,得到最优的微通道结构。采用数值模拟方法,研究优化后的微通道结构的流动与传热特性。结果表明:当去离子水中加入纳米颗粒后微通道内的压降具有小幅度上升,但其流动阻力在相同Reynolds数的条件下并没有发生较大的变化。在文丘里管微通道喉部位置会产生喉部效应,强化纳米颗粒与微通道中流动工质的融合。熵产分析表明,传热熵随着Reynolds数的增大而减小,摩擦熵随着Reynolds数的增大而增大,不过总熵值中主要是传热熵占据主导地位。纳米流体随着体积分数的增加不可逆损失均小于去离子水。 展开更多
关键词 遗传算法 优化设计 微通道 纳米流体 强化传热 数值模拟
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电场和改性PVDF膜相分离结构协同作用下逆流微细通道压降特性
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作者 罗小平 贾梦帆 李世珍 《化工进展》 北大核心 2025年第2期646-659,共14页
为解决微通道两相流传热过程中相变导致体积急剧膨胀,引发的流速不均、压降波动、局部过热等问题,本文对有无电场作用下不同相分离透气孔密度的逆流微细通道(PSP00型、PSP04型、PSP06型、PSP10型)内流动沸腾两相压降进行了研究,引入性... 为解决微通道两相流传热过程中相变导致体积急剧膨胀,引发的流速不均、压降波动、局部过热等问题,本文对有无电场作用下不同相分离透气孔密度的逆流微细通道(PSP00型、PSP04型、PSP06型、PSP10型)内流动沸腾两相压降进行了研究,引入性能评估指标(PEC)对不同电压(0、200V、400V、600V)作用下有无相分离结构的逆流微通道的综合传热性能进行了研究,并利用高速摄影仪对通道进行了可视化研究,引入了受限气泡长径比变化率来分析通道内受限气泡的生长行为。研究结果发现,相分离结构透气孔密度越大,通道内流动阻力和压降越小,随着热流密度的增大,两相压降减小程度更加明显;施加电场会使通道内两相压降增大,但与相分离结构协同作用后的通道内两相压降相比,增加幅度减小,施加600V电压的有相分离结构的PSP10型通道较无相分离结构PSP00型通道两相压降降低了14.2%;电场和相分离结构均可使微细通道内受限气泡长径比减小,且相分离孔密度和电压越大,受限气泡长径比越小;单独电场、单独相分离结构以及电场与相分离结构复合作用均有利于提高微细通道的综合换热性能PEC,其中电场与相分离结构复合作用效果最好,且相分离结构透气孔密度和电压越大,PEC越大,电场和相分离结构(PSP10-600V)同时作用时的最大PEC为1.30,比单独电场(PSP00-600V)作用时的最大PEC提高了13.0%,比单独相分离结构(PSP10型)作用时的最大PEC提高了7.4%。 展开更多
关键词 逆流微通道 改性PVDF膜 针状电极 压降 性能评估指标 气泡
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竖插翅片微通道换热器空气侧积灰特性研究
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作者 黄东 王国华 +2 位作者 郭文华 赵赞 赵日晶 《制冷与空调》 2025年第1期55-60,共6页
竖插翅片微通道换热器表面积尘导致其长效性能衰减。文章建立了颗粒物沉积仿真模型,研究了竖插翅片表面积灰分布特性及其对换热器性能的影响。结果表明,积灰分布特性受颗粒物粒径和空气流速的显著影响:小粒径颗粒物主要沉积在翅片迎风... 竖插翅片微通道换热器表面积尘导致其长效性能衰减。文章建立了颗粒物沉积仿真模型,研究了竖插翅片表面积灰分布特性及其对换热器性能的影响。结果表明,积灰分布特性受颗粒物粒径和空气流速的显著影响:小粒径颗粒物主要沉积在翅片迎风面的百叶窗区域,而大粒径颗粒物则沉积在背风面。沉积率随粒径增加先增加后减小,峰值为粒径10μm。小粒径颗粒物沉积率随空气流速增大而增加,大粒径颗粒物沉积率则先增大后减小。积灰厚度的增加导致Nu下降,f因子增加以及性能评价因子(PEC)减小。当Re=1100时,0.15mm积灰厚度使Nu降低了4.0%,f增加了61.6%,PEC减少了18.2%。研究结果为竖插翅片换热器的长效性能提升提供了理论依据。 展开更多
关键词 微通道换热器 竖插翅片 积灰
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超微与微通道经皮肾镜取石术治疗肾下盏结石的效果与安全性比较
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作者 李冬 陆林峰 杨林杰 《浙江创伤外科》 2025年第3期417-419,423,共4页
目的探讨超微与微通道经皮肾镜取石术治疗肾下盏结石的效果与安全性。方法选取2022年1月至2023年12月在本院收治的92例肾下盏结石患者,按随机数字表法分A、B两组,A组46例采取超微通道经皮肾镜取石术,B组46例采取微通道经皮肾镜取石术,... 目的探讨超微与微通道经皮肾镜取石术治疗肾下盏结石的效果与安全性。方法选取2022年1月至2023年12月在本院收治的92例肾下盏结石患者,按随机数字表法分A、B两组,A组46例采取超微通道经皮肾镜取石术,B组46例采取微通道经皮肾镜取石术,对两组效果及安全性进行比较。结果A组手术时间较B组长,住院时间较B组短,Hb下降值更低(P<0.05);两组术前的肾功能指标比较,组间差异无统计学意义(P>0.05),术后1 d时,肾功能指标均有上升,但肾功能组间比较差异无统计学意义(P>0.05);与B组比较,A组并发症发生率更低,一期结石清除率更高(P<0.05)。结论超微与微通道经皮肾镜取石术治疗肾下盏结石均有较好的效果,但超微通道创伤更小,术后并发症更低,一期结石清除率更高,可作为首选术式。不过在实际操作过程中,需要根据结石具体位置、结石大小选择相应术式,以确保取石效果及安全性。 展开更多
关键词 超微 微通道 经皮肾镜取石术 肾下盏结石 肾功能
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内嵌金属柱在LTCC微流道基板中的散热性能
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作者 王晗 李振松 《北京信息科技大学学报(自然科学版)》 2025年第1期111-116,共6页
在集成散热微流道的低温共烧陶瓷(low-temperature co-fired ceramics,LTCC)封装基板中引入内嵌金属柱(embedded metal columns,EMCs)作为导热增强结构,是提升封装体散热性能的重要改进措施。基于已有的理论分析与试验研究结果,结合工... 在集成散热微流道的低温共烧陶瓷(low-temperature co-fired ceramics,LTCC)封装基板中引入内嵌金属柱(embedded metal columns,EMCs)作为导热增强结构,是提升封装体散热性能的重要改进措施。基于已有的理论分析与试验研究结果,结合工艺条件,分析内嵌金属柱截面形状、长度、直径和流体入口流速对其散热性能的影响。通过正交试验设计,在有限元仿真软件中建立带有内嵌金属柱的LTCC微流道基板的热仿真模型,并对得到的热仿真数据进行极差与方差分析。研究结果表明,影响内嵌金属柱散热性能的因素由大到小依次为流体流速、内嵌金属柱截面形状、内嵌金属柱直径以及内嵌金属柱长度;在置信度为90%的情况下,流体入口流速、内嵌金属柱截面形状和直径均对其散热性能有显著影响,内嵌金属柱长度对其散热性能无显著影响。 展开更多
关键词 正交试验设计 散热性能 微流道 内嵌金属柱 低温共烧陶瓷
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Growth behavior of CVD diamond in microchannels of Cu template 被引量:3
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作者 刘学璋 张雄伟 余志明 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2015年第6期2009-2017,共9页
Deposition of diamond inside the trenches or microchannels by chemical vapor deposition (CVD) is limited by the diffusion efficiency of important radical species for diamond growth (H, CH3) and the pore depth of t... Deposition of diamond inside the trenches or microchannels by chemical vapor deposition (CVD) is limited by the diffusion efficiency of important radical species for diamond growth (H, CH3) and the pore depth of the substrate template. By ultrasonic seeding with nanodiamond suspension, three-dimensional (3D) penetration structure diamond was successfully deposited in cylindrical microchannels of Cu template by hot-filament chemical vapor deposition. Micro-Raman spectroscopy and scanning electron microscopy (SEM) were used to characterize diamond film and the effects of microchannel depth on the morphology, grain size and growth rate of diamond film were comprehensively investigated. The results show that diamond quality and growth rate sharply decrease with the increase of the depth of cylindrical microchannel. Individual diamond grain develops gradually from faceted crystals into micrometer cluster, and finally to ballas-type nanocrystalline one. In order to modify the rapid decrease of diamond quality and growth rate, a new hot filament apparatus with a forced gas flow through Cu microchannels was designed. Furthermore, the growth of diamond film by new apparatus was compared with that without a forced gas flow, and the enhancement mechanism was discussed. 展开更多
关键词 chemical vapor deposition DIAMOND TEMPLATE Cu substrate microchannel
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微通道内液液非均相传质的模拟和实验研究方法进展
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作者 张鑫源 何呈祥 +3 位作者 李亚婷 朱春英 马友光 付涛涛 《化工学报》 北大核心 2025年第2期484-503,共20页
微通道内液液非均相体系传质行为的研究对明确传质机理,进一步提高传质效率,促进微通道装置在连续流动化学合成、生物医学和溶剂萃取等领域的工业化应用十分重要。介绍了用于微通道内传质研究的指标参数及其影响因素,总结归纳了微通道... 微通道内液液非均相体系传质行为的研究对明确传质机理,进一步提高传质效率,促进微通道装置在连续流动化学合成、生物医学和溶剂萃取等领域的工业化应用十分重要。介绍了用于微通道内传质研究的指标参数及其影响因素,总结归纳了微通道内液液体系传质研究的技术方法及其相关原理,包括探究两相流动行为、相内传质和相间传质的模拟方法,评价微通道装置整体传质性能的离线实验方法与实时检测微通道内流体速度场和浓度场的在线实验方法,并对未来用于微通道内液液体系传质研究的模拟和实验方法的发展方向提出建议。 展开更多
关键词 微通道 多相流 传递 模拟原理 实验方法
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