微纳米气泡

nanoscientific2 小时前
科技·微纳米气泡
曝气滴灌迷宫流道微气泡气液两相流运动特性——多几何构型、涡旋轨迹与抗堵性能评价论文来源:Yanfang Liu, Guocui Wang, Xianna Zhang, Hongchen Li, Bingcheng Si, Wenqian Liu, Zhenhua Zhang. Motion Characteristics of Gas–Liquid Two-Phase Flow of Microbubbles in a Labyrinth Channel Used for Aerated Drip Irrigation[J]. Water, 2023, 15(7): 1432. D
nanoscientific3 天前
科技·微纳米气泡
季铵化纤维素无纺布+微纳米气泡选择性吸附PFAS——气液界面富集约束与静电协同新范式论文来源:Yushen Kang, Fangfang Song, Jin Lin, Haowei Liu, Nan Wang, Lihua Zhu. Enhanced selective adsorption of perfluoroalkyl substances through an integration of quaternized cellulose nonwoven and micro-nano-bubbles[J]. Separation and Purification Technolog
nanoscientific4 天前
科技·微纳米气泡
微气泡强化纤维聚结器油水乳状液分离——“聚并–浮选“机制改写与动态防污新范式论文来源:Yudong Li, Haokun Jiang, Yunhao Wu, et al. Microbubbles enhance oil-in-water emulsion separation in fibrous coalescers[J]. Water Research, 2025, 268: 122573. DOI: 10.1016/j.watres.2024.122573(华东理工大学机械与动力工程学院;通讯作者杨强教授)
nanoscientific5 天前
科技·微纳米气泡
微气泡清洗核桃壳滤料中石油烃污染物——多孔介质内“碰撞–溃灭射流–孔隙穿透“的清洗新范式论文来源:Journal of Water Process Engineering, 2024, 58, 104761,"Washing performance of microbubbles on porous media"
nanoscientific6 天前
科技·微纳米气泡
空气纳米气泡的稳定性及理化特性——水力空化发生条件下粒径、Zeta 电位与环境因子的调控规律论文来源:陈二军, 张玉玲, 路少磊, 等. 空气纳米气泡的稳定性及理化特性[J]. 化工进展, 2021, DOI:10.16085/j.issn.1000-6613.2021-2388
nanoscientific7 天前
科技·微纳米气泡
空气纳米气泡水强化稻草–猪粪厌氧共消化——通过协同代谢与抗氧化节能实现甲烷增产 59.80%论文来源:Bioresource Technology, 2025, 436, 132955,"Augmented methanogenic performance in straw-manure co-digestion via micro/nano bubble-enhanced syntrophic metabolism"
nanoscientific8 天前
科技·微纳米气泡
颗粒活性炭负载壳聚糖协同纳米气泡吸附全氟烷基酸(PFAAs)——链长依赖的“纳米气泡-正电位点“捕获机制论文来源:Chemosphere, 2022, 309, 136733,"Adsorption of perfluoroalkyl acids on granular activated carbon supported chitosan: Role of nanobubbles"
nanoscientific11 天前
科技·微纳米气泡
臭氧微纳米气泡耦合颗粒活性炭(O₃-MNBs/GAC)深度处理饮用水中微量有机污染物——从实验室到中试的工程化验证论文来源:Separation and Purification Technology, 2026, 382, 135985,"Removal of trace organic pollutants in drinking water by an integrated ozone micro-nano bubble and granular activated carbon process: From laboratory scale to pilot studies"
nanoscientific24 天前
科技·微纳米气泡
臭氧/微纳米气泡(O₃-MNB)间接催化氧化同步脱除柴油车尾气多污染物论文来源:Environmental Technology, 2024, 45(12): 2417–2426,"Indirect catalytic oxidation of multi-pollutants in diesel exhaust by ozone/micro-nano bubbles system"
nanoscientific1 个月前
科技·微纳米气泡
微气泡气液分散体系(MBGLS)协同空气/H₂O₂/Na₂S₂O₈ 同步脱除烟气 NO 与 SO₂论文来源:Environmental Technology, 2020, 41(27): 3573–3583,"Simultaneous removal of NO and SO₂ with a micro-bubble gas-liquid dispersion system based on air/H₂O₂/Na₂S₂O₈"
nanoscientific1 个月前
科技·微纳米气泡
微纳米气泡辅助水合物成核与生长——再探“记忆效应“机制论文来源:Energy, 2024, 290, 130228,"Study of hydrate nucleation and growth aided by micro-nanobubbles: Probing the hydrate memory effect"
nanoscientific2 个月前
科技·微纳米气泡
O₃纳米气泡强化表面活性剂淋洗柴油污染土壤的实验研究论文来源:Chemosphere, 2024, "Enhanced surfactant remediation of diesel-contaminated soil using O₃ nanobubbles"
nanoscientific3 个月前
科技·微纳米气泡
在芬顿耦合微纳米气泡系统中最大化利用界面处的Fe²⁺以实现有机污染物降解。摘要:高盐废水中的杂环化合物极难降解,给处理带来了巨大挑战。本研究开发了一种混合微纳米气泡芬顿系统(FT-MNBs),通过界面效应增强Fe²⁺的活化。与单独使用微纳米气泡(MNBs,降解速率0.0046 min⁻¹)和传统芬顿法(降解速率0.01008 min⁻¹)相比,FT-MNBs对吲哚的降解速率显著提高,达到0.0380 min⁻¹。在处理总溶解固体(TDS)含量为3.266 g/L的实际焦化废水时,FT-MNBs在初始COD为200 mg/L和10,000 mg/L的条件下分别实现了93.42%和
万里守约3 年前
论文阅读·目标跟踪·eor·微纳米气泡
【论文阅读】微纳米气泡技术作为CO2-EOR和CO2地质储存技术的新方向:综述Micro and nanobubbles technologies as a new horizon for CO2-EOR and CO2 geological storage techniques: A review 微纳米气泡技术作为CO2-EOR和CO2地质储存技术的新方向:综述 期刊信息:Fuel 2023 期刊级别:EI检索 SCI升级版工程技术1区 SCI基础版工程技术2区 IF7.4 原文链接:https://doi.org/10.1016/j.fuel.2023.127661 全文翻译
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