| [1] 田宏斌. 坚持“减油增化做特” 推动炼油转型发展[J]. 中国石化, 2025(6):17-19.
[2] 张松臣,周臻怡. “十五五”时期化工新材料行业创新发展展望[J]. 当代石油石化, 2025,33(12):1-8.
[3] 李亚男. 聚合物配制系统聚合物粘损治理技术[J]. 中国石油和化工标准与质量, 2025,45(15):190-192.
[4] 林源山. 湿工况下亲水-疏水混合表面翅片管换热器空气侧性能及其结构优化[D]. 兰州: 兰州交通大学, 2024.
[5] Azizi A S, Jahanian O, Ajarostaghi S S M, et al. Employing uniform and non-uniform inner twisted elliptical tubes in a double-pipe heat exchanger[J]. International Journal of Heat and Fluid Flow, 2024,107:109384.
[6] 吴俊杰, 马丽, 侯竣升, 等. 复合纳米流体强化换热研究进展[J]. 工程科学学报, 2024,46(5):937-948.
[7] Kadhim S A, Hammoodi K A, Ali H M, et al. Influence of the typical twisted tape inserts into the inner tube of double-pipe heat exchanger: A limited review[J]. Results in Engineering, 2025,25:104386.
[8] Al Daamee F Q, Hamza N H. Characteristics of thermo-hydraulic flow inside corrugated channels: Comprehensive and comparative review[J]. Heat Transfer, 2024,53(8):4285-4315.
[9] Zhang D W, Kang D J, Fu L T, et al. Investigation of flow and heat transfer characteristics in microchannel with high-frequency ultrasound[J]. Thermal Science and Engineering Progress, 2025,59:103305.
[10]蒿俊峰. 基于超声技术的换热器强化传热机制研究[J].化学工程与装备, 2025(7):99-101, 54.
[11]何昌秋,田加猛,陈义齐,等. 电场-宏观结构表面协同强化薄液膜沸腾传热特性[J]. 化工学报, 2025,76(6):2589-2602,3125.
[12]曹卫华,王胡剑,金洋洋. 方波磁场下W型微通道内纳米流体的换热性能研究[J]. 陕西科技大学学报, 2025,43(2):170-177.
[13]Zhu J Y, Lin G, Hu T, et al. Recent development in numerical simulation of ultrasonic process enhancement[J]. Chemical Engineering Science, 2026,319:122302.
[14]陈真真,陈洪强,黄磊,等. 超声波强化换热研究进展[J]. 工程科学学报, 2022,44(12):2164-2176.
[15]Li C, Luo Z F, Shao Y C, et al. A review on ultrasound-enhanced heat transfer[J]. Ultrasonics Sonochemistry, 2025,121:107570.
[16]Poncet C, Ferrouillat S, Vignal L, et al. Enhancement of heat transfer in forced convection by using dual low-high frequency ultrasound[J]. Ultrasonics Sonochemistry, 2020,71:105351.
[17]Luo X M, Cao J H, Gong H Y, et al. Phase separation technology based on ultrasonic standing waves: a review[J]. Ultrasonics Sonochemistry, 2018,48:287-298.
[18]Legay M, Gondrexon N, Le Person S, et al. Enhancement of Heat Transfer by Ultrasound: Review and Recent Advances[J]. International Journal of Chemical Engineering, 2011, :670108.
[19]Seah B C Q, Teo B M. Recent advances in ultrasound-based transdermal drug delivery[J]. International Journal of Nanomedicine, 2018,13:7749-7763.
[20]Tamidi A M, Lau K K,Khalit S H. A review of recent development in numerical simulation of ultrasonic-assisted gas-liquid mass transfer process[J]. Computers & Chemical Engineering, 2021, 155:107498.
[21]孙宝芝,姜任秋,淮秀兰,等. 声空化及其强化传热技术研究进展[J]. 哈尔滨工程大学学报,2004,25(1):19-24.
[22]Xu Z, Yasuda K, Koda S. Numerical simulation of liquid velocity distribution in a sonochemical reactor[J]. Ultrasonics Sonochemistry, 2013,20(1):452-459.
[23]Promda N, Ayuwat K, Sawada T, et al. Heat transfer enhancement of water flow over a heating flat plate using 20 kHz ultrasonic waves irradiated from submerged horn-type transducer[J]. International Journal of Heat and Mass Transfer, 2024,224:125328.
[24]张东伟,李凯华,周俊杰,等. 超声波强化传热的链式反应机理与模拟研究[J]. 工程热物理学报,2017,38(1):145-148.
[25]Bulliard-Sauret O, Ferrouillat S,Vignal L, et al. Heat transfer enhancement using 2 MHz ultrasound[J]. Ultrasonics Sonochemistry, 2017,39:262-271.
[26]Guo G P, Ma Y, Guo Y, et al. Enhanced porosity and permeability of three-dimensional alginate scaffolds via acoustic microstreaming induced by low-intensity pulsed ultrasound[J]. Ultrasonics Sonochemistry, 2017,37:279-285.
[27]Wu J R. Acoustic Streaming and its Applications[J]. Fluids, 2018, 3(4):108.
[28]Manasseh R. Acoustic bubbles, acoustic strea-ming, and cavitation microstreaming[A]∥Ashokkumar M. Handbook of Ultrasonics and Sonochemistry[M]. Singapore:Springer, 2016: 33-68.
[29]Legay M, Simony B,Boldo P, et al. Improvement of heat transfer by means of ultrasound: Application to a double-tube heat exchanger[J]. Ultra-sonics Sonochemistry, 2012,19(6):1194-1200.
[30]Rahimi M, Abolhasani M, Azimi N. High frequency ultrasound penetration through concentric tubes: Illustrating cooling effects and cavitation intensity[J]. Heat and Mass Transfer, 2015,51(4):587-599.
[31]Setareh M, Saffar-Avval M,Abdullah A. Experimental and numerical study on heat transfer enhancement using ultrasonic vibration in a double-pipe heat exchanger[J]. Applied Thermal Engineering, 2019,159:113867.
[32]Setareh M, Saffar-Avval M,Abdullah A. Heat transfer enhancement in an annulus under ultrasound field: A numerical and experimental study[J]. International Communications in Heat and Mass Transfer, 2020,114:104560.
[33]Amiri Delouei A, Sajjadi H, Izadi M, et al. The simultaneous effects of nanoparticles and ultra-sonic vibration on inlet turbulent flow: An experimental study[J]. Applied Thermal Engineering, 2019,146:268-277.
[34]Amiri Delouei A, Sajjadi H,Mohebbi R, et al. Experimental study on inlet turbulent flow under ultrasonic vibration: Pressure drop and heat transfer enhancement[J]. Ultrasonics Sonochemistry, 2019,51:151-159.
[35]Hou T F, Chen Y C, Wang Z P, et al. Experimental study of fouling process and antifouling effect in convective heat transfer under ultrasonic treatment[J]. Applied Thermal Engineering, 2018,140:671-678.
[36]夏荣涛. 超声空化对强化换热效果影响的研究[D]. 吉林: 东北电力大学,2016.
[37]荣兵兵. 基于超声技术的沉浸式换热器强化换热的研究[D]. 合肥: 合肥工业大学,2017.
[38]Tuntarungsri S, Rakpakdee W, Pornnattawut M, et al. Experimental investigation of pressure drop of water flow in a double vertical coils and shell heat exchanger induced by 28 kHz ultrasound[C].∥Pianthong K, Pramuanjaroenkij A, Pannucharoen-wong N, et al. IOP Conference Series: Materials Science and Engineering. Bristol: IOP Publishing, 2021,1137:012063.
[39]Rakpakdee W, Tuntarungsri S, Pornnattawut M. Experimental evaluation of heat transfer perfor-mance of double vertical coils and shell heat exchanger with altered inlet configuration under low-frequency ultrasound.[J]. Applied Thermal Engineering, 2023,223:120003.
[40]Thungthong T, Chalearmwattananon N, Mong-kolkitngam T, et al. An alternative approach using numerical modelling for equivalent ultrasound propagation and its application: Prediction of heat transfer performance of a vertically helical-coiled tube heat exchanger induced by ultrasound[J]. International Journal of Heat and Mass Transfer, 2020,163:120422.
[41]Lin W X, Xiao J,Su G C, et al. Ultrasound-assisted enhancement of heat transfer in immersed coil heat exchangers: Effects of acoustic intensity and ambient fluid properties[J]. International Communications in Heat and Mass Transfer, 2021,129:105735.
[42]Chaiworapuek W, Chungprempree J, Pukrushpan J, et al. Numerical study of performance augmentation of a vertical coil and shell heat exchanger using high frequency ultrasonic waves[C]∥Pianthong K, Pramuanjaroenkij A, Pannucharoenwong N, et al. IOP Conference Series: Materials Science and Engineering. Bristol: IOP Publishing, 2021,1137:012069.
[43]Legay M, Le Person S,Gondrexon N, et al. Performances of two heat exchangers assisted by ultrasound[J]. Applied Thermal Engineering, 2012,37:60-66.
[44]Gondrexon N, Rousselet Y, Legay M, et al. Intensification of heat transfer process: Improvement of shell-and-tube heat exchanger perfor-mances by means of ultrasound[J]. Chemical Engineering and Processing: Process Intensification, 2010,49(9):936-942.
[45]王蕾,关洪宇. 超声波技术在强化传热及防垢除垢技术中应用进展[J]. 应用化工, 2022,51(9):2788-2790,2797.
[46]崔麟,温小萍. 管壳式换热器超声除垢强化换热实验研究[J]. 科技创新与应用, 2017(2):54-55.
[47]王永民. 超声波强化换热技术在管壳式换热器中的应用研究[D]. 济南: 山东建筑大学, 2024.
[48]张鹏. 超声波对管板式换热器的强化传热试验研究[D]. 南京: 东南大学, 2015.
[49]Hotrum N E, de Jong P, Akkerman J C, et al. Pilot scale ultrasound enabled plate heat exchanger—Its design and potential to prevent biofouling[J]. Journal of Food Engineering, 2015, 153:81-88.
[50]Vasyliev G S, Herasymenko Y S. Elevation of the operating efficiency of plate-like heat exchangers in the presence of ultrasonic vibration[J]. Materials Science, 2021,56(5):654-660.
[51]Zhang D W, Duan C A, Fu L T, et al. Experimental study of heat transfer performance in rectangular microchannels enhanced by ultrasound[J]. International Journal of Heat and Mass Transfer, 2024,228:125626.
[52]Zhang D W, Kang D J, Lan M X, et al. Numerical study on the heat transfer enhancement in boundary layer of microchannels assisted by protrusions and ultrasound[J]. International Communications in Heat and Mass Transfer, 2025,164:108940.
[53]康东杰. 主被动强化技术对微通道边界层的影响与机理研究[D]. 郑州: 郑州大学, 2025.
[54]段程奥. 超声强化微通道性能研究及分子动力学模拟[D]. 郑州:郑州大学, 2024. |