Publication Cover
Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 55, 2009 - Issue 12
248
Views
23
CrossRef citations to date
0
Altmetric
Original Articles

Modeling of Thin Liquid Film in Grooved Heat Pipes

, , , &
Pages 1075-1095 | Received 11 Sep 2008, Accepted 24 Apr 2009, Published online: 11 Jun 2009

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (4)

Mobin Alipour & Zafer Dursunkaya. (2019) Limitations of Matching Condensing Film Profile on a Micro Fin with the Groove: Critical Effect of Disjoining Pressure. Nanoscale and Microscale Thermophysical Engineering 23:4, pages 289-303.
Read now
Raphael Mandel, Amir Shooshtari & Michael Ohadi. (2017) Thin-film evaporation on microgrooved heatsinks. Numerical Heat Transfer, Part A: Applications 71:2, pages 111-127.
Read now
Cai-Ping Liu, Zhi-Min Lin & Liang-Bi Wang. (2014) Thermal Boundary Conditions on the Cross Sections Normal to the Main Flow of a Fully Developed Convection in a Tube with Tape Insert. Numerical Heat Transfer, Part A: Applications 65:12, pages 1230-1253.
Read now
Tien-Mo Shih, Martinus Arie & Derrick Ko. (2011) Literature Survey of Numerical Heat Transfer (2000–2009): Part II. Numerical Heat Transfer, Part A: Applications 60:11-12, pages 883-1096.
Read now

Articles from other publishers (19)

Jiantong Li, Bingbing Li, Shuo Gu, Wen Du & Liyan Liu. (2023) A "training-test" method for predicting single capillary evaporation rates using a conjugate mass transfer model based on coefficient fitting. Heat and Mass Transfer 59:11, pages 2057-2072.
Crossref
R. Collignon & B. Stutz. (2023) Numerical simulation and modeling of the heat and mass transfer in a grooved flat falling film evaporator. International Journal of Refrigeration 146, pages 148-157.
Crossref
Osman Akdag, Yigit Akkus & Zafer Dursunkaya. (2020) On the effect of structural forces on a condensing film profile near a fin-groove corner. International Communications in Heat and Mass Transfer 116, pages 104686.
Crossref
Ranran Fang, Hongbo Zhu, Zekai Li, Xiaohui Zhu, Xianhang Zhang, Zhiyu Huang, Ke Li, Wensheng Yan, Yi Huang, Valeriy S. Maisotsenko & Anatoliy Y. Vorobyev. (2020) Temperature Effect on Capillary Flow Dynamics in 1D Array of Open Nanotextured Microchannels Produced by Femtosecond Laser on Silicon. Nanomaterials 10:4, pages 796.
Crossref
Jasvanth V. S.Amrit Ambirajan, Abhijit A. Adoni & Jaywant H. Arakeri. (2019) Numerical investigation of an evaporating meniscus in a heated capillary slot. Heat and Mass Transfer 55:12, pages 3675-3688.
Crossref
Shahnawaz Ahmed & Manmohan Pandey. (2019) New insights on modeling of evaporation phenomena in thin films. Physics of Fluids 31:9.
Crossref
Osman Akdag, Yigit Akkus & Zafer Dursunkaya. (2019) The effect of disjoining pressure on the shape of condensing films in a fin-groove corner. International Journal of Thermal Sciences 142, pages 357-365.
Crossref
H Venu Madhav, Venkata Rauhavendra, Pramod Kumar & Amrit Ambirajan. (2019) Analytical Model for a Cylindrical Heat Pipe. Analytical Model for a Cylindrical Heat Pipe.
Yiğit Akkuş, Hakan I. Tarman, Barbaros Çetin & Zafer Dursunkaya. (2017) Two-dimensional computational modeling of thin film evaporation. International Journal of Thermal Sciences 121, pages 237-248.
Crossref
Yiğit Akkuş & Zafer Dursunkaya. (2016) A new approach to thin film evaporation modeling. International Journal of Heat and Mass Transfer 101, pages 742-748.
Crossref
V.S. Jasvanth, Amrit Ambirajan & Jaywant H. Arakeri. (2016) Experimental study on evaporation of pentane from a heated capillary slot. International Journal of Heat and Mass Transfer 95, pages 466-476.
Crossref
Zhi-Hai Kou, Hong-Tao Lv, Wen Zeng, Min-Li Bai & Ji-Zu Lv. (2015) Comparison of different analytical models for heat and mass transfer characteristics of an evaporating meniscus in a micro-channel. International Communications in Heat and Mass Transfer 63, pages 49-53.
Crossref
Mobin Arab & Ali Abbas. (2014) A model-based approach for analysis of working fluids in heat pipes. Applied Thermal Engineering 73:1, pages 751-763.
Crossref
Stéphane Lips & Frédéric Lefèvre. (2014) A general analytical model for the design of conventional heat pipes. International Journal of Heat and Mass Transfer 72, pages 288-298.
Crossref
V. S. Jasvanth, Amrit Ambirajan, Dinesh Kumar & Jaywant H. Arakeri. (2013) Effect of Heat Pipe Figure of Merit on an Evaporating Thin Film. Journal of Thermophysics and Heat Transfer 27:4, pages 633-640.
Crossref
Zhi Hai Kou, Min Li Bai & Guo Chang Zhao. (2013) Effects of Evaporation Coefficient and Inertial Force on Thermal Performance of an Evaporating Thin Film. Applied Mechanics and Materials 281, pages 546-549.
Crossref
Rémi Bertossi, Noëlie Guilhem, Vincent Ayel, Cyril Romestant & Yves Bertin. (2012) Modeling of heat and mass transfer in the liquid film of rotating heat pipes. International Journal of Thermal Sciences 52, pages 40-49.
Crossref
Zhi Hai Kou & Min Li Bai. (2011) Effects of wall slip and temperature jump on heat and mass transfer characteristics of an evaporating thin film. International Communications in Heat and Mass Transfer 38:7, pages 874-878.
Crossref
Shi-Yuan Du & Yao-Hua Zhao. (2011) New boundary conditions for the evaporating thin-film model in a rectangular micro channel. International Journal of Heat and Mass Transfer 54:15-16, pages 3694-3701.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.