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Pool Boiling of Water–Al2O3 and Water–Cu Nanofluids Outside Porous Coated Tubes

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Read on this site (6)

Jionghui Liu, Daniel Orejon, Ningxi Zhang, Jonathan G. Terry, Anthony J. Walton & Khellil Sefiane. (2024) Bubble Coalescence During Pool Boiling with Different Surface Characteristics. Heat Transfer Engineering 45:4-5, pages 360-380.
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Kamatchi Rajaram, Mohan Raman, Kalaimegam Dhanapal, Suresh Muthusamy, Ponarun Ramamoorthi, Murugesan Govindasamy & Om Prava Mishra. (2023) Nucleate pool boiling thermal management systems of hydrazine reduced graphene oxide (H-rGO) nanofluids with rough surface. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 45:3, pages 6994-7007.
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Mohsen Khooshehchin, Akbar Mohammadidoust & Sohrab Fathi. (2023) Experimental Investigation of Stabilizers of Nanofluid in the Pool Boiling Process. Heat Transfer Engineering 44:5, pages 442-460.
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Pratik S. Deokar & Lorenzo Cremaschi. (2020) Experimental investigation of two phase flow boiling heat transfer of mixtures of refrigerant R410A and nanolubricants in a horizontal smooth copper tube. Science and Technology for the Built Environment 26:4, pages 449-464.
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Fatemeh Rajabzadeh Dareh, Masoud Haghshenasfard, Mohsen Nasr Esfahany & Hamid Reza Salimi Jazi. (2019) An experimental investigation of pool boiling characteristics of alumina-water nanofluid over micro-/nanostructured surfaces. Heat Transfer Engineering 40:20, pages 1691-1708.
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Richa Saxena, Dasaroju Gangacharyulu & Vijaya Kumar Bulasara. (2016) Heat Transfer and Pressure Drop Characteristics of Dilute Alumina–Water Nanofluids in a Pipe at Different Power Inputs. Heat Transfer Engineering 37:18, pages 1554-1565.
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Articles from other publishers (18)

Yafeng Chen, Xiaohuan Li, Xiande Fang, Zhiqiang He & Yuxiang Fang. (2023) Experimental Investigation of Critical Heat Flux of Nucleate Pool Boiling of Water and Nanofluid on Platinum Wire Under Hypergravity and Earth Gravity. Microgravity Science and Technology 35:6.
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Ashutosh Pare & Subrata Kumar Ghosh. (2022) The chronological study on parametric evolution of pool boiling with nanofluids: An experimental review. Thermal Science and Engineering Progress 34, pages 101420.
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Mohammed Saad Kamel, Ahmed K. Albdoor, Saad Jabbar Nghaimesh & Mohannad Naeem Houshi. (2022) Numerical Study on Pool Boiling of Hybrid Nanofluids Using RPI Model. Fluids 7:6, pages 187.
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Sayantan Mukherjee, Shikha Ebrahim, Purna Chandra Mishra, Naser Ali & Paritosh Chaudhuri. (2022) A Review on Pool and Flow Boiling Enhancement Using Nanofluids: Nuclear Reactor Application. Processes 10:1, pages 177.
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Janusz T. Cieśliński & Katarzyna Ronewicz. (2021) Burnout Investigation of Small Diameter Tubes Immersed in Nanofluids. Energies 14:13, pages 3888.
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Tiago Augusto Moreira, Juliana Pacheco Duarte, Francisco Júlio do Nascimento & Gherhardt Ribatski. (2021) Flow boiling heat transfer coefficient of DI water and nanofluids inside microscale channels under conditions near the critical heat flux (CHF). Journal of the Brazilian Society of Mechanical Sciences and Engineering 43:6.
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Kinga Strąk & Magdalena Piasecka. (2020) The applicability of heat transfer correlations to flows in minichannels and new correlation for subcooled flow boiling. International Journal of Heat and Mass Transfer 158, pages 119933.
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Pratik S. Deokar, Lorenzo Cremaschi & Andrea A. M. Bigi. (2020) A New Thermodynamic and Heat Transfer Model for Nanolubricants and Refrigerant Heat Transfer Processes in Smooth Copper Tubes. Journal of Heat Transfer 142:8.
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Mohammed Saad Kamel & Ferenc Lezsovits. (2020) Experimental Investigation on Pool Boiling Heat Transfer Performance Using Tungsten Oxide WO3 Nanomaterial-Based Water Nanofluids. Materials 13:8, pages 1922.
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Murat Erdem & Yasin Varol. (2020) Numerical investigation of heat transfer and flow characteristics of MHD nano-fluid forced convection in a pipe. Journal of Thermal Analysis and Calorimetry 139:6, pages 3897-3909.
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Pratik S. Deokar & Lorenzo Cremaschi. (2020) Effect of nanoparticle additives on the refrigerant and lubricant mixtures heat transfer coefficient during in-tube single-phase heating and two-phase flow boiling. International Journal of Refrigeration 110, pages 142-152.
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Gangtao Liang & Issam Mudawar. (2018) Review of pool boiling enhancement with additives and nanofluids. International Journal of Heat and Mass Transfer 124, pages 423-453.
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Tiago Augusto Moreira, Debora Carneiro Moreira & Gherhardt Ribatski. (2018) Nanofluids for heat transfer applications: a review. Journal of the Brazilian Society of Mechanical Sciences and Engineering 40:6.
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C.G. Jothi Prakash & R. Prasanth. (2018) Enhanced boiling heat transfer by nano structured surfaces and nanofluids. Renewable and Sustainable Energy Reviews 82, pages 4028-4043.
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R. Kamatchi. (2017) Experimental investigations on nucleate boiling heat transfer of aqua based reduced graphene oxide nanofluids. Heat and Mass Transfer 54:2, pages 437-451.
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Chin-Chi Hsu, Meng-Ru Lee, Chun-Hui Wu & Ping-Hei Chen. (2017) Effect of interlaced wettability on horizontal copper cylinders in nucleate pool boiling. Applied Thermal Engineering 112, pages 1187-1194.
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Xiande Fang, Yafeng Chen, Helei Zhang, Weiwei Chen, Anqi Dong & Run Wang. (2016) Heat transfer and critical heat flux of nanofluid boiling: A comprehensive review. Renewable and Sustainable Energy Reviews 62, pages 924-940.
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Janusz T. Cieśliński & Katarzyna Krygier. (2014) Augmentation of the Critical Heat Flux in Water-Al 2 O 3 , Water-TiO 2 and Water-Cu Nanofluids . MATEC Web of Conferences 18, pages 01012.
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