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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 65, 2014 - Issue 7
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Original Articles

A Numerical Investigation of Turbulent Flows through an Artificially Roughened Solar Air Heater

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Pages 679-698 | Received 06 Apr 2013, Accepted 01 Sep 2013, Published online: 10 Jan 2014

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

Read on this site (10)

Sudharani Panda & Rakesh Kumar. (2023) Flow friction and thermal performance of dimple imprinted based solar air-heater: A numerical study. Numerical Heat Transfer, Part A: Applications 84:1, pages 35-53.
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Fatemeh Aghabali, Mousa Farhadi & AhmadAli Rabienataj Darzi. (2023) Numerical investigation of thermal energy storage unit integrated with indirect solar air heater. Numerical Heat Transfer, Part A: Applications 0:0, pages 1-20.
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Himanshu Singh, Tabish Alam, Md Irfanul Haque Siddiqui, Masood Ashraf Ali & Dheeraj Sagar. (2022) Experimental investigation of heat transfer augmentation due to obstacles mounted in solar air heater duct. Experimental Heat Transfer 0:0, pages 1-20.
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Boucif Zina, Abdelkader Filali, Nabil Benamara, Samir Laouedj & Hamdi Ahmed. (2020) Numerical simulation of heat transfer improvement of a new designed artificially roughened solar air heater using triangular ribs with semi-circular nooks. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 0:0, pages 1-17.
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Vipin B. Gawande, A. S. Dhoble, D. B. Zodpe & Chidanand Mangrulkar. (2020) A comparative analysis of thermo-hydraulic performance of a roughened solar air heater using various rib shapes. Australian Journal of Mechanical Engineering 18:3, pages 331-350.
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V.B. Gawande, A.S. Dhoble, D. B. Zodpe & S. G. Fale. (2020) Thermal performance evaluation of solar air heater using combined square and equilateral triangular rib roughness. Australian Journal of Mechanical Engineering 18:2, pages 234-244.
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Moustafa Al-Damook, Zain Alabdeen Hussein Obaid, Mansour Al Qubeissi, Darron Dixon-Hardy, Joshua Cottom & Peter J. Heggs. (2019) CFD modeling and performance evaluation of multipass solar air heaters. Numerical Heat Transfer, Part A: Applications 76:6, pages 438-464.
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Anil Singh Yadav & Manish Kumar Thapak. (2016) Artificially roughened solar air heater: A comparative study. International Journal of Green Energy 13:2, pages 143-172.
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W. Wu, R. Uhlig, R. Buck & R. Pitz-Paal. (2015) Numerical Simulation of a Centrifugal Particle Receiver for High-Temperature Concentrating Solar Applications. Numerical Heat Transfer, Part A: Applications 68:2, pages 133-149.
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B.S. Yilbas & O.S. Kaleem. (2015) Performance Characteristics of a Volumetric Solar Receiver: Presence of an Absorber Plate with a Selective Surface. Numerical Heat Transfer, Part A: Applications 67:9, pages 992-1009.
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Articles from other publishers (50)

Rohit Khargotra, Tabish Alam, Kyaw Thu, Kovács András & Tej Singh. (2024) Optimization of design parameter of V-shaped perforated blocks in rectangular duct of solar air heater by using hybrid BWM-CODAS technique. Solar Energy Materials and Solar Cells 264, pages 112627.
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Raisan F. Hamad, Mohammed J. Alshukri, Adel A. Eidan & Ammar I. Alsabery. (2023) Numerical investigation of heat transfer augmentation of solar air heater with attached and detached trapezoidal ribs. Energy Reports 10, pages 123-134.
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Maheandera Prabu Paulraj, Sheshang Singh Chandel, Anuj Kumar & Santosh Kumar Sahu. (2023) Numerical Investigation to Enhance the Thermal Performance of Solar Air Dryers Using Parallelogram Type Transverse Ribs. Transactions of the Indian National Academy of Engineering.
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Kadhim K. Idan Al‐Chlaihawi, Moayed R. Hasan & Ali L. Ekaid. (2023) Thermohydraulic performance assessment of a solar air heater with equilateral‐triangular, trapezoidal, and square sectional ribs on the absorber plate: A comparative study. Heat Transfer.
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Ankush Hedau & S. K. Singal. (2023) Thermohydraulic Analysis of Double Pass Solar Air Heater Duct with Perforated Blocks and Semicircular Tubes as Artificial Roughness. Thermohydraulic Analysis of Double Pass Solar Air Heater Duct with Perforated Blocks and Semicircular Tubes as Artificial Roughness.
Cem Kalkan, Jean Duquette & Mehmet Akif Ezan. (2023) Development of a novel computational fluid dynamics-based model for a solar photovoltaic/thermal collector-assisted domestic hot water system with sensible heat storage. Applied Thermal Engineering 228, pages 120424.
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Nguyen Van Hap, Phan Thanh Nhan, Huynh Phuoc Hien & Nguyen Minh Phu. (2023) Thermohydraulic performance augmentation in a solar air heater using a perforated circular segment vortex generator. Environmental Science and Pollution Research 30:24, pages 65338-65350.
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Anil Singh Yadav, Tabish Alam, Abhishek Sharma, Rajiv Saxena, Vipin Shrivastava, Rajan Kumar, Yogesh Agrawal & Subhendu Chakroborty. (2023) A revisit to recent development in enhancement of thermal and hydraulic performance of solar air heater. Materials Today: Proceedings.
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Shailesh Kumar Shakya, Yadaba Mahanand & Jnana Ranjan Senapati. (2023) Computational Fluid Dynamics Study of Thermo-Fluid Characteristics of Solar Air Heater Duct Using W-Shaped Rib Roughened Collector Plate. ASME Journal of Heat and Mass Transfer 145:2.
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Arun Kumar Yadav, Manish Choudhary & Aditya Pratap Singh. (2023) Assessment of solar air heater performance using a variety of artificially roughened components. Materials Today: Proceedings.
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Suresh Gogada, Sujit Roy, Ankur Gupta, Biplab Das & Mehdi Ali Ehyaei. (2022) Energy and exergy analysis of solar air heater with trapezoidal ribs based absorber: A comparative analysis. Energy Science & Engineering 11:2, pages 585-605.
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Arun Kumar Yadav, Manish Choudhary & Aditya Pratap Singh. (2023) Diverse experimental investigations of artificially roughened solar air heater with different design patterns of ribs. Materials Today: Proceedings.
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A. Ben Mabrouk, H. Djemel, M. Hammami & M. Baccar. (2022) CFD modeling of rectangular solar air heater featuring curved flow passage in turbulent flow. Heat and Mass Transfer 59:1, pages 1-20.
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R. Rame Kumar. (2022) Heat Transfer Investigation of a Flat Plate Solar Collector. Indian Journal of Advanced Physics 2:2, pages 1-5.
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Yadaba Mahanand & Jnana Ranjan Senapati. (2022) Thermo-fluid analysis of a pentagonal ribbed triangular solar air heater duct (TSAHD): A three-dimensional numerical investigation. International Communications in Heat and Mass Transfer 137, pages 106258.
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R. Rame Kumar. (2022) Heat Transfer Analysis of Advanced Solar Collector. Indian Journal of Energy and Energy Resources 1:4, pages 1-4.
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Gyaneshwar Sanodiya. (2022) A Relative Study of Solar Air Heater Having Turbulators. Indian Journal of Energy and Energy Resources 1:4, pages 7-10.
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Sanjeev Kumar, Randip Kumar Das & Kishor Kulkarni. (2022) Comparative study of solar air heater (SAH) roughened with transverse ribs of NACA 0020 in forward and reverse direction. Case Studies in Thermal Engineering 34, pages 102015.
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Mayank Kumar Dwivedi & Manish Choudhary. (2022) Effect of various rib geometries on the heat transfer and friction characteristics of solar air heater: A Review. Materials Today: Proceedings 63, pages 272-282.
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Anil Singh Yadav, Abhay Agrawal, Abhishek Sharma & Abhay Gupta. (2022) Revisiting the effect of ribs on performance of solar air heater using CFD approach. Materials Today: Proceedings 63, pages 240-252.
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Anil Singh Yadav, Abhay Agrawal, Abhishek Sharma, Sachin Sharma, Rajesh Maithani & Anil Kumar. (2022) Augmented artificially roughened solar air heaters. Materials Today: Proceedings 63, pages 226-239.
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Anil Singh Yadav, Om Prakash Shukla, Abhishek Sharma & Irshad Ahmad Khan. (2022) CFD analysis of heat transfer performance of ribbed solar air heater. Materials Today: Proceedings 62, pages 1413-1419.
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Anil Singh Yadav, Mayank Kumar Dwivedi, Abhishek Sharma & Vimal Kumar Chouksey. (2022) CFD based heat transfer correlation for ribbed solar air heater. Materials Today: Proceedings 62, pages 1402-1407.
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Anil Singh Yadav & Anirudh Gattani. (2022) Revisiting the influence of artificial roughness shapes on heat transfer enhancement. Materials Today: Proceedings 62, pages 1383-1391.
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Anil Singh Yadav, Om Prakash Shukla & Rammohan Singh Bhadoria. (2022) Recent advances in modeling and simulation techniques used in analysis of solar air heater having ribs. Materials Today: Proceedings 62, pages 1375-1382.
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Anil Singh Yadav & Anirudh Gattani. (2022) Solar thermal air heater for sustainable development. Materials Today: Proceedings 60, pages 80-86.
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Kamlesh Sahu & Gyaneshwar Sanodiya. (2021) Enhanced Solar Air Heaters For Crop Drying. Indian Journal of Agriculture Engineering 1:2, pages 1-5.
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Rajneesh Kumar & Varun Goel. (2021) Unconventional solar air heater with triangular flow-passage: A CFD based comparative performance assessment of different cross-sectional rib-roughnesses. Renewable Energy 172, pages 1267-1278.
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Yadaba Mahanand & Jnana Ranjan Senapati. (2021) Thermo-hydraulic performance analysis of a solar air heater (SAH) with quarter-circular ribs on the absorber plate: A comparative study. International Journal of Thermal Sciences 161, pages 106747.
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Emad M.S. El‐Said. (2020) Numerical investigations of fluid flow and heat transfer characteristics in solar air collector with curved perforated baffles. Engineering Reports 2:4.
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Tu Thien Ngo & Nguyen Minh Phu. (2019) Computational fluid dynamics analysis of the heat transfer and pressure drop of solar air heater with conic-curve profile ribs. Journal of Thermal Analysis and Calorimetry 139:5, pages 3235-3246.
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P. J. Bezbaruah, R. S. Das & Bikash Kumar Sarkar. 2020. Advances in Mechanical Engineering. Advances in Mechanical Engineering 1045 1053 .
M. S. Manjunath, K. Vasudeva Karanth & N. Yagnesh Sharma. (2019) Numerical Analysis of Flat Plate Solar Air Heater Integrated With an Array of Pin Fins on Absorber Plate for Enhancement in Thermal Performance. Journal of Solar Energy Engineering 141:5.
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Sheshang S Chandel, Ajay Verma, Maheandera Prabu Paulraj & Santosh Kumar Sahu. (2019) Nusselt number and friction factor behaviour of circular wavy transverse ribs artificially roughened solar air heater. IOP Conference Series: Earth and Environmental Science 312:1, pages 012002.
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Parag Jyoti Bezbaruah, Rajat Subhra Das & Bikash Kumar Sarkar. (2018) Thermo-hydraulic performance augmentation of solar air duct using modified forms of conical vortex generators. Heat and Mass Transfer 55:5, pages 1387-1403.
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Noel Vinsent Chand, Vineet Kumar & Anuj Kumar Sehgal. 2019. Advances in Fluid and Thermal Engineering. Advances in Fluid and Thermal Engineering 637 645 .
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Rajneesh Kumar, Varun Geol & Anoop Kumar. (2017) A parametric study of the 2D model of solar air heater with elliptical rib roughness using CFD. Journal of Mechanical Science and Technology 31:2, pages 959-964.
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Anil Singh Yadav & Manish Kumar Thapak. (2014) Artificially roughened solar air heater: Experimental investigations. Renewable and Sustainable Energy Reviews 36, pages 370-411.
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Anil Singh Yadav & J. L. Bhagoria. (2014) Heat transfer and fluid flow analysis of an artificially roughened solar air heater: a CFD based investigation. Frontiers in Energy 8:2, pages 201-211.
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Anil Singh Yadav & J.L. Bhagoria. (2014) A numerical investigation of square sectioned transverse rib roughened solar air heater. International Journal of Thermal Sciences 79, pages 111-131.
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Anil Singh Yadav & J.L. Bhagoria. (2014) A CFD based thermo-hydraulic performance analysis of an artificially roughened solar air heater having equilateral triangular sectioned rib roughness on the absorber plate. International Journal of Heat and Mass Transfer 70, pages 1016-1039.
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