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Vipul M. Patel

Researcher at Sardar Vallabhbhai National Institute of Technology, Surat

Publications -  12
Citations -  213

Vipul M. Patel is an academic researcher from Sardar Vallabhbhai National Institute of Technology, Surat. The author has contributed to research in topics: Heat pipe & Diffusion flame. The author has an hindex of 6, co-authored 12 publications receiving 123 citations.

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Influence of working fluids on startup mechanism and thermal performance of a closed loop pulsating heat pipe

TL;DR: In this article, the influence of working fluids on startup mechanism and thermal performance of a closed loop Pulsating Heat Pipe (CLPHP) is carried out on 2mm, nine turn copper capillary.
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Channel wise displacement-velocity-frequency analysis in acetone charged multi-turn Closed Loop Pulsating Heat Pipe

TL;DR: In this paper, the authors explore channel wise intricate thermo-hydrodynamic characteristics as a function of heat input and its influence on the thermal performance of nine-turn acetone charged closed loop PHP (CLPHP).
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Thermal performance prediction models for a pulsating heat pipe using Artificial Neural Network (ANN) and Regression/Correlation Analysis (RCA)

TL;DR: In this article, the thermal performance prediction models of a pulsating heat pipe (PHP) based on ANN and RCA approach are discussed, where linear and power-law regression correlations are developed for input heat flux in terms of dimensionless Kutateladze (Ku) number.
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Experimental investigation on flame appearance and emission characteristics of LPG inverse diffusion flame with swirl

TL;DR: In this paper, the flame appearance and emission characteristics of a LPG inverse diffusion flame (IDF) were studied experimentally in a coaxial burner and flame length, CO and NOx emissions were examined at different equivalence ratio and swirler vane angle.
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Effect of hydrogen enrichment on combustion characteristics of methane swirling and non-swirling inverse diffusion flame

TL;DR: In this article, the influence of hydrogen addition on appearance of swirling and non-swirling inverse diffusion flame (IDF) along with emissions characteristics are investigated experimentally, and the combustion characteristics including flame length, axial and radial temperature variation, and noise level are analyzed for hydrogen addition in methane by mass basis for constant energy input and by volume basis for a constant volumetric fuel flow rate.