August 13, 2026
Seyed Ehsan Habibi

Seyed Ehsan Habibi

Academic Rank: Assistant professor
Address: -
Degree: Ph.D in -
Phone: -
Faculty: Faculty of Engineering

Research

Title
Study on the structural and thermal effects of localized forced vibrations imposed on a restricted part of a sudden expansion rectangular channel
Type Thesis
Keywords
انتقال حرارت، ارتعاش مكانيكي، عدد ناسلت، پله معكوس، ديوار انعطافپذير
Researchers hosein rahmani (Student) , Seyed Ehsan Habibi (First primary advisor) , Yasser Amini (Second primary advisor)

Abstract

The aim of this study is to investigate and improve heat transfer in a rectangular channel with fluid flow. In this context, a backward-facing step (BFS) and harmonic force-actuated flexible walls are used as effective factors for enhancing heat transfer within the channel. These two mechanisms lead to an increase in flow mixing. The primary focus of this research is to identify the optimal placement and excitation pattern for the flexible wall in order to maximize heat transfer. To maintain laminar flow conditions, the Reynolds number, defined using the height of the narrow portion of the channel, is fixed at 1000. The analysis investigates heat transfer characteristics, hydrodynamic friction factor, and overall hydrothermal efficiency for different positions of the wall section and various excitation frequencies. According to the results obtained, the combination of the backward-facing step and oscillating wall can increase the heat transfer rate by up to 280% compared to a channel that only uses the backward-facing step, while simultaneously reducing the required input power by approximately 54.6% .This study also addresses the challenges of increasing heat transfer while reducing pressure drop and friction, providing optimization strategies for the system using simulation results and their validation. Finally, by analyzing the impact of flexible vortex generators in the channel with sudden expansion and the interaction between fluid and structure, the study improves thermal system performance and reduces structural vibrations. The results of this research can significantly contribute to the enhancement of the efficiency of thermal systems, such as heat exchangers, power plants, HVAC systems, electronic device cooling, and various industries, offering strategies for optimizing thermal performance and reducing energy consumption in these areas.