Claim Missing Document
Check
Articles

Found 2 Documents
Search

Temperature and material flow in one-step double-acting friction stir welding process of aluminum alloy: Modeling and experimental Eko Prasetya Budiana; Sekar Gading Happy Hapsari; Essam R. I. Mahmoud; Triyono Triyono
Mechanical Engineering for Society and Industry Vol 5 No 1 (2025)
Publisher : Universitas Muhammadiyah Magelang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.31603/mesi.12987

Abstract

Aluminum, known for its lower density compared to steel, is widely used in various applications. Welding is often required to form aluminum into technical structures. However, when fusion welding is used, it can lead to porosity in the weld. This occurs due to the significant difference in hydrogen gas solubility between liquid and solid aluminum, which traps hydrogen gas within the weld metal. Friction Stir Welding (FSW), a solid-state welding technique, has been proven to minimize porosity. However, for thick structures, FSW poses challenges, as welding must be done on both sides, increasing the welding time. To overcome this limitation, FSW has been modified into a one-step double-side FSW process, where two tools simultaneously work on both surfaces of the workpiece. This creates a unique condition with two heat sources and two stirring motion sources. To understand the temperature distribution and material flow in this process, modeling was conducted using Computational Fluid Dynamics (CFD). The upper and lower tools in the one-step double-side FSW process operate under identical conditions: a rotation speed of 1500 rpm, a welding speed of 30 mm/min, and a tilt angle of 0 degrees. The aluminum plate is treated as fluid, while the tools are considered solid in the model. The results of the temperature distribution modeling were validated against published studies, and the material flow was verified through macro- and microstructural observations of the cross-section. The validation showed that the model is accurate, with an error of only 4.07%.
Effect of tool rotation direction, pin overlap, and pin shape on material flow in one-step double-acting friction stir welding of stainless steel: A Modeling study Eko Prasetya Budiana; Rian Firmanda; Essam R. I. Mahmoud; Triyono
Mechanical Engineering for Society and Industry Vol. 6 No. 1 (2026)
Publisher : Universitas Muhammadiyah Magelang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.31603/mesi.13695

Abstract

Stainless steel is widely used in various industrial applications due to its excellent corrosion resistance and mechanical strength. However, conventional fusion welding of stainless steel often leads to several problems such as hot cracking, sensitization caused by chromium carbide precipitation, and large thermal distortion. Friction Stir Welding (FSW), a solid-state joining technique, has been developed to overcome these limitations by producing high-quality joints without melting the base material. Nevertheless, welding thick plates using conventional FSW frequently results in incomplete penetration. To address this limitation, a One-Step Double-Acting Friction Stir Welding (DA-FSW) technique is proposed, in which two tools operate simultaneously from the top and bottom surfaces of the workpiece. In this study, material flow behavior and heat distribution during DA-FSW of stainless steel are investigated using Computational Fluid Dynamics (CFD) simulation. The model considers variations in pin geometry (cylindrical, conical, triflate, and tapered triflate), tool rotation direction, and pin overlap. Stainless steel is modeled as a non-Newtonian fluid to represent its plasticized behavior under frictional heating. The simulation results show that complex pin geometries such as tapered triflate produce up to 15–20% higher material flow velocity and generate a more uniform temperature distribution (approximately 5–10% variation across the stir zone) compared with simple cylindrical pins. Furthermore, opposite tool rotation directions improve material mixing and reduce temperature gradients, while an optimal pin overlap increases heat generation by approximately 12%, leading to more stable material flow. These results demonstrate that the combination of complex pin geometry, opposing rotation direction, and appropriate pin overlap significantly improves thermal distribution and material flow stability, which are essential for achieving defect-free welds in thick stainless steel plates.