Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel

The utilization of Aluminum hollow panels enhances structural strength while simultaneously ensuring a lightweight and efficient use of materials. During their application, these panels necessitate a welding process that is susceptible to porosity due to the disparity in hydrogen gas solubility betw...

Full description

Bibliographic Details
Published in:International Journal of Lightweight Materials and Manufacture
Main Author: Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
Format: Article
Language:English
Published: KeAi Publishing Communications Ltd. 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188449898&doi=10.1016%2fj.ijlmm.2024.02.002&partnerID=40&md5=2d513a0e05df7a9567dc9407a82a91f1
id 2-s2.0-85188449898
spelling 2-s2.0-85188449898
Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
2024
International Journal of Lightweight Materials and Manufacture
7
3
10.1016/j.ijlmm.2024.02.002
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188449898&doi=10.1016%2fj.ijlmm.2024.02.002&partnerID=40&md5=2d513a0e05df7a9567dc9407a82a91f1
The utilization of Aluminum hollow panels enhances structural strength while simultaneously ensuring a lightweight and efficient use of materials. During their application, these panels necessitate a welding process that is susceptible to porosity due to the disparity in hydrogen gas solubility between liquid and solid aluminum. Solid-state welding techniques, such as Friction Stir Welding (FSW), have proven to be effective and appropriate solutions for overcoming this issue. However, due to the thickness of the hollow panels, FSW process is unfeasible as it requires welding on both sides, resulting in prolonged production times. Consequently, the development of a one-step double-acting FSW technique becomes necessary, involving the simultaneous utilization of two tools. The usage of two tools introduces two sources of friction-stir forces, heat, and axial forces, demanding an assessment of the novel response from the specimens. This research aims to analyze the effect of a specific parameter, namely the tool rotation speed, within the one-step double-acting FSW process on the physical and mechanical properties of the AA6061 hollow panels. The One-Step Double-Acting FSW process involved conducting variations in the tool rotation speed on both sides of the welds. Specifically, for the 4G weld position (underside of the workpiece with an overhead weld position), speeds of 1200, 1500, and 1800 rpm were employed. Meanwhile, a consistent rotation speed of 1500 rpm was maintained for the 1G weld position (overside of the material with a flat weld position). The transverse speed and tilt angle are set at 30 mm/min and 2°, respectively. Elevating the tool rotation speed results in increased hardness, load capacity, and bending strength of the weld joints. The specimen subjected to the highest rotational speed (1800 rpm) exhibits the most exceptional mechanical properties, including a hardness of 73.46 HVN, load capacity of 18.47 kN, and bending strength of 60.56 MPa. © 2024 The Authors
KeAi Publishing Communications Ltd.
25888404
English
Article
All Open Access; Gold Open Access
author Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
spellingShingle Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
author_facet Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
author_sort Hilmawan M.I.; Putri E.D.W.S.; Muhayat N.; Manurung Y.H.P.; Ilhamdi; Sulardjaka; Hendrato; Triyono
title Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
title_short Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
title_full Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
title_fullStr Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
title_full_unstemmed Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
title_sort Effect of tools rotational speed on the mechanical properties of one-step double-acting friction stir welded aluminum alloy AA 6061 hollow panel
publishDate 2024
container_title International Journal of Lightweight Materials and Manufacture
container_volume 7
container_issue 3
doi_str_mv 10.1016/j.ijlmm.2024.02.002
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85188449898&doi=10.1016%2fj.ijlmm.2024.02.002&partnerID=40&md5=2d513a0e05df7a9567dc9407a82a91f1
description The utilization of Aluminum hollow panels enhances structural strength while simultaneously ensuring a lightweight and efficient use of materials. During their application, these panels necessitate a welding process that is susceptible to porosity due to the disparity in hydrogen gas solubility between liquid and solid aluminum. Solid-state welding techniques, such as Friction Stir Welding (FSW), have proven to be effective and appropriate solutions for overcoming this issue. However, due to the thickness of the hollow panels, FSW process is unfeasible as it requires welding on both sides, resulting in prolonged production times. Consequently, the development of a one-step double-acting FSW technique becomes necessary, involving the simultaneous utilization of two tools. The usage of two tools introduces two sources of friction-stir forces, heat, and axial forces, demanding an assessment of the novel response from the specimens. This research aims to analyze the effect of a specific parameter, namely the tool rotation speed, within the one-step double-acting FSW process on the physical and mechanical properties of the AA6061 hollow panels. The One-Step Double-Acting FSW process involved conducting variations in the tool rotation speed on both sides of the welds. Specifically, for the 4G weld position (underside of the workpiece with an overhead weld position), speeds of 1200, 1500, and 1800 rpm were employed. Meanwhile, a consistent rotation speed of 1500 rpm was maintained for the 1G weld position (overside of the material with a flat weld position). The transverse speed and tilt angle are set at 30 mm/min and 2°, respectively. Elevating the tool rotation speed results in increased hardness, load capacity, and bending strength of the weld joints. The specimen subjected to the highest rotational speed (1800 rpm) exhibits the most exceptional mechanical properties, including a hardness of 73.46 HVN, load capacity of 18.47 kN, and bending strength of 60.56 MPa. © 2024 The Authors
publisher KeAi Publishing Communications Ltd.
issn 25888404
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
_version_ 1809678152879833088