Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology
Laser Engineered Net Shaping (LENS<sup>TM</sup>) is currently a promising and developing technique. It allows for shortening the time between the design stage and the manufacturing process. LENS is an alternative to classic metal manufacturing methods, such as casting and plastic working...
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doaj-8f8e6f4391564778b5c3dd12fd85855b2020-11-25T00:50:35ZengMDPI AGMaterials1996-19442019-04-01128122510.3390/ma12081225ma12081225Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) TechnologyAnna Antolak-Dudka0Paweł Płatek1Tomasz Durejko2Paweł Baranowski3Jerzy Małachowski4Marcin Sarzyński5Tomasz Czujko6Department of Advanced Materials and Technologies, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandInstitute of Armament Technology, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandDepartment of Advanced Materials and Technologies, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandDepartment of Mechanics and Applied Computer Science, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandDepartment of Mechanics and Applied Computer Science, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandInstitute of Armament Technology, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandDepartment of Advanced Materials and Technologies, Military University of Technology, Urbanowicza 2, Warsaw 00-908, PolandLaser Engineered Net Shaping (LENS<sup>TM</sup>) is currently a promising and developing technique. It allows for shortening the time between the design stage and the manufacturing process. LENS is an alternative to classic metal manufacturing methods, such as casting and plastic working. Moreover, it enables the production of finished spatial structures using different types of metallic powders as starting materials. Using this technology, thin-walled honeycomb structures with four different cell sizes were obtained. The technological parameters of the manufacturing process were selected experimentally, and the initial powder was a spherical Ti6Al4V powder with a particle size of 45–105 µm. The dimensions of the specimens were approximately 40 × 40 × 10 mm, and the wall thickness was approximately 0.7 mm. The geometrical quality and the surface roughness of the manufactured structures were investigated. Due to the high cooling rates occurring during the LENS process, the microstructure for this alloy consists only of the martensitic α’ phase. In order to increase the mechanical parameters, it was necessary to apply post processing heat treatment leading to the creation of a two-phase α + β structure. The main aim of this investigation was to study the energy absorption of additively manufactured regular cellular structures with a honeycomb topology under static and dynamic loading conditions.https://www.mdpi.com/1996-1944/12/8/1225honeycomb structureadditive manufacturinglaser engineered net shapingLENSTi6Al4V alloyenergy absorptiondynamic tests |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Anna Antolak-Dudka Paweł Płatek Tomasz Durejko Paweł Baranowski Jerzy Małachowski Marcin Sarzyński Tomasz Czujko |
spellingShingle |
Anna Antolak-Dudka Paweł Płatek Tomasz Durejko Paweł Baranowski Jerzy Małachowski Marcin Sarzyński Tomasz Czujko Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology Materials honeycomb structure additive manufacturing laser engineered net shaping LENS Ti6Al4V alloy energy absorption dynamic tests |
author_facet |
Anna Antolak-Dudka Paweł Płatek Tomasz Durejko Paweł Baranowski Jerzy Małachowski Marcin Sarzyński Tomasz Czujko |
author_sort |
Anna Antolak-Dudka |
title |
Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology |
title_short |
Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology |
title_full |
Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology |
title_fullStr |
Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology |
title_full_unstemmed |
Static and Dynamic Loading Behavior of Ti6Al4V Honeycomb Structures Manufactured by Laser Engineered Net Shaping (LENS<sup>TM</sup>) Technology |
title_sort |
static and dynamic loading behavior of ti6al4v honeycomb structures manufactured by laser engineered net shaping (lens<sup>tm</sup>) technology |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2019-04-01 |
description |
Laser Engineered Net Shaping (LENS<sup>TM</sup>) is currently a promising and developing technique. It allows for shortening the time between the design stage and the manufacturing process. LENS is an alternative to classic metal manufacturing methods, such as casting and plastic working. Moreover, it enables the production of finished spatial structures using different types of metallic powders as starting materials. Using this technology, thin-walled honeycomb structures with four different cell sizes were obtained. The technological parameters of the manufacturing process were selected experimentally, and the initial powder was a spherical Ti6Al4V powder with a particle size of 45–105 µm. The dimensions of the specimens were approximately 40 × 40 × 10 mm, and the wall thickness was approximately 0.7 mm. The geometrical quality and the surface roughness of the manufactured structures were investigated. Due to the high cooling rates occurring during the LENS process, the microstructure for this alloy consists only of the martensitic α’ phase. In order to increase the mechanical parameters, it was necessary to apply post processing heat treatment leading to the creation of a two-phase α + β structure. The main aim of this investigation was to study the energy absorption of additively manufactured regular cellular structures with a honeycomb topology under static and dynamic loading conditions. |
topic |
honeycomb structure additive manufacturing laser engineered net shaping LENS Ti6Al4V alloy energy absorption dynamic tests |
url |
https://www.mdpi.com/1996-1944/12/8/1225 |
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