Javascript must be enabled to continue!
Fabrication of three-dimensional honeycomb structure for aeronautical applications using selective laser melting: a preliminary investigation
View through CrossRef
Purpose
– The purpose of this paper was to investigate the feasibility on design and production of a three-dimensional honeycomb based on selective laser melting (SLM) technique for use in aeronautical application.
Design/methodology/approach
– Various polyhedrons were investigated using their mechanical property, i.e. strain energy density (SED), by means of finite element (FE) analysis for the suitability of use in aerospace application; the highest SED polyhedron was selected as a candidate polyhedron. From the FE analysis, the truncated octahedron (three-dimensional honeycomb) structure was considered to be the potential candidate. Polyhedron size and beam thickness of the open-cellular three-dimensional honeycomb structure were modelled and analysed to observe how the geometric properties influence the stiffness of the structure. One selected model of open-cellular honeycomb (unit cell size: 2.5 mm and beam thickness: 0.15 mm) was fabricated using SLM. The SLM prototypes were assessed by their mechanical properties, including compressive strength, stiffness and strength per weight ratio. To investigate the feasibility in production of airfoil section sandwich structure, NACA 0016 airfoil section with three-dimensional honeycomb core was constructed and also fabricated using SLM.
Findings
– According to the result, the three-dimensional honeycomb has elastic modulus of 63.18 MPa and compressive strength of 1.1 MPa, whereas strength per weight ratio is approximately 5.0 × 103 Nm/kg. The FE result presented good agreement to the mechanical testing result. The geometric parameter of the three-dimensional honeycomb structure influences the stiffness, especially the beam thickness, i.e. increase of beam thickness obviously produces the stiffer structure. In addition, the sandwich structure of airfoil was also successfully manufactured.
Originality/value
– This work demonstrated the production of sandwich structure of airfoil using SLM for aeronautical engineering. This investigation has shown the potential applications of the three-dimensional structure, e.g. aircraft interior compartment components and structure of unmanned aerial vehicles.
Title: Fabrication of three-dimensional honeycomb structure for aeronautical applications using selective laser melting: a preliminary investigation
Description:
Purpose
– The purpose of this paper was to investigate the feasibility on design and production of a three-dimensional honeycomb based on selective laser melting (SLM) technique for use in aeronautical application.
Design/methodology/approach
– Various polyhedrons were investigated using their mechanical property, i.
e.
strain energy density (SED), by means of finite element (FE) analysis for the suitability of use in aerospace application; the highest SED polyhedron was selected as a candidate polyhedron.
From the FE analysis, the truncated octahedron (three-dimensional honeycomb) structure was considered to be the potential candidate.
Polyhedron size and beam thickness of the open-cellular three-dimensional honeycomb structure were modelled and analysed to observe how the geometric properties influence the stiffness of the structure.
One selected model of open-cellular honeycomb (unit cell size: 2.
5 mm and beam thickness: 0.
15 mm) was fabricated using SLM.
The SLM prototypes were assessed by their mechanical properties, including compressive strength, stiffness and strength per weight ratio.
To investigate the feasibility in production of airfoil section sandwich structure, NACA 0016 airfoil section with three-dimensional honeycomb core was constructed and also fabricated using SLM.
Findings
– According to the result, the three-dimensional honeycomb has elastic modulus of 63.
18 MPa and compressive strength of 1.
1 MPa, whereas strength per weight ratio is approximately 5.
0 × 103 Nm/kg.
The FE result presented good agreement to the mechanical testing result.
The geometric parameter of the three-dimensional honeycomb structure influences the stiffness, especially the beam thickness, i.
e.
increase of beam thickness obviously produces the stiffer structure.
In addition, the sandwich structure of airfoil was also successfully manufactured.
Originality/value
– This work demonstrated the production of sandwich structure of airfoil using SLM for aeronautical engineering.
This investigation has shown the potential applications of the three-dimensional structure, e.
g.
aircraft interior compartment components and structure of unmanned aerial vehicles.
Related Results
Aviation English - A global perspective: analysis, teaching, assessment
Aviation English - A global perspective: analysis, teaching, assessment
This e-book brings together 13 chapters written by aviation English researchers and practitioners settled in six different countries, representing institutions and universities fro...
Leveraging Variable Density Honeycomb Structures for Innovative Design in Mission-Critical Embedded Devices
Leveraging Variable Density Honeycomb Structures for Innovative Design in Mission-Critical Embedded Devices
The imperative for lightweighting technologies, paramount in mission-critical cyber-physical systems (CPSs) including aerospace, automotive and allied sectors, hinges upon optimizi...
Laser Spectrometric Techniques in Analytical Atomic Spectrometry
Laser Spectrometric Techniques in Analytical Atomic Spectrometry
Abstract
Laser light has a number of spectacular properties that make it useful for analytical spectrometry. One is that it has a high directionality (i.e. i...
LEO-to-GNSS Laser Interferometer for Space Geodesy with Laser DORIS and Laser SAR
LEO-to-GNSS Laser Interferometer for Space Geodesy with Laser DORIS and Laser SAR
In order to increase the accuracy of precise orbit determination for a single satellite or satellites in LEO formation, we propose using a LEO-to-GNSS laser interferometer, what we...
Comparative study of static and dynamic characteristics of non-pneumatic tires with gradient honeycomb structure
Comparative study of static and dynamic characteristics of non-pneumatic tires with gradient honeycomb structure
Abstract
The static and dynamic properties of the honeycomb non-pneumatic tires (NPTs) are strongly influenced by the spoke structure. Due to the complexity of the honeycom...
Powder Bed Fusion Techniques in Metal 3D Printing: A Review
Powder Bed Fusion Techniques in Metal 3D Printing: A Review
The use of 3D printing (additive manufacturing) with metal has grown significantly in demand recently, greatly reducing the time and expense required to produce complex interconnec...
Research on Quasi Honeycomb Superlattice Pattern in Dielectric Barrier Discharge
Research on Quasi Honeycomb Superlattice Pattern in Dielectric Barrier Discharge
Patterns formed in dielectric barrier discharge is a typical nonlinear selforganization phenomenon. Research on patterns helps elucidate the formation and evolution mechanisms of s...
Reducing honeycomb-generated turbulence with a passive grid
Reducing honeycomb-generated turbulence with a passive grid
Abstract
Honeycombs are widely used to laminarize fluid streams by inhibiting the lateral components of the fluctuating velocity. However, they also produce additional turb...

