Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography

Lattice structures are superior to stochastic foams in mechanical properties and are finding increasing applications. Their properties can be tailored in a wide range through adjusting the design and dimensions of the unit cell, changing the constituent materials as well as forming into hierarchical...

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Main Authors: Chow Shing Shin, Yu Chia Chang
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/5/785
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spelling doaj-3517db41de4b4423a1a2140869f78e642021-03-05T00:03:21ZengMDPI AGPolymers2073-43602021-03-011378578510.3390/polym13050785Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP StereolithographyChow Shing Shin0Yu Chia Chang1Department of Mechanical Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei 10617, TaiwanDepartment of Mechanical Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Road, Taipei 10617, TaiwanLattice structures are superior to stochastic foams in mechanical properties and are finding increasing applications. Their properties can be tailored in a wide range through adjusting the design and dimensions of the unit cell, changing the constituent materials as well as forming into hierarchical structures. In order to achieve more levels of hierarchy, the dimensions of the fundamental lattice have to be small enough. Although lattice size of several microns can be fabricated using the two-photon polymerization technique, sophisticated and costly equipment is required. To balance cost and performance, a low-cost high resolution micro-stereolithographic system has been developed in this work based on a commercial digital light processing (DLP) projector. Unit cell lengths as small as 100 μm have been successfully fabricated. Decreasing the unit cell size from 150 to 100 μm increased the compressive stiffness by 26%. Different pretreatments to facilitate the electroless plating of nickel on the lattice structure have been attempted. A pretreatment of dip coating in a graphene suspension is the most successful and increased the strength and stiffness by 5.3 and 3.6 times, respectively. Even a very light and incomplete nickel plating in the interior has increase the structural stiffness and strength by more than twofold.https://www.mdpi.com/2073-4360/13/5/7853D printingmicro-lattice materialphoto-polymerizationDLP micro-stereolithographyelectroless nickel platingcompressive behavior
collection DOAJ
language English
format Article
sources DOAJ
author Chow Shing Shin
Yu Chia Chang
spellingShingle Chow Shing Shin
Yu Chia Chang
Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
Polymers
3D printing
micro-lattice material
photo-polymerization
DLP micro-stereolithography
electroless nickel plating
compressive behavior
author_facet Chow Shing Shin
Yu Chia Chang
author_sort Chow Shing Shin
title Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
title_short Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
title_full Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
title_fullStr Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
title_full_unstemmed Fabrication and Compressive Behavior of a Micro-Lattice Composite by High Resolution DLP Stereolithography
title_sort fabrication and compressive behavior of a micro-lattice composite by high resolution dlp stereolithography
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-03-01
description Lattice structures are superior to stochastic foams in mechanical properties and are finding increasing applications. Their properties can be tailored in a wide range through adjusting the design and dimensions of the unit cell, changing the constituent materials as well as forming into hierarchical structures. In order to achieve more levels of hierarchy, the dimensions of the fundamental lattice have to be small enough. Although lattice size of several microns can be fabricated using the two-photon polymerization technique, sophisticated and costly equipment is required. To balance cost and performance, a low-cost high resolution micro-stereolithographic system has been developed in this work based on a commercial digital light processing (DLP) projector. Unit cell lengths as small as 100 μm have been successfully fabricated. Decreasing the unit cell size from 150 to 100 μm increased the compressive stiffness by 26%. Different pretreatments to facilitate the electroless plating of nickel on the lattice structure have been attempted. A pretreatment of dip coating in a graphene suspension is the most successful and increased the strength and stiffness by 5.3 and 3.6 times, respectively. Even a very light and incomplete nickel plating in the interior has increase the structural stiffness and strength by more than twofold.
topic 3D printing
micro-lattice material
photo-polymerization
DLP micro-stereolithography
electroless nickel plating
compressive behavior
url https://www.mdpi.com/2073-4360/13/5/785
work_keys_str_mv AT chowshingshin fabricationandcompressivebehaviorofamicrolatticecompositebyhighresolutiondlpstereolithography
AT yuchiachang fabricationandcompressivebehaviorofamicrolatticecompositebyhighresolutiondlpstereolithography
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