DocumentCode
1320247
Title
Pulsed Laser Coating of Hydroxyapatite/Titanium Nanoparticles on Ti-6Al-4V Substrates: Multiphysics Simulation and Experiments
Author
Zhang, Martin Yi ; Cheng, Gary J.
Author_Institution
Sch. of Ind. Eng., Purdue Univ., West Lafayette, IN, USA
Volume
10
Issue
3
fYear
2011
Firstpage
177
Lastpage
186
Abstract
Pulsed laser coating (PLC) of bioceramics/metal nanomaterials on metal substrates was investigated in this research. It is found that due to the nature of the nanosized particles and pulse laser beam, PLC processed hydroxyapatite (HAp) coatings possess strong coating/substrate interfacial bonding strength, and minimum thermal decomposition. Feasibility analysis of PLC is conducted using both simulation and experiments. In the multiphysics simulation, laser interacting with metal nanoparticles and heat conduction is simulated by coupling the electromagnetic (EM) module and heat transfer (HT) module. In experiments, HAp and titanium nanoparticle mixture are coated on Ti-6Al-4V substrate using nanosecond pulsed Nd:YAG laser with wavelength of 1064 nm. Resulting temperature is measured by calibrated infrared (IR) camera and compared with simulation results. Experimental results agree well with simulation which serves as a guidance to find appropriate processing parameters. It is found that resulting temperature increases with increasing of pulse energy linearly and decreasing of pulse duration following the power law. It is recommended that shorter pulses to be used in PLC due to its better sinterability. Microstructure and chemical characterizations confirmed that HAp was physically and chemically maintained due to pulse laser caused rapid heating and cooling processes.
Keywords
aluminium alloys; bioceramics; bone; calcium compounds; heat transfer; interface structure; laser materials processing; nanomedicine; orthopaedics; pulsed laser deposition; titanium; titanium alloys; vanadium alloys; Ca5(PO4)3(OH)-Ti; Ti-Al-V; bioceramics; chemical characterization; electromagnetic module; heat transfer module; hydroxyapatite coating; hydroxyapatite nanoparticle; infrared camera; interfacial bonding strength; laser interaction; metal nanomaterial; metal substrate; microstructure; multiphysics simulation; nanoparticle metal mixture; nanosecond pulsed Nd:YAG laser; pulsed laser coating; thermal decomposition; titanium nanoparticle; Coatings; Laser beams; Laser modes; Laser sintering; Nanoparticles; Substrates; Titanium; Bioceramic; hydroxyapatite; laser-nanoparticle interaction; multiphysics simulation; pulsed laser coating; titanium nanoparticles; Aluminum; Coated Materials, Biocompatible; Computer Simulation; Durapatite; Electromagnetic Phenomena; Hot Temperature; Lasers; Microscopy, Electron, Scanning; Nanoparticles; Titanium; Vanadium;
fLanguage
English
Journal_Title
NanoBioscience, IEEE Transactions on
Publisher
ieee
ISSN
1536-1241
Type
jour
DOI
10.1109/TNB.2011.2163641
Filename
6018310
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