Investigating the Degradation Behavior of Grain Refined WE43 Magnesium Alloy Produced by Friction Stir Processing for Medical Implant Applications
DOI:
https://doi.org/10.18311/jmmf/2023/41614Keywords:
Biomineralization, Degradable Implants, Friction Stir Processing, Grain Refinement, WE43Abstract
Developing Magnesium (Mg) based degradable implants for orthopedic applications is an attractive research area for the past two decades in the biomedical engineering. Mg is well accepted by human system and does not cause any health abnormalities during its degradation in the physiological environment. However, in order to improve its life span by controlling the aggressive degradation, novel Mg alloys are developed and subjected to different treatments to enhance their performance to tailor as promising candidates for implant manufacturing. In this context, recently, a special attention is paid towards using rare earth containing Mg alloys due to their excellent mechanical and corrosion resistance properties. Hence, in the present work, WE43 Mg alloy has been selected and the microstructual modification was carried out by friction stir processing. The role of grain refinement on the degradation behavior of FSPed WE43 Mg alloy was assessed by immersing the samples in simulated body fluids. From the microstructural studies, grain size reduction from 46 ± 4.2 µm to 16.1 ± 5.4 µm was achieved after FSP. The larger intermetallic particles were also observed as dissolved into the solid solution grains and fewer intermetallic particles were remained in the stir zone of FSPed alloy. After immersion studies, the surface of the samples was deposited with mineral phases and were analyzed by X-ray diffraction analysis and scanning electron microscope and found that the grain refinement achieved by FSP has a significant effect on increasing the mineral depositions which helps to control the degradation rate of the samples.
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References
Geetha M, Singh AK, Asokamani R, Gogia AK. Ti based biomaterials, the ultimate choice for orthopaedic implants- A review. Progress in Materials Science. 2009; 54(3):397-425. https://doi.org/10.1016/j.pmatsci.2008.06.004
Regar E, Sianos G, Serruys PW. Stent development and local drug delivery. British Medical Bulletin. 2001; 59(1):227-48. May 8;2014. https://doi.org/10.1155/2014/459465 PMid:24895577 PMCid:PMC4033350
Jaganathan SK, Supriyanto E, Murugesan S, Balaji A, Asokan MK. Biomaterials in cardiovascular research: applications and clinical implications. BioMed Research International; 2014. https://doi.org/10.1155/2014/459465 PMid:24895577 PMCid:PMC4033350
Agarwal S, Curtin J, Duffy B, Jaiswal S. Biodegradable magnesium alloys for orthopaedic applications: A review on corrosion, biocompatibility and surface modifications. Materials Science and Engineering: C. 2016; 68:948-63. https://doi.org/10.1016/j.msec.2016.06.020 PMid:27524097
Peron M, Torgersen J, Berto F. Mg and its alloys for biomedical applications: Exploring corrosion and its interplay with mechanical failure. Metals. 2017; 7(7):252. https://doi.org/10.3390/met7070252
Yaszemski MJ, Trantolo DJ, Lewandrowski KU, Hasirci V, Altobelli DE, Wise DL, editors. Tissue engineering and novel delivery systems. CRC Press; 2003. https://doi.org/10.1201/9780203913338
Razavi M, Huang Y. Assessment of magnesium-based biomaterials: From bench to clinic. Biomaterials Science. 2019; 7(6):2241-63. https://doi.org/10.1039/C9BM00289H PMid:31069348
Moghaddam NS, Andani MT, Amerinatanzi A, Haberland C, Huff S, Miller M, Elahinia M, Dean D. Metals for bone implants: Safety, design, and efficacy. Biomanufacturing Reviews. 2016; 1:1-6. https://doi.org/10.1007/s40898-016-0001-2
Farraro KF, Kim KE, LY S. Woo, JR Flowers, MB McCullough. Revolutionizing orthopaedic biomaterials: The potential of biodegradable and bioresorbable magnesium-based materials for functional tissue engineering. Journal of Biomechanics. 2014; 47:1979-86. https://doi.org/10.1016/j.jbiomech.2013.12.003 PMid:24373510 PMCid:PMC4144980
Tian L, Tang N, Ngai T, Wu C, Ruan Y, Huang L, Qin L. Hybrid fracture fixation systems developed for orthopaedic applications: A general review. Journal of Orthopaedic Translation. 2019; 16:1-3. https://doi.org/10.1016/j.jot.2018.06.006 PMid:30723676 PMCid:PMC6350075
Hermawan H. Biodegradable metals: From concept to applications. Springer Science and Business Media; 2012. https://doi.org/10.1007/978-3-642-31170-3
Seal CK, Vince K, Hodgson MA. Biodegradable surgical implants based on magnesium alloys- A review of current research. IOP Conference Series: Materials Science and Engineering. IOP Publishing. 2009; 4(1):012011. https://doi.org/10.1088/1757-899X/4/1/012011
Sumner DR. Long-term implant fixation and stress-shielding in total hip replacement. Journal of Biomechanics. 2015; 48(5):797-800. https://doi.org/10.1016/j.jbio-mech.2014.12.021 PMid:25579990
Kirkland NT. Magnesium biomaterials: past, present and future. Corrosion Engineering, Science and Technology. 2012; 47(5):322-8. https://doi.org/10.1179/1743278212Y.0000000034
Wu J, Shen C, Zhou X, Wang X, Zhang L. Preparing high-strength and osteogenesis-induced Mg-Gd alloy with ultra-fine microstructure by equal channel angular pressing. Materials Research Express. 2023; 10(3):035402. https://doi.org/10.1088/2053-1591/acc0e0
Sunil BR, Thirugnanam A, Chakkingal U, Kumar TSS. Nano and ultra fine grained metallic biomaterials by severe plastic deformation techniques. Materials Technology. 2016; 31(13):743-55. https://doi.org/10.1080/10667857.2016.1249133
Mishra RS, De PS, Kumar N, Mishra RS, De PS, Kumar N. Friction stir processing. Friction stir welding and processing: Science and engineering. 2014:259-96. https://doi.org/10.1007/978-3-319-07043-8_9
Wang W, Han P, Peng P, Zhang T, Liu Q, Yuan SN, Huang LY, Yu HL, Qiao K, Wang KS. Friction stir processing of magnesium alloys: A review. Acta Metallurgica Sinica (English Letters). 2020; 33:43-57. https://doi.org/10.1007/s40195-019-00971-7
Buradagunta RS, Sampath Kumar TS, Uday C. Bioactive grain refined magnesium by friction stir processing. Materials Science Forum. Trans Tech Publications Ltd. 2012; 710:264-9. https://doi.org/10.4028/www.scientific.net/MSF.710.264
Saikrishna N, Reddy GP, Munirathinam B, Sunil BR. Influence of bimodal grain size distribution on the corrosion behavior of friction stir processed biodegradable AZ31 magnesium alloy. Journal of Magnesium and Alloys. 2016; 4(1):68-76. https://doi.org/10.1016/j.jma.2015.12.004
Xu X, Chen X, Du W, Geng Y, Pan F. Effect of Nd on microstructure and mechanical properties of asextruded Mg-Y-Zr-Nd alloy. Journal of Materials Science & Technology. 2017; 33(9):926-34. https://doi.org/10.1016/j.jmst.2017.04.011
Yamasaki M, Hashimoto K, Hagihara K, Kawamura Y. Effect of multimodal microstructure evolution on mechanical properties of Mg-Zn-Y extruded alloy. Acta Materialia. 2011; 59(9):3646-58. https://doi.org/10.1016/j.actamat.2011.02.038
Du BN, Hu ZY, Sheng LY, Xu DK, Qiao YX, Wang BJ, Wang J, Zheng YF, Xi TF. Microstructural characteristics and mechanical properties of the hot extruded Mg-Zn-Y-Nd alloys. Journal of Materials Science and Technology. 2021; 60:44-55. https://doi.org/10.1016/j.jmst.2020.05.021
Patle H, Mahendiran P, Sunil BR, Dumpala R. Hardness and sliding wear characteristics of AA7075-T6 surface composites reinforced with B4C and MoS2 particles. Materials Research Express. 2019; 6(8):086589. https://doi.org/10.1088/2053-1591/ab1ff4
Raphael JH, Southall JL, Gnanadurai TV, Treharne GJ, Kitas GD. Long-term experience with implanted intrathecal drug administration systems for failed back syndrome and chronic mechanical low back pain. BMC Musculoskeletal Disorders. 2002; 3(1):1-8. https://doi.org/10.1186/1471-2474-3-17 PMid:12076357 PMCid:PMC116675
Kokubo T, Takadama H. How useful is SBF in predicting in vivo bone bioactivity? Biomaterials. 2006; 27(15):2907-15. https://doi.org/10.1016/j.biomaterials.2006.01.017 PMid:16448693
Kiran GS, Krishna KH, Sameer SK, Bhargavi M, Kumar BS, Rao GM, Naidubabu Y, Dumpala R, Sunil BR. Machining characteristics of fine grained AZ91 Mg alloy processed by friction stir processing. Transactions of Nonferrous Metals Society of China. 2017; 27(4):804-11. https://doi.org/10.1016/S1003-6326(17)60092-X
Wang Y, Wei M, Gao J, Hu J, Zhang Y. Corrosion process of pure magnesium in simulated body fluid. Materials letters. 2008; 62(14):2181-4. https://doi.org/10.1016/j.matlet.2007.11.045
Kundurti SC, Sharma A, Tambe P, Kumar A. Fabrication of surface metal matrix composites for structural applications using friction stir processing–a review. Materials Today: Proceedings. 2022; 56: 1468-1477.