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V. Paranthaman

Bio: V. Paranthaman is an academic researcher. The author has contributed to research in topics: Welding & Machinability. The author has an hindex of 1, co-authored 1 publications receiving 1 citations.

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TL;DR: In this paper, a small review on the fatigue behavior of laser welding titanium alloys has been analyzed to enhance its mechanical properties, influence of process parameters, fracture mechanisms, and the strength-to-weight ratio.

8 citations


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26 Oct 2021
TL;DR: Titania nanotubes have been used in regenerative medicine and nanomedicine applications, such as localized drug delivery system, immunomodulatory agents, antibacterial agents, and hemocompatibility, and the future outlook of titanium alloys as biomaterials as mentioned in this paper.
Abstract: Commercially pure titanium and titanium alloys have been among the most commonly used materials for biomedical applications since the 1950s. Due to the excellent mechanical tribological properties, corrosion resistance, biocompatibility, and antibacterial properties of titanium, it is getting much attention as a biomaterial for implants. Furthermore, titanium promotes osseointegration without any additional adhesives by physically bonding with the living bone at the implant site. These properties are crucial for producing high-strength metallic alloys for biomedical applications. Titanium alloys are manufactured into the three types of α, β, and α + β. The scientific and clinical understanding of titanium and its potential applications, especially in the biomedical field, are still in the early stages. This review aims to establish a credible platform for the current and future roles of titanium in biomedicine. We first explore the developmental history of titanium. Then, we review the recent advancement of the utility of titanium in diverse biomedical areas, its functional properties, mechanisms of biocompatibility, host tissue responses, and various relevant antimicrobial strategies. Future research will be directed toward advanced manufacturing technologies, such as powder-based additive manufacturing, electron beam melting and laser melting deposition, as well as analyzing the effects of alloying elements on the biocompatibility, corrosion resistance, and mechanical properties of titanium. Moreover, the role of titania nanotubes in regenerative medicine and nanomedicine applications, such as localized drug delivery system, immunomodulatory agents, antibacterial agents, and hemocompatibility, is investigated, and the paper concludes with the future outlook of titanium alloys as biomaterials.

54 citations

Journal ArticleDOI
TL;DR: Titanium matrix composites (TMCs) have high specific strength and stiffness compared to steel and nickel-based materials as discussed by the authors , and are used to make wear and abrasion resistant elements like cutting tools and forming dies.

16 citations

Journal ArticleDOI
TL;DR: A review of the state of research in the field of friction stir welding and processing has been carried out in this paper , where the main direction of research is related to the features of friction-stir welding of titanium alloys.
Abstract: A review of the state of research in the field of friction stir welding and processing has been carried out. The features of plastic flow in friction stir welding and their connection with the processes of adhesion friction are shown. The main direction of research is related to the features of friction stir welding of titanium alloys. Special attention is paid to the selection of working tool materials from various alloys for friction stir welding and the processing of titanium alloys. The main advantages and disadvantages of applying different types of tools for friction stir welding of titanium alloys are shown. Different mechanisms of tool wear in friction stir welding associated with the interaction of processed material and tools are demonstrated. Information on the influence of tool and material interaction at welding on the mechanical properties and operational characteristics of obtained joints is given.

1 citations