| Issue |
Manufacturing Rev.
Volume 13, 2026
|
|
|---|---|---|
| Article Number | 12 | |
| Number of page(s) | 12 | |
| DOI | https://doi.org/10.1051/mfreview/2026003 | |
| Published online | 17 June 2026 | |
Original article
Toward scalable TiO2 nanotube-coated orthopedic implants: electrolyte reuse, fluoride replenishment strategy, and furnace throughput modeling
Vidya Pratishthan’s Kamalnayan Bajaj Institute of Engineering and Technology, Baramati, Maharashtra, India
* e-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
Received:
27
September
2025
Accepted:
28
March
2026
Abstract
Scalable manufacturing of titania nanotube (TiO2 NT) coatings for orthopedic implants requires robust control of electrochemical anodization and post-anodization thermal processing under production-relevant conditions. While TiO2 nanotube surfaces have shown promising biological performance at a laboratory scale, industrial translation is constrained by challenges associated with electrolyte reuse, process reproducibility, and annealing throughput. This study addresses these bottlenecks through a combined experimental and process-modeling approach focused on manufacturability rather than biological validation.
Three anodization workflows, an optimized ethylene glycol-based ammonium fluoride process, a conventional EG + NH4F baseline, and an HF aqueous baseline, were benchmarked on additively manufactured Ti–6Al–4V substrates produced by direct metal laser sintering and electron beam melting. The optimized process produced larger nanotube diameters (108 ± 9.6 nm), higher anatase fraction after short annealing (84.9 ± 1.7%), and improved process yield (90.7 ± 2.3%) relative to baseline methods. Electrolyte reuse experiments revealed predictable fluoride depletion and accumulation of dissolved metallic species with increasing processed area; filtration removed particulates but only a limited fraction of dissolved ions. A simple predictive fluoride depletion model was therefore developed to enable proactive replenishment during reuse. Implant-scale furnace modeling showed that direct energy cost per implant is low, while throughput is governed primarily by cycle time. Overall, the study provides a practical framework for electrolyte lifecycle management and high-throughput thermal processing, supporting industrial-scale production of TiO2 nanotube-coated orthopedic implants.
Key words: Titania nanotubes (TiO2 NTs) / electrolyte reuse and replenishment / surface engineering for implants / furnace energy and throughput modeling / industrial scalability of anodization
© S.M. Bhosle and S.C. Mahadik, Published by EDP Sciences 2026
This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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