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GVR Report. Foot Orthotic Insoles Market Size, Share & Trends Report. Foot Orthotic Insoles Market Size, Share & Trends Analysis Report By Material (Thermoplastic, Composite Carbon Fiber, Others), By Type (Pre-fabricated, Custom-made), By Distribution Channel, By Region, And Segment Forecasts, 2023 – 2030, 2023. Available at: https://www.grandviewresearch.com/industry-analysis/foot-orthotic-insoles-market. (Last accessed 11.11.2024).Search in Google Scholar
Cheng, J., Wang, J.C. “Exploring the feasibility of advanced manufacturing for mass customization of insoles in the context of ESG”, Int. J. Precis. Eng. Manuf. Green Tech. 11, pp. 815 – 832, 2024. DOI: 10.1007/s40684-024-00615-xSearch in Google Scholar
Farhan M., Wang J., Bray P., et al., “Comparison of 3D scanning versus traditional methods of capturing foot and ankle morphology for the fabrication of orthoses: a systematic review”, J. Foot Ankle Res. 14 (2), 2021. DOI: 10.1186/s13047-020-00442-8Search in Google Scholar
Wang, K., Lu, C., Ye, R., et al., “Research and development of 3D printing orthotic insoles and preliminary treatment of leg length discrepancy patients”, Technol. Health Care 28, pp. 615 – 624, 2020. DOI: 10.3233/THC-202170Search in Google Scholar
Nižetić, J., Raos, P., Šimunović, G., Klaić, M., Mutka, A.”Calibration of a 5-axis CNC machine for making orthoses by means of a vision system”, Trans. Famena 43, pp. 81 – 102, 2022. DOI: 10.21278/TOF.463039722.Search in Google Scholar
Smith, D.G., Burgess, E.M. “The use of CAD/CAM technology in prosthetics and orthotics—current clinical models and a view to the future”, J. Rehabil. Res. Dev. 38, pp. Pp. 327 – 334, PMID: 11440264, 2001. Available at: https://www.rehab.research.va.gov/jour/01/38/3/pdf/smith.pdf (Last accessed 11.11.2024).Search in Google Scholar
Barrios-Muriel, J., Romero-Sánchez, F., Alonso-Sánchez, F. J., Rodríguez Salgado, D. “Advances in orthotic and prosthetic manufacturing: a technology review”, Materials 13 (2) 295, 2020. DOI: 10.3390/ma13020295Search in Google Scholar
Wang, K., Lu, C., Ye, R., et al. “Research and development of 3D printing orthotic insoles and preliminary treatment of leg length discrepancy patients”, Technol. Health Care 28 pp. 615 – 624, 2020. DOI: 10.3233/THC-202170Search in Google Scholar
Moisan, G., Zong-Hao Ma, C. “Advances in prosthetics and orthotics, BMC Musculoskelet”, Disord. 25, 135, 2024. DOI: 10.1186/s12891-024-07246-y.Search in Google Scholar
Obrovac, K., Klaić, M., Staroveški, T., Udiljak, T., Vuković-Obrovac, J. “Application of machine tools in orthoses manufacture” in: Ľ. Šooš (Ed.), Machine Tools - Design, Research, Application [Online First], IntechOpen, London, Delhi, 2020. DOI: 10.5772/intechopen.91453Search in Google Scholar
Ahmed, S., Barwick, A., Butterworth, P., et al., “Footwear and insole design features that reduce neuropathic plantar forefoot ulcer risk in people with diabetes: a systematic literature review”, J. Foot Ankle Res. 13, 30, 2020. DOI: 10.1186/s13047-020-00400-4Search in Google Scholar
Chuter, V., Spink, M., Searle, A., Ho, A. “The effectiveness of shoe insoles for the prevention and treatment of low back pain: a systematic review and meta-analysis of randomized controlled trials, BMC Musculoskelet”, Disord. 15, 140, 2014. DOI: 10.1186/1471-2474-15-140Search in Google Scholar
Tang, Y., Liang, P., Pan, J., Zhang, C., Ren, H., Cheng, S., Kong, P. W. “Effects of ankle orthoses, taping, and insoles on postural stability of individuals with chronic ankle instability: a systematic review”, Healthcare (Basel) 11, 2023. DOI: 10.3390/healthcare11182570Search in Google Scholar
Lochner, S. J., Huissoon, J. P., Bedi, S. S. “Parametric design of custom foot orthotic model”, Comput. Aided Des. Appl. 9, pp. 1–11, 2012. DOI: 10.3722/cadaps.2012.1-11Search in Google Scholar
Silva, R., Silva, B., Fernandes, C., et al., “A review on 3D scanners studies for producing customized orthoses”, Sensors 24, 1373, 2024. DOI: 10.3390/s24051373Search in Google Scholar
Mandolini, M., Carloni Vitali, M., Macchione, A., Raffaeli, R., Germani, M. “A CAD tool to design bespoke insoles for severe orthopedic treatments”, Comput. Aided Des. Appl. 12, pp. 1 – 10, 2015. DOI: 10.1080/16864360.2015.1033333Search in Google Scholar
Šooš, Ľ., “Contribution to the research of static and dynamic properties of CNC turning machine”, Strojnícky časopis 59 (5-6), pp. 231 – 239, 2008.Search in Google Scholar
“Computer-Aided Design (CAD) and Computer-Aided Manufacturing (CAM) in Prosthetics and Orthotics”, Physio-Pedia, 2023. Available at: https://www.physiopedia.com/Computer-Aided_Design_(CAD)_and_Computer-Aided_Manufacturing_(CAM)_in_Prosthetics_and_Orthotics. (Last accessed 11.11.2024)Search in Google Scholar
A. Gatt, C. Formosa, N. Chockalingam, “The application of generic CAD/CAM systems for the design and manufacture of foot orthoses”, The Foot and Ankle Online Journal, 9(3): 6, 2016. DOI: 10.3827/faoj.2016.0903.0006Search in Google Scholar
Kemp, T. “CAD/CAM technology in the O&P industry”, O&P News, 2023. Available at: https://oandpnews.org/cad-cam-technology-in-the-op-industry. (Last accessed 11.11.2024).Search in Google Scholar
“Machine for Manufacturing of Custom-Made Foot Orthotics”, WO2014049379A1. Available at: https://patents.google.com/patent/WO2014049379A1/en. (Last accessed 11.11.2024).Search in Google Scholar
Rychlik, M., Morzynski, M., Nowak, M., Stankiewicz, W., Łodygowski, T., Ogurkowska, M.B. “Acquisition and transformation of biomedical objects to CAD systems”, Strojnícky časopis 55, pp. 121 – 135, 2004. Available at: https://www.researchgate.net/publication/235720306_Acquisition_and_transformation_of_biomedical_objects_to_CAD_systems (Last accessed 11.11.2024).Search in Google Scholar