Robot milling system integrated design and finite element analysis of custom femoral prostheses.

IF 2.8 3区 医学 Q1 ORTHOPEDICS Journal of Orthopaedic Surgery and Research Pub Date : 2025-03-18 DOI:10.1186/s13018-025-05647-w
Qi Wu, Pengju Yue, Siyu Yin, Wang Liu, Zhenjie Li, Renjie He
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Abstract

The long-term stability of cementless femoral prostheses is primarily affected by aseptic loosening, micromotion, and stress shielding, all of which are related to the force transfer of the prosthesis. These factors can compromise the osseointegration of the proximal prosthesis, leading to aseptic loosening within the femoral cavity. Due to the individual variability of the femur, the fit between the prosthesis and the femoral cavity during the design phase may differ from the fit achieved during the surgical procedure. Consequently, the force transfer of the prosthesis postoperatively may not align with the results obtained from finite element analysis conducted during the design phase, making it challenging to control the micromotion and stress shielding of the prosthesis. The design model of a custom femoral prosthesis is based on the CT reconstruction of the patient' femur. The fit of prosthesis within the femoral cavity during the design phase should match the fit during the surgical operation. Consequently, the results of finite element analysis conducted during the design phase can be used to control the force transfer of the prosthesis postoperatively. This approach helps to prevent improper micromotion and stress shielding of the proximal prosthesis, which can compromise the primary stability of the prosthesis within the femoral cavity, thereby facilitating the osseointegration of the proximal prosthesis.This paper proposes a novel technology that combines the design, finite element analysis, and manufacturing of custom prostheses. Specifically, a CAD/CAM/robot integration method is used to fabricate these prostheses. This innovative technology not only enhances the control of force transfer in custom prostheses but also reduces design and manufacture time while lowering costs. In conclusion, the finite element analysis of the custom prosthesis effectively manages force transfer, and the milling errors associated with the custom prosthesis are less than 1 mm.

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定制股骨假体机器人铣削系统集成设计及有限元分析。
无骨水泥股骨假体的长期稳定性主要受无菌性松动、微动、应力屏蔽等因素的影响,这些因素都与假体的力传递有关。这些因素会损害近端假体的骨整合,导致股腔内无菌性松动。由于股骨的个体可变性,在设计阶段假体与股腔之间的配合可能与手术过程中实现的配合不同。因此,假体术后的力传递可能与设计阶段进行的有限元分析结果不一致,这使得假体的微动和应力屏蔽控制具有挑战性。定制股骨假体的设计模型是基于患者股骨的CT重建。在设计阶段假体在股腔内的配合度应与手术期间的配合度相匹配。因此,在设计阶段进行的有限元分析结果可用于控制假体术后的力传递。这种入路有助于防止近端假体不适当的微动和应力屏蔽,这可能会损害假体在股腔内的初级稳定性,从而促进近端假体的骨整合。本文提出了一种结合定制义肢设计、有限元分析和制造的新技术。具体来说,采用CAD/CAM/机器人集成的方法来制造这些假体。这项创新技术不仅增强了定制义肢的力传递控制,而且减少了设计和制造时间,降低了成本。综上所述,定制义肢的有限元分析有效地管理了力传递,定制义肢的铣削误差小于1 mm。
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来源期刊
CiteScore
4.10
自引率
7.70%
发文量
494
审稿时长
>12 weeks
期刊介绍: Journal of Orthopaedic Surgery and Research is an open access journal that encompasses all aspects of clinical and basic research studies related to musculoskeletal issues. Orthopaedic research is conducted at clinical and basic science levels. With the advancement of new technologies and the increasing expectation and demand from doctors and patients, we are witnessing an enormous growth in clinical orthopaedic research, particularly in the fields of traumatology, spinal surgery, joint replacement, sports medicine, musculoskeletal tumour management, hand microsurgery, foot and ankle surgery, paediatric orthopaedic, and orthopaedic rehabilitation. The involvement of basic science ranges from molecular, cellular, structural and functional perspectives to tissue engineering, gait analysis, automation and robotic surgery. Implant and biomaterial designs are new disciplines that complement clinical applications. JOSR encourages the publication of multidisciplinary research with collaboration amongst clinicians and scientists from different disciplines, which will be the trend in the coming decades.
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