TY - JOUR
T1 - Research on adolescent scoliosis orthosis with maintainable and monitorable corrective force
AU - Yang, Xuan
AU - Wen, Diyang
AU - Guo, Jiangzhen
AU - Tao, Chunjing
AU - Fan, Yubo
N1 - Publisher Copyright:
© 2026
PY - 2026/8
Y1 - 2026/8
N2 - Traditional scoliosis orthoses are limited by imperceptible corrective forces and force degradation during prolonged wear, which compromise treatment efficacy. To address these challenges, this paper presents a novel modular orthosis design integrating a bidirectional ratchet mechanism with thin-film force sensing technology. The core ratchet knob enables the precise application and mechanical locking of corrective force, ensuring long-term stability, while the integrated sensor system provides real-time monitoring. The proposed design was systematically validated through finite element analysis, bench testing, and human trials. Results demonstrate that the ratchet mechanism reliably withstands a 100 N corrective load without failure. The complete system weighs only 1.595 kg with a theoretical continuous operating time of 22.4 h. The sensing module exhibits high linearity (R2 = 0.994) and a rapid response time of less than 100 ms. In human trials, the orthosis maintained an effective three-point pressure balance (with a pressure distribution ratio of 2.4:1) and demonstrated robust force retention, with pressure readings returning to baseline within 2 s after dynamic movements. By resolving the limitations of uncontrollable and unstable forces in traditional devices, this intelligent orthosis offers a promising technical solution for personalized and precise scoliosis treatment.
AB - Traditional scoliosis orthoses are limited by imperceptible corrective forces and force degradation during prolonged wear, which compromise treatment efficacy. To address these challenges, this paper presents a novel modular orthosis design integrating a bidirectional ratchet mechanism with thin-film force sensing technology. The core ratchet knob enables the precise application and mechanical locking of corrective force, ensuring long-term stability, while the integrated sensor system provides real-time monitoring. The proposed design was systematically validated through finite element analysis, bench testing, and human trials. Results demonstrate that the ratchet mechanism reliably withstands a 100 N corrective load without failure. The complete system weighs only 1.595 kg with a theoretical continuous operating time of 22.4 h. The sensing module exhibits high linearity (R2 = 0.994) and a rapid response time of less than 100 ms. In human trials, the orthosis maintained an effective three-point pressure balance (with a pressure distribution ratio of 2.4:1) and demonstrated robust force retention, with pressure readings returning to baseline within 2 s after dynamic movements. By resolving the limitations of uncontrollable and unstable forces in traditional devices, this intelligent orthosis offers a promising technical solution for personalized and precise scoliosis treatment.
KW - Bidirectional ratchet structure
KW - Force sensing module
KW - Orthosis
KW - Real-time monitoring
KW - Scoliosis
UR - https://www.scopus.com/pages/publications/105039279600
U2 - 10.1016/j.medntd.2026.100442
DO - 10.1016/j.medntd.2026.100442
M3 - 文章
AN - SCOPUS:105039279600
SN - 2590-0935
VL - 31
JO - Medicine in Novel Technology and Devices
JF - Medicine in Novel Technology and Devices
M1 - 100442
ER -