DOI: 10.1017/s0263574726103610 ISSN: 0263-5747

Development of a structurally compact magnetorheological prosthetic knee joint with obstacle-crossing function

Lei Xu, Chao Wang, Qiuxia Fan, Qianqian Zhang, Yuhui Liu

Abstract

To address the difficulty of simultaneously achieving motion bionics, active driving capability, and structural compactness in prosthetic knee joints, a structurally compact magnetorheological prosthetic knee joint (SCMRPK) with obstacle-crossing function is proposed in this paper. The SCMRPK combines a four-bar linkage mechanism and a linear magnetorheological actuator (LMRA). By integrating a micro linear motor into the piston rod of an MR damper, the LMRA combines the active and semi-active modes, enabling it to output driving force in the active mode and controllable damping force in the semi-active mode. The four-bar linkage mechanism is used to mimic the variation of the instantaneous center of rotation of the human knee. The structure and working principle of the SCMRPK are presented. A key dimensional design method for the LMRA magnetic circuit is proposed, and simulation and experimental tests are conducted to verify the effectiveness of the designed magnetic circuit. A control method for the SCMRPK is developed, and a prototype is fabricated. Under a locking current of 1.5 A, the LMRA prototype achieves stable displacement tracking in active mode. At a walking speed of 1.2 m/s, the semi-active mode of the SCMRPK prototype yields a root mean square error of 1.54° between the measured and ideal knee angles. In active mode, the SCMRPK-based lower-limb prosthesis successfully crosses an obstacle 0.3 m high. These results demonstrate that the proposed SCMRPK is compact and capable of achieving a relatively natural gait and obstacle crossing.