Ankle exoskeleton system and method for assisted mobility and rehabilitation
A powered exoskeleton is designed to provide assistance to a user, where the powered exoskeleton may have power-generating elements in one location and power-applying elements in another location, so that a user can easily wear the powered exoskeleton.
1. A device, comprising:
a motor;
a force-transmitting linkage, mechanically coupled to the motor, wherein the force transmitting linkage comprises a first cable and a second cable coupled to the motor such that the motor applies tension to the first cable when rotating in a first direction and applies tension to the second cable when rotating in a second direction;
a lower assembly including a joint mechanically coupled to the first and second cables, such that the joint experiences torque in a first direction upon application of tension to the first cable and experiences torque in a second direction upon application of tension to the second cable, the lower assembly being configured to engage a foot of a user;
a controller, communicably coupled to the motor, wherein the controller is configured to transmit an instruction to the motor; and
a sensor coupled to the lower assembly and communicably coupled to the controller, wherein the sensor is configured to detect motion or force of the joint;
wherein the controller is configured to receive data from the sensor, and wherein the controller is configured to use the data to determine the instruction to be transmitted to the motor
wherein the force-transmitting linkage includes a Bowden cable, and wherein the Bowden cable is adapted to have a length which is substantially matched to a length of a leg of the user, such that when the leg is straight the Bowden cable is substantially straight between the lower assembly and the motor, and such that when the Bowden cable is straight the Bowden cable acts to partially support the weight of the device by providing resistance to compressive force between lower assembly and the motor.
2. The device of claim 1 , wherein the joint includes a first arm, a second arm, and a rotational bearing coupled to the first arm and the second arm, the first arm is configured to be coupled to a lower leg by a cuff, and the second arm is configured to be coupled to a foot plate, a shoe, or a cam beneath the user's foot.
3. The device of claim 2 ,
wherein the sensor is a pressure sensor, which generates a pressure measurement value; and
wherein, when the pressure measurement value is greater than a threshold pressure measurement value, the controller is configured to cause the motor to apply a force along a length of the force-transmitting linkage in a first direction.
4. The device of claim 3 , further comprising a second sensor, wherein the second sensor is a torque sensor coupled to the rotational bearing, which generates a torque measurement value, and wherein an amount of force applied by the motor along a length of the force-transmitting linkage in a first direction is at least partially determined by the torque measurement value.
5. The device of claim 3 , wherein, when pressure measurement value less than the threshold pressure measurement value, the controller is configured to cause the motor to apply a force along the length of the force-transmitting linkage in a second direction.
6. The device of claim 3 , wherein, when the pressure measurement value less than the threshold pressure measurement value, the controller is configured to prevent the motor from applying force along a length of the cable.
7. The device of claim 1 , further comprising a disengagement mechanism configured to selectively disconnect the force-transmitting linkage from the lower assembly or the motor.
8. The device of claim 1 , further comprising a housing and wherein the motor is disposed within the housing and the housing is configured to be worn proximate a waist of the user.