Abstract:
Embodiments of the methods and apparatus for attaching exoskeleton devices to a body include a harness apparatus for attaching an exoskeleton device to a limb. The harness apparatus may comprise a limb support, a support locking element, a support holder configured to define a space for receiving and securing the support locking element at least partially within the space, a connection element configured for connection to the exoskeleton device; and an articulation member configured to articulate with the connection element. Further, the apparatus may include a retaining element configured to retain the support locking element at least partially within the space. At least a portion of the limb support can include a curved portion configured to correspond to a curvature of a limb when adjacent the limb.
Abstract:
Some embodiments of the present disclosure are directed to a charging apparatus for charging and/or powering a smart or powered crutch device. The crutch may include electronic circuitry as well as on board rechargeable power or energy source, and it may provide access to charge the power source using a charger system. The charger system may be a floor charger configured to receive a portion of the crutch such as the distal tip so as to facilitate the transfer of power from the charger to the crutch. The charger system may also be in the form of a wall charger and/or a portable system.
Abstract:
Some embodiments of the present disclosure are directed to a charging apparatus for charging and/or powering a smart or powered crutch device. The crutch may include electronic circuitry as well as on board rechargeable power or energy source, and it may provide access to charge the power source using a charger system. The charger system may be a floor charger configured to receive a portion of the crutch such as the distal tip so as to facilitate the transfer of power from the charger to the crutch. The charger system may also be in the form of a wall charger and/or a portable system.
Abstract:
Embodiments of the present disclosure are directed to devices, systems and methods for providing safety functionality in an exoskeleton system. In particular, some embodiments make use of a sensor system and methodology with/for an exoskeleton apparatus to facilitate such safety functionality. For example, a system for regulating a load amount applied on a user of an exoskeleton may comprise one or more sensors for sensing data related to an amount of force exerted at a limb of the user by a part of the exoskeleton; a communications component for transmitting the sensed data to a processing unit operably coupled to the exoskeleton; and the processing unit configured to process the data so as to determine the amount of exerted force and generate an instruction to trigger a mode of operation of the exoskeleton based on the determined amount of force.
Abstract:
Embodiments of an apparatus, method and systems for collapsing/lowering an exoskeleton device comprising at least one motor and at least one component are disclosed. In some embodiments, the device is configured to be moved by the at least one motor. When at least one of a plurality of faults including power faults such as a low power fault and a power failure fault, electrical faults, software faults and mechanical faults are detected in the powering the exoskeleton device, one or more components of the device may be decelerated via the at least one motor.
Abstract in simplified Chinese:一种外骨胳设备包括各可附接至一用户之一部分的复数个托架。复数个关节连接相邻的托架。各关节可控制以弯曲或伸直,以便使得该外骨胳设备在一竖立配置及一坐下配置之间改变。至少一个支持柱可从一托架延伸。该支持柱的一长度是可调整的。一控制器,配置为与一关节的该弯曲或伸直协调地调整该支持柱的该长度,以在该坐下配置下时针对该外骨胳设备提供支持。
Abstract:
[0045] In some embodiments, apparatus and systems for controlling exoskeleton devices, and more particularly, smart crutches configured for sensing an environment and processing the sensed data to control the movement of exoskeleton devices over various types of surfaces are presented. In some embodiments, the smart crutches may comprise sensors configured to sense the state of the exoskeleton, the crutches and the surrounding environment, and to transmit such measurements to various components of the crutch and/or exoskeleton such as processing units, user interfaces, etc. In some embodiments, the processing unit may generate instructions for the exoskeleton and/or the crutches to carry out based on the measurements.
Abstract:
[0045] In some embodiments, apparatus and systems for controlling exoskeleton devices, and more particularly, smart crutches configured for sensing an environment and processing the sensed data to control the movement of exoskeleton devices over various types of surfaces are presented. In some embodiments, the smart crutches may comprise sensors configured to sense the state of the exoskeleton, the crutches and the surrounding environment, and to transmit such measurements to various components of the crutch and/or exoskeleton such as processing units, user interfaces, etc. In some embodiments, the processing unit may generate instructions for the exoskeleton and/or the crutches to carry out based on the measurements.
Abstract:
In some embodiments, an exoskeleton device for providing gait/movement assistance to users, and more particularly, methods and apparatuses for attaching such devices to a limb of the users, are presented. In some embodiments, the apparatus may comprise a support, a support holder, and a retaining element for retaining the support secured to the support holder at least when the apparatus is in use. In some embodiments, the attachment of the support to the support holder may be configured so as to allow the support a range of translational and/or rotational degrees of motion.
Abstract:
An exoskeleton device includes a plurality of braces that are each attachable to a part of a user. A plurality of joints connects adjacent braces. Each joint is controllable to bend or unbend so as to cause the exoskeleton device to change between an erect configuration and a sitting configuration. At least one support column is extendible from a brace. A length of the support column is adjustable. A controller is configured to adjust the length of the support column in coordination with the bending or unbending of a joint to provide support for the exoskeleton device when in the sitting configuration.