Patent classifications
A61B34/77
Precision injector/extractor for robot-assisted minimally-invasive surgery
According to some embodiments of the invention, a surgical robot includes a robot arm having an end effector, the end effector comprising a needle assembly. The surgical robot further includes a robot control system operatively connected to the robot arm, and an end effector control system operatively connected to the end effector. The robot control system provides control signals for operation of the robot arm to move the end effector to selected positions relative to a subject. The end effector control system is configured to provide signals for operation of the end effector to at least one of inject material through the needle assembly to a selected location within the subject's body or extract material through the needle assembly from the selected location within the subject's body.
Systems and methods for grasp adjustment based on grasp properties
Systems and methods for grasp adjustment based on grasp properties include a computer-assisted device. The device includes a two-jawed end effector located at a distal end of the device, a drive unit for operating the two-jawed end effector, and an image processing unit. The image processing unit is configured to receive imaging data of the end effector and recognize the end effector and a material grasped by the end effector in the received imaging data. The device is configured to adjust a force magnitude limit or a torque magnitude limit of the drive unit based on the received imaging data. In some embodiments, the image processing unit is further configured to determine one or more of a position, an orientation, a size, or a shape of the material based on the received imaging data. In some embodiments, at least one jaw of the end effector includes fiducial indicia.
SURGICAL VIRTUAL REALITY USER INTERFACE
A surgical virtual reality user interface generating system comprising a sensor and tracking unit for sensing and tracking a position a user and generating position data based on movement of the user, a computing unit for receiving the position data and processing the position data and generating control signals. The system also includes a surgical robot system for receiving the control signals and having a camera assembly for generating image data, and a virtual reality computing unit for generating a virtual reality world. The virtual reality computing unit includes a virtual reality rendering unit for generating an output rendering signal for rendering the image data for display, and a virtual reality object generating unit for generating virtual reality informational objects and for emplacing the informational objects in the virtual reality world. A display unit is provided for displaying the virtual reality world and the informational objects to the user.
ROBOTIC SURGICAL SYSTEM, OPERATOR-SIDE APPARATUS, AND CONTROL METHOD OF ROBOTIC SURGICAL SYSTEM
In a robotic surgical system, an operation unit includes a drive to assist an operation of an operator. A controller is configured or programmed to control the drive to exert a braking force when the operation on the operation unit is decelerated and/or accelerated.
SURGICAL ROBOT AND CONTROLLER OF SURGICAL ROBOT
A surgical robot includes an operation part that includes a movable part moved by a force applied by an operation by a user, an action part that performs an action according to the operation, a drive part that supplies a driving force to the action part, an operation controller that controls a movement of the movable part, and a controller that implements an operation force setter that sets a magnitude of a resistance force that is a force in a direction opposite to a direction of the movement of the movable part. The operation force setter sets the magnitude of the resistance force based on a resistance parameter set in advance, and the operation controller applies, to the movable part, the resistance force having the magnitude set by the operation force setter.
SURGICAL ROBOT AND CONTROLLER OF SURGICAL ROBOT
A surgical robot includes a robot arm, an operation device that is operated by a user to perform an operation of the robot arm, an actuator that supplies a driving force to the robot arm, and hardware control logic or a processor that sets a magnitude of an operation reaction force a direction opposite to an operation direction of the operation device, and applies the operation reaction force having the magnitude set by the reaction force setter to the operation device. The magnitude of the operation reaction force is set based on change information about a change in the driving force supplied by the actuator and based on a conversion coefficient.
Surgical robot systems comprising robotic telemanipulators and integrated laparoscopy
Surgical robot systems for remote manipulation having robotic telemanipulators are provided. The surgical robot systems are well adapted for use by the surgeon, seamlessly integrateable into the operation room, allow for a surgeon to work between the robot and the patient throughout a surgery in a sterile manner, are relatively low cost, and/or permit integrated laparoscopy. The system preferably includes a master console having a plurality of master links interconnected by a plurality of master joints, and a handle coupled to the master console for operating the telemanipulator. The system further includes a slave console operatively coupled to the master console and having a plurality of slave links interconnected by a plurality of slave joints that move responsive to movement at the master console to permit an end-effector to perform surgery.
Boundary scaling of surgical robots
A method of scaling a desired velocity of a tool of a surgical robot with a processing unit includes receiving an input signal, determining a position of the tool relative to a boundary of a surgical site, and scaling a desired velocity of movement of the tool when the tool is within a predetermined distance of the boundary of the surgical site. The input signal includes the desired velocity of movement of the tool.
Jaw coordination of robotic surgical controls
An input control device can be configured to operate in different modes depending on proximity data provided by a proximity detection system. The input control device can include a feedback generator configured to generate feedback in response to the input control device switching between operational modes, the proximity data provided by the proximity detection system, and/or other conditions of the surgical procedure, robotic surgical tool, surgical site, and/or patient. The input control device can include a variable resistance assembly for resisting input control motions applied to an actuator thereof. Additionally or alternatively, the input control device can include an end effector actuator assembly for repositioning the end effector actuator based on feedback from a paired robotic surgical tool.
DEVICE AND SYSTEM INCLUDING MECHANICAL ARMS
A device sized and shaped for insertion into a body comprising: at least one mechanical limb comprising: a support segment; a first flexible section extending from the support segment and terminating in a coupling section; and a second flexible section extending from the coupling section and terminating in a tool or a connector for a tool; wherein a long axis of one or more of the flexible sections is bendable in a single bending plane; wherein a long axis length of the first flexible section is at least double a maximum extent of the first flexible section perpendicular to a flexible section long axis; wherein a long axis length of the second flexible section is at least double a maximum extent of the second flexible section perpendicular to a flexible section long axis.