Modular surgical robotic tool
A robotic surgical arm can include a puck containing motors to drive an end effector. A tool assembly attached to the puck generates ultrasonic and/or radio frequency energy to apply between the jaws of the end effector. The tool assembly can include modular components such as a modular shaft that can include an ultrasonic transducer, nonvolatile memory, wireless interface, and/or a power source. The power source allows the tool assembly and modular shaft to communicate wirelessly with the robotic arm.
1. A surgical tool, comprising:
a tool attachment having a tool shaft extending distally therefrom with an end effector at a distal end of the tool shaft, wherein the tool attachment includes at least:
a proximal end configured to mechanically and electrically connect to a tool driver, the tool driver supplying electrical power to the tool attachment when connected to the tool attachment;
a position sensor configured to detect motion of the tool attachment relative to the tool driver when the tool attachment is operable and detached from the tool driver;
a memory configured to store detected motion information and configuration information related to a usage of the tool attachment; and
a wireless interface configured to transmit detected motion information and configuration information to a control system, wherein the control system is configured to determine a distance and a direction of motion of the tool attachment relative to the tool driver based on the detected motion information by the position sensor when the tool attachment is detached from the tool driver,
wherein the wireless interface is configured to communicate with the tool driver when the tool attachment is connected to the tool driver, and to communicate with the tool driver when the tool attachment is not connected to the tool driver.
2. The surgical tool according to claim 1 , wherein the tool attachment further includes a waveguide and the tool attachment is configured to be a disposable component.
3. The surgical tool according to claim 1 , further comprising:
a radio frequency generator, wherein the generator is configured to deliver radio frequency energy to at least one tissue contacting electrode disposed on the end effector.
4. The surgical tool according to claim 1 , further comprising:
a battery configured to provide power to the tool attachment when the tool driver is disconnected from the tool attachment.
5. The surgical tool according to claim 4 , wherein the memory is configured to store information related to a calibration of an ultrasonic energy transducer in the tool attachment.
6. The surgical tool according to claim 1 , wherein the tool attachment is removably and replaceably connected to the tool driver.
7. The surgical tool according to claim 1 , wherein the tool attachment is configured to be releasably and replaceably connected to a surgeon operated handle.
8. The surgical tool according to claim 1 , wherein the tool driver is attached to a robotic arm.
9. The surgical tool according to claim 8 , wherein the tool attachment is connected to the tool driver at a first time, removed from the tool driver at a second time, and attached to a surgeon operated handle at a third time, wherein configuration and calibration information stored in the memory at the first time is read by a processor in the handle at the third time, wherein the third time is later than the second time and the second time is later than the first time.
10. The surgical tool according to claim 1 , wherein the surgical tool is attached to a surgical robotic arm.
11. The surgical tool according to claim 1 , wherein the tool attachment is removably and replaceably attached to a robotic arm, wherein the tool attachment is released from the robot arm, and wherein the tool attachment is attached to another robot arm.
12. A method, comprising:
connecting a tool attachment to a tool driver of an electromechanical arm of a surgical robot, wherein the tool attachment includes an energy transducer, a position sensor configured to detect motion of the tool attachment relative to the tool driver; and a memory configured to store detected motion information and configuration information related to a usage of the tool attachment, and wherein the tool attachment is in mechanical and electrical contact with the tool driver;
disconnecting the tool attachment from the tool driver, wherein the disconnecting removes a power supply to the tool attachment, and wherein configuration information related to the energy transducer is maintained in the memory after the power supply is removed;
detecting, by a position sensor in the tool attachment, motion of the tool attachment relative to the tool driver when the tool attachment is disconnected from the tool driver;
connecting the tool attachment to a surgeon operated handle, wherein the surgeon operated handle reads the configuration information from the tool attachment; and
transmitting, via a wireless interface, detected motion data to a control system, wherein the control system is configured to determine a distance and a direction of motion of the tool attachment relative to the tool driver based on the detected motion by the position sensor when the tool attachment is disconnected from the tool driver,
wherein the tool attachment includes the wireless interface to communicate with the tool driver when the tool attachment is connected to the tool driver, to communicate with the tool driver when the tool attachment is not connected to the tool driver, and to communicate with the surgeon operated handle when the tool attachment is connected to the surgeon operated handle.
13. The method according to claim 12 , wherein the energy transducer comprises an ultrasonic energy transducer.
14. The method according to claim 12 , wherein the tool attachment includes at least a battery to provide power to the tool attachment when the tool driver is disconnected from the tool attachment.