Medical instrument engagement process
A mechanical interface for a robotic medical instrument permits engagement of the instrument and a drive system without causing movement of an actuated portion of the instrument. An instrument interface can include a symmetrical, tapered or cylindrical projection on one of a medical instrument or a drive system and a complementary bore in the other of the drive system or the medical instrument. Symmetry of the projection and the bore allows the projection to be compression fit to the bore regardless of the rotation angle of the drive system relative to the medical instrument.
1. A method of operating a drive system for driving a component of a medical instrument, the method comprising:
bringing a first rotatable element of the drive system into contact with a second rotatable element of the drive system without restricting rotation of the first rotatable element relative to the second rotatable element, the second rotatable element being shaped to engage the first rotatable element, and the second rotatable element being operably coupled to actuate the component:
applying an engagement force to create a frictional engagement between the first rotatable element and the second rotatable element without actuating the component; and
operating the drive system to actuate the component, the operating comprising transferring torque via the frictional engagement between the first rotatable element and the second rotatable element.
2. The method of claim 1 , wherein the contact between the first rotatable element and the second rotatable element is devoid of engagement other than the frictional engagement.
3. The method of claim 1 , wherein:
one of the first rotatable element and the second rotatable element comprises a tapered projection;
another of the first rotatable element and the second rotatable element comprises a tapered hole in which the tapered projection fits; and
applying the engagement force comprises pressing the tapered projection into the tapered hole.
4. The method of claim 1 , wherein:
one of the first rotatable element and the second rotatable element comprises a bore defined in a capstan around which a tendon is wrapped;
another of the first rotatable element and the second rotatable element fits within the bore; and
applying the engagement force comprises applying tension to the tendon so that a diameter of the bore decreases.
5. The method of claim 1 , wherein the second rotatable element is part of an adaptor in a sterile barrier.
6. The method of claim 1 , further comprising determining a pose of the component after applying the engagement force.
7. The method of claim 1 , wherein at least one of the first rotatable element or the second rotatable element includes a compliant portion to accommodate misalignment during engagement.
8. The method of claim 1 , wherein applying the engagement force comprises engaging a latch to press the first rotatable element toward the second rotatable element.
9. The method of claim 1 , wherein the bringing the first rotatable element into contact with the second rotatable element can occur at any pose of the medical instrument.
10. A method of operating a drive system for driving a component of a medical instrument, the method comprising:
bringing a first rotatable element of the drive system into contact with a second rotatable element of the medical instrument without restricting rotation of the first rotatable element relative to the second rotatable element, the second rotatable element being shaped to engage the first rotatable element, and the second rotatable element being operably coupled to actuate the component;
applying an engagement force to create a frictional engagement between the first rotatable element and the second rotatable element without actuating the component; and
operating the drive system to actuate the component, the operating comprising transferring torque via the frictional engagement between the first rotatable element and the second rotatable element.
11. The method of claim 10 , wherein the contact between the first rotatable element and the second rotatable element is devoid of engagement other than the frictional engagement.
12. The method of claim 10 , wherein the contact between the first rotatable element and the second rotatable element includes engagement of a keyed feature of the first rotatable element with a complementary feature of the second rotatable element.
13. The method of claim 10 , wherein the second rotatable element is part of an adaptor in a sterile barrier that is between the drive system and the medical instrument.
14. The method of claim 10 , wherein the second rotatable element is a capstan within the medical instrument.