IP Library Granted Patent US 12,478,441
Granted Patent B2
US 12,478,441 · App. 17/744,390 · Granted Nov 25, 2025

Surgical robotic platform for operating within the constrained space of an imaging scanner

Inventors: Dimitrious A. Schreiber (La Jolla, CA); Michael Yip (La Jolla, CA)
Assignee: The Regents of the University of California
A61B34/30A61B6/4441A61B6/582A61B90/36A61B2034/107A61B2034/304
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,478,441
App. No.
17/744,390
Granted
Nov 25, 2025
Kind
B2
Abstract

A surgical robotic platform operates within a constrained space of an imaging scanner in which a patient resides. The platform includes a gross positioning stage configured to be located outside of the constrained space An end-effector having a rotatable shaft is extendable from the gross positioning stage and into the constrained space of the imaging scanner. The shaft has a proximal end operatively coupled to the positioning stage outside of the constrained space and a distal end configured to be located in the constrained space. The distal end has a medical instrument gripper for holding a medical instrument used in a percutaneous procedure. The end-effector further includes a joint arrangement operatively coupling the shaft to the medical gripper for providing motion to the medical instrument gripper for enabling position and/or orientation control of the medical instrument. A drive module controls the joint arrangement.

Claims (33)

1 . A surgical robotic platform for operating within a constrained space of an imaging scanner in which a patient resides, comprising:

a gross positioning stage providing three degrees of freedom for providing larger-scale motion and configured to be located outside of the constrained space; and

an end-effector having a shaft extending from the gross positioning stage and into the constrained space of the imaging scanner, the shaft having a proximal end operatively coupled to the gross positioning stage outside of the constrained space and a distal end configured to be located in the constrained space, the distal end having a medical instrument gripper for holding a medical instrument used in a percutaneous procedure, the end-effector further including a joint arrangement operatively coupling the shaft to the medical gripper for providing smaller scale motion to the medical instrument gripper for enabling position and/or orientation control of the medical instrument, the proximal end of the shaft further including a drive module for controlling joints in the joint arrangement such that in use the drive module remains external of the constrained space and the joint arrangement is located in the constrained space, the drive module actuating joints to thereby provide two active degrees of freedom for the end-effector, wherein the gross positioning stage, the end-effector and the drive module collectively provide two additional degrees of freedom that are redundant degrees of freedom wherein at least one of the redundant degrees of freedom enables multiple configurations for reaching the target needle insertion pose.

2 . The surgical robotic platform of claim 1 , wherein the gross positioning stage is an active or passive gross positioning stage.

3 . The surgical robotic platform of claim 1 , wherein the gross positioning stage is manually positionable and gravity compensated.

4 . The surgical robotic platform of claim 1 , wherein the drive module is operatively coupled to the joint arrangement by a flexible cable transmission.

5 . The surgical robotic platform of claim 1 , wherein the end-effector is manually positionable.

6 . The surgical robotic platform of claim 1 , wherein the joint arrangement includes a needle insertion mechanism that is passive.

7 . The surgical robotic platform of claim 1 , wherein the drive module is operatively coupled to the joint arrangement by a flexible belt or band transmission.

8 . The surgical robotic platform of claim 1 , wherein the joint arrangement includes a tip tracker to enhance platform accuracy.

9 . The surgical robotic platform of claim 1 , wherein the joint arrangement includes joint encoders to enhance platform accuracy.

10 . The surgical robotic platform of claim 1 , wherein a base of the gross positioning stage is mountable to the imaging scanner or a patient couch on which the patient resides.

11 . The surgical robotic platform of claim 1 , wherein a base of the gross positioning stage is mountable independent of the imaging scanner.

12 . The surgical robotic platform of claim 1 , wherein a needle insertion mechanism in the joint arrangement includes a needle gripper having helically wrapped Shape Memory Alloy actuator.

13 . The surgical robotic platform of claim 1 , wherein the gross positioning stage has prismatic joint and/or revolute joints.

14 . The surgical robotic platform of claim 1 , wherein the medical instrument mechanism is able to incrementally insert the medical instrument using two medical instrument grippers, where only one of the two medical instrument grippers advances the medical instrument at any one time.

15 . The surgical robotic platform of claim 1 , wherein the joint with two degrees of freedom includes a roll and pitch joint.

16 . The surgical robotic platform of claim 1 , wherein the joint with two degrees of freedom includes a roll and yaw joint.

17 . The surgical robotic platform of claim 1 , wherein the joint with two degrees of freedom includes a pitch and yaw joint.

18 . The surgical robotic platform of claim 1 wherein the joint actuated by the drive module has two degrees of freedom in the joint arrangement.

19 . The surgical robotic platform of claim 1 wherein the shaft of the end-effector is a rotatable shaft.

20 . The surgical robotic platform of claim 1 wherein the end-effector includes a roll joint and a pitch joint.

21 . The surgical robotic platform of claim 1 wherein the joint arrangement includes joints that are remotely actuatable via joint cables.

22 . The surgical robotic platform of claim 21 wherein the joint arrangement includes idler pulleys that guide the joint cables throughout the end-effector.

23 . The surgical robotic platform of claim 1 wherein the gross positioning stage utilizes a ball-screw transmission.

24 . The surgical robotic platform of claim 1 , wherein the joint arrangement includes a joint dedicated for needle insertion.

25 . A surgical robotic platform for operating within a constrained space of an imaging scanner in which a patient resides, comprising:

a gross positioning stage providing three degrees of freedom for providing larger-scale motion and configured to be located outside of the constrained space; and

an end-effector having a shaft extending from the gross positioning stage and into the constrained space of the imaging scanner, the shaft having a proximal end operatively coupled to the gross positioning stage outside of the constrained space and a distal end configured to be located in the constrained space, the distal end having a medical instrument gripper for holding a medical instrument used in a percutaneous procedure, the end-effector further including a joint arrangement operatively coupling the shaft to the medical gripper for providing smaller scale motion to the medical instrument gripper for enabling position and/or orientation control of the medical instrument, the proximal end of the shaft further including a drive module and trunnion for controlling joints in the joint arrangement such that in use the drive module and trunnion is able to remain external of the constrained space and the joint arrangement is able to be located in the constrained space, the trunnion and drive module actuating joints to thereby provide two active degrees of freedom for the end-effector, wherein the gross positioning stage, the end-effector and the drive module collectively provide two additional degrees of freedom that are redundant degrees of freedom wherein at least one of the redundant degrees of freedom enables multiple configurations for reaching the target needle insertion pose.

26 . The surgical robotic platform of claim 25 , wherein the gross positioning stage is manually positionable and gravity compensated.

27 . The surgical robotic platform of claim 25 , wherein the end-effector includes a roll joint and a pitch joint.

28 . The surgical robotic platform of claim 25 wherein the shaft of the end-effector is a rotatable shaft.

29 . The surgical robotic platform of claim 25 , wherein the end-effector is manually positionable.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2022
From: SCHREIBER, DIMITRIOUS A.; YIP, MICHAEL
To: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
Reel/Frame 060027/0490 →
Continuity (2)
Provisional Application 63188084 · May 13, 2021
Related Publication 20220378524A1 · Dec 1, 2022
References Cited (6)
US 20130296737A1 · Mcmillan · 2013 [cited by examiner]
Masamune, et al., (1995. Development of an MRI-Compatible Needle Insertion Manipulator for Stereotactic Neurosurgery, Journal of Image Guided Surgery, 1:4, 242-248, DOI: 10.3109/10929089509106330. ePub Jan. 6, 2010 (Yea… [cited by examiner]
Schreiber et al., arXiv.1903.0464v2[cs.RO] Aug. 16, 2019 (Year: 2019). [cited by examiner]
Schreiber et al., arXiv:1910.03063v1 [cs.RO] Oct. 7, 2019 (Year: 2019). [cited by examiner]
Dimitri A. Schreiber et al., “An Open-Source 7-Axis, Robotic Platform to Enable Dexterous Procedures within CT Scanners”, presented at IROS 2019 in Macau China, 8 pp., https://github.com/ucsdarclab/Open-Source-CT-Biopsy… [cited by applicant]
Dimitri A. Schreiber et al., “Crane: A highly dexterous needle placement robot for evaluation of interventional radiology procedures”, Oct. 7, 2019, 2 pp. [cited by applicant]