IP Library › Granted Patent US 11,488,494
Granted Patent B2
US 11,488,494 · App. 16/233,091 · Granted Nov 1, 2022

Laparoscopic instrument holder for surgical simulation and training

Inventor: Jose Luis Mosso Vazquez (Mexico City, MX)
G09B23/28G09B19/24G09B23/285
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Quick Facts
Patent No.
US 11,488,494
App. No.
16/233,091
Granted
Nov 1, 2022
Kind
B2
Abstract

Innovative instrument holders used for minimally invasive surgical simulation and training are disclosed when used in conjunction with a smartphone, tablet or mini-tablet computer enabling visualization of the surgical field. The surgical field used with these instrument holders can include animal models, physical models, and both virtual and augmented reality models. Some embodiments can be used with applications that can be downloaded to the smartphone, tablet or mini-tablet computer in order to enhance specific hand-eye coordination tasks. Some embodiments can be used as an adjunct surgical trainer for endoscopy, colonoscopy, and other minimally invasive gastrointestinal and gynecological surgical procedures using surgical instruments that incorporate fiber optics.

Claims (64)

1. A surgical simulation and training system comprising:

a stationary base;

concentric nested rings supported by said stationary base; wherein individual rings comprising said concentric nested rings can each rotate about independently prescribed rotational axes of said each individual ring of said concentric nested rings;

a central support platform that is concentric with and is supported within said concentric nested rings; wherein

said central support platform supports has an attached device mounted to said central support platform; wherein said device registers time resolved displacements in real-time of user induced motion of said device attached to said central support platform; wherein

said device is chosen from the group consisting essentially of a smartphone, tablet computer, mini-tablet computer, and combinations thereof; wherein

said device is wirelessly connected to an external monitor that displays visual scenes from software applications executed in said device; wherein

said visual scenes are manipulated in said device in real-time by user induced motion of said device and mirrored in real-time on said external monitor; wherein

said central support platform and said attached device can rotate about a prescribed rotational axis; wherein

said stationary base remains stationary during motion induced by a user of said device on said central support platform.

2. A surgical simulation and training system comprising:

a stationary base;

a support frame attached to said stationary base; wherein

said support frame supports a nested ring structure; wherein

said support frame has a support frame inside surface; wherein

said support frame inside surface has a surface normal pointing toward said nested ring structure; wherein

said support frame inside surface has one and at most two attachments to an outer ring of said nested ring structure; wherein

said attachments comprise:

a first shaft and an second shaft; wherein the longitudinal axes of said each first shaft and said second shaft are coaligned when said second shaft is present; wherein

said each first shaft and said second shaft have a circular cross-section; wherein

said each first shaft and said second shaft have a proximal end and a distal end; wherein

said each proximal end of said first shaft and said second shaft is attached to said support frame inside surface; wherein

said each distal end of said first shaft and said second shaft is attached to said outer ring of said nested ring structure; wherein

said longitudinal axis of said each first shaft and said second shaft form a rotational axis for said outer ring; wherein

said each support frame dimensions, said outer ring diameter, and said outer ring cross section are sized such that said outer ring can rotate unimpeded about a rotational axis coinciding with said longitudinal axis of said each first shaft and said second shaft;

said nested ring structure further comprising:

an inner ring; wherein

said outer ring has a larger diameter than said inner ring; wherein

said outer ring and said inner ring are concentric; wherein

said outer ring has an outer ring inside surface; wherein

said outer ring inside surface has a surface normal pointing toward said inner ring; wherein

said outer ring inside surface has one and at most two attachments to said inner ring of said nested ring structure; wherein

said attachments comprise:

a third shaft and an fourth shaft; wherein

 the longitudinal axis of said each third shaft and said fourth shaft are coaligned when said fourth shaft is present; wherein

 said each third shaft and said fourth shaft have a circular cross-section; wherein

 said each third shaft and said fourth shaft have a proximal end and a distal end; wherein

 said each proximal end of said third shaft and said fourth shaft is attached to said inside surface of said outer ring; wherein

 said each distal end of said third shaft and said fourth shaft is attached to said inner ring of said nested ring structure; wherein

 the longitudinal axis of said each third shaft and said fourth shaft form a rotational axis of said inner ring; wherein

 said each outer ring dimensions, said inner ring diameter, and said inner ring cross section are sized such that said inner ring can rotate unimpeded about a rotational axis coinciding with said longitudinal axis of said each third shaft and said fourth shaft;

a central support platform; wherein

said central support platform and said inner ring are concentric; wherein

said central support platform has an attached device mounted to said central support platform; wherein

said device attached to said central support platform is chosen from the group consisting essentially of a smartphone, tablet computer, mini-tablet computer, and combinations thereof; wherein

said device registers displacements of said central support platform induced by a user in real-time; wherein

said inner ring has a larger diameter than said central support platform with said device attached; wherein

said inner ring has an inner ring inside surface; wherein

said inner ring inside surface has a surface normal pointing toward said central support platform; wherein

said inner ring inside surface has one and at most two attachments to said central support platform; wherein

said attachments comprise:

a fifth shaft and an sixth shaft; wherein the longitudinal axis of said each fifth shaft and said sixth shaft are coaligned when said sixth shaft is present; wherein

said each fifth shaft and said sixth shaft have a circular cross-section; wherein

said each fifth shaft and said sixth shaft have a proximal end and a distal end; wherein

said each proximal end of said fifth shaft and said sixth shaft is attached to said inside surface of said inner ring; wherein

said each distal end of said fifth shaft and said sixth shaft is attached to said central support platform; wherein

the longitudinal axis of said each fifth shaft and said sixth shaft form a rotational axis of said central support platform; wherein

said each inner ring dimensions, said central support platform diameter, and said central support platform cross section are sized such that said central support platform with said device attached can rotate unimpeded about a rotational axis coinciding with said longitudinal axis of said each fifth shaft and said sixth shaft; wherein

said stationary base and said support frame remains stationary during motion induced by a user of said device on said central support platform.

3. The surgical simulation and training system recited in claim 2 ; further comprising accelerometers that measure motion of said central support platform.

4. The surgical simulation and training system recited in claim 2 ; further comprising: an external monitor connected to said device; wherein said external monitor displays visual scenes from software applications implemented in said device; wherein said visual scenes are manipulated in said device in real-time by user induced motion of said device and mirrored in real-time on said external monitor.

5. The surgical simulation and training system recited in claim 2 ; further comprising: a game controller; wherein said game controller transmits user induced motion of said central support platform to said device; wherein said game controller is chosen from the group consisting essentially of a rod, pen, pencil, joystick, stylus, an eyepiece assembly of a fiber optic surgical scope, a surgical tool adapter, a surgical tool, and combinations thereof.

6. The surgical simulation and training system recited in claim 2 ; further comprising: said support frame attached to said stationary base at an adjustable angle; wherein said adjustable angle can be manipulated to approximate planes tangent to contours of the human body.

7. The surgical simulation and training system recited in claim 5 ; further comprising: games using said game controller to promote development of relevant hand-eye coordination skills in surgical scenarios, entertainment game scenarios, and rehabilitation of patients with chronic degenerative lesions impairing joint motion.

Continuity (2)
Division 15197639 · Jun 29, 2016
Related Publication 20190197919A1 · Jun 27, 2019