Access device with anchoring body and modular inserts and support structure for supporting accessories used in minimally invasive surgical procedures
An access port is disclosed for use in minimally invasive surgical procedures performed within a patient's abdominal cavity, which includes a body defining a bore configured to guide at least one surgical instrument into the abdominal cavity, and concave and convex anchoring regions for securing the access port relative to the abdominal cavity.
1. A system for performing robotically assisted laparoscopic surgical procedures within a patient's abdominal cavity, comprising:
a) an access device having an elongated body portion with an elongated bore extending therethrough for accommodating the introduction of surgical instruments into the patient's abdominal cavity and having an anchoring portion that extends radially outwardly from the elongated body portion and includes a curved upper surface and a planar bottom surface defined by a single plane, wherein the elongated bore extends to an opening in the planar bottom surface of the anchoring portion and the curved upper surface of the anchoring portion is configured to shoe-horn the access device through an incision into an anchoring position with respect to an interior wall of the patient's abdominal cavity, a modular anchoring sleeve configured to slide over the anchoring portion and couple thereto, a bottom surface of the anchoring sleeve supports a camera and one or more LED light sources to facilitate surgical visualization of the patient's abdominal cavity as the access device is shoe-horned through the incision into the anchoring position and with the access device installed in the patient's abdominal cavity; and
b) a robotic arm for operating one or more surgical instruments extending through the elongated bore of the body portion of the access device under vision through the camera associated with the bottom surface of the modular anchoring sleeve.
2. A system as recited in claim 1 , wherein the robotic arm is configured as an overhead robotic arm.
3. A system as recited in claim 1 , wherein the robotic arm is attached to an operating bed.
4. A system as recited in claim 1 , wherein a slot traverses the planar bottom surface and is configured to secure the modular anchoring sleeve.
5. A system as recited in claim 1 , wherein the bottom surface of the modular anchoring sleeve includes at least first portion more transparent than a second portion.
6. A system as recited in cam 1 , wherein the bottom surface of the modular anchoring sleeve includes a plurality of apertures.