The present disclosure relates to a surgical access device. More particularly, the present disclosure relates to surgical access devices having adjustable cannula portions.
Endoscopic and laparoscopic minimally invasive procedures have been used for introducing medical devices inside a patient and for viewing portions of the patient's anatomy. To operate on a desired anatomical site, a surgeon may insert a rigid or flexible endoscope inside the patient to physically engage with the anatomical site.
Typically, a trocar assembly includes a cannula and an obturator. The cannula remains in place for use during the laparoscopic procedure, and the obturator includes a tip for penetrating body tissue. In endoscopic surgical procedures, surgery is performed in any hollow organ or tissue of the body through a small incision or through a narrow endoscopic tube (e.g., a cannula) inserted through a small entrance wound in the skin. In laparoscopic procedures, surgical operations in the abdomen are performed through small incisions (usually about 0.5 to about 1.5 cm). Laparoscopic and endoscopic procedures often require the surgeon to act on organs, tissues, and vessels at varying distances from the incision.
Accordingly, it may be helpful to provide an adjustable trocar assembly that is configured to provide flexibility of depth within a surgical site.
One aspect of the present disclosure relates to an adjustable trocar assembly including a housing configured to facilitate insertion of one or more surgical tools into a patient's body and an elongated tubular member extending distally from the housing and defining a longitudinal axis. The elongated tubular member includes a channel configured to facilitate passage of surgical instruments through the elongated tubular member, an adjustable portion configured to facilitate axial movement of the elongated tubular member, a collar of fixed diameter, and a rim of fixed diameter equal to the diameter of the collar.
In another aspect of the disclosure, the adjustable portion is defined by a plurality of adjacent circular ridges centered along the longitudinal axis of the elongated tubular member.
In yet another aspect of the disclosure, each circular ridge of the plurality of circular ridges is operably coupled to one or more adjacent circular ridges of the plurality of circular ridges by a flexible material.
In another aspect of the disclosure, the collar is positioned along the elongated tubular member where the channel transitions into the adjustable portion and the rim is disposed on the distal end of the adjustable portion.
In another aspect of the disclosure, a small portion of excess material defines a fold in each circular ridge of the plurality of circular ridges. The fold is configured to collapse inward and facilitate partial insertion of one circular ridge of the plurality of circular ridges into a proximally adjacent circular ridge of the plurality of circular ridges.
In another aspect of the disclosure, the proximal end of each circular ridge of the plurality of circular ridges may be configured to be inserted into the distal end of the proximally adjacent circular ridge of the plurality of circular ridges, and the distal end of each circular ridge of the plurality of circular ridges may be configured to receive the proximal end of the distally adjacent circular ridge of the plurality of circular ridges when in a retracted state.
In another aspect of the disclosure, the distal end of each circular ridge of the plurality of circular ridges may be configured to be separated from the proximal end of the distally adjacent circular ridge of the plurality of circular ridges by a length of a fold when in an extended state.
In another aspect of the disclosure, the collar and the rim may be made from a rigid material.
In another aspect of the disclosure, each pair of adjacent circular ridges may interact independently from all other non-adjacent circular ridges, such that the adjustable portion can be partially extended or partially retracted.
In another aspect of the disclosure, adjacent circular ridges of the plurality of circular ridges may be interconnected by a layer of thin and flexible material.
Another aspect of the present disclosure relates to a method of using an adjustable trocar assembly. The method includes introducing one or more surgical tools into a channel defined by an elongated tubular member, wherein the elongated tubular member includes a plurality of adjacent circular ridges coupled to one another by a flexible material defining an adjustable portion, and wherein a collar of fixed diameter and a rim of fixed diameter cooperate to ensure that axial uniformity is maintained along the adjustable portion of the elongated tubular member. The method further includes moving the one or more surgical tools through the channel and the adjustable portion until the distal ends of the one or more surgical tools engage the rim of the adjustable portion.
In another aspect of the disclosure, the method further includes extending the adjustable portion toward a target site in a patient's body by exerting a force on the rim in the distal direction until the separation between the distal ends of at least one pair of adjacent of circular ridges, of the plurality of circular ridges, is increased. Additionally, the method includes retracting the adjustable portion away from the target site in the patient's body by exerting a force on the rim in the proximal direction, until at the proximal end of at least one circular ridge of the plurality of circular ridges is partially inserted into the distal end of an adjacent circular ridge of the plurality of circular ridges.
Other features of the disclosure will be appreciated from the following description.
Various aspects of the present disclosure are illustrated herein with reference to the accompanying drawings, wherein:
Aspects of the presently disclosed surgical access device with an adjustable cannula portion are described in detail with reference to the drawings, wherein like reference numerals designate corresponding elements in each of the several views.
As used herein, the term “distal” refers to that portion of the instrument, or component thereof which is farther from the user while the term “proximal” refers to that portion of the instrument or component thereof which is closer to the user.
Various aspects of a surgical access device are described herein. Generally, the surgical access device includes a trocar assembly which may be employed during surgery (e.g., laparoscopic surgery) and may, in various aspects, provide for the sealed access of laparoscopic surgical instruments into an insufflated body cavity, such as the abdominal cavity. As will be described in additional detail below, the step of the present disclosure includes a cannula and an obturator insertable therethrough. The cannula and obturator are separate components but are capable of being selectively connected together. For example, the obturator may be inserted into and through the cannula until the handle of the obturator engages, e.g., selectively locks into, a proximal housing of the cannula. In this initial position, the trocar assembly is employed to tunnel through an anatomical structure, e.g., the abdominal wall, either by making a new passage through the structure or by passing through an existing opening through the structure. Once the trocar assembly has tunneled through the anatomical structure, the obturator is removed, leaving the cannula in place in the structure, e.g., in the incision created by the trocar assembly. The proximal housing of the cannula may include seals or valves that prevent the escape of insufflation gases from the body cavity, while also allowing surgical instruments to be inserted into the body cavity. Further details of a surgical access device including a cannula and an obturator are described in U.S. Pat. No. 10,022,149 to Holsten et al., issued on Jul. 17, 2018, and U.S. Patent Application Publication No. 2018/0085145 to Okoniewski et al., filed on Nov. 13, 2017, the entire content of each of which being incorporated by reference herein.
With initial reference to
With particular reference to
Each of the plurality of circular ridges 410 includes a proximal end 410a and a distal end 410b such that the radius of the proximal end 410a is less than the radius of the radius of the distal end 410b, as can be seen in
In addition to the proximal end 410a and the distal end 410b, each circular ridge of the plurality of circular ridges 410 includes a fold 415 made of a small portion of excess material from the thin and flexible material used to interconnect adjacent circular ridges 410. In order to facilitate the partial insertion of one of the ridges 410 into the proximally adjacent ridge 410, the internal surface 420 of the fold 415 is configured to fold/collapse in on itself between the adjacent circular ridges 410 when the adjustable portion 400 is compressed/retracted, as shown in
When adjustable portion 400 is compressed/fully retracted, as shown in
Now referring to
From the earlier discussion of the tapering effect between adjacent circular ridges 410, as shown in
Given the thinness and flexibility of the material used to interconnect the plurality of circular ridges 410, the tapering effect between adjacent circular ridges 410 requires an initial rigid form to support the first partial insertion of one ridge 410 into another. The collar 215 provides that initial rigid support structure that is relied upon by all subsequent adjacent circular ridges 410. As such, the collar 215 defines the minimum axial radius and by extension ensures axial uniformity along the elongated tubular member 220. Similarly, the rim 225 disposed on the distal end of elongated member 220 acts as a brace for the final circular ridge 410 and provides a well-defined stopping point that can independently maintain its shape and rigid form. The rigidity of rim 225 ensures that the distal-most circular ridge 410 maintains its shape and as such also ensures axial uniformity along the elongated tubular member 220. Additionally, the rim 225 acts as a guide for any surgical instruments inserted therethrough by ensuring that upon exiting the rim said surgical instruments are facing in the direction of the area being targeted for treatment.
In other aspects of the adjustable portion 400, a semi-rigid material can also be used to interconnect the plurality of circular ridges 410, such that each pair of adjacent circular ridges 410 can interact completely independently of all other non-adjacent circular ridges 410 comprising the adjustable portion 400. This independence can facilitate partial extension and retraction of the adjustable portion 400, regardless of the rigidity of the collar 215.
While the above description contains many specifics, these specifics should not be construed as limitations on the scope of the present disclosure, but merely as illustrations of various aspects thereof. Therefore, the above description should not be construed as limiting, but merely as exemplifications of various aspects. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.
CROSS-REFERENCE TO RELATED APPLICATION This application claims priority to, and the benefit of, U.S. Provisional Patent Application Ser. No. 63/034,698 filed on Jun. 4, 2020, the entire content of which is incorporated by reference herein.
Number | Date | Country | |
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63034698 | Jun 2020 | US |