This invention relates to a minimally invasive surgical instrument and in particular to an instrument suitable for laparoscopic surgery, such as hand-assisted laparoscopy.
Conventional open surgery requires the creation of an incision in the abdominal wall to allow access to, and visualisation of internal organs and other anatomical structures. These incisions must be large enough to accommodate a surgeon's hands and any instruments to be utilised by the surgeon during the surgery. Traditionally the size of these incisions has been dictated by the need to see, retract and palpate internal bodily structures. While a large incision will provide access to the interior of the abdomen, such incisions are associated with long healing times, are susceptible to infection, and result in unsightly scars.
Surgical instruments for open surgery are known. For example, U.S. Pat. No. 6,139,563, describes a shaft member operatively coupled to a clamp-type tissue engaging means for use in a mini-laparotomy procedure. The instrument is suitable for insertion directly through an incision opening into an operating space, and the shaft is movable to maintain the opening uncluttered for direct visualisation of the operating space through the opening.
Laparoscopic surgery is an alternative to open surgery. In this method of surgery, the surgeon operates through very small incisions using remotely actuated instruments passed through the abdominal wall using a device called a cannula which creates a working channel. These working channels typically have a radial dimension in the range of from 2 to 15 millimetres. Vision is provided using a laparoscope which is typically 20 to 25 centimetres long and uses fibre-optic technology or a CCD camera to provide the operator with a picture of the interior of the abdomen. The abdomen is generally insufflated with a gas such as carbon dioxide or nitrogen to create a bubble effect and to provide a viable working space, known as the pneumoperitoneum, in which the operator may perform the surgery. Cannulae through which instruments are inserted are constructed to prevent loss of the insufflation gas through them, which would otherwise result in collapse of the pneumoperitoneum.
The benefits of laparoscopic surgery are numerous. Recovery times have been shown to be reduced due to the absence of a large incision. This has benefits for the patient, the health-care organisation and society. The benefits to the patient are reduced stay in hospital, faster mobilisation and return to normal activity. The benefits to the health care organisation are also due to the reduced stay in hospital which is often the most expensive aspect of health care provision. Society benefits in faster return to work and normal activity of the patient.
Some surgical procedures are difficult to perform laparoscopically, for example surgery requiring the removal of large organ specimens, such as surgery for removal of the colon.
Laparoscopic surgical techniques are generally complex and surgeons tend to require long periods training to master these techniques. The surgeon manipulates organs and carries out delicate tasks using remotely actuated instruments. Because the surgeon is insulated from the material that he is working on, tactile feedback and the ability to palpate delicate structures is not possible.
The image viewed by the surgeon is a two dimensional image on a video screen, without three dimensional perspective of depth, and distance, and awareness of the proximity of other structures.
Recently, new surgical techniques have been developed that combine the advantages of both open surgery and laparoscopic surgery. In these new techniques, surgery is carried out using a laparoscopic approach with an additional, slightly larger incision to allow the surgeon to insert a hand into the insufflated abdomen. This is often referred to as hand-assisted laparpscopic surgery (HALS).
HALS allows surgeons to retain tactile feedback and three-dimensional perspective. It also permits rapid finger dissection, enhanced retraction capabilities and simplified haemostasis. There are several publications in the literature describing procedures carried out using a hand-assisted approach. These include total and sub-total colectomy, rectopexy, Nissen's fundoplication, gastrectomy, splenectomy, nephrectomy, pancreatectomy and others. Some of these procedures were previously performed using an open technique only.
During laparoscopy or HALS, a laparoscopic instrument is passed into an operating space through a laparoscopic cannula. The instrument is then moved into a desired position in the operating space. It is frequently desirable to approach an organ or piece of tissue in the operating space with the instrument in a particular desired orientation.
However, conventional laparoscopic instruments are difficult to manipulate as it is only possible to translate the instrument axially through the opening to the operating space, or to pivot the instrument about the opening.
In this way, the incision point restricts the degrees of freedom of the instrument, and make it difficult to approach an anatomical structure in a desired manner within the operating space. The restricted freedom of movement may require the surgeon to assume an uncomfortable position during the procedure leading to surgeon fatigue, and extended time periods to complete a procedure.
To access a desired position in the operating space and/or at a desired orientation in the operating space with the instrument, it may be necessary to create another opening to the operating space and to pass the instrument through a cannula at this other opening into the operating space. This causes further trauma to the patient.
Floppy surgical instruments are also known. For example, U.S. Pat. No. 5,779,727 discloses a surgical scissors at the end of a flexible arm for use in laparoscopic surgery. Such floppy instruments restrict the surgeon's freedom of movement as the surgeon must hold the floppy instrument in a desired position and/or at a desired orientation in the operating space throughout the laparoscopic procedure.
There is therefore a need for a minimally invasive surgical instrument which will facilitate access to a desired site in an opening into an operating space without restricting the freedom of movement of a surgeon.
According to the invention, there is provided a minimally invasive surgical instrument comprising:—
In one embodiment of the invention the joint facilitates rotation of the end effector main body about a longitudinal axis of the end effector relative to the distal end of the stem.
In another embodiment of the invention the joint facilitates pivoting of the end effector main body relative to the distal end of the stem. In one case the joint comprises a universal joint. In another case the pivotal joint comprises a ball-and-socket joint. In a further case the joint comprises a hinge.
Preferably the instrument comprises a rotational joint and a pivoting joint. Ideally the rotational joint is distal of the pivoting joint.
In a preferred embodiment the stem has a distal portion adjacent the distal end of the stem, and the distal portion of the stem is malleable.
In one case the stem is malleable substantially along the length thereof.
In a preferred case the stem has an intermediate portion intermediate the proximal end of the stem and the distal end of the stem, and the intermediate portion of the stem is rigid.
The malleability of the malleable portion of the stem may vary along the length of the malleable portion of the stem.
In a particulary preferred embodiment the stem comprises at least one seal to prevent leakage of gas through the stem. The seal may be provided by a gas-tight sealing jacket around the malleable portion of the stem.
In one case the stem comprises an outer shaft and an inner elongate member. Preferably the seal is provided between the outer shaft and the inner elongate member. Ideally the seal comprises an O-ring.
The inner member may be at least partially flexible. The inner member may be at least partially rigid. Most preferably a proximal portion of the inner member is rigid and a distal portion of the inner member is flexible.
In another embodiment at least portion of the stem is of a layered construction. Ideally at least one layer acts as a seal. Most preferably at least one layer comprises a spring coil. In another case at least one layer is a coil braid. At least one layer may be of a polymeric material. Ideally the polymeric material is polyvinylchloride.
At least one layer may be of a metallic material. Ideally the metallic material is aluminium.
In another embodiment at least portion of the stem is of a linkage construction. Preferably the inks are interconnected by hinges.
In a preferred case the end effector main body is mounted to the distal end of the stem. Ideally the joint is provided in the region of mounting of the end effector main body to the distal end of the stem.
In one embodiment the end effector main body is releasably mounted to the distal end of the stem. Preferably the end effector main body is threadably mounted to the distal end of the stem.
The instrument may comprise a lock to selectively prevent demounting of the end effector main body from the distal end of the stem. The lock preferably comprises a lip for engagement in a recess to limit movement of the end effector main body relative to the stem. The end effector main body may comprise the lip and the recess may be defined on the stem. Preferably the lip is movable between a first position engaged in the recess and a second disengaged position. Ideally the recess is sized to facilitate up to 360° rotation of the end effector main body relative to the distal end of the stem without demounting the end effector main body from the distal end of the stem.
In another embodiment the end effector main body is fixedly mounted to the distal end of the stem. Ideally the end effector main body is mounted to the distal end of the stem by an engagement of at least one male projection in at least one corresponding female recess.
In another preferred embodiment the instrument comprises a mover to facilitate independent movement of the end effector main body relative to the distal end of the stem from the proximal end of the stem.
The instrument preferably comprises a manipulator to facilitate manipulation of the position and/or orientation of the stem from the proximal end of the stem.
Desirably the instrument comprises a lock to lock the stem in a desired manipulated position and/or orientation.
The mover and/or the manipulator and/or the lock may be provided by at least one wire extending along at least portion of the stem. Ideally the wire is coupled to the end effector. The wire may be releasbly coupled to the end effector. Preferably the wire is threadably coupled to the end effector.
The wire may be fixedly coupled to the end effector. Preferably the wire is coupled to the end effector by an engagement of at least male projection in at least one corresponding female recess.
In a preferred embodiment the wire is slidably received in at least one guide on the stem. Ideally the wire comprises a stop to limit movement of the wire.
Desirably the stem has a proximal portion adjacent a proximal end of the stem, and the proximal portion of the stem is flexible.
In another embodiment of the invention the stem is extendable from a retracted configuration to an extended configuration. The stem may be telescopically extendable. The stem may be extendable in a concertina manner.
In one embodiment the end effector main body comprises an orientation indicator. Preferably the indicator is provided by a knurled or ridged portion of the end effector.
In another aspect, the invention provides a surgical apparatus comprising a minimally invasive surgical instrument of the invention and a cannula through which the instrument may be partially inserted.
The cannula may be at least partially flexible. Ideally a distal portion of the cannula adjacent a distal end of the cannula is flexible.
According to a further aspect of the invention, there is provided a method of performing minimally invasive surgery comprising the steps of:—
In one embodiment of the invention the instrument comprises an end effector at the distal end of the instrument, the end effector comprising a proximal main body and a distal operator, and the method comprises the step of moving the end effector main body in at least one direction independently relative to the distal end of the instrument. Ideally the end effector main body is rotated about a longitudinal axis of the end effector relative to the distal end of the instrument.
The end effector main body is preferably pivoted relative to the distal end of the instrument in at least one direction.
The instrument may be at least partially manipulated before partial insertion of the instrument into the operating space.
The instrument may be at least partially manipulated after partial insertion of the instrument into the operating space.
The instrument may be at least partially manipulated during partial insertion of the instrument into the operating space. Ideally the instrument is at least partially manipulated by levering the proximal end of the instrument about the opening to the operating space when the instrument is partially inserted through the opening to the operating space.
In one preferred case the instrument is at least partially manipulated from the proximal end of the instrument externally of the operating space. The method may comprise the step of inserting a hand into the operating space. Ideally the method comprises the steps of:—
In another preferred case the instrument is at least partially manipulated by the hand from within the operating space.
In one case the end effector main body is at least partially moved relative to the distal end of the instrument from the proximal end of the instrument externally of the operating space.
In another case the end effector main body is at least partially moved relative to the distal end of the instrument by the hand from within the operating space.
Desirably the method comprises the step of mounting the end effector main body to the distal end of the instrument. Ideally the end effector main body is mounted to the distal end of the instrument within the operating space. Alternatively the end effector main body may be mounted to the distal end of the instrument externally of the operating space.
In a preferred embodiment the method comprises the step of locking the instrument in the manipulated position and/or orientation.
In another case the method comprises the step of extending the instrument from a retracted configuration to an extended configuration.
In another preferred embodiment of the invention the method comprises the steps of:—
The invention provides in one case a method of performing minimally invasive abdominal surgery wherein the operating space is an abdominal cavity.
The invention provides in another case a method of performing laparoscopy.
Another aspect of the invention provides a laparoscopic surgical instrument comprising:—
The seal may be provided at the malleable portion of the stem.
In one case the seal comprises a gas-tight sealing jacket.
In another case the seal comprises an O-ring.
In a further aspect of the invention, there is provided a minimally invasive surgical instrument comprising:—
Ideally the end effector is mounted to the distal end of the stem.
According to yet another aspect, the invention provides a minimally invasive surgical instrument comprising:—
In one case, the invention provides a laparoscopic surgical instrument.
In a further aspect of the invention, there is provided a coupling device to selectively prevent demounting of a first shaft releasably mounted to a second shaft, the device comprising a lip on the first shaft for engagement in a recess on the second shaft to limit movement of the first shaft relative to the second shaft.
The lip may be slidable along the first shaft between a first position engaged in the recess and a second disengaged position.
Ideally the recess is sized to facilitate up to 360° rotation of the first shaft relative to the second shaft without demounting the first shaft from the second shaft.
The malleable nature of the surgical instrument according to the invention enables the distal end of the instrument to be easily manipulated into a desired position and/or orientation within the operating space. This provides the surgeon using the instrument with the freedom to access sites in the operating space remote from an opening to the operating space. Most importantly, the instrument maintains this position without requiring the surgeon to hold the instrument in the manipulated position and/or orientation.
The end effector at the distal end of the instrument can be moved relative to the distal end of the instrument. This enhances the degrees of freedom of the instrument by enabling the end effector to pivot, and/or to rotate, and/or to move in any other suitable manner very close to a site of interest in the operating space for carrying out a desired surgical procedure.
The joint enables degrees of freedom movement for the end effector due to the short radius of rotation.
The surgical instrument of the invention is particularly applicable to hand assisted surgery and in particular to surgical techniques in which an opening is formed in the abdomen, a sealing hand access device is placed in the opening and a surgeon's hand is then inserted through the hand access device into the operating space for carrying out procedures in the operating space. One such sealing device is described in our International patent application published under number WO-A-00/32117, the entire contents of which are incorporated herein by reference. The sealing device seals to the wound edge and to a surgeon's arm to maintain pneumoperitoneum in the operating space.
In this case a surgical instrument is inserted through a cannula into the operating space and the position and/or orientation of the distal end of the instrument is controlled by the surgeon's hand. The end effector can also be moved relative to the distal end of the instrument by the surgeon's hand to carry out a desired surgical procedure within the operating space.
It will be appreciated that another laparoscopic instrument may be used alternatively or additionally to the surgeon's hand to manipulate the instrument and/or to move the end effector relative to the distal end of the instrument.
The invention will be more clearly understood from the following description of some embodiments thereof, given by way of example only, with reference to the accompanying drawings, in which:—
a) is a side, partially cross-sectional view of the tube of
b) is an end view of the tube of
c) and 13(d) are views similar to
a) is a side, partially cross-sectional view of the cable of
b) is an end view of the cable of
c) and 17(d) are views similar to
a) is a side view of a spacer element part of the instrument of
b) is a perspective view of the spacer element of
c) is a side view of a spring washer part of the instrument of
d) is a perspective view of the spring washer of
e) is a side view of an end effector connector piece of the instrument of
f) is a perspective view of the end effector connector piece of
a) to 29(d) are schematic, partially cross-sectional views illustrating mounting of the end effector to a distal end of the instrument of
a) to 30(c) are side, partially cross-sectional views illustrating mounting of an end effector to a distal end of another minimally invasive surgical instrument according to the invention;
d) is an enlarged, perspective view of part of the end effector and part of the instrument of
a) to 40 are schematic views illustrating movement of an end effector of the instrument of
a) to 41(e) are schematic views illustrating movement of an end effector of another minimally invasive surgical instrument according to the invention relative to a distal end of the instrument from a proximal end of the instrument;
In this specification, the term “malleable” is used to denote an element which is capable of being manipulated into a desired position and/or orientation, and which retains this manipulated position and/or orientation under the typical stresses and strains applied when used for an intended purpose with a patient, for example during partial insertion of a laparoscopic instrument through a laparoscopic cannula.
In this specification, the term “flexible” is used to denote an element which is capable of being manipulated into a desired position and/or orientation, but which does not retain this manipulated position and/or orientation without the assistance of a separate means, such as a surgeon's hand, to hold the flexible element in the manipulated position and/or orientation.
Referring to the drawings, and initially to
The minimally invasive surgical instrument 1 according to the invention is particularly suitable for use with a small opening to an operating space, such as a trocar puncture opening as typically used during laparoscopic surgery. The radial dimension of the working channel provided through a laparoscopic cannula is typically in the range of from 2 mm to 15 mm.
An example of use of the surgical instrument of the invention is to carry out a procedure in an abdominal cavity during a minimally invasive abdominal surgical procedure.
The instrument 1 comprises an elongate stem 2 extending between a proximal end 3, which in use is located externally of an operating space, and a distal end 4, which in use is inserted into the operating space.
The instrument 1 has an end effector 5, at the distal end 4 of the stem 2, and an actuating handle 7 at the proximal end 3 of the stem 2. The end effector 5 comprises a proximal main body 6 and distal operating means, such as grasping fingers or cutting fingers.
At least portion of the stem 2 is malleable. This facilitates insertion of the distal end 4 of the stem 2 into an operating space in a low-profile, substantially straightened configuration, and subsequent manipulation of the distal end 4 of the stem 2, for example by a surgeon's hand, into a desired position and/or orientation within the operating space. The malleable stem 2 maintains this manipulated position and/or orientation within the operating space.
As illustrated in
Referring now to
A cannula 10 is partially inserted through an opening 11 to an operating space 12, and the instrument 1 is then partially inserted through the cannula 10 so that the proximal end 3 of the stem 2 is located externally of the operating space 12 and the distal end 4 of the stem 2, with the end effector 5 mounted thereto, is located within the operating space 12 (
The stem 2 is manipulated, for example by a surgeon's gloved hand 13, into a desired position and/or orientation within the operating space 12 (
When the distal end 4 of the stem 2 is in a desired position and/or orientation within the operating space 12, the end effector main body 6 can be moved, for example rotated about joint 8, in an independent manner relative to the distal end 4 of the shaft 2 (
In this case, the end effector main body 6 is rotated relative to the distal end 4 of the stem 2 by the surgeon's hand 13, which has been inserted into the operating space 12 through a hand-access device 14 mounted at another opening 15 to the operating space 12 (
One example of an application of the instrument 1 according to the invention is to carry out a surgical procedure in the lower pelvis. The malleable stem 2 can be manipulated into a desired position and/or orientation so that the stem 2 extends over the pelvic bone. This manipulated position and/or orientation is maintained by the design strength of the stem 2. The end effector main body 6 can then be moved independently of the distal end 4 of the stem 2 to approach the gall bladder with the end effector 5, as desired. The enhanced degrees of freedom provided by the joints 8, 9 at the distal end 4 of the malleable stem 2 enables the surgeon to carry out potentially difficult or awkward surgical procedures quickly and easily.
The end effector main body 6 may have a knurled or ridged outer surface to provide tactile indication to the surgeon of the orientation of the end effector 5 relative to the distal end 4 of the stem 2.
The surgical instrument 1 of the invention is particularly suitable for use with an at least partially flexible cannula, preferably a distally flexible cannula 10. The flexible cannula 10 enables the malleable instrument 1 to be inserted and moved through the cannula 10 in a desired manipulated position and/or orientation. Manipulation of the distal end 4 of the stem 2 into a desired position and/or orientation in the operating space 12 may bend or manipulate such a flexible cannula 10, as illustrated in
The cannula 10 may also be directly manipulated by the surgeon's intra-pneumoperitoneal hand 13, and/or by another surgical instrument.
The stem 2 of the surgical instrument 1 is shown in more detail in
The outer shaft 20 comprises a proximal rigid tube 21 and a distal malleable tube 22 (
The outer tube 22c acts as a gas-tight sealing jacket around the spring coils 22a, 22b. This sealing effect is particularly important when the instrument 1 is used during laparoscopy to prevent insufflation gas from escaping through the malleable tube 22. In this manner, pneumoperitoneum within the operating space 12 is maintained even during manipulation of the stem 2.
To form the tube 22, the intermediate spring coil 22b is wrapped around the inner spring coil 22a (
The inner elongate member 23 comprises a proximal rigid rod 24 and a distal flexible cable 25 (
The flexible cable 25 comprises a braid of inner wires 25a and an outer wire coil 25b (
The inner elongate member 23 is assembled by inserting a distal end 26 of rod 24 into a proximal end 27 of a first coupling tube 28, and inserting a proximal end 29 of cable 25 into a distal end 30 of the coupling tube 28. The rod 24, the cable 25 and the coupling tube 28 are then silver soldered together to secure the assembly. A distal end 31 of cable 25 is then inserted into a proximal end 32 of a second coupling tube 33, and the coupling tube 33 is silver soldered to the cable 25 to form the inner elongate member 23, as illustrated in
The outer shaft 20 is assembled by overlapping a proximal end 34 of the malleable tube 22 over a distal end 35 of the rigid tube 21. A proximal end 151 of a spacer element 150, as illustrated in
An internal O-ring lip seal 162 is provided between a proximal end 161 of the rod 24 and a proximal end 160 of the rigid tube 21, as illustrated in
a) to 29(d) illustrate mounting of the end effector 5 to the stem 2. The end effector 5 is threadably mounted in a releasable manner to the distal end 4 of the stem 2 by screwing the end effector 5 to the end effector connector piece 154 engaging thread formations on the end effector 5 with corresponding thread formations on the end effector connector piece 154 engaging thread formations on the end effector 5 with corresponding thread formations on the end effector connector piece 154, as illustrated in
It will be appreciated that the instrument 1 may additionally or alternatively be manipulated externally of the operating space 12 before inserting the instrument 1 partially through the flexible cannula 10 into the operating space 12.
It will further be appreciated that the instrument 1 may additionally or alternatively be manipulated during the partial insertion of the instrument 1 through the cannula 10 by levering the proximal end 3 of the stem 2 about the cannula 10 in the opening 11 when the instrument 1 is partially inserted through the cannula 10.
These procedures may aid the surgeon in accessing regions in the operating space 12 which are laterally remote of the opening 11. In addition the surgeon can adapt to the physiological characteristics of the patient, for example the thickness of the abdomen wall, or the strength of the abdomen muscle.
It will be appreciated that the stem 2 may be malleable along the entire length of the stem 2 provided that the distal end 4 of the stem 2 can be manipulated into and maintained in a desired position and/or orientation in the operating space 12.
It will further be appreciated that the malleability of the malleable portion of the stem 2 may vary along the length of the malleable portion of the stem 2.
Further it will be appreciated that the malleability of the malleable portion of the stem 2 may be adjusted while the instrument 1 is at least partially inserted through the cannula 10 into the operating space 12. This may be achieved by, for example, an adjustment mechanism externally of the operating space 12, such as by two separate wires to adjust the malleability of the stem 2.
A proximal portion of the stem 2 adjacent a proximal end 3 of the stem 2 may be flexible. This flexible proximal portion enables a surgeon to hold the actuating handle 7, which is jointed to the proximal end 3 of the stem 2, in any suitable or comfortable position during use. This may provide for a more ergonomic surgical instrument.
a) to 30(d) illustrate mounting of another end effector 40 to the stem 2. End effector 40 is similar to the end effector 5 of
In the case of end effector 40, only one joint, the rotational joint 8, is provided in the region of mounting of the main body of the end effector 40 to the distal end 4 of the stem 2 to facilitate independent rotational movement of the main body of the end effector 40 relative to the distal end 4 of the stem 2.
The end effector 40 is threadably mounted in a releasable manner to the distal end 4 of the stem 2 by screwing the end effector 40 to the end effector connector piece 154 engaging thread formations on the end effector 40 with the corresponding thread formations on the end effector connector piece 154, as illustrated in
The end effector 40 comprises a lip 42 for engagement in a recess 43 on the end effector connector piece 154 to selectively limit movement of the main body of the end effector 40 relative to the distal end 4 of the stem 2, and thereby prevent demounting of the main body of the end effector 40 from the distal end 4 of the stem 2. The lip 42 is slidable along the end effector 40 between a disengaged position (
As illustrated in
Referring to
The main body of the end effector 50 is fixedly mounted to the distal end 4 of the stem 2 by means of a plurality of male projections 51 on the end effector connector piece 154 which engage in a plurality of corresponding female recesses 52 on the end effector 50. The projections 51 and recesses 52 are configured to enable rotation of the main body of the end effector 50 relative to the distal end 4 of the stem 2.
The inner tongue 41 in the end effector 50 is fixedly coupled to the distal end 37 of the coupling tube 33, as illustrated, in a manner which prevents rotation of the main body of the end effector 40 relative to the coupling tube 33.
Referring now to
The instrument 70 comprises means to facilitate manipulation of the position and/or orientation of the stem 2 from the proximal end 3 of the stem 2, which in use is located externally of the operating space 12. The means is provided by at least one, and in this case four, malleable wires 71 extending along at least portion of the stem 2 (
In use, the instrument 70 is partially inserted through the cannula 10 so that the end effector 5 is located within the operating space 12 (
The malleable nature of the stem 2 and the wires 71 maintains the distal end 4 of the stem 2 in the desired position and/or orientation in the operating space 12 without requiring assistance from a separate means to hold the distal end 4 of the stem 2 in the manipulated position and/or orientation (
Referring to
In this case, a toggle switch 81 is provided on the actuating handle 7. The switch 81 is moveable between a position R for rotation of the main body of the end effector 5 relative to the distal end 4 of the stem 2, and a position H for pivoting or hinging movement of the main body of the end effector 5 relative to the distal end 4 of the stem 2 (
With the toggle switch 81 in position R, the control dial 74 may be actuated by the surgeon's hand 13 externally of the operating space 12 to rotate the main body of the end effector 5 relative to the distal end 4 of the stem 2 (
Referring to
In this case, the pivoting joint 9 is a universal joint, the joint 9 facilitating an independent pivoting movement of the end effector main body 6 relative to the distal end 4 of the stem 2. Actuation of a joystick control 61 may be employed to pivot the end effector main body 6 relative to the distal end 4 of the stem 2 (
The rotational joint 8 facilitates an independent rotational movement of the end effector main body 6 about a longitudinal axis running through the end effector 5 relative to the distal end 4 of the stem 2. Actuation of the control dial 74 may be employed to rotate the end effector main body 6 relative to the distal end 4 of the stem 2 (
Two malleable, lateral wires 62 extend through the stem 2 to the pivoting joint 9 to which the wires 62 are coupled for pivoting of the main body 6 of the end effector 5 relative to the distal end 4 of the stem 2 by actuation of the joystick control 61 (
It will be appreciated that any desired combination of pivoting and rotating of the end effector main body 6 relative to the distal end 4 of the stem 2 may be achieved with the surgical instrument 60 by any suitable actuation of the joystick control 61 and/or the control dial 74 (
It will further be appreciated that a ball-and-socket joint may alternatively be used for the pivoting joint 9.
In this case, the stem 2 is extendable from a retracted configuration (
It will be appreciated that the stem 2 may alternatively be extendable in a concertina manner, or in any other suitable manner.
The extendable stem 2 facilitates enhanced access for the end effector 5 at the distal end 4 of the stem 2 to desired locations in the operating space 12 for performing surgical procedures. The extendable aspect of the instrument 90 enables at least portion of the stem 2 to be rigid or flexible.
Referring to
In this case, the instrument 100 comprises means to lock the distal end 4 of the stem 2 in a desired manipulated position and/or orientation within the operating space 12.
The locking means ensures that the distal end 4 of the stem 2 maintains its desired manipulated position and/or orientation within the operating space 12, even if the stem 2 is inadvertently knocked against by the surgeon's hand 13, or by a laparoscopic instrument, or by an internal organ. The locking means also ensures that the malleable stem 2 maintains the desired position and/or orientation during insertion of the instrument 100 through the cannula 10. This is particularly advantageous if the cannula 10 is not completely flexible.
The means is provided, in this case, by at least one malleable wire 71, similar to wires 71 described previously with reference to
In use, the instrument 100 is partially inserted through the cannula 10 into the operating space 12 so that the end effector 5 is located within the operating space 12. The distal end 4 of the stem 2 is manipulated into a desired position and/or orientation within the operating space 12 by the surgeon's hand 13, and the switch 101 is moved from the open position to the locked position to clamp the tensioned wires 71 in place (
It will be appreciated that the malleable wires 71 may alternatively be positioned along the interior of the stem 2, or embedded within the stem 2. It will further be appreciated that a coating, such as a low friction coating, may be provided over the wires 71.
An alternative construction for the malleable tube 22 of the outer shaft 20 of the stem 2 is illustrated in
An alternative construction for the flexible cable 25 of the inner elongate member 23 of the stem 2 is illustrated in
It will be appreciated that the instrument 1 is also suitable for use with a rigid cannula.
In one minimally invasive surgical instrument according to the invention, the end effector is mounted to the distal end of the stem before inserting the instrument partially through the laparoscopic cannula into an operating space. The end effector has a low-profile introduction configuration, and in this configuration the end effector is small enough, for example with a radial dimension in the range of from 2 mm to 15 mm, to be passed directly through the laparoscopic cannula.
In another minimally invasive surgical instrument according to the invention, the stem of the instrument is inserted partially through a laparoscopic cannula into an operating space, and the end effector is mounted to the distal end of the stem within the operating space. The stem of the instrument is small enough, for example with a radial dimension in the range of from 2 mm to 15 mm, to be passed directly through the laparoscopic cannula. The end effector may be inserted into the operating space by any suitable means, such as through a sealing access device, such as described in our International patent application published under number WO-A-00/32117.
The invention is not limited to the embodiments hereinbefore described, with reference to the accompanying drawings, which may be varied in construction and detail.
Number | Date | Country | Kind |
---|---|---|---|
2000/0591 | Jul 2000 | IE | national |
2000/1061 | Dec 2000 | IE | national |
2000/1072 | Dec 2000 | IE | national |
This application is a continuation of international application number PCT/IE01/00094, filed Jul. 23, 2001, and claims the priority of Ireland Patent Application No. 2000/0591, filed Jul. 21, 2000, Ireland Patent Application No. 2000/1072, filed Dec. 21, 2000, and Ireland Patent Application No. 2000/1061, filed Dec. 21, 2000 the contents of all of which are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
1620828 | Molony | Mar 1927 | A |
1708578 | Hyde | Apr 1929 | A |
2047535 | Wappler | Jul 1936 | A |
2555017 | Tuthill | May 1951 | A |
2888928 | Seiger | Jun 1959 | A |
2907321 | Rubens | Oct 1959 | A |
3144020 | Zingale | Aug 1964 | A |
3452615 | Gregory, Jr. | Jul 1969 | A |
3605725 | Bentov | Sep 1971 | A |
3831587 | Boyd | Aug 1974 | A |
3960143 | Terada | Jun 1976 | A |
4033618 | Lamb | Jul 1977 | A |
4108211 | Tanaka | Aug 1978 | A |
4327711 | Takagi | May 1982 | A |
4483562 | Schoolman | Nov 1984 | A |
4610383 | Rothfuss et al. | Sep 1986 | A |
4641652 | Hutterer et al. | Feb 1987 | A |
4646745 | Noiles | Mar 1987 | A |
4686965 | Bonnet et al. | Aug 1987 | A |
4708434 | Tsuno | Nov 1987 | A |
4714075 | Krauter et al. | Dec 1987 | A |
4754909 | Barker et al. | Jul 1988 | A |
4759348 | Cawood | Jul 1988 | A |
4945920 | Clossick | Aug 1990 | A |
4950273 | Briggs | Aug 1990 | A |
5025804 | Kondo | Jun 1991 | A |
5035695 | Weber, Jr. et al. | Jul 1991 | A |
5143475 | Chikama | Sep 1992 | A |
5147356 | Bhatta | Sep 1992 | A |
5152744 | Krause et al. | Oct 1992 | A |
5171256 | Smith et al. | Dec 1992 | A |
5242409 | Buelna | Sep 1993 | A |
5250046 | Lee | Oct 1993 | A |
5279567 | Ciaglia et al. | Jan 1994 | A |
5282806 | Haber et al. | Feb 1994 | A |
5304183 | Gourlay et al. | Apr 1994 | A |
5320611 | Bonutti et al. | Jun 1994 | A |
5354311 | Kambin et al. | Oct 1994 | A |
5383861 | Hempel et al. | Jan 1995 | A |
5396879 | Wilk et al. | Mar 1995 | A |
5423848 | Washizuka et al. | Jun 1995 | A |
5431676 | Dubrul et al. | Jul 1995 | A |
5454827 | Aust et al. | Oct 1995 | A |
5456684 | Schmidt et al. | Oct 1995 | A |
5458608 | Wortrich | Oct 1995 | A |
5527326 | Hermann et al. | Jun 1996 | A |
5540706 | Aust et al. | Jul 1996 | A |
5618294 | Aust et al. | Apr 1997 | A |
5626607 | Malecki et al. | May 1997 | A |
5643294 | Tovey et al. | Jul 1997 | A |
5669926 | Aust et al. | Sep 1997 | A |
5720759 | Green et al. | Feb 1998 | A |
5741286 | Recuset | Apr 1998 | A |
5779727 | Orejola | Jul 1998 | A |
5840077 | Rowden et al. | Nov 1998 | A |
5851212 | Zirps et al. | Dec 1998 | A |
5885238 | Stevens et al. | Mar 1999 | A |
5891147 | Moskovitz et al. | Apr 1999 | A |
5894843 | Benetti et al. | Apr 1999 | A |
5899914 | Zirps et al. | May 1999 | A |
5921915 | Aznoian et al. | Jul 1999 | A |
5921918 | Riza | Jul 1999 | A |
5925064 | Meyers et al. | Jul 1999 | A |
5938678 | Zirps et al. | Aug 1999 | A |
5967997 | Turturro et al. | Oct 1999 | A |
6001096 | Bissinger et al. | Dec 1999 | A |
6001114 | Ouchi | Dec 1999 | A |
6036641 | Taylor et al. | Mar 2000 | A |
6048339 | Zirps et al. | Apr 2000 | A |
6050266 | Benetti et al. | Apr 2000 | A |
6059816 | Moenning | May 2000 | A |
6077286 | Cuschieri et al. | Jun 2000 | A |
6077287 | Taylor et al. | Jun 2000 | A |
6077290 | Marini | Jun 2000 | A |
6126633 | Kaji et al. | Oct 2000 | A |
6129713 | Mangosong et al. | Oct 2000 | A |
6139563 | Cosgrove, III et al. | Oct 2000 | A |
6159146 | El Gazayerli | Dec 2000 | A |
6159200 | Verdura et al. | Dec 2000 | A |
6213941 | Benetti et al. | Apr 2001 | B1 |
6251120 | Dorn | Jun 2001 | B1 |
6290644 | Green, II et al. | Sep 2001 | B1 |
6454783 | Piskun | Sep 2002 | B1 |
RE38018 | Anctil et al. | Mar 2003 | E |
6647281 | Morency | Nov 2003 | B2 |
6821285 | Laufer et al. | Nov 2004 | B2 |
7083636 | Kortenbach | Aug 2006 | B2 |
7147650 | Lee | Dec 2006 | B2 |
7214236 | Kieturakis et al. | May 2007 | B2 |
7229456 | Lang et al. | Jun 2007 | B2 |
7270658 | Woloszko et al. | Sep 2007 | B2 |
7338513 | Lee et al. | Mar 2008 | B2 |
7364582 | Lee | Apr 2008 | B2 |
20010025136 | Leonard et al. | Sep 2001 | A1 |
20020103498 | Pagedas | Aug 2002 | A1 |
20030028179 | Piskun | Feb 2003 | A1 |
20030045834 | Wing et al. | Mar 2003 | A1 |
20040138525 | Saddat et al. | Jul 2004 | A1 |
20050065543 | Kahle et al. | Mar 2005 | A1 |
20050085693 | Belson et al. | Apr 2005 | A1 |
20050096694 | Lee | May 2005 | A1 |
20060206101 | Lee | Sep 2006 | A1 |
20070049966 | Bonadio et al. | Mar 2007 | A1 |
20070244358 | Lee | Oct 2007 | A1 |
20070287993 | Hinman et al. | Dec 2007 | A1 |
Number | Date | Country |
---|---|---|
0791330 | Jun 2005 | EP |
WO 9822030 | May 1998 | WO |
WO 9915089 | Apr 1999 | WO |
WO 9942036 | Aug 1999 | WO |
Number | Date | Country | |
---|---|---|---|
20030236549 A1 | Dec 2003 | US |
Number | Date | Country | |
---|---|---|---|
Parent | PCT/IE01/00094 | Jul 2001 | US |
Child | 10347313 | US |