ARTICULATED ARM FOR HOLDING AN ELONGATED FLEXIBLE MEDICAL INSTRUMENT
20220378545 ยท 2022-12-01
Inventors
Cpc classification
F16M2200/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2200/0021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M2200/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B2017/00292
HUMAN NECESSITIES
F16D2200/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B90/50
HUMAN NECESSITIES
International classification
A61B90/50
HUMAN NECESSITIES
F16D55/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is an articulated support arm for an elongated flexible medical instrument, including: a segment rotating about an axis of rotation, a radial brake for preventing rotation of the segment about the axis of rotation, including: a supply of hydraulic fluid, a piston whose stroke along the direction of the axis of rotation, due to the pressure of the hydraulic fluid, prevents rotation of the segment about the axis of rotation, the piston being an annular piston having a hollow center about the axis of rotation, the supply of hydraulic fluid passing through the hollow center.
Claims
1. Articulated support arm for an elongated flexible medical instrument, comprising: a segment rotating about an axis of rotation, a radial brake for preventing rotation of the segment about the axis of rotation, comprising: a supply of hydraulic fluid, a piston whose stroke along the direction of the axis of rotation, due to the pressure of the hydraulic fluid, prevents rotation of the segment about the axis of rotation, the piston being an annular piston having a hollow center about the axis of rotation, the supply of hydraulic fluid passing through said hollow center.
2. The articulated arm according to claim 1, wherein said stroke of said piston prevents the rotation of said segment about the axis of rotation but does not lock said segment.
3. The articulated arm according to claim 1, further comprising: an axial pivot which physically defines the axis of rotation and around which the segment rotates, the axial pivot passing through said hollow center, a central channel for the supply of hydraulic fluid, passing inside the axial pivot and through said hollow center.
4. The articulated arm according to claim 3, wherein the central channel for the supply of hydraulic fluid extends in the direction of the axis of rotation.
5. The articulated arm according to claim 4, wherein the central channel for the supply of hydraulic fluid extends along the axis of rotation.
6. The articulated arm according to claim 3, further comprising a radial channel for the supply of hydraulic fluid, extending radially to the axis of rotation and connecting the central channel to the annular piston.
7. The articulated arm according to claim 3, wherein at least one of the axial ends of the axial pivot comprises a hydraulic connection including a rotating gasket.
8. The articulated arm according to claim 3, wherein the segment rotates about the axial pivot by means of a needle bearing or a plurality of needle bearings which is/are radially positioned between the axial pivot and the segment.
9. The articulated arm according to claim 3, further comprising two of said rotation-preventing radial brakes with annular piston, located respectively at two axial ends of the axial pivot.
10. The articulated arm according to claim 3, wherein the segment has two ends which respectively rotate about two of said axial pivots whose axes of rotation have the same direction.
11. The articulated arm according to claim 10, wherein the segment is rectilinear and inclined relative to the direction of the axes of rotation of the two axial pivots.
12. The articulated arm according to claim 10, wherein the two axial pivots are interconnected by a hydraulic fluid supply line.
13. The articulated arm according to claim 12, wherein the hydraulic fluid supply line is rectilinear and orthogonal to the direction of the axes of rotation of the two axial pivots.
14. The articulated arm according to claim 1, wherein: the radial brake comprises: a lining attached to the annular piston, a lining attached to the segment, an unattached lining which is not attached to either the annular piston or the segment, the material of the unattached lining being less hard than the material or materials of the attached linings, the attached linings and the unattached lining being arranged relative to one another such that, when the hydraulic fluid pushes the annular piston, the unattached lining is clamped between the two attached linings so as to prevent rotation of the segment about the axis of rotation.
15. The articulated arm according to claim 14, wherein: the lining attached to the annular piston is made of steel, the lining attached to the segment is made of steel, the unattached lining is made of plastic.
16. The articulated arm according to claim 1, further comprising: at least three segments articulated to rotate with respect to each other about a same rotation direction, which include: a proximal segment, located closest to the operating table when the articulated arm is fixed to this operating table, a distal segment, carrying the elongated flexible medical instrument, an intermediate segment, located between the proximal segment and the distal segment.
17. The articulated arm according to claim claim 1, further comprising: at least four segments articulated to rotate with respect to each other about a same rotation direction, which include: a proximal segment, located closest to the operating table when the articulated arm is fixed to this operating table, a distal segment, carrying the elongated flexible medical instrument, at least two intermediate segments, located between the proximal segment and the distal segment.
18. The articulated arm according to claim 1, wherein the elongated flexible medical instrument comprises a catheter and/or a catheter guide and/or a guide catheter.
19. Method for preventing the mobility of an articulated support arm for an elongated flexible medical instrument, comprising a segment that rotates about an axis of rotation and a radial brake for preventing rotation of the segment about the axis of rotation, comprising: a supplying of hydraulic fluid through a hollow center of an annular piston of the radial brake, a stroke of said piston along the direction of the axis of rotation, due to the pressure of said hydraulic fluid, so as to prevent rotation of the segment about the axis of rotation.
20. The method of claim 14, wherein the unattached lining is clamped between the two attached linings so as to prevent rotation of the segment about the axis of rotation without locking the segment.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0054]
[0055]
[0056]
[0057]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0058] In all of
[0059]
[0060] A segment 15 of an articulated arm has a first portion 1 rotating about a first axis of rotation 19 located at the center of a first axial pivot 3, and has a second portion 2 rotating about a second axis of rotation 20 located at the center of a second axial pivot 4.
[0061] The first axial pivot 3 is integral with another segment 5; it is surmounted, at one of its ends, by a rotation-preventing radial brake 7 itself surmounted by a hydraulic connection 13 extended by a hydraulic fluid supply line 16. The center of the first axial pivot 3 is hollow at the first axis of rotation 19, comprising at its center a channel 11 in which the hydraulic fluid circulates. The hydraulic fluid arriving through the channel 11 is brought to the rotation-preventing radial brake 7 and more specifically to the annular piston 9 itself in order to exert hydraulic thrust thereon which will prevent the relative pivoting about the first axis of rotation 19 of segment 15 with respect to the first axial pivot 3 and with respect to segment 5 which is integral with the first axial pivot 3. The first axial pivot 3 is extended, at the other of its ends, by a hydraulic fluid supply inlet 17. Near this other end, the first axial pivot 3 comprises a complementary rotation-preventing radial brake 51 which transmits the hydraulic pressure from rotation-preventing radial brake 7. The joint presence of rotation-preventing radial brake 7 and complementary rotation-preventing radial brake 51, respectively located on both sides towards the two longitudinal ends of the first axial pivot 3, allows better distribution and better balancing of the hydraulic braking pressure along the first axial pivot 3.
[0062] The second axial pivot 4 is integral with another segment 6; it is surmounted, at one of its ends, by a rotation-preventing radial brake 8 itself surmounted by a hydraulic connection 14 arranged in the extension of the hydraulic fluid supply line 16. The center of the second axial pivot 4 is hollow at the second axis of rotation 20, comprising at its center a channel 12 in which the hydraulic fluid circulates. The hydraulic fluid arriving through the channel 12 is brought to the rotation-preventing radial brake 10 and more specifically to the annular piston 10 in order to exert hydraulic thrust thereon which will prevent the relative pivoting about the second axis of rotation 20 of segment 15 with respect to the second axial pivot 4 and with respect to segment 6 which is integral with the first axial pivot 4. The second axial pivot 4 comprises, near the other of its ends, a complementary rotation-preventing radial brake 52 which transmits the hydraulic pressure from rotation-preventing radial brake 8. The joint presence of rotation-preventing radial brake 8 and complementary rotation-preventing radial brake 52, respectively located on both sides towards the two longitudinal ends of the second axial pivot 4, allows better distribution and better balancing of the hydraulic braking pressure along the second axial pivot 4.
[0063] The first axis of rotation 19 and the second axis of rotation 20 are parallel to one another, and are advantageously both vertical in
[0064] Piston 10, of which the stroke along the direction of the second axis of rotation 20, due to the pressure of the hydraulic fluid, prevents the relative rotation of segment 15 with respect to segment 6 about the second axis of rotation 20, is an annular piston 10 having a hollow center 70 around the second axis of rotation 20, the hydraulic fluid supply traveling through the channel 12 forming a hollow center in the second axial pivot 4.
[0065] As an alternative to complementary rotation-preventing radial brake 51 which only transmits the hydraulic thrust of rotation-preventing radial brake 7, another rotation-blocking radial brake with an annular piston may be used for segment 15 to prevent its rotation relative to segment 5 about axis of rotation 19, the two rotation-preventing radial brakes then being respectively located at two axial ends of the first axial pivot 3, and both exerting a hydraulic thrust to prevent the relative rotation of segment 15 and segment 5. The same replacement of complementary rotation-preventing radial brake 52 by another rotation-preventing radial brake itself exerting a hydraulic thrust similar to rotation-preventing radial brake 8 is also conceivable.
[0066] The hydraulic fluid comes from the hydraulic fluid supply inlet 17 feeding through segment 5: [0067] which traverses channel 11 in the first axial pivot 3, [0068] then is sent into rotation-preventing radial brake 7 and even all the way to annular piston 9, [0069] and simultaneously is sent into hydraulic connection 13, [0070] from where it circulates through the supply line 16 to reach hydraulic connection 14, [0071] then is sent into rotation-preventing radial brake 8 and even all the way to annular piston 10, [0072] and simultaneously is sent into channel 12 of the second axial pivot 4 if there is a second rotation-preventing radial brake exerting a hydraulic thrust, [0073] or stopping at rotation-preventing radial brake 8 and annular piston 10 if there is only one complementary rotation-preventing radial brake 52, [0074] or traveling on to another supply line if there is yet another rotation to be prevented between segment 6 and another segment more distal than segment 6.
[0075] The two axial pivots 3 and 4 are interconnected by the hydraulic fluid supply line 16 which is rectilinear and orthogonal to the direction of the axes of rotation 19 and 20 (same direction for these two axes of rotation 19 and 20) of the two axial pivots 3 and 4.
[0076] In one embodiment, the articulated arm comprises three articulated segments that rotate with respect to one another about the same rotation direction. Segment 5 is, for example, a proximal segment, in other words located closest to the operating table when the articulated arm is fixed to this operating table. Segment 6 is, for example, a distal segment carrying the elongated flexible medical instrument. Segment 15 is, for example, an intermediate segment located between proximal segment 5 and distal segment 6.
[0077] In another embodiment, the articulated arm comprises four or five articulated segments that rotate with respect to one another about the same rotation direction. Segment 5 is, for example, a proximal segment, in other words located closest to the operating table when the articulated arm is fixed to this operating table, or else is an intermediate segment connected to the proximal segment. Segment 6 is, for example, a distal segment carrying the elongated flexible medical instrument, or else is an intermediate segment connected to the distal segment. Segment 15 is, for example, an intermediate segment located between proximal segment 5 and distal segment 6, and connected by one of its ends to either proximal segment 5 or intermediate segment 5, depending on the number of segments comprised in the articulated arm, while also being connected by the other of its ends to either distal segment 6 or intermediate segment 6, depending on the number of segments comprised in the articulated arm.
[0078] The stroke of pistons 9 and 10 respectively prevents, but does not lock, the rotation of segment 15 with respect to segments 5 and 6 respectively rotating about the first axis of rotation 19 and about the second axis of rotation 20.
[0079]
[0080] The first axial pivot 3 comprises a main body 60 in which is fitted a radial brake 7 body 38 itself comprising a head 63, including an annular cavity filled by annular piston 9, and an axial protuberance 64 passing through annular piston 9 which is hollow at its center. The axial protuberance 64 is itself hollow at its center.
[0081] Channel 11 comprises the central channel 21 passing successively through the hollow center of the first axial pivot 3 then the hollow center of the head 63 of radial brake 7 and then hydraulic connection 13 before branching at a right angle into the supply line 16. Hydraulic connection 13 comprises a rotating gasket to ensure the relative rotation, about the first axis of rotation 19, between the supply line 16 and the head 63 of radial brake 7. The connection located between hydraulic connection 13 and the head 63 of radial brake 7 is made fluid-tight by a sealing washer 41, preferably of copper.
[0082] Channel 11 comprises a bypass in the head 63 which includes a radial channel 23 then an elbow 24 and then a ring 25 which fills with hydraulic fluid 46 that presses on the upper surface of the body 31 of annular piston 9 and exerts hydraulic thrust on annular piston 9. A hydraulic fluid 46 circulates in channel 11, preferably liquid.
[0083] The body 31 of annular piston 9 transmits this hydraulic pressure to a stack of annular linings, successively to an annular lining 32 preferably made of steel and attached to the body 31 of annular piston 9, then to an unattached annular lining 33 preferably made of plastic, then to a lining 34 preferably made of steel and attached to portion 1 of segment 15. Next, segment 15 transmits this hydraulic pressure to a stack of annular linings, successively to an annular lining 35 preferably made of steel and attached to portion 1 of segment 15, then to an annular lining 36 preferably made of plastic and unattached, then to a lining 37 preferably made of steel and attached to the first axial pivot 3 and/or to segment 5 which is integral with the first axial pivot 3. The various attached and unattached linings are arranged relative to each other so that, when the hydraulic fluid 46 pushes annular piston 9, unattached lining 33 is clamped between the two attached linings 32 and 34 so as to prevent rotation of the segment about the axis of rotation, advantageously without locking it, and also so that unattached lining 36 is clamped between the two attached linings 35 and 37 so as to prevent rotation of segment 15 about axis of rotation 19, advantageously without locking it.
[0084] Segment 15 rotates about the first axial pivot 3 by means of a needle bearing 44, or even (in
[0085] The axial protuberance 64 of the body 38 of radial brake 7 is rotationally locked about the first axis of rotation 19 by being secured to the body 60 of the first axial pivot 3 by means of a pin 42. The axial protuberance 64 of the body 38 of radial brake 7 is translationally locked along the first axis of rotation 19 by being secured to the body 60 of the first axial pivot 3 by means of several retaining screws 49, at least two, regularly distributed around the first axis of rotation 19, in other words also around the body 60 of the first axial pivot 3, again in other words around the axial protuberance 64 of radial brake 7. O-rings 47 ensure fluidtightness, on the one hand between the axial protuberance 64 of radial brake 7 and the inside of the body 60 of the first axial pivot 3, and on the other hand between annular piston 9 and the hollow annular chamber 65 of the head 63 of radial brake 7, said annular chamber 65 being where annular piston 9 slides in translation along the first axis of rotation 19 when the hydraulic fluid 46 enters the ring 25 and begins to push annular piston 9 downwards.
[0086] One end, which opens to outside the head 63 of radial brake 7, of the radial channel 23 is closed by a plug 48. The extension of the elbow 24 through the radial channel 23 is closed by a bleeder screw 49.
[0087]
[0088] The operation of the segment-rotation-preventing radial brake 7 in the resting position of the rotation-preventing radial brake 7 is as follows: [0089] the ring 25 of the annular chamber 65 of the body 38 of the first axial pivot 3, slightly filled or not filled with hydraulic fluid, is thin and therefore only slightly presses on the body 31 of annular piston 9, [0090] said body 31 of annular piston 9 exerts little or no compression on the movable body 39, this movable body 39 being formed by the stack of linings described in
[0093]
[0094] The operation of segment-rotation-preventing radial brake 7 in the applied-pressure position of rotation-preventing radial brake 7 is as follows: [0095] the ring 25 of the annular chamber 65 of the body 38 of the first axial pivot 3, filled with hydraulic fluid, becomes increasingly thick (the thickness being the dimension parallel to the direction of the axis of rotation) as it fills with hydraulic fluid, and therefore presses more and more on the body 31 of annular piston 9 which slides downward, parallel to the axis of rotation of the segment around the axial pivot, this pressure or hydraulic thrust being symbolized by arrow 61, [0096] said body 31 of annular piston 9 increasingly compresses the movable body 39, this movable body 39 being formed by the stack of linings described in
[0098] Of course, the invention is not limited to the examples and to the embodiment which are described and represented, but is capable of numerous variants accessible to those skilled in the art.