A flexible endoscopic robot for minimally invasive disc surgery

Through a flexible endoscopic robot, the intervertebral foramen is directly entered, and the intervertebral disc herniation is sucked and negative pressure is used to suck out, solving the problems of step-by-step bore reaming and bone removal in the prior art, and achieving efficient and low-invasive intervertebral disc surgery.

CN120052800BActive Publication Date: 2025-07-18SHIJIAZHUANG HONGQUAN BIOTECHNOLOGY CO LTD

Patent Information

Application Number
CN202510348073.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-07-18
Estimated Expiration
2045-03-24

AI Technical Summary

Technical Problem

In the minimally invasive surgery of existing intervertebral discs, step by step reaming and resection of articular processes or lamina, resulting in long surgery time, low efficiency and great damage to bones.

Method used

A flexible endoscopic robot is used, combining the negative pressure removal tube and clamping claws, and directly enters the intervertebral foramen through the puncture needle. The clamping claws are used to grasp and crimp the herniated part of the intervertebral disc, and aspirate with negative pressure to avoid step-by-step reaming and resection of the bone structure.

Benefits of technology

It reduces the damage to the bones, improves the surgical efficiency, reduces the rate of intervertebral disc recurrence, enhances spinal stability, and shortens the surgical time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a flexible endoscope robot for minimally invasive intervertebral disc surgery, which relates to the technical field of minimally invasive intervertebral disc surgery. The present invention includes a flexible pipeline, and a negative pressure extraction tube and a flushing tube are arranged inside the flexible pipeline. A support tube is arranged at the insertion end of the negative pressure extraction tube, an inner sliding sleeve is slidably connected inside the support tube, a driving rope reel is rotatably installed inside the inner sliding sleeve, and multiple groups of crushing thin ropes are arranged on the outer side of the driving rope reel. The whole of the present invention adopts a flexible endoscope robot. When the puncture needle reaches the position of the intervertebral foramen, there is no need to gradually expand the outer opening of the intervertebral foramen level by level, and there is no need to resect part of the articular process joint or resect the lamina. After the flexible endoscope robot passes through the puncture needle, it directly bends into the intervertebral foramen, and then cooperates with the use of the clamping jaw and the negative pressure extraction tube to grab and aspirate the intervertebral disc herniation, which can reduce the damage to the bone joints, enhance the stability of the spine, and reduce the recurrence rate of the intervertebral disc.
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Description

Technical Field

[0001] The present invention relates to the technical field of minimally invasive disc surgery, and particularly to a flexible endoscope robot for minimally invasive disc surgery. Background Art

[0002] With the continuous progress of medical technology, the surgical methods in the field of spinal surgery are also developing towards more precise, minimally invasive and low-risk directions. For disc diseases, especially disc herniation, when the intervertebral disc degenerates or is damaged, the nucleus pulposus may break through the annulus fibrosus of the intervertebral disc and protrude, forming a disc herniation. At this time, the jelly-like substance of the nucleus pulposus may compress the nearby nerve roots, causing symptoms such as low back pain, leg pain, and numbness.

[0003] The key to percutaneous transforaminal endoscopic technique lies in the enlargement of the intervertebral foramen and the insertion of the working sleeve. The enlargement of the intervertebral foramen is to complete the decompression of the intervertebral foramen and insert the working sleeve by dealing with the superior articular process. Currently, it is mainly divided into three categories according to different tools:

[0004] 1. The trephine system: First, a puncture needle is punctured into the target point of the nucleus pulposus herniation of the intervertebral disc, then a guide wire is inserted, a skin incision is made with a sharp knife, a first-stage dilator is inserted through the tip of the superior articular process to the target point of the disc herniation, and then the second-stage, third-stage, and fourth-stage dilators are inserted into the bone at the outer edge of the superior articular process. Then, a first thin guide rod is inserted along the guide wire, and a first trephine is used to initially grind the superior articular process along the first thin guide rod to form a larger channel. Using this channel, a second slightly thicker guide rod is inserted again, and a second trephine is used to grind the superior articular process along the second guide rod to form an even larger channel. If necessary, the guide rod and trephine of the corresponding stage can be used to continue grinding the superior articular process.

[0005] 2. The hollow bone drill system: The main method is to first puncture the tip of the superior articular process with a puncture needle, and then use a TOMshidi locator to directly establish a small channel on the bone of the superior articular process so that a guide wire can be inserted. Then, hollow bone drills from thin to thick are used to grind the superior articular process along the guide wire in sequence, and finally, the working sleeve is inserted along the guide rod.

[0006] 3. The solid bone drill system: The main method is that after the puncture needle reaches the outside of the superior articular process, a guide wire and a guide rod are inserted, and then a duckbill working sleeve is inserted. The head end of the duckbill working sleeve enters the intervertebral foramen along the ventral bone of the superior articular process, and then the solid bone drill grinds and removes the ventral bone of the superior articular process through the duckbill working sleeve to enlarge the intervertebral foramen, and then the working sleeve is inserted.

[0007] In a Chinese patent (publication number: CN208640780U), a lumbar intervertebral foramen mirror working sleeve with a positioning function is disclosed, including a sleeve and a handle. Although this patent simplifies the process of intervertebral foramen enlargement and the insertion of the working sleeve in percutaneous lumbar intervertebral foramen mirror technology, in actual operation, like the above three systems, it directly enters the intervertebral foramen through the guidance of the working sleeve. This requires step-by-step reaming of the outer opening of the intervertebral foramen, and when dealing with the intervertebral foramen, it is necessary to remove part of the articular process joint or the lamina to keep the channel unobstructed before subsequent removal of the intervertebral disc herniation. At the same time, during the removal, it can only be removed little by little slowly, resulting in low removal efficiency and long operation time. Summary of the Invention

[0008] The object of the present invention is to provide a flexible endoscope robot for minimally invasive disc surgery to solve the above problems.

[0009] The present invention specifically adopts the following technical solutions to achieve the above object:

[0010] A flexible endoscope robot for minimally invasive disc surgery includes a flexible pipe. Inside the flexible pipe, a negative pressure removal pipe and a flushing pipe are provided. The insertion ends of the negative pressure removal pipe and the flushing pipe both exceed the flexible pipe. At the insertion end of the flexible pipe, a micro camera and a lamp head are provided.

[0011] At the insertion end of the negative pressure removal pipe, a support pipe is provided. An inner sliding sleeve is slidably connected inside the support pipe. A driving rope reel is rotatably installed inside the inner sliding sleeve, and the inside of the driving rope reel is designed to be through. A plurality of groups of clamping claws are annularly hinged on the outer side of the inner sliding sleeve. A first elastic sheet is provided between the clamping claws and the inner sliding sleeve. One end of the clamping claw away from the inner sliding sleeve is hinged with an extension rod, and a second elastic sheet is provided between the extension rod and the clamping claw. The extension rod and the clamping claw can be locked. A plurality of groups of crushing thin ropes are provided on the outer side of the driving rope reel, and the crushing thin ropes are fixedly connected to the clamping ends of the extension rods.

[0012] Further, a top spring is provided between the inner sliding sleeve and the inner wall of the support pipe. One end of the inner sliding sleeve close to the inside of the negative pressure removal pipe is fixedly connected with a first pull rope.

[0013] Further, an installation ring is provided inside the inner sliding sleeve. An installation groove is opened on the outer side of the driving rope reel, and the installation ring can be inserted into the installation groove. A pressing ring is fixedly installed on the outer side of the installation groove, and the crushing thin ropes are fixedly installed on the pressing ring.

[0014] Further, a driving rope is wound around the outer side of the driving rope reel. A first rope guiding ring is provided on the inner wall of the inner sliding sleeve, and the driving rope passes through the first rope guiding ring.

[0015] Further, a sliding box is arranged on the inner side of the jaw, a locking plug rod is slidably connected inside the sliding box, a locking spring is arranged between the locking plug rod and the inner wall of the sliding box, a locking slot is formed on the inner side of the extension rod, and the locking plug rod can be inserted into the locking slot. A sliding groove is formed on the outer side of the inner sliding sleeve, a sliding ring is sleeved outside the sliding groove, the sliding ring is connected with the locking plug rod through a transmission rope, a second pull rope is fixedly connected to one side of the sliding ring close to the negative pressure extraction tube, and a guide rope ring II is arranged on the inner side of the jaw, and the transmission rope passes through the guide rope ring II.

[0016] Further, a control port and a negative pressure connection port are arranged at the tail end of the negative pressure extraction tube, the negative pressure connection port is designed to be inclined downward, a plug is arranged between the control port and the negative pressure connection port, three sealing rope holes are formed inside the plug, and the first pull rope, the second pull rope and the driving rope respectively pass through the three sealing rope holes.

[0017] Further, the extension rod is a magnetic rod, and the crushing thin rope can be adsorbed on the extension rod.

[0018] Further, a plurality of hinge grooves are annularly formed on the outer side of the inner sliding sleeve, the jaws are hinged in the hinge grooves, the depth of the hinge grooves is greater than the thickness of the jaws, and the first elastic sheet is also located in the hinge grooves.

[0019] Further, a flexible fine mesh is arranged on the outer sides of the jaws and the extension rod

[0020] Further, a negative pressure adsorber is connected to the negative pressure connection port, a circulating pump is connected to the tail end of the flushing tube, the circulating pump pumps physiological saline into the flushing tube, and the micro camera is connected to an external display.

[0021] The beneficial effects of the present invention are as follows:

[0022] 1. The whole of the present invention adopts a flexible endoscope robot. When the puncture needle reaches the position of the intervertebral foramen, it is not necessary to gradually expand the outer opening of the intervertebral foramen, and it is not necessary to resect part of the articular process joint or resect the lamina. After the flexible endoscope robot passes through the puncture needle, it directly bends into the intervertebral foramen, and then cooperates with the use of the jaws and the negative pressure extraction tube to grab and suck out the intervertebral disc herniation, which can reduce the damage to the bone joints, enhance the stability of the spine, and reduce the recurrence rate of the intervertebral disc.

[0023] 2. The present invention can increase the clamping space of the clamping claws by setting the extension rod, so that the clamping claws can clamp all the protruding parts inside at one time, and then control the rotation of the driving rope drum, which drives the shredding rope to rotate. Multiple groups of shredding ropes are twisted together in a twist shape to shred the protruding part of the intervertebral disc inside. The shredded intervertebral disc protrusion is directly sucked out by the negative pressure removal tube. There is no need for repeated removal. One operation is sufficient, which can greatly shorten the operation time. Moreover, through the shredding removal method, the overall size of the flexible endoscopic robot is set to be thinner, which can adapt to the intervertebral foramen environment more easily. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0025] Figure 2 It is a schematic diagram of the structure of the insertion end of the flexible endoscope robot of the present invention;

[0026] Figure 3 Schematic diagram of the flexible endoscopic robot of the present invention for removing a herniated intervertebral disc;

[0027] Figure 4 It is a schematic diagram of the cross-sectional structure of the insertion end of the negative pressure removal tube of the present invention;

[0028] Figure 5 It is a schematic diagram of the cross-sectional structure of the tail end of the negative pressure removal tube of the present invention;

[0029] Figure 6 This is an exploded view of the inner sleeve structure of the present invention;

[0030] Figure 7 It is a schematic diagram of the cross-sectional structure of the inner sliding sleeve of the present invention;

[0031] Figure 8 It is a schematic diagram of the cross-sectional structure of the clamping jaw and the extension rod of the present invention.

[0032] 1. The axial force of the present invention is the same as that of the axial force of the present invention. The axial force of the present invention is the same as that of the axial force of the present invention. 2. The axial force of the present invention is the same as that of the axial force of the present invention. 3. The axial force of the present invention is the same as that of the axial force of the present invention. DETAILED DESCRIPTION

[0033] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0034] Embodiment 1, as Figures 1 - 8 shown, a flexible endoscope robot for minimally invasive intervertebral disc surgery includes a flexible tube 1. Inside the flexible tube 1, a negative pressure extraction tube 2 and a flushing tube 3 are provided. The insertion ends of the negative pressure extraction tube 2 and the flushing tube 3 both extend beyond the flexible tube 1. At the insertion end of the flexible tube 1, a micro camera 4 and a lamp head 5 are provided.

[0035] At the insertion end of the negative pressure extraction tube 2, a support tube 24 is provided. An inner sliding sleeve 6 is slidably connected inside the support tube 24. A driving rope reel 7 is rotatably installed inside the inner sliding sleeve 6. The inside of the driving rope reel 7 is designed with a through hole. A plurality of groups of clamping jaws 8 are annularly hinged outside the inner sliding sleeve 6. A first elastic sheet 65 is provided between the clamping jaws 8 and the inner sliding sleeve 6. One end of the clamping jaw 8 away from the inner sliding sleeve 6 is hinged with an extension rod 9. A second elastic sheet 10 is provided between the extension rod 9 and the clamping jaw 8. The extension rod 9 and the clamping jaw 8 can be locked. A plurality of groups of crushing thin ropes 72 are provided outside the driving rope reel 7. The crushing thin ropes 72 are fixedly connected to the clamping ends of the extension rods 9.

[0036] Surgical process: First, use a puncture needle to puncture to a position near the intervertebral foramen, then place a working sleeve along the periphery of the puncture needle and remove the puncture needle. Then, place the flexible endoscope robot along the working sleeve. Under the shooting of the micro camera 4, the surgical field of view is clearly displayed. Then, control the flexible endoscope robot to bend and extend into the intervertebral foramen. It should be noted that the flexible tube 1 of the present invention can adopt the existing motion structure of a flexible endoscope robot, usually a slender and flexible tube. At the front end of the tube, a snake bone tube is usually designed. Several steel wires pass through the snake bone tube, and the steel wires are connected to a handle. By pulling the steel wires through the handle, the snake bone tube can be controlled to bend. During the extension process, the flushing tube 3 sprays physiological saline to make the internal view of the intervertebral foramen clearer in a water circulation environment. When the flexible endoscope robot extends to the intervertebral disc herniation site, control the inner sliding sleeve 6 to slide inside the support tube 24. The inner sliding sleeve 6 drives the clamping jaws 8 and the extension rods 9 to extend. When the clamping jaws 8 and the extension rods 9 extend outside the support tube 24, the first elastic sheet 65 causes the clamping jaws 8 to expand, and the second elastic sheet 10 forms a certain angle between the extension rod 9 and the clamping jaw 8, making the extension rod 9 horizontal. At this time, a larger clamping space is formed between the clamping jaws 8 and the extension rods 9. Specifically, as shown in the appendix Figure 2In the state shown, then move the flexible pipeline 1 to make the herniated disc part enter the clamping space. During this process, the negative pressure extraction tube 2 generates suction, which can better guide the herniated disc part into the clamping space. Then, control the inner sliding sleeve 6 to slide into the support tube 24. The clamping jaws 8 are closed inward under the pressing action of the support tube 24. The clamping jaws 8 drive the extension rods 9 to close together. The ends of the extension rods 9 away from the clamping jaws 8 are closed together. Then, control the driving rope reel 7 to rotate. The driving rope reel 7 drives the crushing thin ropes 72 to rotate. Multiple groups of crushing thin ropes 72 rotate and wind together to crush the herniated disc part in the clamping space. Since the negative pressure extraction tube 2 continuously generates negative pressure during this process, the crushed protruding part is sucked out through the negative pressure extraction tube 2. Specifically, as shown in the appendix Figure 3 In the state shown, it should be noted that the herniated disc part is a jelly-like substance. Therefore, when the crushing thin ropes 72 are twisted together in a twist shape, they can crush the herniated disc part. After completely sucking it out, control the inner sliding sleeve 6 to slide into the support tube 24 so that the clamping jaws 8 and the extension rods 9 retract into the support tube 24. Finally, withdraw the flexible endoscope robot. It can quickly complete the removal of the herniated disc by inserting it once, without repeatedly clamping and removing, and the surgical efficiency is high.

[0037] Since the present invention uses the method of crushing and adsorption to remove the herniated disc, the flexible endoscope robot can be set thinner. Generally, the passing space of the intervertebral foramen is about 1 centimeter. The flexible endoscope robot of the present invention can be set to 5 millimeters, and it can enter the intervertebral foramen more easily without gradually expanding the outer opening of the intervertebral foramen, and without removing part of the articular process joint or removing the lamina. After the flexible endoscope robot passes through the puncture needle, it directly bends into the intervertebral foramen, and then cooperates with the use of the clamping jaws 8 and the negative pressure extraction tube 2 to grab and suck out the herniated disc, which can reduce the damage to the bone joints, enhance the stability of the spine, and reduce the recurrence rate of the herniated disc.

[0038] Embodiment 2, on the basis of the above embodiment, further includes a top spring 61 arranged between the inner sliding sleeve 6 and the inner wall of the support tube 24, and a first pull rope 62 is fixedly connected to one end of the inner sliding sleeve 6 close to the inside of the negative pressure extraction tube 2.

[0039] This embodiment provides a control structure for the inner sliding sleeve 6. By pulling the first pull rope 62, the first pull rope 62 drives the inner sliding sleeve 6 to slide into the support tube 24. When the first pull rope 62 is relaxed, the top spring 61 pushes the inner sliding sleeve 6 to slide out of the support tube 24. Connecting the first pull rope 62 to the handle can easily control it.

[0040] Embodiment 3, on the basis of the above embodiment, further includes an installation ring 63 arranged inside the inner sliding sleeve 6. An installation groove is formed on the outer side of the driving rope reel 7. The installation ring 63 can be inserted into the installation groove, and a pressing ring 71 is fixedly installed on the outer side of the installation groove. The crushing thin ropes 72 are fixedly installed on the pressing ring 71.

[0041] This embodiment provides an installation structure for the driving rope pulley 7. Insert the driving rope pulley 7 into the inner sliding sleeve 6, insert the installation ring 63 into the installation groove, and then fix and install the pressing ring 71 on the outside of the installation groove with screws.

[0042] Embodiment 4, on the basis of the above embodiment, further includes that a driving rope 73 is wound around the outside of the driving rope pulley 7, a first rope guiding ring 64 is arranged on the inner wall of the inner sliding sleeve 6, and the driving rope 73 passes through the first rope guiding ring 64.

[0043] This embodiment provides a driving structure for the driving rope pulley 7. By pulling the driving rope 73, the driving rope 73 drives the driving rope pulley 7 to rotate, and the driving rope 73 is also connected to a handle.

[0044] Embodiment 5, on the basis of the above embodiment, further includes that a sliding box 81 is arranged inside the inner side of the clamping jaw 8, a locking insertion rod 82 is slidably connected inside the sliding box 81, a locking spring 83 is arranged between the locking insertion rod 82 and the inner wall of the sliding box 81, a locking slot 91 is opened inside the inner side of the extension rod 9, the locking insertion rod 82 can be inserted into the locking slot 91, a sliding groove is opened on the outside of the inner sliding sleeve 6, a sliding ring 66 is sleeved on the outside of the sliding groove, the sliding ring 66 is connected to the locking insertion rod 82 through a transmission rope 84, a second pulling rope 67 is fixedly connected to the side of the sliding ring 66 close to the negative pressure removal tube 2, and a second rope guiding ring 85 is arranged inside the inner side of the clamping jaw 8, and the transmission rope 84 passes through the second rope guiding ring 85.

[0045] During the clamping and crushing process, it is necessary to lock the angle between the extension rod 9 and the clamping jaw 8 to ensure stable clamping and crushing. Therefore, when the clamping jaw 8 and the extension rod 9 extend, the locking spring 83 pushes the locking insertion rod 82 to be inserted into the locking slot 91 to lock the clamping jaw 8 and the extension rod 9. After crushing is completed, pull the sliding ring 66 to slide along the sliding groove, the sliding ring 66 drives the locking insertion rod 82 to slide towards the inside of the sliding box 81 through the transmission rope 84, the locking insertion rod 82 is away from the locking slot 91, the extension rod 9 can swing relative to the clamping jaw 8, and the extension rod 9 and the clamping jaw 8 can retract into the support tube 24. Moreover, the sliding of the sliding ring 66 can simultaneously control the locking and unlocking of multiple groups of extension rods 9 and clamping jaws 8, the control is simple, and the second pulling rope 67 can be controlled by connecting to a handle.

[0046] Embodiment 6, on the basis of the above embodiment, further includes that a control port 21 and a negative pressure connection port 22 are arranged at the tail end of the negative pressure removal tube 2, the negative pressure connection port 22 is designed to be inclined downward, a blocking plug 23 is arranged between the control port 21 and the negative pressure connection port 22, three sealing rope holes are opened inside the blocking plug 23, and the first pulling rope 62, the second pulling rope 67 and the driving rope 73 respectively pass through the three sealing rope holes.

[0047] Through the setting of this embodiment, the control of the first pulling rope 62, the second pulling rope 67 and the driving rope 73 will not affect negative pressure removal.

[0048] Embodiment 7, based on the above embodiments, further includes that the extension rod 9 is a magnetic rod, and the shredded thin string 72 can be adsorbed on the extension rod 9.

[0049] Since the shredded thin string 72 generates a cutting force by twisting together, when the shredded thin string 72 is in a non-twisted state, it requires a longer length, which causes the shredded thin string 72 to easily sag. Without any restrictions, it is likely to affect the herniated intervertebral disc from entering the clamping space. Therefore, in this embodiment, it is designed that the shredded thin string 72 is adsorbed on the extension rod 9 at the beginning and will detach from the extension rod 9 when twisted together.

[0050] Further, a plurality of hinge grooves are annularly formed on the outer side of the inner sliding sleeve 6. The clamping jaws 8 are hinged in the hinge grooves, and the depth of the hinge grooves is greater than the thickness of the clamping jaws 8. The first elastic piece 65 is also located in the hinge grooves. Through the arrangement of the hinge grooves, when the clamping jaws 8 and the extension rod 9 retract, there is sufficient space and they will not be overly squeezed.

[0051] Embodiment 8, based on the above embodiments, further includes that a flexible fine mesh is provided on the outer sides of the clamping jaws 8 and the extension rod 9. Through the arrangement of the flexible fine mesh, it can block the shredded herniated intervertebral disc and better suck away the shredded part.

[0052] Further, a negative pressure adsorber is connected to the negative pressure connection port 22, a circulating pump is connected to the tail end of the flushing tube 3, the circulating pump pumps physiological saline into the flushing tube 3, and the micro camera 4 is connected to an external display.

[0053] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art. The general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A flexible endoscope robot for minimally invasive intervertebral disc surgery, comprising a flexible tube (1), characterized in that, Inside the flexible pipe (1), a negative pressure removal pipe (2) and a flushing pipe (3) are provided. The insertion ends of the negative pressure removal pipe (2) and the flushing pipe (3) both extend beyond the flexible pipe (1). A micro camera (4) and a lamp head (5) are provided at the insertion end of the flexible pipe (1). A support pipe (24) is provided at the insertion end of the negative pressure removal pipe (2). An inner sliding sleeve (6) is slidably connected inside the support pipe (24). A driving rope reel (7) is rotatably installed inside the inner sliding sleeve (6). The inside of the driving rope reel (7) is designed with a through hole. A plurality of groups of clamping claws (8) are annularly hinged on the outer side of the inner sliding sleeve (6). A first elastic sheet (65) is provided between the clamping claws (8) and the inner sliding sleeve (6). One end of the clamping claw (8) far from the inner sliding sleeve (6) is hinged with an extension rod (9). A second elastic sheet (10) is provided between the extension rod (9) and the clamping claw (8). The extension rod (9) and the clamping claw (8) can be locked. A plurality of groups of crushing thin ropes (72) are provided on the outer side of the driving rope reel (7). The crushing thin ropes (72) are fixedly connected to the clamping ends of the extension rods (9).

2. The flexible endoscope robot for minimally invasive disc surgery according to claim 1, wherein, A top spring (61) is provided between the inner sliding sleeve (6) and the inner wall of the support pipe (24). One end of the inner sliding sleeve (6) close to the inside of the negative pressure removal pipe (2) is fixedly connected with a first pulling rope (62).

3. The flexible endoscope robot for minimally invasive intervertebral disc surgery according to claim 2, wherein, An installation ring (63) is provided inside the inner sliding sleeve (6). An installation groove is formed on the outer side of the driving rope reel (7). The installation ring (63) can be inserted into the installation groove. A pressing ring (71) is fixedly installed on the outer side of the installation groove. The crushing thin ropes (72) are fixedly installed on the pressing ring (71).

4. The flexible endoscope robot for minimally invasive intervertebral disc surgery according to claim 3, wherein, A driving rope (73) is wound around the outer side of the driving rope reel (7). A guide rope ring one (64) is provided on the inner wall of the inner sliding sleeve (6). The driving rope (73) passes through the guide rope ring one (64).

5. The flexible endoscope robot for minimally invasive intervertebral disc surgery according to claim 4, wherein A sliding box (81) is provided on the inner side of the clamping claw (8). A locking insertion rod (82) is slidably connected inside the sliding box (81). A locking spring (83) is provided between the locking insertion rod (82) and the inner wall of the sliding box (81). A locking slot (91) is formed on the inner side of the extension rod (9). The locking insertion rod (82) can be inserted into the locking slot (91). A sliding groove is formed on the outer side of the inner sliding sleeve (6). A sliding ring (66) is sleeved on the outer side of the sliding groove. The sliding ring (66) is connected with the locking insertion rod (82) through a transmission rope (84). One side of the sliding ring (66) close to the negative pressure removal pipe (2) is fixedly connected with a second pulling rope (67). A guide rope ring two (85) is provided on the inner side of the clamping claw (8). The transmission rope (84) passes through the guide rope ring two (85).

6. The flexible endoscope robot for minimally invasive intervertebral disc surgery according to claim 5, wherein, A control port (21) and a negative pressure connection port (22) are provided at the tail end of the negative pressure removal pipe (2). The negative pressure connection port (22) is designed to be inclined downward. A blocking plug (23) is provided between the control port (21) and the negative pressure connection port (22). Three sealing rope holes are formed inside the blocking plug (23). The first pulling rope (62), the second pulling rope (67) and the driving rope (73) respectively pass through the three sealing rope holes.

7. The flexible endoscope robot for minimally invasive disc surgery according to claim 6, characterized in that, The extension rod (9) is a magnetic rod, and the crushing thin rope (72) can be adsorbed on the extension rod (9).

8. A flexible endoscope robot for minimally invasive disc surgery according to claim 7, characterized in that, A plurality of groups of hinge grooves are annularly formed on the outer side of the inner sliding sleeve (6). The clamping jaws (8) are hinged in the hinge grooves, the depth of the hinge grooves is greater than the thickness of the clamping jaws (8), and the first elastic piece (65) is also located in the hinge grooves.

9. A flexible endoscope robot for minimally invasive disc surgery according to claim 8, characterized in that, A flexible fine mesh is arranged on the outer sides of the clamping jaws (8) and the extension rod (9).

10. The flexible endoscopic robot for minimally invasive intervertebral disc surgery according to claim 9, characterized in that, A negative pressure adsorber is connected to the negative pressure connection port (22). A circulating pump is connected to the tail end of the flushing pipe (3). The circulating pump pumps physiological saline into the flushing pipe (3). The micro camera (4) is connected to an external display.

Citation Information

Patent Citations

  • Take waist intervertebral foramen mirror work coat section of thick bamboo of locate function

    CN208640780U

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    CN115054315A

  • Visual guide sheath

    CN208551965U

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