Visual pelvic floor operation repairing device
By designing a visual pelvic floor surgical repairer in mid-urethral suspension surgery, inserting the mesh belt with the incision in the groin area, and using the combination of visual components and cameras, the problems of multiple incisions and mesh belt exposure in the prior art are solved, achieving the effect of reducing surgical workload, reducing patient discomfort and improving surgical safety.
Patent Information
- Application Number
- CN202510368541.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2025-06-06
AI Technical Summary
During the existing mid-urethral suspension surgery, multiple incisions are required in the vagina and two groin areas, which increases the workload of the surgery and the patient's discomfort. In addition, the mesh belt is exposed to the operating room environment for a long time during the operation, which is prone to postoperative inflammatory infection.
A visual pelvic floor surgical repairer was designed to reduce the need for incisions for vagina by opening an incision in both groin areas, inserting the mesh band into the body using a puncture needle and a drive assembly, and precise arrangement and visualization of the visual assembly and camera.
The mesh belt implantation can be completed by opening an incision in the inguinal area, reducing the workload of surgical incision and suture, reducing the patient's discomfort, and preventing mesh belt contamination through the design of the disinfection box, improving the safety of the surgery.
Smart Images

Figure CN120093397A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of medical devices, in particular to a visualized pelvic floor surgery repair device. Background Art
[0002] Pelvic floor surgery is mainly for pelvic floor dysfunction diseases, which are usually caused by pelvic floor muscle damage, pelvic floor organ prolapse, etc. Symptoms include urinary incontinence, uterine prolapse, vaginal anterior and posterior wall bulging, etc. Mid-urethral suspension is a surgical method used to repair and treat urinary incontinence in pelvic floor surgery. During the operation, an incision is first made in the vagina and two groin areas, and then a curved needle is inserted into the body from the vaginal incision and out of one groin incision. The mesh belt fixed on the needle is pulled along this path, and then the needle connected to the other end of the mesh belt is repeated through the other groin incision. Finally, the mesh belt adjusted to the back of the urethra can support the urethra to prevent urine leakage;
[0003] Currently, most mid-urethral suspension surgeries require multiple incisions in the vagina and two groin areas, which makes it inconvenient to make fewer incisions to place the mesh belt. The subsequent suturing of multiple surgical incisions will increase the workload of the operation. Multiple incisions are also likely to increase the patient's discomfort during the operation. In addition, the mesh belt between the two arc-shaped puncture needles is exposed to the operating room environment for a long time during the operation. If other surgical instruments come into contact with the mesh belt, it is easy to cause postoperative inflammation and infection. Summary of the invention
[0004] The object of the present invention is to provide a visualized pelvic floor surgery repair device to solve the problems raised in the above background technology.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A visualized pelvic floor surgery repair device, comprising:
[0007] There are two puncture needles, one end of which is fixed with a handle;
[0008] Needle head 1 is fixed to the end of a puncture needle, and the needle head 1 includes a connecting column 1, and a puncture block 1 is slidably disposed at one end of the connecting column 1;
[0009] Needle 2 is fixed to the end of another puncture needle, and the needle 2 includes a connecting column 2, one end of which is slidably provided with a visual component, and the end of the connecting column 2 is hinged with two puncture blocks 2;
[0010] A mesh belt, a free end of which is fixed between the puncture block 1 and the connecting column 1;
[0011] A disinfection box, fixed to the handle, used to store the mesh belt;
[0012] A driving assembly is slidably arranged on the outside of the handle, and the driving assembly includes a toggle block, an airbag is fixed to the top surface of the toggle block, the toggle block is used to drive the puncture block or the visual assembly to move toward the puncture needle, and the airbag is used to drive the puncture block or the visual assembly to move away from the puncture needle.
[0013] Furthermore, an extension rod fixed to the puncture needle is inserted and fixed inside the handle, and a sliding groove slidably engaged with the toggle block is provided on the outside of the handle.
[0014] Further, the disinfection box comprises:
[0015] Support one, two in number, both fixed on the bottom surface of the disinfection box;
[0016] A sealing cover is detachably fixed to the open end of the disinfection box, and two supports 2 are fixed to the bottom surface of the sealing cover;
[0017] The connecting shaft three is rotatably inserted between the support one and the support two, and a winding wheel is sleeved and fixed on the outer side of the connecting shaft three, and the winding wheel is wound and fixed with the mesh belt.
[0018] Furthermore, a traction rope is fixed to one end of the toggle block, and a hose is connected and fixed to one end of the airbag.
[0019] Furthermore, a columnar cavity is provided inside the connecting column, and a piston is fixed at one end of the puncture block and is slidably connected to the columnar cavity.
[0020] Furthermore, a columnar cavity 2 is formed inside the second connecting column, and a columnar cavity 3 communicating with the second columnar cavity is formed at one end of the second connecting column.
[0021] Furthermore, the visual component includes a columnar block slidably connected to the columnar cavity three, a connecting shaft two is fixed to one end of the columnar block, and a piston two slidably connected to the columnar cavity two is fixed to one end of the connecting shaft two.
[0022] Furthermore, a camera is embedded in the columnar block, and a conical groove is provided between the inner sides of the puncture block 2 and the columnar block.
[0023] Furthermore, the columnar block and the piston 1 are respectively fixedly connected to the traction rope at the corresponding position, and the columnar cavity 1 and the columnar cavity 2 are respectively connected and fixed to the hose at the corresponding position.
[0024] Furthermore, a rectangular cavity is provided inside the handle, and the hose inside the rectangular cavity is in a bent state.
[0025] Compared with the prior art, the present invention has the following beneficial effects:
[0026] 1. An incision is made in both groin areas of the patient, and the needle 1 on one puncture needle clamps the free end of the mesh belt, and the mesh belt is inserted into the body with the help of the puncture needle. The needle 2 on the other puncture needle is then inserted into the body from another incision, so that the needle 2 is close to the mesh belt position of the needle 1, and the two puncture blocks 2 on the needle 2 are driven by the driving component to rotate and unfold, and the mesh belt is arranged between the two puncture blocks 2 with the help of the puncture needle. Then the two puncture blocks 2 are combined to clamp and fix the mesh belt, and the driving component drives the needle 1 to release the mesh belt, so that the free end of the mesh belt is transferred and fixed from the needle 1 to the needle 2, and finally the puncture needle is pulled out to move the needle 2 with the mesh belt out of the body, so that the mesh belt can be implanted in the body by making an incision in the groin area, eliminating the need to make an incision in the vagina and reducing the workload of making and suturing incisions during mid-urethral suspension surgery.
[0027] 2. By winding and fixing one end of the mesh belt on the winding wheel, the winding wheel drives the mesh belt to be immersed in the disinfectant in the disinfection box. After the free end of the mesh belt is transferred from the needle one to the needle two, the puncture needle pulls the free end of the mesh belt through the needle two to pass through the back of the urethra and out of the incision. In this process, the mesh belt that needs to be implanted in the body is pulled out from the inside of the disinfection box, eliminating the traditional method of exposing the entire mesh belt to be implanted in the body to the surgical environment. To a certain extent, it can effectively prevent the mesh belt from being contaminated, which is beneficial to improving the safety of the operation. After the free end of the mesh belt moves out of the incision position, it is only necessary to cut the mesh belt from the end of the mesh belt close to the disinfection box to achieve the implantation of the mesh belt of a suitable length into the body, eliminating the need to cut off the excess mesh belt at both ends of the traditional pre-cut mesh belt after moving out of the incision, which facilitates the installation of the mesh belt.
[0028] 3. By implanting the mesh belt between the two incisions on the groin, the need to pass the two ends of the mesh belt through the vaginal incision in succession during the traditional implantation of the mesh belt is eliminated, which reduces the patient's discomfort during the operation to a certain extent. By installing a prior art micro-camera inside the needle 2, when the two puncture blocks 2 are rotated and unfolded to clamp the mesh belt for standby, the camera can record the in vivo image from between the two unfolded puncture blocks 2, which is convenient for medical personnel to accurately transfer the mesh belt on the needle 1 to the needle 2, and also facilitates the precise arrangement of the mesh belt on the posterior side of the urethra, so as to achieve the effect of visual mid-urethral suspension surgery, which is conducive to ensuring the smooth and accurate progress of the operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0030] Figure 2 The present invention Figure 1 A schematic diagram of the partially enlarged structure at center A;
[0031] Figure 3 It is a schematic diagram of the structure of a needle in the present invention;
[0032] Figure 4 It is a schematic diagram of the internal structure of the disinfection box in the present invention;
[0033] Figure 5 It is a schematic diagram of the structure of the driving component in the present invention;
[0034] Figure 6 It is a schematic diagram of the structure of the second needle in the present invention;
[0035] Figure 7 It is a schematic diagram of the structure of the visual component in the present invention;
[0036] Figure 8 It is a schematic diagram of the second rotating structure of the puncture block in the present invention.
[0037] In the figure: 100, puncture needle; 110, handle; 111, extension rod; 112, rectangular cavity; 200, needle head 1; 210, connecting column 1; 220, columnar cavity 1; 230, puncture block 1; 240, piston 1; 241, connecting shaft 1; 300, needle head 2; 310, connecting column 2; 320, columnar cavity 2; 321, columnar cavity 3; 330, visual component; 331, columnar block; 3311 , camera; 3312, connecting rope; 332, connecting shaft two; 333, piston two; 340, puncture block two; 341, conical groove; 400, mesh belt; 500, disinfection box; 510, support one; 520, sealing cover; 521, support two; 530, connecting shaft three; 531, winding wheel; 600, driving assembly; 610, toggle block; 611, traction rope; 620, airbag; 621, hose. DETAILED DESCRIPTION
[0038] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0039] For example, see Figure 1 - Figure 8In an embodiment of the present invention, a visualized pelvic floor surgery repair device includes two puncture needles 100, one end of the puncture needle 100 is fixed with a handle 110, and the ends of the two puncture needles 100 away from the handle 110 are respectively fixed with a needle head 200 and a needle head 300, the needle head 200 includes a connecting column 1 210 fixed to the puncture needle 100, and a puncture block 1 230 is slidably arranged at one end of the connecting column 1 210, and the needle head 2 300 includes a connecting column 2 310 fixed to the puncture needle 100, and a visual component 330 is slidably arranged at one end of the connecting column 2 310, and the end of the connecting column 2 310 is hinged with two puncture blocks 2 34 0, a mesh belt 400 is detachably clamped and fixed between the puncture block 230 and the connecting column 210, a disinfection box 500 for storing and disinfecting the mesh belt 400 is fixed on the outer side of a handle 110, a driving assembly 600 is arranged on the outer side of the handle 110, and the driving assembly 600 includes a toggle block 610 slidably engaged with the handle 110, an airbag 620 is fixed on the top surface of the toggle block 610, the toggle block 610 is used to drive the puncture block 230 or the visual assembly 330 to move toward the puncture needle 100, and the airbag 620 is used to drive the puncture block 230 or the visual assembly 330 to move away from the puncture needle 100.
[0040] Specifically, two incisions are made at the groin, and then the puncture needle 100 with the needle 200 fixed with the free end of the mesh belt 400 is inserted into the body from one incision, and then another puncture needle 100 with the needle 2 300 is inserted into the body from the other incision, the driving component 600 drives the two puncture blocks 2 340 on the needle 2 300 to clamp the free end of the mesh belt 400, and the driving component 600 drives the needle 200 to release the mesh belt 400, so that the mesh belt 400 is transferred from the needle 200 to the needle 2 300, and then the puncture needle 100 with the needle 2 300 and the free end of the mesh belt 400 is moved out of the incision, and the mesh belt 400 is pulled to support it. The mesh belt 400 is located at the back of the urethra, eliminating the need for making an incision in the vagina in addition to the incision in the groin in traditional surgery, reducing the workload of making and suturing incisions during mid-urethral suspension surgery, and at the same time reducing the discomfort of multiple incisions in the patient's body. The mesh belt 400 can be pre-stored in a disinfection box 500 for disinfection during implantation. As the mesh belt 400 gradually penetrates into the body, the mesh belt 400 stored in the disinfection box 500 gradually releases a suitable length, eliminating the need for traditional surgery to expose a whole mesh belt 400 to the air and then implanting it into the body from both ends of the mesh belt 400. This is beneficial to preventing the mesh belt 400 from being contaminated by the environment and ensuring the safety of the operation.
[0041] like Figure 1 and Figure 5As shown, in this embodiment, an extension rod 111 fixed to the puncture needle 100 is inserted and fixed inside the handle 110. The extension rod 111 is curved in shape and, in combination with the arc-shaped puncture needle 100, enables the puncture needle 100 to be inserted from the incision in the groin to the back of the urethra. The shape design of the puncture needle 100 and the extension rod 111 is based on the prior art and is mainly used to adapt to the direction of puncture in the body.
[0042] In this embodiment, a sliding groove is provided on the outer side of the handle 110 to slide and engage with the toggle block 610, so that the toggle block 610 can slide back and forth in the sliding groove. The toggle block 610 slides forward to pull the traction rope 611, and the toggle block 610 slides backward to release the tensioned traction rope 611.
[0043] like Figure 1 , Figure 3 and Figure 5 As shown, in the present embodiment, a traction rope 611 is fixed to one end of the toggle block 610, a hose 621 is connected and fixed to one end of the airbag 620, a columnar cavity 220 is provided inside the connecting column 210, a piston 240 slidably connected to the columnar cavity 220 is fixed to one end of the puncture block 230, a connecting shaft 241 slidably connected to the connecting column 210 is fixed between the piston 240 and the puncture block 230, the piston 240 is fixedly connected to the traction rope 611, and the columnar cavity 220 is connected and fixed to the hose 621.
[0044] In this embodiment, the hose 621 and the traction rope 611 both pass through the extension rod 111 and the puncture needle 100, and finally extend to the interior of the needle head 200, wherein both the extension rod 111 and the puncture needle 100 are provided with guide grooves capable of accommodating the hose 621 and the traction rope 611.
[0045] In this embodiment, when it is necessary to clamp the free end of the fixed mesh belt 400 at the end of the needle 200, the handle 110 is held to slide the toggle block 610 backward, so that the traction rope 611 is in a relaxed state and no longer tensions the piston 240, and then the air bag 620 is pressed with the thumb to allow the air inside the air bag 620 to be transported to the inside of the columnar cavity 220 through the hose 621. Under the push of air pressure, the piston 240 passes through the connecting shaft 241 and takes the puncture block 230 away from the connecting column 210, so that there is a gap between the puncture block 230 and the connecting column 210, and then a section of the mesh belt 400 is pulled out from the disinfection box 500. Figure 3 , bend the free end of the mesh belt 400 and clip it between the connecting column 210 and the puncture block 230, then release the airbag 620 with your thumb, and slide the toggle block 610 forward, so that the toggle block 610 pulls the traction rope 611, and the traction rope 611 pulls the piston 240 to Figure 3The position of the puncture block 230 clamps and fixes the free end of the mesh belt 400. During this process, the air inside the columnar cavity 220 is squeezed into the airbag 620 for standby use. The airbag 620 is connected and fixed with an air filling tube to facilitate the replenishment of air when the air pressure inside the airbag 620 is low. Finally, the puncture needle 100 is used to penetrate the needle 200 with the mesh belt 400 into the body.
[0046] In this embodiment, when it is necessary to release the mesh belt 400 clamped on the needle 200 in the body, the thumb pushes the toggle block 610 backward so that the traction rope 611 no longer pulls the piston 240, and then the thumb presses the airbag 620 to allow the air inside the airbag 620 to be injected into the columnar cavity 220 again through the hose 621, so that the piston 240 takes the puncture block 230 away from the connecting column 210, thereby releasing the mesh belt 400 previously clamped between the puncture block 230 and the connecting column 210.
[0047] like Figure 7 As shown, in this embodiment, a columnar cavity 2 320 is opened inside the connecting column 2 310, and a columnar cavity 321 connected to the columnar cavity 2 320 is opened at one end of the connecting column 2 310. The visible component 330 includes a columnar block 331 slidably connected to the columnar cavity 321, a connecting shaft 2 332 is fixed to one end of the columnar block 331, a piston 2 333 slidably connected to the columnar cavity 2 320 is fixed to one end of the connecting shaft 2 332, the columnar block 331 is fixedly connected to the traction rope 611, and the columnar cavity 2 320 is connected and fixed to the hose 621.
[0048] In this embodiment, a connecting rope 3312 is fixed between the puncture block 340 and the columnar block 331. In the initial state, the two puncture blocks 340 are in a merged state. At this time, the traction rope 611 pulls the columnar block 331, and the columnar block 331 pulls the puncture block 340 through the two connecting ropes 3312, so that the two puncture blocks 340 on the needle 300 are kept in a merged state during the puncture process. A conical groove 341 is opened between the inner sides of the two puncture blocks 340. When the piston 333 is moved outward with the columnar block 331 by using air pressure, refer to Figure 8 The columnar block 331 will gradually squeeze the conical groove 341, so that the two piercing blocks 340 in the combined state can be rotated and unfolded, making it convenient to transfer the free end of the mesh belt 400 between the two unfolded piercing blocks 340 for clamping and standby.
[0049] In this embodiment, when it is necessary to clamp the mesh belt 400 on the fixed needle 200 with the needle 200 in the body, first push the toggle block 610 backward by hand so that the traction rope 611 no longer pulls the traction column block 331, and then press the airbag 620 by hand to transport the air inside the airbag 620 to the inside of the columnar cavity 320 through the hose 621, and the air pressure pushes the piston 2 333 to move outward, so that the connecting shaft 2 332 brings the column block 331 to the position of the tapered groove 341, so that the two puncture blocks 2 340 rotate and unfold, and then use the puncture needle 100 to move the two puncture blocks 2 340 to the outside of the mesh belt 400. When it is necessary to use the two puncture blocks 2 When the puncture block 2 340 clamps and fixes the mesh belt 400, the thumb releases the previously squeezed airbag 620, and then slides the toggle block 610 forward, so that the toggle block 610 pulls the columnar block 331 with the traction rope 611, and the columnar block 331 moves into the columnar cavity 3 321. At this time, the columnar block 331 pulls the two connecting ropes 3312, and the connecting ropes 3312 pull the unfolded puncture block 2 340 in the direction of merging, so that the two puncture blocks 2 340 merge to clamp the mesh belt 400, and finally use the puncture needle 100 to move the needle 2 300 and the mesh belt 400 out of the incision, so that the free end of the mesh belt 400 passes through the back of the urethra and is moved out from another incision.
[0050] like Figure 6 and Figure 7 As shown, in this embodiment, a camera 3311 is embedded in the columnar block 331. The camera 3311 is a prior art, and the specific camera working principle is not described in detail. When the needle 300 penetrates the body, the two puncture blocks 340 are in a merged state. At this time, the camera 3311 is stored in the connecting column 310, which effectively prevents the tissue fluid in the patient's body from blocking the camera 3311 lens. When the two puncture blocks 340 need to be used to clamp the mesh belt 400 in the later stage, the two puncture blocks 340 are unfolded, referring to Figure 6 At this time, the camera 3311 can just collect in vivo images from the space between the two puncture blocks 340, so that medical personnel can accurately find the position of the mesh belt 400 and the urethra, and facilitate the mesh belt 400 to pass from the back of the urethra and then transfer to the position between the two puncture blocks 340.
[0051] like Figure 5 As shown, in this embodiment, a rectangular cavity 112 is opened inside the handle 110, and the hose 621 inside the rectangular cavity 112 is in a bent state. The bent state makes the hose 621 inside the rectangular cavity 112 longer. The longer hose 621 can adapt to the forward and backward movement of the toggle block 610 with the airbag 620 in the slide groove. No matter where the toggle block 610 moves with the airbag 620, the airbag 620 can deliver air to the needle 1 200 or the needle 2 300 through the hose 621.
[0052] Embodiment 2, based on embodiment 1, is for storing the mesh belt 400 during the operation and sterilizing the mesh belt 400.
[0053] like Figure 1 and Figure 4 As shown, in this embodiment, two support 1s 510 are fixed to the inner bottom surface of the disinfection box 500, and a sealing cover 520 is detachably fixed to the open end of the disinfection box 500. Two support 2s 521 are fixed to the bottom surface of the sealing cover 520. A connecting shaft 3 530 is rotatably plugged between the support 1 510 and the support 2 521, and a winding wheel 531 is fixed to the outer side of the connecting shaft 3 530, and the winding wheel 531 is wound and fixed to the mesh belt 400.
[0054] In this embodiment, by storing the spare mesh belt 400 in a roll in the disinfection box 500, the mesh belt 400 can be disinfected while preventing the external environment from contaminating the mesh belt 400. When the mesh belt 400 is needed, the mesh belt 400 is pulled outward from the outer through hole of the disinfection box 500 to facilitate pulling the mesh belt 400 to a suitable length for use. During the process of pulling out the mesh belt 400, the winding wheel 531 rotates inside the disinfection box 500 to release the mesh belt 400.
[0055] In this embodiment, when it is necessary to store the rolled mesh belt 400 inside the disinfection box 500, the sealing cover 520 is opened, and the winding wheel 531 wound with the mesh belt 400 is placed inside the disinfection box 500, and the connecting shafts 3 530 at both ends of the winding wheel 531 are rotated to overlap the top arc-shaped notch position of the corresponding support 1 510, and then the free end of the mesh belt 400 is passed through the through hole on the outside of the disinfection box 500 to be stretched for standby use, and finally the sealing cover 520 is closed on the opening of the disinfection box 500, so that the two supports 2 521 on the bottom surface of the sealing cover 520 are pressed against the top of the corresponding support 1 510, and the arc-shaped notch at the bottom of the support 2 521 is pressed against the top of the connecting shaft 3 530, so that the winding wheel 531 can stably rotate between the support 1 510 and the support 2 521 through the connecting shaft 3 530 to release the mesh belt 400.
[0056] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.
[0057] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
Claims
1. A visual pelvic floor surgery repair device, characterized in that: include: There are two puncture needles (100), one end of which is fixed with a handle (110); Needle head 1 (200) is fixed to the end of a puncture needle (100), and needle head 1 (200) includes a connecting column 1 (210), and a puncture block 1 (230) is slidably disposed at one end of the connecting column 1 (210); Needle head 2 (300) is fixed to the end of another puncture needle (100), and needle head 2 (300) includes connecting column 2 (310), one end of which is slidably provided with a visual component (330), and the end of connecting column 2 (310) is hinged with two puncture blocks 2 (340); A mesh belt (400), a free end of which is fixed between the puncture block 1 (230) and the connecting column 1 (210); A disinfection box (500) is fixed to the handle (110) and is used to store the mesh belt (400); The driving assembly (600) is slidably arranged on the outside of the handle (110), and the driving assembly (600) includes a toggle block (610). An airbag (620) is fixed to the top surface of the toggle block (610). The toggle block (610) is used to drive the puncture block (230) or the visual assembly (330) to move toward the puncture needle (100), and the airbag (620) is used to drive the puncture block (230) or the visual assembly (330) to move in a direction away from the puncture needle (100).
2. The visualized pelvic floor surgery repair device according to claim 1, characterized in that: An extension rod (111) fixed to the puncture needle (100) is inserted and fixed inside the handle (110), and a sliding groove for sliding engagement with the toggle block (610) is provided on the outside of the handle (110).
3. The visualized pelvic floor surgery repair device according to claim 1, characterized in that: The disinfection box (500) comprises: Supports 1 (510), two in number, both fixed on the inner bottom surface of the disinfection box (500); A sealing cover (520) is detachably fixed to the open end of the disinfection box (500), and two second supports (521) are fixed to the bottom surface of the sealing cover (520); The connecting shaft three (530) is rotatably inserted between the support one (510) and the support two (521), and a winding wheel (531) is sleeved and fixed on the outer side of the connecting shaft three (530), and the winding wheel (531) is wound and fixed with the mesh belt (400).
4. The visualized pelvic floor surgery repair device according to claim 1, characterized in that: A traction rope (611) is fixed to one end of the toggle block (610), and a hose (621) is connected and fixed to one end of the air bag (620).
5. The visualized pelvic floor surgery repair device according to claim 4, characterized in that: A columnar cavity (220) is provided inside the connecting column (210), and a piston (240) slidably connected to the columnar cavity (220) is fixed at one end of the puncture block (230).
6. The visualized pelvic floor surgery repair device according to claim 5, characterized in that: A second columnar cavity (320) is provided inside the second connecting column (310), and a third columnar cavity (321) communicating with the second columnar cavity (320) is provided at one end of the second connecting column (310).
7. The visualized pelvic floor surgery repair device according to claim 6, characterized in that: The visual component (330) includes a columnar block (331) slidably connected to the columnar cavity (321), a connecting shaft (332) is fixed at one end of the columnar block (331), and a piston (333) slidably connected to the columnar cavity (320) is fixed at one end of the connecting shaft (332).
8. The visualized pelvic floor surgery repair device according to claim 7, characterized in that: A camera (3311) is embedded and installed inside the columnar block (331), a connecting rope (3312) is fixed between the second puncture block (340) and the columnar block (331), and a conical groove (341) is provided between the inner sides of the two second puncture blocks (340).
9. The visualized pelvic floor surgery repair device according to claim 8, characterized in that: The columnar block (331) and the piston one (240) are respectively fixedly connected to the traction rope (611) at the corresponding position, and the columnar cavity one (220) and the columnar cavity two (320) are respectively connected and fixedly connected to the hose (621) at the corresponding position.
10. The visualized pelvic floor surgery repair device according to claim 9, characterized in that: A rectangular cavity (112) is provided inside the handle (110), and the hose (621) inside the rectangular cavity (112) is in a bent state.