Disinfection device for obstetrics and gynecology department and disinfection method thereof

By using protective mechanisms and internal circulation treatment mechanisms in obstetrics and gynecology disinfection devices, the problem of device contact damage caused by cleaning liquid flow is solved, and all-round disinfection and high-temperature disinfection are achieved, ensuring the safety and disinfection effect of high-precision devices.

CN120393071AInactive Publication Date: 2025-08-01SHENYANG MATERNITY & INFANT HOSPITAL
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Patent Information

Application Number
CN202510435216.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-08-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the use of the existing obstetrics and gynecological disinfection device, the flow of the cleaning liquid drives local contact between the instruments, resulting in damage to the high-precision instruments and affecting the safety of use.

Method used

The protective mechanism and internal circulation treatment mechanism are adopted to define the instrument elastically through the positioning arc plate and the extruded airbag bag, and combined with the extended protective pad and high-temperature disinfection mechanism to ensure that the cleaning liquid is in full contact and high-temperature disinfection is carried out.

Benefits of technology

It avoids touch damage between instruments, ensures full contact with cleaning fluid, improves disinfection effect, and protects the safety of high-precision instruments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a gynaecology and obstetrics disinfection device and a disinfection method thereof, and relates to the technical field of gynaecology and obstetrics instrument disinfection, the gynaecology and obstetrics disinfection device comprises a disinfection box, the disinfection box is provided with two groups of symmetrically distributed protection mechanisms, and each protection mechanism comprises a fixed long rod and a positioning ring frame. According to the gynaecology and obstetrics disinfection device and the disinfection method thereof, when precise gynaecology and obstetrics medical instruments are disinfected, the medical instruments are elastically limited through the positioning arc plate and the extrusion air bag, then the medical instruments are put into cleaning liquid, and the situation that the instruments are damaged due to contact caused by flowing of the cleaning liquid is avoided; elastic limitation also ensures that the cleaning liquid can be in full contact with the instrument, the situation that local disinfection is not thorough due to fixed clamping is avoided, meanwhile, an extension protection pad is installed on the periphery of the instrument, the protection range of the instrument is further expanded, and the protection effect in the instrument disinfection process is further improved; and the instrument is protected while instrument disinfection is completed.
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Description

Technical Field

[0001] The present invention relates to the technical field of disinfection of obstetrics and gynecology instruments, and in particular to an obstetrics and gynecology disinfection device and a disinfection method thereof. Background Art

[0002] Obstetrics and gynecology is one of the four major clinical disciplines, mainly studying the etiology, pathology, diagnosis and prevention of diseases of female reproductive organs, the physiological and pathological changes of pregnancy and childbirth, etc. There are many instruments used in obstetrics and gynecology surgeries. In order to ensure the cleanliness of such instruments, they need to be disinfected after each use.

[0003] During the use of existing obstetrics and gynecology disinfection devices, the instruments to be disinfected are placed in the cleaning liquid of the disinfection box. During the cleaning process, the flow of the cleaning liquid drives local collisions between the instruments. For some high-precision instruments, slight collisions are likely to cause damage to them. Such instruments in a slightly damaged condition cannot be used continuously, resulting in certain potential safety hazards in existing disinfection devices. Summary of the Invention

[0004] The present invention discloses an obstetrics and gynecology disinfection device, aiming to solve the technical problem that during the use of existing obstetrics and gynecology disinfection devices, the instruments to be disinfected are placed in the cleaning liquid of the disinfection box. During the cleaning process, the flow of the cleaning liquid drives local collisions between the instruments. For some high-precision instruments, slight collisions are likely to cause damage to them. Such instruments in a slightly damaged condition cannot be used continuously, resulting in certain potential safety hazards in existing disinfection devices.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] An obstetrics and gynecology disinfection device includes a disinfection box. There are two groups of symmetrically distributed protection mechanisms on the disinfection box. The protection mechanism includes a fixed long rod and a positioning ring frame. The fixed long rod is fixedly connected to the inner walls of both sides of the disinfection box near the top. The top of each positioning ring frame is fixedly connected with a fixed rope. The top of each fixed rope is connected with a traction rope. The fixed long rod is provided with perforations at equal intervals, and the fixed rope passes through the perforations. The top of the positioning ring frame is provided with two symmetrically distributed adjustment grooves, and two adjustment sliders are slidably connected inside the two adjustment grooves. The outer walls of the positioning ring frame at the positions of the two adjustment sliders are fixedly connected with mounting frames. The side of the mounting frame facing the adjacent adjustment slider is fixedly connected with a second hydraulic cylinder. The output end of the second hydraulic cylinder is fixedly connected to one side of the adjustment slider. The tops of the two adjustment sliders are fixedly connected with semi-surrounding rods, and the tops and bottoms of the two semi-surrounding plates are fixedly connected with lead-out rods. The opposite ends of the two lead-out rods are connected with an extended protection pad through hinges.

[0007] By setting up a protection mechanism, when disinfecting precision obstetrics and gynecology medical devices, elastic limitation is carried out through the positioning arc plate and the extrusion airbag bag, and then it is put into the cleaning liquid, avoiding the collision damage between the devices driven by the flow of the cleaning liquid. The elastic limitation also ensures that the cleaning liquid can contact the devices in all aspects, avoiding the situation of incomplete local disinfection caused by fixed clamping. At the same time, an extended protection pad is installed on the periphery of the device, further expanding the protection range of the device and further improving the protection effect during the disinfection of the device, protecting the device while completing the disinfection of the device.

[0008] In a preferred solution, a through rod is fixedly connected to the side of the adjusting slider away from the mounting frame, and positioning arc plates are connected to the outer side walls near the top and near the bottom of the through rod through hinges. Extrusion airbag bags are equidistantly arranged on the arc surfaces of the two positioning arc plates. An integrated ring rod is fixedly connected to the outer side wall of the through rod near the positioning arc plate. Positioning spring rods are equidistantly fixedly connected to the side of the integrated ring rod facing the adjacent positioning arc plate, and the ends of the positioning spring rods are fixedly connected to the outer side wall of the positioning arc plate.

[0009] In a preferred solution, a connecting rope is fixedly connected to the arc surface of the extended protection pad, and one end of the connecting rope is fixedly connected to the outer side wall of the export rod. The export rod and the connecting rope are sleeved with the same pressing ring. Positioning jacks are opened on both the pressing ring and the export rod, and the same positioning rod is inserted into the two positioning jacks that are in contact with each other on the pressing ring and the export rod.

[0010] In a preferred solution, two shaft plates are fixedly connected to both sides of the disinfection box close to the fixed long rod. One of the shaft plates on one side is fixedly connected with a forward and reverse motor one. The output shaft of the forward and reverse motor one is fixedly connected with a winding roller through a coupling. One end of the winding roller is connected to the other shaft plate through a bearing. A traction rope is wound around the outer side of the winding roller. Wheel frames are fixedly connected to the outer side walls of the disinfection box near each traction rope. Guide wheels are connected to the wheel frames through bearings, and the traction rope slides over the guide wheels.

[0011] In a preferred solution, an internal circulation treatment mechanism is arranged inside the disinfection box, and the internal circulation treatment mechanism includes a built-in flow rack. A triangular pushing frame is fixedly connected to the bottom inner wall below a plurality of positioning ring frames of the built-in flow rack. Water spraying holes are opened on the inclined surface of the triangular pushing frame. The built-in flow rack is fixedly connected to the inner walls on both sides of the disinfection box. There is a water passing channel between the disinfection box and the built-in flow rack. A circulation pump is fixedly connected to one side of the built-in flow rack. A circulation water pipe is fixedly connected to the built-in flow rack below the circulation pump. Circulation water holes are opened on the outer side wall of the circulation water pipe facing downward. The conveying end of the circulation pump is fixedly connected with an inlet pipe, and one end of the inlet pipe is inserted into the inside of the triangular pushing frame.

[0012] By setting up an internal circulation processing mechanism, when disinfecting the instrument with the cleaning liquid, the circulation pump is regularly started. The circulation pump introduces the cleaning liquid located below the disinfection tank into the triangular pushing frame through the circulation water holes on the circulation water pipe and sprays it out through the spray holes, so as to spray out at an inclined angle, making the cleaning liquid above the triangular pushing frame gradually flow towards the inclined filter plate, accelerating the flow of the cleaning liquid and improving the cleaning effect. When the cleaning liquid flows to the inclined filter plate, the inclined filter plate filters this part of the cleaning liquid and filters out the impurities it carries. The filtered cleaning liquid flows back below the circulation water pipe, thereby realizing the circulation treatment of the cleaning liquid inside the disinfection tank, avoiding secondary attachment of impurities to the outer wall of the instrument, and improving the disinfection effect of the instrument.

[0013] In a preferred embodiment, an inclined filter plate is fixedly connected to the other side of the built-in flow rack, and an external rack is fixedly connected to one side of the disinfection tank above the inclined filter plate. A hydraulic cylinder I is fixedly connected to the side of the external rack facing the inclined filter plate. The output end of the hydraulic cylinder I is fixedly connected to a scraper, and the scraper is in contact with the upper surface of the inclined filter plate. A drum-shaped air pipe is fixedly connected to the top of the scraper. Air spray holes are formed on the outer wall of the drum-shaped air pipe facing the inclined filter plate. An air compressor is fixedly connected to the side of the external rack away from the disinfection tank. The air output end of the air compressor is fixedly connected to a telescopic air pipe, and one end of the telescopic air pipe is inserted into the interior of the drum-shaped air pipe.

[0014] In a preferred embodiment, a waste discharge hole is formed on one side of the disinfection tank below the inclined filter plate, and a hydraulic cylinder III is fixedly connected to one side of the disinfection tank near the waste discharge hole. The output end of the hydraulic cylinder III is fixedly connected to a sealing door, and the sealing door is in contact with the outer wall of the disinfection tank at the waste discharge hole. A collection box is fixedly connected to one side of the disinfection tank below the waste discharge hole.

[0015] In a preferred embodiment, a high-temperature disinfection mechanism is provided between the two fixed long rods of the disinfection tank. The high-temperature disinfection mechanism includes a heating box, which is fixedly connected to the inner walls on both sides of the disinfection tank between the two fixed long rods. A plurality of air guiding plate is fixedly connected to the inside of the heating box. Electric heating tubes are fixedly connected to both sides of the heating box at each air guiding plate at equal intervals. Two air pumps are fixedly connected to the top of the heating box. The air output ends of the two air pumps are both connected to the inside of the heating box near the top through pipes. Cylindrical ring frames are fixedly connected to the top of the heating box near the air intake ends of the two air pumps. Air filter cartridges are fixedly connected to the inside of the two cylindrical ring frames. The air intake end of the air pump is connected to the exhaust end of the air filter cartridge through a pipe.

[0016] By setting up a high-temperature disinfection mechanism, after the instruments are treated with the cleaning liquid, the forward and reverse motor one is started to drive the traction rope to move, so as to pull the instruments to a position close to the fixed long rod. Then the air pump is started and the electric heating tube is powered on, and the high-temperature gas is ejected through the conventional heating air holes to perform preliminary high-temperature disinfection on the instruments. At the same time, the forward and reverse motor two is started to drive the adjusting air pipe to rotate reciprocally. By continuously changing the position of the adjusting air holes, the high-temperature gas is sprayed on different positions of the instruments, so that the contact between the high-temperature gas and the instruments is more comprehensive, and the high-temperature disinfection effect is improved.

[0017] In a preferred solution, a communication hole is opened at the bottom of the heating box, and a semi-circular hollow column is fixedly connected inside the communication hole. Conventional heating air holes are opened on the arc surface of the semi-circular hollow column. A docking hole is opened on the arc surface of the semi-circular hollow column at the middle position. A communication frame is fixedly connected inside the docking hole. The communication frame is communicated with the semi-circular hollow column. Adjusting rails are fixedly connected to both sides of the communication frame. Limited sliders are slidably connected inside the two adjusting rails. Adjusting air pipes are fixedly connected to the outer side walls of the two limited sliders. Adjusting air holes are opened on the outer side wall of the adjusting air pipe. Motor plates are fixedly connected to the inner arc surfaces of the two adjusting rails. A forward and reverse motor two is fixedly connected to one side of the motor plate. The output shaft of the forward and reverse motor two is fixedly connected to a linkage rod through a coupling. One end of the linkage rod is fixedly connected to the outer side wall of the limited slider. Connecting holes are opened on both sides of the communication frame. Telescopic connecting pipes are fixedly connected inside the two connecting holes. One end of the telescopic connecting pipe is inserted into the adjacent adjusting air pipe. Flip covers are connected to both sides of the heating box through hinges. Fitting holes are opened on the two flip covers. The traction rope is located at the fitting holes.

[0018] An obstetrics and gynecology disinfection method uses an obstetrics and gynecology disinfection device as described above, and includes the following steps;

[0019] Step 1: When clamping the instruments, adjust the positions of the respective through rods in advance according to the specifications of the instruments, and then place the instruments between the respective positioning arc plates. The positioning spring rods drive the positioning arc plates to squeeze the instruments. Then, the extrusion air bags on the respective positioning arc plates perform secondary extrusion on the instruments to complete the elastic limitation of the instruments, and move them into the cleaning liquid to start cleaning;

[0020] Step 2: During the cleaning process, the circulation pump is started regularly. The circulation pump introduces the cleaning liquid located below the disinfection box into the triangular pushing frame through the circulation water holes on the circulation water pipe and sprays it out through the water spraying holes, so as to spray out at an inclined angle, making the cleaning liquid above the triangular pushing frame gradually flow towards the inclined filter plate, accelerating the flow of the cleaning liquid, and realizing the internal circulation;

[0021] Step 3: After the cleaning is completed, start the forward and reverse motor 1 to drive the traction rope to move, so as to pull the instrument to a position close to the fixed long rod. Then start the air pump and turn on the electric heating tube. High-temperature gas is ejected through the conventional heating air holes to perform preliminary high-temperature disinfection on the instrument. At the same time, start the forward and reverse motor 2 to drive the adjustment air pipe to rotate reciprocally. By continuously changing the position of the adjustment air holes, the high-temperature gas is sprayed on different positions of the instrument, so that the contact between the high-temperature gas and the instrument is more comprehensive, and high-temperature disinfection begins. After high-temperature disinfection and temporary cooling, it is collected to end the operation.

[0022] As can be seen from the above, a gynecological disinfection device provided by the present invention has the technical effect of, when disinfecting precision gynecological medical instruments, elastically limiting them through the positioning arc plate and the extrusion airbag, and then putting them into the cleaning liquid to avoid damage caused by the collision between instruments driven by the flow of the cleaning liquid. The elastic limitation also ensures that the cleaning liquid can contact the instruments in all aspects, avoiding incomplete disinfection of local areas caused by fixed clamping. At the same time, an extended protective pad is installed on the periphery of the instrument to further expand the protection range of the instrument and further improve the protection effect during the instrument disinfection process, protecting the instrument while completing the instrument disinfection. Brief Description of the Drawings

[0023] Figure 1 It is a schematic diagram of the overall structure of a gynecological disinfection device proposed by the present invention.

[0024] Figure 2 It is a cross-sectional view of the disinfection box structure of a gynecological disinfection device proposed by the present invention.

[0025] Figure 3 It is a schematic diagram of the protection mechanism of a gynecological disinfection device proposed by the present invention.

[0026] Figure 4 It is Figure 3 The enlarged view of a single positioning ring frame and its peripheral structure in

[0027] Figure 5 It is Figure 4 The enlarged view of part A structure in

[0028] Figure 6 It is Figure 4 The enlarged view of part B structure in

[0029] Figure 7 It is a schematic diagram of the internal circulation treatment mechanism of a gynecological disinfection device proposed by the present invention.

[0030] Figure 8 It is Figure 7 The cross-sectional view of the built-in mobile rack structure of

[0031] Figure 9Schematic diagram of the high-temperature disinfection mechanism of a disinfection device for obstetrics and gynecology proposed by the present invention.

[0032] Figure 10 For Figure 9 Bottom view of the overall structure.

[0033] In the figure: 1. Disinfection box; 2. Collection box; 3. Sealing door; 4. Inner circulation treatment mechanism; 401. Air compressor; 402. Circulation water pipe; 403. Built-in flow rack; 404. Triangular push frame; 405. Water spray holes; 406. Inclined filter plate; 407. Hydraulic cylinder 1; 408. External frame; 409. Telescopic air pipe; 410. Air supply pipe; 411. Circulation water holes; 412. Circulation pump; 413. Introduction pipe; 414. Air spray holes; 415. Scraper; 5. Protection mechanism; 501. Traction rope; 502. Forward and reverse motor 1; 503. Winding roller; 504. Axle plate; 505. Guide wheel; 506. Wheel frame; 507. Fixed long rod; 508. Fixed rope; 509. Positioning ring frame; 510. Extended protection pad; 511. Semi-surrounding rod; 512. Hydraulic cylinder 2; 513. Connecting rope; 514. Adjusting slider; 515. Mounting frame; 516. Positioning spring rod; 517. Positioning arc plate; 518. Extrusion air bag; 519. Through rod; 520. Integrated ring rod; 521. Positioning jack; 522. Positioning rod; 523. Export rod; 524. Pressing ring; 6. High-temperature disinfection mechanism; 601. Heating box; 602. Air filter cartridge; 603. Air pump; 604. Cylinder ring frame; 605. Air guide plate; 606. Electric heating tube; 607. Conventional heating air holes; 608. Adjusting air holes; 609. Connecting frame; 610. Telescopic connecting pipe; 611. Adjusting rail; 612. Motor plate; 613. Adjusting air pipe; 614. Semi-circular hollow column; 615. Forward and reverse motor 2; 616. Limiting slider; 617. Linking rod; 7. Flipping cover plate; 8. Hydraulic cylinder 3. Detailed implementation manners

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments.

[0035] A disinfection device for obstetrics and gynecology disclosed by the present invention is mainly applied to the scenario where in the existing disinfection device for obstetrics and gynecology during use, the required disinfection instruments are placed in the cleaning liquid in the disinfection box. During the cleaning process, the flow of the cleaning liquid drives local touches between various instruments. For some high-precision instruments, slight touches are likely to cause damage to them. In the case of slight damage, such instruments cannot be used continuously, resulting in certain potential safety hazards in the existing disinfection device.

[0036] Refer to Figures 1 - 10, An obstetrics and gynecology disinfection device, including a disinfection box 1, on which there are two groups of symmetrically distributed protection mechanisms 5, and the protection mechanism 5 includes a fixed long rod 507 and a positioning ring frame 509. The fixed long rod 507 is fixedly connected to the inner walls on both sides of the disinfection box 1 near the top. The top of each positioning ring frame 509 is fixedly connected with a fixed rope 508, and the top of each fixed rope 508 is connected with a traction rope 501. The fixed long rod 507 is equidistantly provided with through holes, and the fixed rope 508 passes through the through holes. The top of the positioning ring frame 509 is provided with two symmetrically distributed adjustment grooves, and two adjustment sliders 514 are slidably connected inside the two adjustment grooves. The outer walls of the positioning ring frame 509 at the positions of the two adjustment sliders 514 are fixedly connected with mounting frames 515. One side of the mounting frame 515 facing the adjacent adjustment slider 514 is fixedly connected with a second hydraulic cylinder 512, and the output end of the second hydraulic cylinder 512 is fixedly connected to one side of the adjustment slider 514. The tops of the two adjustment sliders 514 are fixedly connected with semi-surrounding rods 511, and the top and bottom ends of the two semi-surrounding plates are fixedly connected with lead-out rods 523. The opposite ends of the two lead-out rods 523 are connected with an extended protection pad 510 through hinges.

[0037] In a specific application scenario, when disinfecting precision obstetrics and gynecology medical devices, elastic limitation is carried out through the positioning arc plate 517 and the extrusion airbag 518, and then they are put into the cleaning liquid, avoiding the collision damage between the devices driven by the flow of the cleaning liquid. The elastic limitation also ensures that the cleaning liquid can contact the devices in all aspects, avoiding the situation of incomplete local disinfection caused by fixed clamping. At the same time, an extended protection pad 510 is installed on the periphery of the device, further expanding the protection range of the device and further improving the protection effect during the device disinfection process, protecting the device while completing the device disinfection.

[0038] Specifically, when clamping the device, the positions of each through rod 519 are adjusted in advance according to the specifications of the device, and then the device is placed between each positioning arc plate 517. The positioning spring rod 516 drives the positioning arc plate 517 to squeeze the device, and then the extrusion airbag 518 on each positioning arc plate 517 performs secondary extrusion on the device to complete the elastic limitation of the device. When the device is in the cleaning liquid, the flow of the liquid will cause the device to have a small range of offset, and then complete the all-round disinfection treatment of the device. At the same time, the positioning ring frame 509 is connected above through the fixed rope 508, which will cause the device to swing with the flow of the cleaning liquid, accelerating the shedding of the impurities attached to it and improving the disinfection effect.

[0039] It should be noted that before the elastic limit of the instrument, the extension protection pad 510 is adjusted according to the unfolded area of the periphery of the instrument. By adjusting the position of the pressure ring 524, the pressure ring 524 squeezes the connecting rope 513, and the connecting rope 513 drives the extension protection pad 510 to expand or contract, thereby changing its protection range and improving its applicable range.

[0040] Referring to Figures 1 - 6 , in a preferred embodiment, a through rod 519 is fixedly connected to the side of the adjustment slider 514 away from the mounting frame 515, and positioning arc plates 517 are connected to the outer side walls near the top and near the bottom of the through rod 519 through hinges. Extrusion airbag bags 518 are equidistantly arranged on the arc surfaces of the two positioning arc plates 517. An integrated ring rod 520 is fixedly connected to the outer side wall of the through rod 519 near the positioning arc plate 517. Positioning spring rods 516 are equidistantly fixedly connected to the side of the integrated ring rod 520 facing the adjacent positioning arc plate 517. The ends of the positioning spring rods 516 are fixedly connected to the outer side wall of the positioning arc plate 517. A connecting rope 513 is fixedly connected to the arc surface of the extension protection pad 510, and one end of the connecting rope 513 is fixedly connected to the outer side wall of the lead-out rod 523. The same pressure ring 524 is sleeved on the peripheries of the lead-out rod 523 and the connecting rope 513. Positioning jacks 521 are opened on both the pressure ring 524 and the lead-out rod 523. The same positioning rod 522 is inserted into the two positioning jacks 521 that are in contact with each other on the pressure ring 524 and the lead-out rod 523.

[0041] Referring to Figures 3 - 6 , in a preferred embodiment, two shaft plates 504 are fixedly connected to both sides of the disinfection box 1 close to the fixed long rod 507, and a forward and reverse motor 502 is fixedly connected to the side of one of the shaft plates 504 on one side. The output shaft of the forward and reverse motor 502 is fixedly connected to a winding roller 503 through a coupling. One end of the winding roller 503 is connected to the side driven by the other shaft plate 504 through a bearing. The traction rope 501 is wound around the outer side of the winding roller 503. Wheel frames 506 are fixedly connected to the outer side walls of the disinfection box 1 near each traction rope 501. Guide wheels 505 are connected to the wheel frames 506 through bearings. The traction rope 501 slides over the guide wheels 505.

[0042] Referring to Figure 1 、 Figure 2 、 Figure 7 and Figure 8, in a preferred embodiment, an internal circulation processing mechanism 4 is provided inside the disinfection box 1, and the internal circulation processing mechanism 4 includes a built-in mobile rack 403. A triangular push frame 404 is fixedly connected to the bottom inner wall below the plurality of positioning ring frames 509. Spray holes 405 are formed on the inclined surface of the triangular push frame 404. The built-in mobile rack 403 is fixedly connected to both inner walls of the disinfection box 1. There is a water passing channel between the disinfection box 1 and the built-in mobile rack 403. A circulation pump 412 is fixedly connected to one side of the built-in mobile rack 403. A circulation water pipe 402 is fixedly connected to the built-in mobile rack 403 below the circulation pump 412. Circulation water holes 411 are formed on the outer side wall of the circulation water pipe 402 facing downward. The conveying end of the circulation pump 412 is fixedly connected to an inlet pipe 413. One end of the inlet pipe 413 is inserted into the inside of the triangular push frame 404.

[0043] Specifically, when disinfecting the instruments with the cleaning liquid, the circulation pump 412 is periodically started. The circulation pump 412 introduces the cleaning liquid located below the disinfection box 1 into the triangular push frame 404 through the circulation water holes 411 on the circulation water pipe 402 and sprays it out through the spray holes 405, so as to spray out at an inclined angle, making the cleaning liquid above the triangular push frame 404 gradually flow towards the inclined filter plate 406, accelerating the flow of the cleaning liquid and improving the cleaning effect. When the cleaning liquid flows to the inclined filter plate 406, the inclined filter plate 406 filters this part of the cleaning liquid and filters out the impurities it carries. The filtered cleaning liquid flows back below the circulation water pipe 402, thereby realizing the circulation treatment of the cleaning liquid inside the disinfection box 1, avoiding the secondary attachment of impurities to the outer wall of the instruments, and improving the disinfection effect of the instruments.

[0044] It should be noted that when the circulation pump 412 is in an intermittent state, the air compressor 401 is started, and the hydraulic cylinder 407 is adjusted to drive the scraper 415 to push the impurities on the inclined filter plate 406. During the pushing process, compressed gas is ejected from the air spray holes 414. The two cooperate to gradually push the impurities on the inclined filter plate 406 downward. The hydraulic cylinder 8 drives the sealing door 3 to move away, and the impurities are pushed into the collection box 2, avoiding the accumulation of impurities from interfering with the treatment of the cleaning liquid.

[0045] In the present invention, the other side of the built-in mobile rack 403 is fixedly connected with an inclined filter plate 406, and on one side of the disinfection box 1 above the inclined filter plate 406, an external rack 408 is fixedly connected. On the side of the external rack 408 facing the inclined filter plate 406, a first hydraulic cylinder 407 is fixedly connected. The output end of the first hydraulic cylinder 407 is fixedly connected with a scraper 415. The scraper 415 is in contact with the upper surface of the inclined filter plate 406. The top of the scraper 415 is fixedly connected with an air injection pipe 410. The outer side wall of the air injection pipe 410 facing the inclined filter plate 406 is provided with air injection holes 414. On the side of the external rack 408 away from the disinfection box 1, an air compressor 401 is fixedly connected. The air output end of the air compressor 401 is fixedly connected with a telescopic air pipe 409. One end of the telescopic air pipe 409 is inserted into the interior of the air injection pipe 410.

[0046] Referring to Figure 1 and Figure 2 , in a preferred embodiment, on one side of the disinfection box 1 below the inclined filter plate 406, a waste discharge hole is provided, and on one side of the disinfection box 1 near the waste discharge hole, a third hydraulic cylinder 8 is fixedly connected. The output end of the third hydraulic cylinder 8 is fixedly connected with a sealing door 3. The sealing door 3 is in contact with the outer side wall of the disinfection box 1 at the waste discharge hole. On one side of the disinfection box 1 below the waste discharge hole, a collection box 2 is fixedly connected.

[0047] Referring to Figure 1 Figure, Figure 9 and Figure 10 , in a preferred embodiment, a high-temperature disinfection mechanism 6 is provided between the two fixed long rods 507 of the disinfection box 1, and the high-temperature disinfection mechanism 6 includes a heating box 601. The heating box 601 is fixedly connected to the inner walls on both sides of the disinfection box 1 between the two fixed long rods 507. A plurality of air guide plate 605 are fixedly connected inside the heating box 601. Electric heating tubes 606 are fixedly connected at equal distances on both sides of the heating box 601 at each air guide plate 605. Two air pumps 603 are fixedly connected to the top of the heating box 601. The air output ends of the two air pumps 603 are both connected to the interior of the heating box 601 near the top through pipes. On the top of the heating box 601 near the air intake ends of the two air pumps 603, cylinder ring frames 604 are fixedly connected. Air filter cylinders 602 are fixedly connected inside the two cylinder ring frames 604. The air intake end of the air pump 603 is connected to the exhaust end of the air filter cylinder 602 through a pipe.

[0048] In a specific application scenario, after the instrument is treated with a cleaning solution, the forward and reverse motor one 502 is started to drive the traction rope 501 to move, thereby pulling the instrument to a position close to the fixed long rod 507. Then, the air pump 603 is started, and the electric heating tube 606 is powered on. High-temperature gas is ejected through the conventional heating air holes 607 to perform preliminary high-temperature disinfection on the instrument. At the same time, the forward and reverse motor two 615 is started to drive the adjustment air pipe 613 to rotate reciprocally. By continuously changing the position of the adjustment air hole 608, the high-temperature gas is sprayed on different positions of the instrument, so that the contact between the high-temperature gas and the instrument is more comprehensive, improving the high-temperature disinfection effect.

[0049] Specifically, after the gas is introduced into the heating box 601, it flows along each air guide plate 605, so that the gas makes high-frequency contact with the electric heating tube 606, improving the gas heating effect and ensuring that the gas at the ejection point is high-temperature gas, thereby improving the high-temperature disinfection effect.

[0050] It should be noted that when the high-temperature gas sprays on the instrument, the instrument is in a slightly shaking state to accelerate the detachment of the cleaning solution on it.

[0051] Refer to Figure 9 and Figure 10 As shown in FIGS. 13 and 14, in a preferred embodiment, a communication hole is opened at the bottom of the heating box 601, and a semi-circular hollow column 614 is fixedly connected inside the communication hole. Conventional heating air holes 607 are opened on the arc surface of the semi-circular hollow column 614. A docking hole is opened on the arc surface of the semi-circular hollow column 614 at the middle position, and a communication frame 609 is fixedly connected inside the docking hole. The communication frame 609 is communicated with the semi-circular hollow column 614. Adjustment rails 611 are fixedly connected to both sides of the communication frame 609. Limiting sliders 616 are slidably connected inside the two adjustment rails 611. Adjustment air pipes 613 are fixedly connected to the outer side walls of the two limiting sliders 616. Adjustment air holes 608 are opened on the outer side wall of the adjustment air pipe 613. Motor plates 612 are fixedly connected to the inner arc surfaces of the two adjustment rails 611. A forward and reverse motor two 615 is fixedly connected to one side of the motor plate 612. The output shaft of the forward and reverse motor two 615 is fixedly connected to a linkage rod 617 through a coupling. One end of the linkage rod 617 is fixedly connected to the outer side wall of the limiting slider 616. Connection holes are opened on both sides of the communication frame 609, and telescopic connecting pipes 610 are fixedly connected inside the two connection holes. One end of the telescopic connecting pipe 610 is inserted into the adjacent adjustment air pipe 613. Flip covers 7 are connected to both sides of the heating box 601 through hinges. Fitting holes are opened on the two flip covers 7. The traction rope 501 is located at the fitting holes.

[0052] A disinfection method for obstetrics and gynecology uses an obstetrics and gynecology disinfection device as described above, including the following steps;

[0053] Step 1: When clamping the instrument, adjust the positions of the respective through rods 519 in advance according to the specifications of the instrument, and then place the instrument between the respective positioning arc plates 517. The positioning spring rods 516 drive the positioning arc plates 517 to squeeze the instrument, and then the extrusion airbag bags 518 on the respective positioning arc plates 517 perform secondary extrusion on the instrument to complete the elastic limitation of the instrument, and then move it into the cleaning liquid to start cleaning;

[0054] Step 2: During the cleaning process, regularly start the circulation pump 412. The circulation pump 412 introduces the cleaning liquid located below the disinfection box 1 into the triangular push frame 404 through the circulation water holes 411 on the circulation water pipe 402 and sprays it out through the spray holes 405, so as to spray out at an inclined angle, making the cleaning liquid above the triangular push frame 404 gradually flow towards the inclined filter plate 406, accelerating the flow of the cleaning liquid and realizing the internal circulation;

[0055] Step 3: After the cleaning is completed, start the forward and reverse motor 502 to drive the traction rope 501 to move, so as to pull the instrument to a position close to the fixed long rod 507. Start the air pump 603, and the electric heating tube 606 is powered on, then the high-temperature gas is sprayed out through the conventional heating air holes 607 to perform preliminary high-temperature disinfection on the instrument. At the same time, start the forward and reverse motor 615 to drive the adjustment air pipe 613 to rotate reciprocally. By continuously changing the position of the adjustment air holes 608, the high-temperature gas sprays on different positions of the instrument, so that the contact between the high-temperature gas and the instrument is more comprehensive, and then start the high-temperature disinfection. After high-temperature disinfection and temporary cooling, collect it to end the operation.

[0056] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. An obstetrics and gynecology disinfection device, comprising a disinfection box (1), characterized in that, Two groups of symmetrically distributed protection mechanisms (5) are provided on the disinfection box (1), and the protection mechanism (5) includes a fixed long rod (507) and a positioning ring frame (509). The fixed long rod (507) is fixedly connected to the inner walls on both sides of the disinfection box (1) near the top. A fixed rope (508) is fixedly connected to the top of each positioning ring frame (509). The top of each fixed rope (508) is connected to a traction rope (501). Through holes are equidistantly formed on the fixed long rod (507), and the fixed rope (508) passes through the through holes. Two symmetrically distributed adjustment slots are formed at the top of the positioning ring frame (509), and adjustment sliders (514) are slidably connected to the interiors of the two adjustment slots. Mounting frames (515) are fixedly connected to the outer side walls of the positioning ring frame (509) at the positions of the two adjustment sliders (514). A second hydraulic cylinder (512) is fixedly connected to one side of the mounting frame (515) facing the adjacent adjustment slider (514). The output end of the second hydraulic cylinder (512) is fixedly connected to one side of the adjustment slider (514). Semi-surrounding rods (511) are fixedly connected to the tops of the two adjustment sliders (514), and leading-out rods (523) are fixedly connected to the top and bottom ends of the two semi-surrounding plates. The opposite ends of the two leading-out rods (523) are connected to an extended protection pad (510) through hinges.

2. The obstetrics and gynecology disinfection device according to claim 1, characterized in that, A through rod (519) is fixedly connected to the side of the adjustment slider (514) away from the mounting frame (515). Positioning arc plates (517) are connected to the outer side walls of the through rod (519) near the top and near the bottom through hinges. Extrusion airbag bags (518) are equidistantly provided on the arc surfaces of the two positioning arc plates (517). An integrated ring rod (520) is fixedly connected to the outer side wall of the through rod (519) near the positioning arc plate (517). Positioning spring rods (516) are equidistantly fixedly connected to one side of the integrated ring rod (520) facing the adjacent positioning arc plate (517). The ends of the positioning spring rods (516) are fixedly connected to the outer side wall of the positioning arc plate (517).

3. The obstetrics and gynecology disinfection device according to claim 2, characterized in that, A connecting rope (513) is fixedly connected to the arc surface of the extended protection pad (510), and one end of the connecting rope (513) is fixedly connected to the outer side wall of the leading-out rod (523). The outer periphery of the leading-out rod (523) and the connecting rope (513) is sleeved with the same pressing ring (524). Positioning jacks (521) are formed on both the pressing ring (524) and the leading-out rod (523). The same positioning rod (522) is inserted into the two positioning jacks (521) that are in contact with each other on the pressing ring (524) and the leading-out rod (523).

4. An obstetrics and gynecology disinfection device according to claim 3, characterized in that, On both sides of the disinfection box (1) close to the fixed long rod (507), two shaft plates (504) are fixedly connected, and one of the shaft plates (504) on one side is fixedly connected with a first forward and reverse motor (502). The output shaft of the first forward and reverse motor (502) is fixedly connected with a winding roller (503) through a coupling. One end of the winding roller (503) is connected to the other shaft plate (504) through a bearing. A traction rope (501) is wound around the outer side of the winding roller (503). On the outer wall of the disinfection box (1) near each traction rope (501), a wheel frame (506) is fixedly connected. A guide wheel (505) is connected to the wheel frame (506) through a bearing, and the traction rope (501) slides over the guide wheel (505).

5. An obstetrics and gynecology disinfection device according to claim 4, characterized in that, An internal circulation processing mechanism (4) is provided inside the disinfection box (1). The internal circulation processing mechanism (4) includes a built-in flow rack (403). A triangular push frame (404) is fixedly connected to the bottom inner wall of the built-in flow rack (403) below the plurality of positioning ring frames (509). Spray holes (405) are formed on the inclined surface of the triangular push frame (404). The built-in flow rack (403) is fixedly connected to the inner walls on both sides of the disinfection box (1). There is a water passage between the disinfection box (1) and the built-in flow rack (403). A circulation pump (412) is fixedly connected to one side of the built-in flow rack (403). A circulation water pipe (402) is fixedly connected to the built-in flow rack (403) below the circulation pump (412). Circulation water holes (411) are formed on the outer wall of the circulation water pipe (402) facing downward. The conveying end of the circulation pump (412) is fixedly connected with an inlet pipe (413), and one end of the inlet pipe (413) is inserted into the inside of the triangular push frame (404).

6. The obstetrics and gynecology disinfection device according to claim 5, wherein, An inclined filter plate (406) is fixedly connected to the other side of the built-in flow rack (403). On one side of the disinfection box (1) above the inclined filter plate (406), an external frame (408) is fixedly connected. A first hydraulic cylinder (407) is fixedly connected to the side of the external frame (408) facing the inclined filter plate (406). The output end of the first hydraulic cylinder (407) is fixedly connected with a scraper (415). The scraper (415) is attached to the upper surface of the inclined filter plate (406). A drum-shaped air pipe (410) is fixedly connected to the top of the scraper (415). Spray air holes (414) are formed on the outer wall of the drum-shaped air pipe (410) facing the inclined filter plate (406). An air compressor (401) is fixedly connected to the side of the external frame (408) away from the disinfection box (1). The air delivery end of the air compressor (401) is fixedly connected with a telescopic air pipe (409), and one end of the telescopic air pipe (409) is inserted into the inside of the drum-shaped air pipe (410).

7. An obstetrics and gynecology disinfection device according to claim 6, characterized in that, One side of the disinfection box (1) below the inclined filter plate (406) is provided with a waste discharge hole, and one side of the disinfection box (1) near the waste discharge hole is fixedly connected with a third hydraulic cylinder (8). The output end of the third hydraulic cylinder (8) is fixedly connected with a plugging door (3), and the plugging door (3) is attached to the outer wall of the disinfection box (1) at the waste discharge hole. One side of the disinfection box (1) below the waste discharge hole is fixedly connected with a collection box (2).

8. An obstetrics and gynecology disinfection device according to claim 7, characterized in that, A high-temperature disinfection mechanism (6) is arranged between the two fixed long rods (507) of the disinfection box (1), and the high-temperature disinfection mechanism (6) includes a heating box (601). The heating box (601) is fixedly connected to the inner walls on both sides of the disinfection box (1) between the two fixed long rods (507). A plurality of air guide plate sheets (605) are fixedly connected inside the heating box (601). Electric heating tubes (606) are fixedly connected at equal distances on both sides of the heating box (601) at each air guide plate sheet (605). Two air pumps (603) are fixedly connected to the top of the heating box (601). The air delivery ends of the two air pumps (603) are connected to the inside of the heating box (601) near the top through pipelines. Cylindrical ring frames (604) are fixedly connected to the top of the heating box (601) near the air inlet ends of the two air pumps (603). Air filter cartridges (602) are fixedly connected inside the two cylindrical ring frames (604). The air inlet end of the air pump (603) is connected to the exhaust end of the air filter cartridge (602) through a pipeline.

9. The obstetrics and gynecology disinfection device according to claim 8, characterized in that, A communication hole is opened at the bottom of the heating box (601), and a semi-circular hollow column (614) is fixedly connected inside the communication hole. Conventional heating air holes (607) are opened on the arc surface of the semi-circular hollow column (614). A docking hole is opened on the arc surface of the semi-circular hollow column (614) at the middle position. A communication frame (609) is fixedly connected inside the docking hole. The communication frame (609) is communicated with the semi-circular hollow column (614). Adjusting rails (611) are fixedly connected to both sides of the communication frame (609). Limited sliders (616) are slidably connected inside the two adjusting rails (611). Adjusting air pipes (613) are fixedly connected to the outer side walls of the two limited sliders (616). Adjusting air holes (608) are opened on the outer side wall of the adjusting air pipe (613). Motor plates (612) are fixedly connected to the inner arc surfaces of the two adjusting rails (611). A forward and reverse motor two (615) is fixedly connected to one side of the motor plate (612). The output shaft of the forward and reverse motor two (615) is fixedly connected with a linkage rod (617) through a coupling. One end of the linkage rod (617) is fixedly connected to the outer side wall of the limited slider (616). Connecting holes are opened on both sides of the communication frame (609). Telescopic connecting pipes (610) are fixedly connected inside the two connecting holes. One end of the telescopic connecting pipe (610) is inserted into the adjacent adjusting air pipe (613). Flip covers (7) are connected to both sides of the heating box (601) through hinges. Fitting holes are opened on the two flip covers (7). The traction rope (501) is located at the fitting holes.

10. A disinfection method for obstetrics and gynecology, using a disinfection device for obstetrics and gynecology as described in claim 9, characterized in that, Including the following steps; Step 1: When clamping the instrument, adjust the positions of the respective through rods (519) in advance according to the specifications of the instrument. Then, place the instrument between the respective positioning arc plates (517). The positioning spring rods (516) drive the positioning arc plates (517) to squeeze the instrument. Subsequently, the extrusion airbag bags (518) on the respective positioning arc plates (517) perform secondary extrusion on the instrument to complete the elastic limitation of the instrument, and then move it into the cleaning liquid to start cleaning; Step 2: During the cleaning process, periodically start the circulation pump (412). The circulation pump (412) introduces the cleaning liquid located below the disinfection box (1) into the triangular pushing frame (404) through the circulation water holes (411) on the circulation water pipe (402) and sprays it out through the spray holes (405), so as to spray at an inclined angle, causing the cleaning liquid above the triangular pushing frame (404) to gradually flow towards the inclined filter plate (406), accelerating the flow of the cleaning liquid and realizing the internal circulation; Step 3: After the cleaning is completed, start the forward and reverse motor one (502) to drive the traction rope (501) to move, thereby pulling the instrument to a position close to the fixed long rod (507). Start the air pump (603) and energize the electric heating tube (606), then the high-temperature gas is sprayed out through the conventional heating air holes (607) to perform preliminary high-temperature disinfection on the instrument. At the same time, start the forward and reverse motor two (615) to drive the adjustment air pipe (613) to rotate reciprocally. By continuously changing the position of the adjustment air holes (608), the high-temperature gas sprays on different positions of the instrument, so that the contact between the high-temperature gas and the instrument is more comprehensive, and start high-temperature disinfection. After high-temperature disinfection and temporary cooling, collect it to end the operation.