Monitoring mirror with lamplight for squatting delivery
By designing a squat delivery surveillance mirror with light, using a threaded meshing transmission structure and a sliding link movement mechanism, the flexible adjustment of the mirror disc is achieved, and the concentration of LED lamp beads is solved, and the problem of traditional surveillance mirrors consumes physical strength and dim image by handheld, improving observation efficiency.
Patent Information
- Application Number
- CN202422403851.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The manual handheld method of traditional delivery surveillance mirror consumes the physical strength of medical staff, and the image of the delivery delivery part reflected by the surveillance mirror is dim and unclear, affecting the observation line of sight.
A squat delivery monitoring mirror with light is designed, using a threaded meshing transmission structure and a sliding link movement mechanism to realize longitudinal flip adjustment and horizontal steering adjustment of the mirror disc, and the brightness of the LED lamp beads of eight sets of concentrated flip blocks is illuminated without any brightness.
It effectively reduces physical strength loss of medical staff, ensures brightness and clearness of delivery parts, and improves the observation and operation efficiency of medical staff.
Smart Images

Figure CN222911454U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of medical devices, and more specifically, particularly relates to a surveillance mirror for squatting childbirth with a light. Background Art
[0002] At present, during the childbirth process, it is usually necessary to use a surveillance mirror to irradiate the part of the mother's body with a mirror surface, which is convenient for the medical staff delivering the baby to observe the childbirth situation of the female's part of giving birth, and ensure the smooth delivery of the pregnant woman. However, during the delivery of the pregnant woman, the medical staff needs to hold the surveillance mirror by hand and bend down to irradiate the part of the pregnant woman's body. Since the childbirth process takes a long time, the medical staff holding the surveillance mirror by hand for a long time is extremely easy to cause physical exhaustion of the nurse. Manually holding the surveillance mirror is also easy to cause slight sliding and shaking of the surveillance mirror, which affects the observation line of sight of the mirror surface. In addition, since the part of the body during squatting childbirth is not within the range of indoor light irradiation, the traditional surveillance mirror is only a square or circular mirror surface structure and does not have an illumination function. The image of the part of the body during childbirth reflected by the surveillance mirror is dim and unclear, which is not convenient for the medical staff to perform auxiliary observation operations during childbirth. Content of the Utility Model
[0003] In order to solve the above technical problems, the utility model provides a surveillance mirror for squatting childbirth with a light, so as to solve the problems that the manual holding method of the traditional childbirth surveillance mirror consumes the physical strength of the medical staff and the image of the part of the body during squatting childbirth reflected by the surveillance mirror is dim and unclear.
[0004] The problem that the image of the part of the body during squatting childbirth is dim and unclear.
[0005] The utility model provides a monitoring mirror for squatting delivery with light, comprising a base shell; a foot base is welded to the lower side of the base shell, a vertical tube is connected to the center position of the upper side of the base shell by bolts, the outer side of the vertical tube is provided with two groups of left-right symmetrical long through grooves, the outer side of the vertical tube is installed with a control panel, and a controller and a motor are installed inside the base shell; it also includes a lifting block, a focusing flip block, a lifting rod and a toggle knob; a threaded column is installed on the motor shaft of the motor, and the outer side of the threaded column is rotatably connected to the base shell near the bottom end; a locking knob is screwed on the top of the lifting rod, a cylindrical boss is provided on the lower side of the locking knob, a thread is provided on the outer side of the boss, and a rotating sleeve is rotatably connected to the outer side of the lifting rod; a threaded through hole is provided on the upper side of the lifting block The outer side surface of the lifting block is rotatably connected with a lifting sleeve, the outer side surface of the lifting sleeve is hinged with a connecting rod, and the top of the connecting rod is hinged with a flip rod; a mirror plate is welded at the front end of the flip rod, and a locking shell is hinged at the rear end of the flip rod, and the locking shell is rotatably connected to the top of the lifting rod; the outer side surface of the mirror plate is provided with eight groups of opening grooves that pass through the front and back, and a circular hole groove is provided on the inner side wall of each group of grooves, a mirror surface is glued to the front side surface of the mirror plate, the mirror plate is rotatably connected to the focusing flip block, and the rear side surface of the focusing flip block is hinged with a push-pull rod, and the push-pull rod is hinged on the outer side surface of the slider; a threaded rod is welded and connected to the center position of the front side surface of the toggle knob, and the front end of the threaded rod is rotatably connected to the mirror plate; the controller and the motor are connected by wires, and the controller and the control panel are connected by wires.
[0006] In at least some embodiments, a threaded deep hole is provided at the center position of the bottom end of the lifting rod, and the threaded column is meshed and connected in the threaded deep hole of the lifting rod. Two groups of left-right symmetrical protrusion structures are provided on the outer side of the lifting rod near the bottom edge. The protrusions of the lifting rod are embedded in the long through grooves of the vertical tube. A threaded hole is provided at the center position of the top end of the lifting rod, and the outer side surface of the protrusion of the locking knob is threadedly screwed into the threaded hole of the lifting rod.
[0007] In at least some embodiments, the rotating sleeve is a cylindrical structure that passes through from top to bottom, a rubber cushion sleeve is provided on the outer side of the rotating sleeve near the bottom end, a threaded structure is provided on the outer side of the rotating sleeve, and the threaded surface of the rotating sleeve is engaged with the threaded through hole of the lifting block.
[0008] In at least some embodiments, the locking shell is a cylindrical cover structure with an opening on the lower side, a through hole is provided at the center of the top of the cover structure of the locking shell, and the protrusion of the locking knob is inserted into the through hole of the locking shell.
[0009] In at least some embodiments, the number of the focusing flip blocks is eight groups, and each group of focusing flip blocks is provided with cylindrical protrusions at both ends of the left and right ends. The protrusions of the focusing flip blocks are rotatably connected to the circular holes on the inner wall of the mirror plate groove, and LED lamp beads are provided on the front side of the focusing flip blocks. The LED lamp beads of the focusing flip blocks are connected to the controller through wires.
[0010] In at least some embodiments, a threaded through-hole is provided at the center position of the slider, and the outer side surface of the threaded rod is threadedly engaged and connected in the threaded through-hole of the slider. Rectangular through-grooves that penetrate from front to back are provided on both the left and right sides of the threaded through-hole of the slider, and the flipping rod is inserted into the rectangular through-groove of the slider.
[0011] Compared with the prior art, the utility model has the following beneficial effects:
[0012] 1. In the utility model, through the threaded engagement transmission structure formed by the threaded rod in the threaded through-hole of the slider, in cooperation with the push-pull rod, the light-concentrating flipping block and the slider being hinged to form a sliding link motion mechanism, the light-concentrating flipping blocks rotatably connected inside the eight groups of grooves distributed in an annular array on the outer side surface of the mirror disc are synchronously flipped, so that the LED beads of the eight groups of light-concentrating flipping blocks perform light-concentrating and shadowless illumination work with adjustable brightness on the delivery part of the pregnant woman, making the reflection imaging of the mirror on the delivery part of the pregnant woman clearer and facilitating the observation operation of the medical staff for squatting delivery.
[0013] 2. In the utility model, by using the sliding link motion mechanism formed by the rotating sleeve, the flipping rod, the lifting sleeve and the lifting block, and the threaded engagement transmission structure formed by the threaded column in the threaded deep hole of the lifting rod, not only the longitudinal flipping adjustment and horizontal turning adjustment of the mirror disc are realized, but also the height adjustment of the mirror disc can be carried out according to the semi-squatting delivery and full-squatting delivery postures of the pregnant woman, realizing the flexible adjustment of the irradiation direction of the delivery monitoring mirror, avoiding the way that the medical staff hold the mirror disc for adjustment and monitoring, and effectively reducing the physical fatigue of the medical staff. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic structural view of the utility model.
[0015] Figure 2 is a schematic side structural view of the utility model.
[0016] Figure 3 is a schematic front structural view of the utility model.
[0017] Figure 4 is a schematic right structural view of the utility model.
[0018] Figure 5 is a schematic rear structural view of the utility model.
[0019] Figure 6 is a schematic left sectional structural view of the utility model.
[0020] Figure 7 is a schematic bottom side structural view of the utility model.
[0021] Figure numerals: 1. base shell; 2. foot base; 3. control panel; 4. vertical tube; 5. rotating sleeve; 6. lifting sleeve; 7. lifting block; 8. mirror plate; 9. controller; 10. focusing flip block; 11. mirror surface; 12. locking shell; 13. connecting rod; 14. flip rod; 15. slider; 16. push-pull rod; 17. locking knob; 18. threaded rod; 19. lifting rod; 20. toggle knob; 21. threaded column; 22. motor. DETAILED DESCRIPTION
[0022] The following is a further detailed description of the implementation of the present invention in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present invention, but cannot be used to limit the scope of the present invention.
[0023] like Figures 1-7 As shown, the utility model provides a monitoring mirror for squatting delivery with light, including a base shell 1; a foot seat 2 is welded and connected to the lower side of the base shell 1, a vertical tube 4 is connected to the center position of the upper side of the base shell 1 by bolts, the outer side of the vertical tube 4 is provided with two groups of left-right symmetrical long through grooves, the outer side of the vertical tube 4 is installed with a control panel 3, and the base shell 1 is installed with a controller 9 and a motor 22; it also includes a lifting block 7, a focusing flip block 10, a lifting rod 19 and a toggle knob 20; a threaded column 21 is installed on the motor shaft of the motor 22, and the outer side of the threaded column 21 is rotatably connected to the base shell 1 near the bottom end; a locking knob 17 is screwed on the top of the lifting rod 19, a cylindrical boss is provided on the lower side of the locking knob 17, and a thread is provided on the outer side of the boss, and a rotating sleeve 5 is rotatably connected to the outer side of the lifting rod 19; a threaded through hole is provided on the upper side of the lifting block 7, and the lifting block The outer side surface of 7 is rotatably connected with the lifting sleeve 6, and the outer side surface of the lifting sleeve 6 is hinged with a connecting rod 13, and the top of the connecting rod 13 is hinged with a flip rod 14; the front end of the flip rod 14 is welded with a mirror plate 8, and the rear end of the flip rod 14 is hinged with a locking shell 12, and the locking shell 12 is rotatably connected to the top of the lifting rod 19; the outer side surface of the mirror plate 8 is provided with eight groups of open grooves that pass through the front and back, and the inner side wall of each group of grooves is provided with a circular hole groove, the front side surface of the mirror plate 8 is bonded with a mirror surface 11, the mirror plate 8 is rotatably connected with the focusing flip block 10, and the rear side surface of the focusing flip block 10 is hinged with a push-pull rod 16, and the push-pull rod 16 is hinged with the outer side surface of the slider 15; the center position of the front side surface of the toggle knob 20 is welded with a threaded rod 18, and the front end of the threaded rod 18 is rotatably connected with the mirror plate 8; the controller 9 and the motor 22 are connected by wires, and the controller 9 and the control panel 3 are connected by wires.
[0024] In the embodiments of the present disclosure, a threaded deep hole is provided at the central position of the bottom end of the lifting rod 19. The threaded column 21 is meshed and connected in the threaded deep hole of the lifting rod 19. Two groups of left - and - right symmetric convex block structures are provided at the position near the bottom edge of the outer side surface of the lifting rod 19. The convex blocks of the lifting rod 19 are embedded in the long strip through - slots of the vertical cylinder 4. During the rotation of the threaded column 21, the lifting rod 19 is driven to vertically move up and down along the long strip through - slots of the vertical cylinder 4, and the height position of the mirror disc 8 is adjusted according to the full - squat and half - squat postures of the pregnant woman during childbirth. A threaded hole is provided at the central part of the top end of the lifting rod 19, and the outer side surface of the convex column of the locking knob 17 is screwed into the threaded hole of the lifting rod 19.
[0025] In the embodiments of the present disclosure, the rotating sleeve 5 is a vertically - through cylindrical structure. A rubber gasket sleeve is provided at the position near the bottom end of the outer side surface of the rotating sleeve 5. A threaded structure is provided on the outer side surface of the rotating sleeve 5, and the outer side surface of the rotating sleeve 5 is thread - meshed and connected in the threaded through - hole of the lifting block 7. During the rotation of the lifting block 7, the lifting block 7 rotates and moves up and down along the threaded outer side surface of the rotating sleeve 5, and the lifting block 7 then pushes and pulls the connecting rod 13 hinged to the outer side surface to drive the flipping rod 14 to adjust the longitudinal angle of the mirror disc 8.
[0026] In the embodiments of the present disclosure, the locking shell 12 is a cylindrical cover structure with an open bottom side. A vertically - through through - hole is provided at the central position of the top end of the cover structure of the locking shell 12. The convex column of the locking knob 17 is inserted through the through - hole of the locking shell 12. When the outer side surface of the convex column of the locking knob 17 is tightened in the threaded hole of the lifting rod 19, the lower side surface of the locking knob 17 cooperates with the upper side surface of the lifting rod 19 to clamp and lock the horizontal rotation angle of the locking shell 12, avoiding accidental collision of the mirror disc 8 during the childbirth operation of medical staff, which may cause the horizontal rotation deviation of the mirror surface 11 adhered to the mirror disc 8 from the childbirth position of the pregnant woman.
[0027] In the embodiments of the present disclosure, the number of the light - collecting flipping blocks 10 is eight groups. Cylindrical convex columns are provided at both the left and right ends of each group of light - collecting flipping blocks 10. The convex columns of the light - collecting flipping blocks 10 are rotatably connected in the circular holes on the inner wall of the groove of the mirror disc 8. LED lamp beads are provided on the front side surface of the light - collecting flipping blocks 10. The LED lamp beads of the light - collecting flipping blocks 10 are connected to the controller 9 through wires. The controller 9 is powered on to control the LED lamp beads of the light - collecting flipping blocks 10 to generate bright light. The eight groups of light - collecting flipping blocks 10 perform circumferential shadow - less illumination on the childbirth part of the pregnant woman in the grooves distributed in an annular array on the outer side surface of the mirror disc 8, making the childbirth and production part of the pregnant woman bright and clear, and avoiding the shadow observation dead angle caused by single - direction light.
[0028] In the disclosed embodiment, a threaded through hole is provided at the center of the slider 15, and the outer side surface of the threaded rod 18 is threadedly engaged in the threaded through hole of the slider 15. The left and right sides of the threaded through hole of the slider 15 are provided with rectangular through grooves that pass through from front to back. The flip rod 14 is inserted into the rectangular through groove of the slider 15. When the knob 20 is turned to drive the threaded rod 18 to rotate, the threaded rod 18 drives the slider 15 to move in a direction along the flip rod 14. The slider 15 pushes the focusing flip block 10 that is rotatably connected in the eight groups of groove through holes of the mirror plate 8 through the push-pull rod 16 to perform synchronous flipping, thereby changing the centripetal and outward directions of the light irradiation of the focusing flip block 10, and the light direction of the LED lamp poles on the front side of the eight groups of focusing flip blocks 10 is aggregated or dispersed, thereby adjusting the light brightness.
[0029] The specific usage and function of this embodiment are as follows:
[0030] When the utility model is used for monitoring and observing the delivery monitoring mirror, the pregnant woman squats on the delivery bed, and the base shell 1 is placed on the ground below the squatting position of the pregnant woman. Then the medical staff transmits instructions to the controller 9 through the control panel 3, and the controller 9 controls the motor 22 to drive the threaded column 21 to rotate. Since the outer side of the threaded column 21 is threadedly engaged with the threaded deep hole of the lifting rod 19, the threaded column 21 drives the lifting rod 19 to move vertically up and down along the long through groove of the vertical tube 4 until the mirror plate 8 is close to the delivery position of the pregnant woman, and then the locking knob 17 is turned. , because the convex column on the lower side of the locking knob 17 is threadedly engaged with the threaded hole at the top of the lifting rod 19, the locking knob 17 is inserted into the through hole of the locking shell 12, and the locking knob 17 moves upward along the threaded hole at the top of the lifting rod 19, the locking knob 17 and the lifting rod 19 release the locking shell 12, and then rotate the locking shell 12, and the locking shell 12 drives the mirror plate 8 to rotate horizontally through the flip rod 14, and then hold the rubber pad on the outer side of the rotating sleeve 5 with one hand, and twist the lifting block 7 with the other hand. Because the outer side of the rotating sleeve 5 is threadedly engaged with the threaded through hole of the lifting block 7, The lifting block 7 drives the lifting sleeve 6 to move vertically upward or downward along the thread on the outer side of the rotating sleeve 5, and the lifting sleeve 6 drives the hinged connecting rod 13 to flip, and the connecting rod 13 drives the flip rod 14 to flip longitudinally, and the flip rod 14 drives the mirror plate 8 to flip longitudinally synchronously until the mirror surface 11 bonded to the front side of the mirror plate 8 is aligned with the delivery part of the pregnant woman, and then the control panel 3 sends a lighting instruction to the controller 9, and the controller 9 controls the LED lamp beads of the focusing flip block 10 to be powered on, and the eight groups of LED lamp beads of the focusing flip block 10 perform surround-type shadowless focusing illumination on the delivery part of the pregnant woman. To adjust the light brightness, manually turn the toggle knob 20, which drives the threaded rod 18 to rotate, and the threaded rod 18 drives the slider 15 engaged on the outer side to push the eight push-pull rods 16 to flip along the flip rod 14. The eight push-pull rods 16 push and pull the eight focus flip blocks 10 to rotate inward or outward in the opening groove of the mirror plate 8, respectively, to change the irradiation direction of the LED lamp beads on the eight focus flip blocks 10. The brightness is increased by synchronously flipping the eight focus flip blocks 10 inward to focus the light, and the brightness is reduced by flipping the eight focus flip blocks 10 outward.
[0031] The installation, connection or setting methods of all the above components are common mechanical methods, such as welding, threaded connection, screw connection, etc., and the specific structures, models and coefficient indicators of all its components are its own technology, as long as it can achieve its beneficial effects, it can be implemented. The control panel 3, controller 9, and motor 22 used above are all common components on the market. When they are bought back for use, they can be used by simply connecting them according to the instruction manual purchased together, so they will not be repeated here.
[0032] The technical solution of the present utility model is not limited within the scope of the embodiments of the present utility model, and the technical content not described in detail in the present utility model is well-known technology.
Claims
1. A monitoring mirror for squatting delivery with light, comprising a base shell; a foot base is welded to the lower side of the base shell, a vertical tube is bolted to the center of the upper side of the base shell, two groups of left-right symmetrical long through grooves are arranged on the outer side of the vertical tube, a control panel is installed on the outer side of the vertical tube, and a controller and a motor are installed inside the base shell; the characteristics are: It also includes a lifting block, a focusing flip block, a lifting rod and a toggle knob; a threaded column is installed on the motor shaft of the motor, and the outer side of the threaded column is rotatably connected to the base shell near the bottom end; a locking knob is screwed on the top of the lifting rod, and a cylindrical boss is provided on the lower side of the locking knob, and a thread is provided on the outer side of the boss, and a rotating sleeve is rotatably connected to the outer side of the lifting rod; a threaded through hole is provided on the upper side of the lifting block, and the outer side of the lifting block is rotatably connected to the lifting sleeve, and the outer side of the lifting sleeve is hinged with a connecting rod, and the top of the connecting rod is hinged with a flip rod; a mirror plate is welded to the front end of the flip rod, The rear end of the flip rod is hinged with a locking shell, and the locking shell is rotatably connected to the top end of the lifting rod; the outer side surface of the mirror plate is provided with eight groups of open grooves that pass through from front to back, and the inner side wall of each group of grooves is provided with a circular hole groove, the front side surface of the mirror plate is bonded with a mirror surface, the mirror plate is rotatably connected to the focusing flip block, the rear side surface of the focusing flip block is hinged with a push-pull rod, and the push-pull rod is hinged to the outer side surface of the slider; a threaded rod is welded and connected to the center position of the front side surface of the toggle knob, and the front end of the threaded rod is rotatably connected to the mirror plate; the controller and the motor are connected by wires, and the controller and the control panel are connected by wires.
2. A squatting delivery monitoring mirror with light as claimed in claim 1, characterized in that: A threaded deep hole is provided at the center position of the bottom end of the lifting rod, and the threaded column is meshed and connected in the threaded deep hole of the lifting rod. Two groups of left-right symmetrical protrusion structures are provided on the outer side of the lifting rod near the bottom edge. The protrusions of the lifting rod are embedded in the long through grooves of the vertical tube. A threaded hole is provided at the center position of the top end of the lifting rod, and the outer side surface of the protrusion of the locking knob is threadedly screwed into the threaded hole of the lifting rod.
3. A squatting delivery monitoring mirror with light as claimed in claim 1, characterized in that: The rotating sleeve is a cylindrical structure that passes through from top to bottom. A rubber cushion sleeve is provided on the outer side of the rotating sleeve near the bottom end. A threaded structure is provided on the outer side of the rotating sleeve. The threaded structure on the outer side of the rotating sleeve is engaged with the threaded through hole of the lifting block.
4. A squatting delivery monitoring mirror with light as claimed in claim 1, characterized in that: The locking shell is a cylindrical cover structure with the lower side close to the opening. A through hole is provided at the center of the top of the cover structure of the locking shell, and the convex column of the locking knob is inserted into the through hole of the locking shell.
5. A monitoring mirror for delivery in squatting position with light as claimed in claim 1, characterized in that: There are eight groups of light-focusing flip blocks, and each group of light-focusing flip blocks is provided with cylindrical bosses at both ends. The bosses of the light-focusing flip blocks are rotatably connected to the circular holes on the inner wall of the mirror plate groove. LED lamp beads are provided on the front side of the light-focusing flip blocks, and the LED lamp beads of the light-focusing flip blocks are connected to the controller through wires.
6. A squatting delivery monitoring mirror with light as claimed in claim 1, characterized in that: A threaded through hole is provided at the center of the slider, and the outer side of the threaded rod is threadedly engaged in the threaded through hole of the slider. The left and right sides of the threaded through hole of the slider are both provided with rectangular through grooves that pass through the front and back, and the flip rod is inserted in the rectangular through groove of the slider.