Delivery midwifery device and method based on medical health big data sharing platform
By integrating components such as ultrasound probes and ring airbags on the delivery chair, combined with the medical and health big data platform, the problems of fetal position monitoring and pain relief are solved, and the safety and efficiency of the delivery process are improved.
Patent Information
- Application Number
- CN202510519948.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-07-25
AI Technical Summary
The existing delivery chairs lack real-time fetal position monitoring system and maternal limb fixation devices, making it difficult for medical staff to accurately grasp the fetal delivery angle, which increases the difficulty of operation, and unconscious actions caused by pain may interfere with medical operations and increase the risk of birth canal damage.
A delivery midwifery device based on the medical and health big data sharing platform was designed, including a frame, a detection structure and a midwifery structure. It uses ultrasonic probes, electric push rods, annular airbags and other components to realize fetal position monitoring and pain relief, transmit data to the big data platform through a microcontroller for analysis, and provide delivery suggestions.
Accurate monitoring of fetal position is achieved, relieve maternal pain, improve the safety and efficiency of the delivery process, and reduce the risk of birth canal damage.
Smart Images

Figure CN120360817A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical devices, and particularly to a childbirth assisting device and method based on a medical and health big data sharing platform. Background Art
[0002] Childbirth specifically refers to the period and process in which a fetus becomes an independent individual separated from the mother. The whole process is divided into three stages: the cervical dilation stage, the fetal expulsion stage, and the placental expulsion stage. Most parturients in our country adopt the supine position for childbirth and need to use a special childbirth chair for assistance. The existing technologies have the following defects:
[0003] 1. The childbirth chair lacks a real-time fetal position monitoring system, making it difficult for medical staff to accurately grasp the fetal expulsion angle and increasing the operation difficulty.
[0004] 2. It is not equipped with a maternal limb fixation device, and the unconscious movements caused by pain may interfere with medical operations and increase the risk of birth canal injury.
[0005] In view of the above problems, the present invention document proposes a childbirth assisting device and method based on a medical and health big data sharing platform. Summary of the Invention
[0006] The purpose of the present invention is to solve the disadvantages of the existing ones that cannot accurately understand the position of the baby during the delivery process and cannot control the pregnant woman's hands, and to propose a childbirth assisting device and method based on a medical and health big data sharing platform.
[0007] In order to achieve the above purpose, the present invention adopts the following technical solutions:
[0008] A childbirth assisting device based on a medical and health big data sharing platform, comprising:
[0009] A frame body, in which a chair board is fixed, and the chair board is used for the pregnant woman to lie semi-reclined;
[0010] A detection structure, including a first connection seat and a second connection seat fixed on both sides of the top of the frame body, a rotating beam pivotally connected to the top end of the first connection seat, and a sliding seat and a fixed cylinder arranged in the rotating beam; a second electric push rod, a second spring connected to the output shaft of the second electric push rod, and a sliding rod slidably connected to the fixed cylinder are arranged in the fixed cylinder. The bottom end of the sliding rod is installed with an ultrasonic probe through a universal ball, a pressure sensor is arranged at the top end of the sliding rod, and the bottom end of the second spring is connected to the pressure sensor to control the fitting pressure of the ultrasonic probe on the pregnant woman's abdomen;
[0011] The midwifery structure includes two annular airbags fixed on both sides of the rotating beam, a storage tank communicated with the annular airbags, a piston plate slidably sealed in the storage tank, and a hose communicating the storage tank with the storage tank above the ultrasonic probe; when the piston plate is squeezed by the annular airbag, it pushes the coupling agent in the storage tank into the storage tank through the hose and applies it to the skin of the pregnant woman through the discharge port.
[0012] Among them, the ultrasonic probe is electrically connected to the single-chip microcomputer in the frame body. The single-chip microcomputer transmits the detected image to the medical and health big data sharing platform and displays the analysis result and the delivery plan through the touch display screen.
[0013] As a further improvement of the above technical solution:
[0014] It also includes an adjusting structure, which is arranged below the frame body and includes a bottom plate, two support columns rotatably connected to the bottom of the frame body, a first electric push rod fixed on the top of the bottom plate, and a support seat fixedly connected to the output shaft of the first electric push rod. Two sliding seats are pivotally connected in the support seat, and the top of the sliding seat is pivotally connected to the bottom of the frame body. The support seat is driven by the first electric push rod to lift and lower to adjust the inclination angle of the chair plate.
[0015] A moving groove is arranged in the second connecting seat, a sliding plate is slidably connected in the moving groove, the sliding plate is connected to the moving groove through a first spring, and a trapezoidal block matched with the clamping groove at the bottom of the rotating beam is arranged at the top of the sliding plate. A clamping plate clamped with the trapezoidal block is fixed in the clamping groove.
[0016] A rectangular groove is arranged in the rotating beam, and a sliding seat is slidably connected in the rectangular groove; a rotating rod is also arranged in the rectangular groove, a first gear and a second gear are fixed on the rotating rod, the first gear meshes with a first rack slidably connected to one side of the rectangular groove, and the second gear meshes with a second rack fixed on the sliding seat; the top of the first rack is connected to a trapezoidal rod, and the trapezoidal rod extends into the storage tank and cooperates with the inclined surface of the piston plate to drive the ultrasonic probe to move horizontally by the movement of the piston plate.
[0017] A torsion spring is sleeved on the outer wall of the rotating rod, and one end of the torsion spring is fixed to the inner wall of the rectangular groove for driving the rotating rod to rotate reversely when the piston plate is reset.
[0018] L-shaped rods are pivotally connected to both sides of the top of the frame body. The L-shaped rods are connected to an arc-shaped support plate through sliding blocks, and the sliding blocks can move along the chute on the side wall of the L-shaped rods to adjust the height and angle of the arc-shaped support plate.
[0019] A sealing plate fixed to the piston plate is arranged in the storage tank, and a through hole communicated with the hose is arranged on the sealing plate. When the piston plate is pressed and moves, the through hole is aligned with the hose to release the coupling agent.
[0020] The touch screen is pivotally connected to one side of the frame and is electrically connected to the single chip microcomputer, the first electric push rod, the second electric push rod and the ultrasonic probe, and is used for controlling the movement of the adjustment structure and displaying the fetal position image.
[0021] The annular airbag is connected to the material storage tank through a connecting pipe. A third spring connected to the piston plate is arranged in the material storage tank and is used to reset the piston plate when the pregnant woman releases her grip.
[0022] In this application, the method for using the delivery and midwifery device based on the medical health big data sharing platform includes the following steps:
[0023] S1. The pregnant woman lies flat on the frame, rotates the L-shaped rod to bring the arc-shaped support plates on both sides closer together, and can be flexibly rotated to adapt to the placement of the legs to provide support for delivery;
[0024] S2. The height of the support seat is adjusted by the first electric push rod, and the sliding seat slides synchronously to adjust the inclination angle of the chair plate to a comfortable position; the rotating beam is clamped into the second connecting seat, and the trapezoidal clamping block is locked under the elastic force of the first spring to complete the structural fixation;
[0025] S3, the second electric push rod drives the sliding rod to descend, so that the ultrasound probe fits the abdomen, and the medical health big data platform analyzes the image and recommends the best delivery plan, which is visualized on the touch screen;
[0026] S4. Pregnant women hold the annular airbag to assist delivery. When taking a deep breath and exerting force during delivery, the airbag can be squeezed at the same time. The gas pushes the piston plate through the connecting pipe to compress the third spring. When the force is accumulated, the third spring resets to expand the airbag, forming a pressure release channel to relieve anxiety and pain.
[0027] S5, the piston plate reciprocates to push the closing plate, and when the through hole is aligned with the hose, the coupling agent is injected into the storage tank and applied to the skin through the discharge port;
[0028] S6. The piston plate drives the trapezoidal rod and the first rack to move, and drives the ultrasonic probe to move laterally through gear transmission, so as to realize multi-angle image acquisition and synchronously complete the coupling agent application and comprehensive image acquisition.
[0029] Beneficial effects: In the present invention, a second electric push rod is fixedly installed on the inner wall of the top of the fixed cylinder. The bottom end of the output shaft of the second electric push rod is fixedly connected to a second spring. A sliding rod is slidably connected in the fixed cylinder. The top end of the sliding rod is fixedly embedded with a pressure sensor. The bottom end of the second spring is fixedly connected to the top end of the pressure sensor. The bottom end of the sliding rod is fixedly provided with a mounting plate through a universal ball. The ultrasonic probe is fixedly embedded at the bottom end of the mounting plate. When the sliding seat drives the fixed cylinder to move, the pressure exerted on the sliding rod by the second spring and with the cooperation of the universal ball can make the ultrasonic probe always fit the skin of the pregnant woman for detection, enabling medical staff to clearly understand the position of the baby and facilitating the medical staff to safely complete the delivery task;
[0030] In the present invention, the two annular air bags are respectively fixedly sleeved on the outer walls of the two fixed rods. Two material storage grooves are provided in the rotating beam. The two piston plates are respectively sealed and slidably arranged in the two material storage grooves. The annular air bag is communicated with the material storage groove through a communicating pipe. During childbirth, when the pregnant woman holds both hands tightly, the gas in the annular air bag can be injected into the material storage groove through the communicating pipe, and the piston plate is pushed to squeeze the third spring. When the pregnant woman finishes exerting force and needs to accumulate strength for the next delivery, both hands are relaxed, and the piston plate resets under the action of the third spring, and the annular air bag expands again. Thus, the extrusion of the annular air bag can relieve the anxiety of the pregnant woman during childbirth and provide an outlet for the pain during childbirth;
[0031] In the present invention, third springs and closing plates are respectively fixedly installed on the sides of the two piston plates away from the communicating pipe. The closing plates are slidably arranged on the inner wall of the bottom of the material storage groove. A through hole matching with the hose is provided in the closing plate. When the pregnant woman reciprocally squeezes the annular air bag and drives the piston plate to reciprocally move, the piston plate drives the closing plate to move. When the through hole is aligned with one end of the hose, the coupling agent in the material storage groove is injected into the storage groove through the hose and smeared on the skin of the pregnant woman through the discharge port. Thus, it is convenient for the ultrasonic probe to more clearly capture the position of the baby in the pregnant woman's uterus;
[0032] In the present invention, a second rack meshing with the second gear is slidably connected to one side of the rectangular groove. One end of the second rack is fixedly connected to the sliding seat. A first rack meshing with the first gear is slidably connected to the inner wall of the other side of the rectangular groove. The top of the first rack is fixedly provided with a trapezoidal rod. One end of the trapezoidal rod is hermetically and slidably extended into the adjacent material storage groove. When the piston plate reciprocally moves, the piston plate cooperates with the inclined surface of the trapezoidal rod to drive the trapezoidal rod and the first rack to move towards the middle. The cooperation between the first rack and the first gear drives the rotating rod and the second gear to rotate. The cooperation between the second gear and the second rack drives the sliding seat and the ultrasonic probe to move. Thus, the ultrasonic probe obtains images at different positions, not only enabling the mounting plate to smear the coupling agent on the skin of the pregnant woman, but also enabling the ultrasonic probe to capture more comprehensive images of the baby;
[0033] In the present invention, during the delivery of a pregnant woman, her hands can be restrained, and through the setting of the midwifery structure, not only can the pain generated during delivery be relieved, but also the ultrasonic probe can be driven to reciprocate, enabling the ultrasonic probe to comprehensively detect the position of the baby in the uterus during the delivery process, facilitating the medical staff to smoothly complete the delivery of the baby. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] Figure 1 It is a three-dimensional structural schematic diagram of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0035] Figure 2 It is a three-dimensional exploded structural schematic diagram of the frame body, support seat and bottom plate of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0036] Figure 3 It is a three-dimensional exploded structural schematic diagram of the frame body and the chair plate of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0037] Figure 4 It is a three-dimensional exploded structural schematic diagram of the L-shaped rod and the arc-shaped support plate of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0038] Figure 5 It is a three-dimensional exploded structural schematic diagram of the first connecting seat, the second connecting seat and the rotating beam of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0039] Figure 6 It is a three-dimensional exploded structural schematic diagram of the fixed cylinder, the mounting plate and the sliding rod of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0040] Figure 7 It is a three-dimensional sectional structural schematic diagram of the mounting plate of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0041] Figure 8 It is a three-dimensional sectional structural schematic diagram of the second connecting seat, the rotating beam, the sliding plate and the trapezoidal block of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0042] Figure 9 It is a three-dimensional sectional structural schematic diagram of the rotating beam, the piston plate and the annular airbag of the delivery midwifery device based on the medical and health big data sharing platform provided in Embodiment 1 of the present invention;
[0043] Figure 10 The three-dimensional sectional structure schematic diagram of the rotating beam, trapezoidal rod and second rack of the childbirth assisting device based on the medical and health big data sharing platform provided in Embodiment 2 of the present invention;
[0044] Figure 11 The three-dimensional exploded structure schematic diagram of the rotating rod, trapezoidal rod and piston plate of the childbirth assisting device based on the medical and health big data sharing platform provided in Embodiment 2 of the present invention;
[0045] Figure 12 The system block diagram of the present invention.
[0046] In the figure: 1, frame body; 2, chair plate; 3, bottom plate; 4, support column; 5, first electric push rod; 6, support seat; 7, sliding seat; 8, L-shaped rod; 9, sliding block; 10, arc-shaped support plate; 11, first connecting seat; 12, second connecting seat; 13, rotating beam; 14, card slot; 15, clamping plate; 16, moving groove; 17, sliding plate; 18, first spring; 19, trapezoidal clamping block; 20, push rod; 21, rectangular groove; 22, sliding seat; 23, fixed cylinder; 24, sliding rod; 25, second electric push rod; 26, pressure sensor; 27, second spring; 28, universal ball; 29, mounting plate; 30, ultrasonic probe; 31, storage tank; 32, discharge port; 33, hose; 34, fixed rod; 35, annular airbag; 36, communicating pipe; 37, storage bin; 38, piston plate; 39, third spring; 40, closing plate; 41, through hole; 42, trapezoidal rod; 43, first rack; 44, rotating rod; 45, first gear; 46, torsion spring; 47, second gear; 48, second rack; 49, touch control display screen. Detailed implementation manners
[0047] 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.
[0048] Embodiment 1: Refer to Figure 1 and Figure 2 The childbirth assisting device relates to the technical field of medical devices. The whole childbirth assisting device includes a frame body 1, and a chair plate 2 is fixed inside the frame body 1 for the pregnant woman to lie semi-reclined. An adjusting structure is provided below the frame body 1 for adjusting the semi-reclined angle of the pregnant woman to facilitate medical staff to deliver the baby. The adjusting structure includes a bottom plate 3 arranged below the frame body 1 and two support columns 4 rotatably arranged at the bottom of the frame body 1.
[0049] Refer to Figure 3 and Figure 4, on both sides of the top of the frame body 1 of the childbirth assistance device, rotation connection structures are respectively provided for installing the L-shaped rods 8. Specifically, rotation shaft holes are designed on both sides of the top of the frame body 1, and one end of the L-shaped rod 8 is fitted with the rotation shaft hole through a bearing, realizing the rotation connection between the L-shaped rod 8 and the frame body 1. On the outer wall of one side of each L-shaped rod 8, a chute is opened and a slider is equipped. The sliding block 9 is fixedly connected to the slider, enabling the sliding block 9 to slide along the chute. At the top ends of the two sliding blocks 9, arc-shaped support plates 10 are rotatably connected through rotating shafts. The design of the arc-shaped support plates 10 conforms to ergonomics and can comfortably support the legs of the pregnant woman. The pregnant woman can place her legs on the arc-shaped support plates 10. By adjusting the rotation angle of the L-shaped rod 8 and the position of the sliding block 9 in the chute, the height and angle of the arc-shaped support plates 10 can be flexibly adjusted to meet the needs of different pregnant women.
[0050] Refer to Figure 2 , Figure 3 and Figure 6 , on one side of the frame body 1, the touch display screen 49 is rotatably connected through a rotating frame. The design of the rotating frame enables the touch display screen 49 to rotate at multiple angles, facilitating medical staff to adjust the display angle of the touch display screen 49 according to actual needs. The touch display screen 49 is electrically connected to the second electric push rod 25, the first electric push rod 5, and the ultrasonic probe 30.
[0051] Specifically, the touch display screen 49 is connected to the control circuits of the second electric push rod 25, the first electric push rod 5, and the ultrasonic probe 30 through wires. Medical staff can control the start of the second electric push rod 25 and the first electric push rod 5 through the operation interface on the touch display screen 49, realizing precise control of the relevant components of the childbirth assistance device. Meanwhile, the images captured by the ultrasonic probe 30 can be transmitted to the touch display screen 49 through wires for display. In addition, the touch display screen 49 is also electrically connected to the single-chip microcomputer. The single-chip microcomputer can display the analysis data on the medical health big data sharing platform and the images captured by the ultrasonic probe 30 through the touch display screen 49. Medical staff can conveniently view and analyze the relevant data through the touch display screen 49, providing a scientific basis for childbirth assistance.
[0052] Refer to Figure 1 and Figure 2 , the adjusting structure further includes a first electric push rod 5 fixed to the top of the bottom plate 3. The top end of the output shaft of the first electric push rod 5 is fixed with a support seat 6. Two sliding seats 7 are rotatably connected inside the support seat 6. The tops of the two sliding seats 7 are rotatably connected to the bottom of the frame body 1. By pushing the support seat 6 to rise and fall through the output shaft of the first electric push rod 5, the sliding seats 7 slide at the bottom of the frame body 1, and the inclination angle of the chair plate 2 can be adjusted, facilitating the pregnant woman to be at a suitable angle for medical staff to facilitate childbirth. The bottom ends of the two support columns 4 are both fixed to the top of the bottom plate 3.
[0053] Specifically, the pregnant woman sits on the seat board 2. As needed, the inclination angle of the seat board 2 is adjusted by the first electric push rod 5 so that the pregnant woman is in a suitable semi-reclined angle.
[0054] With this device, medical staff can conveniently adjust the semi-reclined angle of the pregnant woman to ensure that the pregnant woman is in the most comfortable and convenient position for childbirth.
[0055] Refer to Figure 3 , the device further includes a first connecting seat 11 and a second connecting seat 12. The first connecting seat 11 and the second connecting seat 12 are respectively fixed on both sides of the top of the frame body 1. The top end of the first connecting seat 11 is rotatably connected with a rotating beam 13. Below the rotating beam 13, there is an ultrasonic probe 30 for detecting the position of the baby in the pregnant woman's uterus.
[0056] Refer to Figure 3 , Figure 5 , Figure 6 and Figure 7 , in order to enable the ultrasonic probe 30 to stably detect the baby's position, a detection structure is provided between the rotating beam 13 and the second connecting seat 12. The detection structure includes a sliding seat 22 and a fixed cylinder 23 arranged in the rotating beam 13. The detection structure further includes a rectangular groove 21 arranged in the rotating beam 13. The sliding seat 22 is slidably connected in the rectangular groove 21, and the fixed cylinder 23 is fixedly penetrated through the sliding seat 22. A second electric push rod 25 is fixed on the inner wall of the top of the fixed cylinder 23. The bottom end of the output shaft of the second electric push rod 25 is fixed with a second spring 27. A sliding rod 24 is slidably connected in the fixed cylinder 23. The top end of the sliding rod 24 is fixedly embedded with a pressure sensor 26. The bottom end of the second spring 27 is fixedly connected with the top end of the pressure sensor 26, and is used to detect the pressure of the ultrasonic probe 30 on the skin when the ultrasonic probe 30 is in contact with the pregnant woman's skin. The bottom end of the sliding rod 24 slidably extends below the fixed cylinder 23. The bottom end of the sliding rod 24 is movably embedded with a universal ball 28. The bottom end of the universal ball 28 is fixed with a mounting plate 29, and the ultrasonic probe 30 is fixedly embedded at the bottom end of the mounting plate 29. When the sliding seat 22 drives the fixed cylinder 23 to move, the pressure exerted on the sliding rod 24 by the second spring 27 and with the cooperation of the universal ball 28 can make the ultrasonic probe 30 always contact the pregnant woman's skin for detection. A storage groove 31 is provided in the mounting plate 29 above the ultrasonic probe 30. A plurality of discharge ports 32 are provided on the bottom inner wall of the storage groove 31, and are used to apply the coupling agent to the pregnant woman's skin through the discharge ports 32 to facilitate the detection by the ultrasonic probe 30.
[0057] Specifically, start the second electric push rod 25 to push the sliding rod 24 and the ultrasonic probe 30 as a whole to descend, so that the ultrasonic probe 30 fits against the abdomen of the pregnant woman. Detect the position of the baby during the production process through the ultrasonic probe 30, and transmit the image to the medical and health big data sharing platform through the single-chip microcomputer on the frame 1. The platform analyzes the image and gives operation suggestions for the best delivery. These images and delivery methods will be displayed on the touch display screen 49 to facilitate the medical staff to safely complete the delivery task.
[0058] The ultrasonic probe 30 can stably fit against the skin of the pregnant woman for detection to ensure the accuracy of the detection. At the same time, through the medical and health big data sharing platform, medical staff can obtain operation suggestions for the best delivery, improving the safety and success rate of the delivery.
[0059] Refer to Figure 5 、 Figure 7 and Figure 9 and, the detection structure further includes a midwifery structure, which is not only used to relieve the pain when the pregnant woman exerts force during childbirth, but also can provide a coupling agent for the detection of the ultrasonic probe 30. The midwifery structure includes two annular air bags 35 arranged in the rotating beam 13 and two piston plates 38 sliding in the rotating beam 13.
[0060] Refer to Figure 5 、 Figure 7 and Figure 9 and, the midwifery structure further includes two fixing rods 34 fixed to one side of the rotating beam 13. These two fixing rods 34 are respectively located on both sides of the rectangular groove 21 to ensure the stability of the structure. The two annular air bags 35 are respectively fixedly sleeved on the outer walls of the two fixing rods 34 for the pregnant woman to hold. Two material storage grooves 37 are provided in the rotating beam 13, and these two material storage grooves 37 are respectively located on both sides of the rectangular groove 21. The two piston plates 38 are respectively sealed and slid in the two material storage grooves 37 to ensure the tightness of gas flow. One side of each of the two annular air bags 35 is fixedly communicated with a communicating pipe 36, and one end of each of these two communicating pipes 36 is fixedly extended into the adjacent material storage groove 37.
[0061] Specifically, when a pregnant woman is giving birth, she squeezes the annular airbag 35 with both hands to vent the pain. The gas in the annular airbag 35 enters the storage tank 37 through the connecting pipe 36 and pushes the piston plate 38 to move. A third spring 39 is fixed to the side of the two piston plates 38 away from the connecting pipe 36, and one end of the two third springs 39 is fixedly connected to the inner wall of one side of the adjacent storage tank 37 to ensure that the piston plate 38 can be reset. When a pregnant woman holds the annular airbag 35 with both hands, the position of her hands is restricted. During childbirth, the pregnant woman gives birth with force after taking a deep breath. At this time, the pregnant woman clenched her hands, which can inject the gas in the annular airbag 35 into the storage tank 37 through the connecting pipe 36, and push the piston plate 38 to squeeze the third spring 39. When the pregnant woman has exerted force and needs to accumulate strength for the next childbirth, her hands are relaxed, and the piston plate 38 is reset under the action of the third spring 39, and the annular airbag 35 expands again. This process can relieve the anxiety of pregnant women during childbirth and provide a vent for the pain during childbirth.
[0062] Reference Figure 5 , Figure 7 and Figure 9 The delivery structure also includes two hoses 33, which are fixedly passed through the bottom inner walls of the two storage tanks 37 and are connected to the corresponding storage tanks 37. The bottom ends of the two hoses 33 are fixedly extended into the storage tank 31, and are used to inject coupling agent into the storage tank 31. A closing plate 40 is fixed on the side of the two piston plates 38 away from the connecting pipe 36. The closing plate 40 slides on the bottom inner wall of the storage tank 37 to close the hose 33. A through hole 41 matching with the hose 33 is provided in the closing plate 40, so that when the piston plate 38 is squeezed, the closing plate 40 is connected with the hose 33 to discharge the coupling agent.
[0063] Specifically, when the pregnant woman reciprocates to squeeze the annular airbag 35 and pushes the piston plate 38 to move reciprocally, the piston plate 38 pushes the closing plate 40 to move. When the through hole 41 is aligned with one end of the hose 33, the coupling agent in the storage tank 37 is injected into the storage tank 31 through the hose 33 and applied to the pregnant woman's skin through the discharge port 32. This process makes it easier for the ultrasound probe 30 to capture the position of the baby in the pregnant woman's uterus more clearly.
[0064] The design of the midwifery structure can relieve the pain of pregnant women when they are in labor, thereby alleviating their pain. At the same time, a coupling agent is provided for the ultrasonic probe 30 to ensure the smooth progress of the detection.
[0065] Reference Figure 8, a moving groove 16 is provided on the inner wall of the bottom of the second connecting seat 12, and a sliding plate 17 is slidably connected in the moving groove 16. A first spring 18 is fixed between one side of the sliding plate 17 and the inner wall of one side of the moving groove 16 to provide a restoring force for the sliding plate 17. A trapezoidal block 19 is fixed on the side of the sliding plate 17 away from the first spring 18, and a clamping groove 14 matching the sliding plate 17 is provided at the bottom of the rotating beam 13. When the rotating beam 13 rotates and rests on the top of the second connecting seat 12, the top end of the sliding plate 17 extends into the clamping groove 14. A clamping plate 15 is fixed in the clamping groove 14, and the clamping plate 15 is clamped with the trapezoidal block 19 to brake the rotating beam 13 and fixedly connect the second connecting seat 12 and the rotating beam 13. A push rod 20 is fixed below the trapezoidal block 19 on one side of the sliding plate 17, and one end of the push rod 20 slidably extends to one side of the second connecting seat 12 to push the trapezoidal block 19 to move and release the clamping connection between the trapezoidal block 19 and the clamping plate 15.
[0066] Specifically, when it is necessary to fix the rotating beam 13 to the second connecting seat 12, the rotating beam 13 is rotated and rested on the top of the second connecting seat 12. At this time, the top end of the sliding plate 17 extends into the clamping groove 14, and the trapezoidal block 19 is clamped with the clamping plate 15 to achieve fixation. When it is necessary to release the fixation, the sliding plate 17 is pushed to move through the push rod 20, so that the trapezoidal block 19 is disengaged from the clamping plate 15, and then the angle of the rotating beam 13 can be adjusted or it can be removed.
[0067] Through the above implementation manner, the childbirth assistance device can provide effective auxiliary support during the delivery of a pregnant woman, including relieving pain, providing a vent, facilitating the ultrasound probe to photograph the baby's position, and flexibly adjusting the angle of the rotating beam 13, etc. These functions work together to help improve the comfort and safety of the delivery process.
[0068] Example 2: Refer to Figure 10 and Figure 11 , on the basis of Example 1, an improvement is made: in the rectangular groove 21, a rotating rod 44 is rotatably connected through a bearing. On the outer wall of the rotating rod 44, a second gear 47 and a first gear 45 are fixedly sleeved. On one side of the rectangular groove 21, a slideway is designed, and a second rack 48 is slidably connected to the slideway, and the second rack 48 meshes with the second gear 47. One end of the second rack 48 is fixedly connected to the sliding seat 22. When the second gear 47 rotates, through the meshing action with the second rack 48, the sliding seat 22 can be driven to move in the rectangular groove 21, so as to facilitate the ultrasound probe 30 to photograph the baby's position.
[0069] Refer to Figure 10 and Figure 11, on the inner wall of the other side of the rectangular groove 21, a slideway is also designed. The first rack 43 is slidably connected to this slideway, and the first rack 43 meshes with the first gear 45. A trapezoidal rod 42 is fixed to the top of the first rack 43, and one end of the trapezoidal rod 42 extends into the adjacent storage tank 37 in a sealed and sliding manner. The storage tank 37 cooperates with the adjacent piston plate 38.
[0070] Reference Figure 10 and Figure 11 , when the piston plate 38 reciprocates, the piston plate 38 cooperates with the inclined surface of the trapezoidal rod 42. When the piston plate 38 moves towards the trapezoidal rod 42, it will squeeze the inclined surface of the trapezoidal rod 42, driving the trapezoidal rod 42 and the first rack 43 to move towards the middle. The cooperation between the first rack 43 and the first gear 45 will drive the rotating rod 44 to rotate. At the same time, a torsion spring 46 fixedly connected to the first gear 45 is sleeved on the outer wall of the rotating rod 44, and one end of the torsion spring 46 is fixedly connected to the inner wall of one side of the rectangular groove 21. When the extrusion effect of the piston plate 38 on the trapezoidal rod 42 is lost, the elastic restoring force of the torsion spring 46 will cause the rotating rod 44 to reset without external force.
[0071] When the rotating rod 44 rotates, it will drive the second gear 47 to rotate. The cooperation between the second gear 47 and the second rack 48 will drive the sliding seat 22 and the ultrasonic probe 30 to move. In this way, the ultrasonic probe 30 can obtain images at different positions, which can not only enable the mounting plate 29 to evenly apply the coupling agent on the pregnant woman's skin, but also enable the ultrasonic probe 30 to take more comprehensive images of the baby, providing more accurate diagnostic basis for medical staff.
[0072] Through the above specific implementation manners, the childbirth assistance device based on the medical health big data sharing platform can achieve comfortable support for the pregnant woman's legs, precise control of the device, convenient viewing and analysis of data, and comprehensive shooting of ultrasonic images, providing strong technical support for childbirth assistance.
[0073] The usage method of the childbirth assistance device based on the medical health big data sharing platform includes the following steps:
[0074] S1. The pregnant woman lies on the frame 1, rotates the L-shaped rod 8 to move the two arc-shaped support plates 10 closer to the middle, and the arc-shaped support plates 10 can rotate on the top of the sliding block 9, which is convenient for the pregnant woman's legs to rest on the two arc-shaped support plates 10 later for childbirth;
[0075] S2. Next, the output shaft of the first electric push rod 5 is used to push the support seat 6 up and down, and the sliding seat 7 slides at the bottom of the frame body 1, enabling the angle of inclination of the chair board 2 to be adjusted, facilitating the pregnant woman to be at a suitable angle for medical staff to perform delivery. Then, the rotating beam 13 is rotated, and the bottom end of the rotating beam 13 is snapped into the second connecting seat 12. Under the elastic force of the first spring 18, the trapezoidal block 19 is snapped into the top of the clamping plate 15 to clamp and connect the second connecting seat 12 and the rotating beam 13;
[0076] S3. When the medical staff performs delivery, the output shaft of the second electric push rod 25 pushes the sliding rod 24 and the ultrasonic probe 30 as a whole to descend, and the ultrasonic probe 30 is brought into contact with the abdomen of the pregnant woman. The position of the baby during the delivery process is detected by the ultrasonic probe 30, and the ultrasonic probe 30 transmits the image to the medical and health big data sharing platform through the single-chip microcomputer on the frame body 1. The platform analyzes the image and gives the best delivery operation method. Then, these images and delivery methods are displayed on the touch display screen 49, facilitating the medical staff to safely complete the delivery task;
[0077] S4. During the delivery of the pregnant woman, her hands hold the annular airbag 35 to restrict the orientation of her hands. During delivery, after taking a deep breath, the pregnant woman exerts force to give birth. At this time, the pregnant woman clenches her hands tightly, and the gas in the annular airbag 35 can be injected into the storage tank 37 through the connecting pipe 36, and the piston plate 38 is pushed to squeeze the third spring 39. When the pregnant woman finishes exerting force and needs to build up strength for the next delivery, she relaxes her hands, and the piston plate 38 resets under the action of the third spring 39, and the annular airbag 35 expands again. Therefore, the squeezing of the annular airbag 35 can relieve the anxiety of the pregnant woman during delivery and provide an outlet for the pain during delivery;
[0078] S5. When the pregnant woman repeatedly squeezes the annular airbag 35 and drives the piston plate 38 to move back and forth, the piston plate 38 drives the closing plate 40 to move. When the through hole 41 is aligned with one end of the hose 33, the coupling agent in the storage tank 37 is injected into the storage tank 31 through the hose 33 and is applied to the skin of the pregnant woman through the discharge port 32, thus facilitating the ultrasonic probe 30 to more clearly capture the position of the baby in the pregnant woman's uterus;
[0079] S6. In addition, when the piston plate 38 moves back and forth, under the cooperation of the piston plate 38 and the inclined surface of the trapezoidal rod 42, the trapezoidal rod 42 and the first rack 43 are driven to move towards the middle. The cooperation between the first rack 43 and the first gear 45 drives the rotating rod 44 and the second gear 47 to rotate. The cooperation between the second gear 47 and the second rack 48 drives the sliding seat 22 and the ultrasonic probe 30 to move. Therefore, the ultrasonic probe 30 obtains images at different positions, which can not only enable the mounting plate 29 to apply the coupling agent to the skin of the pregnant woman, but also enable the ultrasonic probe 30 to capture more comprehensive images of the baby.
[0080] However, as is well-known to those skilled in the art, the working principles and wiring methods of the ultrasonic probe 30, the second electric push rod 25, the first electric push rod 5, and the touch display screen 49 are common knowledge, and they all belong to conventional means or well-known common sense. Therefore, they will not be elaborated here. Those skilled in the art can make any selection according to their needs or convenience.
[0081] The attached drawings in the specification of this application are only schematic. The dimensions and shapes of the components shown therein are not actually limited, but only a schematic representation. During the actual implementation process, the components can be reasonably configured and adjusted according to specific requirements and actual situations.
[0082] The above are only the preferred specific embodiments 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. A delivery assistance device based on a medical and health big data sharing platform, characterized in that, Comprising: A frame body (1) with a chair board (2) fixedly installed therein, and the chair board (2) is used for a pregnant woman to lie semi-reclined; A detection structure, including a first connection seat (11) and a second connection seat (12) fixed on both sides of the top of the frame body (1), a rotating beam (13) pivotally connected to the top end of the first connection seat (11), and a sliding seat (22) and a fixed cylinder (23) arranged in the rotating beam (13); a second electric push rod (25), a second spring (27) connected to the output shaft of the second electric push rod (25), and a sliding rod (24) slidably connected in the fixed cylinder (23) are arranged in the fixed cylinder (23). The bottom end of the sliding rod (24) is installed with an ultrasonic probe (30) through a universal ball (28), a pressure sensor (26) is arranged at the top end of the sliding rod (24), and the bottom end of the second spring (27) is connected to the pressure sensor (26) to control the fitting pressure of the ultrasonic probe (30) against the abdomen of the pregnant woman; A midwifery structure, including two annular air bags (35) fixed on both sides of the rotating beam (13), a storage tank (37) communicated with the annular air bags (35), a piston plate (38) hermetically slidable in the storage tank (37), and a hose (33) communicating the storage tank (37) with a storage tank (31) above the ultrasonic probe (30); when the piston plate (38) is extruded by the annular air bags (35), it pushes the coupling agent in the storage tank (37) to be injected into the storage tank (31) through the hose (33) and is applied to the skin of the pregnant woman through a discharge port (32).
2. The delivery assistance device according to claim 1, characterized in that, It further includes an adjustment structure arranged below the frame body (1), including a bottom plate (3), two support columns (4) rotatably connected to the bottom of the frame body (1), a first electric push rod (5) fixed on the top of the bottom plate (3), and a support seat (6) fixedly connected to the output shaft of the first electric push rod (5). Two sliding seats (7) are pivotally connected in the support seat (6), and the top of the sliding seat (7) is pivotally connected to the bottom of the frame body (1). The support seat (6) is driven by the first electric push rod (5) to rise and fall to adjust the inclination angle of the chair board (2).
3. The delivery assistance device according to claim 2, wherein, A moving groove (16) is arranged in the second connection seat (12), a sliding plate (17) is slidably connected in the moving groove (16), the sliding plate (17) is connected to the moving groove (16) through a first spring (18), and a trapezoidal block (19) matching with a slot (14) at the bottom of the rotating beam (13) is arranged at the top thereof. A clamping plate (15) clamped with the trapezoidal block (19) is fixed in the slot (14).
4. The delivery assistance device according to claim 3, characterized in that, A rectangular groove (21) is provided in the rotating beam (13), and a sliding seat (22) is slidably connected in the rectangular groove (21); a rotating rod (44) is further provided in the rectangular groove (21), and a first gear (45) and a second gear (47) are fixed on the rotating rod (44). The first gear (45) meshes with a first rack (43) slidably connected to one side of the rectangular groove (21), and the second gear (47) meshes with a second rack (48) fixed to the sliding seat (22); the top of the first rack (43) is connected to a trapezoidal rod (42), and the trapezoidal rod (42) extends into the material storage tank (37) and is in inclined surface fit with the piston plate (38), and the lateral displacement of the ultrasonic probe (30) is driven by the movement of the piston plate (38).
5. The childbirth assistance device according to claim 4, wherein, A torsion spring (46) is sleeved on the outer wall of the rotating rod (44), and one end of the torsion spring (46) is fixed to the inner wall of the rectangular groove (21) for driving the rotating rod (44) to rotate reversely when the piston plate (38) resets.
6. The delivery assistance device according to claim 5, characterized in that, Two sides of the top of the frame body (1) are pivotally connected with L-shaped rods (8), the L-shaped rods (8) are connected with arc-shaped supporting plates (10) through sliding blocks (9), and the sliding blocks (9) can move along the sliding grooves on the side walls of the L-shaped rods (8) to adjust the height and angle of the arc-shaped supporting plates (10).
7. The delivery assistance device according to claim 6, wherein, A closing plate (40) fixed to the piston plate (38) is provided in the material storage tank (37), and a through hole (41) communicated with the hose (33) is provided on the closing plate (40). When the piston plate (38) is pressed and moves, the through hole (41) is aligned with the hose (33) to release the coupling agent.
8. The delivery assistance device according to claim 7, characterized in that, The touch display screen (49) is pivotally connected to one side of the frame body (1) and is electrically connected to the single-chip microcomputer, the first electric push rod (5), the second electric push rod (25) and the ultrasonic probe (30) for controlling the adjustment of the structure to act and displaying the fetal position image.
9. The childbirth assisting device according to claim 8, wherein, The annular air bag (35) is communicated with the material storage tank (37) through a communicating pipe (36), and a third spring (39) connected to the piston plate (38) is provided in the material storage tank (37) for resetting the piston plate (38) when the pregnant woman releases the grip force.
10. The usage method of the childbirth assistance device based on the medical and health big data sharing platform is applied to the childbirth assistance device based on the medical and health big data sharing platform described in claim 9, characterized in that, Including the following steps: S1. The pregnant woman lies flat on the frame body (1), rotates the L-shaped rods (8) to make the arc-shaped supporting plates (10) on both sides close to each other, and can be flexibly rotated to adapt to the placement of the legs to provide support for childbirth; S2. Adjust the height of the support seat (6) through the first electric push rod (5), and the sliding seat (7) slides synchronously to adjust the inclination angle of the chair plate (2) to a comfortable position; the rotating beam (13) is clamped into the second connecting seat (12), and the trapezoidal block (19) is locked under the elastic force of the first spring (18) to complete the structure fixation; S3. The second electric push rod (25) drives the sliding rod (24) to descend, so that the ultrasonic probe (30) fits against the abdomen, analyzes the image through the medical and health big data platform and recommends the best delivery plan, which is visually presented through the touch display screen (49). S4. The pregnant woman holds the annular airbag (35) to assist in childbirth. When taking a deep breath and exerting force during childbirth, the airbag can be squeezed simultaneously. The gas pushes the piston plate (38) through the connecting pipe (36) to compress the third spring (39). When storing energy, the third spring (39) resets to expand the airbag, forming a pressure relief channel to relieve anxiety and pain. S5. The reciprocating movement of the piston plate (38) drives the closing plate (40). When the through hole (41) is aligned with the hose (33), the coupling agent is injected into the storage tank (31) and applied to the skin through the discharge port (32). S6. The piston plate (38) drives the trapezoidal rod (42) and the first rack (43) to move, and drives the ultrasonic probe (30) to move horizontally through gear transmission to achieve multi-angle image acquisition, and synchronously complete the coupling agent application and comprehensive image acquisition.