Human body electrocardiosignal real-time monitoring device
By designing an automated mobile and downforce device, the problem of the ECG machine requiring nurse monitoring is solved, real-time monitoring of ECG signals and automatic defibrillation are realized, the rescue efficiency is improved, and manpower waste is reduced.
Patent Information
- Application Number
- CN202510323262.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2025-07-04
AI Technical Summary
The existing electrocardiogram machine requires nurses to monitor the electrocardiogram in real time, resulting in waste of manpower and may miss the best rescue time due to nurses' negligence.
A real-time monitoring device for human electrocardiogram signals is designed, including a mobile device and a down-pressure device, and the heart rate is monitored using a data processing chip and automatically start the motor to drive the connecting rod and connecting rod components to realize automatic down-pressure and cardiopulmonary resuscitation of the defibrillator.
Real-time monitoring and automatic defibrillation of electrocardiogram signals is realized, reducing manpower waste, improving rescue efficiency, and avoiding delays caused by human negligence.
Smart Images

Figure CN120241084A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of real-time monitoring of human electrocardiogram signals, and specifically relates to a real-time monitoring device for human electrocardiogram signals. Background Art
[0002] An electrocardiograph is the main tool for diagnosing cardiovascular diseases. The conventional method for detecting heart diseases currently is to perform electrocardiogram detection in a hospital. However, at present, a nurse is required to monitor the electrocardiogram of the electrocardiograph. Once the heart rate shows an abnormality, the attending doctor needs to be contacted immediately for treatment. Such a method is relatively labor-intensive, and sometimes the patient may miss the best rescue time due to the nurse being in a hurry or being negligent for other reasons. Summary of the Invention
[0003] In order to make up for the deficiencies of the prior art and solve the problem that currently a nurse is required to monitor the electrocardiogram of the electrocardiograph, and once the heart rate shows an abnormality, the attending doctor needs to be contacted immediately for treatment. Such a method is relatively labor-intensive, and sometimes the patient may miss the best rescue time due to the nurse being in a hurry or being negligent for other reasons.
[0004] The technical solution adopted by the present invention to solve its technical problems is: to provide a real-time monitoring device for human electrocardiogram signals, including: a moving device, a pressing device, and a control panel;
[0005] The moving device includes a first connecting rod, a second connecting rod, a second fixing block, a third connecting rod, a fourth connecting rod, a first motor, and a second motor. One end of the top of the first connecting rod is rotatably provided with the second connecting rod. One end of the top of the third connecting rod is rotatably provided with the second connecting rod. One end of the second connecting rod away from the first connecting rod is rotatably provided with the second fixing block. One end of the fourth connecting rod away from the third connecting rod is rotatably connected to the second fixing block. One end of the bottom of the first connecting rod away from the second connecting rod is driven by the second motor. One end of the bottom of the third connecting rod away from the fourth connecting rod is driven by the first motor;
[0006] The pressing device includes a second electric telescopic rod and a defibrillator. The second electric telescopic rod is located at the bottom of the second fixing block, and the defibrillator is located at the bottom of the second electric telescopic rod;
[0007] The bottom of the moving device is provided with a control panel, which is fixedly connected to the wall of the ward. The control panel is internally provided with a data processing chip, and the data processing chip is communicatively connected to the electrocardiograph in the ward.
[0008] When working, the data processing chip will monitor the received data and upload it to the cloud. If the patient's heart rate reaches a dangerous value, the data processing chip will start the first motor and the second motor. When the first motor and the second motor rotate in the same direction, the first motor and the second motor drive the first connecting rod and the third connecting rod to rotate in the same direction, and the first connecting rod and the third connecting rod drive the second connecting rod and the fourth connecting rod to rotate in the same direction, so that the second fixed block rotates in the same direction with the second connecting rod and the fourth connecting rod to achieve the displacement of the arc trajectory of the pressing device. When the first motor and the second motor rotate in the opposite direction, the first motor and the second motor will drive the first connecting rod and the third connecting rod away from the first connecting rod. One end of a fixed plate moves away from or approaches each other. When the first connecting rod and the third connecting rod move away from one end of the first fixed plate, the first connecting rod and the third connecting rod drive the second connecting rod and the fourth connecting rod to open one end away from the second fixed block, so that the second connecting rod and the fourth connecting rod pull the second fixed block so that the second fixed block approaches the first fixed plate. The opposite method can make the second fixed block move away from the first fixed plate, thereby changing the radius of the arc-shaped displacement trajectory of the pressing device. When the pressing device moves above the patient's heart, the second electric telescopic rod is started to press down the defibrillator so that the defibrillator touches the patient's chest to perform cardiopulmonary resuscitation on the patient.
[0009] Preferably, a first fixing plate is provided at the bottom of the first connecting rod, and the top plane of the first fixing plate is a right triangle. The end of the first connecting rod away from the second connecting rod is rotatably connected to the first fixing plate near an acute angle, and the end of the third connecting rod away from the fourth connecting rod is rotatably connected to the first fixing plate near another acute angle. The first motor and the second motor are located at the bottom of the first fixing plate, and the fixed ends of the first motor and the second motor are respectively fixedly connected to the first fixing plate, and the first motor and the second motor are respectively communicatively connected to the control panel.
[0010] During operation, the first connecting rod and the third connecting rod are rotatably connected to the first fixed plate, so that the first connecting rod and the third connecting rod can rotate on the first fixed plate, and the first motor and the second motor are respectively communicated with the control panel, so that the first connecting rod and the third connecting rod can be controlled by operating the control panel.
[0011] Preferably, the output shafts of the first motor and the second motor pass through the first fixed plate and are respectively connected to the first connecting rod and the third connecting rod in transmission, the first connecting rod and the third connecting rod are respectively provided with key slots at one end away from the second fixed block, the top outer surfaces of the output shafts of the first motor and the second motor are provided with protrusions, the outer walls of the protrusions and the inner walls of the key slots fit each other, the bottom of the first fixed plate is fixedly connected to the wall through a flange, a reinforcing plate is fixedly provided on one side of the flange, a camera is fixedly provided on the flange of the first fixed plate, a notch is provided in the middle of one side of the inclined surface of the first fixed plate, and the notch passes through the first fixed plate.
[0012] During operation, the output shafts of the first motor and the second motor pass through the first fixed plate and are respectively connected to the first connecting rod and the third connecting rod, so that the rotation of the first motor and the second motor can drive the first connecting rod and the third connecting rod to rotate, and the outer wall of the protrusion and the inner wall of the keyway fit each other, so that the keyway can limit the protrusion, so that the first motor and the second motor can better transmit torque and prevent the output shaft from slipping. Through the setting of the camera, the camera can take a picture of the patient and upload it to the data processing chip, and locate the patient's heart through the computer vision system inside the data processing chip. Through the setting of the reinforcement plate, the reinforcement plate can make the fixation of the first fixed plate more stable, thereby increasing the stability of the device. Through the setting of the notch, the pressing device can be moved into the notch, thereby making the device more space-saving.
[0013] Preferably, a turntable is rotatably provided at the top center of the first fixed plate, a multi-section telescopic rod is provided on the top of the turntable, one end of the multi-section telescopic rod is fixedly connected to the second fixed block, and the end of the multi-section telescopic rod away from the second fixed block is fixedly connected to the turntable through a fixing ring.
[0014] During operation, the multi-section telescopic rod can rotate with the rotation of the second fixed block through the setting of the turntable. The multi-section telescopic rod makes the second fixed block more stable during movement, preventing the second fixed block from tilting. Moreover, since the multi-section telescopic rod can be extended and retracted, the second fixed block can freely change the radius of the arc displacement trajectory.
[0015] Preferably, a first hinge seat is fixedly provided at the bottom of the second fixed block, one end of the second electric telescopic rod is hinged to the first hinge seat, the first electric telescopic rod is transmittedly provided on the outer surface of the second electric telescopic rod, one end of the first electric telescopic rod away from the second electric telescopic rod is hinged to the second fixed block near the bottom edge through the hinge seat, one end of the first electric telescopic rod close to the second electric telescopic rod is hinged to the outer surface of the second electric telescopic rod through the hinge seat, and the first electric telescopic rod and the second electric telescopic rod are respectively communicatively connected to the control panel.
[0016] During operation, one end of the second electric telescopic rod is hinged to the first hinge seat, so that the second electric telescopic rod can rotate around the first hinge seat. By starting the first electric telescopic rod, the first electric telescopic rod pushes the second electric telescopic rod to rotate clockwise, so that the pressing device can be rotated from the vertical direction to the horizontal direction, which saves more space. The first electric telescopic rod and the second electric telescopic rod are respectively connected to the control panel for communication, so that the first electric telescopic rod and the second electric telescopic rod can be controlled by operating the control panel.
[0017] Preferably, a fixed platform is driven and provided at the bottom of the second electric telescopic rod. Second hinge seats are fixedly provided on both sides of the fixed platform. A fifth connecting rod is hinged between the two second hinge seats. One end of the fifth connecting rod away from the second hinge seat is hinged with a sixth connecting rod. Third hinge seats are fixedly provided on both sides of the defibrillator. One end of the sixth connecting rod away from the fifth connecting rod is hinged with the third hinge seat.
[0018] During operation, due to the arrangement of the fifth connecting rod and the sixth connecting rod, there is a degree of freedom for movement between the defibrillator and the fixed platform.
[0019] Preferably, a limit switch is fixedly provided at the bottom of the fixed platform. Springs are provided on both sides of the limit switch. The top and bottom of the springs are fixedly connected to the fixed platform and the defibrillator respectively through limit posts. The limit switch is communicatively connected to the control panel.
[0020] During operation, due to the arrangement of the limit switch, when the second electric telescopic rod is pressed down, the defibrillator will contact the limit switch, enabling the data processing chip to obtain a feedback signal, preventing the second electric telescopic rod from pressing down excessively and causing injury to the patient. Due to the arrangement of the springs, when the second electric telescopic rod is pressed down, the defibrillator is buffered to prevent the defibrillator from causing injury to the patient due to excessive impact.
[0021] The specific beneficial effects are as follows:
[0022] 1. For the human electrocardiogram signal real-time monitoring device of the present invention, by arranging a first connecting rod, a second connecting rod, a third connecting rod, a fourth connecting rod, a first motor and a second motor inside the moving device, when it is necessary to move the pressing device, the first motor and the second motor are started, so that the first motor and the second motor drive the first connecting rod and the fourth connecting rod to rotate respectively, thereby realizing the movement of the second fixed block driving the pressing device.
[0023] 2. For the human electrocardiogram signal real-time monitoring device of the present invention, by arranging a second electric telescopic rod and a defibrillator inside the pressing device, when it is necessary to press down, the second electric telescopic rod is started, and the second electric telescopic rod can drive the defibrillator to press down, so that the defibrillator can contact the patient's heart.
[0024] Since a multi-section telescopic rod is provided at the top of the turntable, and one end of the multi-section telescopic rod is fixedly connected to the second fixed block, the second fixed block is more stable during the movement process, preventing the second fixed block from tilting. Moreover, since the multi-section telescopic rod can be telescoped, the second fixed block can freely change the radius of the arc displacement trajectory. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The present invention will be further described below with reference to the accompanying drawings.
[0026] Figure 1 is the system flowchart of the present invention;
[0027] Figure 2 is the three-dimensional view of the present invention;
[0028] Figure 3 is the partial three-dimensional view of the present invention;
[0029] Figure 4 is Figure 2 the enlarged view of A in
[0030] In the figure: 10, mobile device; 20, pressing device; 1001, first fixing plate; 1002, turntable; 1003, multi-joint telescopic rod; 1004, first connecting rod; 1005, second connecting rod; 1006, second fixing block; 1007, third connecting rod; 1008, fourth connecting rod; 1009, camera; 1010, first motor; 1011, second motor; 1012, notch; 1013, control panel; 2001, first hinge seat; 2002, first electric telescopic rod; 2003, second electric telescopic rod; 2004, fixed table; 2005, second hinge seat; 2006, fifth connecting rod; 2007, sixth connecting rod; 2008, third hinge seat; 2009, defibrillator; 2010, spring; 2011, limit switch. Detailed implementation manners
[0031] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.
[0032] As Figures 1 to 4 shown, a human electrocardiogram signal real-time monitoring device provided by the present invention includes: a mobile device 10, a pressing device 20 and a control panel 1013;
[0033] The mobile device 10 includes a first connecting rod 1004, a second connecting rod 1005, a second fixing block 1006, a third connecting rod 1007, a fourth connecting rod 1008, a first motor 1010 and a second motor 1011. One end of the top of the first connecting rod 1004 is rotatably provided with the second connecting rod 1005. One end of the top of the third connecting rod 1007 is rotatably provided with the second connecting rod 1005. One end of the second connecting rod 1005 away from the first connecting rod 1004 is rotatably provided with the second fixing block 1006. One end of the fourth connecting rod 1008 away from the third connecting rod 1007 is rotatably connected to the second fixing block 1006. One end of the first connecting rod 1004 away from the second connecting rod 1005 is driven by the second motor 1011 at the bottom. One end of the third connecting rod 1007 away from the fourth connecting rod 1008 is driven by the first motor 1010 at the bottom;
[0034] The pressing-down device 20 includes a second electric telescopic rod 2003 and a defibrillator 2009. The second electric telescopic rod 2003 is located at the bottom of the second fixed block 1006, and the defibrillator 2009 is located at the bottom of the second electric telescopic rod 2003;
[0035] A control panel 1013 is provided at the bottom of the moving device 10. The control panel 1013 is fixedly connected to the wall of the ward. A data processing chip is provided inside the control panel 1013, and the data processing chip is communicatively connected to an electrocardiograph in the ward;
[0036] The electrocardiograph uploads the electrocardiogram data to the data processing chip. The data processing chip monitors the received data and uploads it to the cloud. If the heart rate value of the patient reaches a dangerous value, the data processing chip will call the moving device 10 and the pressing-down device 20 to defibrillate the patient.
[0037] During operation, the data processing chip monitors the received data and uploads it to the cloud. If the heart rate value of the patient reaches a dangerous value, the data processing chip will start the first motor 1010 and the second motor 1011. When the first motor 1010 and the second motor 1011 rotate in the same direction, the first motor 1010 and the second motor 1011 drive the first connecting rod 1004 and the third connecting rod 1007 to rotate in the same direction. The first connecting rod 1004 and the third connecting rod 1007 drive the second connecting rod 1005 and the fourth connecting rod 1008 to rotate in the same direction, so that the second fixed block 1006 rotates in the same direction along with the second connecting rod 1005 and the fourth connecting rod 1008, realizing the displacement of the pressing-down device 20 along an arc trajectory. When the first motor 1010 and the second motor 1011 rotate in opposite directions, the first motor 1010 and the second motor 1011 will drive the ends of the first connecting rod 1004 and the third connecting rod 1007 away from the first fixing plate 1001 to move away from or close to each other. When the ends of the first connecting rod 1004 and the third connecting rod 1007 away from the first fixing plate 1001 move away from each other, the first connecting rod 1004 and the third connecting rod 1007 will drive the ends of the second connecting rod 1005 and the fourth connecting rod 1008 away from the second fixed block 1006 to open, so that the second connecting rod 1005 and the fourth connecting rod 1008 pull the second fixed block 1006, causing the second fixed block 1006 to approach the first fixing plate 1001. In the opposite way, the second fixed block 1006 can be made to move away from the first fixing plate 1001, thereby realizing the change of the radius of the arc displacement trajectory of the pressing-down device 20. When the pressing-down device 20 moves above the patient's heart, the second electric telescopic rod 2003 is started to make the defibrillator 2009 press down, so that the defibrillator 2009 touches the patient's chest to perform cardiopulmonary resuscitation on the patient.
[0038] As a specific embodiment of the present invention, a first fixed plate 1001 is provided at the bottom of the first connecting rod 1004, and the top plane of the first fixed plate 1001 is a right triangle. The end of the first connecting rod 1004 away from the second connecting rod 1005 is rotatably connected to the first fixed plate 1001 near an acute angle, and the end of the third connecting rod 1007 away from the fourth connecting rod 1008 is rotatably connected to the first fixed plate 1001 near another acute angle. The first motor 1010 and the second motor 1011 are located at the bottom of the first fixed plate 1001, and the fixed ends of the first motor 1010 and the second motor 1011 are respectively fixedly connected to the first fixed plate 1001, and the first motor 1010 and the second motor 1011 are respectively communicatively connected to the control panel 1013.
[0039] During operation, the first connecting rod 1004 and the third connecting rod 1007 are rotatably connected to the first fixed plate 1001, so that the first connecting rod 1004 and the third connecting rod 1007 can rotate on the first fixed plate 1001, and the first motor 1010 and the second motor 1011 are respectively communicated with the control panel 1013, so that the first connecting rod 1004 and the third connecting rod 1007 can be controlled by operating the control panel 1013.
[0040] As a specific embodiment of the present invention, the output shafts of the first motor 1010 and the second motor 1011 pass through the first fixed plate 1001 and are respectively connected to the first connecting rod 1004 and the third connecting rod 1007, and the first connecting rod 1004 and the third connecting rod 1007 are respectively provided with key slots at one end away from the second fixed block 1006, and the top outer surfaces of the output shafts of the first motor 1010 and the second motor 1011 are provided with protrusions, and the outer walls of the protrusions are in contact with the inner walls of the key slots. The bottom of the first fixed plate 1001 is fixedly connected to the wall through a flange, a reinforcing plate is fixedly provided on one side of the flange, a camera 1009 is fixedly provided on the flange of the first fixed plate 1001, and a notch 1012 is provided in the middle of one side of the inclined surface of the first fixed plate 1001, and the notch 1012 passes through the first fixed plate 1001.
[0041] During operation, the output shafts of the first motor 1010 and the second motor 1011 penetrate the first fixed plate 1001 and are respectively connected to the first connecting rod 1004 and the third connecting rod 1007, so that the rotation of the first motor 1010 and the second motor 1011 can drive the first connecting rod 1004 and the third connecting rod 1007 to rotate, and the outer wall of the protrusion and the inner wall of the keyway fit each other, so that the keyway can limit the protrusion, so that the first motor 1010 and the second motor 1011 can better transmit torque and prevent the output shaft from slipping. Through the setting of the camera 1009, the camera 1009 can take pictures of the patient and upload them to the data processing chip, and locate the patient's heart through the computer vision system inside the data processing chip. Through the setting of the reinforcement plate, the reinforcement plate can make the fixation of the first fixed plate 1001 more stable, thereby increasing the stability of the device. Through the setting of the notch 1012, the pressing device 20 can be moved into the notch 1012, thereby making the device more space-saving.
[0042] As a specific embodiment of the present invention, a turntable 1002 is rotatably provided at the top center of the first fixed plate 1001, and a multi-section telescopic rod 1003 is provided on the top of the turntable 1002. One end of the multi-section telescopic rod 1003 is fixedly connected to the second fixed block 1006, and the end of the multi-section telescopic rod 1003 away from the second fixed block 1006 is fixedly connected to the turntable 1002 through a fixing ring.
[0043] During operation, the multi-section telescopic rod 1003 can rotate along with the rotation of the second fixed block 1006 through the setting of the turntable 1002. The second fixed block 1006 can be more stable during movement through the setting of the multi-section telescopic rod 1003, which prevents the second fixed block 1006 from being skewed. Moreover, since the multi-section telescopic rod 1003 can be extended and retracted, the second fixed block 1006 can freely change the radius of the arc displacement trajectory.
[0044] As a specific embodiment of the present invention, a first hinge seat is fixedly provided at the bottom of the second fixed block 1006, one end of the second electric telescopic rod 2003 is hinged to the first hinge seat, and a first electric telescopic rod 2002 is transmitted on the outer surface of the second electric telescopic rod 2003. One end of the first electric telescopic rod 2002 away from the second electric telescopic rod 2003 is hinged to the second fixed block 1006 near the bottom edge through the hinge seat, and one end of the first electric telescopic rod 2002 close to the second electric telescopic rod 2003 is hinged to the outer surface of the second electric telescopic rod 2003 through the hinge seat, and the first electric telescopic rod 2002 and the second electric telescopic rod 2003 are respectively communicatively connected to the control panel 1013.
[0045] During operation, one end of the second electric telescopic rod 2003 is hinged to the first hinge seat 2001, enabling the second electric telescopic rod 2003 to rotate around the first hinge seat 2001. By activating the first electric telescopic rod 2002, the first electric telescopic rod 2002 pushes the second electric telescopic rod 2003 to rotate clockwise. Since the first electric telescopic rod 2002 and the second electric telescopic rod 2003 are respectively communicatively connected to the control panel 1013, the first electric telescopic rod 2002 and the second electric telescopic rod 2003 can be controlled by operating the control panel 1013.
[0046] As a specific embodiment of the present invention, a fixed platform 2004 is drivingly provided at the bottom of the second electric telescopic rod 2003. Second hinge seats 2005 are fixedly provided on both sides of the fixed platform 2004. A fifth connecting rod 2006 is hinged between the second hinge seats 2005 on both sides. One end of the fifth connecting rod 2006 away from the second hinge seat 2005 is hinged to a sixth connecting rod 2007. Third hinge seats 2008 are fixedly provided on both sides of the defibrillator 2009. One end of the sixth connecting rod 2007 away from the fifth connecting rod 2006 is hinged to the third hinge seat 2008.
[0047] During operation, due to the arrangement of the fifth connecting rod 2006 and the sixth connecting rod 2007, there is a degree of freedom for movement between the defibrillator 2009 and the fixed platform 2004.
[0048] As a specific embodiment of the present invention, a limit switch 2011 is fixedly provided at the bottom of the fixed platform 2004. Springs 2010 are provided on both sides of the limit switch 2011. The top and bottom of the springs 2010 are respectively fixedly connected to the fixed platform 2004 and the defibrillator 2009 through limit posts. The limit switch 2011 is communicatively connected to the control panel 1013.
[0049] During operation, due to the arrangement of the limit switch 2011, when the second electric telescopic rod 2003 is pressed down, the defibrillator 2009 will contact the limit switch 2011, enabling the data processing chip to obtain a feedback signal, preventing the second electric telescopic rod 2003 from pressing down excessively and causing injury to the patient. Due to the arrangement of the springs 2010, when the second electric telescopic rod 2003 is pressed down, the defibrillator 2009 is buffered, preventing the excessive impact of the defibrillator 2009 from causing harm to the patient.
[0050] As a specific embodiment of the present invention, when the heart rate value of a patient reaches a dangerous value, the data processing chip will call the camera 1009 to take pictures of the ward, and then upload the captured pictures to the data processing chip. The data processing chip is internally provided with a computer vision system. The data processing chip uses the computer vision system to find the patient's heart from the received pictures, and then starts the mobile device 10 to move according to the position of the heart, so that the pressing device 20 moves to directly above the patient's heart for defibrillation. When the pressing device 20 completes defibrillation, the pressing device 20 will feedback a signal to make the mobile device 10 move to the default position.
[0051] The specific working process is as follows:
[0052] The data processing chip monitors the received data and uploads it to the cloud. If the patient's heart rate value reaches a dangerous value, it will call the camera 1009 to take pictures of the ward, and then upload the captured images to the data processing chip. The data processing chip is equipped with a computer vision system inside. The data processing chip uses the computer vision system to find the patient's heart from the received images. Then the data processing chip will start the first motor 1010 and the second motor 1011. When the first motor 1010 and the second motor 1011 rotate in the same direction, the first motor 1010 and the second motor 1011 drive the first connecting rod 1004 and the third connecting rod 1007 to rotate in the same direction. The first connecting rod 1004 and the third connecting rod 1007 drive the second connecting rod 1005 and the fourth connecting rod 1008 to rotate in the same direction, so that the second fixed block 1006 rotates in the same direction with the second connecting rod 1005 and the fourth connecting rod 1008, realizing the displacement of the arc trajectory of the pressing device 20. When the first motor 1010 and the second motor 1011 rotate in the opposite direction, the first motor 1010 and the second motor 1011 will drive the ends of the first connecting rod 1004 and the third connecting rod 1007 away from the first fixing plate 1001 to move away from or close to each other. When the ends of the first connecting rod 1004 and the third connecting rod 1007 away from the first fixing plate 1001 move away from each other, the first connecting rod 1004 and the third connecting rod 1007 will drive the ends of the second connecting rod 1005 and the fourth connecting rod 1008 away from the second fixed block 1006 to open, so that the second connecting rod 1005 and the fourth connecting rod 1008 pull the second fixed block 1006, making the second fixed block 1006 close to the first fixing plate 1001. In the opposite way, the second fixed block 1006 can be made to move away from the first fixing plate 1001, thus realizing the change of the radius of the arc displacement trajectory of the pressing device 20. When the pressing device 20 moves above the patient's heart, the second electric telescopic rod 2003 is started to make the defibrillator 2009 press down, so that the defibrillator 2009 touches the patient's chest to perform cardiopulmonary resuscitation on the patient. When the pressing device 20 finishes defibrillation, the pressing device 20 will feedback a signal to make the moving device 10 drive the pressing device 20 to move to the position of the notch 1012. And each operation record of this device will be uploaded to the cloud, and users can access the data and operation records in the cloud in real time through mobile phones or computers.
[0053] The above front, back, left, right, up, and down are all based on the Figure 1 in the attached drawings of the specification. Taking the perspective of the person observing as the standard, the side of the device facing the observer is defined as the front, and the left side of the observer is defined as the left, and so on.
[0054] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "middle", "longitudinal", "lateral", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as limiting the protection scope of the present invention.
[0055] The foregoing has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments, and what is described in the above embodiments and the specification is only to illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will also have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A real-time monitoring device for human electrocardiogram signals, characterized in that, Including: A mobile device (10), a pressing device (20), and a control panel (1013); The mobile device (10) includes a first connecting rod (1004), a second connecting rod (1005), a second fixing block (1006), a third connecting rod (1007), a fourth connecting rod (1008), a first motor (1010), and a second motor (1011). At the top end of the first connecting rod (1004), the second connecting rod (1005) is rotatably provided. At the top end of the third connecting rod (1007), the fourth connecting rod (1008) is rotatably provided. At the end of the second connecting rod (1005) away from the first connecting rod (1004), the second fixing block (1006) is rotatably provided. At the end of the fourth connecting rod (1008) away from the third connecting rod (1007), it is rotatably connected to the second fixing block (1006). At the bottom of the end of the first connecting rod (1004) away from the second connecting rod (1005), the second motor (1011) is drivingly provided. At the bottom of the end of the third connecting rod (1007) away from the fourth connecting rod (1008), the first motor (1010) is drivingly provided; The pressing device (20) includes a second electric telescopic rod (2003) and a defibrillator (2009). The second electric telescopic rod (2003) is located at the bottom of the second fixing block (1006), and the defibrillator (2009) is located at the bottom of the second electric telescopic rod (2003); At the bottom of the mobile device (10), there is a control panel (1013). The control panel (1013) is fixedly connected to the wall of the ward. Inside the control panel (1013), there is a data processing chip, and the data processing chip is communicatively connected to an electrocardiograph in the ward.
2. The real-time human electrocardiogram signal monitoring device according to claim 1, characterized in that: At the bottom of the first connecting rod (1004), there is a first fixing plate (1001). The top plane of the first fixing plate (1001) is a right triangle. At the position near the acute angle of the first fixing plate (1001), the end of the first connecting rod (1004) away from the second connecting rod (1005) is rotatably connected. At the position near the other acute angle of the first fixing plate (1001), the end of the third connecting rod (1007) away from the fourth connecting rod (1008) is rotatably connected. The first motor (1010) and the second motor (1011) are located at the bottom of the first fixing plate (1001). The fixed ends of the first motor (1010) and the second motor (1011) are respectively fixedly connected to the first fixing plate (1001). The first motor (1010) and the second motor (1011) are respectively communicatively connected to the control panel (1013).
3. The real-time human electrocardiogram signal monitoring device according to claim 2, characterized in that: The output shafts of the first motor (1010) and the second motor (1011) pass through the first fixed plate (1001) and are respectively connected to the first connecting rod (1004) and the third connecting rod (1007) in transmission connection; the first connecting rod (1004) and the third connecting rod (1007) are respectively provided with key slots at one end away from the second fixed block (1006); the top outer surfaces of the output shafts of the first motor (1010) and the second motor (1011) are provided with protrusions, the outer walls of the protrusions and the inner walls of the key slots are in contact with each other; the bottom of the first fixed plate (1001) is fixedly connected to the wall through a flange; a reinforcing plate is fixedly provided on one side of the flange; a camera (1009) is fixedly provided on the flange of the first fixed plate (1001); a notch (1012) is provided in the middle of one side of the inclined surface of the first fixed plate (1001); the notch (1012) passes through the first fixed plate (1001).
4. A real-time human electrocardiogram signal monitoring device according to claim 3, characterized in that: A turntable (1002) is rotatably provided at the center of the top of the first fixed plate (1001), a multi-section telescopic rod (1003) is provided at the top of the turntable (1002), one end of the multi-section telescopic rod (1003) is fixedly connected to the second fixed block (1006), and one end of the multi-section telescopic rod (1003) away from the second fixed block (1006) is fixedly connected to the turntable (1002) via a fixing ring.
5. A real-time human electrocardiogram signal monitoring device according to claim 4, characterized in that: A first hinge seat (2001) is fixedly provided at the bottom of the second fixed block (1006); one end of the second electric telescopic rod (2003) is hinged to the first hinge seat (2001); a first electric telescopic rod (2002) is provided on the outer surface of the second electric telescopic rod (2003); one end of the first electric telescopic rod (2002) away from the second electric telescopic rod (2003) is hinged to a portion of the second fixed block (1006) near the bottom edge through the hinge seat; one end of the first electric telescopic rod (2002) near the second electric telescopic rod (2003) is hinged to the outer surface of the second electric telescopic rod (2003) through the hinge seat; the first electric telescopic rod (2002) and the second electric telescopic rod (2003) are respectively connected to the control panel (1013) for communication.
6. The real-time human electrocardiogram signal monitoring device according to claim 5, wherein: The bottom transmission of the second electric telescopic rod (2003) is provided with a fixed platform (2004), and second hinge seats (2005) are fixedly provided on both sides of the fixed platform (2004), and the second hinge seats (2005) on both sides are hingedly provided with a fifth connecting rod (2006), and the end of the fifth connecting rod (2006) away from the second hinge seat (2005) is hingedly provided with a sixth connecting rod (2007), and the third hinge seats (2008) are fixedly provided on both sides of the defibrillator (2009), and the end of the sixth connecting rod (2007) away from the fifth connecting rod (2006) is hinged to the third hinge seat (2008).
7. The real-time human electrocardiogram signal monitoring device according to claim 6, characterized in that: A limit switch (2011) is fixedly installed at the bottom of the fixed platform (2004). Springs (2010) are arranged on both sides of the limit switch (2011). The top and bottom of the springs (2010) are fixedly connected to the fixed platform (2004) and the defibrillator (2009) respectively through limit posts. The limit switch (2011) is communicatively connected to the control panel (1013).