Portable vital sign integrated detection instrument
By integrating multiple vital signs detection functions into a portable vital signs integrated detection instrument, the data dispersion problem caused by multi-device monitoring is solved, fast and accurate multiple detections are achieved, the detection process is simplified, and the detection efficiency and accessibility of medical services are improved.
Patent Information
- Application Number
- CN202510871442.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing technologies, vital signs monitoring relies on multiple independent devices, resulting in decentralized data storage that is difficult to integrate in real time, affecting doctors' comprehensive assessment of patients' health status, increasing the workload of patients and medical staff, and prolonging examination time.
A portable vital signs integrated detection instrument is designed to integrate multiple vital signs detection functions. It adopts a portable box design with built-in sliding and fixed components. The sliding component is driven by an electric push rod to achieve rapid deployment. Combined with the central control system and integrated sensor module, it can realize rapid and accurate detection of multiple vital signs parameters.
It enables a single device to complete rapid and accurate detection of multiple vital signs parameters, simplifies the medical testing process, improves testing efficiency, and is easy to carry and transport. It is particularly suitable for emergency treatment, bedside testing and mobile medical scenarios, improving the accessibility and response speed of medical services.
Smart Images

Figure CN120661106A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical monitoring equipment, in particular to a portable integrated vital sign detection instrument. Background Art
[0002] In the modern healthcare system, continuous and accurate monitoring of patients' vital signs is a key step in assessing their health status, guiding treatment decisions and preventing complications.
[0003] However, in current clinical practice, the monitoring of vital signs often relies on a variety of independent devices, such as ear thermometers for body temperature monitoring, sphygmomanometers for blood pressure measurement, pulse usually obtained indirectly through sphygmomanometers or oxygen saturation monitors, and blood oxygen saturation measured by special blood oxygen saturation monitors. Since each monitoring device operates independently, the data generated by it is stored in a dispersed manner, making it difficult to achieve real-time integration and analysis of the data, affecting the doctor's comprehensive assessment of the patient's overall health status. In addition, when patients undergo different vital sign monitoring, they need to frequently change equipment or move to different monitoring areas, which increases the workload of medical staff and prolongs the patient's examination time, which may delay treatment. Therefore, the present invention proposes a portable vital sign integrated detection instrument. Summary of the Invention
[0004] The purpose of the present invention is to provide a portable integrated vital signs detection instrument to solve the problem raised in the above background technology that in current clinical practice, the monitoring of vital signs often relies on multiple independent devices, such as ear thermometers for body temperature monitoring, sphygmomanometers for blood pressure measurement, pulse usually obtained indirectly through sphygmomanometers or oxygen saturation monitors, and blood oxygen saturation is measured by special blood oxygen saturation monitors. Since each monitoring device operates independently, the data generated by it is stored in a scattered manner, making it difficult to achieve instant integration and analysis of the data, affecting the doctor's comprehensive assessment of the patient's overall health status. When patients undergo different vital signs monitoring, they need to frequently change equipment or move to different monitoring areas, which increases the workload of medical staff and prolongs the patient's examination time, which may delay the treatment opportunity.
[0005] In order to achieve the above object, the present invention provides the following technical solutions:
[0006] A portable integrated vital signs detection instrument comprises a box body, the top of which is movably hinged with a box cover, the sides of the box body and the box cover are provided with locks for fixed connection after closing, the front sides of the box body and the box cover are provided with handles for carrying after closing, the box body consists of a control part and an installation cavity, the control part is provided with a central control system, and the top of the control part is movably provided with a display screen, the top of the control part and the side of the display screen are provided with control buttons, a sliding component is provided in the installation cavity, a fixing component is provided on the sliding component, a detection cylinder shell is fixed on the fixing component, and the outer wall of the detection cylinder shell is connected to an auxiliary component, the interior of the detection cylinder shell is lined with an airbag, the airbag is provided with an integrated sensor module, and an infrared body temperature thermometer is fixedly installed on the side of the detection cylinder shell through a rotating table.
[0007] Optionally, the central control system includes a processor and a communication circuit, the processor is bidirectionally electrically connected to the communication circuit, the processor is unidirectionally electrically connected to the display screen, infrared body temperature thermometer and integrated sensor module, and the processor is used to control the operation of the terminal and receive data information collected by the terminal for analysis and processing.
[0008] Optionally, the communication circuit includes a WiFi module, a wired communication module, a Bluetooth module and a USB module, the WiFi communication module is used to connect to the hospital local area network to transmit data, the wired communication module is used to transmit data through a wired connection, the Bluetooth module is used to perform short-range wireless data transmission with the Bluetooth function of a mobile phone or computer, and the USB module is used to perform data transmission through a USB interface.
[0009] Optionally, the integrated sensor module includes a blood pressure sensor, a pulse sensor and a blood oxygen saturation sensor.
[0010] Optionally, the lifting assembly includes columns, pulleys, a first connecting rod, a load-bearing plate, an electric push rod and a sliding groove vertically arranged at the four corners of the installation cavity. The four columns are all provided with a sliding groove, and a pulley is slidably arranged in the sliding groove. The pulley axis is connected to the first connecting rod, and the other ends of the four first connecting rods are commonly connected to the load-bearing plate. The bottom of the load-bearing plate is distributed with an electric push rod for lifting the load-bearing plate.
[0011] Optionally, the fixing assembly includes a mounting base fixedly mounted on the supporting plate, a fixing plate, a screw cap, a screw rod, a connecting frame, a second connecting rod, an ear seat, a rotating rod and a holding ring, a fixing plate fixedly mounted on the front side of the mounting base, a screw rod is installed on the fixing plate, the external thread of the screw rod is connected to the connecting frame, and one end of the screw rod is connected to the screw cap, the outer ring of the connecting frame is movably connected to the second connecting rod, the outer ring of the fixing plate is connected to the rotating rod through the ring-arranged ear seat, the other end of the second connecting rod is movably connected to the end of the rotating rod, and the other end of the rotating rod is connected to the holding ring for clamping the detection cylinder shell.
[0012] Optionally, the auxiliary component includes a telescopic bracket, a connecting seat and a joint plate arranged on the bottom side of the outer wall of the detection cylinder shell, and the front edge of the telescopic bracket is movably connected to the joint plate for placing the patient's elbow joint through the connecting seat.
[0013] Optionally, a hanging piece is provided on the top side of the installation cavity, a connecting tube is hung on the hanging piece, one end of the connecting tube is connected to the control part, and the other end of the connecting tube passes through the detection cylinder shell and is connected to the airbag.
[0014] The beneficial effects of the present invention are:
[0015] 1. The present invention integrates multiple vital sign detection functions into one, so that a single device can complete the rapid and accurate detection of multiple vital sign parameters. This integrated design not only simplifies the medical testing process and reduces the tedious operation of patients using multiple devices, but also improves the detection efficiency and provides medical staff with a more convenient and comprehensive diagnostic basis.
[0016] 2. The present invention adopts a portable box design with built-in sliding components and fixed components, so that the detection instrument can be compactly stored in the box when not in use, which is convenient for carrying and transportation. When in use, the sliding component is driven by an electric push rod to quickly raise the detection components such as the detection cylinder shell to the working position for rapid deployment. This portable structure is particularly suitable for first aid, bedside testing and mobile medical scenarios. It can quickly respond to medical needs, provide patients with timely and effective vital signs monitoring services, and improve the accessibility and response speed of medical services. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic structural diagram of the portable integrated vital signs detection instrument of the present invention;
[0018] Figure 2 This is a schematic diagram of the structure of the box body and the box cover after they are closed in the present invention;
[0019] Figure 3 for Figure 1 Enlarged view of point A in the middle;
[0020] Figure 4 Schematic diagram of the structure of the sliding assembly in the present invention;
[0021] Figure 5 A top view of the sliding assembly of the present invention;
[0022] Figure 6 Schematic diagram of the installation structure of the detection cylinder shell in the present invention;
[0023] Figure 7 This is a block diagram of the central control system inside the detection instrument of the present invention.
[0024] The numbers in the figure are:
[0025] 1. Box body; 101. Box cover; 102. Lock; 103. Handle; 104. Control unit; 105. Installation cavity;
[0026] 2. Display screen; 3. Control buttons;
[0027] 4. Sliding assembly; 401. Column; 402. Pulley; 403. First connecting rod; 404. Loading plate; 405. Electric push rod; 406. Sliding groove;
[0028] 5. Fixing assembly; 501. Mounting base; 502. Fixing plate; 503. Screw cap; 504. Screw rod; 505. Connecting frame; 506. Second connecting rod; 507. Ear seat; 508. Rotating rod; 509. Holding ring;
[0029] 6. Auxiliary components; 601. Telescopic bracket; 602. Connecting seat; 603. Joint plate;
[0030] 7. Detection tube shell; 8. Airbag; 9. Connecting tube; 10. Pendant; 11. Rotating table; 12. Infrared body temperature detector; 13. Processor; 14. Communication circuit; 15. Integrated sensor module. DETAILED DESCRIPTION
[0031] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0032] The device of the present invention will be described below in conjunction with preferred embodiments thereof.
[0033] Example 1:
[0034] As attached Figure 1 To the attached Figure 7As shown, the present invention provides a portable vital sign integrated detection instrument, including a box body 1, the top of the box body 1 is movably hinged with a box cover 101, the sides of the box body 1 and the box cover 101 are provided with locks 102 for fixed connection after closing, the front sides of the box body 1 and the box cover 101 are provided with handles 103 for carrying after closing, the box body 1 is composed of a control unit 104 and an installation cavity 105, the control unit 104 is provided with a central control system, and the top of the control unit 104 is movably provided with a display screen 2, the top of the control unit 104 and the side of the display screen 2 are provided with a control button 3, the installation cavity 105 is provided with a sliding assembly 4, and the sliding assembly 4 is provided with a There is a fixing component 5, on which a detection cylinder shell 7 is fixed, and the outer wall of the detection cylinder shell 7 is connected to an auxiliary component 6, the interior of the detection cylinder shell 7 is lined with an airbag 8, and the airbag 8 is provided with an integrated sensor module 15. An infrared body temperature thermometer 12 is fixedly installed on the side of the detection cylinder shell 7 through a rotating table 11, and a hanger 10 is provided on the top side of the installation cavity 105. A connecting tube 9 is hung on the hanger 10, one end of the connecting tube 9 is connected to the control unit 104, and the other end of the connecting tube 9 passes through the detection cylinder shell 7 and is connected to the airbag 8. Gas is injected into the airbag 8 through the connecting tube 9, so that the airbag 8 gradually expands and fits tightly against the skin of the patient's upper arm.
[0035] Example 2:
[0036] As attached Figure 7 As shown, this embodiment is basically the same as the previous embodiment, except that the central control system includes a processor 13 and a communication circuit 14, the processor 13 and the communication circuit 14 are bidirectionally electrically connected, and the processor 13 and the display screen 2, the infrared body temperature thermometer 12 and the integrated sensor module 15 are all unidirectionally electrically connected. The processor (13) is used to control the operation of the terminal and receive data information collected by the terminal and perform analysis and processing.
[0037] Furthermore, the communication circuit 14 includes a WiFi module, a wired communication module, a Bluetooth module and a USB module. The WiFi communication module is used to connect to the hospital local area network to transmit data, the wired communication module is used to transmit data through a wired connection, the Bluetooth module is used to perform short-range wireless data transmission with the Bluetooth function of a mobile phone or computer, and the USB module is used to perform data transmission through a USB interface.
[0038] Furthermore, the integrated sensor module 15 includes a blood pressure sensor, a pulse sensor, and a blood oxygen saturation sensor.
[0039] Specifically, processor 13 serves as the core of the central control system. The model of processor 13 is RK3399, which controls the operation of the entire terminal and receives data information from various detection elements for analysis and processing. It has built-in multiple data processing and analysis program modules, which can realize accurate measurement and analysis of vital signs such as heart rate, blood pressure, blood oxygen saturation, and body temperature.
[0040] Display screen 2 is the main interface for users to interact with the detection instrument, and is used to display information such as detection results and operation prompts. Display screen 2 adopts the LCM-700 model, which has a touch function to facilitate user operation.
[0041] The infrared thermometer 12 is a FLUKE-568 model. It is used for non-contact measurement of a patient's body temperature and features fast measurement speed and high accuracy. The infrared thermometer 12 is connected to the processor 13 via a temperature sampling circuit, transmitting the collected temperature data to the processor 13 for processing. The processor 13 is provided with a temperature data processing module that parses and converts the received temperature data and ultimately outputs the temperature data to the display screen 2 for display by the user.
[0042] The integrated sensor module 15 integrates multiple sensors such as a blood pressure sensor, a pulse sensor and a blood oxygen saturation sensor. The blood pressure sensor adopts the HEM-7201 model and adopts the inflation measurement principle. The armband is inflated through the inflation element, and then gradually deflated and the blood pressure changes are monitored. Finally, the blood pressure data is transmitted to the processor 13 for processing. The pulse sensor adopts the MAX30102 model. This sensor is based on photoplethysmography (PPG) technology and can monitor the patient's pulse beat in real time and transmit the data to the processor 13 for analysis and processing. The blood oxygen saturation sensor adopts the MAX30101 model. This blood oxygen saturation sensor is also based on PPG technology and can accurately measure the patient's blood oxygen saturation level, providing important diagnostic basis for medical staff. Each sensor in the integrated sensor module 15 is connected to the processor 13 through a data sampling circuit, and the collected data is transmitted to the processor 13 for processing. The processor 13 is provided with a corresponding data processing module to parse and convert the received data, and finally output various vital sign indicator data to the display screen 2 for display to the user.
[0043] As can be seen from the above, by integrating multiple vital signs detection functions into one, a single device can complete the rapid and accurate detection of multiple vital signs parameters. This integrated design not only simplifies the medical testing process and reduces the tedious operation of patients using multiple devices, but also improves the detection efficiency and provides medical staff with a more convenient and comprehensive diagnostic basis.
[0044] Example 3:
[0045] As attached Figure 4 To the attached Figure 5As shown, this embodiment is basically the same as the previous embodiment, with the difference that the lifting assembly 4 includes columns 401, pulleys 402, first connecting rods 403, supporting plates 404, electric push rods 405 and sliding grooves 406 vertically arranged at the four corners of the installation cavity 105. The four columns 401 are all provided with sliding grooves 406, in which pulleys 402 are slidingly provided, and the pulleys 402 are connected to the first connecting rods 403 at the axis of the pulleys 402. The other ends of the four first connecting rods 403 are commonly connected to the supporting plate 404, and the bottom of the supporting plate 404 is provided with electric push rods 405 for lifting the supporting plate 404.
[0046] As can be seen from the above, the electric push rod 405 pushes the carrying plate 404, the pulley 402 slides in the sliding groove 406, and the carrying plate 404 rises upward with the assistance of the pulley 402, thereby moving the detection cylinder housing 7 into the user's field of view.
[0047] Example 4:
[0048] As attached Figure 6 As shown, this embodiment is basically the same as the previous embodiment, except that the fixing assembly 5 includes a mounting base 501 fixedly mounted on the carrying plate 404, a fixing plate 502, a screw cap 503, a screw rod 504, a connecting frame 505, a second connecting rod 506, an ear seat 507, a rotating rod 508 and a holding ring 509, the front side of the mounting base 501 is fixedly mounted with a fixing plate 502, the fixing plate 502 is provided with a screw rod 504, the external thread of the screw rod 504 is connected to the connecting frame 505, and one end of the screw rod 504 is connected to the screw cap 503, the outer ring of the connecting frame 505 is movably connected to the second connecting rod 506, the outer ring of the fixing plate 502 is connected to the rotating rod 508 through the ring-arranged ear seat 507, the other end of the second connecting rod 506 is movably connected to the end of the rotating rod 508, and the other end of the rotating rod 508 is connected to the holding ring 509 for clamping the detection cylinder shell 7.
[0049] Furthermore, the auxiliary component 6 includes a telescopic bracket 601, a connecting seat 602 and a joint plate 603 arranged on the bottom side of the outer wall of the detection tube shell 7. The front edge of the telescopic bracket 601 is movably connected to the joint plate 603 for placing the patient's elbow joint through the connecting seat 602.
[0050] As can be seen from the above, in the non-detection state, the rotation of the screw cap 503 drives the screw rod 504 to rotate. Due to the threaded connection between the screw rod 504 and the connecting frame 505, the connecting frame 505 moves axially along the screw rod 504. This movement is transmitted to the rotating rod 508 through the second connecting rod 506, which in turn drives the holding ring 509 to contract, tightly fixing the detection tube shell 7. When a test is required, the user rotates the screw cap 503 to reverse the screw rod 504, causing the connecting frame 505 to move in the opposite direction, driving the rotating rod 508 to expand, and the holding ring 509 is loosened, allowing the detection tube shell 7 to be easily removed. The detached detection tube shell 7 is then inserted into the patient's upper arm to ensure that the airbag 8 part is tightly attached to the skin, so as to facilitate the subsequent accurate measurement of blood pressure, pulse and blood oxygen saturation. After the detection tube shell 7 is inserted into the patient's upper arm, the telescopic support is adjusted according to the patient's body shape. The length of the telescopic bracket 601 is flexibly adjusted through its internal telescopic mechanism to accommodate differences in arm length between patients. As the length of the telescopic bracket 601 changes, the connecting seat 602 drives the joint plate 603 to move to the appropriate position of the patient's elbow joint. The design of the joint plate 603 takes ergonomic principles into consideration. Its surface is made of soft material and has an appropriate curvature to ensure that the patient's elbow joint can be comfortably placed on it during the test. When the joint plate 603 is adjusted to the appropriate position, the patient's elbow joint is stably supported, which helps reduce arm shaking during the test and improves the accuracy of the test data. At the same time, this design also reduces patient fatigue during long-term testing and enhances the overall testing experience.
[0051] When in use, the user first opens the box cover 101 to expose the control part 104 and the installation cavity 105, presses the control button 3 to start the device, the display screen 2 lights up, and then confirms that the connecting tube 9 is tightly connected to the airbag 8 without leakage. The user starts the electric push rod 405 through the control button 3 or the operation interface on the display screen 2. The electric push rod 405 pushes the supporting plate 404 to rise, and the pulley 402 slides in the sliding groove 406 to ensure that the supporting plate 404 rises smoothly. After the supporting plate 404 rises to the appropriate position, the detection cylinder shell 7 and the infrared body temperature thermometer 12 are exposed to the installation cavity 105. The user rotates the screw cap 503 to drive the screw rod 504 to rotate. The threaded connection relationship between the screw rod 504 and the connecting frame 505 makes the connecting frame 505 move along the screw rod 504 moves axially, and the movement of the connecting frame 505 is transmitted to the rotating rod 508 through the second connecting rod 506, driving the holding ring 509 to expand and loosen the detection tube shell 7. The user removes the detection tube shell 7 from the fixing component 5, puts it into the patient's upper arm, adjusts the position of the detection tube shell 7, ensures that the airbag 8 part fits the patient's skin tightly, and adjusts the length of the telescopic bracket 601 according to the patient's body shape to move the joint plate 603 to the appropriate position of the patient's elbow joint. Then, air is inflated into the airbag 8 through the connecting tube 9. The airbag 8 expands and contacts the arm, and the blood pressure sensor, pulse sensor and blood oxygen saturation sensor in the integrated sensor module 15 start to work. The blood pressure sensor adopts the inflatable measurement principle. The airbag 8 is inflated by the inflatable element, and then gradually deflated to monitor the blood pressure. The pulse sensor is based on the photoplethysmography (PPG) technology to monitor the patient's pulse in real time. The blood oxygen saturation sensor is also based on the PPG technology to accurately measure the patient's blood oxygen saturation level. The data collected by each sensor is transmitted to the processor 13 for processing through the data sampling circuit, and the output direction of the infrared body temperature thermometer 12 is changed by the rotating table 11. The patient's body temperature is measured non-contact by the infrared body temperature thermometer 12. The measured body temperature data is transmitted to the processor 13 for processing through the body temperature sampling circuit. The processor 13 parses and converts the received vital signs data. The processor 13 has a built-in variety of data processing and analysis program modules for vital signs such as heart rate, blood pressure, blood oxygen saturation, and body temperature. The vital signs are accurately measured and analyzed, and the processor 13 outputs the processed vital sign data to the display screen 2 for display. The display screen 2 displays the test results and operation prompts of each vital sign. Then the user can choose to transmit the test results to the hospital LAN, mobile phone, computer or cloud server and other external devices through the communication circuit 14. The communication circuit 14 includes a WiFi module, a wired communication module, a Bluetooth module and a USB module to meet the data transmission requirements in different scenarios. By integrating multiple vital sign detection functions into one, a single device can complete the rapid and accurate detection of multiple vital sign parameters. This integrated design not only simplifies the medical detection process, reduces the tedious operation of patients using multiple devices, but also improves the detection efficiency.This provides medical staff with a more convenient and comprehensive basis for diagnosis. After the test is completed, the user removes the test tube housing 7 from the patient's upper arm, rotates the screw cap 503 to reverse the screw rod 504, causing the connecting frame 505 to move in the opposite direction, driving the rotating rod 508 to contract and tightening the ring 509, re-fixing the test tube housing 7 to the fixing assembly 5. Press the control button 3 to activate the electric push rod 405 to lower the carrying plate 404 back to its original position, then close the box cover 101 and lock the lock 102 to complete the storage of the test instrument.
[0052] The above shows and describes 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 to the above embodiments. The above embodiments and descriptions merely illustrate the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A portable integrated vital signs detection instrument, characterized by: The invention comprises a box body (1), wherein the top of the box body (1) is movably hinged with a box cover (101), the sides of the box body (1) and the box cover (101) are provided with locks (102) for fixing the connection after closing, the front sides of the box body (1) and the box cover (101) are provided with handles (103) for portability after closing, the box body (1) is composed of a control unit (104) and an installation cavity (105), the control unit (104) is provided with a central control system, and the top of the control unit (104) is movably provided with a display screen (2), the top of the control unit (104), and A control button (3) is provided on the side of the display screen (2), a sliding assembly (4) is provided in the installation cavity (105), a fixing assembly (5) is provided on the sliding assembly (4), a detection shell (7) is fixed on the fixing assembly (5), and an auxiliary assembly (6) is connected to the outer wall of the detection shell (7), the interior of the detection shell (7) is lined with an air bag (8), an integrated sensor module (15) is provided on the air bag (8), and an infrared body temperature detector (12) is fixedly installed on the side of the detection shell (7) through a rotating platform (11).
2. The portable integrated vital signs detection instrument according to claim 1, characterized in that: The central control system includes a processor (13) and a communication circuit (14). The processor (13) is bidirectionally electrically connected to the communication circuit (14). The processor (13) is unidirectionally electrically connected to the display screen (2), the infrared body temperature thermometer (12) and the integrated sensor module (15). The processor (13) is used to control the operation of the terminal and receive data information collected by the terminal and perform analysis and processing.
3. The portable integrated vital signs detection instrument according to claim 2, characterized in that: The communication circuit (14) includes a WiFi module, a wired communication module, a Bluetooth module and a USB module. The WiFi communication module is used to connect to the hospital local area network to transmit data. The wired communication module is used to transmit data through a wired connection. The Bluetooth module is used to perform short-range wireless data transmission with the Bluetooth function of a mobile phone or computer. The USB module is used to perform data transmission through a USB interface.
4. The portable integrated vital signs detection instrument according to claim 2, characterized in that: The integrated sensor module (15) includes a blood pressure sensor, a pulse sensor, and a blood oxygen saturation sensor.
5. The portable integrated vital signs detection instrument according to claim 1, characterized in that: The lifting assembly (4) includes columns (401) vertically arranged at the four corners of the installation cavity (105), pulleys (402), a first connecting rod (403), a supporting plate (404), an electric push rod (405) and a sliding groove (406), the four columns (401) are all provided with a sliding groove (406), a pulley (402) is slidingly provided in the sliding groove (406), the pulley (402) is connected to the first connecting rod (403) at the axis, the other ends of the four first connecting rods (403) are commonly connected to the supporting plate (404), and the bottom of the supporting plate (404) is distributed with an electric push rod (405) for lifting the supporting plate (404).
6. The portable integrated vital signs detection instrument according to claim 1, characterized in that: The fixing assembly (5) comprises a mounting seat (501) fixedly mounted on the carrier plate (404), a fixing plate (502), a screw cap (503), a screw rod (504), a connecting frame (505), a second connecting rod (506), an ear seat (507), a rotating rod (508) and a ring (509), wherein the fixing plate (502) is fixedly mounted on the front side of the mounting seat (501), the fixing plate (502) is provided with a screw rod (504), and the external thread of the screw rod (504) is A connecting frame (505) is connected, and one end of the spiral rod (504) is connected to a screw cap (503); the outer ring of the connecting frame (505) is movably connected to a second connecting rod (506); the outer ring of the fixed disk (502) is connected to a rotating rod (508) through a ring-shaped ear seat (507); the other end of the second connecting rod (506) is movably connected to the end of the rotating rod (508); and the other end of the rotating rod (508) is connected to a holding ring (509) for clamping the detection cylinder shell (7).
7. The portable integrated vital signs detection instrument according to claim 1, characterized in that: The auxiliary component (6) comprises a telescopic bracket (601), a connecting seat (602) and a joint plate (603) arranged on the bottom side of the outer wall of the detection cylinder shell (7); the front edge of the telescopic bracket (601) is movably connected to the joint plate (603) for placing the patient's elbow joint through the connecting seat (602).
8. The portable integrated vital signs detection instrument according to claim 1, characterized in that: A hanging piece (10) is provided on the top side of the installation cavity (105), and a connecting tube (9) is hung on the hanging piece (10), one end of the connecting tube (9) is connected to the control unit (104), and the other end of the connecting tube (9) passes through the detection cylinder shell (7) and is connected to the air bag (8).