Sphygmomanometer moving and lifting platform and physical examination integrated machine
By designing a mobile lifting platform of the blood pressure meter and using its movement, rotation and lifting functions, the problem of not being able to adapt to different measuring users in the prior art is solved, and the accuracy and efficiency of blood pressure measurement are improved.
Patent Information
- Application Number
- CN202421705615.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-18
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-18
AI Technical Summary
The existing self-service health examination machine cannot adapt to measurers of different heights and weights when measuring blood pressure, resulting in the measurement speed and accuracy being affected.
A sphygmomanometer mobile lifting platform is designed, including moving components, rotating components and lifting components. Through the coordinated work of these components, the sphygmomanometer can move in a straight line, rotate and lift around the axis to accommodate the arm placement position, height and angle of different measuring instruments.
It improves the applicability of the blood pressure sphygmomanometer, enhances the accuracy and efficiency of measuring blood pressure, and avoids measurement speed and accuracy problems caused by inadequacy.
Smart Images

Figure CN222929831U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of health examination all-in-one machines, and more specifically, to a sphygmomanometer mobile lifting platform and a health examination all-in-one machine. Background Art
[0002] At present, the self-service health check-up machines used by hospitals and blood collection centers cannot adapt to people of different heights and weights when measuring blood pressure, which requires the measuring personnel to constantly adjust the measuring posture, seriously affecting the speed and accuracy of blood pressure measurement. Utility Model Content
[0003] The purpose of the utility model is to provide a mobile lifting platform for a sphygmomanometer and an all-in-one health examination machine, so as to solve the technical problem in the prior art that the self-service all-in-one health examination machine cannot adapt to different measurers when measuring blood pressure.
[0004] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0005] In a first aspect, a mobile lifting platform for a sphygmomanometer is provided, comprising:
[0006] A moving assembly, the moving assembly comprising a guide rail, a push platform fixing plate arranged on the guide rail, and a moving driving member drivingly connected to the push platform fixing plate, the moving driving member being used to drive the push platform fixing plate to move along the length direction of the guide rail;
[0007] A rotating assembly, the rotating assembly comprising a rotating shaft disposed on the push table fixing plate and a sphygmomanometer fixing plate connected to the rotating shaft for fixing the sphygmomanometer, the sphygmomanometer fixing plate being capable of rotating around the rotating shaft;
[0008] A lifting assembly, the lifting assembly includes a lifting drive and a support plate arranged on the lifting drive, the support plate is used to support the guide rail, the lifting drive is used to drive the support plate to drive the moving assembly and the rotating assembly to move along the lifting direction, and the lifting direction is perpendicular to the length direction of the guide rail.
[0009] By adopting the above technical solution, the mobile lifting platform of the sphygmomanometer can drive the sphygmomanometer to move and rotate, thereby adapting to the placement position, placement height and placement angle of the arms of different measurers. It has strong applicability and improves the accuracy and efficiency of blood pressure measurement.
[0010] In one embodiment, the moving assembly further comprises a sensing sheet disposed on the push platform fixing plate and a sensor disposed on the support plate for detecting the sensing sheet, and the sensor is electrically connected to the moving drive member.
[0011] By adopting the above technical solution, the moving range of the sphygmomanometer on the push table fixing plate in a straight line is limited, avoiding the danger caused by the sphygmomanometer moving beyond the preset range.
[0012] In one embodiment, the moving driving member includes a moving motor, a synchronous pulley connected to the driving shaft of the moving motor, an idler pulley fixing plate disposed opposite to the moving motor, an idler pulley disposed on the idler pulley fixing plate, a synchronous belt wound around the synchronous pulley and the idler pulley, and a joint fixing plate disposed on the synchronous belt and connected to the push table fixing plate. The moving motor and the idler pulley fixing plate are disposed on the support plate. The arrangement direction of the synchronous belt is parallel to the length direction of the guide rail. The moving motor drives the synchronous pulley to rotate, causing the synchronous pulley to drive the synchronous belt to move between the synchronous pulley and the idler pulley, and causing the synchronous belt to drive the push table fixing plate to move along the length direction of the guide rail.
[0013] By adopting the above technical solution, the moving driving member adopts synchronous belt transmission, which has the advantages of stable operation, simple structure, convenient adjustment, overload protection, and low precision requirements.
[0014] In one embodiment, the moving driving member further includes a tensioning fixing plate for movably connecting the idler pulley fixing plate. The tensioning fixing plate is fixedly disposed on the support plate, and the distance between the tensioning fixing plate and the idler pulley fixing plate is adjustable, so that the tension of the synchronous belt is adjustable.
[0015] By adopting the above technical solution, it is convenient to adjust the tension of the synchronous belt and replace the synchronous belt.
[0016] In one embodiment, a threaded fastener is connected between the tensioning fixing plate and the idler pulley fixing plate. The threaded fastener can drive the idler pulley fixing plate to approach or depart from the tensioning fixing plate, so that the distance between the idler pulley fixing plate and the tensioning fixing plate is adjustable.
[0017] By adopting the above technical solution, the distance between the idler pulley fixing plate and the tensioning fixing plate is adjustable.
[0018] In one embodiment, the rotating assembly further includes a damper connecting the rotating shaft and the sphygmomanometer fixing plate. The damper is used to provide resistance when the sphygmomanometer fixing plate rotates around the rotating shaft.
[0019] By adopting the above technical solution, the accuracy of the sphygmomanometer rotating around the rotating shaft is improved.
[0020] In one embodiment, the rotating assembly also includes a roller provided on the sphygmomanometer fixing plate and a return bracket provided on the support plate, the rotation axis of the roller being parallel to the rotating shaft, and the roller being able to move under the guidance of the return bracket to drive the sphygmomanometer fixing plate to rotate around the rotating shaft to an initial position.
[0021] By adopting the above technical solution, the fixing plate of the sphygmomanometer can be reset to the initial position by the return bracket after each measurement, thereby improving the measurement efficiency.
[0022] In one embodiment, the return bracket is provided with a guide surface and a return front surface connected to the guide surface, the return front surface is parallel to the length direction of the guide rail, the guide surface is obliquely connected to the return front surface, the guide surface is located on the side of the return front surface away from the rotating shaft, and the roller can move along the guide surface to the return front surface.
[0023] By adopting the above technical solution, the fixing plate of the sphygmomanometer is reset to the initial position, thereby improving the measurement efficiency.
[0024] In one embodiment, the rotating assembly also includes a guide groove provided on the sphygmomanometer fixing plate and a guide column provided on the push platform fixing plate. The guide column is inserted into the guide groove and can move relative to the groove length direction of the guide groove, so that the sphygmomanometer fixing plate can rotate around the rotating shaft in a limited manner.
[0025] By adopting the above technical solution, the stability of the sphygmomanometer fixing plate when rotating around the rotating axis is improved.
[0026] In a second aspect, a health check-up integrated machine is provided, comprising a health check-up host, a sphygmomanometer and the above-mentioned sphygmomanometer mobile lifting platform, wherein the sphygmomanometer mobile lifting platform is connected to the health check-up host, and the sphygmomanometer is arranged on the sphygmomanometer mobile lifting platform.
[0027] By adopting the above technical solution, on the basis of having the advantages of the mobile lifting platform of the blood pressure monitor of the above embodiment, the health check-up integrated machine of this embodiment also has the advantages of high self-service level and high check-up efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0029] Figure 1 It is a three-dimensional structural diagram of a mobile lifting platform for a sphygmomanometer provided in an embodiment of the utility model.
[0030] Figure 2 It is an exploded view of the mobile lifting platform of the sphygmomanometer provided by an embodiment of the present utility model.
[0031] Figure 3 It is a three-dimensional structure diagram of the mobile component provided by an embodiment of the present utility model.
[0032] Each reference numeral in the figure is as follows:
[0033] 1, mobile component; 2, rotating component; 3, lifting component;
[0034] 11, guide rail support base; 12, guide rail; 13, push table fixing plate; 14, mobile driving member; 15, induction sheet; 16, inductor; 21, rotating driving member; 22, rotating shaft; 23, sphygmomanometer fixing plate; 28, damper; 24, roller; 25, return-to-position bracket; 26, guide groove; 27, guide post; 31, lifting driving member; 32, support plate;
[0035] 141, mobile motor; 142, synchronous pulley; 143, idler pulley fixing plate; 144, idler pulley; 145, synchronous belt; 146, joint fixing plate; 147, tensioning fixing plate; 148, threaded fastener; 251, guiding surface; 252, returning surface. Detailed implementation manners
[0036] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present utility model clearer, the present utility model will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0037] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected or indirectly connected to the other element.
[0038] It should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model, rather than indicating that the device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model.
[0039] In addition, the terms "first" and "second" are used for descriptive purposes only and cannot be understood as indicating relative importance or indicating the number of technical features. In the description of the present utility model, the meaning of "multiple" is two or more, unless otherwise clearly and specifically defined. The following is a more detailed description of the specific implementation of the present utility model in conjunction with specific embodiments:
[0040] like Figure 1 and Figure 2 As shown, a mobile lifting platform for a sphygmomanometer provided by an embodiment of the utility model is used to move and lift the sphygmomanometer, wherein the movement of the sphygmomanometer includes linear movement, rotation around an axis and lifting movement, so that the sphygmomanometer can be used to adapt to different body shapes of the measured persons. Specifically, different measured persons have different heights, and the heights, positions and placement angles of the arms placed on the sphygmomanometer during measurement are different. The mobile lifting platform for the sphygmomanometer can move linearly, rotate around an axis and lift the sphygmomanometer, so that the sphygmomanometer can adapt to different measured persons, thereby improving the applicability of the mobile lifting platform for the sphygmomanometer; the following is an explanation through specific implementation methods:
[0041] The mobile lifting platform of the sphygmomanometer comprises: a moving component 1, a rotating component 2 and a lifting component 3;
[0042] The moving assembly 1 includes a guide rail 12, a push platform fixing plate 13 arranged on the guide rail 12, and a moving driving member 14 that is transmission-connected to the push platform fixing plate 13, and the moving driving member 14 is used to drive the push platform fixing plate 13 to move along the length direction of the guide rail 12;
[0043] Here, it can be understood that the moving assembly 1 refers to an assembly for linearly moving the sphygmomanometer; the moving assembly 1 includes a guide rail 12, a push table fixing plate 13 and a moving drive member 14; wherein, optionally, the guide rail 12 is supported on the support plate 32 by a guide rail support seat 11, and further, the guide rail support seat 11 supports the rotating assembly 2 by supporting the guide rail 12 and the push table fixing plate 13; the guide rail 12 refers to a member for guiding the moving direction of the push table fixing plate 13; the push table fixing plate 13 is arranged on the guide rail 12 and can move along the length direction of the guide rail 12; the moving drive member 14 refers to a driving member for driving the push table fixing plate 13 to move, wherein the moving drive member 14 generally refers to a linear motor or a cylinder, that is, the moving drive member 14 is used to drive the sphygmomanometer to move linearly; the moving drive member 14 is used to drive the push table fixing plate 13 to move along the length direction of the guide rail 12. In this embodiment, the length direction of the guide rail 12 is parallel to the horizontal direction, so that the sphygmomanometer can adapt to the horizontal placement position of the arms of different measurers;
[0044] The rotating assembly 2 includes a rotating shaft 22 disposed on the push platform fixing plate 13 and a sphygmomanometer fixing plate 23 connected to the rotating shaft 22 and used to fix the sphygmomanometer. The sphygmomanometer fixing plate 23 can rotate around the rotating shaft 22.
[0045] Here, it can be understood that the rotating assembly 2 refers to the assembly used to rotate the sphygmomanometer around an axis; the rotating assembly 2 includes a rotating shaft 22 and a sphygmomanometer fixing plate 23; wherein, the sphygmomanometer fixing plate 23 can be driven to rotate by the measurer, or the sphygmomanometer fixing plate 23 can be driven to rotate by the rotation driving member 21, and the rotation driving member 21 generally refers to a motor; the rotation driving member 21 is connected to the rotating shaft 22, that is, the rotating shaft 22 is the power output shaft of the rotation driving member 21; the sphygmomanometer fixing plate 23 is connected to the rotating shaft 22, and the sphygmomanometer fixing plate 23 is used to fix the sphygmomanometer; the sphygmomanometer fixing plate 23 is installed on the push table fixing plate 13 through the rotating shaft 22 and the rotation driving member 21. In this way, the sphygmomanometer fixing plate 23 can move along with the movement of the moving assembly 1, and at the same time, the sphygmomanometer fixing plate 23 can also rotate around the rotating shaft 22. In this embodiment, the rotating shaft 22 is perpendicular to the horizontal plane. In this way, the sphygmomanometer fixing plate 23 can drive the sphygmomanometer to rotate around the axis to adapt to the horizontal placement angles of the arms of different measurers.
[0046] The lifting assembly 3 includes a lifting driving member 31 and a support plate 32 arranged on the lifting driving member 31. The support plate 32 is used to support the guide rail 12, and the lifting driving member 31 is used to drive the support plate 32 to drive the moving assembly 1 and the rotating assembly 2 to move along the lifting direction, and the lifting direction is perpendicular to the length direction of the guide rail 12.
[0047] Here, it can be understood that the lifting assembly 3 refers to the assembly used to lift the sphygmomanometer; wherein, the lifting assembly 3 includes a lifting driving member 31 and a support plate 32; the lifting driving member 31 refers to the driving member used to drive the sphygmomanometer to lift, and the lifting driving member 31 generally refers to a motor or a cylinder; the support plate 32 is used to support the guide rail 12, and the moving assembly 1 and the rotating assembly 2 are arranged on the guide rail 12. In this way, the lifting driving member 31 can drive the moving assembly 1 and the rotating assembly 2 to move along the lifting direction at the same time; the lifting direction is perpendicular to the length direction of the guide rail 12. In this embodiment, the lifting direction is the vertical direction. In this way, the sphygmomanometer can adapt to the placement heights of the arms of different measurers.
[0048] The working principle of the sphygmomanometer moving and lifting platform in this embodiment is as follows:
[0049] A sphygmomanometer is installed on a mobile lifting platform of the sphygmomanometer. The mobile lifting platform of the sphygmomanometer determines the position, height, and angle of the sphygmomanometer according to the height of the measurer, as well as the placement position, placement height, and placement angle of the arm. First, the mobile lifting platform of the sphygmomanometer enables the sphygmomanometer to move linearly through the moving component 1, so that the sphygmomanometer can adapt to the arm placement positions of different measurers. Secondly, the mobile lifting platform of the sphygmomanometer raises and lowers the sphygmomanometer through the lifting component 3, so that the sphygmomanometer can adapt to the arm placement heights of different measurers. Finally, the mobile lifting platform of the sphygmomanometer enables the sphygmomanometer to rotate around the rotating shaft 22 through the rotating component 2, so that the sphygmomanometer can adapt to the arm placement angles of different measurers. It should be further noted that the moving component 1, the rotating component 2, and the lifting component 3 can be connected to the control system. The measurer can input control commands through the control system to control the movement of the above components, realize the self-adjustment of the position, height, and angle of the sphygmomanometer, and then realize the self-measurement of blood pressure.
[0050] By adopting the above technical solution, the mobile lifting platform of the sphygmomanometer can drive the sphygmomanometer to move and rotate, so as to adapt to the placement positions, placement heights, and placement angles of the arms of different measurers. It has strong applicability and improves the accuracy and efficiency of blood pressure measurement.
[0051] In one embodiment, the moving component 1 further includes an induction sheet 15 provided on the push table fixing plate 13 and an inductor 16 provided on the support plate 32 for detecting the induction sheet 15. The inductor 16 is electrically connected to the moving driving member 14.
[0052] Here, it can be understood that the inductor 16 refers to a device for detecting the induction sheet 15. When the inductor 16 detects the induction sheet 15, the inductor 16 sends a kind of induction information to the moving driving member 14;
[0053] Optionally, the moving component 1 includes at least two inductors 16, and the inductors 16 are respectively located at two extreme moving positions of the push table fixing plate 13. When the push table fixing plate 13 drives the induction sheet 15 to move to an extreme moving position, the inductor 16 detects the induction sheet 15. At this time, the inductor 16 sends the induction information to the moving driving member 14, and the moving driving member 14 drives the push table fixing plate 13 to stop. Similarly, when the push table fixing plate 13 drives the induction sheet 15 to move to another extreme moving position, the inductor 16 detects the induction sheet 15. At this time, the inductor 16 sends the induction information to the moving driving member 14, and the moving driving member 14 drives the push table fixing plate 13 to stop. In this way, the inductor 16 is used to detect the induction sheet 15, so as to limit the movement of the push table fixing plate 13 beyond the extreme position and ensure the moving safety of the sphygmomanometer;
[0054] It should be further explained that the inductor 16 can be an optoelectronic switch.
[0055] By adopting the above technical solution, the moving range of the sphygmomanometer on the push table fixing plate 13 is limited in a straight line, avoiding the danger caused by the sphygmomanometer moving beyond the preset range.
[0056] As Figure 3 shown, in one embodiment, the moving driving member 14 includes a moving motor 141, a synchronous pulley 142 connected to the driving shaft of the moving motor 141, an idler pulley fixing plate 143 disposed opposite to the moving motor 141, an idler pulley 144 disposed on the idler pulley fixing plate 143, a synchronous belt 145 wound around the synchronous pulley 142 and the idler pulley 144, and a joint fixing plate 146 disposed on the synchronous belt 145 and connected to the push table fixing plate 13. The moving motor 141 and the idler pulley fixing plate 143 are disposed on the support plate 32. The arrangement direction of the synchronous belt 145 is parallel to the length direction of the guide rail 12. The moving motor 141 drives the synchronous pulley 142 to rotate, causing the synchronous pulley 142 to drive the synchronous belt 145 to move between the synchronous pulley 142 and the idler pulley 144, and causing the synchronous belt 145 to drive the push table fixing plate 13 to move along the length direction of the guide rail 12.
[0057] Here, it can be understood that the moving driving member 14 includes a moving motor 141, a synchronous pulley 142, an idler pulley fixing plate 143, an idler pulley 144, a synchronous belt 145, and a joint fixing plate 146. Among them, the moving motor 141 is a component for power output. The synchronous pulley 142 is connected to the power output shaft of the moving motor 141. The moving motor 141 is used to drive the synchronous pulley 142 to rotate, and the synchronous pulley 142 is used to drive the synchronous belt 145 to move. The idler pulley fixing plate 143 is used to limit the idler pulley 144 in a position opposite to the synchronous pulley 142. The synchronous belt 145 is wound around the synchronous pulley 142 and the idler pulley 144. The arrangement direction of the synchronous belt 145 is parallel to the length direction of the guide rail 12. The synchronous belt 145 is connected to the push table fixing plate 13 through the joint fixing plate 146. In this way, the moving motor 141 drives the synchronous pulley 142 to rotate through the synchronous pulley 142, causing the synchronous pulley 142 to drive the synchronous belt 145 to move between the synchronous pulley 142 and the idler pulley 144, and causing the synchronous belt 145 to drive the push table fixing plate 13 to move along the length direction of the guide rail 12.
[0058] By adopting the above technical solution, the moving driving member 14 uses the synchronous belt 145 for transmission, which has the advantages of stable operation, simple structure, convenient adjustment, overload protection, and low precision requirements.
[0059] In one embodiment, the moving driving member 14 further includes a tensioning fixing plate 147 for movably connecting the idler pulley fixing plate 143. The tensioning fixing plate 147 is fixedly disposed on the support plate 32. The distance between the tensioning fixing plate 147 and the idler pulley fixing plate 143 is adjustable, so that the tension degree of the synchronous belt 145 is adjustable.
[0060] Here, it can be understood that the tension fixing plate 147 is provided on the support plate 32 and is fixed relative to the support plate 32. The idler wheel fixing plate 143 is movably connected to the tension fixing plate 147, and the distance between the idler wheel fixing plate 143 and the tension fixing plate 147 is adjustable, so that the distance between the idler wheel 144 on the idler wheel fixing plate 143 and the opposite synchronous belt pulley 142 is adjustable, and further the tension degree of the synchronous belt 145 wound around the idler wheel 144 and the synchronous belt pulley 142 is adjustable.
[0061] By adopting the above technical solution, it is convenient to adjust the tension degree of the synchronous belt 145 and replace the synchronous belt 145.
[0062] In one embodiment, a threaded fastener 148 is connected between the tension fixing plate 147 and the idler wheel fixing plate 143. The threaded fastener 148 can drive the idler wheel fixing plate 143 to approach or depart from the tension fixing plate 147, so that the distance between the idler wheel fixing plate 143 and the tension fixing plate 147 is adjustable.
[0063] Here, it can be understood that the two ends of the threaded fastener 148 are respectively connected to the tension fixing plate 147 and the idler wheel fixing plate 143. Rotating the threaded fastener 148 in one direction can make the idler wheel fixing plate 143 approach the tension fixing plate 147, reduce the distance between the idler wheel fixing plate 143 and the tension fixing plate 147, and improve the tension degree of the synchronous belt 145; on the contrary, rotating the threaded fastener 148 in the other direction can make the idler wheel fixing plate 143 depart from the tension fixing plate 147, expand the distance between the idler wheel fixing plate 143 and the tension fixing plate 147, and reduce the tension degree of the synchronous belt 145.
[0064] By adopting the above technical solution, the distance between the idler wheel fixing plate 143 and the tension fixing plate 147 is adjustable.
[0065] Please refer to again Figure 2 , in one embodiment, the rotating assembly 2 further includes a damper 28 connecting the rotating shaft 22 and the sphygmomanometer fixing plate 23. The damper 28 is used to provide resistance when the sphygmomanometer fixing plate 23 rotates around the rotating shaft 22.
[0066] Here, it can be understood that the damper 28 refers to a device for providing resistance. The damper 28 includes but is not limited to a damping washer; when the sphygmomanometer fixing plate 23 rotates around the rotating shaft 22, the damper 28 applies resistance to the sphygmomanometer fixing plate, so that the sphygmomanometer fixing plate rotates slowly, avoiding the sphygmomanometer fixing plate 23 driving the sphygmomanometer to rotate too fast and causing a decrease in rotation accuracy.
[0067] By adopting the above technical solution, the accuracy of the sphygmomanometer when rotating around the rotating shaft 22 is improved.
[0068] In one embodiment, the rotating assembly 2 also includes a roller 24 provided on the sphygmomanometer fixing plate 23 and a return bracket 25 provided on the support plate 32. The rotation axis of the roller 24 is parallel to the rotating shaft 22. The roller 24 can move under the guidance of the return bracket 25 to drive the sphygmomanometer fixing plate 23 to rotate around the rotating shaft 22 to the initial position.
[0069] Here, it can be understood that the arm placement angle of each person being measured is different. Therefore, resetting the position of the sphygmomanometer after each measurement can improve the efficiency of the next measurement. Specifically, the rotating assembly 2 also includes a roller 24 and a return bracket 25. The roller 24 is arranged on the sphygmomanometer fixing plate 23, and the return bracket 25 is arranged on the support plate 32. Optionally, the return bracket 25 is connected to the guide rail 12 or the guide rail support seat 11. The roller 24 can move under the guidance of the return bracket 25 to drive the sphygmomanometer fixing plate 23 to rotate around the rotating shaft 22 to the initial position.
[0070] Specifically, when the sphygmomanometer fixing plate 23 extends to the frontmost part of the guide rail 12, the person measuring the sphygmomanometer can adjust the sphygmomanometer to a certain angle so that the sphygmomanometer conforms to the arm placement angle of the person measuring the sphygmomanometer; and when the sphygmomanometer fixing plate 23 moves back, the roller 24 will contact the return bracket 25, so that the return bracket 25 guides the roller 24 to drive the sphygmomanometer fixing plate 23 and the sphygmomanometer back to the initial angle.
[0071] By adopting the above technical solution, the sphygmomanometer fixing plate 23 can be reset to the initial position through the return bracket 25 after each measurement, thereby improving the measurement efficiency.
[0072] In one embodiment, the return bracket 25 is provided with a guide surface 251 and a return front surface 252 connected to the guide surface 251, the return front surface 252 is parallel to the length direction of the guide rail 12, the guide surface 251 is obliquely connected to the return front surface 252, the guide surface 251 is located on the side of the return front surface 252 away from the rotating shaft 22, and the roller 24 can move along the guide surface 251 to the return front surface 252.
[0073] Here, it can be understood that when the sphygmomanometer fixing plate 23 extends to the frontmost part of the guide rail 12, the measurer can adjust the sphygmomanometer to a certain angle; and when the sphygmomanometer fixing plate 23 moves back, the roller 24 of the sphygmomanometer fixing plate 23 first contacts the guide surface 251, and the guide surface 251 guides the roller 24 to drive the sphygmomanometer fixing plate 23 to rotate around the rotating shaft 22 to the initial angle until the roller 24 enters the return front surface 252 from the guide surface 251. Since the return front surface 252 is parallel to the length direction of the guide rail 12, at this time, the sphygmomanometer fixing plate 23 is completely rotated to the initial angle.
[0074] By adopting the above technical solution, the sphygmomanometer fixing plate 23 is reset to the initial position, thereby improving the measurement efficiency.
[0075] In one embodiment, the rotating assembly 2 further includes a guiding groove 26 provided on the blood pressure monitor fixing plate 23 and a guiding post 27 provided on the push table fixing plate 13. The guiding post 27 is inserted into the guiding groove 26 and can move relative to the length direction of the guiding groove 26, enabling the blood pressure monitor fixing plate 23 to rotate in a limited manner around the rotating shaft 22.
[0076] Here, it can be understood that the rotating assembly 2 further includes a guiding groove 26 and a guiding post 27. The guiding groove 26 is provided on the blood pressure monitor fixing plate 23, and the guiding post 27 is provided on the push table fixing plate 13. The guiding post 27 is inserted into the guiding groove 26, and the guiding post 27 can also move relative to the length direction of the guiding groove 26 as the blood pressure monitor fixing plate 23 rotates relative to the push table fixing plate 13; it should be further explained that in order to adapt to the rotation trajectory of the blood pressure monitor fixing plate 23, the guiding groove 26 is set as an arc-shaped groove, that is, the length direction of the guiding groove 26 is the arc length direction.
[0077] By adopting the above technical solution, the stability of the blood pressure monitor fixing plate 23 when rotating around the rotating shaft 22 is improved.
[0078] In a second aspect, a health examination integrated machine is provided, which includes a physical examination host, a blood pressure monitor, and the above-mentioned blood pressure monitor moving and lifting platform. The blood pressure monitor moving and lifting platform is connected to the physical examination host, and the blood pressure monitor is arranged on the blood pressure monitor moving and lifting platform.
[0079] Here, it can be understood that the lifting driving member 31 can be a lifting column. The top end of the lifting column is fixedly connected to the support plate 32, and the bottom end of the lifting column is fixedly connected to the physical examination host of the self-service health examination integrated machine; it should be further explained that the health examination integrated machine mainly includes temperature measurement, height measurement, weighing, blood pressure measurement, printing, identity recognition, screen control, and personal information filling, etc. The blood pressure monitor moving and lifting platform is only a component on the device for adjusting the blood pressure measurement position.
[0080] By adopting the above technical solution, on the basis of having the advantages of the blood pressure monitor moving and lifting platform in the above-mentioned embodiment, the health examination integrated machine in this embodiment also has the advantages of high self-service level and high physical examination efficiency.
[0081] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A mobile lifting platform for a sphygmomanometer, characterized in that: include: A moving assembly, the moving assembly comprising a guide rail, a push platform fixing plate arranged on the guide rail, and a moving driving member drivingly connected to the push platform fixing plate, the moving driving member being used to drive the push platform fixing plate to move along the length direction of the guide rail; A rotating assembly, the rotating assembly comprising a rotating shaft disposed on the push table fixing plate and a sphygmomanometer fixing plate connected to the rotating shaft for fixing the sphygmomanometer, the sphygmomanometer fixing plate being capable of rotating around the rotating shaft; A lifting assembly, the lifting assembly includes a lifting drive and a support plate arranged on the lifting drive, the support plate is used to support the guide rail, the lifting drive is used to drive the support plate to drive the moving assembly and the rotating assembly to move along the lifting direction, and the lifting direction is perpendicular to the length direction of the guide rail.
2. The mobile lifting platform for a sphygmomanometer according to claim 1, characterized in that: The moving assembly further comprises a sensing sheet arranged on the fixed plate of the push platform and a sensor arranged on the supporting plate for detecting the sensing sheet, and the sensor is electrically connected to the moving driving member.
3. The mobile lifting platform for a sphygmomanometer according to claim 1, characterized in that: The mobile driving component includes a mobile motor, a synchronous pulley connected to the driving shaft of the mobile motor, an idler wheel fixing plate arranged opposite to the mobile motor, an idler wheel arranged on the idler wheel fixing plate, a synchronous belt wound around the synchronous pulley and the idler wheel, and a joint fixing plate arranged on the synchronous belt and connected to the push platform fixing plate. The mobile motor and the idler wheel fixing plate are arranged on the support plate, and the arrangement direction of the synchronous belt is parallel to the length direction of the guide rail. The mobile motor drives the synchronous pulley to rotate, so that the synchronous pulley drives the synchronous belt to move between the synchronous pulley and the idler wheel, and the synchronous belt drives the push platform fixing plate to move along the length direction of the guide rail.
4. The mobile lifting platform for a sphygmomanometer as claimed in claim 3, characterized in that: The mobile driving member also includes a tensioning fixing plate for movably connecting the idler wheel fixing plate, the tensioning fixing plate is fixed on the support plate, and the distance between the tensioning fixing plate and the idler wheel fixing plate is adjustable, so that the tension degree of the synchronous belt can be adjusted.
5. The mobile lifting platform for a sphygmomanometer as claimed in claim 4, characterized in that: A threaded fastener is connected between the tensioning fixing plate and the idler wheel fixing plate, and the threaded fastener can drive the idler wheel fixing plate to approach or move away from the tensioning fixing plate, so that the distance between the idler wheel fixing plate and the tensioning fixing plate is adjustable.
6. The mobile lifting platform for a sphygmomanometer according to any one of claims 1 to 5, characterized in that: The rotating assembly further includes a damper connecting the rotating shaft and the sphygmomanometer fixing plate, wherein the damper is used to provide resistance when the sphygmomanometer fixing plate rotates around the rotating shaft.
7. The mobile lifting platform for a sphygmomanometer according to any one of claims 1 to 5, characterized in that: The rotating assembly also includes a roller arranged on the sphygmomanometer fixing plate and a return bracket arranged on the support plate. The rotation axis of the roller is parallel to the rotating shaft. The roller can move under the guidance of the return bracket to drive the sphygmomanometer fixing plate to rotate around the rotating shaft to an initial position.
8. The mobile lifting platform for a sphygmomanometer as claimed in claim 7, characterized in that: The return bracket is provided with a guide surface and a return front surface connected to the guide surface, the return front surface is parallel to the length direction of the guide rail, the guide surface is obliquely connected to the return front surface, the guide surface is located on the side of the return front surface away from the rotating shaft, and the roller can move along the guide surface to the return front surface.
9. The mobile lifting platform for a sphygmomanometer as claimed in claim 7, characterized in that: The rotating assembly also includes a guide groove provided on the sphygmomanometer fixing plate and a guide column provided on the push platform fixing plate. The guide column is inserted into the guide groove and can move relative to the groove length direction of the guide groove, so that the sphygmomanometer fixing plate can rotate around the rotating shaft in a limited position.
10. A health check-up machine, characterized in that: It comprises a physical examination host, a sphygmomanometer and a mobile lifting platform for the sphygmomanometer according to any one of claims 1 to 9, wherein the mobile lifting platform for the sphygmomanometer is connected to the physical examination host, and the sphygmomanometer is arranged on the mobile lifting platform for the sphygmomanometer.