Electronic sphygmomanometer assembly and electronic sphygmomanometer

By setting a plurality of first elastic arm pre-fixed air pumps on the support body of the electronic blood pressure meter assembly and fixing the battery through the second elastic arm, the problem of the inability to pre-fix the air pumps and the component volume in the prior art is solved, and fully automated production is achieved and universality and space efficiency are improved.

CN223026052UActive Publication Date: 2025-06-27OMRON HEALTHCARE (CHINA) CO LTD
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Patent Information

Application Number
CN202420618326.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-03-27
Publication Date
2025-06-27
Estimated Expiration
2034-03-27

AI Technical Summary

Technical Problem

The air pumps in existing modular components cannot be pre-fixed, resulting in the need to manually maintain the air pump during the moving modular components, which cannot achieve fully automated production, increasing production costs. In addition, the components are large in size, occupy a lot of space, have a small circuit board area, and are not very versatile.

Method used

An electronic blood pressure meter assembly is designed to pre-fix the air pump by providing a plurality of first elastic arms in the thickness direction of the support body to prevent the air pump from falling off, and to fix the battery by setting the second elastic arms to increase the area of ​​the circuit substrate to set up an extended interface.

Benefits of technology

The fully automated production of components for electronic blood pressure meter is realized, reducing production costs, and improving the versatility and space efficiency of components.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model provides an assembly for an electronic sphygmomanometer and the electronic sphygmomanometer, the assembly for the electronic sphygmomanometer comprises a support and an air pump held by the support, and the support comprises a support main body; the first elastic arms are used for fixing the air pump, the first ends of the first elastic arms are arranged on the support body, and the second ends of the first elastic arms are suspended; the first elastic arms are arranged on one side of the support body in the width direction, and the first elastic arms are arranged on the two sides of the support body in the thickness direction in a suspended mode. Therefore, the elastic arms for fixing the air pump are arranged on the two sides of the support body in the thickness direction, the air pump can be pre-fixed, the air pump is prevented from falling off in the process that the assembly is moved by an automatic instrument, full-automatic production of the assembly for the electronic sphygmomanometer is achieved, and the production cost is reduced.
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Description

Technical Field

[0001] This application relates to the technical field of sphygmomanometers, and in particular, to a component for an electronic sphygmomanometer and an electronic sphygmomanometer. Background Art

[0002] As people pay more and more attention to their own health conditions, the demand for measuring blood pressure is increasing, and electronic sphygmomanometers are thus popularized. Various manufacturers have produced electronic sphygmomanometers that meet different requirements. For example, electronic sphygmomanometers with a memory function, electronic sphygmomanometers with a Bluetooth function, electronic sphygmomanometers with a charging function, etc.

[0003] These electronic sphygmomanometers of different models usually include some common components. For example, an air pump, a valve, a catheter, a circuit board, a battery, etc. For these common components, generally, these common components can be formed into modular components and used as common components regardless of the model.

[0004] It should be noted that the above introduction of the technical background is only for the convenience of clearly and completely explaining the technical solutions of this application and facilitating the understanding of those skilled in the art. It cannot be considered that the above technical solutions are well-known to those skilled in the art just because these solutions are described in the background art part of this application. Summary of the Utility Model

[0005] The inventor found that the air pump in the existing modular component cannot be fixed in advance. During the process of moving the modular component, it is necessary to manually hold the air pump, and full-automatic production cannot be achieved, which is not conducive to reducing production costs. In addition, the existing modular component has a large volume, occupying a large space inside the main body housing of the electronic sphygmomanometer. Moreover, the area of the circuit board is small, which is not conducive to setting up expansion interfaces and has poor versatility.

[0006] In order to solve at least one of the above problems or other similar problems, the embodiments of this application provide a component for an electronic sphygmomanometer and an electronic sphygmomanometer to achieve full-automatic production of the component for an electronic sphygmomanometer and reduce production costs.

[0007] The first aspect of the embodiments of this application provides a component for an electronic sphygmomanometer. The component for an electronic sphygmomanometer includes a bracket and an air pump held by the bracket. The bracket includes:

[0008] A bracket main body; and

[0009] A plurality of first elastic arms for fixing the air pump

[0010] The first ends of the multiple first elastic arms are arranged on the bracket main body, the second ends of the multiple first elastic arms are suspended, the multiple first elastic arms are arranged on one side in the width direction of the bracket main body, and the multiple first elastic arms are suspended on both sides in the thickness direction of the bracket main body.

[0011] In addition, optionally, a third positioning portion for defining the installation direction of the air pump is provided on the surface of at least one of the multiple first elastic arms facing the air pump.

[0012] In addition, optionally, an installation and fixing portion for fixing at least one first elastic arm to the main body housing of the electronic sphygmomanometer is provided at the end of at least one first elastic arm arranged on the upper side in the thickness direction of the bracket main body.

[0013] In addition, optionally, the component for the electronic sphygmomanometer further includes a valve component held by the bracket, and the bracket further includes at least one limiting portion for installing the valve component arranged on the upper side in the thickness direction of the bracket main body.

[0014] In addition, optionally, the component for the electronic sphygmomanometer further includes a tube component held by the bracket, and the bracket further includes at least one first positioning portion for installing the tube component arranged on the upper side in the thickness direction of the bracket main body.

[0015] In addition, optionally, the component for the electronic sphygmomanometer further includes a main substrate held by the bracket, and the bracket further includes at least one second positioning portion for installing the main substrate arranged on the upper side in the thickness direction of the bracket main body.

[0016] In addition, optionally, the tube component includes a first plug-in portion for installing a main sensor on the main substrate, a second plug-in portion connected to the air outlet of the air pump, and a third plug-in portion connected to the air inlet of the valve component. The first plug-in portion, the second plug-in portion, and the third plug-in portion are in gas communication, and the tube component is limited and fixed by the main sensor, the air outlet of the air pump, the air inlet of the valve component, and the at least one first positioning portion.

[0017] In addition, optionally, the main substrate extends along the width direction and the length direction of the bracket main body and is at least located above the air pump.

[0018] In addition, optionally, the component for the electronic sphygmomanometer further includes a battery held by the bracket, and the bracket further includes at least one second elastic arm for fixing the battery on the bracket main body.

[0019] Alternatively, optionally, the at least one second elastic arm and the plurality of first elastic arms are respectively located on two sides in the width direction of the bracket body, the air pump is fixed to one side in the thickness direction of the bracket body by the plurality of first elastic arms along the length direction of the bracket body, and the battery is fixed to the other side in the thickness direction of the bracket body by the at least one second elastic arm along the length direction of the bracket body.

[0020] Alternatively, optionally, the at least one second elastic arm includes an elastically deformable wavy arm formed on the bracket body; and / or

[0021] The at least one second elastic arm includes two or more cantilever arms formed on the bracket body and elastically deformable, and the two or more cantilever arms are arranged on two sides in the width direction of the bracket body.

[0022] Alternatively, optionally, the bracket further includes a battery compartment for accommodating the battery on the bracket body, and the depth direction of the battery compartment is parallel to the thickness direction of the bracket body.

[0023] The wavy second elastic arm is arranged at the bottom of the battery compartment, and / or

[0024] The cantilever-shaped second elastic arm is arranged at the edge of the opening in the depth direction of the battery compartment.

[0025] Alternatively, optionally, at least one stopper is further arranged at the edge of the opening in the depth direction of the battery compartment, and the at least one stopper extends along the width direction of the battery compartment.

[0026] Alternatively, optionally, a buckle for fixing the battery is arranged on one side in the length direction of the battery compartment, and the buckle extends to the other side in the length direction of the battery compartment and is elastic in the thickness direction of the bracket body.

[0027] Alternatively, optionally, the wiring terminals of the air pump and / or the valve component extend towards the upper side in the thickness direction of the bracket body and are welded and fixed to the welding opening of the main substrate; and / or,

[0028] The component for the electronic sphygmomanometer further includes a side substrate vertically fixed to the lower side of the main substrate, and the wiring terminals of the air pump and / or the valve component extend towards one side in the length direction of the bracket body and are welded and fixed to the welding holes of the side substrate.

[0029] Alternatively, optionally, the center of gravity of the pipe component is offset relative to the geometric center of the pipe component.

[0030] A second aspect of the embodiments of the present application provides an electronic sphygmomanometer, and the electronic sphygmomanometer includes the components for the electronic sphygmomanometer described in the embodiments of the first aspect.

[0031] One of the beneficial effects of the embodiments of the present application is that: for the components for the electronic sphygmomanometer according to the embodiments of the present application, by arranging the elastic arms for fixing the air pump on both sides in the thickness direction of the bracket main body, the air pump can be pre-fixed, avoiding the air pump from falling off during the process of moving the components by automated instruments, thereby realizing the full-automatic production of the components for the electronic sphygmomanometer and reducing the production cost.

[0032] Referring to the following description and the accompanying drawings, specific embodiments of the present application are disclosed in detail, indicating the ways in which the principles of the present application can be adopted. It should be understood that the embodiments of the present application are not limited in scope thereby. Within the scope of the terms of the appended claims, the embodiments of the present application include many changes, modifications, and equivalents.

[0033] Features described and / or illustrated for one embodiment can be used in the same or similar way in one or more other embodiments, combined with the features in other embodiments, or replace the features in other embodiments.

[0034] It should be emphasized that the term "comprising / including" when used herein refers to the presence of features, whole things, steps, or components, but does not exclude the presence or addition of one or more other features, whole things, steps, or components. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] The elements and features described in one drawing or one embodiment of the embodiments of the present application can be combined with the elements and features shown in one or more other drawings or embodiments. In addition, in the drawings, like reference numerals denote corresponding parts in several drawings and can be used to indicate corresponding parts used in more than one embodiment.

[0036] The included drawings are used to provide a further understanding of the embodiments of the present application, which form a part of the specification, are used to illustrate the embodiments of the present application, and are used together with the written description to explain the principles of the present application. Obviously, the drawings in the following description are only some embodiments of the present application, and for those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0037] In the drawings:

[0038] Figure 1 is an exploded view of the components for the electronic sphygmomanometer of the embodiments of the present application;

[0039] Figure 2 is a perspective view of the bracket main body of the embodiments of the present application observed from one direction;

[0040] Figure 3 is a perspective view of the stent body according to an embodiment of the present application as viewed from another direction;

[0041] Figure 4 is a schematic diagram of a modified example of the stent according to an embodiment of the present application;

[0042] Figure 5 is by using Figure 3 a schematic diagram of installing a battery using the stent shown;

[0043] Figure 6 is by using Figure 4 a schematic diagram of installing a battery using the stent shown;

[0044] Figure 7 is a schematic diagram of an embodiment of electrically connecting an air pump and a valve component to a main substrate according to an embodiment of the present application;

[0045] Figure 8 is a schematic diagram of another embodiment of electrically connecting an air pump and a valve component to a main substrate according to an embodiment of the present application;

[0046] Figure 9 is a schematic diagram of a pipe component according to an embodiment of the present application;

[0047] Figure 10 is a schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application;

[0048] Figure 11 is another schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application;

[0049] Figure 12 is another schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application;

[0050] Figure 13 is another schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application;

[0051] Figure 14 is another schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application;

[0052] Figure 15 is another schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer according to an embodiment of the present application.

[0053] Marking name

[0054] 1: Components for an electronic sphygmomanometer;

[0055] 10, 10’: Bracket;

[0056] 110: Bracket body;

[0057] 120, 120-1, 120-2: First elastic arm;

[0058] 121: Third positioning part;

[0059] 122: First installation and fixing part;

[0060] 130, 130’: Second elastic arm;

[0061] 140: Limiting part;

[0062] 150: First positioning part;

[0063] 160: Second positioning part;

[0064] 170, 170’: Battery compartment;

[0065] 180: Buckle;

[0066] 190: Stopper;

[0067] 20: Air pump;

[0068] 201: Groove;

[0069] 210: Module installation claw;

[0070] 220: Second installation and fixing part;

[0071] 230: Communication interface support part;

[0072] 30: Valve component;

[0073] 40: Pipe component;

[0074] 410: First insertion part;

[0075] 420: Second insertion part;

[0076] 430: Third insertion part;

[0077] 440: External air path connection part;

[0078] 50: Main substrate;

[0079] 501: Limiting hole;

[0080] 60: Battery;

[0081] 70: Side substrate. Detailed implementation manners

[0082] Referring to the accompanying drawings, the foregoing and other features of the present application will become apparent from the following description. In the specification and drawings, specific embodiments of the present application are specifically disclosed, which show some embodiments in which the principles of the present application can be adopted. It should be understood that the present application is not limited to the described embodiments. On the contrary, the present application includes all modifications, variations, and equivalents falling within the scope of the appended claims.

[0083] In the embodiments of the present application, terms such as "first" and "second" are used to distinguish different elements in terms of appellation, but do not indicate the spatial arrangement or time sequence of these elements, and these elements should not be limited by these terms. The term "and / or" includes any one and all combinations of one or more of the associated listed terms. Terms such as "comprising", "including", "having", etc. mean the presence of the stated features, elements, components, or assemblies, but do not exclude the presence or addition of one or more other features, elements, components, or assemblies.

[0084] In the embodiments of the present application, the singular forms "a", "the", etc. may include the plural forms, and should be broadly understood as "a kind of" or "a class of" rather than being limited to the meaning of "one"; in addition, the term "the" should be understood to include both the singular form and the plural form unless the context clearly indicates otherwise. In addition, the term "according to" should be understood as "at least partially according to...", and the term "based on" should be understood as "at least partially based on...", unless the context clearly indicates otherwise.

[0085] The embodiments of the present application will be described below with reference to the accompanying drawings.

[0086] The embodiments of the present application provide a component for an electronic sphygmomanometer. Figure 1 It is an exploded view of the component for an electronic sphygmomanometer according to the embodiments of the present application.

[0087] As Figure 1 shown, the component 1 for an electronic sphygmomanometer may include a bracket 10 and a gas pump 20, a valve component 30, a tube component 40, a main substrate 50, and a battery 60 held by the bracket 10. The gas pump 20 has, for example, a pump air outlet for introducing air into a cuff ( Figure 1 not shown in the figure); the valve component 30 is, for example, a solenoid valve and has a valve air switch port for controlling the on / off of the air path of the entire system; the battery 60 may be a rechargeable battery, and its shape may be a cuboid or a cylinder. The embodiments of the gas pump 20, the valve component 30, and the battery 60 may refer to related technologies, and the embodiments of the present application do not limit them.

[0088] Figure 2 It is a perspective view of the bracket body according to the embodiments of the present application observed from one direction. Figure 3 It is a perspective view of the bracket body according to the embodiments of the present application observed from another direction.

[0089] As Figure 2 shown, the bracket 10 may include a bracket body 110, a plurality of first elastic arms 120, at least one limiting portion 140, at least one first positioning portion 150, and at least one second positioning portion 160. As Figure 3 shown, the bracket 10 may further include at least one second elastic arm 130. For example, the plurality of first elastic arms 120 (such as Figure 2 the 3 first elastic arms 120 shown) and at least one second elastic arm 130 (such as Figure 3 the 2 second elastic arms 130 shown) are respectively located on both sides in the width direction WW of the bracket body 110, and at least one limiting portion 140 (such as Figure 2 the 3 limiting portions 140 shown), at least one first positioning portion 150 (such as Figure 2 the 2 first positioning portions 150 shown) and at least one second positioning portion 160 (such as Figure 2 the 3 second positioning portions 160 shown) are formed on the upper side in the thickness direction HH of the bracket body 110. Figure 2 And Figure 3 the number of each component shown in

[0090] is only an example, and the embodiments of the present application do not limit this.

[0091] In the embodiments of the present application, the plurality of first elastic arms 120 are used to fix the air pump 20. For example, the air pump 20 is fixed by at least one first elastic arm 120 along the length direction LL of the bracket body 110 and is located on the upper side in the thickness direction HH of the bracket body 110. Figure 2 And Figure 3 shown, one end (the first end) of the plurality of first elastic arms 120 is arranged on the bracket body 110, and the other end (the second end) is suspended. The plurality of first elastic arms 120 are arranged on one side in the width direction of the bracket body 110 and the plurality of first elastic arms 120 are suspended on both sides in the thickness direction HH of the bracket body 110. For example, the plurality of first elastic arms 120 include at least one first elastic arm 120-1 arranged on the upper side in the thickness direction HH of the bracket body 110 and at least one first elastic arm 120-2 arranged on the lower side in the thickness direction of the bracket body 110.

[0092] Thus, the air pump 20 is pre-fixed by the plurality of first elastic arms 120 arranged on both sides in the thickness direction HH of the bracket body 110, avoiding the air pump from falling off during the process of moving the components by automated instruments, thereby realizing the full automation production of the components for the electronic sphygmomanometer and reducing the production cost.

[0093] In some embodiments, at the end of at least one first elastic arm 120-1 disposed on the upper side in the thickness direction HH of the bracket main body 110, there is a first mounting and fixing portion 122 for fixing the first elastic arm 120-1 to the main body housing of the electronic sphygmomanometer. The first mounting and fixing portion 122 is, for example, a threaded hole, and the second end of the first elastic arm 120-1 is fixed to the main body housing of the electronic sphygmomanometer by using a bolt. Thus, the air pump 20 is stably fixed through the first mounting and fixing portion 122, preventing the elastic arm from deforming and causing the air pump to displace when the main body drops or is impacted.

[0094] In some embodiments, at least one second elastic arm 130 is used to fix the battery 60. For example, the battery 60 is fixed by at least one second elastic arm 130 along the length direction LL of the bracket main body 110 and is located on the lower side in the thickness direction HH of the bracket main body 110; at least one limiting portion 140 is used to mount the valve member 30, at least one first positioning portion 150 is used to mount the pipe member 40, and at least one second positioning portion 160 is used to mount the main substrate 50. The main substrate 50 extends along the width direction WW and the length direction LL of the bracket main body 110 and is at least located above the air pump 20.

[0095] Thus, by disposing the main substrate 50 above the air pump 20, the size of the circuit board can be increased, so that a variety of expansion interfaces can be provided on the circuit board, improving the versatility of the circuit board.

[0096] In addition, in the embodiments of the present application, the air pump 20 and the battery 60 are respectively located on both sides in the thickness direction HH of the bracket main body 110. For the convenience of description, the direction from the battery 60 to the air pump 20 in the thickness direction HH is called "up", and the direction from the air pump 20 to the battery 60 in the thickness direction HH is called "down". It should be noted that the "up" and "down" described in the embodiments of the present application are used to distinguish different elements in terms of appellation, but do not represent the spatial arrangement or time sequence of these elements, and these elements should not be limited by these terms.

[0097] In at least one embodiment, as Figure 3 shown, on the surface of at least one first elastic arm 120 facing the air pump 20 ( Figure 3 not marked in the figure), there is a third positioning portion 121 for defining the installation direction of the air pump 20. For example, the third positioning portion 121 is a protrusion formed on this surface. The air pump 20, for example, includes a corresponding groove 201 (as Figure 1 shown). When installing the air pump 20, since the third positioning portion 121 can only move from one side of the groove 201 (such as Figure 1 the left side shown in the drawing of the figure) to the other side (such as Figure 1On the right side shown in the drawing) slides and is received in the groove 201. Otherwise, the air pump 20 cannot be installed. Thus, the installation direction of the air pump 20 is defined by the third positioning portion 121 to prevent incorrect installation. Additionally, the third positioning portion 121 can also be a groove, and the air pump 20 can have a protrusion corresponding to the groove, which can also achieve the same effect. Additionally, it can also be other types of positioning structures, as long as the same effect can be achieved. The embodiments of the present application do not limit this.

[0098] In at least one embodiment, as Figure 3 shown, at least one second elastic arm 130 includes an elastically deformable wavy arm formed on the bracket body 110. Thus, an expansion space is reserved for the battery by the elastically deformable wavy arm. The mechanical structure effectively buffers the deformation of the battery, which can save other buffer components and assembly man-hours and reduce production costs.

[0099] Optionally, as Figure 3 shown, the bracket body 110 is further provided with a module installation claw 210 and a second installation and fixing portion 220. The second installation and fixing portion 220 is, for example, a threaded hole provided diagonally with respect to the bracket body 110. When installing the component 1 for an electronic sphygmomanometer into the main body housing of the electronic sphygmomanometer, pre-installation can be achieved through the module installation claw 210, and diagonal stable installation can be achieved through the second installation and fixing portion 220 to ensure its installation reliability.

[0100] Figure 4 is a schematic diagram of a deformation example of the bracket in the embodiment of the present application.

[0101] Figure 4 One difference between the bracket 10' shown and the bracket 10 lies in the structure of the second elastic arm. In at least one embodiment, as Figure 4 shown, at least one second elastic arm 130' includes two or more cantilever arms formed on the bracket body 110 that are elastically deformable, and the two or more cantilever arms are arranged on both sides in the width direction WW of the bracket body 110. Thus, an expansion space is also reserved for the battery by the two or more elastically deformable cantilever arms.

[0102] Additionally, optionally, as Figure 3 shown, the bracket 10 further includes a battery compartment 170 for accommodating the battery provided on the bracket body 110. The depth direction of the battery compartment 170 is, for example, parallel to the thickness direction HH of the bracket body 110, and at least one second elastic arm 130 (such as a wavy elastic arm) is located at the bottom of the battery compartment 170. Additionally, at least one second elastic arm 130 can also be provided on one side (the first side) in the length direction of the battery compartment 170.

[0103] Additionally, as Figure 3As shown in the figure, on the other side (the second side) in the length direction of the battery compartment 170, there is a buckle 180 for fixing the battery. The buckle 180 extends towards the first side along the length direction of the battery compartment 170. Moreover, the buckle 180 has elasticity in the thickness direction of the bracket main body 110. Thus, the battery can be fixed in the length direction by the buckle 180 and the side wall of the first side of the battery compartment 170.

[0104] In addition, as Figure 3 shown, the battery compartment 170 is generally rectangular, and its length direction is parallel to the length direction LL of the bracket main body 110. Thus, the volume of the bracket can be reduced, and then the volume of the component can be reduced. However, the embodiments of the present application are not limited thereto. The shape of the battery compartment 170 can be set according to the size of the battery. In addition, when the battery compartment 170 is square, any side can be selected as the length direction of the battery compartment 170.

[0105] Or, as Figure 4 shown, the bracket 10' can also include a battery compartment 170'. At least one second elastic arm 130' (such as a cantilever) can be formed on the top of the battery compartment 170'. It can also be said that at least one second elastic arm 130' is arranged at the edge of the opening in the depth direction of the battery compartment 170'.

[0106] Figure 5 is a schematic diagram of installing a battery using the Figure 3 shown bracket, Figure 6 is a schematic diagram of installing a battery using the Figure 4 shown bracket.

[0107] As Figure 5 shown, the battery 60 can be a square battery. During installation, for example, the battery 60 is slid from the second side of the battery compartment 170 to the first side through an automated device. And during the sliding process of the battery 60, the buckle 180 is pressed to make the buckle 180 elastically deformed. And after the battery 60 falls into the battery compartment 170, the buckle 180 returns to its original state under the action of elastic force and clamps the edge of the battery 60. Thus, the battery 60 is fixed in the length direction.

[0108] In addition, as Figure 3 shown, at least one second elastic arm 130 is arranged at the bottom of the battery compartment 170. At least one stopper 190 (such as Figure 5 shown, the stopper 190 extends along the width direction of the battery compartment 170) can also be arranged at the top of the battery compartment 170 (that is, the edge of the opening of the battery compartment 170). Thus, the battery 60 is further fixed by the second elastic arm 130 and the stopper 190 to prevent the battery 60 from falling off during the assembly process. In addition, the stopper 190 can be non-elastic or can be an elastically deformable cantilever structure. The embodiments of the present application do not limit this.

[0109] As Figure 6 shown, the battery 60 can also be a cylindrical battery. When installing, for example, the battery 60 is screwed into the battery compartment 170' between two cantilever arms (i.e., the second elastic arm 130'), and the two second elastic arms 130' fix the battery 60 in the battery compartment 170'. Moreover, since the second elastic arm 130' is a cantilever arm, an expansion space can be reserved for the battery. In addition, the embodiment of the present application is not limited to this. When the shape of the battery 60 is square, it can also be fixed by two second elastic arms 130'.

[0110] The structure of the battery compartment in the embodiment of the present application has been described above by taking a square battery and a cylindrical battery as examples respectively, but the embodiment of the present application does not limit this. The structure of the battery compartment can be appropriately deformed according to the shape of the battery, and the specific implementation manner can refer to the related art.

[0111] In at least one embodiment, as Figure 2 shown, at least one second positioning portion 160 is a limit post with an end portion that can be deformed by melting and welding. For example, the second positioning portion 160 can be a limit post formed of a heat-meltable resin material. A limit hole 501 (as Figure 1 shown) is provided on the main substrate 50, and the limit hole 501 can be penetrated and inserted by the limit post (the second positioning portion 160). For example, when installing the main substrate 50, the limit hole 501 of the main substrate 50 is passed through by the limit post (the second positioning portion 160) through an automated device, and the head of the limit post is heated by a heat-melting device to be deformed and then cooled and solidified, so that the main substrate 50 is fixed.

[0112] In addition,[[]] Figure 2 shows three second positioning portions 160. Among them, two second positioning portions 160 extend and protrude from the surface of the bracket main body 110, and one second positioning portion 160 extends and protrudes from the surface of the first elastic arm 120. The extension lengths of the three second positioning portions 160 are not all equal. However, the embodiment of the present application does not limit this, and the position and extension length of the second positioning portion 160 can be set according to the actual situation.

[0113] Figure 7 is a schematic diagram of an implementation manner in which the air pump and valve component of the embodiment of the present application are electrically connected to the main substrate, Figure 8 is a schematic diagram of another implementation manner in which the air pump and valve component of the embodiment of the present application are electrically connected to the main substrate.

[0114] In the embodiment of the present application, the air pump 20 and the valve component 30 can be connected to the main substrate 50 by means of extension terminals, adding side substrates, etc. to achieve fully automated assembly. Thereby, the complex wire arrangement process is reduced, the production efficiency is improved, and the production cost is further reduced.

[0115] For example, the terminal blocks of the air pump 20 and the valve component 30 extend upward and are fixedly welded to the welding openings of the main substrate 50. The "welding openings" described in the embodiments of the present application can be welding holes or semi-closed pads. For example, as Figure 7 shown, the terminal blocks of the air pump 20 and the valve component 30 extend upward and are fixedly welded to the welding holes of the main substrate 50. Alternatively, semi-closed pads with openings facing the terminal blocks can be provided at the positions of the main substrate 50 corresponding to the terminal blocks of the air pump 20 and the valve component 30, thereby facilitating the alignment of the terminal blocks and the pads during fully automated operation.

[0116] For another example, as Figure 8 shown, the component 1 for an electronic sphygmomanometer further includes a side substrate 70 vertically fixed to the lower side of the main substrate 50. The terminal blocks of the air pump 20 and the valve component 30 extend toward one side in the length direction LL of the bracket body 110 and are fixedly welded to the welding holes of the side substrate 70.

[0117] In addition, these two methods can also be combined. For example, when the terminal blocks of the air pump 20 and / or the valve component 30 are not suitable for extension, the side substrate can be used to electrically connect to the main substrate 50; when the space is limited, extended terminals can also be used to electrically connect the air pump 20 and / or the valve component 30 to the main substrate 50. The embodiments of the present application do not limit this and can be set accordingly according to actual needs.

[0118] In addition, in order to improve the versatility of the component for an electronic sphygmomanometer, various types of terminal blocks and interfaces or positions for reserving and arranging these terminal blocks and interfaces can be reserved on the circuit board. For example, welding positions for LCD connection lines, welding positions for button substrates, charging battery plug-in terminals, communication interfaces, etc. are reserved on the main substrate 50 (and / or the side substrate 70). In addition, corresponding support structures can also be provided on the bracket body 110 according to the terminal blocks and interfaces reserved on the circuit board. For example, as Figure 2 shown, a communication interface support portion 230 can be provided on the bracket body 110 for supporting an external communication interface to access the main substrate 50, such as for debugging the main substrate 50, etc.

[0119] Figure 9 is a schematic diagram of the pipe component in the embodiments of the present application.

[0120] In at least one embodiment, as Figure 9As shown, the pipe component 40 includes a first plugging portion 410, a second plugging portion 420, and a third plugging portion 430 that are in gas communication. The first plugging portion 410 is used to mount the main sensor provided on the main substrate 50. For example, the main sensor is inserted into the first plugging portion 410; the second plugging portion 420 is used to connect to the air outlet of the air pump 20; the third plugging portion 430 is used to connect to the air inlet of the valve component 30. When installing the pipe component 40, the pipe component 40 is placed between at least one first positioning portion 150 (as shown in Figure 2 ), and the second plugging portion 420 and the third plugging portion 430 are plugged into the corresponding air ports. After the installation of the main substrate 50 is completed, the pipe component 40 is limited and fixed by the main sensor, the air outlet of the air pump 20, the air inlet of the valve component 30, and at least one first positioning portion 150. Thus, all components are connected through one pipe component 40, avoiding problems such as multiple air guide pipes, complex connections, and easy air leakage. Additionally, the pipe component 40 can be, for example, a rubber tube.

[0121] In addition, as shown in Figure 9 , the pipe component 40 further includes an external air path connection portion 440, and the external air path connection portion 440 can be connected to the cuff through a gas pipeline, for example.

[0122] Optionally, the center of gravity of the pipe component 40 is offset relative to the geometric center of the pipe component 40. Thus, it is convenient for the vibrating feeder to automatically screen the direction of the pipe component, which is beneficial to realizing fully automated production. Additionally, the shape of the pipe component 40 in the embodiments of the present application is not limited to the shape shown in Figure 9 . The shape of the pipe component 40 can be set accordingly according to the positions of the main sensor, the air outlet of the air pump 20, and the air inlet of the valve component 30, and the embodiments of the present application do not limit this.

[0123] Figures 10 to 15 FIG. is a schematic diagram for explaining the assembly process of the components for an electronic sphygmomanometer in the embodiments of the present application. The assembly process of the components for an electronic sphygmomanometer will be described below in conjunction with Figures 10 to 15 . Those skilled in the art should understand that the following described assembly process is to make the structure of the components for an electronic sphygmomanometer in the embodiments of the present application clearer and should not be construed as a limitation on the implementation manner of the components for an electronic sphygmomanometer in the embodiments of the present application.

[0124] As shown in Figure 10 , the air pump 20 is installed within at least one first elastic arm 120; as shown in Figure 11 , the valve component 30 is installed by using at least one limiting portion 140; as shown in Figure 12 , the pipe component 40 is installed by using at least one first positioning portion 150, as shown in Figure 13 , the main substrate 50 is installed on at least one second positioning portion 160, and at least one second positioning portion 160 is welded; asFigure 14 As shown, the terminals of the air pump 20 and the valve component 30 are welded to the main substrate 50; as Figure 15 shown, the battery 60 is installed in the battery compartment 170. The above assembly process can be completed based on automated equipment to achieve fully automated assembly.

[0125] For the component for an electronic sphygmomanometer according to an embodiment of the present application, by arranging the main substrate on the upper side of the air pump, the size of the circuit board is increased, and the versatility of the circuit board is improved.

[0126] The embodiment of the present application also provides an electronic sphygmomanometer, which includes the component for an electronic sphygmomanometer described in any of the foregoing embodiments. Since the structure of the component for an electronic sphygmomanometer has been described in detail above, its content is incorporated herein and will not be described herein.

[0127] In addition, the electronic sphygmomanometer according to the embodiment of the present application may further include a cuff, a display screen, etc. The specific implementation manners thereof may refer to the related art, and the embodiment of the present application does not limit this.

[0128] It should be noted that only the components or modules related to the present application are described above, but the present application is not limited thereto. The component for an electronic sphygmomanometer and the electronic sphygmomanometer according to the embodiment of the present application may further include other components or modules. For the specific content of these components or modules, reference may be made to the related art.

Claims

1. An electronic sphygmomanometer assembly, comprising a bracket and an air pump held by the bracket, characterized in that: The support comprises: a support body; and A plurality of first elastic arms for fixing the air pump, The first ends of the multiple first elastic arms are arranged on the bracket body, the second ends of the multiple first elastic arms are suspended, the multiple first elastic arms are arranged on one side in the width direction of the bracket body, and the multiple first elastic arms are suspended on both sides in the thickness direction of the bracket body.

2. The electronic sphygmomanometer assembly according to claim 1, characterized in that: A third positioning portion for defining an installation direction of the air pump is provided on a surface of at least one first elastic arm of the plurality of first elastic arms that faces the air pump.

3. The electronic sphygmomanometer assembly according to claim 1, characterized in that: An end portion of at least one first elastic arm disposed on the upper side of the bracket body in the thickness direction is provided with a mounting and fixing portion for fixing the at least one first elastic arm to a main body housing of the electronic blood pressure meter.

4. The electronic sphygmomanometer assembly according to claim 1, characterized in that: The electronic blood pressure meter assembly further includes a valve component held by the bracket, and the bracket further includes at least one stopper disposed on an upper side of the bracket body in a thickness direction and on which the valve component is mounted.

5. The electronic sphygmomanometer assembly according to claim 4, characterized in that: The electronic blood pressure meter assembly further includes a tube component held by the bracket, and the bracket further includes at least one first positioning portion provided on an upper side of the bracket body in a thickness direction and on which the tube component is mounted.

6. The electronic sphygmomanometer assembly according to claim 5, characterized in that: The electronic blood pressure meter assembly further includes a main substrate held by the bracket, and the bracket further includes at least one second positioning portion for mounting the main substrate, which is provided on an upper side of the bracket body in a thickness direction.

7. The electronic sphygmomanometer assembly according to claim 6, characterized in that: The tube component includes a first plug-in portion of a main sensor installed on the main substrate, a second plug-in portion connected to the air outlet of the air pump, and a third plug-in portion connected to the air inlet of the valve component. The first plug-in portion, the second plug-in portion, and the third plug-in portion are air-connected, and the tube component is limited and fixed by the main sensor, the air outlet of the air pump, the air inlet of the valve component and the at least one first positioning portion.

8. The electronic sphygmomanometer assembly according to claim 6, characterized in that: The main substrate extends along the width direction and the length direction of the bracket body and is at least located on the upper side of the air pump.

9. The electronic sphygmomanometer assembly according to claim 1, characterized in that: The electronic blood pressure meter component further includes a battery held by the bracket, and the bracket further includes at least one second elastic arm disposed on the bracket body for fixing the battery.

10. The electronic sphygmomanometer assembly according to claim 9, characterized in that: The at least one second elastic arm and the multiple first elastic arms are respectively located on both sides of the bracket body in the width direction, the air pump is fixed to one side of the bracket body in the thickness direction along the length direction of the bracket body by the multiple first elastic arms, and the battery is fixed to the other side of the bracket body in the thickness direction along the length direction of the bracket body by the at least one second elastic arm.

11. The electronic sphygmomanometer assembly according to claim 9, characterized in that: The at least one second elastic arm comprises an elastically deformable wave-shaped arm formed on the bracket body; and / or The at least one second elastic arm includes more than two elastically deformable cantilever arms formed on the bracket body, and the more than two cantilever arms are arranged on both sides of the bracket body in a width direction.

12. The electronic sphygmomanometer assembly according to claim 11, characterized in that: The bracket further comprises a battery compartment disposed on the bracket body for accommodating the battery, wherein the depth direction of the battery compartment is parallel to the thickness direction of the bracket body. The wavy second elastic arm is arranged at the bottom of the battery compartment, and / or The cantilevered second elastic arm is arranged at the edge of the opening in the depth direction of the battery compartment.

13. The electronic sphygmomanometer assembly according to claim 12, characterized in that: At least one stopper is also provided at the edge of the opening in the depth direction of the battery compartment, and the at least one stopper extends along the width direction of the battery compartment.

14. The electronic sphygmomanometer assembly according to claim 12, characterized in that: A buckle for fixing the battery is provided on one side of the battery compartment in the length direction, and the buckle extends to the other side of the battery compartment in the length direction and has elasticity in the thickness direction of the bracket body.

15. The electronic sphygmomanometer assembly according to claim 4, characterized in that: The connecting terminals of the air pump and / or the valve component extend toward the upper side in the thickness direction of the bracket body and are welded and fixed to the welding opening of the main substrate; and / or, The electronic blood pressure meter component also includes a side substrate vertically fixed to the lower side of the main substrate, and the connection terminals of the air pump and / or the valve component extend toward one side in the length direction of the bracket body and are welded and fixed to the welding holes of the side substrate.

16. The electronic sphygmomanometer assembly according to claim 5, characterized in that: The center of gravity of the tube member is offset relative to the geometric center of the tube member.

17. An electronic blood pressure monitor, characterized in that: The electronic sphygmomanometer comprises the electronic sphygmomanometer assembly according to any one of claims 1 to 16.