Medical flame-retardant ward equipment belt

By installing ventilation panel assemblies and dust screens in the ward equipment belts, air circulation is enhanced, the problem of oxygen leakage caused by aging of the sealing ring is solved, the fire risk is reduced, and safety and economy are improved.

CN223323713UActive Publication Date: 2025-09-12ZHONGSHAN HOSPITAL FUDAN UNIV
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Patent Information

Application Number
CN202421962204.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-09-12
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

The sealing rings of the oxygen supply terminal sockets of existing ward equipment are prone to aging, leading to oxygen leakage, posing a fire safety hazard. The risk is especially exacerbated when open flames are generated when plugging and unplugging the sockets.

Method used

A flame-retardant medical ward equipment belt is designed. A ventilation panel assembly and a dust screen are installed in the belt body to enhance air circulation and prevent oxygen leakage. Pipes for the oxygen supply terminal socket and power socket are arranged in the cavity to avoid contact, and reinforcing ribs are used to improve structural stability.

Benefits of technology

It effectively reduces the risk of fire caused by oxygen leakage, improves the safety of ward use, and is low-cost and easy to maintain, making it suitable for both new and old ward environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The medical flame-retardant ward equipment belt comprises a belt body and two ventilation plate assemblies, the belt body is provided with a cavity, the cavity penetrates through the left end face and the right end face of the belt body, and the surface of the belt body is provided with an oxygen supply terminal socket, a power socket and a pipeline of the oxygen supply terminal socket. A cable of a power socket is arranged in the cavity; the two ventilation plate assemblies are detachably arranged on the left end face and the right end face of the belt body, each ventilation plate assembly comprises a dustproof net and a cover plate, the cover plates are connected to the peripheries of the dustproof nets in a clamped mode, and hole parts for exposing net bodies of the dustproof nets are formed in the middles of the cover plates, so that air can flow in a cavity of the belt body; sharp increase of oxygen content caused by oxygen leakage in the cavity is prevented, and fire disasters caused by oxygen serving as combustion-supporting gas are avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of ward equipment belts, in particular to a medical flame-retardant ward equipment belt. Background Art

[0002] Hospital ward equipment straps, also known as medical equipment straps, medical straps, and oxygen supply straps, are primarily used for mounting and connecting medical equipment and auxiliary devices. These strips hold power switches, sockets, gas terminals, lighting fixtures, and other equipment. They are typically installed on the wall above hospital beds but can also be found in ICUs, emergency rooms, operating rooms, nursing homes, and other locations.

[0003] For example, publication number CN216439515U discloses a wall structure for a hospital ward with a reserved oxygen supply mechanism. The medical equipment is equipped with an oxygen supply terminal socket that is convenient for docking with the oxygen pipeline. When in use, the interface of the humidifier bottle is connected to the oxygen supply terminal socket, and the user inhales oxygen through the oxygen inhalation tube connected to the output end of the humidifier bottle.

[0004] At present, the sealing performance of the oxygen supply terminal socket is improved by installing sealing rings, etc. However, with long-term use, the sealing rings are prone to aging, which in turn causes oxygen to leak inside the ward equipment. At the same time, as the internal cables of the ward equipment belt age, once an open flame is generated when the socket is plugged in or unplugged, sparks can easily cause a fire with the help of oxygen, posing a great safety hazard. Utility Model Content

[0005] The purpose of the utility model is to address the deficiencies in the prior art and provide a medical flame-retardant ward equipment belt, which reduces the risk of fire caused by oxygen leakage by improving the structural design.

[0006] In order to achieve the above purpose, the present invention provides the following technical solutions:

[0007] A medical flame-retardant ward equipment belt, comprising:

[0008] The belt body has a cavity that passes through the left and right end surfaces of the belt body. The surface of the belt body is provided with an oxygen supply terminal socket and a power socket. The pipeline of the oxygen supply terminal socket and the cable of the power socket are arranged inside the cavity.

[0009] Two ventilation plate assemblies are detachably arranged on the left and right end surfaces of the belt body. The ventilation plate assemblies include a dustproof net and a cover plate. The cover plate is clamped around the dustproof net, and a hole is opened in the middle of the cover plate to expose the mesh body of the dustproof net.

[0010] As a preferred embodiment, the dustproof net includes:

[0011] Net body;

[0012] a frame, the frame being arranged at the edge of the mesh body, the frame comprising an abutment body and a sleeve body, the abutment body and the sleeve body being arranged along the thickness direction of the frame, the abutment body at least partially protruding outside the edge of the sleeve body;

[0013] The hole portion of the cover plate corresponds to the sleeve body and is sleeved outside the sleeve body, and the cover plate abuts against the abutting body.

[0014] As a preferred embodiment, the left and right end surfaces of the belt body are respectively provided with card slots, and the openings of the card slots are upward, so that the ventilation plate assembly can be inserted into the card slots from the openings.

[0015] As a preferred embodiment, the belt body includes a front side panel, a rear side panel, an upper side panel and a lower side panel, and the front side panel, the lower side panel, the rear side panel and the upper side panel are connected in sequence to form the cavity, and the front side panel is provided with an oxygen supply terminal socket and a power socket.

[0016] As a preferred embodiment, a plurality of ventilation holes are provided on the upper side panel, the lower side panel and the rear side panel.

[0017] As a preferred embodiment, the belt body further includes two reinforcing ribs, which are located in the cavity and respectively connected to the upper side plate and the lower side plate.

[0018] As a preferred embodiment, the ventilation plate assembly abuts against the two reinforcing rib plates.

[0019] As a preferred embodiment, the oxygen supply terminal socket is fixed to the two reinforcing ribs through a fixing plate, the front side plate is fixed to the upper side plate, the lower side plate and the two reinforcing ribs, and the oxygen supply terminal socket is exposed on the front side plate.

[0020] As a preferred embodiment, the oxygen supply terminal socket and pipeline are located at the top, and the power socket and cable are located at the bottom.

[0021] As a preferred embodiment, the front side panel, the lower side panel, the rear side panel, the upper side panel and the reinforcing rib panel are made of sheet metal.

[0022] Compared with the existing technology, this technical solution has the following advantages:

[0023] Cost-effectiveness: The investment cost is low, and the design is simple and easy to implement. It does not require complex monitoring equipment or additional electronic components, so it has obvious advantages in initial investment cost.

[0024] Easy maintenance: The equipment belt is designed with the convenience of daily hospital operations in mind, with low maintenance costs. By setting detachable ventilation panel assemblies on the left and right end faces of the equipment belt, assembly is convenient and quick, and the dust net only needs to be cleaned regularly in the later stage.

[0025] Low-impact retrofit: The device can be easily integrated into existing oxygen supply systems, minimizing disruption to daily ward operations. Retrofitting is quick and easy, requiring no major building changes or extended ward closures.

[0026] Improved safety: By improving the air circulation inside and outside the equipment belt, the risk of fire caused by oxygen leakage is effectively reduced, and the safety of use in the ward is significantly improved.

[0027] Environmental adaptability: The device belt design is suitable for various hospital environments, whether it is a new or old ward, it can provide consistent safety performance.

[0028] The present invention is further described below with reference to the accompanying drawings and embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 This is an exploded view of the medical flame-retardant ward equipment belt of the present invention;

[0030] Figure 2 This is a structural diagram of the card slot of the utility model;

[0031] Figure 3 This is a structural diagram of the cover plate of the utility model;

[0032] Figure 4 This is a schematic diagram of the assembly of the oxygen supply terminal socket of the utility model.

[0033] In the figure: 100 belt body, 100a cavity, 100b oxygen supply terminal socket, 100c power socket, 100d card slot, 110 front side panel, 120 rear side panel, 130 upper side panel, 140 lower side panel, 150 reinforcing rib plate, 160 fixing plate, 170 bending structure, 171 first bending, 172 second bending, 200 ventilation plate assembly, 210 dustproof net, 211 mesh body, 212 frame, 212a abutting body, 212b sleeve body, 220 cover plate, 221 hole portion. DETAILED DESCRIPTION

[0034] The following description is intended to disclose the present invention and enable those skilled in the art to implement the present invention. The preferred embodiments described below are provided for illustrative purposes only, and those skilled in the art will readily appreciate other obvious variations. The basic principles of the present invention as defined in the following description may be applied to other embodiments, variations, improvements, equivalents, and other technical solutions that do not depart from the spirit and scope of the present invention.

[0035] like Figure 1 As shown, the medical flame retardant ward equipment belt includes:

[0036] The belt 100 has a cavity 100a extending through the left and right end surfaces of the belt 100. An oxygen supply terminal socket 100b and a power socket 100c are provided on the surface of the belt 100. The pipes of the oxygen supply terminal socket 100b and the cables of the power socket 100c are arranged inside the cavity 100a.

[0037] Two ventilation plate assemblies 200 are detachably arranged on the left and right end surfaces of the belt body 100. The ventilation plate assembly 200 includes a dustproof net 210 and a cover plate 220. The cover plate 220 is clamped around the dustproof net 210, and a hole portion 221 is opened in the middle of the cover plate 220 to expose the mesh body 211 of the dustproof net 210.

[0038] By installing the ventilation plate assemblies 200 on the left and right end surfaces of the belt body 100, air can flow within the cavity 100a of the belt body 100, preventing oxygen leakage within the cavity 100a, which could cause a sharp increase in oxygen content and thus prevent oxygen from acting as a combustion-supporting gas and causing a fire. The dustproof net 210 also filters out impurities in the air, preventing impurities from coming into contact with sparks and causing a fire.

[0039] like Figure 1 As shown, the belt body 100 includes a front side plate 110, a rear side plate 120, an upper side plate 130 and a lower side plate 140. The front side plate 110, the lower side plate 140, the rear side plate 120 and the upper side plate 130 are connected in sequence to form the cavity 100a. The front side plate 110 is provided with an oxygen supply terminal socket 100b and a power socket 100c.

[0040] The length of the belt 100 is defined by the left and right end faces, the height of the belt 100 is defined by the upper and lower side panels 130 and 140, and the thickness of the belt 100 is defined by the front and rear side panels 110 and 120, respectively. The belt 100 is longer and thinner, and is secured to the wall via the rear side panels 120. The rear side panels 120 can be secured to the wall using bolts or other means, or holes can be provided in the rear side panels 120 for attachment to the wall. Therefore, the device belt of this embodiment is suitable for various hospital environments, providing consistent safety performance for both newly built and existing wards.

[0041] like Figure 1As shown, the belt body 100 further includes two reinforcing ribs 150 . The two reinforcing ribs 150 are located in the cavity 100 a and are respectively connected to the upper side plate 130 and the lower side plate 140 .

[0042] The reinforcement ribs 150 not only improve the strength of the belt 100 structure, but also provide abutment for the ventilation plate assembly 200, so that the ventilation plate assembly 200 and the belt 100 are assembled stably. The reinforcement ribs 150 can be a triangular frame structure.

[0043] The front side panel 110, the lower side panel 140, the rear side panel 120, the upper side panel 130 and the reinforcing rib plate 150 can be made of sheet metal, which has the advantages of being lightweight, high-strength and low-cost. Taking the connection between the front side panel 110 and the upper side panel 130 as an example, the two can be fixed by bolts or plug-in methods.

[0044] like Figure 1 As shown, the number of the oxygen supply terminal sockets 100b is three, and the number of the power sockets 100c is four, wherein the oxygen supply terminal socket 100b and the pipeline are located in the upper right, and the power socket 100c and the cable are located in the lower left. By arranging the pipelines and cables up and down, contact between the two is prevented, and at the same time, their contact with the flowing air is increased, thereby further avoiding the occurrence of fire risks.

[0045] like Figure 4 As shown, the oxygen supply terminal socket 100b is fixed to the two reinforcing ribs 150 through a fixing plate 160, the front side plate 110 is fixed to the upper side plate 130, the lower side plate 140 and the two reinforcing ribs 150, and the oxygen supply terminal socket 100b is exposed on the front side plate 110.

[0046] The oxygen supply terminal socket 100b is first fixed to the two reinforcing ribs 150 and then the front side plate 110 is covered on the reinforcing ribs 150 to make the fixation of the oxygen supply terminal socket 100b more stable. Similarly, the power socket 100c can also be first fixed to the two reinforcing ribs 150 by a fixing plate.

[0047] like Figure 1 and Figure 2 As shown, the dustproof net 210 includes:

[0048] Netbody 211;

[0049] a frame 212 disposed at an edge of the mesh body 211 , comprising an abutting body 212 a and a sleeve body 212 b , the abutting body 212 a and the sleeve body 212 b being arranged along a thickness direction of the frame 212 , with the abutting body 212 a at least partially protruding beyond an edge of the sleeve body 212 b ;

[0050] The hole portion 221 of the cover plate 220 corresponds to the sleeve body 212 b and is sleeved outside the sleeve body 212 b . The cover plate 220 abuts against the abutting body 212 a .

[0051] The mesh body 211 is provided with a plurality of holes for filtering impurities in the air. The abutment body 212a and the sleeve body 212b are flush on the left and right sides. The upper and lower sides of the abutment body 212a protrude beyond the edges of the sleeve body 212b. The holes 221 of the cover plate 220 correspond to the sleeve body 212b and abut against the protruding upper and lower sides of the abutment body 212a to form a whole, which is then assembled with the belt body 100.

[0052] In one embodiment, the area enclosed by the outer edge of the cover plate 220 is larger than the cross-sectional area of ​​the cavity 100a, so that the cover plate 220 and the dust screen 210 as a whole cover the left and right end surfaces of the belt body 100. The cover plate 220 can be fixed to the belt body 100 by bolts or the like. For example, the upper and lower side plates 130 and 140 are provided with extension plates, and the bolts pass through the cover plate 220 and are threadedly connected to the extension plates. The ventilation plate assembly 200 is removable to facilitate cleaning and replacement of the dust screen 210.

[0053] In another embodiment, reference Figure 3, the left and right end surfaces of the belt body 100 are respectively provided with a card slot 100d, and the opening of the card slot 100d is upward, so that the ventilation plate assembly 200 can be inserted into the card slot 100d from the opening. Specifically, the left and right sides of the front side plate 110, the rear side plate 120 and the lower side plate 140 are respectively provided with a bending structure 170, and the bending structure 170 includes a first bend 171 and a second bend 172. Taking the bending structure 170 of the front side plate 110 as an example, the first bend 171 is connected between the front side plate 110 and the second bend 172, and the second bend 172 extends toward the rear side plate 120, so that the ventilation plate assembly 200 can be inserted into the Between the reinforcing rib plate 150 and the second bend 172, that is, the bending structure 170 of the front side plate 110 and the rear side plate 120 corresponds to the left and right sides of the ventilation plate assembly 200, and the bending structure 170 of the lower side plate 140 corresponds to the lower side of the ventilation plate assembly 200, while the upper side plate 130 is not provided with a bending structure 170, so an opening is formed in the direction of the upper side plate 130 so that the ventilation plate assembly 200 can be inserted into the slot 100d through the opening.

[0054] refer to Figure 1 A number of ventilation holes are provided on the upper side panel 130, the lower side panel 140 and the rear side panel 120. Compared with the closed cavity structure in the prior art, the fluidity of the air in the cavity is improved to further prevent the occurrence of fire. Dustproof nets can be set corresponding to the ventilation holes.

[0055] This embodiment addresses the oxygen leakage problem caused by the rubber gasket of the oxygen supply terminal socket 100b and proposes a new equipment belt structure design. By adding two ventilation plate assemblies 200 to the existing equipment belt structure, the air circulation inside and outside the equipment belt is enhanced to reduce the oxygen content inside the equipment belt, thereby improving the fire resistance and safety of the ward. It also has the advantages of cost-effectiveness, simple maintenance, small impact of modification, improved safety, and environmental adaptability.

[0056] The embodiments described above are only used to illustrate the technical ideas and features of the present invention. Their purpose is to enable those skilled in the art to understand the content of the present invention and implement it accordingly. The scope of patent application of the present invention cannot be limited by these embodiments alone. That is, any equivalent changes or modifications made according to the spirit disclosed by the present invention still fall within the patent scope of the present invention.

Claims

1. A flame-retardant medical ward equipment belt, characterized in that: include: A belt body (100), the belt body (100) having a cavity (100a), the cavity (100a) penetrating the left and right end surfaces of the belt body (100), an oxygen supply terminal socket (100b) and a power socket (100c) being provided on the surface of the belt body (100), the pipeline of the oxygen supply terminal socket (100b) and the cable of the power socket (100c) being arranged inside the cavity (100a); Two ventilation plate assemblies (200) are detachably arranged on the left and right end surfaces of the belt body (100), and the ventilation plate assemblies (200) include a dustproof net (210) and a cover plate (220). The cover plate (220) is clamped around the dustproof net (210), and a hole (221) is opened in the middle of the cover plate (220) through which the mesh body (211) of the dustproof net (210) is exposed.

2. The flame-retardant medical ward equipment belt according to claim 1, characterized in that: The dustproof net (210) comprises: Net body (211); a frame (212), the frame (212) being arranged at the edge of the net body (211), the frame (212) comprising an abutting body (212a) and a sleeve body (212b), the abutting body (212a) and the sleeve body (212b) being arranged along the thickness direction of the frame (212), the abutting body (212a) at least partially protruding outside the edge of the sleeve body (212b); The hole portion (221) of the cover plate (220) corresponds to the sleeve body (212b) and is sleeved outside the sleeve body (212b), and the cover plate (220) abuts against the abutting body (212a).

3. The flame-retardant medical ward equipment belt according to claim 1, characterized in that: The left and right end surfaces of the belt body (100) are respectively provided with card slots (100d), and the openings of the card slots (100d) face upwards so that the ventilation plate assembly (200) can be inserted into the card slots (100d) from the openings.

4. The flame-retardant medical ward equipment belt according to claim 1, characterized in that: The belt body (100) comprises a front side plate (110), a rear side plate (120), an upper side plate (130) and a lower side plate (140); the front side plate (110), the lower side plate (140), the rear side plate (120) and the upper side plate (130) are connected in sequence to form the cavity (100a); the front side plate (110) is provided with an oxygen supply terminal socket (100b) and a power socket (100c).

5. The flame-retardant medical ward equipment belt according to claim 4, characterized in that: A plurality of ventilation holes are provided on the upper side plate (130), the lower side plate (140), and the rear side plate (120).

6. The flame-retardant medical ward equipment belt according to claim 4, characterized in that: The belt body (100) further comprises two reinforcing ribs (150), the two reinforcing ribs (150) being located in the cavity (100a) and respectively connected to the upper side plate (130) and the lower side plate (140).

7. The flame-retardant medical ward equipment belt according to claim 6, characterized in that: The ventilation plate assembly (200) abuts against the two reinforcing rib plates (150).

8. The flame-retardant medical ward equipment belt according to claim 6, characterized in that: The oxygen supply terminal socket (100b) is fixed to the two reinforcing rib plates (150) via a fixing plate (160), the front side plate (110) is fixed to the upper side plate (130), the lower side plate (140) and the two reinforcing rib plates (150), and the oxygen supply terminal socket (100b) is exposed on the front side plate (110).

9. The flame-retardant medical ward equipment belt according to claim 1, characterized in that: The oxygen supply terminal socket (100b) and pipeline are located at the top, and the power socket (100c) and cable are located at the bottom.

10. The flame-retardant medical ward equipment belt according to claim 4, characterized in that: The front side plate (110), the lower side plate (140), the rear side plate (120), the upper side plate (130) and the reinforcing rib plate (150) are made of sheet metal materials.

Citation Information

Patent Citations

  • Hospital ward wall structure with reserved oxygen supply mechanism

    CN216439515U