Multifunctional infusion pump protective clothing for operating room

CN224762259UActive Publication Date: 2026-09-18BEIJING FRIENDSHIP HOSPITAL CAPITAL MEDICAL UNIV
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Patent Information

Application Number
CN202520302843.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-09-18
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

[0003]本实用新型提供一种手术室用多功能输液泵防护衣,其解决现有技术中防护性能不足、溅水无法收集等问题,显著提升了输液泵在手术室复杂环境下的安全性和使用寿命

Benefits of technology

第一、本实用新型所述手术室用多功能输液泵防护衣,可固定在输液泵支架上,有效防止上方及周围液体滴落到输液泵或电源接线板上,杜绝用电的安全隐患,还可以更好的保护输液泵仪器,起到防尘的作用,同时也避免溅到保护罩上面的水流到地面,而引起的地面湿滑导致的跌倒,也保持了地面的清洁,符合医院感控的要求。

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Abstract

The utility model discloses a multifunctional infusion pump protective clothing for operating room, including cover body, the inside cambered edge is provided with the close-up slot that supplies the close-up rope to pass through, the outer cambered edge is connected with the water receiving groove, the outside middle part of cover body is provided with a plurality of point shape adhesive surfaces. The utility model belongs to medical equipment technical field, can effectively prevent liquid splashing on infusion pump, protects the infusion pump in operating room, avoids the damage of infusion pump because of liquid splashing, and the water receiving groove is equipped with below cover body, can collect the liquid splashing on the cover body surface in time, prevents direct flow to ground, pollutes operating room ground environment, and the utility model discloses a multifunctional infusion pump protective clothing for operating room is equipped with the buffer layer, and the in -operation emergency (such as equipment drop) plays the buffering protection effect, provides the impact protection, prolongs the service life of infusion pump, at the same time, the cover body inner face is equipped with silver ion coating, restrains the bacteria breeding, reduces the cross infection risk, in addition, is equipped with the temperature control layer, guarantees the stability of infusion pump.
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Description

Technical Field

[0001] This utility model relates to the field of medical equipment technology. More specifically, this utility model relates to a multifunctional protective gown for an infusion pump used in operating rooms. Background Technology

[0002] In the operating room environment, infusion pumps, as essential medical equipment, play a crucial role in patients' intravenous therapy. However, existing infusion pumps face numerous problems in practical use, seriously affecting their normal operation and lifespan, urgently requiring effective solutions. Liquid splashing is a major challenge in the use of infusion pumps. In the operating room, multiple infusion pumps are placed at the bottom of the infusion stand due to surgical needs, and multiple bags of fluid are placed at the top. Repeated insertion and removal of the infusion needle during fluid changes can cause leakage. Once this liquid splashes onto the infusion pump, it can easily seep into the interior through the equipment's gaps. The internal structure of the infusion pump is delicate, containing numerous electronic components and circuit boards; liquid intrusion can lead to short circuits, corrosion, and other problems. Because the outer casing design of infusion pumps often does not adequately consider liquid drainage and protection, lacking an effective waterproof structure, liquid cannot drain away promptly after splashing onto the surface, accumulating and gradually seeping in. In the past, attempts were made to place ordinary plastic films around the infusion pump to block liquid, but the films are difficult to fix, easily shift, and offer poor protection, while also affecting medical staff's operation and observation of the equipment. Existing patents, such as the utility model patent with authorization announcement number CN215194499U, disclose a protective cover for an infusion pump. Although it solves the problem of the membrane being difficult to fix and easy to shift, the blocked liquid may splash or drip onto the ground, making the ground slippery. In addition, the protective cover adopts a single-layer structure, which has poor protection and no antibacterial or temperature control effect, and there are areas that need improvement. Utility Model Content

[0003] This invention provides a multifunctional protective garment for infusion pumps in operating rooms, which solves the problems of insufficient protective performance and inability to collect splashed water in the prior art, and significantly improves the safety and service life of infusion pumps in the complex environment of operating rooms.

[0004] To achieve these objectives and other advantages of this utility model, a multifunctional infusion pump protective garment for operating rooms is provided, comprising a cover body with a double-arc fan-shaped structure. The inner arc edge of the cover body is provided with a closure groove with openings at both ends for a drawstring to pass through. The outer arc edge of the cover body is connected to a water receiving groove with a closed top opening at both ends. Both ends of the outer arc edge extend beyond the ends of the water receiving groove and are provided with an extension portion. The outer middle of the cover body is provided with a plurality of dot-shaped adhesive surfaces arranged in an arc shape, and the inner side of the cover body is provided with an adhesive hook at at least one end that can be matched and adhered to any dot-shaped adhesive surface.

[0005] Preferably, the cover is made of a transparent flexible material and has multiple composite protective layers, which include, from the outside to the inside, a waterproof layer, a buffer layer, a temperature control layer and an antibacterial layer.

[0006] Preferably, the waterproof layer is made of medical-grade TPU material.

[0007] Preferably, the buffer layer is made of high-density EVA material.

[0008] Preferably, the temperature control layer is made of a phase change material embedded in a TPU film.

[0009] Preferably, the antibacterial layer is a silver ion coating.

[0010] Preferably, the cover is transparent and visible, making it easy to operate and observe.

[0011] Preferably, the inner surface of the cover is provided with an RFID tag slot, and an RFID tag is built in therein.

[0012] Preferably, the outer surface of the cover is provided with a spiral-shaped drainage texture and multiple curved drainage textures. The spiral-shaped drainage texture is close to the outer arc edge of the cover, and the top of the multiple curved drainage textures is close to the inner arc edge of the cover. The bottom ends pass between any two adjacent dot-shaped bonding surfaces and extend in the direction close to the spiral-shaped drainage texture.

[0013] This utility model has at least the following beneficial effects: First, the multifunctional infusion pump protective gown for operating rooms described in this utility model can be fixed on the infusion pump bracket, effectively preventing liquids from dripping onto the infusion pump or power strip from above and around, eliminating potential electrical safety hazards, better protecting the infusion pump equipment, playing a dustproof role, and also preventing water splashed on the protective cover from flowing onto the ground and causing slippery floors that could lead to falls, while also keeping the floor clean and meeting the hospital's infection control requirements.

[0014] Secondly, the cover adopts a multi-layer composite protective structure, which improves the protection and stability of the infusion pump in the operating room, and significantly enhances the safety and service life of the infusion pump in the complex environment of the operating room.

[0015] Third, after strictly controlling parameters such as temperature and plasma intensity, the composite material can be sterilized using low-temperature plasma technology and reused. At the same time, it has a built-in RFID tag, and the number of sterilizations and the usage cycle can be recorded by embedding a chip. Small-scale tests can be conducted to confirm the performance changes of the material after sterilization and to set the number of sterilizations. This greatly reduces the cost of use and extends the service life.

[0016] Fourth, the cover has antibacterial properties. The silver ion coating on the inner side of the cover inhibits bacterial growth and reduces the risk of cross-infection. Fifth, the cover has impact resistance. The middle layer of the cover is equipped with a high-density EVA buffer pad, and the vulnerable parts of the infusion pump (such as the screen and buttons) are locally thickened to provide impact protection.

[0017] Other advantages, objectives and features of this invention will be partly apparent from the following description, and partly understood by those skilled in the art through study and practice of this invention. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of the multifunctional infusion pump protective apron for the operating room when it is unfolded, according to one technical solution of this utility model; Figure 2 This is a schematic diagram of the structure of the multifunctional infusion pump protective clothing for the operating room in use according to one technical solution of this utility model; Figure 3 This is a cross-sectional schematic diagram of the multi-layer composite protective layer described in one technical solution of this utility model. Detailed Implementation

[0019] The present invention will now be described in further detail with reference to the accompanying drawings, so that those skilled in the art can implement it based on the description.

[0020] It should be understood that terms such as “having,” “comprising,” and “including” as used herein do not exclude the presence or addition of one or more other elements or combinations thereof.

[0021] It should be noted that, unless otherwise specified, the experimental methods described in the following embodiments are conventional methods, and the reagents and materials described are commercially available. In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "setting" should be interpreted broadly. For example, they can refer to fixed connection or setting, detachable connection or setting, or integral connection or setting. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances. The terms "lateral," "longitudinal," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description. They do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0022] like Figure 1-3 As shown, this utility model provides a multifunctional infusion pump protective garment for operating rooms, including a cover 100, which has a double-arc fan-shaped structure. The inner arc edge of the cover 100 is provided with a closing groove 101 with openings at both ends for the closing rope 102 to pass through. The outer arc edge of the cover 100 is connected to a water receiving groove 103 with both ends closed and the top opening closed. Both ends of the outer arc edge are provided with extensions 104 extending beyond the ends of the water receiving groove 103. The outer middle of the cover 100 is provided with a plurality of dot-shaped adhesive surfaces 105 arranged in an arc shape, and the inner side of the cover 100 is provided with an adhesive hook 106 at at least one end that can be matched and adhered to any dot-shaped adhesive surface 105.

[0023] In the above technical solution, the multifunctional infusion pump protective gown for the operating room includes a cover 100, which is designed with a double-arc fan-shaped structure. This shape provides comprehensive protection for the infusion pump while reducing unnecessary material usage, making the protective gown lighter and easier to fold and store. The inner arc edge of the cover 100 is designed with a drawstring groove 101 with openings at both ends, through which a drawstring rope 102 is threaded. By adjusting the tightness of the drawstring rope 102, the size of the opening of the cover 100 can be flexibly adjusted, ensuring a tight wrap around the infusion stand while facilitating quick installation and disassembly. The outer arc edge of the cover 100 is connected to a water collection trough 103 that is closed at both ends and open at the top. This design aims to collect liquids splashed onto the protective gown, effectively preventing liquids from flowing onto the ground, avoiding slippery floors that could lead to falls, and keeping the floor clean, thus ensuring the safe operation of medical equipment. The outer center of the cover 100 is equipped with multiple arc-shaped dot-shaped adhesive surfaces 105, which ensure good adhesion, facilitate repeated bonding without damaging the surface of the cover 100 or the infusion pump, and allow for easy adjustment of the bonding position. On the inner side of the cover 100, at least one end is provided with an adhesive hook 106 that can be matched and bonded to any of the dot-shaped adhesive surfaces 105. This design allows users to arbitrarily bond and fix both ends of the cover 100 as needed, improving usability. An extension 104 is provided to allow the two ends of the cover 100 to overlap smoothly. In actual use, the cover 100 is wrapped around the support rod 301 of the infusion stand 300, the drawstring 102 is tightened, and the adhesive hooks 106 on the inner side of the cover 100 are attached to the appropriate dotted adhesive surfaces 105, so that the cover 100 forms a conical structure. This ensures that the infusion pump and wiring board below the infusion stand 300 are completely covered by the cover 100, and that the top opening of the water collection tank 103 faces the direction in which liquid may splash, so as to effectively collect and guide the liquid outflow. This technical solution not only effectively protects the infusion pump from liquid splashes, dust contamination, and accidental collisions, but also ensures ease of operation and cleanliness, guaranteeing the smooth progress of the operation and the safety of the patient.

[0024] In another technical solution, the cover 100 is made of a transparent flexible material and has multiple composite protective layers, which, from the outside to the inside, include a waterproof layer 200, a buffer layer 201, a temperature control layer 202, and an antibacterial layer 203. In this technical solution, the cover 100 is made of a transparent flexible material. This material not only maintains the flexibility of the cover 100 and facilitates installation, but more importantly, its transparency allows medical personnel to visually monitor the operating status of the infusion pump without removing the protective clothing, including the display readings and the status of alarm indicator lights, thereby ensuring the smooth progress of the surgery. The cover 100 includes multiple composite protective layers from the outside to the inside, each layer performing a specific protective function. The waterproof layer 200, as the outermost layer, effectively blocks blood, disinfectant, or other liquids that may splash onto the infusion pump in the operating room, protecting the internal electronic components from damage. The buffer layer 201 is located below the waterproof layer 200. The main function of the buffer layer 201 is to absorb and disperse external impact forces, protecting the infusion pump from damage caused by accidental collisions or drops. This layer typically uses high-density, high-elasticity materials, such as EVA (ethylene-vinyl acetate copolymer) foam, which effectively cushions impact while maintaining the lightweight nature of the cover 100. The temperature control layer 202 is designed to account for the heat generated by the infusion pump during prolonged operation and its impact on pump performance. It is made of a TPU film with an embedded phase change material. This material absorbs or releases heat within a specific temperature range, maintaining a relatively stable temperature within the cover 100 and helping to protect the infusion pump from temperature fluctuations. The antibacterial layer 203, as the innermost layer, primarily inhibits the growth of bacteria, viruses, and other microorganisms, preventing cross-infection and providing a cleaner and safer operating environment for the operator. The materials are layered in a predetermined order and can be integrated into a multi-layered composite structure through processes such as hot pressing, bonding, and sewing, ensuring a tight fit and excellent protective performance between the layers. In addition, the multi-layered composite protective layer can be made of transparent material, with multiple layers combined into one, making it transparent and visible. Alternatively, a transparent observation window can be set in the middle opening to ensure that medical staff can clearly observe the working status of the infusion pump, the information on the display screen, and any possible abnormalities, facilitating observation and operation.

[0025] In another technical solution, the waterproof layer 200 is made of medical-grade TPU material. This technical solution uses medical-grade TPU (thermoplastic polyurethane) material, which has waterproof and liquid-proof properties, protecting the infusion pump from liquid damage.

[0026] In another technical solution, the buffer layer 201 is made of high-density EVA material. This technical solution uses high-density EVA material, which can rapidly deform and absorb energy when subjected to external impact, thereby effectively reducing the impact force transmitted to the infusion pump and providing reliable protection for the infusion pump.

[0027] In another technical solution, the temperature control layer 202 is made of a TPU film with an embedded phase change material. In this solution, the phase change material is embedded within a TPU (thermoplastic polyurethane) film to form the temperature control layer 202. This design not only combines the excellent properties of the TPU film but also fully utilizes the temperature control characteristics of the phase change material, providing an efficient and intelligent temperature regulation environment for the infusion pump.

[0028] In another technical solution, the antibacterial layer 203 is a silver ion coating. In this technical solution, a silver ion coating is used as the antibacterial layer 203 to effectively inhibit the growth and spread of microorganisms such as bacteria and viruses. This not only improves the hygienic performance of the protective clothing and infusion pump but also provides strong support for the construction of a sterile environment in the operating room.

[0029] In another technical solution, the cover 100 is transparent and visible, facilitating operation and observation. In this technical solution, to ensure that medical staff can clearly observe the working status of the infusion pump, the information displayed on the screen, and any possible abnormalities, the cover 100 is made of transparent or semi-transparent material. This not only improves the convenience and safety of operation but also enhances the overall work efficiency of the operating room.

[0030] In another technical solution, an RFID tag slot 107 is provided on the inner surface of the cover 100, with an RFID tag embedded therein. In this technical solution, an RFID (Radio Frequency Identification) tag slot 107 is provided on the inner surface of the cover 100, with an RFID tag embedded therein. By embedding a chip, the number of disinfection cycles and usage period can be recorded, achieving digital management. This not only improves the intelligence level of the protective clothing but also greatly facilitates the management and tracking of materials in the operating room. The tag is located on the inner side of the cover 100 to prevent liquid contamination.

[0031] In another technical solution, the outer surface of the cover 100 is provided with a spiral-shaped drainage texture 400 and multiple curved drainage textures 401. The spiral-shaped drainage texture 400 is close to the outer arc edge of the cover 100, and the top of the multiple curved drainage textures 401 is close to the inner arc edge of the cover 100, and the bottom ends pass between any two adjacent dot-shaped bonding surfaces 105 and extend towards the spiral-shaped drainage texture. In this technical solution, in order to optimize the drainage, splash prevention and cleaning performance of the cover 100, a spiral-shaped drainage texture 400 and multiple curved drainage textures 401 are provided on the outer surface of the cover 100. The spiral-shaped drainage texture 400 is located near the outer arc edge of the cover 100 and extends obliquely downward, which can guide water, blood or other liquids to drain quickly into the water receiving tank 103 along a specific path, avoiding liquid splashing or accumulation on the surface of the cover 100. Corresponding to the spiral drainage texture 400 are multiple curved drainage textures 401. The top of the curved drainage textures 401 is close to the inner arc edge, which can more effectively capture and guide liquid dripping from the top of the IV stand or other components. At the same time, the curved drainage textures can prevent liquid splashing. The design of the bottom end passing between any two adjacent dot-shaped adhesive surfaces 105 and extending in the direction of the spiral drainage texture 400 ensures that liquid will not remain on the adhesive surface during the discharge process, thereby avoiding problems such as corrosion, contamination or damage caused by liquid accumulation on the adhesive surface. The combination of the spiral drainage texture 400 and the curved drainage textures 401 on the surface of the cover 100 allows the cover 100 to more effectively keep its surface clean and dry.

[0032] The number of devices and processing scale described herein are for the purpose of simplifying the description of this utility model. Applications, modifications, and variations of this utility model will be readily apparent to those skilled in the art.

[0033] Although the embodiments of this utility model have been disclosed above, they are not limited to the applications listed in the specification and embodiments. They can be applied to various fields suitable for this utility model. For those skilled in the art, other modifications can be easily made. Therefore, without departing from the general concept defined by the claims and their equivalents, this utility model is not limited to the specific details and the illustrations shown and described herein.

Claims

1. A multi-functional infusion pump protective clothing for operating room, characterized in that, The cover has a double-arc fan-shaped structure. The inner arc edge of the cover has a groove with two openings for the drawstring to pass through. The outer arc edge of the cover is connected to a water receiving groove with two closed top openings. Both ends of the outer arc edge extend beyond the ends of the water receiving groove. The outer middle of the cover has multiple dot-shaped adhesive surfaces arranged in an arc shape. The inner side of the cover has an adhesive hook at at least one end that can be matched and adhered to any dot-shaped adhesive surface.

2. The multi-functional infusion pump gown for operating room as claimed in claim 1, wherein, The cover is made of flexible material and has multiple composite protective layers, which include a waterproof layer, a buffer layer, a temperature control layer and an antibacterial layer from the outside to the inside.

3. The multi-functional infusion pump gown for operating room as claimed in claim 2, wherein, The waterproof layer is made of medical-grade TPU material.

4. The multi-functional infusion pump gown for operating room as claimed in claim 2, wherein, The buffer layer is made of high-density EVA material.

5. The multi-functional infusion pump gown for operating room as claimed in claim 2, wherein, The temperature control layer is made of a TPU film with an embedded phase change material.

6. The multi-functional infusion pump gown for operating room as claimed in claim 2, wherein, The antibacterial layer is a silver ion coating.

7. The multi-functional infusion pump gown for operating room as claimed in claim 1, wherein, The cover is transparent and visible.

8. The multi-functional infusion pump gown for operating room as claimed in claim 1, wherein, The inner surface of the cover is provided with an RFID tag slot, which houses the RFID tag.

9. The multi-functional infusion pump gown for operating room as claimed in claim 1, wherein, The outer surface of the cover is provided with a spiral-shaped drainage texture and multiple curved drainage textures. The spiral-shaped drainage texture is close to the outer arc edge of the cover, and the top of the multiple curved drainage textures is close to the inner arc edge of the cover. The bottom ends pass between any two adjacent dot-shaped bonding surfaces and extend in the direction close to the spiral-shaped drainage texture.

Citation Information

Patent Citations

  • Infusion pump protective cover

    CN215194499U