Field anesthesia monitoring box

Through the integrated design of the field anesthesia monitoring box, the problem of difficult equipment to quickly expand and store is solved, the rapid expansion and high mobility of the equipment is achieved, the space utilization rate is improved, the volume and weight is reduced, and the field rescue needs are met.

CN223111795UActive Publication Date: 2025-07-18CSSC HAISHEN MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202421035341.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-05-14
Publication Date
2025-07-18
Estimated Expiration
2034-05-14

AI Technical Summary

Technical Problem

When existing anesthesia monitoring equipment is used in the field, there are problems such as difficult to quickly collect and store the equipment, poor mobility, and low utilization of the transport box space.

Method used

A field anesthesia monitoring box is designed, adopting an integrated design, including the box cover and the box. The box is equipped with a shock absorbing base plate and telescopic legs. The medical equipment is fixed by the installation frame, combined with the lifting and slewing device and the buckle structure to achieve rapid expansion and closing and equipment mount conversion.

Benefits of technology

It realizes rapid expansion and high maneuverability of the equipment, reduces the risk of equipment damage, improves space utilization, reduces the overall volume and weight, and meets the needs of rapid rescue in the field.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a field anesthesia monitoring box which comprises a box cover and a box body. The box cover is buckled on the box body to form a transfer box, or the box body is stacked on the top of the box cover to form an equipment rack; a shock absorption bottom plate is mounted at the bottom in the box body through shock absorbers, and medical equipment is carried on the shock absorption bottom plate; telescopic supporting legs are installed at the four corners in the box cover, and adjustable bottom feet or trundles are installed at the bottom ends of the telescopic supporting legs. The medical equipment comprises a respiratory anesthesia machine, a portable life support system, an anesthesia pump and an infusion pump. The portable anesthesia monitoring device is light and easy to carry, can be quickly unfolded and folded in the field, has high maneuverability, adopts a modular integrated design, integrates the respiration anesthesia machine, the portable life support system, the anesthesia pump and the infusion pump on the box body, is complete in equipment, and basically meets the use requirements during anesthesia monitoring in field medical rescue.
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Description

Technical Field

[0001] The utility model belongs to the technical field of medical devices, and relates to equipment used for anesthesia monitoring in field medical rescue. Specifically, it is an anesthesia monitoring box for field use. Background Art

[0002] In case of injuries and illnesses of a large number of people caused by natural disasters, terrorist attacks, epidemics and other emergencies, it is necessary to quickly set up a temporary treatment system at the first scene for on-site injury inspection, preliminary treatment, emergency treatment, etc.

[0003] Anesthesia monitoring is an essential part of the temporary treatment system. It is mainly used during surgeries to monitor and control the vital signs of patients to ensure their safety. The equipment used for anesthesia monitoring includes a breathing anesthesia machine, a portable life support system, an anesthesia pump, an infusion pump, etc. Currently, generally, the above-mentioned equipment is transported or stored in a transfer box and assembled on-site when in use. Among them, to protect the equipment from being damaged during transportation, EVA foam is usually embedded in the transfer box. This method has the following deficiencies:

[0004] Firstly, it is inconvenient to take the equipment out of the EVA foam, and it cannot be quickly deployed and retracted. It cannot be quickly put into use in the wild or quickly stored and transferred, resulting in poor mobility.

[0005] Secondly, with EVA foam embedded in the box, the space utilization rate of the transfer box is relatively low, resulting in a relatively large volume of the transfer box, which is not convenient for transportation. Content of the Utility Model

[0006] To solve the above deficiencies in the prior art, the utility model aims to provide an anesthesia monitoring box for field use to achieve the purpose of being able to be quickly deployed and retracted, and being light and easy to carry.

[0007] To achieve the above purpose, the technical solution adopted by the utility model is as follows: An anesthesia monitoring box for field use includes a box cover and a box body; the box cover is buckled on the box body to form a transfer box, or the box body is stacked on top of the box cover to form an equipment stand; a shock-absorbing bottom plate is installed at the bottom inside the box body through shock absorbers, and medical equipment is carried on the shock-absorbing bottom plate; telescopic legs are installed at the four corners inside the box cover, and adjustable feet or casters are installed at the bottom ends of the telescopic legs.

[0008] The medical equipment includes a breathing anesthesia machine, a portable life support system, an anesthesia pump and an infusion pump.

[0009] As a limitation of the utility model, the breathing anesthesia machine is fixedly arranged on the shock-absorbing bottom plate; the portable life support system, the anesthesia pump and the infusion pump are fixedly arranged on the shock-absorbing bottom plate through an installation frame;

[0010] The installation frame is located on the back side of the breathing anesthesia machine.

[0011] As a further limitation of the present utility model, on the shock-absorbing bottom plate, an accessory bag for storing accessories of the breathing anesthesia machine is placed on one side of the breathing anesthesia machine.

[0012] As a further limitation of the present utility model, a caster box is fixedly provided above the breathing anesthesia machine, and extension tables are assembled on both sides of the upper panel of the caster box through chute rails.

[0013] As a further limitation of the present utility model, the installation frame includes an upper layer and a lower layer. The portable life support system is assembled on the upper layer through a lifting and rotating device, and an anesthesia pump and an infusion pump are assembled on the lower layer through a pump mounting plate;

[0014] The pump mounting plate is slidably assembled on the lower layer of the installation frame.

[0015] As a further limitation of the present utility model, a storage drawer is also slidably assembled on the lower layer of the installation frame, and the storage drawer and the pump mounting plate are respectively arranged on both sides of the lower layer of the installation frame.

[0016] As a further limitation of the present utility model, the anesthesia pump and the infusion pump are stacked vertically and are fixedly provided on the pump mounting plate through a first rotating table.

[0017] As a further limitation of the present utility model, the lifting and rotating device includes a scissor lift mechanism fixedly provided on the upper layer of the installation frame and a second rotating table fixedly provided at the top of the scissor lift mechanism;

[0018] An installation groove is formed on the top surface of the second rotating table;

[0019] A mounting block adapted to the installation groove is fixedly provided at the center of the bottom surface of the portable life support system. After the mounting block is inserted into the installation groove, it is locked and positioned through a locking screw.

[0020] As other limitations of the present utility model, a matching buckle structure is provided between the top of the box body and the bottom of the box cover; a matching buckle structure is also provided between the bottom of the box body and the top of the box cover.

[0021] Due to the adoption of the above technical solutions, compared with the prior art, the beneficial effects obtained by the present utility model are as follows:

[0022] (1) The present utility model adopts an integrated design, integrating a breathing anesthesia machine, a portable life support system, an anesthesia pump and an infusion pump on the box body. The equipment is complete, basically meeting the necessary functions for anesthesia monitoring. In the present utility model, the box cover and the box body can be combined to form a transport box and can also be combined to form an equipment bench. This design provides convenient conditions for the on-site setup of the above medical equipment, can be quickly deployed and retracted in the wild, and has high mobility;

[0023] In addition, the shock-absorbing bottom plate of the present utility model enhances the shock-absorbing performance, protecting the equipment from being damaged during transportation. Combined with a rational layout, compared with the EVA foam shock-absorbing form, the overall volume is smaller, the weight is lighter, and it is more portable and easy to carry.

[0024] (2) Telescopic legs are installed at the four corners inside the box cover of the present utility model. After the telescopic legs are retracted, they are hidden inside the box cover without affecting the fastening of the box cover and the box body. In addition, adjustable feet or casters can be installed on the telescopic legs through a quick-installation structure according to the usage scenario. Among them, the feet are used in places with uneven ground, and the casters are used when moving in the wild.

[0025] (3) The present utility model can adjust the use angle and height of the portable life support system through a lifting and rotating device, facilitating human-machine interaction. Moreover, the portable life support system and the lifting and rotating device are connected through an "installation block + installation groove", which can be quickly installed or removed, meeting the requirements of quick deployment and collection.

[0026] (4) In the present utility model, the pump mounting plate is slidably assembled on the lower layer of the mounting frame. The anesthetic pump and the infusion pump can be stored or deployed by sliding on the mounting frame. In addition, the anesthetic pump and the infusion pump are fixedly arranged on the first rotating table of the pump mounting plate and can be rotated by an angle to adjust the use state, facilitating human-machine interaction. Description of the Drawings

[0027] The following further describes the present utility model in detail with reference to the drawings and specific embodiments.

[0028] Figure 1 It is a front structural schematic diagram of the embodiment of the present utility model in the deployed state;

[0029] Figure 2 It is a back structural schematic diagram of the embodiment of the present utility model in the deployed state;

[0030] Figure 3 It is a structural schematic diagram of each part of the embodiment of the present utility model in the retracted state;

[0031] Figure 4 It is a stacking state schematic diagram of the embodiment of the present utility model after being stored;

[0032] Figure 5 It is a structural schematic diagram of the box body and the box cover of the embodiment of the present utility model combined to form an equipment bench;

[0033] Figure 6 It is a longitudinal sectional structural schematic diagram of the box body and the box cover of the embodiment of the present utility model combined to form an equipment bench;

[0034] In the figure: 1. Lid; 2. Box body; 3. Breathing anesthetic machine; 4. Portable life support system; 5. Anesthesia pump; 6. Infusion pump; 7. Accessory pack; 8. Caster box; 9. Extension table; 10. Installation frame;

[0035] 101. Telescopic leg; 102. Caster; 103. Handle; 104. Butterfly buckle; 105. Shock-absorbing bottom plate; 106. Shock absorber; 107. Embedded part;

[0036] 201. Storage drawer; 202. Pump mounting plate; 203. Scissor lift mechanism. Detailed implementation manner

[0037] The preferred embodiments of the present utility model will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only for the purpose of illustration and understanding of the present utility model, and are not used to limit the present utility model.

[0038] As Figures 1 to 2 shown, this embodiment includes a lid 1 and a box body 2, as well as medical equipment mounted on the box body 2.

[0039] The box body 2 and the lid 1 are made of carbon fiber composite materials, which can meet the hardness requirements during transportation, and at the same time have a relatively light mass, which is also convenient for handling and transferring. Of course, the box body 2 and the lid 1 can also be other lightweight materials such as polyester fiber and fiberglass. Further, stacking grooves or stacking blocks are correspondingly provided at the bottom of the box body 2 and the top of the lid 1, so that multiple box bodies 2 can be stably stacked and placed. Telescopic legs 101 are installed at the four corners inside the lid 1. When stored, the legs can be retracted into the box body 2; when unfolded, the legs are pulled out and extended, and the extended length can be adjusted as needed. The telescopic leg 101 is a conventional structure, and an adjustable foot or a caster 102 is detachably installed at the bottom end. Specifically, the adjustable foot is installed when using on uneven ground, and the caster 102 is installed when it is necessary to move in the wild.

[0040] In this embodiment, the height of the box body 2 is much smaller than that of the lid 1. Handles 103 are provided on both sides of the lid 1, and a matching buckle structure is provided between the top of the box body 2 and the bottom of the lid 1, and a matching buckle structure is also provided between the bottom of the box body 2 and the top of the lid 1. This buckle structure is the butterfly buckle 104 in the prior art. The box body 2 and the lid 1 have two combination methods:

[0041] One is that the lid 1 is buckled on the box body 2 and fixed through the buckle structure between the top of the box body 2 and the bottom of the lid 1, and a transfer box can be formed to hold medical equipment. This combined state is used during transportation or storage, and generally multiple of them are stacked and placed. As Figure 4 shown, after stacking, the buckle at the bottom of the box body 2 of the upper transfer box can also be matched with the buckle at the top of the lid 1 of the lower transfer box to make the two stably stacked;

[0042] Second, the box body 2 is stacked on top of the box cover 1 and fixed by a buckle structure between the bottom of the box body 2 and the top of the box cover 1, and can form an equipment bench for carrying medical equipment. This combined state is used when building a temporary rescue system, and is generally used independently. The structure is as shown in Figure 1 , Figure 2 and Figure 5 .

[0043] Furthermore, as shown in Figure 5 , a shock-absorbing bottom plate 105 is installed at the bottom inside the box body 2 through shock absorbers 106, and medical equipment is carried on the shock-absorbing bottom plate 105. The shock-absorbing bottom plate 105 has a shock-absorbing function and can protect medical equipment from being damaged during transportation. Specifically, during the production process of the box body 2, aluminum alloy blocks are used as embedded parts 107 and placed in corresponding grooves in the box body 2, and carbon cloth is laid on the surface to be embedded in the box body 2; then, threads are tapped on the embedded parts 107 and wire thread inserts are installed, so that the shock absorbers 106 can be fixed on the embedded parts 107 with bolts, realizing the fixation of the shock absorbers 106 inside the box body 2; multiple shock absorbers 106 are fixed in the above manner, and then the shock-absorbing bottom plate 105 is bonded to the shock absorbers 106, that is, the installation of the shock-absorbing bottom plate 105 inside the box body 2 is realized.

[0044] The above-mentioned medical equipment includes a breathing anesthetic machine 3, a portable life support system 4, an anesthesia pump 5, and an infusion pump 6. As shown in Figure 1 , Figure 2 , they are fixed on the shock-absorbing bottom plate 105 in a reasonable layout.

[0045] The breathing anesthetic machine 3 is fixed on the shock-absorbing bottom plate 105 with screws. During surgery, anesthesia, and first aid, it allows patients to inhale anesthetic drugs to form anesthesia, helps patients maintain respiratory and circulatory functions, and reduces surgical risks and trauma to patients. As shown in Figure 1 , an accessory pack 7 is also placed on one side of the breathing anesthetic machine 3 on the shock-absorbing bottom plate 105 for storing accessories such as the pipelines and cables of the breathing anesthetic machine 3. A caster box 8 is fixedly installed above the breathing anesthetic machine 3 and the accessory pack 7 for placing the adjustable feet or casters 102 disassembled from the telescopic legs 101. In this embodiment, the caster box 8 has an open-top structure, and its upper panel is inserted into the caster box 8 body, and the caster box 8 can be opened or closed by pulling. After closing, the upper panel can be used as an operating table.

[0046] As shown in Figure 1 , the two sides of the upper panel of the caster box 8 are assembled with an extension table 9 through a chute and slide rail structure. When the extension table 9 is opened, the extension table 9 unfolds outward from above the caster box 8 and can expand the operating table formed by the upper panel; when the extension table 9 is closed, the extension table 9 retracts directly above the caster box 8.

[0047] The portable life support system 4, the anesthesia pump 5, and the infusion pump 6 are fixedly arranged on the shock-absorbing bottom plate 105 through the mounting frame 10.

[0048] The mounting frame 10 is assembled by aluminum profiles and is located on the dorsal side of the breathing anesthesia machine 3. The mounting frame 10 includes an upper layer and a lower layer. A storage drawer 201 and a pump mounting plate 202 are slidably assembled on the lower layer, and a lifting and rotating device is fixedly installed on the upper layer. Among them, the storage drawer 201 and the pump mounting plate 202 are respectively located on both sides of the lower layer of the mounting frame 10, and are arranged back to back. The storage drawer 201 is used to store the accessories of the portable life support system 4; a first rotating table is fixedly arranged on the pump mounting plate 202, and the infusion pump 6 is installed on the first rotating table. The anesthesia pump 5 is stacked above the infusion pump 6 and is fixed to the infusion pump 6. During use, pulling out the pump mounting plate 202 from the lower layer of the mounting frame 10 can expand the infusion pump 6 and the anesthesia pump 5, and the angles of the infusion pump 6 and the anesthesia pump 5 can also be adjusted through the first rotating table to facilitate human-machine interaction.

[0049] The lifting and rotating device is used to assemble the portable life support system 4, and is used to realize the assembly of the portable life support system 4 on the mounting frame 10, as well as the adjustment of the working position and working angle. The lifting and rotating device includes a scissor lifting mechanism 203 fixedly arranged on the upper layer of the mounting frame 10 and a second rotating table fixedly arranged at the top of the scissor lifting mechanism 203. The scissor lifting mechanism 203 is used to control the height of the portable life support system 4, and the second rotating table is used to control the angle of the portable life support system 4.

[0050] In this embodiment, the portable life support system 4 is detachably connected to the second rotating table, and the structure is as follows: an installation groove is formed on the top surface of the second rotating table; an installation block adapted to the installation groove is fixedly arranged at the center position of the bottom surface of the portable life support system 4; inserting the installation block into the installation groove and locking and positioning it with a locking screw can connect the portable life support system 4 to the second rotating table.

[0051] Finally, it is supplementary explained that the portable life support system 4 is an existing structure, commonly known as an intelligent "mobile intensive care unit", and has five functions: respiratory support, vital sign monitoring, fluid infusion, handheld B-ultrasound, and defibrillation.

[0052] It should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the above embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the above embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A field anesthesia monitoring box, comprising a box cover and a box body; the box cover is buckled on the box body to form a transfer box, or the box body is stacked on the top of the box cover to form an equipment bench; characterized in that: The bottom inside the box is installed with a shock-absorbing bottom plate through shock absorbers, and a medical device is carried on the shock-absorbing bottom plate; telescopic legs are installed at the four corners inside the box cover, and adjustable feet or casters are installed at the bottom ends of the telescopic legs. The medical devices include a breathing anesthetic machine, a portable life support system, an anesthesia pump, and an infusion pump.

2. The anesthetic monitoring box for outdoor use according to claim 1, characterized in that: The breathing anesthetic machine is fixedly installed on the shock-absorbing bottom plate; the portable life support system, the anesthesia pump, and the infusion pump are fixedly installed on the shock-absorbing bottom plate through a mounting frame. The mounting frame is located on the back side of the breathing anesthetic machine.

3. The field anesthesia monitoring box according to claim 2, wherein: On the shock-absorbing bottom plate, an accessory bag for storing the accessories of the breathing anesthetic machine is placed on one side of the breathing anesthetic machine.

4. The field anesthesia monitoring box according to claim 2 or 3, characterized in that: A caster box is fixedly installed above the breathing anesthetic machine, and extension tables are assembled on both sides of the upper panel of the caster box through chute rails.

5. An outdoor anesthesia monitoring box according to claim 2 or 3, characterized in that: The mounting frame includes an upper layer and a lower layer. The upper layer is assembled with the portable life support system through a lifting and rotating device, and the lower layer is assembled with the anesthesia pump and the infusion pump through a pump mounting plate. The pump mounting plate is slidably assembled on the lower layer of the mounting frame.

6. The field anesthesia monitoring box according to claim 5, wherein: A storage drawer is also slidably assembled on the lower layer of the mounting frame. The storage drawer and the pump mounting plate are located on both sides of the lower layer of the mounting frame respectively.

7. The field anesthesia monitoring box according to claim 6, characterized in that: The anesthesia pump and the infusion pump are stacked vertically and fixedly installed on the pump mounting plate through a first rotating table.

8. The anesthetic monitoring box for outdoor use according to claim 5, wherein: The lifting and rotating device includes a scissor lifting mechanism fixedly installed on the upper layer of the mounting frame and a second rotating table fixedly installed at the top end of the scissor lifting mechanism. An installation groove is formed on the top surface of the second rotating table. A mounting block adapted to the installation groove is fixedly installed at the center position of the bottom surface of the portable life support system. After the mounting block is inserted into the installation groove, it is locked and positioned through a locking screw.

9. An outdoor anesthesia monitoring box according to any one of claims 1-3, 6-8, characterized in that: A matching buckle structure is provided between the top of the box body and the bottom of the box cover; a matching buckle structure is also provided between the bottom of the box body and the top of the box cover.