Medicine tray structure for anesthesia
By designing an anesthetic drug tray structure that includes a chassis, a flip-top, a base, and flexible label paper, the problems of damage and difficulty in identification caused by improper placement of anesthetic drugs are solved. This enables rapid positioning and cold storage of drugs and instruments, improving the efficiency and safety of surgical preparation.
Patent Information
- Application Number
- CN202422811249.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-11-18
AI Technical Summary
The haphazard placement of traditional anesthetic drugs and instruments leads to damage and difficulty in identification, while the lack of refrigeration capabilities increases the complexity and cost of surgical preparation.
Design a medicine tray structure that includes a chassis, a flip cover, a base, and flexible label paper. Identification is aided by a perforated window and a transparent observation layer. The refrigeration function is achieved by combining a detachable functional tray body and temperature control is achieved by using air guide grooves and air guide holes.
It improves the efficiency of anesthetic drugs and instruments management, ensures rapid identification and cold storage, and reduces the complexity and cost of surgical preparation.
Smart Images

Figure CN223640839U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of anesthetic drug trays, and in particular to a drug tray structure for anesthesia. Background Technology
[0002] In modern medical practice, anesthesia is an indispensable part of ensuring patient safety and comfort during surgery. Whether general or local anesthesia, the goal is to effectively reduce or eliminate patient pain through the rational use of anesthetic drugs. During anesthesia administration, medical staff need to accurately select the most suitable drug from a variety of anesthetics based on the specific needs of the surgery and the patient's physical condition, and quickly and accurately administer the medication. However, in practice, the management and use of anesthetic drugs face a series of challenges.
[0003] Traditionally, anesthetic drugs and instruments are simply placed on a plain tray. While convenient, this practice has significant drawbacks:
[0004] On the one hand, due to the lack of effective organization and fixation measures, anesthetic drugs and instruments are often placed haphazardly. This may not only lead to accidental collisions between drugs and instruments, increasing the risk of breakage, but may also cause wear and tear on labels, affecting the accuracy of identification.
[0005] On the other hand, the lack of standardized storage methods means that medical staff need to spend extra time identifying specific medications, a process that is particularly time-consuming in emergencies, potentially delaying treatment and affecting patient safety.
[0006] In particular, some anesthetic drugs require storage at specific temperatures to maintain their efficacy. Traditional anesthesia trays cannot provide the necessary refrigeration, which means that additional equipment is needed to maintain the stability of these drugs, increasing the complexity and cost of surgical preparation.
[0007] In view of this, the inventors specifically designed a medicine tray structure for anesthesia, which led to this invention. Utility Model Content
[0008] To solve the above problems, the technical solution of this utility model is as follows:
[0009] A drug tray structure for anesthesia, comprising:
[0010] The chassis has an internal accommodating groove with an opening at the top.
[0011] The base is located in the receiving groove, and its upper surface is provided with several receiving areas for placing anesthetic drugs and instruments.
[0012] The flip cover is hinged to one side of the chassis receiving groove and is used to open or close the upper opening of the receiving groove. A hollow window is opened through the middle of the cover, which is opposite to the position of the bottom support. A transparent observation layer is provided inside the hollow window.
[0013] Flexible label paper is pasted onto a transparent observation layer, and it has label information that corresponds one-to-one with the receiving area.
[0014] Preferably, the chassis includes a main chassis and a functional chassis detachably connected to the bottom of the main chassis. The receiving groove is opened at the upper end of the main chassis, and the lower end of the main chassis is recessed inward to form an air guide groove that is vertically opposite to the receiving groove. A plurality of air guide holes are opened through the air guide groove and the receiving groove.
[0015] Preferably, the functional disk body is a solid disk or a hollow disk with functional grooves on the upper surface.
[0016] Preferably, the upper end of the functional disk body protrudes upward to form a boss portion, and a relief edge is formed between the boss portion and the outer edge of the functional disk body. The relief edge and the two sides of the boss portion are symmetrically provided with claws, and the inner walls of the main disk body and the two sides of the air guide groove are symmetrically provided with buckle grooves that engage with the claws.
[0017] Preferably, the claw includes a vertical part and a locking part vertically disposed at the top of the vertical part, the locking parts of the two claws are symmetrically distributed in opposite directions, and the locking groove extends through the inner wall of the air guide groove to the outer wall of the main disc.
[0018] Preferably, the opening of the air guide groove is inclined and has a guide groove that connects to the snap-fit groove.
[0019] Preferably, the outer side of the buckle groove and the outer wall of the main disc body is provided with a guide wall whose opening gradually narrows towards the inner side of the air guide groove.
[0020] Preferably, the upper end face of the receiving groove is provided with a plurality of lower lifting portions that form a gap between the bottom support and the bottom of the receiving groove, and the side wall of the receiving groove is provided with a plurality of side lifting portions that form a gap between the bottom support and the side wall of the receiving groove.
[0021] Preferably, the side-lifting portions are arranged in a linear horizontal distribution on the corresponding receiving groove sidewall, and the lower-lifting portions are arranged in an array on the bottom surface of the receiving groove.
[0022] Preferably, the transparent observation layer is a transparent glass plate, and there are two transparent observation layers that are fixed at intervals on the upper and lower sides of the perforated window, forming an air-filled heat-insulating area between the two transparent observation layers.
[0023] The beneficial effects of this utility model are as follows:
[0024] This utility model forms an upward-opening medicine tray structure through a chassis and a flip cover. The internal base and storage area solve the problem of storing and fixing anesthetic drugs and instruments. In addition, by opening a hollow window and setting a transparent observation layer on the flip cover, along with flexible label paper pasted on it, medical staff can quickly locate and identify anesthetic drugs and instruments. After opening the flip cover, the required drugs or instruments can be quickly obtained, solving the problem of time consumption.
[0025] In particular, this utility model solves the problem of refrigeration of some anesthetic drugs by using a detachable functional tray. When refrigeration is required, simply replace it with a hollow tray with a functional slot and put a temporary ice pack inside. The temperature can then be transferred to the receiving slot through the air channel and air hole to temporarily refrigerate and keep the anesthetic drugs on the base warm. There is no need to carry additional insulation equipment, which greatly reduces the complexity and cost of surgical preparation.
[0026] In addition, the lower and side lifting sections ensure adequate space between the base and the receiving slot, allowing for smoother airflow and enhanced refrigeration performance.
[0027] In addition, the double-layer transparent observation layer design not only provides a good view, but also forms an insulated area between the two layers, further enhancing the temperature stability within the container and ensuring more reliable refrigeration conditions for medicines. Attached Figure Description
[0028] The accompanying drawings, which are provided to further illustrate the present invention and constitute a part of the present invention, illustrate exemplary embodiments of the present invention and are used to explain the present invention, but do not constitute an undue limitation of the present invention.
[0029] in:
[0030] Figure 1 This is a schematic diagram of the open state of this utility model;
[0031] Figure 2 This is a schematic diagram of the overall structure of this utility model;
[0032] Figure 3 This is a top view of the structure of this utility model;
[0033] Figure 4 This is a cross-sectional structural schematic diagram of the present invention;
[0034] Figure 5 This is one of the exploded structural diagrams of this utility model;
[0035] Figure 6 This is the second exploded structural diagram of this utility model.
[0036] Label Explanation:
[0037] 100. Chassis; 101. Receiving groove; 102. Air guide groove; 103. Air guide hole; 110. Main plate body; 120. Functional plate body; 121. Boss part; 122. Leaving edge; 130. Claw; 131. Vertical part; 132. Snap-fit part; 140. Snap-fit groove; 141. Guide wall; 142. Guide groove; 150. Lower lifting part; 160. Side lifting part; 200. Base support; 201. Receiving area; 300. Flip cover; 301. Hollow window; 302. Transparent observation layer; 303. Paddle; 400. Flexible label paper; 401. Label information. Detailed Implementation
[0038] To make the technical problem to be solved, the technical solution, and the beneficial effects of this utility model clearer and more understandable, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.
[0039] Please see Figures 1 to 6 This is a preferred embodiment of the present invention, a medicine tray structure for anesthesia, which mainly includes the following parts:
[0040] Chassis 100: It has an accommodating groove 101 with an opening at the top.
[0041] Base 200: Located in the receiving groove 101, its upper surface is provided with several receiving areas 201 for placing anesthetic drugs and instruments.
[0042] Flip cover 300: Hinged to one side of the receiving groove 101 of the chassis 100, used to open or close the upper opening of the receiving groove 101, with a hollow window 301 through the middle, which is opposite to the position of the base 200, and a transparent observation layer 302 is provided inside the hollow window 301.
[0043] In addition, a lever 303 is integrally provided on the side of the flip cover 300 away from its hinge position, so that the user can control the flipping movement of the flip cover 300 by means of the lever 303.
[0044] Flexible label paper 400: pasted on the transparent observation layer 302, with label information 401 corresponding to the accommodating area 201. In this embodiment, the flexible label paper 400 is a semi-transparent matte paper, with label information 401 corresponding to the anesthetic drugs and instruments in the accommodating area 201 printed on it, so as to facilitate quick identification and retrieval by the user. Depending on the actual items stored, the semi-transparent matte paper can also be replaced to realize the reuse of the anesthetic drug tray.
[0045] Chassis 100 structure
[0046] Main body 110: The main body of the chassis 100, with its upper end recessed downward to form a receiving groove 101, and its lower end recessed upward to form an air guide groove 102 opposite to the receiving groove 101. A plurality of air guide holes 103 are provided through the air guide groove 102 and the receiving groove 101. In this embodiment, the air guide holes 103 are linear waist-shaped holes, and the plurality of waist-shaped holes are arranged in an array at the bottom of the receiving groove 101, thereby allowing cold air to pass through over a large area and enhancing the refrigeration effect.
[0047] In addition, to further enhance the refrigeration effect and prevent condensation from affecting the medicine trays and instruments, some additional desiccant packs (not shown in the figure) can be placed in the receiving tank 101.
[0048] Functional disc 120: Detachably connected to the bottom of the main disc 110, it can be a solid disc or a hollow disc with a functional groove (not shown in the figure) on the upper surface. The functional groove can be combined with the air guide groove 102 to form a larger receiving area for placing temporary ice packs. The upper surface of the functional disc 120 protrudes upward to form a boss 121, and a relief edge 122 is formed between the boss 121 and the outer edge of the functional disc 120. Claws 130 are symmetrically provided on both sides of the relief edge 122, and the inner wall of the main disc 110 is symmetrically provided with latching grooves 140 that engage with the claws 130.
[0049] Buckle structure
[0050] The claw 130 includes a vertical part 131 and a locking part 132 vertically disposed at the top of the vertical part 131. The locking parts 132 of the two claws 130 are symmetrically distributed in opposite directions.
[0051] Thus, the function panel 120 can be easily connected to the bottom of the main panel 110 by the latch 130, and the through design of the latch groove 140 can facilitate the replacement of the function panel 120.
[0052] The snap-fit groove 140 extends through the inner wall of the air guide groove 102 to the outer wall of the main disc 110. A guide wall 141 is provided on the outer side of the snap-fit groove 140, and the opening of the guide wall 141 gradually narrows towards the inner side of the air guide groove 102.
[0053] The guide wall 141 is designed so that medical staff can quickly insert a rod-shaped object into the buckle slot 140 and push the buckle part 132 of the claw 130 out of the buckle slot 140, thereby facilitating the disassembly of the function panel 120.
[0054] Guide groove 142: The opening of the air guide groove 102 is inclined and is provided with a guide groove 142 that connects to the snap-fit groove 140, which facilitates the installation and disassembly of the function panel 120.
[0055] The guide groove 142 enables the functional disk body 120 to be smoothly guided during the docking connection process with the bottom of the main disk body 110, so that it can be accurately and quickly guided into the latching groove 140 to complete the quick connection process between the claw 130 and the latching groove 140.
[0056] 101 design of the receiving slot
[0057] Lower lifting part 150: is provided on the upper end face of the receiving groove 101, so that a gap is formed between the bottom support 200 and the bottom of the receiving groove 101.
[0058] Side lifting portion 160: Provided on the side wall of receiving groove 101, so that a gap is formed between bottom support 200 and side wall of receiving groove 101. Side lifting portions 160 are arranged in a linear horizontal distribution, and lower lifting portions 150 are arranged in an array.
[0059] The lower lifting portion 150 and the side lifting portion 160 ensure that there is adequate space between the base 200 and the receiving slot 101 so that cold air can circulate more smoothly and enhance the refrigeration performance.
[0060] Transparent observation layer 302
[0061] Double-layer transparent glass plate: Two transparent observation layers 302 are provided, which are fixed at intervals on the upper and lower sides of the perforated window 301, and the two layers form an air-filled heat-insulating area (not shown in the figure).
[0062] The design of the double-layer transparent observation layer 302 not only provides a good view, but also forms an insulated area between the two layers, further enhancing the temperature stability within the container 101 and ensuring more reliable refrigeration conditions for medicines.
[0063] Application of Functional Disk 120
[0064] Refrigeration function: When refrigeration of anesthetic drugs is required, a hollow tray with functional slots can be used as the functional tray body 120, with a temporary ice pack inside. Through the air guide slot 102 and air guide hole 103, cold air can be transferred to the receiving slot 101 to temporarily refrigerate and keep the anesthetic drugs on the base tray 200 warm, without the need to carry additional refrigeration equipment.
[0065] Assemble the medicine tray:
[0066] The main disk body 110 and the function disk body 120 are connected together by the claw 130 and the latching slot 140.
[0067] A base tray 200 is placed in the receiving slot 101 of the main tray 110. The receiving area 201 on the base tray 200 is used to classify and place anesthetic drugs and instruments.
[0068] The flip cover 300 is hinged to one side of the chassis 100 to ensure that the flip cover 300 can be opened and closed freely.
[0069] A transparent observation layer 302 is installed inside the perforated window 301 of the flip cover 300, and a flexible label 400 is pasted on the transparent observation layer 302, indicating the purpose of each accommodating area 201.
[0070] Using the medicine tray:
[0071] Medical staff can quickly identify and locate the required anesthetic drugs or devices through the transparent observation layer 302 and the semi-transparent flexible label paper 400.
[0072] After opening the flip cover 300, the required medicines or instruments can be directly taken out from the storage area 201 of the base tray 200, which is simple and quick to operate.
[0073] If refrigeration of medicines is required, a hollow tray with a functional slot can be installed at the bottom of the chassis 100, and an ice pack can be placed in the functional slot. The refrigeration function can be achieved through the air guide slot 102 and the air guide hole 103.
[0074] The optimized design of this utility model's medicine tray structure not only improves the management efficiency of anesthetic drugs and instruments but also solves the problem of refrigeration and preservation, providing a safer and more convenient solution for medical practice.
[0075] The present invention has been described above with reference to the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any non-substantial improvements made using the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution to other situations without modification, are all within the protection scope of the present invention.
Claims
1. A medicine tray structure for anesthesia, characterized in that, include: The chassis (100) has an accommodating groove (101) with an opening at the top. The base (200) is located in the receiving groove (101), and its upper end surface is provided with several receiving areas (201) for placing anesthetic drugs and instruments. The flip cover (300) is hinged to one side of the receiving groove (101) of the chassis (100) and is used to open or close the upper opening of the receiving groove (101). A hollow window (301) is provided through the middle of the cover, which is opposite to the position of the base (200). A transparent observation layer (302) is provided inside the hollow window (301). Flexible label paper (400) is pasted on the transparent observation layer (302), and has label information (401) corresponding to the accommodating area (201) on it.
2. The drug tray structure for anesthesia according to claim 1, characterized in that, The chassis (100) includes a main body (110) and a functional body (120) detachably connected to the bottom of the main body (110). The receiving groove (101) is opened at the upper end of the main body (110). The lower end of the main body (110) is recessed inward to form an air guide groove (102) that is vertically opposite to the receiving groove (101). A plurality of air guide holes (103) are provided through the air guide groove (102) and the receiving groove (101).
3. The drug tray structure for anesthesia according to claim 2, characterized in that, The functional disk body (120) is a solid disk or a hollow disk with functional slots on the upper surface.
4. The drug tray structure for anesthesia according to claim 2, characterized in that, The upper end of the functional disk body (120) protrudes upward to form a boss (121). A relief edge (122) is formed between the boss (121) and the outer edge of the functional disk body (120). The relief edge (122) is provided with claws (130) symmetrically on both sides of the boss (121). The main disk body (110) is provided with buckle grooves (140) symmetrically on both sides of the inner wall of the air guide groove (102) to engage with the claws (130).
5. The drug tray structure for anesthesia according to claim 4, characterized in that, The claw (130) includes a vertical part (131) and a locking part (132) vertically disposed at the top of the vertical part (131). The locking parts (132) of the two claws (130) are symmetrically distributed in opposite directions. The locking groove (140) extends through the inner wall of the air guide groove (102) to the outer wall of the main disc (110).
6. The drug tray structure for anesthesia according to claim 5, characterized in that, The opening of the air guide groove (102) is inclined and has a guide groove (142) that is connected to the snap-fit groove (140).
7. The drug tray structure for anesthesia according to claim 5, characterized in that, The outer side of the buckle groove (140) and the outer side wall of the main disc body (110) is provided with a guide wall (141) that gradually narrows towards the inner side of the air guide groove (102).
8. The drug tray structure for anesthesia according to claim 2, characterized in that, The upper end face of the receiving groove (101) is provided with a plurality of lower lifting portions (150) that form a gap between the bottom support (200) and the bottom of the receiving groove (101), and the side wall of the receiving groove (101) is provided with a plurality of side lifting portions (160) that form a gap between the bottom support (200) and the side wall of the receiving groove (101).
9. A medicine tray structure for anesthesia according to claim 8, characterized in that, The side lifting portions (160) are arranged in a linear horizontal distribution on the side wall of the corresponding receiving groove (101), and the lower lifting portions (150) are arranged in an array on the bottom surface of the receiving groove (101).
10. A medicine tray structure for anesthesia according to claim 2, characterized in that, The transparent observation layer (302) is a transparent glass plate. There are two transparent observation layers (302) that are fixed at intervals on the upper and lower sides of the perforated window (301). An air-filled heat-insulating area is formed between the two transparent observation layers (302).