A medical ice maker housing design structure
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-08-14
AI Technical Summary
[0004](一)解决的技术问题:针对现有技术的不足,本实用新型提供了一种医用制冰机箱体设计结构,具备壳体易拆卸,内部设备易检修的优点,解决了设备安装和日常检修的问题
1、该医用制冰机箱体设计结构,通过装配腔前挡板、装配腔背板和装配腔长板采用可拆卸连接设计,使得在设备出现故障或需要检修时,可以根据具体检修位置单独拆卸相应的挡板,无需整体拆解,大大降低了拆卸和检修的难度,这种设计不仅提高了检修效率,还减少了因拆卸不当导致的设备损坏风险,有助于延长设备的使用寿命,制冷腔容积为制冰机本体整体体积的四分之一,使得制冷空间相对较小,有利于制冷剂迅速循环和交换热量,从而加快制冷速度,使设备在短时间内达到设定的温度,小空间制冷减少了冷量在传输过程中的损失,提升了制冷效率,使得设备的能量利用更加高效,减少了不必要的能量浪费,由于制冷腔的容积较小,为装配腔提供了更多的设置空间,使得散热制冷设备和零件的体积可以相应增加,有助于达到更低的温度需求,更大的散热空间和更高效的散热设备有助于提升设备的整体散热性能,确保设备在长时间运行下仍能保持稳定的工作状态,可拆卸的挡板设计使得在装配和生产过程中更加有序简单,有助于提高生产效率,同时,这种设计也便于对设备进行清洁和维护,确保设备的长期稳定运行。
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Figure CN224635650U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medical ice maker technology, specifically to a medical ice maker housing design structure. Background Technology
[0002] A medical ice maker is a type of ice-making equipment specifically designed for the medical field. It aims to produce ice that meets medical standards to meet the ice needs of medical institutions in scenarios such as surgery, treatment, and emergency care. Depending on the ice-making principle and application scenario, medical ice makers can be divided into several types, including direct-cooling ice makers, air-cooling ice makers, water-cooling ice makers, and sterile ice makers (also known as sterile saline ice makers).
[0003] Air-cooled ice makers typically require relatively high temperatures to freeze internal saline solutions, necessitating high-power refrigeration equipment. However, this equipment is usually quite large, causing significant inconvenience during assembly and routine maintenance. It requires considerable time to install or disassemble the ice maker's casing, reducing production and maintenance efficiency. Utility Model Content
[0004] (I) Technical problem to be solved: In view of the shortcomings of the existing technology, this utility model provides a medical ice maker housing design structure, which has the advantages of easy disassembly of the shell and easy maintenance of the internal equipment, thus solving the problems of equipment installation and daily maintenance.
[0005] (II) Technical Solution: To achieve the above-mentioned purpose of easy disassembly of the shell and easy maintenance of the internal equipment, this utility model provides the following technical solution: A medical ice maker housing design structure, including an ice maker body, the ice maker body is in the shape of a freezer and is provided with a cabinet door, the ice maker body is provided with a refrigeration cavity and an assembly cavity for refrigeration and ice making, the assembly cavity is provided with a refrigeration module, the assembly cavity on the side of the refrigeration cavity is used to introduce cold air into the refrigeration cavity, the assembly cavity located below the refrigeration cavity is used to reduce the gas temperature, the assembly cavity located below the refrigeration cavity is provided with a front baffle and a back plate respectively, the assembly cavity front baffle is provided above the assembly cavity front baffle, the assembly cavity long plate is provided on the outside of the assembly cavity on the side of the refrigeration cavity, the assembly cavity front baffle, the assembly cavity back plate and the assembly cavity long plate are detachably connected and can be removed individually.
[0006] Preferably, the cooling cavity is vertically arranged and is rectangular in shape. The volume of the cooling cavity is smaller than that of the assembly cavity. The cooling cavity is provided with a cooling cavity bottom plate, which is detachably connected.
[0007] Preferably, an ice maker back plate is provided above the assembly cavity back plate, and a motor and control circuit are provided inside the ice maker back plate.
[0008] Preferably, the assembly cavity is provided with a partition, which is a two-layer plate with a gap in the middle, and the two layers of plates are connected by a hollow column, through which gas exchange is realized between the upper and lower layers of the partition.
[0009] Preferably, the cross-sectional size of the lower region of the partition is the same as that of the front baffle and the back plate of the assembly cavity, and the cross-sectional size of the upper region of the partition is the same as that of the long plate of the assembly cavity.
[0010] (III) Beneficial Effects: Compared with the prior art, this utility model provides a medical ice maker housing design structure, which has the following beneficial effects: 1. The medical ice maker's housing design features a detachable connection between the front baffle, back plate, and long plate of the assembly cavity. This allows for individual removal of the corresponding baffles based on the specific repair location when the equipment malfunctions or requires maintenance, eliminating the need for overall disassembly. This significantly reduces the difficulty of disassembly and maintenance, improving efficiency and reducing the risk of damage due to improper disassembly, thus extending the equipment's lifespan. The cooling cavity volume is one-quarter of the ice maker's overall volume, resulting in a relatively small cooling space that facilitates rapid refrigerant circulation and heat exchange, accelerating cooling and allowing the equipment to reach the set temperature quickly. The small cooling space also reduces the need for refrigerant cooling. The reduction of cold energy loss during transmission improves refrigeration efficiency, making the equipment more energy-efficient and reducing unnecessary energy waste. Due to the smaller volume of the refrigeration chamber, more space is provided for the assembly chamber, allowing for a corresponding increase in the size of the heat dissipation and refrigeration equipment and parts, which helps to achieve lower temperature requirements. The larger heat dissipation space and more efficient heat dissipation equipment help improve the overall heat dissipation performance of the equipment, ensuring that the equipment can maintain a stable working state even after long-term operation. The detachable baffle design makes the assembly and production process more orderly and simple, which helps to improve production efficiency. At the same time, this design also facilitates the cleaning and maintenance of the equipment, ensuring the long-term stable operation of the equipment.
[0011] 2. The medical ice maker's housing design divides the assembly cavity into upper and lower sections using a partition. A well-designed airflow channel (i.e., a hollow column) facilitates gas exchange between the upper and lower sections. This design optimizes the airflow path within the assembly cavity, ensuring uniform and efficient flow of cold air throughout, thus improving heat dissipation. The partition, acting as a support structure within the assembly cavity, enhances its overall stability. Especially in large ice makers where the assembly cavity is relatively large in volume and weight, the partition helps prevent deformation or damage during long-term use. The upper and lower sections of the partition are matched with the front baffle, back plate, and long plate of the assembly cavity, respectively. This design allows for a more orderly and compact equipment layout. Furthermore, during maintenance or repair, the corresponding baffles can be removed without damaging the partition structure, improving maintenance convenience. The partition also helps reduce cold loss within the assembly cavity. Through the rational design of the airflow channels and heat dissipation area, the efficient use of cold air within the assembly cavity is ensured, minimizing unnecessary cold waste. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of the present utility model. Figure 1 ; Figure 2 This is a schematic diagram of the structure of the present utility model. Figure 2 ; Figure 3 This is a schematic diagram of the structure of the present utility model. Figure 3 ; Figure 4 This is a schematic diagram of the structure of the present utility model. Figure 4 ; Figure 5 This is a schematic diagram of the structure of the present utility model. Figure 5 ; Figure 6 This is a schematic diagram of the partition structure of this utility model.
[0013] In the diagram: 1. Ice maker body; 11. Cooling chamber; 12. Assembly chamber; 101. Partition; 111. Cooling chamber bottom plate; 112. Assembly chamber long plate; 113. Ice maker back plate; 121. Assembly chamber front baffle; 122. Assembly chamber back plate. Detailed Implementation
[0014] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0015] Please see Figures 1-5 A medical ice maker housing design structure includes an ice maker body 1, which is freezer-shaped and has a door. The ice maker body 1 contains a refrigeration chamber 11 and an assembly chamber 12 for ice making. A refrigeration module is located within the assembly chamber 12. The assembly chamber 12 on the side of the refrigeration chamber 11 is used to introduce cold air into the refrigeration chamber 11, and the assembly chamber 12 located below the refrigeration chamber 11 is used to lower the gas temperature. The assembly chamber 12 located below the refrigeration chamber 11 has a front baffle 121 and a back plate 122 at its front and rear, respectively. An assembly chamber elongated plate 112 is located above the front baffle 121 and is positioned on the outer side of the assembly chamber 12 on the side of the refrigeration chamber 11. The assembly chamber front baffle 121, the assembly chamber back plate 122, and the assembly chamber elongated plate 112 are detachably connected and can be removed individually.
[0016] See Figures 3-5 The cooling cavity 11 has a cooling cavity base plate 111 at its bottom, which is detachably connected. An ice maker back plate 113 is provided above the assembly cavity back plate 122. The ice maker back plate 113 contains a motor and control circuit. The motor and control circuit can be observed by removing the back plate. The cooling cavity 11 is vertically arranged and is rectangular in shape. The volume of the cooling cavity 11 is smaller than that of the assembly cavity 12. The cooling cavity 11 has a cooling cavity base plate 111 at its bottom, which is detachably connected.
[0017] The refrigeration module inside assembly cavity 12 includes components such as a compressor, condenser, expansion valve, and evaporator to cool the gas, and then introduces the cooled gas into refrigeration cavity 11. When equipment malfunctions or requires maintenance, the front baffle 121, back plate 122, and long plate 112 of the assembly cavity can be individually disassembled according to the maintenance location. For example, when the cooling effect is poor, the compressor, evaporator, and condenser located at the bottom can be inspected by disassembling the front baffle 121 and back plate 122. When the air intake is low, the long plate 112 can be disassembled to observe the motor operation status at the air inlet. This significantly reduces the difficulty of disassembly and maintenance during maintenance. At the same time, the assembly and production processes are more orderly and simpler. The small volume of the refrigeration chamber 11 means that the layout of the refrigeration system can be more compact, reducing the loss of cold energy during transmission and improving refrigeration efficiency. The small space is conducive to the rapid circulation and heat exchange of the refrigerant, thereby accelerating the cooling speed and enabling the equipment to reach the set temperature in a short time. It also effectively increases the setting space of the assembly chamber 12, increasing the volume of heat dissipation and refrigeration equipment and parts, so that they can meet lower temperature requirements. The small refrigeration space also reduces the required refrigeration capacity, thus reducing the energy consumption of the equipment. Small-space refrigeration makes the energy utilization of the equipment more efficient and reduces unnecessary energy waste.
[0018] A functional area is provided between the back plate 113 of the ice maker and the cooling cavity 11, and a motor and control circuit are provided in the functional area.
[0019] See Figure 6 The assembly cavity 12 is provided with a partition 101. The partition 101 is a two-layer plate with a gap in the middle, and the two layers of plates are connected by a hollow column. The hollow column enables direct gas exchange between the upper and lower layers of the partition 101. The cross-sectional size of the lower region of the partition 101 is the same as that of the front baffle 121 and the back plate 122 of the assembly cavity, and the cross-sectional size of the upper region of the partition 101 is the same as that of the long plate 112 of the assembly cavity.
[0020] Working principle: The device includes an ice maker body 1, which is freezer-shaped and has a door. Inside the ice maker body 1 are a cooling chamber 11 and an assembly chamber 12 for ice making. The assembly chamber 12 contains a cooling module. The assembly chamber 12 on the side of the cooling chamber 11 is used to introduce cold air into the cooling chamber 11. The assembly chamber 12 located below the cooling chamber 11 is used to lower the gas temperature. The assembly chamber 12 located below the cooling chamber 11 has a front baffle 121 and a back plate 122 at its front and rear, respectively. An assembly cavity elongated plate 112 is provided above the refrigeration cavity 11. The assembly cavity elongated plate 112 is located on the outer side of the assembly cavity 12 on the side of the refrigeration cavity 11. The assembly cavity front baffle 121, the assembly cavity back plate 122, and the assembly cavity elongated plate 112 are detachably connected and can be removed individually. The assembly cavity 12 includes components such as a compressor, condenser, expansion valve, and evaporator to cool the gas and then introduce the cooled gas into the refrigeration cavity 11. In case of equipment failure or maintenance, the assembly cavity front baffle 121 and the assembly cavity back plate 112 can be adjusted according to the maintenance location. The assembly cavity long plate 112 and 22 can be disassembled separately. For example, when the cooling effect is poor, the compressor, evaporator and condenser at the bottom can be inspected by disassembling the front baffle 121 and the back plate 122 of the assembly cavity. When the air intake is small, the assembly cavity long plate 112 can be disassembled to observe the working status of the motor at the air intake. During maintenance, the disassembly and maintenance difficulty can be greatly reduced. At the same time, the assembly and production are more orderly and simple. The small volume of the refrigeration cavity 11 means that the layout of the refrigeration system can be more compact, reducing the loss of cold energy during the transmission process and improving the refrigeration efficiency. The small space is conducive to the rapid circulation and heat exchange of the refrigerant, thereby accelerating the cooling speed and enabling the equipment to reach the set temperature in a short time. It also effectively increases the setting space of the assembly cavity 12, increases the volume of heat dissipation and refrigeration equipment and parts, and enables them to achieve lower temperature requirements. The small refrigeration space also reduces the required cooling capacity, so the energy consumption of the equipment will also be reduced. Small space refrigeration makes the energy utilization of the equipment more efficient and reduces unnecessary energy waste.
[0021] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0022] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A medical ice maker cabinet design structure, comprising an ice maker body (1), the ice maker body (1) is in the shape of a freezer, and is provided with a cabinet door, and the ice maker body (1) is provided with a refrigeration cavity (11) and an assembly cavity (12) for refrigeration and ice making, and the assembly cavity (12) is provided with a refrigeration module, characterized in that: the assembly cavity (12) on the side of the refrigeration cavity (11) is used for introducing cold air into the refrigeration cavity (11), and the assembly cavity (12) below the refrigeration cavity (11) is used for reducing the temperature of the gas, and the assembly cavity (12) below the refrigeration cavity (11) is respectively provided with an assembly cavity front baffle (121) and an assembly cavity back plate (122) in front and back, and the assembly cavity front baffle (121) is provided with an assembly cavity long plate (112) above, the assembly cavity long plate (112) is arranged outside the assembly cavity (12) on the side of the refrigeration cavity (11), and the assembly cavity front baffle (121), the assembly cavity back plate (122) and the assembly cavity long plate (112) are detachably connected and can be individually removed.
2. The medical ice maker cabinet design structure according to claim 1, characterized in that: The refrigeration cavity (11) is vertically arranged and has a rectangular shape as a whole, the volume of the refrigeration cavity (11) is smaller than that of the assembly cavity (12), and the refrigeration cavity (11) is provided with a refrigeration cavity bottom plate (111) at the bottom, and the refrigeration cavity bottom plate (111) is detachably connected.
3. The medical ice maker cabinet design structure according to claim 1, characterized in that: The assembly cavity back plate (122) is provided with an ice maker back plate (113) above, and the ice maker back plate (113) is provided with a functional area between the refrigeration cavity (11), and the functional area is provided with a motor and a control circuit.
4. The medical ice maker cabinet design structure according to claim 1, characterized in that: The assembly cavity (12) is provided with a partition plate (101), the partition plate (101) is a two-layer plate with a gap in the middle, and the two layers are connected by a hollow column, and the upper layer and the lower layer of the partition plate (101) are directly exchanged by the hollow column.
5. A medical ice maker cabinet design structure according to claim 4, characterized in that: The cross-sectional size of the lower layer area of the partition plate (101) is the same as that of the assembly cavity front baffle (121) and the assembly cavity back plate (122), and the cross-sectional size of the upper layer area of the partition plate (101) is the same as that of the assembly cavity long plate (112).