Treatment cup heating device

By designing a heating device for the treatment cup and utilizing an extraction tube and liquefaction mechanism to handle the vapors of the medicine, the problem of increased humidity after heating the medicine was solved, thus achieving stable humidity in the operating room.

CN223484538UActive Publication Date: 2025-10-28NANXISHAN HOSPITAL OF GUANGXI ZHUANG AUTONOMOUS REGION
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Patent Information

Application Number
CN202422526795.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-18
Publication Date
2025-10-28
Estimated Expiration
2034-10-18

AI Technical Summary

Technical Problem

In the operating room, the water vapor produced when the medicine is heated increases the humidity, affecting the temperature balance.

Method used

A heating device for a therapeutic cup was designed, comprising an air extraction tube, a drive unit, a liquefaction mechanism, a condensation component, and a cooling component. It reduces the impact of exhaust air on indoor humidity by drawing water vapor above the medicinal solution and liquefying it into water.

Benefits of technology

It effectively reduces the impact of water vapor from heated medicine on the humidity of the operating room, maintaining the temperature balance within the operating room.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a treatment cup heating device, which belongs to the related technical field of medical instruments and comprises a device plate, a heating base is connected onto the device plate, a placing groove for placing a cup is arranged on the heating base, the depth of the placing groove is larger than the height of the cup, and a heating piece for heating liquid medicine is arranged on the heating base. The cup heating device further comprises an air suction pipe which is connected to the heating base and is higher than the position where the containing groove is located, the air suction pipe is arranged above the containing groove so as to suck water vapor flowing above the cup piece, and then the cup piece can be cooled under the action of the condensation assembly, the compressor body and the cooling assembly of the cup piece. Water in the water vapor is liquefied into water, the air without the water is discharged into a room, so that the influence of the discharged air on the indoor humidity is reduced, in the process, the water vapor generated after the liquid medicine is heated is extracted and treated, and the influence of the water vapor of the liquid medicine on the humidity in the operating room is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of medical device technology, and in particular to a heating device for a treatment cup. Background Technology

[0002] During surgery in a hospital operating room, medications are frequently used. These medications are usually stored in specific cups without lids, allowing for easy access. When not in use, the medications are placed on the table. To ensure that the medications do not cause tactile irritation to the patient, they are usually heated.

[0003] When the medicine inside the cup is heated, water vapor will form above it. When the medicine is used for a long time and heated for a long time, the water vapor will gradually affect the surrounding humidity. For operating rooms, the humidity is kept within a suitable range. When the water vapor formed by the medicine permeates the operating room, the increase in humidity will affect the temperature balance of the operating room and cause other problems. Utility Model Content

[0004] This utility model provides a heating device for a therapeutic cup to solve the aforementioned technical problems.

[0005] This utility model embodiment adopts the following technical solution: It includes a device plate, on which a heating base is connected. The heating base has a placement groove for placing a cup, and the depth of the placement groove is greater than the height of the cup. The heating base has a heating element for heating the medicine. It also includes: a vacuum pipe connected to the heating base and positioned above the placement groove, with several vacuum holes on the side of the vacuum pipe near the placement groove; a driving component that extracts air from inside the vacuum pipe through a vent pipe; and a liquefaction mechanism. The output end of the driving component is connected to the liquefaction mechanism, which liquefies the water vapor extracted by the driving component. The driving component uses the vent pipe to extract air from inside the vacuum pipe, and then through the vacuum holes, water vapor above the cup is drawn into the vacuum pipe. The water vapor is then transported along the vent pipe to the liquefaction mechanism, where the liquefaction mechanism removes moisture from the water vapor.

[0006] Furthermore, it also includes a soundproof box connected to the device plate, the liquefaction mechanism being disposed inside the soundproof box, the liquefaction mechanism including a condensation component, a compressor body and a cooling component, the condensation component being used to liquefy water vapor into water, and the cooling component being used to cool the refrigerant.

[0007] Furthermore, the condensation assembly includes a housing connected inside a soundproof box, several condensing plates connected inside the housing, and a pipe that passes through and connects the several condensing plates. The output end of the drive unit extends into the housing, and the input end of the pipe is connected to the output end of the compressor body. A water collection tank is provided below the several condensing plates. A liquefaction mechanism is used to remove moisture from the water vapor, and finally the air with the moisture removed is discharged to reduce the impact of the discharged air on the indoor humidity.

[0008] Furthermore, the cooling assembly includes a semi-enclosed housing II, several heat dissipation plates connected inside the housing II, a cooling fan connected to one end of the housing II, and a pipe II that passes through and connects the several heat dissipation plates. The input end of the pipe II is connected to the output end of the pipe I, and the output end of the pipe II is connected to the input end of the compressor body. The cooling fan is positioned corresponding to the several heat dissipation plates to facilitate the cyclic operation of the compressor main unit.

[0009] Furthermore, an insulation pad is connected to the inner wall of the placement slot to reduce the temperature loss of the cup and thus reduce the power consumption of the device.

[0010] Furthermore, the heating base is equipped with a temperature sensor for sensing the temperature of the cup, which facilitates real-time monitoring of the temperature of the cup and the medicine.

[0011] Furthermore, the device board has a controller, the output terminal of the temperature sensor is connected to the input terminal of the controller, and the output terminal of the controller is connected to the heating element. After receiving the temperature electrical signal output by the temperature sensor, the controller outputs a control signal, which controls the operating power of the heating element to facilitate constant temperature treatment of the medicine.

[0012] The above-mentioned technical solutions adopted in the embodiments of this utility model can achieve the following beneficial effects:

[0013] In this invention, an extraction pipe is installed above the placement slot to draw in the water vapor flowing above the cup. Then, under the action of its condensation component, compressor body, and cooling component, the water vapor in the water vapor is liquefied into water, and the air with the moisture removed is discharged into the room, thereby reducing the impact of the discharged air on the indoor humidity. During this process, the water vapor generated after heating the medicine is extracted and treated, reducing the impact of the medicine water vapor on the humidity of the operating room and preventing the temperature balance of the operating room from being affected. Attached Figure Description

[0014] The drawings described herein are used to provide a further understanding of the present invention and constitute a part of the present invention. The exemplary embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation of the present invention. In the drawings:

[0015] Figure 1 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 1 ;

[0016] Figure 2 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 2 ;

[0017] Figure 3 This is a cross-sectional view of the present invention;

[0018] Figure 4 This is a partial structural schematic diagram of the present invention;

[0019] Figure 5 This utility model Figure 4 A partial structural diagram;

[0020] Figure 6 This is a schematic diagram of the liquefaction mechanism of this utility model;

[0021] Figure 7 This is a schematic diagram of the condenser assembly structure of this utility model;

[0022] Figure 8 This is a schematic diagram of the cooling component and the main structure of the compressor of this utility model.

[0023] Figure Labels

[0024] Device plate 1, soundproof box 110, heating base 2, placement slot 21, heating element 3, air extraction pipe 4, air extraction hole 41, driving element 5, air guide pipe 51, compressor body 6, box one 7, condenser plate 71, pipe fitting one 72, water collection tank 73, box two 8, heat dissipation plate 81, cooling fan 82, pipe fitting two 83, insulation pad 9, temperature sensor 10, controller 11. Detailed Implementation

[0025] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0026] The following is in conjunction with the appendix Figure 1-8The technical solutions provided by each embodiment of this utility model are described in detail below.

[0027] This utility model embodiment provides a therapeutic cup heating device, including a device plate 1, a heating base 2 connected to the device plate 1, a placement groove 21 for placing the cup, and the depth of the placement groove 21 being greater than the height of the cup; a heating element 3 for heating the medicine on the heating base 2; and a suction pipe 4 connected to the heating base 2 and positioned above the placement groove 21. The suction pipe 4 has several suction holes 41 on the side near the placement groove 21, allowing the input end of the suction holes 41 to contact and draw in the water vapor flowing above the cup; a driving element 5, which can be an air pump, fan, or vacuum pump, depending on the requirements; the driving element 5 draws air from inside the suction pipe 4 through a duct 51; and a liquefaction mechanism, the output end of the driving element 5 connected to the liquefaction mechanism, which liquefies the water vapor drawn in by the driving element 5.

[0028] In use, the cup containing the medicine is placed in the placement slot 21, and then the medicine is heated by the heating base 2. As the temperature of the medicine gradually rises, water vapor will form above the medicine and flow upward. At this time, the drive unit 5 is activated. The drive unit 5 uses the air guide pipe 51 to extract the air from the inside of the air extraction pipe 4. At this time, a negative pressure is formed inside the air extraction pipe 4 and at the position of the air extraction hole 41. Then, the water vapor above the cup is attracted into the air extraction pipe 4 through the air extraction hole 41. Then, the water vapor is transported to the liquefaction mechanism along the air guide pipe 51. Then, the liquefaction mechanism removes the moisture from the water vapor. Finally, the air with the moisture removed is discharged to reduce the impact of the discharged air on the indoor humidity.

[0029] It also includes a soundproof box 110 connected to the device plate 1. The liquefaction mechanism is set inside the soundproof box 110. When the liquefaction mechanism is in operation, the soundproof box 110 can reduce the noise of the liquefaction mechanism. The liquefaction mechanism includes a condensing component, a compressor body 6, and a cooling component. The condensing component is used to liquefy water vapor into water, and the cooling component is used to cool the refrigerant. When the above structure is in operation, coolant flows in the condensing component, the compressor body 6, and the cooling component. The compressor body 6 draws in the low-temperature and low-pressure refrigerant gas and outputs the high-temperature and high-pressure refrigerant. Utilizing the physical reaction of evaporation and heat absorption, the refrigerant is introduced into the condensing component by the compressor body 6. The condensing component will lower the temperature accordingly. When the water vapor encounters the cold, the water inside it liquefies into water. The cooling component is used to cool the refrigerant, so that it returns to a liquid state, so that the compressor host can circulate.

[0030] like Figure 6-8As shown, the condensing assembly includes a housing 7 connected inside the soundproof box 110, several condensing plates 71 connected inside the housing, and a pipe 72 that passes through and connects the several condensing plates 71. The output end of the drive unit 5 extends into the housing 7, and the input end of the pipe 72 is connected to the output end of the compressor body 6. A water collection tank 73 is provided below the several condensing plates 71. High-temperature and high-pressure coolant flows inside the pipe 72. Then, the coolant cools the several condensing plates 71 by evaporating and absorbing heat. Water vapor liquefies into water after encountering the cooled condensing plates 71, and the water is then collected in the water collection tank 73.

[0031] The cooling assembly includes a semi-enclosed housing 8, several heat dissipation plates 81 connected inside the housing 8, a cooling fan 82 connected to one end of the housing 8, and a pipe 83 that passes through and connects the heat dissipation plates 81. The input end of the pipe 83 is connected to the output end of the pipe 72, and the output end of the pipe 83 is connected to the input end of the compressor body 6. The cooling fan 82 is positioned corresponding to the heat dissipation plates 81. The coolant flowing inside the pipe 72 flows into the pipe 83. The heat dissipation plates 81 increase the heat dissipation area of ​​the pipe 83. The cooling fan 82 accelerates the airflow between the heat dissipation plates 81, thereby accelerating the heat dissipation of the pipe 83. After the coolant is cooled and depressurized, it returns to a liquid state and is then received by the input end of the compressor body 6, and the above process is repeated.

[0032] Preferably, the heating base 2 is equipped with a temperature sensor 10 for sensing the temperature of the cup. After sensing the temperature of the cup, the temperature sensor 10 generates a corresponding temperature electrical signal. The device board 1 has a controller 11. The output terminal of the temperature sensor 10 is connected to the input terminal of the controller 11. The output terminal of the controller 11 is connected to the heating element 3. After receiving the temperature electrical signal output by the temperature sensor 10, the controller 11 outputs a control signal to control the operating power of the heating element 3. The controller 11 is connected to the drive element 5. When the heating element 3 heats the cup, the controller 11 will simultaneously start the drive element 5 to draw water vapor from above the cup. The real-time sensing of the cup temperature by the temperature sensor 10 facilitates the control of the power of the heating wire by the controller 11, thereby ensuring a constant temperature state of the cup.

[0033] like Figure 2 As shown, preferably, a heat-insulating pad 9 is connected to the inner wall of the placement slot 21 to reduce the temperature loss of the cup and thus reduce the power consumption of the device.

[0034] The above description is merely an embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of the claims of the present invention.

Claims

1. A therapeutic cup heating device, comprising a device plate (1), a heating base (2) connected to the device plate (1), the heating base (2) having a placement groove (21) for placing a cup, the depth of the placement groove (21) being greater than the height of the cup, and a heating element (3) for heating a medicinal solution on the heating base (2), characterized in that, Also includes: The suction pipe (4) is connected to the heating base (2) and is higher than the position of the placement groove (21). The suction pipe (4) has several suction holes (41) on the side near the placement groove (21). The driving component (5) extracts air from the inside of the air extraction pipe (4) through the air guide pipe (51); The liquefaction mechanism is connected to the output end of the drive (5), and the liquefaction mechanism is used to liquefy the water vapor extracted by the drive (5).

2. The therapeutic cup heating device according to claim 1, characterized in that, It also includes a soundproof box (110) connected to the device plate (1), the liquefaction mechanism is disposed in the soundproof box (110), the liquefaction mechanism includes a condensation component, a compressor body (6) and a cooling component, the condensation component is used to liquefy water vapor into water, and the cooling component is used to cool the refrigerant.

3. The therapeutic cup heating device according to claim 2, characterized in that, The condensation assembly includes a housing (7) connected inside a soundproof box (110), a plurality of condensing plates (71) connected inside the housing, and a pipe (72) that passes through and connects the plurality of condensing plates (71). The output end of the drive unit (5) extends into the housing (7), and the input end of the pipe (72) is connected to the output end of the compressor body (6). A water collection tank (73) is provided below the plurality of condensing plates (71).

4. The therapeutic cup heating device according to claim 3, characterized in that, The cooling assembly includes a semi-enclosed housing 2 (8), several heat dissipation plates (81) connected inside the housing 2 (8), a cooling fan (82) connected to one end of the housing 2 (8), and a pipe 2 (83) that passes through and connects the several heat dissipation plates (81). The input end of the pipe 2 (83) is connected to the output end of the pipe 1 (72), and the output end of the pipe 2 (83) is connected to the input end of the compressor body (6). The cooling fan (82) is positioned corresponding to the several heat dissipation plates (81).

5. The therapeutic cup heating device according to claim 1, characterized in that, An insulation pad (9) is connected to the inner wall of the placement slot (21).

6. The therapeutic cup heating device according to claim 1, characterized in that, The heating base (2) is equipped with a temperature sensor (10) for sensing the temperature of the cup.

7. The therapeutic cup heating device according to claim 6, characterized in that, The device board (1) is equipped with a controller (11). The output end of the temperature sensor (10) is connected to the input end of the controller (11). The output end of the controller (11) is connected to the heating element (3). After receiving the temperature electrical signal output by the temperature sensor (10), the controller (11) outputs a control signal, which controls the operating power of the heating element (3).