Refrigeration house equipment state data unvarnished transmission gateway device
By introducing a circulating water cooling system and a blower assembly into the cold storage equipment status data pass-through gateway device, the problem of low heat dissipation efficiency of the cold storage equipment status data pass-through gateway is solved, and a high-efficiency heat dissipation effect is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGXIA WANSHILONG FREEZING SCI & TECH CO LTD
- Filing Date
- 2025-04-21
- Publication Date
- 2026-04-17
AI Technical Summary
The existing cold storage equipment status data pass-through gateway has low heat dissipation efficiency, mainly due to the slow airflow in indoor environments, which results in poor heat dissipation performance of the heat dissipation fins.
The system employs T-shaped heat exchange plates and heat exchange coils that are equidistantly fixed on the upper surface of the transparent gateway body. These are combined with a cooling water tank, a small circulating pump, and a chiller to form a circulating water cooling system. The airflow is increased by a blower assembly to enhance the heat dissipation effect.
By using circulating water cooling and enhanced airflow, the heat dissipation efficiency of the cold storage equipment status data transmission gateway is significantly improved, ensuring that the equipment operates at high efficiency.
Smart Images

Figure CN224139090U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of bottle making machine production technology, and in particular to a gateway device for transmitting status data of cold storage equipment. Background Technology
[0002] A cold storage equipment status data transparent transmission gateway is a device that enables transparent transmission of cold storage equipment status data. Its structure mainly includes a shell and a central processing unit module, a storage module, and network interfaces such as Ethernet, serial port, and CAN, which are set inside the shell. It is also equipped with an embedded Linux or RTOS operating system, as well as TCP / IP protocol stack, serial communication protocol, CAN bus protocol, etc.
[0003] However, existing pass-through gateways for cold storage equipment status data rely solely on heat dissipation fins on their outer casing for cooling during actual use. The heat dissipation efficiency of these fins is affected by the airflow velocity in contact with them. Since these gateways are installed indoors, the surrounding airflow is relatively slow, resulting in poor heat dissipation performance. Therefore, this application proposes a pass-through gateway device for cold storage equipment status data. Utility Model Content
[0004] This utility model discloses a cold storage equipment status data transparent transmission gateway device, which aims to solve the technical problem of low heat dissipation efficiency mentioned in the background art.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] The cold storage equipment status data pass-through gateway device includes:
[0007] The transparent transmission gateway body is used to transparently transmit the status data of cold storage equipment. The transparent transmission gateway body includes an outer shell and a central processing unit module, a storage module and a network interface respectively disposed inside the outer shell. The transparent transmission gateway body is equipped with an embedded Linux or RTOS operating system, as well as a TCP / IP protocol stack, a serial communication protocol and a CAN bus protocol.
[0008] A heat dissipation assembly is used to dissipate heat from the transparent transmission gateway body. The heat dissipation assembly includes several heat exchange plates that are equidistantly fixed on the upper surface of the transparent transmission gateway body and extend into the interior of the transparent transmission gateway body. The heat exchange plates have a T-shaped cross-section, and heat exchange coils are provided inside the heat exchange plates. The heat dissipation assembly also includes a cooling water tank fixed on the outer surface of the transparent transmission gateway body, and a small circulating pump disposed on the surface of the cooling water tank. A cooler is disposed on the side of the cooling water tank, and the cooling end of the cooler extends into the interior of the cooling water tank.
[0009] In a preferred embodiment, both the heat exchange plate and the heat exchange coil are made of pure copper.
[0010] By using pure copper as the material for the heat exchange plates and heat exchange coils, the heat exchange plates and heat exchange coils can exchange heat quickly.
[0011] In a preferred embodiment, the inlet end of the small circulating pump extends to the bottom of the cooling water tank, the outlet end of the small circulating pump is provided with a delivery pipe communicating with the inlet end of the heat exchange coil, and the outlet end of the heat exchange coil is provided with a return pipe extending into the interior of the cooling water tank.
[0012] By setting up infusion pipes and return pipes, water in the cooling water tank can be transported to the heat exchange coil through the infusion pipe, and the water after heat exchange can be transported back to the cooling water tank through the return pipe.
[0013] In a preferred embodiment, the back of the transparent gateway body is provided with a blowing assembly corresponding to a plurality of heat exchange plates. The blowing assembly includes a horizontal tube disposed on the back of the transparent gateway body and air outlets equidistantly provided on the surface of the horizontal tube and corresponding to the gap between two adjacent heat exchange plates.
[0014] By setting horizontal tubes and air outlets, airflow can be discharged through the air outlets into the gap between two adjacent heat exchange plates, thereby effectively increasing the air velocity around the heat exchange plates and improving the heat exchange efficiency.
[0015] In a preferred embodiment, the surface of the return pipe is provided with a U-shaped tube, and the return pipe is connected to the U-shaped tube. The horizontal tube is fixed to the end of the U-shaped tube and is connected to the U-shaped tube.
[0016] By setting up a U-shaped tube, airflow can be allowed to enter the interior of the horizontal tube through the U-shaped tube.
[0017] In a preferred embodiment, a sealing plate is fixedly provided on the inner wall of the U-shaped tube, and a rotating shaft passing through the sealing plate is rotatably provided on the inner wall of the U-shaped tube, and an impeller corresponding to the return pipe is fixedly provided on the surface of the rotating shaft.
[0018] By setting up an impeller, when water in the return pipe enters the U-shaped pipe, it drives the impeller to rotate, thereby driving the shaft to rotate automatically.
[0019] In a preferred embodiment, a fan blade is fixed at the end of the rotating shaft, and four air inlets are arranged in a circumferential array on the surface of the U-shaped tube between the fan blade and the sealing plate.
[0020] By setting up fan blades and an air inlet, the fan blades can be rotated by the rotation of the shaft, thereby achieving the purpose of automatically blowing air into the horizontal pipe.
[0021] As can be seen from the above, the cold storage equipment status data transparent transmission gateway device provided by this utility model has the following technical effects.
[0022] Firstly, by setting up a heat dissipation component, this utility model enables the cold storage equipment status data transmission gateway device to start a small circulating pump during actual operation. This pump transports the cooling water in the cooling water tank to the heat exchange coil, and finally returns it to the cooling water tank through the return pipe. After being cooled by the refrigerator, the cooling water circulates, allowing the heat exchange coil located inside the heat exchange plate to quickly exchange heat between the cooling water and the heat exchange plate, thereby effectively improving the heat dissipation efficiency.
[0023] Secondly, by setting up a blower assembly, this utility model enables the transparent gateway body to achieve circulating water cooling and heat dissipation under the action of a small circulating pump. This allows air to be discharged through the air outlet into the gap between two adjacent heat exchange plates, further improving the heat exchange efficiency of the heat exchange plates and thus further improving the heat dissipation effect. Attached Figure Description
[0024] Figure 1 This is a three-dimensional structural diagram of the cold storage equipment status data transparent transmission gateway device proposed in this utility model.
[0025] Figure 2 This is a rear view structural diagram of the cold storage equipment status data transparent transmission gateway device proposed in this utility model.
[0026] Figure 3 This is a three-dimensional structural diagram of the air blowing component of the cold storage equipment status data transparent transmission gateway device proposed in this utility model.
[0027] Figure 4 This is a schematic diagram of the cross-sectional structure of the horizontal pipe and U-shaped pipe of the cold storage equipment status data transmission gateway device proposed in this utility model.
[0028] Figure 5 This utility model Figure 4 Enlarged structural diagram at point A in the middle.
[0029] In the attached image:
[0030] 100. Transparent gateway body;
[0031] 200. Heat dissipation assembly; 201. Heat exchange plate; 202. Refrigerator; 203. Heat exchange coil; 204. Cooling water tank; 205. Small circulating pump; 206. Infusion pipe; 207. Return pipe;
[0032] 300. Blower assembly; 301. Horizontal tube; 302. Air outlet; 303. U-shaped tube; 304. Sealing plate; 305. Shaft; 306. Impeller; 307. Blower fan blade; 308. Air inlet. Detailed Implementation
[0033] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0034] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and 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. Therefore, they should not be construed as limitations on this utility model.
[0035] Reference Figures 1 to 5 A cold storage equipment status data pass-through gateway device, including:
[0036] The transparent transmission gateway 100 is used to transparently transmit the status data of cold storage equipment. The transparent transmission gateway 100 includes an outer shell and a central processing unit module, a storage module and a network interface respectively disposed inside the outer shell. The transparent transmission gateway 100 is equipped with an embedded Linux or RTOS operating system, as well as a TCP / IP protocol stack, a serial communication protocol and a CAN bus protocol. Since the transparent transmission gateway 100 can be purchased and used directly on the market, its transmission of cold storage equipment status data will not be described in detail here.
[0037] The heat dissipation assembly 200 is used to dissipate heat from the transparent gateway body 100. The heat dissipation assembly 200 includes a plurality of heat exchange plates 201 that are equidistantly fixed on the upper surface of the transparent gateway body 100 and extend into the interior of the transparent gateway body 100. The heat exchange plates 201 have a T-shaped cross-section and heat exchange coils 203 are provided inside the plurality of heat exchange plates 201. The heat dissipation assembly 200 also includes a cooling water tank 204 fixed on the outer surface of the transparent gateway body 100 and a small circulating pump 205 provided on the surface of the cooling water tank 204. A cooler 202 is provided on the side of the cooling water tank 204 and the cooling end of the cooler 202 extends into the interior of the cooling water tank 204. The cooler 202 is a TEC1-12703 type semiconductor cooler 202.
[0038] Reference Figure 1 and Figure 2 In a preferred embodiment, both the heat exchange plate 201 and the heat exchange coil 203 are made of pure copper.
[0039] Specifically, by using pure copper as the material for the heat exchange plate 201 and the heat exchange coil 203, the heat exchange plate 201 and the heat exchange coil 203 can exchange heat quickly.
[0040] Reference Figure 2 In a preferred embodiment, the inlet end of the small circulating pump 205 extends to the inner bottom of the cooling water tank 204, the outlet end of the small circulating pump 205 is provided with a delivery pipe 206 communicating with the inlet end of the heat exchange coil 203, and the outlet end of the heat exchange coil 203 is provided with a return pipe 207 extending into the interior of the cooling water tank 204.
[0041] Specifically, by setting up an infusion pipe 206 and a return pipe 207, water in the cooling water tank 204 can be transported to the heat exchange coil 203 through the infusion pipe 206, and the water after heat exchange can be transported back to the cooling water tank 204 through the return pipe 207.
[0042] In this invention, by setting up a heat dissipation component 200, the cold storage equipment status data transmission gateway device can transfer the heat generated inside the transmission gateway body 100 to the outside through the heat exchange plate 201 during actual operation, and exchange heat with the outside air to achieve effective heat dissipation. At the same time, it can start a small circulation pump 205 to transport the cooling water in the cooling water tank 204 to the heat exchange coil 203, and finally flow back to the cooling water tank 204 through the return pipe 207. After being cooled by the refrigerator 202, the cooling water circulates, so that the heat exchange coil 203 located inside the heat exchange plate 201 can quickly exchange heat between the cooling water and the heat exchange plate 201, thereby effectively improving the heat dissipation efficiency.
[0043] Reference Figure 2 and Figure 3 In a preferred embodiment, the back of the transparent gateway body 100 is provided with a blower assembly 300 corresponding to a plurality of heat exchange plates 201. The blower assembly 300 includes a horizontal tube 301 disposed on the back of the transparent gateway body 100, and an air outlet 302 equidistantly provided on the surface of the horizontal tube 301 and corresponding to the gap between two adjacent heat exchange plates 201.
[0044] Specifically, by setting up the horizontal tube 301 and the air outlet 302, the airflow can be discharged through the air outlet 302 into the gap between two adjacent heat exchange plates 201, thereby effectively increasing the airflow velocity around the heat exchange plate 201 and improving the heat exchange efficiency.
[0045] Reference Figure 3 and Figure 4In a preferred embodiment, a U-shaped tube 303 is provided on the surface of the return pipe 207, and the return pipe 207 is connected to the U-shaped tube 303. The horizontal pipe 301 is fixed to the end of the U-shaped tube 303 and is connected to the U-shaped tube 303.
[0046] Specifically, by setting up the U-shaped tube 303, airflow can enter the interior of the horizontal tube 301 through the U-shaped tube 303.
[0047] Reference Figure 4 and Figure 5 In a preferred embodiment, a sealing plate 304 is fixedly provided on the inner wall of the U-shaped tube 303, and a rotating shaft 305 passing through the sealing plate 304 is rotatably provided on the inner wall of the U-shaped tube 303, and an impeller 306 corresponding to the return pipe 207 is fixedly provided on the surface of the rotating shaft 305.
[0048] Specifically, by setting the impeller 306, when the water in the return pipe 207 enters the U-shaped pipe 303, it drives the impeller 306 to rotate, thereby driving the rotating shaft 305 to rotate automatically.
[0049] Reference Figure 4 and Figure 5 In a preferred embodiment, a fan blade 307 is fixed at the end of the rotating shaft 305, and four air inlets 308 are arranged in a circumferential array on the surface of the U-shaped tube 303 located between the fan blade 307 and the sealing plate 304.
[0050] Specifically, by setting up the blower blades 307 and the air inlet 308, the rotation of the shaft 305 can drive the blower blades 307 to rotate, thereby achieving the purpose of automatically blowing air into the horizontal tube 301.
[0051] In this invention, by setting up a blower assembly 300, the transparent gateway body 100 achieves circulating water cooling under the action of a small circulating pump 205. When the water flows at high speed in the return pipe 207, it can drive the impeller 306 to rotate. The rotation of the impeller 306 drives the rotating shaft 305 to rotate, and the rotation of the rotating shaft 305 drives the blower fan blades 307 to rotate, thereby achieving the purpose of blowing air into the horizontal pipe 301. This allows the air to be discharged through the air outlet 302 into the gap between two adjacent heat exchange plates 201, further improving the heat exchange efficiency of the heat exchange plates 201 and thus further improving the heat dissipation effect.
[0052] Working Principle: During actual operation, the cold storage equipment status data transmission gateway device can transfer the heat generated inside the gateway body 100 to the outside through the heat exchange plate 201, and exchange heat with the outside air to achieve effective heat dissipation. Simultaneously, it can start the small circulating pump 205 to deliver cooling water from the cooling water tank 204 to the heat exchange coil 203. Finally, the water flows back to the cooling water tank 204 through the return pipe 207 and is cooled by the refrigerator 202, thus achieving the circulation of cooling water. This allows the heat exchange coil 203 located inside the heat exchange plate 201 to rapidly exchange heat between the cooling water and the heat exchange plate 201. Rapid heat exchange effectively improves heat dissipation efficiency. Furthermore, during the circulating water cooling process of the transparent gateway body 100 under the action of the small circulating pump 205, when the water flows at high speed in the return pipe 207, it can drive the impeller 306 to rotate. The rotation of the impeller 306 drives the rotating shaft 305 to rotate, and the rotation of the rotating shaft 305 drives the fan blades 307 to rotate, thereby achieving the purpose of blowing air into the horizontal pipe 301. This allows the air to be discharged through the air outlet 302 into the gap between two adjacent heat exchange plates 201, further improving the heat exchange efficiency of the heat exchange plates 201 and thus further improving the heat dissipation effect.
[0053] The above description is merely a preferred embodiment of this utility model, but the protection scope of this utility model is not limited thereto. The substitutions may be replacements of some structures, devices, or method steps, or they may be complete technical solutions. Equivalent substitutions or modifications made based on the technical solution and inventive concept of this utility model should all be covered within the protection scope of this utility model.
Claims
1. A cold storage facility status data pass-through gateway device, characterized by, include: The transparent transmission gateway body (100) is used to transparently transmit the status data of cold storage equipment. The transparent transmission gateway body (100) includes an outer shell and a central processing unit module, a storage module and a network interface respectively disposed inside the outer shell. The transparent transmission gateway body (100) is equipped with an embedded Linux or RTOS operating system, as well as a TCP / IP protocol stack, a serial communication protocol and a CAN bus protocol. A heat dissipation assembly (200) is used to dissipate heat from the transparent gateway body (100). The heat dissipation assembly (200) includes a plurality of heat exchange plates (201) that are equidistantly fixed on the upper surface of the transparent gateway body (100) and extend into the interior of the transparent gateway body (100). The heat exchange plates (201) have a T-shaped cross-section and heat exchange coils (203) are provided inside the plurality of heat exchange plates (201). The heat dissipation assembly (200) also includes a cooling water tank (204) fixed on the outer surface of the transparent gateway body (100) and a small circulating pump (205) provided on the surface of the cooling water tank (204). A cooler (202) is provided on the side of the cooling water tank (204) and the cooling end of the cooler (202) extends into the interior of the cooling water tank (204).
2. The walk-in equipment status data pass-through gateway device of claim 1, wherein, The heat exchange plate (201) and the heat exchange coil (203) are both made of pure copper.
3. The walk-in equipment status data pass-through gateway device of claim 1, wherein, The inlet end of the small circulating pump (205) extends to the bottom of the cooling water tank (204). The outlet end of the small circulating pump (205) is provided with a delivery pipe (206) that communicates with the inlet end of the heat exchange coil (203). The outlet end of the heat exchange coil (203) is provided with a return pipe (207) that extends into the interior of the cooling water tank (204).
4. The walk-in equipment status data pass-through gateway device of claim 3, wherein, The back of the transparent gateway body (100) is provided with a blower assembly (300) corresponding to a plurality of heat exchange plates (201). The blower assembly (300) includes a horizontal tube (301) provided on the back of the transparent gateway body (100) and an air outlet (302) equidistantly opened on the surface of the horizontal tube (301) and corresponding to the gap between two adjacent heat exchange plates (201).
5. The walk-in equipment status data pass-through gateway device of claim 4, wherein, The surface of the return pipe (207) is provided with a U-shaped pipe (303), and the return pipe (207) is connected to the U-shaped pipe (303). The horizontal pipe (301) is fixed at the end of the U-shaped pipe (303) and is connected to the U-shaped pipe (303).
6. The walk-in equipment status data pass-through gateway device of claim 5, wherein, The inner wall of the U-shaped tube (303) is fixed with a sealing plate (304), and the inner wall of the U-shaped tube (303) is rotatably provided with a rotating shaft (305) that passes through the sealing plate (304), and the surface of the rotating shaft (305) is fixed with an impeller (306) corresponding to the return pipe (207).
7. The walk-in equipment status data pass-through gateway device of claim 6, wherein, The end of the rotating shaft (305) is fixed with a fan blade (307), and the surface of the U-shaped tube (303) located between the fan blade (307) and the sealing plate (304) is provided with four air inlets (308) in a circumferential array.