Evaporation cold assembly type unit

By designing the flow guiding components, the water flow is diverted and cooled, solving the problem of low cooling efficiency in existing chiller units and improving the cooling effect and the discharge efficiency of cooled water.

CN224050740UActive Publication Date: 2026-03-27HENAN CHUANGWEI INTELLIGENT ASSEMBLY TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing chiller units do not easily divert water during the cooling process, resulting in low cooling efficiency and hot water flow after cooling, which affects subsequent use.

Method used

The system employs a flow guiding assembly, including a flow distribution box, a flow distribution pipe, a cooling water chamber, a shaft pin plate, and an air-cooled radiator. By rotating the central plate and the outer protrusion contacting the inclined rod, the water flow is divided and cooled, and the air-cooled radiator is used to cool the water flow.

Benefits of technology

It improves cooling effect and efficiency, ensures that the cooled water flow can be effectively cooled and discharged, and enhances the overall performance of the cooling unit.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an evaporation cold assembly type unit, and particularly relates to the technical field of cooling equipment, the unit comprises a unit base, a flow guide assembly is arranged on the unit base, the flow guide assembly comprises a flow dividing box arranged in the unit base, and a plurality of flow dividing pipes are distributed on the outer side of the flow dividing box. The flow guide assembly is arranged, the outer protruding blocks make contact with the inclined rods one by one, the inclined rods move to drive the hinge rods to rotate along the axis points of the connecting positions of the hinge rods and the shaft pin bases, then the connecting disc can move, and the spring and the sealing plug can lose limiting on the guide cylinder; the sealing plug can be driven to reset through the elasticity of the spring, cooled water flow in the cooling water chamber can be discharged through the second hose, all the outer protruding blocks make contact with inclined rods on the corresponding flow dividing pipes one by one, all the divided water flow can be discharged after being temporarily stored and cooled in the cooling water chamber, and the cooling effect and efficiency are ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to cooling equipment technical field, more specifically, the utility model relates to evaporative cold assembly type unit. BACKGROUND

[0002] Mechanical equipment generates a lot of heat when running for a long time, and needs to be cooled, and the most effective cooling method for mechanical equipment is to cool the equipment with cold water, which is the most obvious and fastest cooling method, absorbs the heat of the equipment with cold water, cools the equipment, and then the water cooled equipment needs to be discharged because of the lack of water resources, so the water needs to be recycled.

[0003] Among them, the patent with the announcement number CN218001858U discloses a water chiller, especially an assembly type water chiller. It provides an assembly type water chiller that can recycle the cooling solution after cooling hot water without frequently supplementing the cooling solution. An assembly type water chiller, including support feet, an evaporative tube, a water cooling tank, support frames, a compressor and a condenser tube, etc., the evaporative tube bottom left and right sides are connected with support feet, the left and right sides of the support feet are fixedly connected with two support frames between the upper parts, the two support frames are symmetrically arranged front and back, the evaporative tube left side upper part is connected with the water cooling tank, the water cooling tank right side is connected with the upper left side of the front and back two support frames, the water cooling tank is internally connected with the condenser tube, the condenser tube is connected with the evaporative tube bottom, the two support frames upper parts are connected with the compressor, and the compressor top is provided with a shock absorbing mechanism.

[0004] The structure when in actual use, the water pipe of the water cooling tank top is connected with cold water to introduce into the water cooling tank, and the high-temperature liquid cooling solution in the condenser tube is cooled, the cooling water is evaporated and discharged from the water cooling tank when cooled, the cooled cooling solution is introduced into the evaporative tube through the condenser tube, and the cooling solution is recycled to continue to cool the hot water, and the compressor is turned off after cooling is completed. Stop connecting cold water, but the structure is not easy to split the water for cooling and cooling when in use, the water flow is hot after cooling, and the cooling efficiency is low due to gathering together, which affects the subsequent use. Utility model content

[0005] In order to overcome the above-mentioned defects of the prior art, the utility model provides an evaporative cold assembly type unit, which aims at solving the problems in the above background technology.

[0006] The utility model provides the following technical scheme: an evaporative cold assembly type unit, comprising a unit seat, a flow guide assembly is arranged on the unit seat;

[0007] The flow guide assembly comprises a flow distribution box arranged in the unit seat, a plurality of flow distribution pipes are distributed on the outer side of the flow distribution box, and a cooling water chamber is arranged at one end of each flow distribution pipe, a guide cylinder extending into the flow distribution pipe is embedded on the cooling water chamber, and a blocking plug is slidably connected in the guide cylinder;

[0008] A first hose in communication with the flow distribution box is arranged on one side of the cooling water chamber, and a second hose is arranged on the other side of the cooling water chamber;

[0009] An axle pin disc is arranged in the middle of the flow distribution box, a plurality of pistons are hingedly connected to the outer side of the axle pin disc, each piston extends into the corresponding flow distribution pipe and is slidably connected with the flow distribution pipe, an axle pin seat is bolted on the cooling water chamber, two hinged rods are hingedly connected to the axle pin seat, a connecting disc is fixedly arranged at one end of each hinged rod, a spring is fixedly arranged at one end of each connecting disc, the spring is located on the outer side of the guide cylinder, and the blocking plug penetrates through the guide cylinder and extends to the end of the spring;

[0010] It can be seen that, in the above technical solution, the rotation of the axle pin disc drives the pistons to displace in the flow distribution pipes to achieve the function of drawing water flow through the first hose into the cooling water chamber, and the function of distributing the water flow, and the water flow in the cooling water chamber is cooled by the air cooling radiator, when the center disc rotates, each outer lug is in contact with the inclined rod one by one, the displacement of the inclined rod drives the hinged rod to rotate along the axis point where the hinged rod and the axle pin seat are connected, and then the connecting disc can displace, the spring and the blocking plug can lose the limit on the guide cylinder, the blocking plug can be driven to reset by the elasticity of the spring, and the cooled water flow in the cooling water chamber can be discharged through the second hose;

[0011] Optionally, in possible embodiments, one side of the axle pin disc is provided with a center disc, two outer lugs are fixedly arranged on the outer side of the center disc, and the two outer lugs are arranged in layers, a plurality of inclined rods are slidably connected to the outer side of the flow distribution box, each group of two inclined rods is located on the outer side of the outer lug, one end of the inclined rod extends to the hinged rod and is hingedly connected with the hinged rod, a vertical plate for supporting the flow distribution box is arranged in the unit seat, an air cooling radiator for heat dissipation is arranged at one end of the unit seat, a driving motor is bolted on the vertical plate, and the output end of the driving motor is detachably connected with the center disc and the axle pin disc through bolts;

[0012] It can be seen that, in the above technical solution, by rotating the center disc and the outer lug for one circle, each outer lug is in contact with the inclined rod on the corresponding flow distribution pipe one by one, so that each distributed water flow can be temporarily stored and cooled in the cooling water chamber and then discharged, ensuring the cooling effect and efficiency.

[0013] The technical effects and advantages of the present application are as follows:

[0014] By setting the flow guide assembly, compared with the prior art, through the corresponding cooperation of various structures, the rotation of the shaft pin disc drives the piston to displace in the shunt pipe to realize the function of extracting the water flow through the first hose to the cooling water chamber, realizing the function of shunting the water flow, and the water flow in the cooling water chamber is cooled by the air cooling radiator;

[0015] At the same time, when the center disc rotates, each outer protrusion is in contact with the inclined rod in turn, the inclined rod displacement drives the articulated rod to rotate along the shaft center point of the articulated rod and the shaft pin seat connection, and then the connecting disc can displace, the spring and the blocking plug can lose the limit on the guide cylinder, the blocking plug can be driven to reset by the elasticity of the spring, and the cooled water flow in the cooling water chamber can be discharged through the second hose;

[0016] And by rotating the center disc and the outer protrusion one circle, each outer protrusion is in contact with the inclined rod on the corresponding shunt pipe in turn, so that each shunted water flow can be temporarily stored and cooled in the cooling water chamber and then discharged, ensuring the cooling effect and efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0017] In order to more clearly illustrate the technical solutions in the present disclosure, the following will briefly introduce the drawings needed to be used in some embodiments. Obviously, the drawings in the following description are only some drawings of the present disclosure, and other drawings can also be obtained by those skilled in the art according to these drawings. In addition, the drawings in the following description can be regarded as schematic diagrams, and are not limited to the actual size of the product, the actual flow of the method, the actual timing of the signal, etc. involved in the embodiments of the present disclosure.

[0018] Figure 1 It is a front view of the overall structure of the present utility model.

[0019] Figure 2 It is a perspective view of the flow guide assembly of the present utility model.

[0020] Figure 3 It is a perspective view of the cooling water chamber, shaft pin seat, articulated rod, guide cylinder, spring and blocking plug of the present utility model.

[0021] Figure 4 It is a perspective view of the shaft pin disc, center disc, outer protrusion and piston of the present utility model.

[0022] Figure 5 It is a perspective view of the shunt box and shunt pipe of the present utility model.

[0023] The attached diagram is labeled as follows: 1. Unit base; 2. Vertical plate; 3. Diverter box; 4. Diverter pipe; 5. Cooling water chamber; 6. Shaft pin seat; 7. Hinge rod; 8. Connecting plate; 9. Spring; 10. Guide cylinder; 11. Sealing plug; 12. First hose; 13. Second hose; 14. Center plate; 15. Outer protrusion; 16. Diagonal rod; 17. Shaft pin plate; 18. Piston; 19. Drive motor; 20. Air-cooled radiator. Detailed Implementation

[0024] 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.

[0025] As attached Figure 1 - Figure 5 The evaporative cooling unit shown uses a flow guide assembly on the unit base 1 to drive the hinge rod 7 to rotate along the axis of the connection between the hinge rod 7 and the shaft pin seat 6. This causes the connecting plate 8 to move, allowing the spring 9 and the sealing plug 11 to lose their limit on the guide cylinder 10. The sealing plug 11 is then reset by the elastic drive of the spring 9, allowing the cooled water in the cooling water chamber 5 to be discharged through the second hose 13. Furthermore, by rotating the central plate 14 and the outer protrusion 15 one revolution, each outer protrusion 15 contacts the corresponding inclined rod 16 on the diversion pipe 4, allowing the water in each diversion to be temporarily cooled in the cooling water chamber 5 before being discharged, ensuring cooling effect and efficiency. The specific structural configuration of the components is as follows.

[0026] The flow guiding assembly includes a flow distribution box 3 installed in the unit base 1. Several flow distribution pipes 4 are distributed on the outside of the flow distribution box 3, and a cooling water chamber 5 is provided at one end of each flow distribution pipe 4. A guide cylinder 10 extending into the flow distribution pipe 4 is embedded in the cooling water chamber 5, and a sealing plug 11 is slidably connected inside the guide cylinder 10.

[0027] A first hose 12 connected to the diversion box 3 is provided on one side of the cooling water chamber 5, and a second hose 13 is provided on the other side of the cooling water chamber 5.

[0028] The middle part of the distribution box 3 is provided with a shaft pin disc 17, the outer side of the shaft pin disc 17 is hinged with a plurality of pistons 18, each piston 18 extends into the corresponding distribution pipe 4 and is in sliding connection with the distribution pipe 4, the cooling water chamber 5 is bolted with a shaft pin seat 6, the shaft pin seat 6 is hinged with two hinged rods 7, one end of each hinged rod 7 is fixedly provided with a connecting disc 8, one end of each connecting disc 8 is fixedly provided with a spring 9, the spring 9 is located on the outer side of the guide cylinder 10, and the blocking plug 11 penetrates the guide cylinder 10 and extends to the end of the spring 9;

[0029] One side of the shaft pin disc 17 is provided with a center disc 14, the outer side of the center disc 14 is fixedly provided with two outer protrusions 15, the two outer protrusions 15 are stacked, the outer side of the distribution box 3 is slidingly connected with a plurality of inclined rods 16, each two inclined rods 16 are a group and are located on the outer side of the outer protrusion 15, one end of the inclined rod 16 extends to the hinged rod 7 and is hinged with the hinged rod 7, the unit seat 1 is provided with a vertical plate 2 for supporting the distribution box 3, one end of the unit seat 1 is provided with an air cooling radiator 20 for heat dissipation, the vertical plate 2 is bolted with a driving motor 19, the output end of the driving motor 19 is detachably connected with the center disc 14 and the shaft pin disc 17 through bolts.

[0030] According to the above structure, when in use, the water flow after heat exchange is injected into the distribution box 3, the hinged rod 7 and the center disc 14 are driven by the driving motor 19 to rotate, the shaft pin disc 17 rotates to drive the piston 18 to displace in the distribution pipe 4 to realize the function of extracting the water flow through the first hose 12 into the cooling water chamber 5, realizing the function of distributing the water flow, and cooling the water flow in the cooling water chamber 5 through the air cooling radiator 20;

[0031] At the same time, when the center disc 14 rotates, each outer protrusion 15 is in contact with the inclined rod 16 one by one, the inclined rod 16 drives the hinged rod 7 to rotate along the axis point where the hinged rod 7 and the shaft pin seat 6 are connected, thereby enabling the connecting disc 8 to displace, enabling the spring 9 and the blocking plug 11 to lose the limit on the guide cylinder 10, enabling the blocking plug 11 to be driven to reset by the elasticity of the spring 9, and enabling the cooled water flow in the cooling water chamber 5 to be discharged through the second hose 13;

[0032] And by rotating the center disc 14 and the outer protrusion 15 one circle, each outer protrusion 15 is in contact with the inclined rod 16 on the corresponding distribution pipe 4 one by one, so that each distributed water flow can be temporarily stored in the cooling water chamber 5 for cooling and then discharged, ensuring the cooling effect and efficiency.

[0033] Different from the prior art, the application discloses an evaporative cold assembly type unit. The inclined rod 16 is displaced to drive the articulated rod 7 to rotate along the axis point of the connection between the articulated rod 7 and the shaft pin seat 6, and then the connecting disc 8 can be displaced, the spring 9 and the blocking plug 11 can be lost from the limiting position on the guide cylinder 10, the blocking plug 11 can be driven to reset by the elasticity of the spring 9, the cooled water flow in the cooling water chamber 5 can be discharged through the second hose 13, and through the rotation of the center disc 14 and the outer protrusion 15 by one circle, each outer protrusion 15 is in contact with the inclined rod 16 on the corresponding shunt pipe 4, and each shunted water flow can be temporarily stored in the cooling water chamber 5 and then discharged after cooling, so that the cooling effect and efficiency are ensured.

[0034] The above is only the preferred embodiment of the utility model, and is not used for limiting the utility model, and any modification, equivalent replacement, improvement and the like within the spirit and principle of the utility model should be included in the protection scope of the utility model.

Claims

1. Evaporative cooling packaged unit comprising a unit base (1), characterized in that: The machine group seat (1) is provided with a flow guide assembly; The flow guide assembly comprises a flow distribution box (3) arranged in the machine group seat (1), a plurality of flow distribution pipes (4) are distributed on the outer side of the flow distribution box (3), and one end of each flow distribution pipe (4) is provided with a cooling water chamber (5), a guide cylinder (10) extending into the flow distribution pipe (4) is embedded on the cooling water chamber (5), and a blocking plug (11) is slidably connected in the guide cylinder (10). One side of the cooling water chamber (5) is provided with a first hose (12) connected with the flow distribution box (3), and the other side of the cooling water chamber (5) is provided with a second hose (13). The middle part of the flow distribution box (3) is provided with a shaft pin disc (17), a plurality of pistons (18) are hinged on the outer side of the shaft pin disc (17), and each piston (18) extends into the corresponding flow distribution pipe (4) and is slidably connected with the flow distribution pipe (4).

2. The evaporative cooling packaged unit of claim 1, wherein: The shaft pin seat (6) is bolted on the cooling water chamber (5), two hinge rods (7) are hinged on the shaft pin seat (6), and a connecting disc (8) is fixedly arranged at one end of each hinge rod (7).

3. The evaporative cooling packaged unit of claim 2, wherein: One end of each connecting disc (8) is fixedly provided with a spring (9), the spring (9) is located on the outer side of the guide cylinder (10), and the blocking plug (11) penetrates the guide cylinder (10) and extends to the end of the spring (9).

4. The evaporative cooling packaged unit of claim 1, wherein: One side of the shaft pin disc (17) is provided with a center disc (14), two outer protrusions (15) are fixedly arranged on the outer side of the center disc (14), and the two outer protrusions (15) are stacked.

5. The evaporative cooling packaged unit of claim 1, wherein: A plurality of inclined rods (16) are slidably connected on the outer side of the flow distribution box (3), and each two inclined rods (16) are a group and are located on the outer side of the outer protrusion (15), one end of the inclined rod (16) extends to the hinge rod (7) and is hinged with the hinge rod (7).

6. The evaporative cooling packaged unit of claim 1, wherein: The machine group seat (1) is provided with a vertical plate (2) for supporting the flow distribution box (3), and one end of the machine group seat (1) is provided with an air-cooled radiator (20) for heat dissipation.

7. The evaporative cooling packaged unit of claim 6, wherein: The driving motor (19) is bolted on the vertical plate (2), and the output end of the driving motor (19) is detachably connected with the center disc (14) and the shaft pin disc (17) by bolts.

Citation Information

Patent Citations

  • Fabricated water chilling unit

    CN218001858U