Efficient energy-saving type evaporation condensing device

Through the integrated refrigeration and condensation components, fin sets and condensation plate design of equipment box, the gas distribution and condensation process are optimized, and the problem of low condensation efficiency of existing evaporative condensation devices is solved, achieving high-efficiency and energy-saving evaporative condensation effect.

CN120324932AInactive Publication Date: 2025-07-18GUANG DONG MA CAO XIN NENG YUAN FA ZHAN YOU XIAN GONG SI
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Patent Information

Application Number
CN202510522734.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-07-18
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing evaporative condensation device cannot perform distributed positioning intake operations during the intake process, resulting in the inability to accurately contact the steam and the condenser tube, low condensation efficiency and high energy consumption.

Method used

The equipment box structure is used to integrate the refrigeration assembly, condensation assembly and gas supply pipe group, and the cooling efficiency is improved through the fin set, cooling bend pipe and cooling fan. The condensation assembly is designed as a condensation box, condensation plate and drain pipe to enhance the condensation effect, and the gas distribution and condensation process are optimized through the partition and pre-cooled mesh plate.

Benefits of technology

It achieves efficient refrigeration and condensation effects, improves condensation efficiency, reduces energy consumption, and ensures the stable operation of the device through automated monitoring and emission systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of evaporation condensation devices, in particular to an efficient energy-saving evaporation condensation device which comprises an equipment box, the equipment box comprises a bottom box and a top shell, the top shell is fixedly installed on the upper end face of the bottom box, and a refrigeration assembly, a condensation assembly and an air supply pipe set are installed in the top shell; the condensation assembly is arranged above the refrigeration assembly, the refrigeration assembly and the condensation assembly are both fixedly connected with the top shell, the air supply pipe set is fixedly installed in the top shell, and the lower end of the air supply pipe set extends into the bottom box. Through cooperative work of the refrigeration assembly and the condensation assembly, the efficient refrigeration and condensation effects are achieved. The fin set and the cooling bent pipe in the refrigeration assembly can rapidly absorb heat, the cooling fan accelerates air flow, and the cooling efficiency is improved. The multiple layers of condensation plates in the condensation assembly can make full contact with gaseous substances, so that the gaseous substances are rapidly cooled and condensed into liquid, and the condensation efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of evaporation condensation devices, and particularly relates to an energy-efficient evaporation condensation device. Background Art

[0002] An evaporation condensation device is a commonly used device or instrument in fields such as chemistry, medicine, biology, agriculture, and environmental science. The principle is that in a structure with two independent channels that are interlayered or nested with each other, one channel structure is used to gather / circulate the hot steam to be condensed, and the other channel structure is a cooling structure into which an appropriate coolant including cooling water can be introduced. Through the heat exchange of the wall layer between the two channel structures, the condensable components in the hot steam are condensed into a liquid state to be collected or returned for continuous reflux.

[0003] In view of the above related technologies, it is found that the existing evaporation condensation device cannot perform distributed positioning intake operation during the intake process, so it is impossible to ensure accurate contact between the steam and the condensation pipe during the condensation process, which will lead to low condensation efficiency and thus increase energy consumption. Summary of the Invention

[0004] The present invention solves the problems in the related technologies and provides an energy-efficient evaporation condensation device, which solves the problem of low condensation efficiency of the existing evaporation condensation device during use.

[0005] To solve the above technical problems, the present invention is realized through the following technical solutions: An energy-efficient evaporation condensation device includes an equipment box, the equipment box includes a bottom box and a top shell, the top shell is fixedly installed on the upper end surface of the bottom box, a refrigeration component, a condensation component, and a gas supply pipe group are installed in the top shell, the condensation component is arranged above the refrigeration component, and both the refrigeration component and the condensation component are fixedly connected to the top shell, the gas supply pipe group is fixedly installed in the top shell, and the lower end of the gas supply pipe group extends into the bottom box, and a compressor that cooperates with the refrigeration component and the condensation component is also fixedly installed in the top shell.

[0006] By adopting the above technical solution, the equipment box is provided to ensure the housing structure of the whole device, facilitating the stable installation of other components inside. This structural design makes the layout of the whole device more reasonable. The refrigeration component, the condensation component and the gas supply pipe group are integrated in the top shell of the equipment box, which is convenient for unified management and maintenance. And by designing the equipment box into a structure where the bottom box and the top shell cooperate with each other, it is convenient to install different components through the cooperation of the bottom box and the top shell when in use. By installing the refrigeration component, the condensation component, the gas supply pipe group and the compressor in the top shell, it is convenient for the compressor to cooperate with the refrigeration component and the condensation component during use, effectively realizing the function of evaporation and condensation, improving the overall performance and operation efficiency of the device. At the same time, the setting of the bottom box can provide an installation space for the gas supply pipe group and play a certain role in fixing and protecting it. After the gas supply pipe group is connected to the external steam pipe, it can evenly distribute the steam to different positions of the condensation component, facilitating the condensation component to perform the condensation operation at different heights.

[0007] As a preferred solution, the refrigeration component includes an outer frame, a fin group, a cooling elbow and a cooling fan. The outer frame is fixedly installed in the top shell. The fin group is fixedly installed in the outer frame. The cooling elbow is inserted into the fin group, and the two ends of the cooling elbow are provided with a first connecting pipe and a second connecting pipe. The first connecting pipe extends into the condensation component, and the second connecting pipe is connected to the compressor. The cooling fan is installed on the rear end face of the fin group and is fixedly connected to the outer frame.

[0008] By adopting the above technical solution, by designing the refrigeration component into a structure where the outer frame, the fin group, the cooling elbow and the cooling fan cooperate with each other, it is convenient to provide a stable support structure for the refrigeration component through the outer frame during use, ensuring the overall stability of the component. At the same time, the setting of the fin group increases the heat dissipation area, effectively improving the refrigeration efficiency. The cooperation between the cooling elbow and the fin group enables the coolant to better exchange heat with the air when flowing in the elbow, further enhancing the refrigeration effect. The installation of the cooling fan can accelerate the air flow, timely take away the heat, improve the heat dissipation efficiency of the refrigeration component, thus ensuring the normal operation of the refrigeration component and reducing the energy consumption.

[0009] As a preferred solution, the condensation component includes a condensation box, a condensation plate and a drain pipe. A plurality of intake pipe heads connected to the gas supply pipe group are evenly arranged on the lower end face of the condensation box, and the intake pipe heads are fixedly and hermetically connected to the condensation box. The condensation plates are evenly installed in the condensation box from top to bottom. The drain pipe is installed on one side of the condensation box and is fixedly and hermetically connected to the condensation box.

[0010] By adopting the above technical solution, by designing the condensation assembly into a structure in which a condensation box, a condensation plate and a drain pipe are matched, it is convenient to provide a closed space for the condensation process through the condensation box during use, ensuring the stability of the condensation effect. And through the connection between the air inlet head and the air supply pipe group, the gas to be condensed can smoothly enter the condensation box. And after the condensation plate is uniformly installed in the condensation box from top to bottom, the steam entering can be subjected to layer-by-layer condensation operation through the condensation plate, and the inclined installation method of the condensation plate increases the contact area between the gas and the condensation plate, improving the condensation efficiency. The setting of the drain pipe can timely discharge the liquid generated during the condensation process, ensuring the cleanliness and normal operation of the condensation box.

[0011] As a preferred solution, the condensation box includes a main box shell, a bottom frame shell and an outer cover. The main box shell is fixedly installed in the top shell, and a plurality of positioning inner seats for installing the condensation plate are uniformly arranged on the inner side surface of the main box shell from top to bottom. The positioning inner seats are integrally formed with the main box shell. The bottom frame shell is arranged on the lower end surface of the main box shell, and the bottom frame shell is fixedly connected with the main box shell. The outer cover is fixedly installed on one side of the main box shell.

[0012] By adopting the above technical solution, by designing the condensation box into a structure in which the main box shell, the bottom frame shell and the outer cover are matched, it is convenient to use by combining each part during use, and at the same time makes the installation and disassembly of the condensation box more convenient. At the same time, the combined structure of the main box shell, the bottom frame shell and the outer cover is more convenient for cleaning and maintaining the inside of the condensation box. And through the integral forming design of the positioning inner seats in the main box shell, the stable inclined installation and use of the condensation plate are ensured, enabling the condensation plate to better play its role and improving the overall performance of the condensation box.

[0013] As a preferred solution, a longitudinal hanging plate is arranged in the main box shell. The longitudinal hanging plate is fixedly connected with the main box shell, and a plurality of supporting plates for supporting the condensation plate are uniformly installed on one side of the longitudinal hanging plate from top to bottom. The supporting plates are integrally formed with the longitudinal hanging plate. A diversion bottom plate is also installed on the inner side of the bottom of the main box shell. A plurality of ventilation holes corresponding to the air inlet head are opened on the diversion bottom plate. A baffle is inserted and installed in the ventilation holes, and the baffle is hermetically connected with the diversion bottom plate.

[0014] By adopting the above technical solution, the longitudinal hanging plate and the supporting plate provide auxiliary support for the other side of the condensation plate, enhancing the stability of the condensation plate and preventing the condensation plate from shaking or shifting during operation. The cooperation of the ventilation holes and the baffle on the diversion bottom plate enables the gas entering the condensation box to be evenly distributed, improving the uniformity of the contact between the gas and the condensation plate, thereby further improving the condensation efficiency. And the setting of the diversion bottom plate can ensure that the condensed water accumulates better on one side, facilitating the stable discharge of the condensed water. The sealed connection between the baffle and the diversion bottom plate ensures that the gas does not leak, improving the safety and stability of the condensation process.

[0015] As a preferred solution, the baffle includes an insertion pipe and a top plate. The insertion pipe is inserted and fixed in the ventilation hole. The top plate is fixedly installed at the head of the insertion pipe. A plurality of air outlet grooves are evenly formed in the upper end of the insertion pipe along the circumferential direction. A pre-cooling mesh plate is arranged above the top plate. A heat-conducting connecting plate is fixedly installed on the outer side surface of the pre-cooling mesh plate. The front end of the heat-conducting connecting plate is fixedly installed with a heat-dissipating mesh plate, and the heat-dissipating mesh plate is fixedly installed on the front end surface of the fin group.

[0016] By adopting the above technical solution, the structural design of the insertion pipe and the top plate enables the gas to flow out evenly from the air outlet grooves when passing through the baffle, further improving the uniformity of gas distribution. And the setting of the top plate can prevent the liquid dripping from the top from flowing into the insertion pipe, effectively avoiding the occurrence of coolant backflow. The setting of the pre-cooling mesh plate can pre-cool the gas entering the condensation box, reducing the temperature of the gas, reducing the working burden of the condensation plate, and improving the condensation efficiency. The cooperation of the heat-conducting connecting plate and the heat-dissipating mesh plate transfers the heat absorbed by the pre-cooling mesh plate to the fin group and dissipates it in time through the cooling fan, realizing the effective utilization of heat and improving the energy-saving effect of the device.

[0017] As a preferred solution, the condensation plate includes a plate frame, a spiral refrigeration pipe and an auxiliary cover. One end of the plate frame is rotatably connected to the positioning inner seat, and the other end of the plate frame is placed on the supporting plate. The spiral refrigeration pipes are evenly installed in the plate frame and fixedly connected to the plate frame. The adjacent spiral refrigeration pipes are communicated with each other. The auxiliary cover is installed directly below the spiral refrigeration pipe and fixedly connected to the plate frame.

[0018] By adopting the above technical solution, by designing the condensation plate into a structure that combines a plate frame, a coiled refrigeration pipe, and an auxiliary cover, it is convenient to make the installation and disassembly of the condensation plate more convenient through the rotational connection and placement method of the plate frame during use, facilitating the maintenance and replacement of the condensation plate. And by evenly installing the coiled refrigeration pipes, the flow path of the coolant can be increased, improving the refrigeration effect. The mutual connection between adjacent coiled refrigeration pipes ensures the circulating flow of the coolant. After all the coiled refrigeration pipes are connected together, their two ends can be respectively connected to the first connecting pipe and the second connecting pipe on the cooling elbow, facilitating the compressor to drive the cooling liquid to perform a circulating operation. The setting of the auxiliary cover can ensure that the steam better gathers on the coiled refrigeration pipes, achieving precise condensation operation.

[0019] As a preferred solution, the air supply pipe group includes an external elbow pipe 1, a shunt pipe group, an extension pipe group, and a diversion pipe. The external elbow pipe 1 is installed at the lower end of the shunt pipe group, and the external elbow pipe 1 is hermetically connected to the shunt pipe group. The extension pipe group is installed on both sides of the shunt pipe group, and the extension pipe group is hermetically and fixedly connected to the shunt pipe group. A sealing cover is also fixedly installed at the outer end of the extension pipe group. One end of the diversion pipe is hermetically connected to the shunt pipe group and the extension pipe group, and the other end of the diversion pipe is hermetically connected to the air inlet head.

[0020] By adopting the above technical solution, by designing the air supply pipe group into a structure that combines an external elbow pipe 1, a shunt pipe group, an extension pipe group, and a diversion pipe, it is convenient to connect to an external air source through the setting of the external elbow pipe 1 during use. The cooperation between the shunt pipe group and the extension pipe group can evenly distribute the gas into each diversion pipe, ensuring a uniform gas flow rate entering the condensation box, and then the purpose of steam entering the air inlet pipe from the diversion pipe can be achieved. The installation of the sealing cover can prevent gas leakage, improving the sealing performance of the air supply pipe group. And during use, the extension pipe groups are stacked and connected at the outer ends of the extension pipe groups to increase the number of shunts of the diversion pipes. During installation, only a sealing cover needs to be installed on the outermost extension pipe group. The hermetic connection between the diversion pipe and the air inlet head ensures that the gas can smoothly enter the condensation box, improving the operating efficiency of the device.

[0021] As a preferred solution, the air supply pipe group includes an external elbow pipe 2 and an air inlet conduit. The external elbow pipe 2 is fixedly installed on the bottom box. The lower end of the air inlet conduit is hermetically connected to the external elbow pipe 2, and the head of the air inlet conduit is connected to the outer cover. A positioning pipe matching the air inlet conduit is provided on the outer cover, and a horizontal angle plate is provided on the inner side surface of the outer cover. The horizontal angle plate is fixedly connected to the outer cover.

[0022] By adopting the above technical solution, by designing the air supply pipe group into a structure in which the external elbow pipe II and the intake conduit cooperate, it is convenient to provide another air supply method through the cooperation of the external elbow pipe II and the intake conduit during use, increasing the flexibility of the device. The setting of the positioning pipe ensures the installation accuracy of the intake conduit, and the setting of the horizontal angle plate ensures that the steam entering from the positioning pipe can be blocked by the horizontal angle plate, so that the steam can be dispersed horizontally, which is easy to increase the cooling efficiency.

[0023] As a preferred solution, both the external elbow pipe I and the external elbow pipe II include a vertical pipe portion and a horizontal pipe portion. A spherical water storage shell is installed at the lower end of the vertical pipe portion. The spherical water storage shell is hermetically and fixedly connected to the vertical pipe portion. A drain pipe is installed on the lower end surface of the spherical water storage shell, and a solenoid valve is installed on the drain pipe. An electronic liquid level monitor is also fixedly installed in the spherical water storage shell.

[0024] By adopting the above technical solution, by designing the external elbow pipe I and the external elbow pipe II into a structure in which the vertical pipe portion and the horizontal pipe portion cooperate, it is convenient to externally connect a steam pipe through the horizontal pipe portion during use, and then discharge the steam into the horizontal pipe portion. The spherical water storage shell can collect the moisture carried in the gas and collect the reflux moisture. The electronic liquid level monitor can monitor the water level in the spherical water storage shell in real time. When the water level reaches a certain height, the solenoid valve automatically opens, and the moisture is discharged through the drain pipe, realizing the automatic discharge of moisture, improving the automation degree and operation stability of the device.

[0025] Compared with the prior art, the beneficial effects of the present invention are as follows: Through the collaborative work of the refrigeration component and the condensation component, high-efficiency refrigeration and condensation effects are achieved. The fin group and the cooling elbow pipe in the refrigeration component can quickly absorb heat, and the cooling fan accelerates the air flow to improve the heat dissipation efficiency. The multi-layer condensation plates in the condensation component can fully contact with the gaseous substance, so that the gaseous substance is quickly cooled and condensed into a liquid state, improving the condensation efficiency. At the same time, by arranging a pre-cooling mesh plate above the grading member and connecting it to the fin group through a heat-conducting connecting plate and a heat-dissipating mesh plate, the cold quantity of the refrigeration component can be used to pre-cool the gaseous substance, reducing the energy consumption in the subsequent condensation process and achieving the purpose of energy saving. Through the structural design of the condensation box, it is convenient to position the inner seat and the support plate, which is convenient for the installation and disassembly of the condensation plate and is convenient for maintenance and repair. The shunt pipe group and the extension pipe group of the air supply pipe group can make the gaseous substance enter the condensation box evenly, improving the uniformity of the condensation effect. By arranging spherical water storage shells at the lower ends of the external elbow pipe I and the external elbow pipe II to collect the moisture in the gaseous substance and the reflux liquid, the electronic liquid level monitor monitors the water level in real time during use. When the water level reaches a certain height, the solenoid valve opens and drains water through the drain pipe, ensuring the normal operation of the device. Description of the Drawings

[0026] Figure 1It is the overall structure schematic diagram in Embodiment 1 of the present invention;

[0027] Figure 2 It is Figure 1 the structure schematic diagram of the air supply pipe group in the shown device;

[0028] Figure 3 It is the overall structure schematic diagram in Embodiment 2 of the present invention;

[0029] Figure 4 It is Figure 3 the perspective view of the condensation component in the shown device;

[0030] Figure 5 It is Figure 4 the perspective view of the shown device when the outer cover and the pre-cooling mesh plate are not installed;

[0031] Figure 6 It is Figure 5 the side view of the shown device;

[0032] Figure 7 It is the perspective view of the condensation box and the intake pipe head cooperating with each other in the embodiment of the present invention;

[0033] Figure 8 It is Figure 7 the side view of the shown device;

[0034] Figure 9 It is the perspective view of the cover, the positioning pipe and the horizontal angle plate cooperating with each other in Embodiment 2 of the present invention;

[0035] Figure 10 It is Figure 9 the side view of the shown device;

[0036] Figure 11 It is the perspective view of the pre-cooling mesh plate in the embodiment of the present invention;

[0037] Figure 12 It is the perspective view of the condensation plate in the embodiment of the present invention;

[0038] Figure 13 It is Figure 12 the top view of the shown device;

[0039] Figure 14 It is Figure 12 the front view of the shown device;

[0040] Figure 15 It is the perspective view of the grading member in the embodiment of the present invention;

[0041] Figure 16 It is Figure 15 the front view of the shown device;

[0042] Figure 17It is a schematic structural diagram of the first external elbow pipe and the second external elbow pipe in Embodiment 3 of the present invention;

[0043] Figure 18 is Figure 17 the front view of the device shown.

[0044] In the figure: 1. Equipment box; 11. Bottom box; 12. Top shell; 2. Refrigeration component; 21. Outer frame; 22. Fin group; 23. Cooling elbow pipe; 231. First connecting pipe; 232. Second connecting pipe; 3. Condensation component; 31. Condensation box; 310. Positioning inner seat; 311. Main box shell; 312. Bottom frame shell; 313. Outer cover; 314. Longitudinal hanging plate; 315. Support plate; 316. Flow guiding bottom plate; 32. Condensation plate; 321. Plate frame; 322. Spiral refrigeration pipe; 323. Auxiliary cover; 33. Drain pipe; 34. Air inlet head; 35. Baffling member; 351. Insertion connecting pipe; 352. Top disc; 353. Air outlet groove; 36. Pre-cooling net plate; 361. Heat conduction connecting plate; 362. Heat dissipation net plate; 4. Air supply pipe group; 401. Second external elbow pipe; 402. Air inlet conduit; 403. Positioning pipe; 404. Horizontal angle plate; 41. First external elbow pipe; 42. Shunt pipe group; 43. Extension pipe group; 44. Flow guiding pipe; 45. Sealing cover; 5. Compressor; 101. Vertical pipe part; 102. Horizontal pipe part; 103. Spherical water storage shell; 104. Drain pipe; 105. Solenoid valve; 106. Electronic liquid level monitor. Detailed implementation manners

[0045] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. The following description of at least one exemplary embodiment is actually only illustrative and in no way restrictive of the present invention and its application or use. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0046] It should be noted that the terms used herein are only for describing specific implementation manners and are not intended to limit the exemplary implementation manners according to the present application. As used herein, unless otherwise clearly specified in the context, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "include" and / or "comprise" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0047] Unless otherwise specifically stated, the relative arrangements, numerical expressions, and numerical values of the components and steps set forth in these embodiments do not limit the scope of the present invention. At the same time, it should be understood that, for the sake of convenience in description, the dimensions of the various parts shown in the drawings are not drawn in actual proportional relationships. Technologies, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the said technologies, methods, and devices should be regarded as part of the authorization specification. In all the examples shown and discussed here, any specific value should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that like reference numerals and letters denote like items in the following drawings, and thus, once an item is defined in one drawing, further discussion thereof is not required in subsequent drawings.

[0048] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by orientation terms such as "front, back, up, down, left, right", "lateral, vertical, perpendicular, horizontal", and "top, bottom", etc., are usually based on the orientation or positional relationships shown in the drawings. These are only for the convenience of describing the present invention and simplifying the description. Without contrary explanation, these orientation terms 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 limiting the protection scope of the present invention; the orientation terms "inside, outside" refer to the inside and outside relative to the contour of each component itself.

[0049] For the convenience of description, spatial relative terms such as "above...", "over...", "on the upper surface of...", "upper", etc., can be used here to describe the spatial positional relationship between a device or feature shown in the drawings and other devices or features. It should be understood that the spatial relative terms are intended to encompass different orientations in use or operation in addition to the orientation described in the drawings for the device. For example, if the device in the drawing is inverted, the device described as "above other devices or structures" or "over other devices or structures" will then be positioned "below other devices or structures" or "under other devices or structures". Thus, the exemplary term "above..." can include both the orientations of "above..." and "below...". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and corresponding interpretations should be made for the spatial relative descriptions used here.

[0050] In addition, it should be noted that the use of terms such as "first", "second", etc. to limit components is only for the convenience of distinguishing the corresponding components. Without otherwise stating, the above terms have no special meanings. Therefore, they should not be construed as limiting the protection scope of the present invention.

[0051] Embodiment 1

[0052] Referring to Figure 1 and Figure 4 As shown, an efficient energy-saving evaporation condensation device includes an equipment box 1. The equipment box 1 includes a bottom box 11 and a top shell 12. The top shell 12 is fixedly installed on the upper end surface of the bottom box 11. A refrigeration component 2, a condensation component 3, and a gas supply pipe group 4 are installed in the top shell 12. The condensation component 3 is arranged above the refrigeration component 2, and both the refrigeration component 2 and the condensation component 3 are fixedly connected to the top shell 12. The gas supply pipe group 4 is fixedly installed in the top shell 12, and the lower end of the gas supply pipe group 4 extends into the bottom box 11. A compressor 5 that cooperates with the refrigeration component 2 and the condensation component 3 is also fixedly installed in the top shell 12. By providing the equipment box 1, it ensures the housing structure of the entire device, facilitating the stable installation of other components inside. This structural design makes the layout of the entire device more reasonable. Integrating the refrigeration component 2, the condensation component 3, and the gas supply pipe group 4 in the top shell 12 of the equipment box 1 is convenient for unified management and maintenance. And by designing the equipment box 1 into a structure where the bottom box 11 and the top shell 12 cooperate, it is convenient to install different components through the cooperation of the bottom box 11 and the top shell 12 during use. By installing the refrigeration component 2, the condensation component 3, the gas supply pipe group 4, and the compressor 5 in the top shell 12, it is convenient for the compressor 5 to cooperate with the refrigeration component 2 and the condensation component 3 during use, effectively realizing the evaporation condensation function, improving the overall performance and operating efficiency of the device. At the same time, the setting of the bottom box 11 can provide an installation space for the gas supply pipe group 4 and can play a certain role in fixing and protecting. After the gas supply pipe group 4 is connected to the external steam pipe, it can evenly distribute the steam to different positions of the condensation component 3, facilitating the condensation component 3 to perform high-efficiency condensation operations.

[0053] Referring to Figure 1As shown, the refrigeration component 2 includes an outer frame 21, a fin group 22, a cooling elbow 23 and a cooling fan. The outer frame 21 is fixedly installed in the top shell 12. The fin group 22 is fixedly installed in the outer frame 21. The cooling elbow 23 is inserted into the fin group 22, and the two ends of the cooling elbow 23 are provided with a first connecting pipe 231 and a second connecting pipe 232. The first connecting pipe 231 extends into the condensing component 3, and the second connecting pipe 232 is connected to the compressor 5. The cooling fan is installed on the rear end face of the fin group 22 and is fixedly connected to the outer frame 21. By designing the refrigeration component 2 into a structure with the outer frame 21, the fin group 22, the cooling elbow 23 and the cooling fan cooperating, it is convenient to provide a stable support structure for the refrigeration component 2 through the outer frame 21 during use, ensuring the overall stability of the component. At the same time, the setting of the fin group 22 increases the heat dissipation area, which can effectively improve the refrigeration efficiency. The cooperation between the cooling elbow 23 and the fin group 22 enables the coolant to better exchange heat with the air when flowing in the elbow, further enhancing the refrigeration effect. The installation of the cooling fan can accelerate the air flow, timely take away the heat, improve the heat dissipation efficiency of the refrigeration component 2, thus ensuring the normal operation of the refrigeration component 2 and reducing the energy consumption.

[0054] Referring to Figure 4 , Figure 5 , Figure 6 and Figure 7 As shown, the condensing component 3 includes a condensing box 31, a condensing plate 32 and a drain pipe 33. The lower end face of the condensing box 31 is evenly provided with a number of intake pipe heads 34 connected to the gas supply pipe group 4. The intake pipe heads 34 are hermetically and fixedly connected to the condensing box 31. The condensing plate 32 is evenly installed in the condensing box 31 from top to bottom. The drain pipe 33 is installed on one side of the condensing box 31 and is hermetically and fixedly connected to the condensing box 31. By designing the condensing component 3 into a structure with the condensing box 31, the condensing plate 32 and the drain pipe 33 cooperating, it is convenient to provide a closed space for the condensing process through the condensing box 31 during use, ensuring the stability of the condensing effect. And through the connection between the intake pipe heads 34 and the gas supply pipe group 4, the gas to be condensed can smoothly enter the condensing box 31. And after the condensing plate 32 is evenly installed in the condensing box 31 from top to bottom, the incoming steam can be subjected to layer-by-layer condensation operation through the condensing plate 32, and the inclined installation method of the condensing plate 32 increases the contact area between the gas and the condensing plate 32, improving the condensing efficiency. The setting of the drain pipe 33 can timely discharge the liquid generated during the condensing process, ensuring the cleanliness and normal operation inside the condensing box 31.

[0055] Referring to Figure 4 , Figure 5 , Figure 7 and Figure 8As shown, the condensation box 31 includes a main box shell 311, a bottom frame shell 312 and an outer cover 313. The main box shell 311 is fixedly installed in the top shell 12, and a number of positioning inner seats 310 for installing the condensation plates 32 are evenly arranged on the inner side surface of the main box shell 311 from top to bottom. The positioning inner seats 310 are integrally formed with the main box shell 311. The bottom frame shell 312 is arranged on the lower end surface of the main box shell 311 and is fixedly connected to the main box shell 311. The outer cover 313 is fixedly installed on one side of the main box shell 311. By designing the condensation box 31 into a structure where the main box shell 311, the bottom frame shell 312 and the outer cover 313 cooperate, it is convenient to use by combining each part during use. At the same time, the installation and disassembly of the condensation box 31 are made more convenient. Moreover, the combined structure of the main box shell 311, the bottom frame shell 312 and the outer cover 313 is more convenient for cleaning and maintaining the inside of the condensation box 31. And by integrally forming the positioning inner seats 310 in the main box shell 311, it ensures that the condensation plates 32 are stably installed obliquely for use, enabling the condensation plates 32 to better play their role and improving the overall performance of the condensation box 31. A longitudinal hanging plate 314 is arranged in the main box shell 311. The longitudinal hanging plate 314 is fixedly connected to the main box shell 311, and a number of supporting plates 315 for supporting the condensation plates 32 are evenly installed on one side of the longitudinal hanging plate 314 from top to bottom. The supporting plates 315 are integrally formed with the longitudinal hanging plate 314. A diversion bottom plate 316 is also installed on the inner side of the bottom of the main box shell 311. A number of ventilation holes corresponding to the intake pipe heads 34 are opened on the diversion bottom plate 316, and a baffle member 35 is inserted and installed in the ventilation holes. The baffle member 35 is hermetically connected to the diversion bottom plate 316. The arrangement of the longitudinal hanging plate 314 and the supporting plates 315 provides auxiliary support for the other side of the condensation plates 32, enhancing the stability of the condensation plates 32 and preventing the condensation plates 32 from shaking or shifting during operation. The cooperation of the ventilation holes on the diversion bottom plate 316 and the baffle member 35 enables the gas entering the condensation box 31 to be evenly distributed, improving the contact uniformity between the gas and the condensation plates 32, thereby further improving the condensation efficiency. And the setting of the diversion bottom plate 316 can ensure that the condensed water better gathers towards one side, facilitating the stable discharge of the condensed water. The hermetic connection between the baffle member 35 and the diversion bottom plate 316 ensures that the gas does not leak, improving the safety and stability of the condensation process.

[0056] Refer to Figure 11 、 Figure 15 and Figure 16As shown, the baffle 35 includes an insertion pipe 351 and a top plate 352. The insertion pipe 351 is inserted and fixed in the vent hole. The top plate 352 is fixedly installed at the head of the insertion pipe 351. A plurality of air outlet grooves 353 are evenly formed in the upper end of the insertion pipe 351 along the circumferential direction. A pre-cooling mesh plate 36 is arranged above the top plate 352. A heat-conducting connecting plate 361 is fixedly installed on the outer side surface of the pre-cooling mesh plate 36. A heat-dissipating mesh plate 362 is fixedly installed at the front end of the heat-conducting connecting plate 361. The heat-dissipating mesh plate 362 is fixedly installed on the front end surface of the fin group 22. The structural design of the insertion pipe 351 and the top plate 352 enables the gas to flow out of the air outlet grooves 353 evenly when passing through the baffle 35, further improving the gas distribution uniformity. And the setting of the top plate 352 can prevent the liquid dripping from the top from flowing into the insertion pipe 351, effectively avoiding the situation of coolant backflow. The setting of the pre-cooling mesh plate 36 can pre-cool the gas entering the condensation box 31, reduce the temperature of the gas, relieve the working burden of the condensation plate 32, and improve the condensation efficiency. The cooperation of the heat-conducting connecting plate 361 and the heat-dissipating mesh plate 362 transfers the heat absorbed by the pre-cooling mesh plate 36 to the fin group 22 and dissipates it in time through the cooling fan, realizing the effective utilization of heat and improving the energy-saving effect of the device.

[0057] Refer to Figure 12 、 Figure 13 and Figure 14 As shown in, the condensation plate 32 includes a plate frame 321, a spiral refrigeration pipe 322 and an auxiliary cover 323. One end of the plate frame 321 is rotatably connected to the positioning inner seat 310, and the other end of the plate frame 321 is placed on the support plate 315. The spiral refrigeration pipe 322 is evenly installed in the plate frame 321 and fixedly connected to the plate frame 321. Adjacent spiral refrigeration pipes 322 are interconnected. The auxiliary cover 323 is installed directly below the spiral refrigeration pipe 322 and fixedly connected to the plate frame 321. By designing the condensation plate 32 into a structure with the plate frame 321, the spiral refrigeration pipe 322 and the auxiliary cover 323 in cooperation, it is convenient to make the installation and disassembly of the condensation plate 32 more convenient through the rotational connection and placement method of the plate frame 321 during use, facilitating the maintenance and replacement of the condensation plate 32. And the uniform installation of the spiral refrigeration pipe 322 can increase the flow path of the coolant and improve the refrigeration effect. The interconnection between adjacent spiral refrigeration pipes 322 ensures the circulating flow of the coolant. After all the spiral refrigeration pipes 322 are connected together, their two ends can be respectively connected to the first connecting pipe 231 and the second connecting pipe 232 on the cooling elbow 23, facilitating the compressor 5 to drive the cooling liquid to perform cyclic operation. The setting of the auxiliary cover 323 can ensure that the steam better gathers on the spiral refrigeration pipe 322 to achieve precise condensation operation.

[0058] Refer to Figure 1 and Figure 2As shown, the gas supply pipe group 4 includes an external elbow pipe 41, a shunt pipe group 42, an extension pipe group 43, and a diversion pipe 44. The external elbow pipe 41 is installed at the lower end of the shunt pipe group 42, and the external elbow pipe 41 is hermetically connected to the shunt pipe group 42. The extension pipe group 43 is installed on both sides of the shunt pipe group 42, and the extension pipe group 43 is hermetically and fixedly connected to the shunt pipe group 42. A cover 45 is fixedly installed at the outer end of the extension pipe group 43. One end of the diversion pipe 44 is hermetically connected to the shunt pipe group 42 and the extension pipe group 43, and the other end of the diversion pipe 44 is hermetically connected to the air inlet pipe head 34. By designing the gas supply pipe group 4 into a structure in which the external elbow pipe 41, the shunt pipe group 42, the extension pipe group 43, and the diversion pipe 44 cooperate, it is convenient to connect to an external gas source through the setting of the external elbow pipe 41 during use. The cooperation between the shunt pipe group 42 and the extension pipe group 43 can evenly distribute the gas into each diversion pipe 44, ensuring a uniform gas flow into the condensation box 31, and then the purpose of steam entering the air inlet pipe head 34 from the diversion pipe 44 can be achieved. The installation of the cover 45 can prevent gas leakage and improve the sealing performance of the gas supply pipe group 4. And during use, the extension pipe group 43 is superposed and connected to the extension pipe group 43 at the outer end to increase the number of shunts of the diversion pipe 44. During installation, only the cover 45 needs to be installed on the outermost extension pipe group 43. The hermetic connection between the diversion pipe 44 and the air inlet pipe head 34 ensures that the gas can smoothly enter the condensation box 31 and improves the operating efficiency of the device.

[0059] Embodiment 2

[0060] Refer to Figure 3 、 Figure 9 and Figure 10As shown in the figure, an energy-efficient evaporation and condensation device includes an equipment box 1. The equipment box 1 includes a bottom box 11 and a top shell 12. The top shell 12 is fixedly installed on the upper end face of the bottom box 11. A refrigeration component 2, a condensation component 3, and a gas supply pipe group 4 are installed in the top shell 12. The condensation component 3 is arranged above the refrigeration component 2, and both the refrigeration component 2 and the condensation component 3 are fixedly connected to the top shell 12. The gas supply pipe group 4 is fixedly installed in the top shell 12, and the lower end of the gas supply pipe group 4 extends into the bottom box 11. The gas supply pipe group 4 includes an external elbow two 401 and an intake duct 402. The external elbow two 401 is fixedly installed in the bottom box 11. The lower end of the intake duct 402 is hermetically connected to the external elbow two 401, and the head of the intake duct 402 is connected to an outer cover 313. A positioning pipe 403 matching the intake duct 402 is arranged on the outer cover 313, and a horizontal angle plate 404 is arranged on the inner side surface of the outer cover 313. The horizontal angle plate 404 is fixedly connected to the outer cover 313. By designing the gas supply pipe group 4 into a structure where the external elbow two 401 and the intake duct 402 cooperate, it is convenient to provide another gas supply method through the cooperation of the external elbow two 401 and the intake duct 402 during use, increasing the flexibility of the device. The setting of the positioning pipe 403 ensures the installation accuracy of the intake duct 402. The setting of the horizontal angle plate 404 ensures that the steam entering from the positioning pipe 403 can be blocked by the horizontal angle plate 404, thereby facilitating the lateral dispersion of the steam and increasing the cooling efficiency.

[0061] Embodiment 3

[0062] Referring to Figure 17 and Figure 18 As shown in the figure, both the external elbow one 41 and the external elbow two 401 include a vertical pipe portion 101 and a horizontal pipe portion 102. A spherical water storage shell 103 is installed at the lower end of the vertical pipe portion 101. The spherical water storage shell 103 is hermetically and fixedly connected to the vertical pipe portion 101. A drain pipe 104 is installed on the lower end face of the spherical water storage shell 103, and a solenoid valve 105 is installed on the drain pipe 104. An electronic liquid level monitor 106 is also fixedly installed in the spherical water storage shell 103. By designing the external elbow one 41 and the external elbow two 401 into a structure where the vertical pipe portion 101 and the horizontal pipe portion 102 cooperate, it is convenient to externally connect a steam pipe through the horizontal pipe portion 102 during use and then discharge the steam into the horizontal pipe portion 102. The spherical water storage shell 103 can collect the moisture carried in the gas and collect the reflux moisture. The electronic liquid level monitor 106 can monitor the water level in the spherical water storage shell 103 in real time. When the water level reaches a certain height, the solenoid valve 105 automatically opens, and the moisture is discharged through the drain pipe 104, realizing the automatic discharge of moisture and improving the automation degree and operation stability of the device.

[0063] Working principle: During actual use, the steam pipeline can be externally connected through the air supply pipe group 4, ensuring that after the steam enters the air supply pipe group 4, it can be shunted into different diversion pipes 44 through the cooperation of the shunt pipe group 42 and the extension pipe group 43. Then, the steam is diverted to the air inlet head 34 through different diversion pipes 44, ensuring that the steam enters the condensation box 31 from the air inlet head 34. During the process of entering the condensation box 31, it first enters dispersedly through the blockage of the baffle 35, and then is pre-cooled by the pre-cooling mesh plate 36 and comes into contact with the coiled refrigeration pipe 322 on the condensation plate 32 to achieve rapid condensation.

[0064] The above is the preferred embodiment of the present invention. Those skilled in the art to which the present invention pertains can still make changes and modifications to the above embodiment. Therefore, the present invention is not limited to the above specific embodiments. Any obvious improvements, substitutions, or variations made by those skilled in the art on the basis of the present invention all fall within the protection scope of the present invention.

Claims

1. An energy-efficient evaporation and condensation device, comprising an equipment box (1), characterized in that: The equipment box (1) includes a bottom box (11) and a top shell (12). The top shell (12) is fixedly installed on the upper end face of the bottom box (11). A refrigeration component (2), a condensation component (3), and an air supply pipe group (4) are installed in the top shell (12). The condensation component (3) is arranged above the refrigeration component (2), and both the refrigeration component (2) and the condensation component (3) are fixedly connected to the top shell (12). The air supply pipe group (4) is fixedly installed in the top shell (12), and the lower end of the air supply pipe group (4) extends into the bottom box (11). A compressor (5) that cooperates with the refrigeration component (2) and the condensation component (3) is also fixedly installed in the top shell (12).

2. An efficient energy-saving evaporation condensation device according to claim 1, characterized in that: The refrigeration component (2) includes an outer frame (21), a fin group (22), a cooling elbow (23), and a cooling fan. The outer frame (21) is fixedly installed in the top shell (12). The fin group (22) is fixedly installed in the outer frame (21). The cooling elbow (23) is inserted into the fin group (22), and first connecting pipes (231) and second connecting pipes (232) are arranged at both ends of the cooling elbow (23). The first connecting pipe (231) extends into the condensation component (3), and the second connecting pipe (232) is connected to the compressor (5). The cooling fan is installed on the rear end face of the fin group (22), and the cooling fan is fixedly connected to the outer frame (21).

3. An efficient energy-saving evaporation condensation device according to claim 2, characterized in that: The condensation component (3) includes a condensation box (31), a condensation plate (32), and a drain pipe (33). A plurality of air inlet heads (34) connected to the air supply pipe group (4) are evenly arranged on the lower end face of the condensation box (31). The air inlet heads (34) are fixedly and sealingly connected to the condensation box (31). The condensation plates (32) are evenly installed in the condensation box (31) from top to bottom. The drain pipe (33) is installed on one side of the condensation box (31), and the drain pipe (33) is fixedly and sealingly connected to the condensation box (31).

4. An efficient energy-saving evaporation condensation device according to claim 3, characterized in that: The condensation box (31) includes a main box shell (311), a bottom frame shell (312), and an outer cover (313). The main box shell (311) is fixedly installed in the top shell (12), and a plurality of positioning inner seats (310) for installing the condensation plates (32) are evenly arranged on the inner side surface of the main box shell (311) from top to bottom. The positioning inner seats (310) are integrally formed with the main box shell (311). The bottom frame shell (312) is arranged on the lower end face of the main box shell (311), and the bottom frame shell (312) is fixedly connected to the main box shell (311). The outer cover (313) is fixedly installed on one side of the main box shell (311).

5. An efficient energy-saving evaporation condensation device according to claim 4, characterized in that: A longitudinal hanging plate (314) is arranged in the main housing (311). The longitudinal hanging plate (314) is fixedly connected to the main housing (311), and a plurality of brackets (315) for supporting the condensation plate (32) are uniformly installed on one side of the longitudinal hanging plate (314) from top to bottom. The brackets (315) are integrally formed with the longitudinal hanging plate (314). A diversion bottom plate (316) is further installed on the inner side of the bottom of the main housing (311). A plurality of ventilation holes corresponding to the air inlet nozzles (34) are formed in the diversion bottom plate (316), and a baffle member (35) is inserted and installed in the ventilation holes. The baffle member (35) is hermetically connected to the diversion bottom plate (316).

6. An efficient energy-saving evaporation condensation device according to claim 5, characterized in that: The baffle member (35) includes an insertion pipe (351) and a top plate (352). The insertion pipe (351) is inserted and fixed in the ventilation hole. The top plate (352) is fixedly installed at the head of the insertion pipe (351), and a plurality of air outlet grooves (353) are uniformly formed in the upper end of the insertion pipe (351) along the circumferential direction. A pre-cooling mesh plate (36) is arranged above the top plate (352). A heat-conducting connecting plate (361) is fixedly installed on the outer side surface of the pre-cooling mesh plate (36). A heat dissipation mesh plate (362) is fixedly installed at the front end of the heat-conducting connecting plate (361). The heat dissipation mesh plate (362) is fixedly installed on the front end surface of the fin group (22).

7. An efficient energy-saving evaporation condensation device according to claim 6, characterized in that: The condensation plate (32) includes a plate frame (321), a spiral refrigeration pipe (322) and an auxiliary cover (323). One end of the plate frame (321) is rotatably connected to the positioning inner seat (310), and the other end of the plate frame (321) is placed on the bracket (315). The spiral refrigeration pipes (322) are uniformly installed in the plate frame (321) and are fixedly connected to the plate frame (321). Adjacent spiral refrigeration pipes (322) are communicated with each other. The auxiliary cover (323) is installed directly below the spiral refrigeration pipe (322) and is fixedly connected to the plate frame (321).

8. An efficient energy-saving evaporation condensation device according to claim 3, characterized in that: The air supply pipe group (4) includes an external bent pipe one (41), a shunt pipe group (42), an extension pipe group (43) and a diversion pipe (44). The external bent pipe one (41) is installed at the lower end of the shunt pipe group (42) and is hermetically connected to the shunt pipe group (42). The extension pipe group (43) is installed on both sides of the shunt pipe group (42) and is hermetically and fixedly connected to the shunt pipe group (42). A cover (45) is further fixedly installed at the outer end of the extension pipe group (43). One end of the diversion pipe (44) is hermetically connected to the shunt pipe group (42) and the extension pipe group (43), and the other end of the diversion pipe (44) is hermetically connected to the air inlet nozzle (34).

9. An efficient energy-saving evaporation condensation device according to claim 3, characterized in that: The air supply pipe group (4) includes an external elbow pipe II (401) and an air inlet conduit (402). The external elbow pipe II (401) is fixedly installed on the bottom box (11). The lower end of the air inlet conduit (402) is hermetically connected to the external elbow pipe II (401), and the head of the air inlet conduit (402) is connected to the outer cover (313). A positioning pipe (403) matching the air inlet conduit (402) is arranged on the outer cover (313), and a horizontal angle plate (404) is arranged on the inner side surface of the outer cover (313). The horizontal angle plate (404) is fixedly connected to the outer cover (313).

10. An efficient energy-saving evaporation condensation device according to claim 8 or 9, characterized in that: Both the external elbow pipe I (41) and the external elbow pipe II (401) include a vertical pipe portion (101) and a horizontal pipe portion (102). A spherical water storage shell (103) is installed at the lower end of the vertical pipe portion (101). The spherical water storage shell (103) is hermetically and fixedly connected to the vertical pipe portion (101). A drain pipe (104) is installed on the lower end surface of the spherical water storage shell (103). A solenoid valve (105) is installed on the drain pipe (104). An electronic liquid level detector (106) is also fixedly installed in the spherical water storage shell (103).