Intelligent integrated large-flow impact-resistant efficient heat exchange device

By introducing heat dissipation components and turbulence components into the heat exchange device, the problems of uneven heat distribution and insufficient heat dissipation are solved, achieving efficient heat exchange and uniform water flow, and improving the performance and impact resistance of the device.

CN223525636UActive Publication Date: 2025-11-07XIONGAN LONGYUAN CLEAN ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520084488.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2025-11-07
Estimated Expiration
2035-01-15

AI Technical Summary

Technical Problem

Traditional heat exchangers suffer from uneven heat distribution and insufficient heat dissipation under high flow conditions, leading to energy waste and performance degradation, and failing to meet the requirements for high efficiency.

Method used

The design incorporates heat dissipation components and turbulence components. The heat dissipation components adjust the position of the heat dissipation fins through heat-sensitive materials and gear transmission, while the turbulence components generate turbulence through guide grooves and guide blocks to optimize heat exchange and water flow distribution.

Benefits of technology

It achieves efficient heat management and uniform water flow distribution, improves heat exchange efficiency and the device's impact resistance, and meets the heat dissipation requirements under high flow conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of heat exchange devices, in particular to an intelligent integrated large-flow impact-resistant efficient heat exchange device which comprises a heat exchange plate, heat dissipation assemblies and a turbulence assembly, the heat dissipation assemblies are arranged on the two sides of the heat exchange plate and used for conducting external auxiliary cooling on the heat exchange plate, the heat exchange efficiency in the device is improved, and the turbulence assembly is arranged on the heat exchange plate. Timely adjustment is carried out through the internal temperature; and the turbulence assembly is arranged in the heat exchange plate and used for adjusting the turbulence degree entering the heat exchange plate, the turbulence effect of the water body is improved, heat exchange is achieved to the maximum degree, and the heat exchange efficiency is improved. Compared with the prior art, the problems of energy waste and performance loss caused by uneven heat distribution and insufficient heat dissipation performance are solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to heat exchange device technical field especially relates to intelligent integrated high flow impact resistance high -efficient heat exchange device. BACKGROUND

[0002] With the increase of industrial production and civil demand, high -efficient heat exchange equipment plays a vital role in modern energy utilization and heat management system. Heat exchange equipment is widely used in chemical industry, pharmacy, electric power, air conditioning refrigeration and other industries, realizes the efficient conversion of energy through the transmission and heat dissipation of heat, the existing heat exchange device uses intelligent integrated operation system to carry out resource centralized unified deployment, and the pipeline for transporting water body is all of excellent impact resistance material.

[0003] Traditional heat exchange device usually has problems such as low heat exchange efficiency, insufficient heat dissipation and poor water flow uniformity, cannot meet the demand of high flow and high efficiency scene, especially under the condition of high flow, the water flow rate is high, the heat in the heat exchange plate is difficult to fully transfer, leading to energy waste and system performance decline, and temperature regulation is not sensitive enough, the heat dissipation design is relatively fixed, and it is also difficult to realize dynamic adjustment according to actual demand, further limiting the efficiency improvement of heat exchange device. SUMMARY

[0004] Therefore, the utility model discloses the purpose in order to propose intelligent integrated high flow impact resistance high -efficient heat exchange device to solve the problem of energy waste and performance loss caused by uneven heat distribution and insufficient heat dissipation.

[0005] Based on the above purpose, the utility model provides intelligent integrated high flow impact resistance high -efficient heat exchange device, including heat exchange plate, heat dissipation component and turbulence component,

[0006] Heat dissipation component is arranged at both sides of the heat exchange plate, is used to carry out external auxiliary cooling to the heat exchange plate, increases the heat exchange efficiency in the device, adjusts in time through internal temperature;

[0007] Turbulence component is arranged in the inside of the heat exchange plate, is used for adjusting the turbulence degree of entering the inside of the heat exchange plate, increases the turbulence effect of water body, realizes the exchange of heat to the maximum extent, improves the heat exchange efficiency.

[0008] Preferably, the heat dissipation assembly comprises a front plate fixedly connected to one side of the heat exchange plate, a threaded rod rotatably connected to the side wall of the heat exchange plate on the side close to the front plate, a plurality of heat dissipation fins threadedly connected to the threaded rod, a rear plate fixedly connected to the side of the heat exchange plate away from the front plate, the threaded rod penetrating through and rotatably connected to the rear plate, a gear fixedly connected to one end of the threaded rod, a containing block fixedly connected to the side of the rear plate away from the heat dissipation fins, a toothed plate slidably connected to the top of the containing block, two limiting blocks fixedly connected to the side of the rear plate on the side of the containing block, the toothed plate slidably installed in the limiting blocks, the toothed plate meshingly connected with the gear, a heat-sensitive material contained in the containing block, the bottom of the heat-sensitive material fixedly connected to the bottom of the containing block, the top of the heat-sensitive material fixedly connected to the bottom of the containing block, and a heat-conducting rod arranged in the containing block, the heat-conducting rod penetrating through the outer wall of the rear plate and penetrating into the heat exchange plate.

[0009] Preferably, the turbulent flow assembly comprises a guide groove fixedly arranged in the heat exchange plate, the guide groove is an inclined groove inclined by thirty to sixty degrees to one side, and a guide block is fixedly connected in the inclined groove, the inclined angle of the guide block is consistent with that of the guide groove.

[0010] Preferably, the thread on the threaded rod is gradually increased in pitch from the front plate to the rear plate.

[0011] Preferably, a guide rod is fixedly connected to the lower positions of the front plate and the rear plate, the guide rod penetrates through and slidably sheaths the heat dissipation fins.

[0012] Preferably, a fixing frame is fixedly connected to the bottom of the front plate and the rear plate, a support is fixedly connected to one side of the rear plate, and a base is fixedly connected to the bottom of the support.

[0013] Preferably, a cold water pipe and a hot water pipe are fixedly installed on the base, the hot water pipe is wound on the base and penetrates through the front plate to be in communication with the heat exchange plate, a hot water inlet is arranged at the communication position, a hot water outlet is arranged directly below the hot water inlet on the front plate, the hot water outlet is in communication with the hot water pipe, a cold water inlet is arranged at a position parallel to the hot water inlet on the front plate at the communication position of the cold water pipe and the heat exchange plate, a cold water outlet is arranged directly below the cold water inlet on the front plate, and the cold water outlet is in communication with the cold water pipe.

[0014] Preferably, the middle part of the heat exchange plate is separated into two water chambers by a partition plate, the guide groove and the guide block are arranged in the two water chambers in a mirror image manner.

[0015] The utility model discloses an advantageous effect:

[0016] 1. The intelligent integrated high flow impact resistant high -efficient heat exchange device, radiating fin combination heat -sensitive material and gear drive design, through the temperature change of the heat exchange plate sensing, can automatically adjust the position distribution of radiating fin, dynamic optimization radiating performance, the design of heat conduction rod fast delivery heat, combination radiating fin's sliding sleeve set, realized sensitive efficient intelligent integrated heat management, satisfied the radiating demand under the condition of high flow, effectively avoided the heat accumulation problem.

[0017] 2. The intelligent integrated high flow impact resistant high -efficient heat exchange device, through the inclination structure design of guide groove and guide block, forms the turbulent effect of water flow, improves the mixing efficiency and heat exchange capacity of water body greatly, simultaneously, the baffle design divides the heat exchange plate inside into two water chambers, guarantees the uniform distribution of cold and hot water flow, further optimizes the heat exchange efficiency, and the water body of high flow is reduced simultaneously Effect, improve the impact resistance of the device. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical scheme of the utility model or prior art, the following will be briefly introduced to the drawing needed to be used in the embodiment or prior art description, obviously, the drawing in the following description is the utility model, for ordinary skilled person in the art, under the premise of not paying the creative labor, other drawings can also be obtained according to these drawings.

[0019] Figure 1 It is the whole structure schematic diagram of the utility model;

[0020] Figure 2 It is the first view angle schematic diagram of the partial structure of the utility model;

[0021] Figure 3 It is the second view angle schematic diagram of the partial structure of the utility model;

[0022] Figure 4 It is the internal structure schematic diagram of the utility model.

[0023] Marked in the drawing as:

[0024] 1, cold water pipe;2, hot water pipe;3, base;4, front plate;5, hot water inlet;6, cold water inlet;7, support;8, back plate;9, threaded rod;10, radiating fin;11, fixed frame;12, hot water outlet;13, cold water outlet;14, gear;15, containing block;16, limit block;17, toothed plate;18, guide groove;19, guide block;20, heat exchange plate;21, guide rod. DETAILED DESCRIPTION

[0025] In order to make the purpose, technical scheme and advantages of the utility model more clearly, the following will be further described in detail in combination with specific embodiments.

[0026] It should be noted that, unless otherwise defined, the technical terms or scientific terms used in the utility model should be understood as the usual meaning by the person skilled in the art to which the utility model belongs. The "first", "second" and similar words used in the utility model do not represent any order, quantity or importance, but are only used to distinguish different components. "Include" or "contain" and similar words mean that the elements or objects before the word cover the elements or objects listed after the word and their equivalents, and do not exclude other elements or objects. "Connection" or "connected" and similar words are not limited to physical or mechanical connection, but can include electrical connection, whether direct or indirect. "Up", "down", "left", "right" and the like are only used to represent the relative positional relationship, when the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0027] As shown in Figures 1 to 4 The intelligent integrated large-flow impact-resistant high-efficiency heat exchange device comprises a heat exchange plate 20, a heat dissipation assembly and a turbulent flow assembly, a fixed frame 11 is fixedly connected to the bottom of the front plate 4 and the rear plate 8, a support 7 is fixedly connected to one side of the rear plate 8, a base 3 is fixedly connected to the bottom of the support 7, a cold water pipe 1 and a hot water pipe 2 are fixedly installed on the base 3, the hot water pipe 2 is wound on the base 3 and penetrates through the front plate 4 to be communicated with the heat exchange plate 20, a hot water inlet 5 is arranged at the communicated position, a hot water outlet 12 is arranged on the front plate 4 below the hot water inlet 5, the hot water outlet 12 is communicated with the hot water pipe 2, a cold water inlet 6 is arranged on the front plate 4 in parallel with the hot water inlet 5 at the communicated position of the cold water pipe 1 and the heat exchange plate 20, a cold water outlet 13 is arranged on the front plate 4 below the cold water inlet 6, and the cold water outlet 13 is communicated with the cold water pipe 1.

[0028] Further, as shown in Figure 2 and Figure 3The heat dissipation assembly is arranged on both sides of the heat exchange plate 20 and used for externally assisting the heat exchange plate 20 to reduce temperature, increasing the heat exchange efficiency inside the device, and timely adjusting the internal temperature. The front plate 4 is fixedly connected to one side of the heat exchange plate 20, a threaded rod 9 is rotatably connected to a side wall close to the heat exchange plate 20 on the side of the front plate 4, the thread pitch of the threaded rod 9 gradually increases from the front plate 4 to the rear plate 8, a plurality of heat dissipation fins 10 are threadedly connected to the threaded rod 9, the rear plate 8 is fixedly connected to a side of the heat exchange plate 20 away from the front plate 4, the threaded rod 9 penetrates through the rear plate 8 and is rotatably connected to the rear plate 8, a gear 14 is fixedly connected to one end of the threaded rod 9, a containing block 15 is fixedly connected to a side of the rear plate 8 away from the heat dissipation fin 10, a toothed plate 17 is slidably connected above the containing block 15, two limiting blocks 16 are fixedly connected to a position of the rear plate 8 on a side of the containing block 15, the toothed plate 17 is slidably installed in the limiting block 16, the toothed plate 17 is meshingly connected with the gear 14, a heat-sensitive material is contained in the containing block 15, the bottom of the heat-sensitive material is fixed to the bottom of the containing block 15, the top of the heat-sensitive material is fixed to the bottom of the containing block 15, a heat conduction rod is arranged in the containing block 15, the heat conduction rod penetrates through the outer wall of the rear plate 8 and penetrates into the inside of the heat exchange plate 20, a guide rod 21 is fixedly connected to a position below the front plate 4 and the rear plate 8, the guide rod 21 penetrates through the heat dissipation fin 10 and is slidably sleeved with the heat dissipation fin 10, the heat dissipation assembly is arranged on both sides of the heat exchange plate 20, the sliding structure of the heat dissipation fin 10 is combined, the auxiliary cooling is realized, the internal heat exchange efficiency is improved, the thread pitch of the threaded rod 9 gradually increases from the front plate 4, the adjustment of the heat dissipation fin 10 is facilitated, the heat transfer and heat dissipation performance are optimized, the heat-sensitive material is arranged in the containing block 15, the toothed plate 17 can be driven to move according to the temperature change, so that the distribution position of the heat dissipation fin 10 is automatically adjusted, the dynamic temperature control is realized, the heat conduction rod in the containing block 15 penetrates through the rear plate 8 and extends into the inside of the heat exchange plate 20, the heat is quickly transferred, and the overall heat dissipation capacity is enhanced, the guide rod 21 penetrates through the heat dissipation fin 10 and is slidably sleeved, the fin is stable and does not deviate during the adjustment process, the gear 14 is meshingly designed with the toothed plate 17, and the combination of mechanical transmission and automatic adjustment function is realized.

[0029] Further, as Figure 4As shown, the turbulent flow assembly is arranged in the interior of the heat exchange plate 20, used for adjusting the turbulent flow degree of the water entering the interior of the heat exchange plate 20, increasing the turbulent flow effect of the water body, and maximizing the heat exchange, thereby improving the heat exchange efficiency, comprising a guide groove 18 fixedly arranged in the interior of the heat exchange plate 20, the guide groove 18 is a slant groove inclined to one side by 30-60 degrees, the slant groove is fixedly connected with a guide block 19, the inclination angle of the guide block 19 is consistent with the guide groove 18, the middle part of the interior of the heat exchange plate 20 is separated into two water chambers by a partition plate, the two water chambers are both provided with the guide groove 18 and the guide block 19, and the guide grooves 18 and the guide blocks 19 on the two sides are mirror image arranged, by arranging the guide groove 18 and the guide block 19, the water flow entering the heat exchange plate 20 is guided to form turbulent flow, thereby greatly improving the mixing effect of the water body and the heat exchange efficiency, the guide groove 18 is designed to be inclined (30-60 degrees) and cooperates with the guide block 19, thereby increasing the disturbance of the water flow path, prolonging the residence time of the water flow in the heat exchange plate 20, and fully realizing the heat exchange, the interior of the heat exchange plate 20 is divided into two independent water chambers by the partition plate, and the guide grooves 18 and the guide blocks 19 on the two sides are mirror image arranged, thereby ensuring that the water flow is uniformly turbulent, and the heat exchange is more efficient.

[0030] Workflow

[0031] When the device is in use, hot water enters the interior of the heat exchange plate 20 through the hot water pipe 2, cold water enters the interior of the heat exchange plate 20 through the cold water pipe 1, and the water flow forms turbulent flow in the pipeline formed by the guide groove 18 and the guide block 19 in the interior of the heat exchange plate 20, thereby increasing the residence time of the water body in the interior of the heat exchange plate 20, and driving the cold and hot water bodies to be fully heat exchanged in the interior of the heat exchange plate 20 and then discharged from the lower part, when the heat in the interior of the heat exchange plate 20 is high, the heat-sensitive material in the hot water outlet 12 expands, thereby driving the tooth plate 17 upward, driving the gear 14 to rotate and drive the threaded rod 9 to rotate, thereby moving the heat dissipation fins 10 from one side of the heat exchange plate 20 to the other side, thereby increasing the heat dissipation of the heat exchange plate 20 and improving the heat exchange efficiency, when the heat decreases, the tooth plate 17 falls back, driving the heat dissipation fins 10 to return to the original position.

[0032] Those skilled in the art will understand that the discussion of any of the above embodiments is merely exemplary and is not intended to suggest that the scope (including claims) of the present application be limited to these examples; under the concept of the present application, the above embodiments or technical features in different embodiments can also be combined, the steps can be implemented in any order, and there are many other changes of different aspects of the present application as described above, which are not provided in details for the sake of brevity.

[0033] The present application is intended to cover all such alternatives, modifications, and variations as fall within the broad scope of the appended claims. Accordingly, any and all such modifications, alternatives, equivalents, and / or improvements as complement the disclosed concept and its core functionality are intended to fall within the scope of the present application.

Claims

1. The intelligent integrated high-flow impact-resistant efficient heat exchange device is characterized in that, Include: Heat exchange plate (20), heat dissipation assembly and turbulent flow assembly, The heat dissipation assembly is arranged on both sides of the heat exchange plate (20), which is used for external auxiliary cooling of the heat exchange plate (20), increases the heat exchange efficiency inside the device, and adjusts the internal temperature in time; The turbulent flow assembly is arranged inside the heat exchange plate (20), which is used for adjusting the turbulent flow degree of the turbulent flow assembly into the heat exchange plate (20), increasing the turbulent flow effect of the water body, and maximizing the heat exchange, improving the heat exchange efficiency.

2. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 1, characterized in that, The heat dissipation assembly includes a front plate (4), the front plate (4) is fixedly connected to one side of the heat exchange plate (20), the side wall near the heat exchange plate (20) is rotatably connected with a threaded rod (9), a plurality of heat dissipation fins (10) are threadedly connected with the threaded rod (9), the heat exchange plate (20) is fixedly connected with a rear plate (8) away from the front plate (4), the threaded rod (9) penetrates through the rear plate (8) and is rotatably connected with the rear plate (8), one end of the threaded rod (9) is fixedly connected with a gear (14), the rear plate (8) is fixedly connected with a containing block (15) away from the heat dissipation fin (10) on one side, the upper side of the containing block (15) is slidably connected with a toothed plate (17), the rear plate (8) is fixedly connected with two limiting blocks (16) on one side of the containing block (15), the toothed plate (17) is slidably installed in the limiting block (16), the toothed plate (17) is engagedly connected with the gear (14), the containing block (15) contains a heat sensitive material, the bottom of the heat sensitive material is fixed with the bottom of the containing block (15), the top is fixed with the bottom of the containing block (15), the containing block (15) is provided with a heat conducting rod, the heat conducting rod penetrates through the outer wall of the rear plate (8) and penetrates into the inside of the heat exchange plate (20).

3. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 2, characterized in that, The turbulent flow assembly includes a guide groove (18) fixedly provided in the inside of the heat exchange plate (20), the guide groove (18) is a inclined groove inclined by thirty to sixty degrees to one side, the guide block (19) is fixedly connected in the inclined groove, and the inclined angle of the guide block (19) is consistent with the inclined angle of the guide groove (18).

4. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 2, characterized in that, The thread on the threaded rod (9) is changed from small to large from the front plate (4) to the rear plate (8).

5. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 2, characterized in that, The lower positions of the front plate (4) and the rear plate (8) are fixedly connected with a guide rod (21), the guide rod (21) penetrates through the heat dissipation fin (10) and is slidably sleeved with the heat dissipation fin (10).

6. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 2, characterized in that, The bottom of the front plate (4) and the rear plate (8) is fixedly connected with a fixing frame (11), one side of the rear plate (8) is fixedly connected with a support (7), and the bottom of the support (7) is fixedly connected with a base (3).

7. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 6, characterized in that, The base (3) is fixedly installed with a cold water pipe (1) and a hot water pipe (2), the hot water pipe (2) is wound on the base (3) and is communicated with the heat exchange plate (20) through the front plate (4), a hot water inlet (5) is arranged at the communication position, a hot water outlet (12) is arranged on the front plate (4) and is located directly below the hot water inlet (5), the hot water outlet (12) is communicated with the hot water pipe (2), the communication position of the cold water pipe (1) and the heat exchange plate (20) is arranged with a cold water inlet (6) at a position parallel to the hot water inlet (5) on the front plate (4), a cold water outlet (13) is arranged on the front plate (4) and is located directly below the cold water inlet (6), and the cold water outlet (13) is communicated with the cold water pipe (1).

8. The intelligent integrated high-flow impact-tolerant high-efficiency heat exchanger according to claim 3, characterized in that, The middle part of the heat exchange plate (20) is separated into two water chambers by a partition plate, the two water chambers are both provided with the guide groove (18) and the guide block (19), and the guide grooves (18) and the guide blocks (19) on the two sides are mirror image arranged.