An assembled heating and cooling radiator

The snap-fit ​​assembly type heating radiator solves the unevenness problem caused by manual welding, thus improving both aesthetics and economic efficiency.

CN224302808UActive Publication Date: 2026-05-29ZHEJIANG SUNLIGHT HEATING EQUIP

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG SUNLIGHT HEATING EQUIP
Filing Date
2025-07-23
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

The existing heating radiators have pipes and heat dissipation structures that are fixed by manual welding, resulting in uneven and unsightly surfaces and high labor costs.

Method used

The assembled heating radiator is composed of modular and detachable standard parts. The heat conduction pipes and cover plates are fixedly connected by a snap-fit ​​structure to form a flat and beautiful surface. The use of standard parts of uniform size and snap-fit ​​connection enables quick installation.

Benefits of technology

This achieves a smooth and aesthetically pleasing surface for heating radiators, reduces labor installation costs, and improves economic efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an assembled heating radiator relates to heating technical field, including apron, heat pipe and heat dissipation spare, a plurality of independent apron combination forms the casing with hollow inner chamber, and a plurality of heat pipes are arranged in the hollow inner chamber at interval, heat pipe is detachably connected with apron, and the outside of heat pipe is provided with heat dissipation spare, and the inside of apron is also provided with heat dissipation spare between the adjacent interval gap of heat pipe, the utility model provides a heating radiator, and heat pipe is connected fixedly with the apron of making heat dissipation spare through buckle structure combination, instead of artificial welding connection, can guarantee the evenness of apron surface after the installation of piecing together.
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Description

Technical Field

[0001] This utility model relates to the field of heating technology, specifically to an assembled heating radiator. Background Technology

[0002] Heating radiators are the core terminal equipment of heating systems and are a common and reliable environmental heating device. Heating radiators typically contain multiple sets of pipes. As the heat medium flows through the pipes, it dissipates the heat it carries into the air through the heat dissipation structure on the pipe surface, heating the target area. In current technology, the pipes and heat dissipation structures of heating equipment are usually fixed by manual welding. However, manually welded pipes and heat dissipation structures have uneven surfaces and are unsightly. Furthermore, manual welding requires high labor costs. Therefore, there is a need to improve the connection method for combining pipes and heat dissipation structures. Utility Model Content

[0003] To address the issue of uneven and unsightly surfaces on manually welded heating radiators mentioned in the background section, an assembled heating radiator composed of detachable standard parts is proposed to ensure a smooth and aesthetically pleasing finished product surface.

[0004] This utility model discloses an assembled heating radiator, including a cover plate, heat-conducting pipes, and heat dissipation components; several independent cover plates are combined to form a shell with a hollow inner cavity, and several heat-conducting pipes are spaced apart in the hollow inner cavity; the heat-conducting pipes are detachably connected to the cover plate; heat dissipation components are provided on the outside of the heat-conducting pipes, and heat dissipation components are also provided on the inside of the cover plate in the gaps between adjacent heat-conducting pipes.

[0005] As a further improvement of this utility model, the cover plate includes a main cover plate, a side snap cover plate, and a flat snap cover plate; the main cover plate has vertical side plates on both sides, and the lower part of each side plate is movably snapped to a side snap cover plate on the inner side; several flat snap cover plates are horizontally assembled between the side snap cover plates on both sides, and together with the main cover plate and the side snap cover plates, they enclose a shell that extends through both ends.

[0006] As a further improvement of this utility model, the joint between the side snap cover and the flat snap cover, as well as the joint between adjacent flat snap covers, are provided with female stop buckles on the inner side where the heat conduction pipe is located. The surface of the female stop buckle is provided with multiple recessed grooves for fastening.

[0007] As a further improvement of this utility model, the surface of the heat-conducting pipe is provided with a male stop buckle extending along the axis of the heat-conducting pipe. The surface of the male stop buckle is provided with a raised ridge that matches the recessed groove on the surface of the female stop buckle. The male stop buckle has the ability to engage and lock with the female stop buckle in one direction.

[0008] As a further improvement of this utility model, a support strip extending along the axis of the heat-conducting pipe is provided on the surface of each heat-conducting pipe. The support strip is located on the opposite side of the male stop buckle. A heat dissipation support plate is fixedly connected to the support strip. The top of the heat dissipation support plate abuts against the upper inner wall of the main cover plate and is fixed. Furthermore, the surface of the heat dissipation support plate is provided with support plate fins at intervals for heat dissipation.

[0009] As a further improvement of this utility model, both the side snap-on cover plate and the flat snap-on cover plate are provided with cover plate fins at intervals on their surfaces, and the cover plate fins extend toward the inner side of the shell made of the cover plate.

[0010] As a further improvement of this utility model, it also includes a pair of manifolds, with the two manifolds respectively disposed at the openings on both sides of the heat-conducting pipe, and all openings of the heat-conducting pipes on the same side being connected through the manifold on that side.

[0011] As a further improvement of this utility model, the outer surface of the cover plate is provided with anti-slip grooves, and the anti-slip grooves have at least two different spacings.

[0012] As a further improvement of this utility model, the heat pipe, support strip, heat dissipation plate and male stop buckle are a fixedly connected integrated structure.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0014] The heating radiator provided by this utility model uses a snap-fit ​​structure to fix the heat-conducting pipe and the cover plate with heat dissipation fins together, instead of manual welding. This ensures that the surface of the cover plate is flat and beautiful after assembly and installation. Furthermore, all components of this utility model are standard parts of uniform size. The snap-fit ​​connection method enables rapid assembly and installation. The labor cost required is lower than that required for manual welding, resulting in higher economic benefits. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall design of this utility model;

[0016] Figure 2 This is a cross-sectional schematic diagram of a portion of the structure of this utility model;

[0017] Figure 3 for Figure 2 Enlarged schematic diagram of the local structure at point A;

[0018] Figure 4 for Figure 2 Enlarged schematic diagram of the local structure at point B;

[0019] Figure 5 for Figure 2 Enlarged schematic diagram of the local structure at point C;

[0020] Figure 6 This is a schematic diagram of a portion of the combined structure of this utility model without the manifold installed;

[0021] Figure 7 for Figure 6 A view from the center (D direction) and an enlarged schematic diagram of the snap-fit ​​structure and heat dissipation support plate structure;

[0022] 1. Cover plate; 11. Main cover plate; 111. Side plate; 12. Side snap-on cover plate; 121. Slot; 13. Flat snap-on cover plate; 14. Female stop snap; 101. Cover plate fins; 2. Heat pipe; 21. Support bar; 211. Heat dissipation support plate; 2111. Support plate fins; 22. Male stop snap; 3. Manifold. Detailed Implementation

[0023] Specific Implementation Example 1: Please refer to the appendix Figure 1 -Appendix Figure 7 :

[0024] An assembled heating radiator includes a cover plate 1, a heat-conducting pipe 2, and a manifold 3.

[0025] The cover plate 1 is composed of a main cover plate 11, a side snap cover plate 12 and a flat snap cover plate 13, which together form a shell structure that runs through both ends.

[0026] like Figure 1 , Figure 2 as well as Figure 7 As shown, the main cover plate 11 is a horizontally arranged plate, and both sides of the main cover plate 11 extend vertically downwards along the length direction to form side plates 111. Figure 5 As shown, the lower ends of both side plates 111 are bent towards the center of the main cover plate 11, forming horizontally extending folded edges. The side snap-on cover plates 12 are two plates of the same length as the main cover plate 11, and are arranged parallel to each other on the inner sides of the two side plates 111. The upper surface of the main cover plate 11 has two different interval densities of grooves to provide an anti-slip effect when hanging items.

[0027] like Figure 3As shown, the side snap-on cover 12 has parallel and spaced snap-fit ​​edges on its upper surface near the folded edge of the side plate 111, forming a slot 121 structure with a U-shaped cross-section and an opening facing the folded edge of the side plate 111. The width of the slot 121 is equal to the thickness of the folded edge of the side plate 111. When the side snap-on cover 12 and the side plate 111 are fastened together, the folded edges of the two side plates 111 are respectively inserted into the slots 121 of the adjacent side snap-on cover 12. The upper snap-fit ​​edge of the U-shaped slot 121 is narrower than the lower one, and their ends are staggered in the vertical direction. When fastened with the folded edge of the side plate 111, the folded edge of the side plate 111 can easily and quickly pass over the upper snap-fit ​​edge of the slot 121 and abut against the top of the lower side of the slot 121, aligning with the opening of the slot 121, facilitating the insertion and fastening of the two. The side snap-on cover plate 12 extends vertically upward from the end away from the folded edge of the side plate 111, forming a vertical wall. The outer side of the vertical wall is recessed inward with evenly spaced toothed grooves, forming a female stop snap 14. The upper surface of the side snap-on cover plate 12 is provided with three vertically extending cover plate fins 101.

[0028] like Figure 4 and Figure 7 As shown, the planar snap-lock cover plate 13 consists of four plates of the same length as the main cover plate 11. These four planar snap-lock cover plates 13 are arranged parallel to each other between two side snap-lock cover plates 12, forming a complete lower plane when joined together. Both ends of the planar snap-lock cover plate 13 extend vertically upwards, forming two vertical walls. The outer sides of both vertical walls have evenly spaced toothed grooves, forming female stop latches 14 identical to those on the side snap-lock cover plates 12. The adjacent female stop latches 14 on the planar snap-lock cover plates 13 and side snap-lock cover plates 12 have facing and spaced-apart toothed surfaces. Adjacent female stop latches 14 on the parallel planar snap-lock cover plates 13 also have facing and spaced-apart toothed surfaces, collectively forming five hollow grooves with toothed surfaces on both sides. The upper surface of the planar snap-lock cover plate 13 has seven vertically extending cover plate fins 101.

[0029] Five heat-conducting pipes 2 extend along the length of the cover plate 1, and a support strip 21 extends vertically from the upper center of each heat-conducting pipe 2. For example... Figure 4 and Figure 5 As shown, two symmetrical heat dissipation plates 211 extend diagonally upwards and to the left and right sides from the upper end of the upper support bar 21. Five vertically extending heat dissipation fins 2111 are spaced apart on the upper surface of the two heat dissipation plates 2111. The upper ends of the five heat dissipation fins 2111 are horizontal and lower than the end heights of the left and right heat dissipation plates 2111. Figure 7 As shown, the upper ends of all the cover fins 101 on the side snap cover 12 and the flat snap cover 13 are separated from the lower surface of the heat dissipation support plate 211 and have the same vertical spacing distance.

[0030] At the lower center of the heat pipe 2, a vertically extending male stop buckle 22 is formed along the extension direction of the heat pipe 2. On the vertical surfaces on both sides of the male stop buckle 22, evenly spaced teeth protrude outwards. The shape of the teeth of the male stop buckle 22 matches the shape of the tooth groove of the female stop buckle 14, so that the male stop buckle 22 can be unidirectionally engaged and locked with the female stop buckle 14. Five heat pipes 2 are arranged in parallel within the shell formed by the main cover plate 11, the side snap-lock cover plate 12, and the flat snap-lock cover plate 13. The ends of all heat dissipation support plates 211 are abutted and fixed to the upper inner wall of the main cover plate 11. The male stop buckles 22 of the five heat pipes 2 each extend into a hollow groove formed by the combination of adjacent female stop buckles 14. The teeth of each male stop buckle 22 engage with the tooth surfaces of the two female stop buckles 14 and are unidirectionally locked and fixed.

[0031] There are two manifolds 3, which are respectively located at both ends of the opening of the heat conduction pipe 2. Both manifolds 3 are connected to the opening pipes of the five heat conduction pipes 2 on the same side. When the heat medium flows, it is diverted from one of the manifolds 3 into the five heat conduction pipes 2 and flows out from the manifold 3 at the other end of the heat conduction pipe 2.

[0032] The heat-conducting pipe 2, support strip 21, heat dissipation support plate 211, and male stop buckle 22 are a fixedly connected integrated structure. During installation, simply place the integrated structure including the heat-conducting pipe 2 inside the semi-enclosed structure of the main cover plate 11, so that the upper end of the heat dissipation support plate 211 abuts against the upper inner cavity wall of the main cover plate 11. Then, from the two side plates 111 inward, the side snap-on cover plate 12 and the flat snap-on cover plate 13 are snapped in sequence, so that all the male stop buckles 22 are snapped with the female stop buckles 14 and locked in one direction. This completes the fixed installation of each component of this utility model. After snapping, the side snap-on cover plate 12 and the flat snap-on cover plate 13 form a flat surface.

[0033] The quantities of cover plate fins 101, flat snap cover plate 13, heat pipe 2, and heat dissipation fins 2111 involved in the above examples of this application are all based on one specific value given in the product of this example, which is intended to facilitate understanding of the specific location of the structure. In actual applications, the quantities are not limited to this quantity, and other quantities can be set according to the actual situation based on the needs of those skilled in the art.

[0034] The above description is only a preferred embodiment of the present utility model and is intended to illustrate the principle and effect of the present utility model, and is not intended to limit the present utility model. All variations, modifications and substitutions within the spirit and principle of the present design are within the protection scope of the present utility model.

Claims

1. An assembled heating radiator, characterized in that: It includes a cover plate (1), a heat pipe (2) and a heat dissipation component; several independent cover plates (1) are combined to form a shell with a hollow inner cavity, and several heat pipes (2) are spaced apart in the hollow inner cavity; the heat pipes (2) and the cover plate (1) are detachably connected; a heat dissipation component is provided on the outside of the heat pipes (2), and a heat dissipation component is also provided on the inside of the cover plate (1) in the adjacent gaps between the heat pipes (2).

2. The assembled heating radiator according to claim 1, characterized in that: The cover plate (1) includes a main cover plate (11), a side snap cover plate (12) and a flat snap cover plate (13); the main cover plate (11) has vertical side plates (111) on both sides, and the lower part of each side plate (111) is connected to a side snap cover plate (12) on the inner side. Several flat snap cover plates (13) are horizontally assembled between the side snap cover plates (12) on both sides, and together with the main cover plate (11) and the side snap cover plates (12), they enclose a shell that runs through both ends.

3. The assembled heating radiator according to claim 2, characterized in that: The joint between the side snap cover (12) and the flat snap cover (13), as well as the joint between adjacent flat snap cover (13), are provided with female stop buckles (14) on the inner side where the heat pipe (2) is located. The surface of the female stop buckle (14) is provided with multiple recessed grooves for fastening.

4. The assembled heating radiator according to claim 3, characterized in that: The surface of the heat pipe (2) is provided with a male stop buckle (22) extending along the axis of the heat pipe (2). The surface of the male stop buckle (22) is provided with a raised ridge that matches the recessed groove on the surface of the female stop buckle (14). The male stop buckle (22) has the ability to engage and lock with the female stop buckle (14) in one direction.

5. The assembled heating radiator according to claim 4, characterized in that: A support strip (21) extending along the axis of the heat pipe (2) is provided on the surface of each heat pipe (2). The support strip (21) is located on the opposite side of the male stop buckle (22). A heat dissipation support plate (211) is fixedly connected to the support strip (21). The top of the heat dissipation support plate (211) abuts against the upper inner wall of the main cover plate (11) and the surface of the heat dissipation support plate (211) is provided with support plate fins (2111) at intervals for heat dissipation.

6. The assembled heating radiator according to claim 2, characterized in that: Both the side snap cover plate (12) and the flat snap cover plate (13) are provided with cover plate fins (101) at intervals, and the cover plate fins (101) extend toward the inner side of the shell made of the cover plate (1).

7. The assembled heating radiator according to claim 1, characterized in that: It also includes a pair of manifolds (3), with the two manifolds (3) respectively located at the openings on both sides of the heat pipe (2), and all the openings of the heat pipes (2) on the same side are connected to the manifolds (3) on that side.

8. The assembled heating radiator according to claim 1, characterized in that: The outer surface of the cover plate (1) is provided with anti-slip grooves, which have at least two different spacings.

9. The assembled heating radiator according to claim 5, characterized in that: The heat pipe (2), support strip (21), heat dissipation plate (211) and male stop buckle (22) are a fixedly connected integrated structure.