Heating cover based on plate and tube type radiator
By setting partitions and heat collection components between the radiator and the wall, heat exchange and transfer between the radiator and the cold wall are achieved, solving the problem of heat loss between the radiator and the wall and improving heat utilization efficiency.
Patent Information
- Application Number
- CN202422834449.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2034-11-20
AI Technical Summary
The radiator of the existing plate-and-tube radiator is not effectively isolated from the wall, resulting in heat loss through the wall and reducing heat utilization efficiency.
A radiator cover is designed, including a partition and a heat collecting assembly. The partition is arranged between the radiator and the wall, the heat collecting component is in contact with the partition, and the heat conducting component is connected to the side of the radiator facing away from the partition to transfer heat. Through heat exchange and the connection of the heat conducting component, heat is prevented from radiating to the cold wall and is transferred to the side of the radiator facing away from the cold wall.
It effectively reduces the heat loss of the radiator through the wall, improves the heat utilization efficiency, avoids heat loss, and improves the use effect of the radiator.
Smart Images

Figure CN223435202U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heating equipment, in particular to a heating cover based on a plate-tube radiator. Background Art
[0002] The plate and tube radiator, also known as the radiator, consists of a circulation structure consisting of an upper water pipe, branch pipes inside the radiator, and a lower water pipe, and is a static heat dissipation device.
[0003] For example, Chinese utility model patent application number CN201020237028.4, titled "Energy-Saving Radiator," states that each single radiator includes an upper water bag, a lower water bag, and two vertical pipes. The upper and lower water bags are connected by two vertical pipes, and two adjacent single radiators are connected by upper and lower water pipes. The overall radiator is composed of multiple single radiators connected together. The single radiators at both ends are equipped with a plug on one side of their upper parts and an air valve on the other side. Threaded ports for connecting water pipes are provided on both sides of their lower parts. This device, connected by two vertical pipes, accelerates water circulation and heat dissipation, saving energy. The upper and lower water bags hold more water than steel pipes, eliminating the need to lengthen or enlarge the radiator, saving materials, reducing costs, and taking up less space. However, the radiator is not effectively isolated from the wall, resulting in heat loss between the radiator and the cold wall, causing some heat to dissipate through the wall. This can also cause the wall to turn black after long-term use.
[0004] Therefore, there is an urgent need for a heating cover based on a plate-and-tube radiator to solve the problem in the prior art that the radiator and the wall are not effectively isolated, resulting in heat loss between the radiator and the cold wall, thereby causing part of the heat to be lost through the wall. Utility Model Content
[0005] The purpose of this utility model is to overcome the above-mentioned technical deficiencies and propose a heating cover based on a plate-tube radiator to solve the technical problem in the prior art that the radiator and the wall are not effectively isolated, resulting in heat loss between the radiator and the cold wall, thereby causing part of the heat to be lost through the wall.
[0006] In order to achieve the above technical purpose, the present invention adopts the following technical solutions:
[0007] The utility model provides a heating cover based on a plate-tube radiator, which is used to be connected to a radiator, and the radiator is spaced apart from the wall, comprising:
[0008] a partition, disposed between the radiator and the wall, and connected to the wall; and
[0009] The heat collecting component includes a heat collecting part and a heat conducting part. The heat collecting part is arranged relative to the radiator and abuts against the partition. The heat collecting part can exchange heat with the partition. The heat conducting part is arranged on the side of the radiator away from the partition and is connected to the heat collecting part for transferring the heat exchanged by the heat collecting part.
[0010] In some embodiments, the radiator cover based on the plate-tube radiator also includes a heat sink and a top plate. The heat sink is arranged away from the radiator relative to the heat conductive member, and at least one heat dissipation channel is opened relative to the heat conductive member. The top plate is arranged above the radiator and is connected to both the partition and the heat sink.
[0011] In some embodiments, the heat collecting element includes a heat collecting tube and two first heat conducting tubes. The heat collecting tube is tightly pressed against the partition. The two first heat conducting tubes are respectively arranged at both ends of the heat collecting tube, and one end of the first heat conducting tube is connected to the interior of the heat collecting tube, and the other end is connected to the interior of the heat conducting element.
[0012] In some embodiments, the heat collecting element further includes two first fans, which are arranged in a one-to-one correspondence with the first heat conducting tubes and are arranged at the connection between the heat collecting tube and the first heat conducting tubes, and are used to guide the heat in the heat collecting tube to be accelerated to the heat conducting element through the two first heat conducting tubes respectively.
[0013] In some embodiments, the heat conducting member includes a heat dissipation tube and two second heat conducting pipes. The heat dissipation tube is arranged relative to the heat dissipation channel, and a plurality of through holes are evenly opened on the circumferential outer wall of the heat dissipation tube. The two second heat conducting pipes are respectively arranged at both ends of the heat dissipation tube, and one end of the second heat conducting pipe is connected to the interior of the heat dissipation tube, and the other end is connected to the other end of the first heat conducting pipe.
[0014] In some embodiments, the heat conducting member further includes two second fans, which are arranged in a one-to-one correspondence with the second heat conducting pipes and are arranged at the connection between the heat dissipation tube and the second heat conducting pipes, and are used to guide the heat in the two first heat conducting pipes to be accelerated and transferred to the heat dissipation tube through the two second heat conducting pipes respectively.
[0015] In some embodiments, the axis of the heat dissipation tube and the axis of the heat collecting tube are arranged perpendicular to each other, and the heat conductive member also includes four Tesla valves, two first connecting pipes and two second connecting pipes. The four Tesla valves are arranged between the radiator and the heat collecting tube and are symmetrically distributed about the center point. The two ends of the two first connecting pipes are respectively connected to the interiors of the two adjacent Tesla valves, and the interiors of the two first connecting pipes are also respectively connected to the other ends of the two first heat conducting pipes. The two ends of the two second connecting pipes are respectively connected to the interiors of the two adjacent Tesla valves, and the interiors of the two second connecting pipes are also respectively connected to the other ends of the two second heat conducting pipes.
[0016] In some embodiments, the heating cover based on the plate-tube radiator further includes aluminum foil, which is disposed between the partition and the heat collecting tube and is tightly pressed against both the partition and the heat collecting tube.
[0017] In some embodiments, the heat dissipation component includes a heat dissipation frame, a plurality of louvers and a plurality of rotating handles. The heat dissipation frame is arranged relative to the heat dissipation tube away from the radiator and is connected to the top plate. The plurality of louvers are evenly arranged along the height direction of the heat dissipation frame and are all rotatably connected to the inner hole of the heat dissipation frame. The heat dissipation channel is formed between two adjacent louvers. The rotating handle is connected to one end or both ends of the louver and can rotate relative to the heat dissipation frame, so as to drive the louver to rotate relative to the heat dissipation frame.
[0018] In some embodiments, the heat dissipation element further includes a wire mesh, and the wire mesh is embedded in the inner hole of the heat dissipation frame.
[0019] Compared with the prior art, the beneficial effects of the radiator cover based on the plate-tube radiator provided by the utility model include: a partition is arranged between the radiator and the wall, used to separate the radiator from the cold wall, the heat collecting element is in contact with the partition and can exchange heat with the partition, and the heat conducting element is arranged on the side of the radiator away from the partition and connected to the heat collecting element, used to transfer the heat exchanged by the heat collecting element. Compared with the existing technology, a partition is set to separate the radiator and the cold wall and reduce the heat radiation of the radiator to the cold wall. At the same time, a heat collecting component that can exchange heat with the partition is set to abut the partition, so that the heat radiated to the partition is collected by the heat collecting component, and then the heat conductive component is connected to the heat collecting component, so that the heat that should have been radiated to the cold wall is transferred and transmitted to the side of the radiator away from the cold wall. It not only avoids part of the heat from being lost through the wall, but also improves the utilization efficiency of the heat generated by the radiator, and can solve the problem in the existing technology that the radiator and the cold wall are not effectively isolated from each other, thereby causing part of the heat to be lost through the wall. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a cross-sectional structural diagram of a plate-and-tube radiator-based heating cover connected to a wall and a radiator, provided by an embodiment of the present invention;
[0021] Figure 2 This is a schematic diagram of a three-dimensional exploded structure of a radiator cover based on a plate-and-tube radiator provided by an embodiment of the present utility model;
[0022] Figure 3 This is a schematic diagram of a three-dimensional exploded structure of a heat collecting assembly provided by an embodiment of the present utility model;
[0023] Figure 4 This is a schematic diagram of a three-dimensional exploded structure of the heat dissipation tube and the second fan provided by an embodiment of the present utility model;
[0024] Figure 5 It is a schematic diagram of the three-dimensional structure of the heat sink provided by an embodiment of the present utility model.
[0025] Description of reference numerals:
[0026] Radiator 1;
[0027] Wall 2;
[0028] Partition 3;
[0029] Heat collecting component 4;
[0030] Heat collecting element 41;
[0031] Heat collecting tube 411;
[0032] a first heat conducting pipe 412;
[0033] a first fan 413;
[0034] heat conducting member 42;
[0035] heat dissipation tube 421;
[0036] a second heat pipe 422;
[0037] Second fan 423;
[0038] Tesla valve 424;
[0039] First connecting pipe 425;
[0040] a second connecting pipe 426;
[0041] Heat sink 5;
[0042] heat dissipation frame 51;
[0043] Shutter 52;
[0044] Rotating handle 53;
[0045] Silk screen 54;
[0046] Top plate 6;
[0047] Aluminum foil 7. DETAILED DESCRIPTION
[0048] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0049] In order to solve the technical problem that the radiator 1 and the wall 2 are not effectively isolated, resulting in heat loss between the radiator and the cold wall, thereby causing part of the heat to be lost through the wall 2, the utility model provides a radiator cover based on a plate-tube radiator, which can separate the radiator 1 from the cold wall and reduce the heat radiation of the radiator 1 to the cold wall. At the same time, a heat collecting part 41 that can exchange heat with the partition 3 is provided and abuts against the partition 3, so that the heat radiated to the partition 3 is collected by the heat collecting part 41, and then the heat conducting part 42 is connected to the heat collecting part 41, so that the heat that should have been radiated to the cold wall is transferred and transmitted to the side of the radiator 1 away from the cold wall, which not only avoids the loss of part of the heat through the wall 2, but also improves the utilization efficiency of the heat generated by the radiator 1.
[0050] It should be noted that the heating cover based on the plate-tube radiator of the present invention is used for but not limited to the technical field of heating equipment, etc. For the convenience of explanation, in the present invention, only the heating cover based on the plate-tube radiator is used in the technical field of heating equipment as an example for explanation, and the principle of applying the heating cover based on the plate-tube radiator to other types of equipment is essentially the same as the principle applied to the technical field of heating equipment, which will not be repeated here.
[0051] See also Figures 1 to 5 , Figure 1 、 Figure 2 This is a structural schematic diagram of a radiator cover based on a plate-tube radiator in an embodiment of the present invention. The radiator cover based on the plate-tube radiator is used to be connected to the radiator 1, which is spaced apart from the wall 2 and includes: a partition 3 and a heat collecting component 4. The partition 3 is arranged between the radiator 1 and the wall 2 and is connected to the wall 2. The heat collecting component 4 includes a heat collecting part 41 and a heat conducting part 42. The heat collecting part 41 is arranged relative to the radiator 1 and abuts against the partition 3. The heat collecting part 41 can exchange heat with the partition 3. The heat conducting part 42 is arranged on the side of the radiator 1 away from the partition 3 and is connected to the heat collecting part 41 for transferring the heat exchanged by the heat collecting part 41.
[0052] In this device, the partition 3 is arranged between the radiator 1 and the wall 2, and is used to separate the radiator 1 from the cold wall. The heat collecting component 41 is in contact with the partition 3 and can exchange heat with the partition 3. The heat conducting component 42 is arranged on the side of the radiator 1 away from the partition 3 and is connected to the heat collecting component 41, and is used to transfer the heat exchanged by the heat collecting component 41.
[0053] Compared with the prior art, a partition 3 is provided to separate the radiator 1 from the cold wall and reduce the heat radiation of the radiator 1 to the cold wall. At the same time, a heat collecting component 41 capable of exchanging heat with the partition 3 is provided to abut against the partition 3, so that the heat radiated to the partition 3 is collected by the heat collecting component 41, and then the heat conducting component 42 is connected to the heat collecting component 41, so that the heat that should have been radiated to the cold wall is transferred and transmitted to the side of the radiator 1 away from the cold wall, which not only avoids the loss of part of the heat through the wall 2, but also improves the utilization efficiency of the heat generated by the radiator 1, and can solve the problem in the prior art that the radiator 1 and the wall 2 are not effectively isolated, resulting in heat loss between the radiator and the cold wall, thereby causing part of the heat to be lost through the wall 2.
[0054] Furthermore, the radiator 1 here is a plate-and-tube radiator that is common and easy to purchase on the market. It consists of an upper water pipe, branch pipes in the radiator, and a lower water pipe to form a circulation structure, which belongs to static heat dissipation. The partition 3 here is a material that is common and easy to purchase on the market. It is a conventional setting known to technical personnel in this field and will not be elaborated on.
[0055] In this embodiment, Figure 2 、 Figure 3 As shown, the heat collecting element 41 includes a heat collecting tube 411 , two first heat conducting pipes 412 , and two first fans 413 .
[0056] The heat collecting tube 411 is tightly pressed against the partition 3 , and two first heat conducting pipes 412 are respectively arranged at both ends of the heat collecting tube 411 , and one end of the first heat conducting pipe 412 is connected to the interior of the heat collecting tube 411 , and the other end is connected to the interior of the heat conducting member 42 .
[0057] The two first heat conducting pipes 412 are used to achieve the connection between the heat collecting tube 411 and the heat conducting member 42 , and transfer the heat obtained by the heat collecting tube 411 through heat exchange to the heat conducting member 42 .
[0058] In one embodiment, see Figure 3 The first fan 413 is arranged in a one-to-one correspondence with the first heat pipe 412 and is arranged at the connection between the heat collecting tube 411 and the first heat pipe 412 to guide the heat in the heat collecting tube 411 to be accelerated to transfer to the heat conducting member 42 through the two first heat pipes 412.
[0059] The first fan 413 can accelerate heat exchange and improve the efficiency of heat transfer.
[0060] Furthermore, the heat collecting tube 411, the first heat conducting pipe 412 and the first fan 413 are all made of common and easily purchased materials on the market, and are conventional settings well known to those skilled in the art, and will not be described in detail.
[0061] In this embodiment, Figures 2 to 4 As shown, the heat conducting member 42 includes a heat dissipation tube 421 and two second heat conducting pipes 422 , two second fans 423 , four Tesla valves 424 , two first connecting pipes 425 and two second connecting pipes 426 .
[0062] Among them, the heat dissipation tube 421 is arranged relative to the heat dissipation channel, and the circumferential outer wall of the heat dissipation tube 421 is evenly provided with multiple through holes. The two second heat pipes 422 are respectively arranged at the two ends of the heat dissipation tube 421, and one end of the second heat pipe 422 is connected to the interior of the heat dissipation tube 421, and the other end is connected to the other end of the first heat pipe 412.
[0063] Heat transfer can be achieved by connecting the second heat pipe 422 to the first heat pipe 412 and the heat dissipation tube 421 respectively.
[0064] Furthermore, a plurality of through holes are evenly formed on the circumferential outer wall of the heat dissipation tube 421 , which can facilitate the discharge of heat through the heat dissipation channel.
[0065] In one embodiment, see Figure 3 The second fan 423 is set in a one-to-one correspondence with the second heat pipe 422 and is set at the connection between the heat dissipation tube 421 and the second heat dissipation tube 422, and is used to guide the heat in the two first heat dissipation tubes 412 to be accelerated and transferred to the heat dissipation tube 421 through the two second heat dissipation tubes 422 respectively.
[0066] The second fan 423 can accelerate heat exchange and improve the efficiency of heat transfer.
[0067] Furthermore, the heat dissipation tube 421, the second heat pipe 422 and the second fan 423 are all made of common and easily purchased materials on the market, and are conventional settings well known to those skilled in the art, and will not be described in detail.
[0068] In one embodiment, see Figure 3The axis of the heat dissipation tube 421 and the axis of the heat collecting tube 411 are arranged perpendicular to each other. The heat conducting member 42 also includes four Tesla valves 424, two first connecting pipes 425 and two second connecting pipes 426. The four Tesla valves 424 are arranged between the radiator 1 and the heat collecting tube 411 and are symmetrically distributed at the center point. The two ends of the two first connecting pipes 425 are respectively connected to the interiors of the two adjacent Tesla valves 424, and the interiors of the two first connecting pipes 425 are also respectively connected to the other ends of the two first heat conducting pipes 412. The two ends of the two second connecting pipes 426 are respectively connected to the interiors of the two adjacent Tesla valves 424, and the interiors of the two second connecting pipes 426 are also respectively connected to the other ends of the two second heat conducting pipes 422.
[0069] The hot air flow is formed by the rotation of the first fans 413 on both sides and is transferred to the first heat pipe 412, and then to the Tesla valve 424. The hot air flow first enters the Tesla valve 424 from one side and is introduced into the first connecting pipe 425. As the air flow dissipates heat in the first connecting pipe 425 or the second connecting pipe 426, its temperature gradually decreases. Then the cooled air flow enters the Tesla valve 424 again and flows into the second heat pipe 422 from the middle through the outlet on the other side. In this way, heat is transferred efficiently and part of the heat that was originally dissipated to the outdoors through the cold wall is successfully retained in the heating cover.
[0070] Furthermore, the Tesla valve 424, the first connecting pipe 425 and the second connecting pipe 426 are all made of common and easily purchased materials on the market, and are conventional settings well known to those skilled in the art, and will not be described in detail.
[0071] In this embodiment, Figure 1 、 Figure 2 As shown, the device further includes a heat sink 5 , a top plate 6 , and an aluminum foil 7 .
[0072] Among them, the heat sink 5 is arranged away from the radiator 1 relative to the heat conductor 42, and at least one heat dissipation channel is opened relative to the heat conductor 42. The top plate 6 is arranged above the radiator 1 and is connected to both the partition 3 and the heat sink 5.
[0073] The heat sink 5 is connected to the partition 3 through the top plate 6, and the partition 3, the heat sink 5 and the top plate 6 form a cover insulation structure, which can improve the utilization efficiency of the radiator 1. Through at least one heat dissipation channel, the heat in the cover insulation structure can be discharged, thereby realizing efficient utilization of the radiator 1.
[0074] Furthermore, the top plate 6 here is a material that is common and easy to purchase on the market, and is a conventional setting well known to those skilled in the art, and will not be described in detail.
[0075] In one embodiment, see Figure 5The heat dissipation element 5 includes a heat dissipation frame 51, multiple louvers 52 and multiple rotating handles 53. The heat dissipation frame 51 is arranged away from the radiator 1 relative to the heat dissipation tube 421 and is connected to the top plate 6. The multiple louvers 52 are evenly arranged along the height direction of the heat dissipation frame 51 and are all rotatably connected to the inner hole of the heat dissipation frame 51. A heat dissipation channel is formed between two adjacent louvers 52. The rotating handle 53 is connected to one end or both ends of the louver 52 and can rotate relative to the heat dissipation frame 51, so as to drive the louver 52 to rotate relative to the heat dissipation frame 51.
[0076] The heat dissipation frame 51 , the plurality of louvers 52 and the plurality of rotating handles 53 form a heat dissipation channel with adjustable size, which can be adjusted according to different usage conditions.
[0077] Furthermore, the heat dissipation frame 51, the louver 52 and the rotating handle 53 are all made of common and easily purchased materials on the market, and are conventional settings well known to those skilled in the art, and will not be described in detail.
[0078] In one embodiment, see Figure 2 、 Figure 5 The heat sink 5 further includes a wire mesh 54 , which is embedded in the inner hole of the heat sink frame 51 .
[0079] The wire mesh 54 is embedded in the inner hole of the heat dissipation frame 51 to prevent dust or impurities from entering the heat insulation structure of the cover.
[0080] Furthermore, the wire mesh 54 here is a steel wire mesh 54-like structure that is common and easy to purchase on the market. It is a conventional setting well known to those skilled in the art and will not be described in detail.
[0081] In one embodiment, see Figure 1 、 Figure 2 The aluminum foil 7 is arranged between the partition 3 and the heat collecting tube 411, and is tightly pressed against both the partition 3 and the heat collecting tube 411.
[0082] The aluminum foil 7 is used to improve the heat transfer efficiency between the partition 3 and the heat collecting tube 411 .
[0083] Furthermore, the aluminum foil 7 here is a common and easily purchased material on the market, which is a conventional setting well known to those skilled in the art and will not be described in detail.
[0084] In order to better understand the present invention, the following Figures 1 to 5 The technical solution of the utility model is described in detail:
[0085] The partition plate 3 is arranged between the heating radiator 1 and the wall 2, and separates the heating radiator 1 from the cold wall, the heat collecting part 41 abuts against the partition plate 3 and can exchange heat with the partition plate 3, and the heat conducting part 42 is arranged on the side of the heating radiator 1 away from the partition plate 3 and is connected to the heat collecting part 41, and is used for transferring the heat exchanged by the heat collecting part 41. Compared with the prior art, by arranging the partition plate 3, the heating radiator 1 is separated from the cold wall and the heat radiation of the heating radiator 1 to the cold wall is reduced, and the heat collecting part 41 capable of exchanging heat with the partition plate 3 is arranged to abut against the partition plate 3, so that the heat radiated to the partition plate 3 is collected by the heat collecting part 41, the heat conducting part 42 is connected to the heat collecting part 41, so that the heat originally radiated to the cold wall is transferred and transferred to the side of the heating radiator 1 away from the cold wall, not only avoiding the loss of part of the heat through the wall 2, but also improving the utilization efficiency of the heat generated by the heating radiator 1.
[0086] The specific working process of the utility model, in use, the heat originally transferred to the wall 2 is firstly radiated to the heat collecting cylinder 411, the aluminum foil 7 and the partition plate 3, and the heat is collected by the heat collecting cylinder 411 through heat exchange, then under the action of the first fan 413, the heat is accelerated in the first heat conducting pipe 412 and transferred to the first connecting pipe 425, then guided and strengthened by the Tesla valve 424, and then transferred to the heat radiating cylinder 421 again by the second heat conducting pipe 422 and the second fan 423, and finally the transferred heat is discharged to the side of the heating radiator 1 away from the wall 2 through the plurality of through holes and the plurality of heat radiating channels, so that the heat originally radiated to the cold wall is transferred and transferred to the side of the heating radiator 1 away from the cold wall, not only avoiding the loss of part of the heat through the wall 2, but also improving the utilization efficiency of the heat generated by the heating radiator 1.
[0087] The device can solve the problem of heat loss between the radiator and the cold wall due to the ineffective isolation between the heating radiator 1 and the wall 2 in the prior art, so that part of the heat is lost through the wall 2.
[0088] The above-mentioned specific embodiment of the utility model does not constitute a limitation on the protection scope of the utility model. Any other corresponding changes and modifications made according to the technical concept of the utility model shall be included in the protection scope of the claims of the utility model.
Claims
1. A radiator cover based on a plate-tube radiator, used to be connected to a radiator, wherein the radiator is spaced apart from the wall, characterized in that: include: a partition, disposed between the radiator and the wall, and connected to the wall; as well as The heat collecting component includes a heat collecting part and a heat conducting part. The heat collecting part is arranged relative to the radiator and abuts against the partition. The heat collecting part can exchange heat with the partition. The heat conducting part is arranged on the side of the radiator away from the partition and is connected to the heat collecting part for transferring the heat exchanged by the heat collecting part.
2. The radiator cover based on the plate and tube radiator according to claim 1, characterized in that: It also includes a heat sink and a top plate. The heat sink is arranged away from the radiator relative to the heat conductive member and has at least one heat dissipation channel relative to the heat conductive member. The top plate is arranged above the radiator and is connected to both the partition and the heat sink.
3. The radiator cover based on the plate and tube radiator according to claim 2, characterized in that: The heat collecting element includes a heat collecting tube and two first heat conducting tubes. The heat collecting tube is tightly pressed against the partition. The two first heat conducting tubes are respectively arranged at both ends of the heat collecting tube, and one end of the first heat conducting tube is connected to the interior of the heat collecting tube, and the other end is connected to the interior of the heat conducting element.
4. The heating cover based on the plate and tube radiator according to claim 3, characterized in that: The heat collecting element also includes two first fans, which are arranged in a one-to-one correspondence with the first heat conducting tubes and are arranged at the connection between the heat collecting tube and the first heat conducting tubes, and are used to guide the heat in the heat collecting tube to be accelerated to the heat conducting element through the two first heat conducting tubes.
5. The heating cover based on the plate and tube radiator according to claim 3, characterized in that: The heat conducting member includes a heat dissipation tube and two second heat conducting pipes. The heat dissipation tube is arranged relative to the heat dissipation channel, and a plurality of through holes are evenly opened on the circumferential outer wall of the heat dissipation tube. The two second heat conducting pipes are respectively arranged at both ends of the heat dissipation tube, and one end of the second heat conducting pipe is connected to the interior of the heat dissipation tube, and the other end is connected to the other end of the first heat conducting pipe.
6. The radiator cover based on the plate and tube radiator according to claim 5, characterized in that: The heat conducting member also includes two second fans, which are arranged in a one-to-one correspondence with the second heat conducting pipes and are arranged at the connection between the heat dissipation tube and the second heat conducting pipes, and are used to guide the heat in the two first heat conducting pipes to be accelerated and transferred to the heat dissipation tube through the two second heat conducting pipes respectively.
7. The radiator cover based on the plate and tube radiator according to claim 6, characterized in that: The axis of the heat dissipation tube and the axis of the heat collecting tube are arranged perpendicular to each other. The heat conductive member also includes four Tesla valves, two first connecting pipes and two second connecting pipes. The four Tesla valves are arranged between the radiator and the heat collecting tube and are symmetrically distributed about the center point. The two ends of the two first connecting pipes are respectively connected to the interiors of the two adjacent Tesla valves, and the interiors of the two first connecting pipes are also respectively connected to the other ends of the two first heat conducting pipes. The two ends of the two second connecting pipes are respectively connected to the interiors of the two adjacent Tesla valves, and the interiors of the two second connecting pipes are also respectively connected to the other ends of the two second heat conducting pipes.
8. The heating cover based on the plate and tube radiator according to claim 3, characterized in that: It also includes aluminum foil, which is arranged between the partition and the heat collecting tube and is tightly pressed against both the partition and the heat collecting tube.
9. The heating cover based on the plate and tube radiator according to claim 5, characterized in that: The heat dissipation component includes a heat dissipation frame, a plurality of louvers and a plurality of rotating handles. The heat dissipation frame is arranged relative to the heat dissipation tube away from the radiator and is connected to the top plate. The plurality of louvers are evenly arranged along the height direction of the heat dissipation frame and are all rotatably connected to the inner hole of the heat dissipation frame. The heat dissipation channel is formed between two adjacent louvers. The rotating handle is connected to one end or both ends of the louver and can rotate relative to the heat dissipation frame, so as to drive the louver to rotate relative to the heat dissipation frame.
10. The heating cover based on the plate and tube radiator according to claim 9, characterized in that: The heat sink further includes a wire mesh, which is embedded in the inner hole of the heat dissipation frame.
Citation Information
Patent Citations
Energy-saving radiators
CN201697234U