Novel energy-saving electric heat tracing membrane adaptive to solar equipment

By designing a new energy-saving electric heat-tracking diaphragm including lifting, adjusting and adapting components, the problem of lack of flexible adjustment of existing solar panel installations is solved, and flexible adaptation and efficient installation of solar panels and diaphragms are achieved, reducing the cost of use and maintenance.

CN120120747APending Publication Date: 2025-06-10SHAANXI SENWANG INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202510608953.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-06-10

AI Technical Summary

Technical Problem

The existing solar panel installation lacks a flexible adjustment mechanism, making it difficult to adapt to the installation angles of different roofs and equipment, affecting the power generation and heat tracing effects, and the diaphragm and solar panels are inconvenient for storage and installation, occupying a large area and complex installation, which increases the cost of use and maintenance.

Method used

A new energy-saving electric heat tracing diaphragm including lifting assembly, adjusting assembly and adapting assembly is designed. The lifting assembly realizes the lifting and lowering of the solar panels through the motor drive screw, the adjustment assembly realizes the angle adjustment through the gears and adjustment rods, and the adapting assembly realizes the adaptation of solar panels and diaphragms of different lengths through the pulling rod and the rotating column.

Benefits of technology

It realizes flexible angle adjustment and height adjustment of solar panels and diaphragms, which is easy to adapt to different environments, simplifies the installation and disassembly process, reduces technical requirements and usage costs, and improves the energy utilization efficiency of solar energy systems.

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Abstract

The invention discloses a novel energy-saving electric heat tracing membrane adaptive to solar equipment, and relates to the technical field of solar equipment, the novel energy-saving electric heat tracing membrane comprises a device main body, the device main body comprises a lifting assembly, an adjusting assembly connected with the lifting assembly and an adaptive assembly connected with the adjusting assembly, the lifting assembly comprises a frame body, a motor, a lifting block, a telescopic rod and a storage plate, the motor is arranged in the frame body, a screw rod is arranged at the upper end of the motor, the lifting block is arranged on the screw rod, and the telescopic rod is arranged in front of the lifting block. Therefore, the two rotating blocks rotate on the rotating shaft, and the rack slides and is limited in the fixing groove, so that the angle adjustment of the solar panel and the diaphragm is realized at the same time, and the installation angles of the diaphragm and the solar panel can be adapted in real time according to a house and other equipment to adapt to local conditions.
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Description

Technical Field

[0001] The present invention relates to the technical field of solar energy devices, and particularly to a new type of energy-saving electric heating film adapted to solar energy devices. Background Art

[0002] The electric heating film is closely related to and interdependent with the solar panel. In a low-temperature environment, due to its thin, light, flexible and tightly fitting characteristics on the frame and surface of the solar panel, the electric heating film outputs heat as needed through an intelligent temperature control system, reduces the risk of frosting through the temperature control system, and avoids the reduction of power generation efficiency and structural damage caused by low temperature. It not only ensures the stable power generation of the solar panel in harsh environments and extends its service life, but also improves the energy utilization efficiency of the entire solar energy system through reasonable energy regulation. The two cooperate with each other to provide strong support for the stable and reliable operation of the solar power generation system; There are deficiencies in the installation of existing solar panels. On the one hand, due to the lack of a flexible adjustment mechanism, it is difficult to adapt the installation angle of the film and the solar panel according to various roofs and other surrounding equipment, which affects the power generation and heating effects and cannot adapt to local conditions. On the other hand, the film and the solar panel are inconvenient to store and install. When not in use, they occupy a large area. The installation requires professional tools and complex operations, and has high technical requirements for personnel. The problem of easily damaged equipment during disassembly not only limits the popularization of solar energy devices, but also increases the use and maintenance costs. Therefore, we propose a new type of energy-saving electric heating film adapted to solar energy devices. Summary of the Invention

[0003] The purpose of the present invention is to provide a new type of energy-saving electric heating film adapted to solar energy devices.

[0004] To achieve the above purpose, the present invention provides the following technical solution: A new type of energy-saving electric heating film adapted to solar energy devices, including a device main body, the device main body includes a lifting component, an adjustment component connected to the lifting component, and an adaptation component connected to the adjustment component. The lifting component includes a frame, a motor, a lifting block, a telescopic rod, and a storage board. The motor is arranged inside the frame. A screw rod is arranged at the upper end of the motor. The lifting block is arranged on the screw rod. The telescopic rod is arranged in front of the lifting block. The storage board is arranged in front of the two telescopic rods. The adjustment component includes a fixed block, a slider, an adjustment rod, a gear, and a rotating block. The fixed block is arranged on the lifting block. A sliding frame one is arranged in front of the fixed block. The slider is slidably connected inside the sliding frame one. Sliding grooves are opened on both sides of the sliding frame one. A plate body is arranged on the top surface of the slider. Two fixing grooves are opened on the plate body. The adjustment rod is arranged inside the fixing groove. A rack is arranged in front of the adjustment rod. The gear meshes with the rack. A limiting frame is arranged on the top surface of the storage board. A rotating shaft is arranged on the gear. The rotating shaft passes through the inside of the limiting frame. The rotating block is rotatably connected to the rotating shaft.

[0005] As a further solution of the present invention: a support assembly is slidably connected to the adjustment assembly. The support assembly includes side blocks, support rods, and linkage blocks. The two side blocks are arranged on both sides of the slider. A second sliding frame is arranged on the support rod, and the left side of the second sliding frame is connected to the right side of the linkage block.

[0006] As a further solution of the present invention: the side blocks are slidably connected to the inside of the chute. A square groove is formed inside the second sliding frame, and the screw rod passes through the inside of the square groove.

[0007] As a further solution of the present invention: the adaptation assembly includes a solar panel, a diaphragm, a pull rod A, and a pull rod B. The diaphragm is arranged on the solar panel. Three pull rods A are arranged on the top and bottom surfaces of the diaphragm. Rotating columns are arranged between the three pull rods A on the bottom and top surfaces and the pull rod B. A spring and an inclined plate are arranged on the pull rod B. Clamping frames are arranged on the three pull rods A on the bottom surface. The spring and the inclined plate are both clamped inside the clamping frames.

[0008] As a further solution of the present invention: a storage frame is installed on the outer sides of the two fixed blocks. A transverse groove is formed in the front of the storage frame. The plate body passes through the inside of the transverse groove. Two top grooves are formed in the top surface of the storage frame, and the two frames respectively pass through the inside of the top grooves.

[0009] As a further solution of the present invention: bottom plates are arranged on the bottom surfaces of the two frames. Fastening bolts are arranged at the four corners of the bottom plates.

[0010] As a further solution of the present invention: grooves are formed in the front, left, and right side surfaces of the two frames. The fixed block and the linkage block are respectively arranged inside the grooves.

[0011] As a further solution of the present invention: the front of the storage frame is provided with holes adapted to the clamping frames, and the number of the holes is three.

[0012] As a further solution of the present invention: a controller is arranged on the front of the storage frame. The controller is electrically connected to the motor, the telescopic rod, and the adjustment rod respectively.

[0013] Adopting the above technical solutions, compared with the prior art, the beneficial effects of the present invention are as follows: 1. By starting the two adjustment rods to drive the two gears to drive on the rack, the two rotating blocks rotate on the rotating shaft, and the rack slides and is limited inside the fixed slot, so as to simultaneously adjust the angles of the solar panel and the diaphragm, which is convenient for adapting the installation angles of the diaphragm and the solar panel in real time according to the house and other equipment, and adapting measures to local conditions. 2. The present invention rotates the gear through the starting rack to a position parallel to the storage frame, the telescopic rod drives the storage plate to retract into the interior of the storage frame. At this time, the plate body slides back into the interior of the transverse groove, and the three card frames are simultaneously stored into the interior of the holes. The support rod slides from an inclined state to a state parallel to the frame body, realizing the synchronous storage operation of the solar panel and the membrane. 3. The present invention adapts to solar panels and membranes of different lengths through the telescopic movement of multiple pull rods A and pull rods B. Rotate the rotating column to adjust the angles of the pull rods A and pull rods B. Finally, insert the three springs and the inclined plate into the interior of the card frame to install the solar panel and the membrane. 4. When the two sliders slide, they drive the side blocks to move synchronously inside the sliding groove, thereby driving the support rod to tilt to different angles to support the solar panel and the membrane synchronously. At the same time, the sliding frame two at the bottom rises and falls along the screw rod to adapt to the adjustment of the angle of the support rod, further stably supporting the device main body. When the slider slides to near the lifting block, the support rod also slides from an inclined state to a state parallel to the frame body, achieving the effect of storing the support component while installing the solar panel and the membrane.

[0014] Other advantages, objectives, and features of the present invention will be described to some extent in the subsequent specification, and to some extent, will be obvious to those skilled in the art based on the study of the following text, or can be taught from the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is the first three-dimensional schematic diagram of the embodiment of the present invention; Figure 2 is the second three-dimensional schematic diagram of the embodiment of the present invention; Figure 3 is Figure 2 the schematic diagram at position A in Figure 4 is the third three-dimensional schematic diagram of the embodiment of the present invention; Figure 5 is the three-dimensional schematic diagram of the adjustment component in the embodiment of the present invention; Figure 6 is the three-dimensional schematic diagram of the adaptation component in the embodiment of the present invention; Figure 7 is Figure 6 the schematic diagram at position B in Figure 8 is the connection structure schematic diagram of the lifting component and the gear in the embodiment of the present invention; Figure 9 is the connection structure schematic diagram of the support component and the slider in the embodiment of the present invention.

[0016] In the figure: 1. Device main body; 2. Lifting assembly; 21. Frame body; 22. Motor; 23. Lifting block; 24. Telescopic rod; 25. Storage board; 3. Adjusting assembly; 31. Fixed block; 32. Sliding frame 1; 33. Slider; 34. Adjusting rod; 35. Rack; 36. Gear; 37. Limiting frame; 38. Rotating block; 4. Adaptation assembly; 41. Solar panel; 42. Diaphragm; 43. Pull rod A; 44. Pull rod B; 441. Spring; 442. Inclined plate; 45. Clamping frame; 5. Support assembly; 51. Side block; 52. Support rod; 53. Sliding frame 2; 54. Linking block; 6. Storage frame. Detailed implementation manners

[0017] The following further describes the detailed implementation manners of the present invention with reference to the accompanying drawings. It should be noted here that the description of these implementation manners is used to help understand the present invention, but does not constitute a limitation to the present invention.

[0018] In addition, the technical features involved in the various implementation manners of the present invention described below can be combined with each other as long as they do not conflict with each other.

[0019] With the growing global demand for clean energy, solar energy, as an inexhaustible and renewable green energy, is receiving increasing attention and application. As important components in the solar energy utilization system, the rationality and convenience of the installation of solar panels and diaphragms play a crucial role in the efficient conversion and wide application of solar energy. However, in the actual promotion and use process, we found that there are many problems in the installation of existing solar panels and diaphragms. On the one hand, due to the lack of a flexible adjustment mechanism, it is difficult to adapt the installation angles of the diaphragm and the solar panel according to various roofs and other surrounding equipment, thereby affecting the power generation and heat tracing effects and being unable to adapt to local conditions. On the other hand, the diaphragm and the solar panel are not convenient for portable storage and installation. When not in use, they occupy a large area. The installation requires professional tools and complex operations, has high technical requirements for personnel, and the equipment is easily damaged during disassembly. This not only restricts the popularization of solar energy equipment but also increases the use and maintenance costs. These deficiencies not only hinder the further development of the solar energy industry but also make it difficult to fully utilize the advantages of clean energy. Therefore, a new type of energy-saving electric heat tracing diaphragm adapted to solar energy equipment of the present invention is described in the attached Figure 1 - attached Figure 9, including a device main body 1, the device main body 1 includes a lifting component 2, an adjusting component 3 connected to the lifting component 2, and an adapting component 4 connected to the adjusting component 3. The lifting component 2 includes a frame body 21, a motor 22, a lifting block 23, a telescopic rod 24, and a storage board 25. The motor 22 is arranged inside the frame body 21. A screw rod is arranged at the upper end of the motor 22. The lifting block 23 is arranged on the screw rod. By driving the screw rod with the motor 22 and adopting the screw drive method, the rotational motion of the motor 22 is converted into the rotation of the screw rod, facilitating the lifting movement of the lifting block 23 on the screw rod. At the same time, it drives the fixed block 31 beside the lifting block 23 and the storage frame 6 to lift and move synchronously. The telescopic rod 24 is arranged in front of the lifting block 23, and the storage board 25 is arranged in front of the two telescopic rods 24. The adjusting component 3 includes a fixed block 31, a slider 33, an adjusting rod 34, a gear 36, and a rotating block 38. The fixed block 31 is arranged on the lifting block 23. A first sliding frame 32 is arranged in front of the fixed block 31. The slider 33 is slidably connected to the inside of the first sliding frame 32. Chute grooves are opened on both sides of the first sliding frame 32. A plate body is arranged on the top surface of the slider 33. Two fixing grooves are opened on the plate body. The adjusting rod 34 is arranged inside the fixing grooves. The structures of the two fixing grooves are the same. A rack 35 is arranged in front of the adjusting rod 34. The gear 36 meshes with the rack 35. A limiting frame 37 is arranged on the top surface of the storage board 25. A rotating shaft is arranged on the gear 36. The rotating shaft penetrates through the inside of the limiting frame 37. The rotating block 38 is rotatably connected to the rotating shaft. By the telescopic movement of the two adjusting rods 34, the two gears 36 are driven to move on the rack 35, thereby driving the two rotating blocks 38 to rotate on the rotating shaft, and further realizing the angle adjustment of the solar panel 41 and the diaphragm 42.

[0020] Embodiment 1: A supporting component 5 is slidably connected to the adjusting component 3. The supporting component 5 includes side blocks 51, support rods 52, and a linkage block 54. The two side blocks 51 are arranged on both sides of the slider 33. A second sliding frame 53 is arranged on the support rod 52. The left side of the second sliding frame 53 is connected to the right side of the linkage block 54. The side blocks 51 are slidably connected to the inside of the chute grooves. A square groove is opened inside the second sliding frame 53. The screw rod penetrates through the inside of the square groove. Specifically, when the two sliders 33 start to slide, they drive the side blocks 51 on both sides to slide inside the chute grooves, thereby driving the support rods 52 to tilt to different angles. At the same time, the bottom second sliding frame 53 rises and falls along with the screw rod to adapt to the angle adjustment of the support rods 52 and further support the device main body 1.

[0021] Embodiment 2: The adaptation component 4 includes a solar panel 41, a diaphragm 42, a pull rod A 43, and a pull rod B 44. The diaphragm 42 is arranged on the solar panel 41. Three pull rods A 43 are arranged on the top and bottom surfaces of the diaphragm 42. There are rotating columns between the three pull rods A 43 on the bottom and top surfaces and the pull rod B 44. A spring 441 and an inclined plate 442 are arranged on the pull rod B 44. A clamping frame 45 is arranged on the three pull rods A 43 on the bottom surface. The spring 441 and the inclined plate 442 are both clamped inside the clamping frame 45; Specifically, by setting the synchronous expansion and contraction of the pull rods A 43 on the bottom and top surfaces, the length adjustment of the solar panel 41 and the diaphragm 42 is realized. The pull rods A 43 on the bottom and top surfaces rotate along the rotating columns to different angles to realize the fitting and adjustment of the solar panel 41 and the diaphragm 42 with different lengths and widths. By clamping the three springs 441 and the inclined plates 442 inside the clamping frame 45, the fitting and clamping operation of the solar panel 41 and the diaphragm 42 is realized.

[0022] Embodiment 3: A storage frame 6 is installed on the outer sides of the two fixing blocks 31. A horizontal groove is opened in the front of the storage frame 6. The plate body is inserted into the inside of the horizontal groove. Two top grooves are opened on the top surface of the storage frame 6. The two frame bodies 21 are respectively inserted into the inside of the top grooves. Bottom plates are arranged on the bottom surfaces of the two frame bodies 21. Fastening bolts are arranged at the four corners of the bottom plates. Groove bodies are opened on the front, left, and right side surfaces of the two frame bodies 21. The fixing blocks 31 and the linkage blocks 54 are respectively arranged inside the groove bodies; Specifically, the motor 22 drives the two screws to lift, and then drives the lifting block 23 and the storage frame 6 connected thereto to lift along the direction of the frame body 21, realizing the height adjustment of the solar panel 41 and the diaphragm 42.

[0023] Embodiment 4: Three holes adapted to the clamping frame 45 are opened in the front of the storage frame 6. A controller is arranged on the front of the storage frame 6. The controller is electrically connected to the motor 22, the telescopic rod 24, and the adjusting rod 34 respectively. Fixing rods are arranged on the three pull rods A 43. The rotating block 38 is inserted into the inside of the fixing rod and fastened with a stud. The controller is connected to the motor 22, the telescopic rod 24, and the adjusting rod 34 through a multi-core cable, powered by a power line, and transmitting control instructions through a signal line.

[0024] Specifically, when the controller controls the motor 22 to rotate, the height adjustment of the fixing block 31 and the lifting block 23 is realized. The telescopic rod 24 expands and contracts to drive the storage plate 25 to be stored inside the storage frame 6 to realize storage and regularization. The two adjusting rods 34 expand and contract to move, realizing the rotation of the gear 36 on the rack 35, and further adjusting the angles of the solar panel 41 and the diaphragm 42.

[0025] Specifically, when it is necessary to disassemble the solar panel 41 and the diaphragm 42 from the device main body 1, first remove the rotating block 38 from the fixing rod by bolts, and finally press the three springs 441 and the inclined plate 442 to extract them from the inside of the clamping frame 45, so as to realize the disassembly of the solar panel 41 and the diaphragm 42, and at the same time solve the problem of easily damaged equipment in the disassembly of the existing device.

[0026] Specifically, by starting the two adjusting rods 34 to drive the two gears 36 to move on the rack 35, the two rotating blocks 38 rotate on the rotating shaft, and the rack 35 slides and is limited inside the fixing groove, thereby realizing the angle adjustment of the solar panel 41 and the diaphragm 42 at the same time, facilitating the real-time adaptation of the installation angles of the diaphragm 42 and the solar panel 41 according to the house and other equipment, and adapting measures to local conditions. Specifically, by starting the rack 35 to rotate the gear 36 to a position parallel to the storage frame 6, the telescopic rod 24 drives the storage plate 25 to retract into the storage frame 6. At this time, the plate body slides back into the inside of the transverse groove, and the three clamping frames 45 are simultaneously stored inside the holes, and the support rod 52 changes from an inclined state to a state parallel to the frame body 21, realizing the storage operation of the solar panel 41 and the diaphragm 42 at the same time. Specifically, while the two sliders 33 slide, they drive the side block 51 to move synchronously inside the sliding groove, and then drive the support rod 52 to tilt to different angles to support the solar panel 41 and the diaphragm 42 synchronously. At the same time, the sliding frame two 53 at the bottom rises and falls along the screw rod to adapt to the angle adjustment of the support rod 52, further stably supporting the device main body 1. When the slider 33 slides to a position close to the lifting block 23, the support rod 52 also changes from an inclined state to a state parallel to the frame body 21, realizing the effect of storing the support assembly 5 while installing the solar panel 41 and the diaphragm 42.

[0027] Working principle: First, fasten the device to the position of the roof or other equipment where the solar panel 41 and the diaphragm 42 need to be installed through the bottom base plate and fastening bolts. Before using the device body 1, extend and retract the plurality of pull rods A43 and the pull rod B44 to facilitate adapting to solar panels 41 and diaphragms 42 of different lengths. Rotate the rotating column to adjust the angles of the pull rod A43 and the pull rod B44. After the angle and height are adjusted, snap the three springs 441 and the inclined plate 442 into the inside of the card frame 45 to install the solar panel 41 and the diaphragm 42. When it is necessary to install the solar panel 41 and the diaphragm 42 on the rotating block 38, insert the fixing rod into the fixing rod and fasten it with a stud. When it is necessary to adjust the height and angle of the solar panel 41 and the diaphragm 42, start the two motors 22 to drive the lifting blocks 23 on the screw rods and the storage frame 6 to lift, so as to adjust the height of the solar panel 41 and the diaphragm 42. Start the two adjusting rods 34 to drive the two gears 36 to move on the rack 35, and the two rotating blocks 38 rotate on the rotating shaft, thereby realizing the angle adjustment of the solar panel 41 and the diaphragm 42. When it is necessary to store the device body 1, start the telescopic rod 24 to drive the storage plate 25 to retract into the inside of the storage frame 6. Thus, the entire working process is completed.

[0028] The above front, back, left, right, up, and down are all based on the Figure 1 description drawings of the specification.

[0029] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the protection scope of the present invention.

[0030] The above has described the embodiments of the present invention in detail with reference to the drawings, but the present invention is not limited to the described embodiments.

[0031] For those skilled in the art, without departing from the principle and spirit of the present invention, various changes, modifications, substitutions, and variations made to these embodiments still fall within the protection scope of the present invention.

Claims

1. A new type of energy-saving electric heating film adapted for solar energy equipment, comprising a device body (1), characterized in that: The device body (1) comprises a lifting component (2), an adjusting component (3) connected to the lifting component (2), and an adapting component (4) connected to the adjusting component (3); the lifting component (2) comprises a frame (21), a motor (22), a lifting block (23), a telescopic rod (24), and a storage plate (25); the motor (22) is arranged inside the frame (21); a screw is arranged at the upper end of the motor (22); the lifting block (23) is arranged on the screw; the telescopic rod (24) is arranged in front of the lifting block (23); the storage plate (25) is arranged in front of the two telescopic rods (24); the adjusting component (3) comprises a fixing block (31), a sliding block (33), an adjusting rod (34), a gear (36), and a rotating member (37); The invention relates to a block (38), wherein the fixed block (31) is arranged on the lifting block (23), a sliding frame (32) is arranged in front of the fixed block (31), the sliding block (33) is slidably connected to the inside of the sliding frame (32), sliding grooves are arranged on both sides of the sliding frame (32), a plate body is arranged on the top surface of the sliding block (33), two fixing grooves are arranged on the plate body, the adjusting rod (34) is arranged in the inside of the fixing groove, a rack (35) is arranged in front of the adjusting rod (34), the gear (36) is meshed with the rack (35), a limiting frame (37) is arranged on the top surface of the storage plate (25), a rotating shaft is arranged on the gear (36), the rotating shaft is passed through the inside of the limiting frame (37), and the rotating block (38) is rotatably connected to the rotating shaft.

2. According to claim 1, a new type of energy-saving electric heating film adapted for solar energy equipment is characterized by: The adjusting component (3) is slidably connected to a supporting component (5), the supporting component (5) comprising a side block (51), a supporting rod (52) and a linkage block (54), the two side blocks (51) being arranged on both sides of the sliding block (33), the supporting rod (52) being provided with a second sliding frame (53), the left side of the second sliding frame (53) being connected to the right side of the linkage block (54), the side block (51) being slidably connected to the inside of the sliding groove, the inside of the second sliding frame (53) being provided with a square groove, and the screw rod being passed through the inside of the square groove.

3. According to claim 1, a new type of energy-saving electric heating film adapted for solar energy equipment is characterized in that: The adapter assembly (4) comprises a solar panel (41), a membrane (42), a pull-out rod A (43) and a pull-out rod B (44); the membrane (42) is arranged on the solar panel (41); three pull-out rods A (43) are arranged on the top and bottom surfaces of the membrane (42); rotating columns are arranged between the three pull-out rods A (43) on the bottom and top surfaces and the pull-out rods B (44); springs (441) and inclined plates (442) are arranged on the pull-out rods B (44); and a clamping frame (45) is arranged on the three pull-out rods A (43) on the bottom surface; the springs (441) and inclined plates (442) are clamped inside the clamping frame (45).

4. According to claim 1, a new type of energy-saving electric heating film adapted for solar energy equipment is characterized in that: A storage frame (6) is installed on the outside of the two fixing blocks (31), a transverse groove is provided on the front of the storage frame (6), the plate body is inserted into the interior of the transverse groove, and two top grooves are provided on the top surface of the storage frame (6), and the two frame bodies (21) are respectively inserted into the interior of the top grooves.

5. According to claim 4, a new energy-saving electric heating film adapted for solar energy equipment is characterized in that: The bottom surfaces of the two frames (21) are each provided with a bottom plate, and the four corners of the bottom plate are each provided with fastening bolts.

6. The new energy-saving electric heating film adapted for solar energy equipment according to claim 5 is characterized in that: Grooves are provided on the front and left and right sides of the two frames (21), and the fixing blocks (31) and the linkage blocks (54) are respectively arranged inside the grooves.

7. The new energy-saving electric heating film adapted for solar energy equipment according to claim 4 is characterized in that: The front of the storage frame (6) is provided with holes that match the card frame (45), and the number of the holes is three.

8. The new energy-saving electric heating film adapted for solar energy equipment according to claim 7 is characterized in that: A controller is provided in front of the storage frame (6), and the controller is electrically connected to the motor (22), the telescopic rod (24) and the adjustment rod (34) respectively.