Energy-saving air conditioner fan mounting structure

Through the innovative design of the wall connection mechanism and fan support mechanism, the stability and convenience of energy-saving air conditioner fans during installation and transportation are solved, and the effects of rapid installation, stable fixation and easy transportation are achieved.

CN120402984AActive Publication Date: 2025-08-01JINGJIANG QIYUN AIR CONDITIONING EQUIP CO LTD
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Patent Information

Application Number
CN202510904639.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-01
Publication Date
2025-08-01
Estimated Expiration
2045-07-01

AI Technical Summary

Technical Problem

The existing energy-saving air conditioner fan installation structure is prone to loosening during long-term operation, resulting in poor stability and cumbersome installation and disassembly, which increases labor costs and transportation difficulties, and at the same time, the complex structure increases maintenance difficulties.

Method used

The detachable wall connection mechanism and fan support mechanism are adopted, and the inclined plug-in assembly and engaging structure are used to achieve rapid installation and stable fixation. The fan support mechanism can be expanded and folded for easy transportation.

Benefits of technology

It realizes rapid installation and stable fixation of the fan, reduces transportation and maintenance costs, improves installation efficiency and safety, and facilitates the portability and transportation of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fan installation, and discloses an energy-saving air conditioner fan installation structure which comprises a wall body connecting mechanism detachably installed on a wall body, fan supporting mechanisms are fixedly installed at the two ends of the wall body connecting mechanism correspondingly, and an energy-saving air conditioner outer fan is installed on the fan supporting mechanisms through bolts; the wall connecting mechanism comprises an M-shaped frame, a first inserting-connecting assembly and a second inserting-connecting assembly penetrate through two inclined plates of the M-shaped frame respectively, the inclined plates are perpendicular to the corresponding inserting-connecting assemblies, and the close ends of the first inserting-connecting assembly and the second inserting-connecting assembly are clamped. According to the invention, the first plug-in assembly and the second plug-in assembly are inserted into the inclined holes of the wall body in an inclined plug-in manner, so that on one hand, the M-shaped frame can be simply fixed on the wall body and is relatively convenient to mount or dismount, and on the other hand, the M-shaped frame can be stably fixed on the wall body.
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Description

Technical Field

[0001] The present invention relates to the technical field of fan installation, and particularly to an installation structure for an energy-saving air-conditioning fan, which is especially applicable to the installation scenario of an energy-saving air-conditioning fan with high requirements for installation convenience, stability, portability, and later maintenance convenience. Background Art

[0002] In the current field of energy-saving air-conditioning fan installation, there are many problems to be solved urgently in traditional installation structures. Some installation structures use a simple bolt fixation method to directly install the fan on a wall or other supporting surfaces. During the long-term operation of the fan, due to the continuous vibration generated by the fan operation, a periodic force will be exerted on the bolts, and this force is likely to cause the bolts to gradually loosen. Once the bolts become loose, the installation stability of the fan will be greatly reduced, which will not only affect the normal operation efficiency of the fan, resulting in a poor cooling or heating effect of the energy-saving air conditioner, but also may cause serious safety hazards such as the fan falling, threatening the safety of personnel and property. Moreover, when performing installation and disassembly operations, special tools are required to tighten or disassemble each bolt one by one, and the operation steps are cumbersome, which not only consumes a lot of time but also increases the labor cost, greatly reducing the efficiency of the installation work.

[0003] In addition, there are some installation structures that, although realizing the importance of stability, enhance the fixation effect by adding complex support components and connection structures. However, this approach will undoubtedly increase the overall weight and volume of the installation structure, making the installation process more difficult. During the installation process, more manpower and auxiliary equipment are required to complete the operation, increasing the complexity and difficulty of the installation. At the same time, the larger volume and weight are also not conducive to the transportation and carrying of the equipment. During the equipment transportation process, a larger transportation space is required, increasing the transportation cost, and it is also more inconvenient during the handling process. In addition, for complex structures during later maintenance and repair, due to numerous components and complex structures, it is difficult to quickly locate the fault points, the operation difficulty is large, the maintenance and repair time is prolonged, and the maintenance cost is increased.

[0004] Therefore, developing an installation structure for an energy-saving air-conditioning fan that can take into account installation convenience, stability, portability, and maintenance convenience has become a key problem urgently needed to be solved in this field currently. Summary of the Invention

[0005] In order to overcome the deficiencies of the prior art, the present invention provides an installation structure for an energy-saving air-conditioning fan, which has the advantages of convenient and stable installation.

[0006] To achieve the above object, the present invention provides the following technical solution: An installation structure for an energy-saving air-conditioning fan, comprising:

[0007] A wall connection mechanism that can be detachably installed on a wall, and a fan support mechanism is fixedly installed at both ends of the wall connection mechanism. An energy-saving air conditioner external fan is installed on a pair of the fan support mechanisms through bolts.

[0008] The wall connection mechanism includes an "M"-shaped frame. A first plug-in component and a second plug-in component respectively penetrate through two inclined plates of the "M"-shaped frame. The inclined plate is perpendicular to the corresponding plug-in component, and the adjacent ends of the first plug-in component and the second plug-in component form a snap fit.

[0009] Oblique holes are drilled in the wall for accommodating the far ends of the two plug-in components.

[0010] As a preferred technical solution of the present invention, square through holes are respectively opened on two inclined plates of the "M"-shaped frame.

[0011] Both the first plug-in component and the second plug-in component include a plug-in connector.

[0012] The plug-in connector includes a plug-in steel column with one end inserted into the oblique hole of the wall. A square hollow block adapted to the square through hole is fixedly sleeved on the circumferential side of the end of the plug-in steel column that is not inserted into the oblique hole of the wall. During plugging, the square hollow block is located in the square through hole. A "U"-shaped plate is fixed on the end face of the plug-in steel column that is not inserted into the oblique hole of the wall. A rotating plate is rotatably installed inside the "U"-shaped plate through a connecting shaft. A convex column is fixed at one end of the rotating plate located inside the "U"-shaped plate. A guide rod penetrates through the "U"-shaped plate. An end plate is fixed at one end of the guide rod located inside the "U"-shaped plate. A deep hole for accommodating the convex column is opened on the guide rod and the end plate. A first spring is sleeved on the outer side of the guide rod and between the end plate and the inner wall of the "U"-shaped plate.

[0013] A snap plate is fixed on the rotating plate inside the first plug-in component, and a snap groove that is snap-fitted with the snap plate is fixed on the rotating plate inside the second plug-in component.

[0014] As a preferred technical solution of the present invention, the inner diameter of the oblique hole in the wall is 1 mm - 2 mm larger than the diameter of the plug-in steel column.

[0015] As a preferred technical solution of the present invention, the fan support mechanism includes a support tray. One end of the support tray is fixed on the "M"-shaped frame. A horizontal track groove along the length direction of the support tray is opened at the end of the support tray away from the "M"-shaped frame. A limiting groove is also opened on the support tray. The limiting groove is located above the end of the horizontal track groove and is communicated with the horizontal track groove. The limiting groove is located at the end of the horizontal track groove close to the wall. A vertical through hole is opened at the end of the support tray away from the horizontal track groove.

[0016] A sloping plate rotates below the support pallet, and a sliding shaft that can slide within a horizontal track groove and a limit groove is fixed to the top end of the sloping plate;

[0017] One end of the sloping plate away from the sliding shaft is rotatably connected to a vertical plate. An accommodation cavity is formed at one end of the vertical plate away from the sloping plate. A slider slides within the accommodation cavity. A stud is fixed to the slider. One end of the stud away from the slider passes through the interior of the accommodation cavity and extends to the outside of the vertical plate;

[0018] One end of the stud located outside the accommodation cavity passes through a through hole and is threadedly connected to a nut.

[0019] As a preferred technical solution of the present invention, a first mounting plate is fixed to the support pallet, and a second mounting plate corresponding to the first mounting plate is fixed to the bottom of the energy-saving air conditioner external fan. The first mounting plate and the second mounting plate are fixed together by a limit bolt.

[0020] As a preferred technical solution of the present invention, a second spring is provided inside the accommodation cavity and on the side of the slider away from the stud.

[0021] As a preferred technical solution of the present invention, a vertical hole communicating with the accommodation cavity is formed inside the vertical plate, and a column is fixed to the slider with one end inserted into the vertical hole.

[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0023] 1. Advantages of the wall connection mechanism: The present invention inserts the first plugging component and the second plugging component into the inclined holes of the wall in an inclined plugging manner. This unique installation method has multiple advantages. On the one hand, compared with the traditional bolt fixing method, the inclined plugging operation is simpler and more convenient. There is no need to use complex tools to operate multiple bolts, and the "M"-shaped frame can be quickly fixed to the wall. Both installation and disassembly are more time-saving and labor-saving. On the other hand, since the first plugging component and the second plugging component are inserted obliquely, when pulling the "M"-shaped frame outward, the included angle formed by them can effectively limit the outward movement of the "M"-shaped frame, thereby realizing the stable fixation of the "M"-shaped frame. At the same time, the present invention further increases the connection strength and stability between the first plugging component and the second plugging component by making the adjacent ends of the first plugging component and the second plugging component form a snap fit. Even when subjected to external forces such as vibration during the operation of the fan, it is difficult for the first plugging component and the second plugging component to break away from the inclined holes on the wall, ensuring the reliability of the entire installation structure.

[0024] 2. Advantages of the fan support mechanism: The fan support mechanism of the present invention has flexible unfolding and folding functions. When in use, the fan support mechanism is unfolded. At this time, the stable triangular structure formed by the support plate, the inclined plate, the vertical plate and the stud can provide strong bearing capacity for the external fan of the energy-saving air conditioner, ensuring the stability of the fan during operation. When not in use, the fan support mechanism can be folded up. Through a series of simple operations such as screwing the nut, pressing down the stud, folding the vertical plate, and sliding the inclined plate, its volume can be effectively reduced, facilitating the carrying and transportation of the equipment, and reducing the transportation cost and handling difficulty. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 is a schematic structural diagram of the present invention installed on a wall;

[0026] Figure 2 for the present invention Figure 1 is a top view;

[0027] Figure 3 for the present invention Figure 2 is a cross-sectional view;

[0028] Figure 4 is a schematic structural diagram of the cooperation between the wall connection mechanism and the fan support mechanism of the present invention;

[0029] Figure 5 is a schematic structural diagram of the wall connection mechanism of the present invention;

[0030] Figure 6 is a cross-sectional view of the wall connection mechanism of the present invention;

[0031] Figure 7 for the present invention Figure 6 is an enlarged view of part A;

[0032] Figure 8 is a schematic structural diagram of the "M"-shaped frame of the present invention;

[0033] Figure 9 is a schematic structural diagram of the first plug-in component of the present invention;

[0034] Figure 10 is a cross-sectional view of the first plug-in component of the present invention;

[0035] Figure 11 is a schematic structural diagram of the second plug-in component of the present invention;

[0036] Figure 12 is a schematic structural diagram of the fan support mechanism of the present invention when unfolded;

[0037] Figure 13 is a schematic structural diagram of the fan support mechanism of the present invention when folded;

[0038] Figure 14 Explosion diagram of the fan support mechanism of the present invention;

[0039] Figure 15 Cross-sectional view of the vertical plate of the present invention;

[0040] Figure 16 For the present invention Figure 15 Enlarged view of part B in;

[0041] Figure 17 Schematic structural diagram of the external fan of the energy-saving air conditioner of the present invention.

[0042] In the figure: 1. Wall connection mechanism; 11. "M"-shaped frame; 111. Square through-hole; 12. First plug-in component; 121. Plug-in steel column; 122. Square hollow block; 123. "U"-shaped plate; 124. Rotating plate; 125. Convex column; 126. Guide rod; 127. End plate; 128. First spring; 129. Clamping plate; 13. Second plug-in component; 131. Clamping groove; 2. Fan support mechanism; 21. Support tray; 211. Horizontal track groove; 212. Limiting groove; 213. Through-hole; 22. Inclined plate; 221. Sliding shaft; 23. Vertical plate; 231. Accommodation cavity; 232. Slide block; 233. Stud; 234. Second spring; 235. Vertical hole; 236. Column; 24. Nut; 3. First mounting plate; 4. Limiting bolt; 5. External fan of energy-saving air conditioner; 51. Second mounting plate. Specific implementation manners

[0043] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0044] As Figures 1 to 17 shown, the present invention provides an installation structure for an energy-saving air conditioner fan, including:

[0045] A wall connection mechanism 1 detachably installed on a wall, both ends of the wall connection mechanism 1 are fixedly installed with a fan support mechanism 2, and an external fan 5 of an energy-saving air conditioner is installed on a pair of the fan support mechanisms 2 through bolts;

[0046] The setting of the wall connection mechanism 1 can achieve a tight connection between the fan support mechanism 2 and the wall, so that the fan support mechanism 2 is fixed on the wall;

[0047] The setting of the fan support mechanism 2 can support the external fan 5 of the energy-saving air conditioner;

[0048] The wall connection mechanism 1 includes an "M"-shaped frame 11. A first plugging component 12 and a second plugging component 13 penetrate through the two inclined plates of the "M"-shaped frame 11 respectively. The inclined plates are perpendicular to the corresponding plugging components. The adjacent ends of the first plugging component 12 and the second plugging component 13 are engaged with each other.

[0049] Oblique holes are drilled in the wall for accommodating the far ends of the two plugging components.

[0050] By setting the shape of the "M"-shaped frame 11 to be "M"-shaped, since the "M" shape has two hypotenuses, the "M"-shaped frame 11 will form two inclined plates. When the first plugging component 12 and the second plugging component 13 penetrate through the two inclined plates of the "M" shape perpendicularly respectively, the first plugging component 12 and the second plugging component 13 can be inserted into the oblique holes opened on the wall obliquely. Since the first plugging component 12 and the second plugging component 13 are inserted obliquely, when pulling the "M"-shaped frame 11 outwards, the included angle formed by the first plugging component 12 and the second plugging component 13 will limit the outward movement of the "M"-shaped frame 11, thus forming a fixed limit for the "M"-shaped frame 11. When it is necessary to disassemble the "M"-shaped frame 11 from the wall, first pull out one of the first plugging component 12 and the second plugging component 13 from the oblique hole, and then pull out the other one from the oblique hole.

[0051] Since the adjacent ends of the first plugging component 12 and the second plugging component 13 are engaged with each other, after the "M"-shaped frame 11 is installed, it is difficult to disassemble the "M"-shaped frame 11 from the wall unless the engagement between the first plugging component 12 and the second plugging component 13 is released, thus forming a stable fixation for the "M"-shaped frame 11.

[0052] Square through holes 111 are respectively opened on the two inclined plates of the "M"-shaped frame 11.

[0053] Both the first plugging component 12 and the second plugging component 13 include a plug.

[0054] The connector includes a plugging steel column 121 with one end inserted into the inclined hole of the wall. A square hollow block 122 adapted to the square through-hole 111 is fixedly sleeved on the periphery of the end of the plugging steel column 121 that is not inserted into the inclined hole of the wall. During plugging, the square hollow block 122 is located within the square through-hole 111. A "U"-shaped plate 123 is fixed on the end face of the plugging steel column 121 that is not inserted into the inclined hole of the wall. A rotating plate 124 is rotatably mounted inside the "U"-shaped plate 123 through a connecting shaft. A convex column 125 is fixed at one end of the rotating plate 124 located inside the "U"-shaped plate 123. A guiding rod 126 penetrates through the "U"-shaped plate 123. An end plate 127 is fixed at one end of the guiding rod 126 located inside the "U"-shaped plate 123. Deep holes for accommodating the convex column 125 are formed in the guiding rod 126 and the end plate 127. A first spring 128 is sleeved outside the guiding rod 126 and between the end plate 127 and the inner wall of the "U"-shaped plate 123;

[0055] A clamping plate 129 is fixed on the rotating plate 124 within the first plugging assembly 12. A clamping groove 131 adapted to be clamped with the clamping plate 129 is fixed on the rotating plate 124 within the second plugging assembly 13;

[0056] When it is necessary to install the wall connecting mechanism 1 onto the wall, the plugging steel column 121 on the first plugging assembly 12 is passed through the square through-hole 111 until the square hollow block 122 is completely within the square through-hole 111. Then, the end plate 127 is squeezed, causing the first spring 128 to contract and become shorter until the convex column 125 disengages from the deep holes formed in the guiding rod 126 and the end plate 127. After that, the rotating plate 124 is rotated by 90 degrees, causing the clamping plate 129 to change from a horizontal state to a vertical state. The purpose of rotating the clamping plate 129 is to prevent the clamping plate 129 from blocking the second plugging assembly 13 when the second plugging assembly 13 is inserted. After rotating the clamping plate 129, the second plugging assembly 13 is passed through another square through-hole 111 and inserted into the inclined hole on another wall. When the square hollow block 122 on the second plugging assembly 13 is completely inside the square through-hole 111, the end plate 127 is squeezed again, and then the rotating plate 124 is rotated, causing the clamping plate 129 to change from a vertical state back to a horizontal state. At this time, the end of the clamping plate 129 away from the rotating plate 124 is exactly stuck inside the clamping groove 131. Through the clamping connection between the clamping plate 129 and the clamping groove 131, the adjacent ends of the first plugging assembly 12 and the second plugging assembly 13 can be fixed. Even if the first plugging assembly 12 and the second plugging assembly 13 vibrate due to external forces, it is difficult for the first plugging assembly 12 and the second plugging assembly 13 to disengage from the inclined holes on the wall;

[0057] The inner diameter of the inclined hole in the wall is 1 mm - 2 mm larger than the diameter of the plugging steel column 121;

[0058] The fan support mechanism 2 includes a support pallet 21. One end of the support pallet 21 is fixed on the "M"-shaped frame 11. A horizontal track groove 211 along the length direction of the support pallet 21 is provided at the end of the support pallet 21 away from the "M"-shaped frame 11. A limit groove 212 is also provided on the support pallet 21. The limit groove 212 is located above the end of the horizontal track groove 211 and is communicated with the horizontal track groove 211. The limit groove 212 is located at the end of the horizontal track groove 211 close to the wall. A vertical through hole 213 is provided at the end of the support pallet 21 away from the horizontal track groove 211;

[0059] A sloping plate 22 is rotatably provided below the support pallet 21. A sliding shaft 221 that can slide in the horizontal track groove 211 and the limit groove 212 is fixed at the top end of the sloping plate 22;

[0060] One end of the sloping plate 22 away from the sliding shaft 221 is rotatably connected to a vertical plate 23. A receiving cavity 231 is provided at the end of the vertical plate 23 away from the sloping plate 22. A slider 232 slides inside the receiving cavity 231. A stud 233 is fixed on the slider 232. One end of the stud 233 away from the slider 232 passes through the inside of the receiving cavity 231 and extends to the outside of the vertical plate 23;

[0061] One end of the stud 233 located outside the receiving cavity 231 passes through the through hole 213 and is threadedly connected to a nut 24;

[0062] When it is necessary to fold the fan support mechanism 2 into the Figure 13 shown shape, first turn the nut 24 to disengage the nut 24 from the stud 233. Then press down the stud 233 to disengage the stud 233 from the through hole 213. Then fold the vertical plate 23 towards the inside of the sloping plate 22. After folding the vertical plate 23, then pull the sliding shaft 221 downward to disengage the sliding shaft 221 from the limit groove 212. Then slide the sliding shaft 221 outward along the length direction of the horizontal track groove 211 until the sliding shaft 221 is located on the side of the horizontal track groove 211 away from the limit groove 212. At this time, the sloping plate 22 together with the vertical plate 23 folded inside the sloping plate 22 is received in the support pallet 21, and the folding of the entire fan support mechanism 2 is completed. By folding the fan support mechanism 2, the overall volume of the wall connection mechanism 1 and the fan support mechanism 2 of the present invention can be made smaller, which is convenient for carrying and transporting. When in use, the fan support mechanism 2 can be unfolded into the Figure 12 shown shape.

[0063] An installation plate one 3 is fixed on the support pallet 21. An installation plate two 51 corresponding to the installation plate one 3 is fixed at the bottom of the energy-saving air-conditioning external fan 5. The installation plate one 3 and the installation plate two 51 are fixed together by a limit bolt 4;

[0064] Inside the accommodating cavity 231 and on the side of the slider 232 away from the stud 233, a second spring 234 is provided.

[0065] A vertical hole 235 communicating with the accommodating cavity 231 is formed inside the vertical plate 23, and a column 236 with one end inserted into the vertical hole 235 is fixed on the slider 232.

[0066] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0067] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An installation structure for an energy-saving air-conditioning fan, characterized in that: It includes: A wall connection mechanism (1) detachably installed on the wall, and a fan support mechanism (2) is fixedly installed at both ends of the wall connection mechanism (1), and an energy-saving air-conditioning external fan (5) is installed on a pair of the fan support mechanisms (2) by bolts; The wall connection mechanism (1) includes an "M"-shaped frame (11), and a first plug-in component (12) and a second plug-in component (13) respectively penetrate through two inclined plates of the "M"-shaped frame (11), and the inclined plate is perpendicular to the corresponding plug-in component, and the proximal ends of the first plug-in component (12) and the second plug-in component (13) form a snap fit; Oblique holes are drilled in the wall for accommodating the distal ends of the two plug-in components.

2. The installation structure of an energy-saving air-conditioning fan according to claim 1, wherein: Square through holes (111) are respectively formed on two inclined plates of the "M"-shaped frame (11); Both the first plug-in component (12) and the second plug-in component (13) include a plug-in connector; The plug-in connector includes a plug-in steel column (121) with one end inserted into the oblique hole in the wall. A square hollow block (122) adapted to the square through hole (111) is fixedly sleeved on the circumferential side of the end of the plug-in steel column (121) that is not inserted into the oblique hole in the wall. During plugging, the square hollow block (122) is located in the square through hole (111). A "U"-shaped plate (123) is fixed on the end face of the plug-in steel column (121) that is not inserted into the oblique hole in the wall. A rotating plate (124) is rotatably mounted inside the "U"-shaped plate (123) through a connecting shaft. A convex column (125) is fixed at one end of the rotating plate (124) located inside the "U"-shaped plate (123). A guide rod (126) penetrates through the "U"-shaped plate (123). An end plate (127) is fixed at one end of the guide rod (126) located inside the "U"-shaped plate (123). Deep holes for accommodating the convex column (125) are formed in the guide rod (126) and the end plate (127). A first spring (128) is sleeved on the outer side of the guide rod (126) and between the end plate (127) and the inner wall of the "U"-shaped plate (123); A snap plate (129) is fixed on the rotating plate (124) inside the first plug-in component (12), and a snap groove (131) engaged with the snap plate (129) is fixed on the rotating plate (124) inside the second plug-in component (13).

3. The installation structure of an energy-saving air-conditioning fan according to claim 2, characterized in that: The inner diameter of the oblique hole in the wall is 1 mm - 2 mm larger than the diameter of the plug-in steel column (121).

4. The installation structure of an energy-saving air-conditioning fan according to claim 1, characterized in that: The blower support mechanism (2) includes a support pallet (21). One end of the support pallet (21) is fixed to the "M"-shaped frame (11). The end of the support pallet (21) away from the "M"-shaped frame (11) is provided with a horizontal track groove (211) along the length direction of the support pallet (21). The support pallet (21) is further provided with a limit groove (212). The limit groove (212) is located above the end of the horizontal track groove (211) and the limit groove (212) communicates with the horizontal track groove (211). The limit groove (212) is located at the end of the horizontal track groove (211) close to the wall. The end of the support pallet (21) away from the horizontal track groove (211) is provided with a vertical through hole (213). A sloping plate (22) rotates below the support pallet (21). The top end of the sloping plate (22) is fixed with a sliding shaft (221) that can slide in the horizontal track groove (211) and the limit groove (212). One end of the sloping plate (22) away from the sliding shaft (221) is rotatably connected to a vertical plate (23). The end of the vertical plate (23) away from the sloping plate (22) is provided with a receiving cavity (231). A slider (232) slides inside the receiving cavity (231). A stud (233) is fixed to the slider (232). The end of the stud (233) away from the slider (232) passes through the inside of the receiving cavity (231) and extends to the outside of the vertical plate (23). The end of the stud (233) located outside the receiving cavity (231) passes through the through hole (213) and is threadedly connected to a nut (24).

5. The installation structure of an energy-saving air-conditioning fan according to claim 4, characterized in that: An installation plate one (3) is fixed to the support pallet (21). The bottom of the energy-saving air conditioner external blower (5) is fixed with an installation plate two (51) corresponding to the installation plate one (3). The installation plate one (3) and the installation plate two (51) are fixed together by a limit bolt (4).

6. The installation structure of an energy-saving air-conditioning fan according to claim 5, characterized in that: Inside the receiving cavity (231) and on the side of the slider (232) away from the stud (233), there is a spring two (234).

7. The installation structure of an energy-saving air-conditioning fan according to claim 6, characterized in that: A vertical hole (235) communicating with the receiving cavity (231) is opened inside the vertical plate (23). A column (236) with one end inserted into the vertical hole (235) is fixed to the slider (232).

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