Hanging structure, inverter and power system

Through the removable inductor box and hanging plate structure, the problem of replacing the entire box when the existing inverter hanging parts is damaged is solved, and the stable installation and convenient maintenance of the inverter are achieved.

CN223168210UActive Publication Date: 2025-07-29SUNGROW (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202421985992.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-07-29
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

During the use of the existing inverter mounting structure, the entire box needs to be replaced when the mounting parts are deformed or damaged, resulting in cumbersome maintenance.

Method used

The removable inductor box and hanging plate structure is adopted. The inductor box can be detached and installed in the box of the inverter, and the hanging plate is installed on the wall. The inverter is stablely mounted through the removable connection between the mounting part and the connecting part, and can be replaced separately when the inductor box is damaged.

Benefits of technology

It improves the maintenance convenience after inverter installation, ensures the working stability and installation stability of inverter, and reduces the complexity of maintenance work.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a hanging structure, an inverter and a power system, and relates to the technical field of electronic equipment mounting structures, the hanging structure comprises an inductance box and a hanging plate; the inductor box is detachably mounted on a box body of the inverter, and the inductor box is provided with a hanging part and a connecting part; the hanging plate is mounted on a wall body, the hanging part is hung on the hanging plate, and the connecting part is detachably connected with the hanging plate. According to the hanging structure, the hanging plate is matched with the inductance box detachably connected with the box body of the inverter, so that the working stability of a core element inductor of the inverter is ensured, and the hanging of the inverter is realized by hanging the inductance box on the hanging plate; meanwhile, the hanging stability of the inverter is guaranteed through cooperation of the hanging part and the connecting part on the inductance box, the inductance box and the box body are detachably connected, when the hanging part on the inductance box is deformed or even damaged, only the inductance box needs to be replaced, and compared with replacement of the whole box body, the maintenance convenience of the inverter after hanging can be effectively improved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of electronic device mounting structures, and more particularly, to a hanging structure, an inverter, and a power system. Background Art

[0002] As an electrical device for voltage inversion, the inverter is applied in a power system, especially in a photovoltaic power generation system. To ensure the stable operation of the inverter, it is necessary to fix the inverter. For the purpose of conforming to the layout and saving space, the inverter is generally hung on a wall through a hanging structure.

[0003] The existing hanging structure consists of a hanging member and a hanging plate. Among them, the hanging plate is fixed on the wall, and the hanging member is located on the inverter. The inverter is hung by hanging the hanging member on the hanging plate. However, the existing hanging member and the inverter box are usually integrally formed. If the hanging member is deformed or even damaged during use, the entire inverter box needs to be removed for replacement, which makes the maintenance of the inverter relatively cumbersome. Summary of the Utility Model

[0004] The problem solved by the present disclosure is how to improve the maintenance convenience of the inverter after hanging while ensuring the stable hanging of the inverter.

[0005] To solve the above problems, the present disclosure provides a hanging structure, an inverter, and a power system.

[0006] In a first aspect, the present disclosure provides a hanging structure, which is characterized by including an inductor box and a hanging plate; the inductor box is detachably installed on the inverter box, the inductor box has a hanging portion and a connecting portion; the hanging plate is installed on the wall, the hanging portion is hung on the hanging plate, and the connecting portion is detachably connected to the hanging plate.

[0007] Optionally, the inductor box includes reinforcing fins, and at least one of the hanging portion and the connecting portion is located on the reinforcing fins.

[0008] Optionally, the hanging portion includes hanging ears provided on the reinforcing fins, and the hanging plate is provided with a groove with an upward opening, and the hanging ears are placed in the groove.

[0009] Optionally, the hanging portion includes a cut groove provided on the reinforcing fins, the cut groove has a downward opening, and the grooving direction is inclined relative to the vertical direction, and the hanging plate is provided with a support plate for inserting into the cut groove.

[0010] Optionally, the hanging structure further includes a limit plate, which is located between the inductor box and the hanging plate and is spaced apart from the inductor box. The hanging plate is provided with a plug-in plate, which is bent toward the inductor box to form a supporting portion, and the supporting portion is bent upward and extended to form a plug-in portion. The plug-in portion is placed from bottom to top between the limit plate and the inductor box, and the supporting portion is abutted against the limit plate. The limit plate is connected to the inductor box to form at least a part of the hanging portion.

[0011] Optionally, a support platform is provided on the end surface of the reinforcing fin facing the hanging plate, and the support platform is used to abut against the hanging plate.

[0012] Optionally, the edge of the hanging plate is bent and extended toward the reinforcing fin to form an anti-collision portion, and the anti-collision portion is used to abut against the reinforcing fin.

[0013] Optionally, a fixing hole is provided on the hanging plate, and the fixing hole is used for a fixing member to pass through so that the fixing member is fixedly connected to the wall. When the anti-collision part abuts against the reinforcing fin, there is a gap between the fixing member and the reinforcing fin.

[0014] Optionally, the inductor box further includes a first heat dissipation fin, and the reinforcement fins are two and are respectively located on opposite sides of the first heat dissipation fin in the horizontal direction.

[0015] Optionally, the inductor box further includes a second heat dissipation fin, and the second heat dissipation fin is located on a side of the reinforcing fin facing away from the first heat dissipation fin.

[0016] Optionally, there are multiple first heat dissipation fins, and the multiple first heat dissipation fins are spaced apart and distributed along the vertical direction;

[0017] There are multiple hanging plates, which are distributed at intervals along the vertical direction and are respectively connected to the reinforcing fins on both sides of the first heat dissipation fins in a one-to-one correspondence, or the hanging plates extend along the vertical direction.

[0018] Optionally, there are multiple first heat dissipation fins, and the multiple first heat dissipation fins are spaced apart and distributed along the horizontal direction;

[0019] There are a plurality of the hanging plates, which are spaced apart along the horizontal direction and respectively connected to the reinforcing fins on both sides of the first heat dissipating fins in a one-to-one correspondence, or the hanging plates extend along the horizontal direction.

[0020] Optionally, the connecting portion is located below the hanging portion.

[0021] Optionally, the connecting portion includes a connecting member and a connecting hole located in the inductor box, the hanging plate is provided with a limiting opening, the connecting hole corresponds to the limiting opening, and the connecting member is used to pass through the connecting hole and connect with the limiting opening.

[0022] In a second aspect, the present disclosure provides an inverter, including a box body and the hanging structure as described above.

[0023] Optionally, the inverter further includes a radiator, the radiator and the inductor box of the hanging structure are installed on the same outer wall of the box body, and the height of the radiator relative to the outer wall is less than or equal to the height of the inductor box relative to the outer wall.

[0024] In a third aspect, the present disclosure provides a power system, including the hanging structure as described above, or including the inverter as described above.

[0025] The beneficial effects of the hanging structure of the present disclosure are as follows: An inductor box and a hanging plate are provided to form a hanging structure. Among them, the inductor box 1 is detachably installed on the box body of the inverter, and the inductor box can accommodate one of the core components of the inverter, namely the inductor, so as to cooperate with the box body to protect the working components of the inverter and ensure the working stability of the inverter. At the same time, the inductor box only needs to accommodate the inductor, so its structural volume is relatively small compared to the box body, and the disassembly and assembly are relatively convenient; on this basis, the hanging plate can be installed on the wall, and the inductor box has a hanging portion and a connecting portion. Among them, the hanging portion can be hung on the hanging plate, and the connecting portion can be detachably connected to the hanging plate. With such a setting, the inductor box can be hung on the hanging plate installed on the wall through the hanging portion to realize the hanging of the inductor box, and the connecting portion can be connected to the hanging plate, so as to effectively avoid the inductor box from shaking after being hung on the hanging plate through the two-point limiting effect of the connecting portion and the hanging portion, and avoid accidental contact resulting in the separation of the hanging portion and the hanging plate, thereby ensuring the hanging stability of the inductor box. Since the inductor box is connected to the box body, the hanging of the inverter can be realized by using the hanging of the inductor box; at the same time, since the connecting portion is detachably connected to the hanging plate and the inductor box is detachably connected to the box body, when the hanging portion on the inductor box is deformed or even damaged, only the connecting portion needs to be removed to remove the inverter from the hanging plate, and then the inductor box is removed from the box body to replace the inductor box. Compared with replacing the entire box body, the maintenance convenience after the inverter is hung can be effectively improved. Description of the Drawings

[0026] Figure 1 It is an assembly schematic diagram of the hanging structure in the first embodiment of the present disclosure;

[0027] Figure 2 It is an exploded view of the hanging structure in the first embodiment of the present disclosure;

[0028] Figure 3Assembly schematic diagram of the hanging structure in the second embodiment of the present disclosure;

[0029] Figure 4 Exploded view of the hanging structure in the second embodiment of the present disclosure;

[0030] Figure 5 Assembly schematic diagram of the hanging structure in the third embodiment of the present disclosure;

[0031] Figure 6 Exploded view of the hanging structure in the third embodiment of the present disclosure;

[0032] Figure 7 Assembly schematic diagram of the hanging structure in the fourth embodiment of the present disclosure;

[0033] Figure 8 Assembly schematic diagram of the hanging structure in the fifth embodiment of the present disclosure;

[0034] Figure 9 Assembly schematic diagram of the hanging structure in the sixth embodiment of the present disclosure;

[0035] Figure 10 Assembly schematic diagram of the hanging structure in the seventh embodiment of the present disclosure;

[0036] Figure 11 Assembly schematic diagram of the hanging structure in the eighth embodiment of the present disclosure;

[0037] Figure 12 Assembly schematic diagram of the hanging structure in the ninth embodiment of the present disclosure;

[0038] Figure 13 Assembly schematic diagram of the hanging structure in the tenth embodiment of the present disclosure;

[0039] Figure 14 Structural schematic diagram of the inverter in the first embodiment of the present disclosure.

[0040] Explanation of reference numerals:

[0041] 1. Inductor box; 11. Hanging part; 12. Connecting part; 121. Connecting hole; 122. Connecting piece; 13. Reinforcing fin; 131. Support platform; 14. First heat dissipation fin; 15. Second heat dissipation fin; 2. Hanging plate; 21. Groove; 22. Support plate; 23. Plug-in plate; 231. Support part; 232. Plug-in part; 24. Anti-collision part; 25. Fixing hole; 26. Limiting port; 3. Box body; 4. Radiator. Detailed implementation manners

[0042] To make the above objects, features, and advantages of the present disclosure more apparent and understandable, the following provides a detailed description of specific embodiments of the present disclosure with reference to the accompanying drawings. Although some embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure can be implemented in various forms and should not be construed as limited to the embodiments described herein. Instead, these embodiments are provided to more thoroughly and completely understand the present disclosure. It should be understood that the drawings and embodiments of the present disclosure are only for exemplary purposes and are not used to limit the protection scope of the present disclosure.

[0043] In the accompanying drawings, the Z-axis represents the vertical direction, that is, the up-and-down position, and the positive direction of the Z-axis represents the upper side, and the negative direction of the Z-axis represents the lower side; the X-axis in the accompanying drawings represents the horizontal direction and is designated as the front-and-back position, and the positive direction of the X-axis represents the front side, and the negative direction of the X-axis represents the back side; the Y-axis in the accompanying drawings represents the left-and-right position, and the positive direction of the Y-axis represents the right side, and the negative direction of the Y-axis represents the left side. At the same time, it should be noted that the meanings represented by the foregoing Z-axis, Y-axis, and X-axis are only for the convenience of describing the present disclosure 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 should not be construed as a limitation to the present disclosure.

[0044] As used herein, the term "comprising" and its variations are open-ended, that is, "including but not limited to"; the term "based on" means "at least partially based on"; the term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one additional embodiment"; the term "some embodiments" means "at least some embodiments"; the term "optionally" means "optional embodiments". The relevant definitions of other terms will be given in the following description. It should be noted that the concepts such as "first" and "second" mentioned in the present disclosure are only used to distinguish different devices, modules, or units, and are not used to limit the order or interdependence of the functions performed by these devices, modules, or units.

[0045] It should be noted that the modifications of "one" and "multiple" mentioned in the present disclosure are illustrative rather than restrictive. Those skilled in the art should understand that unless otherwise clearly specified in the context, it should be understood as "one or more".

[0046] As Figure 1 As shown, a mounting structure provided by the first embodiment of the present disclosure includes an inductor box 1 and a hanging plate 2; the inductor box 1 is detachably mounted on the box body 3 of the inverter, and the inductor box 1 has a hanging portion 11 and a connecting portion 12; the hanging plate 2 is mounted on the wall, the hanging portion 11 is hung on the hanging plate 2, and the connecting portion 12 is detachably connected to the hanging plate 2.

[0047] Specifically, as Figure 2As shown in the figure, the hanging plate 2 is a flat plate structure, parallel to the wall surface. The opposite edges of the hanging plate 2 can be bent to form a concave-shaped plate structure, and the inductor box 1 is placed inside the concave-shaped plate structure. The hanging part 11 and the connecting part 12 on the inductor box 1 can be respectively arranged on the opposite sides of the inductor box 1, or on the same side of the inductor box 1, or in the middle of the inductor box 1. The inductor box 1 is separately arranged from the box body 3 of the inverter and can be detachably connected to the box body 3 by screws or clamping parts, etc.

[0048] In this embodiment, as Figure 1 shown, an inductor box 1 and a hanging plate 2 are provided to form a hanging structure. Among them, the inductor box 1 is detachably installed on the box body 3 of the inverter, and the inductor box 1 can accommodate one of the core components of the inverter, namely the inductor, so that it can cooperate with the box body 3 to protect the working components of the inverter and ensure the working stability of the inverter. At the same time, the inductor box 1 only needs to accommodate the inductor, so its structural volume is relatively small compared to the box body, and the disassembly and assembly are relatively convenient. On this basis, the hanging plate 2 can be installed on the wall, and the inductor box 1 has a hanging part 11 and a connecting part 12. Among them, the hanging part 11 can be hung on the hanging plate 2, and the connecting part 12 can be detachably connected to the hanging plate 2. With this setting, the inductor box 1 can be hung on the hanging plate 2 installed on the wall through the hanging part 11 to realize the hanging of the inductor box 1, and the connecting part 12 can be connected to the hanging plate 2, so that the two-point limiting effect of the connecting part 12 and the hanging part 11 can effectively prevent the inductor box 1 from shaking after being hung on the hanging plate 2, avoid accidental touch causing the separation of the hanging part 11 and the hanging plate 2, and then ensure the hanging stability of the inductor box 1. Since the inductor box 1 is connected to the box body 3, the hanging of the inverter can be realized by using the hanging of the inductor box 1. At the same time, since the connecting part 12 is detachably connected to the hanging plate 2 and the inductor box 1 is detachably connected to the box body 3, when the hanging part 11 on the inductor box 1 is deformed or even damaged, only the connecting part 12 needs to be removed to remove the inverter from the hanging plate 2, and then the inductor box 1 is removed from the box body 3 to replace the inductor box 1. Compared with replacing the entire box body 3, the maintenance convenience after the inverter is hung can be effectively improved.

[0049] As Figure 1 shown, the inductor box 1 includes reinforcing fins 13, and at least one of the hanging part 11 and the connecting part 12 is located on the reinforcing fins 13.

[0050] Specifically, as Figure 1 and Figure 2As shown, the reinforcing fin 13 is in a plate-like structure. The reinforcing fin 13 is located outside the box body of the inductor box 1 and is integrally formed with the box body of the inductor box 1. The reinforcing fin 13 can utilize heat exchange to dissipate the heat generated when the inductor in the inductor box 1 works. At the same time, the structural strength of the reinforcing fin 13 is improved compared to the conventional heat dissipation structure. For example, the structural strength is improved by increasing the thickness or adding reinforcing ribs, etc. In this embodiment, both the hanging part 11 and the connecting part 12 can be located on the reinforcing fin 13. Of course, it is also possible that the hanging part 11 is located on the reinforcing fin 13, while the connecting part 12 is located on other structures of the inductor box 1 such as the box body, or the connecting part 12 is located on the reinforcing fin 13, while the hanging part 11 is located on other structures of the inductor box 1 such as the box body.

[0051] In this alternative embodiment, as Figure 1 and Figure 2 shown, the inductor box 1 is provided with a reinforcing fin 13, which can facilitate the heat exchange function of the reinforcing fin 13 to absorb the heat generated when the inductor in the inductor box 1 works, avoid the temperature in the inductor box 1 from being too high and affecting the working stability of the inductor, and further ensure the working stability of the inverter. On this basis, both the hanging part 11 and the connecting part 12 are located on the reinforcing fin 13. When the inductor box 1 is hung on the hanging plate 2 through the hanging part 11 and the connecting part 12 is connected to the hanging plate 2, under the action of gravity, the acting force of the hanging plate 2 on the hanging part 11 and the connecting part 12 can be transmitted to the reinforcing fin 13 through the hanging part 11 and the connecting part 12, and the structure of the reinforcing fin 13 is strengthened, which can effectively prevent the reinforcing fin 13 from deforming due to the acting force transmitted by the hanging plate 2, and further ensure the structural stability of the inductor box 1 during the hanging process, and thus ensure the hanging stability of the inverter.

[0052] As Figure 1 and Figure 2 shown, the hanging part 11 includes a hanging ear provided on the reinforcing fin 13. The hanging plate 2 is provided with a groove 21 with an upward opening, and the hanging ear is placed in the groove 21.

[0053] Specifically, as Figure 2 shown, the groove 21 is provided with an opening facing the positive direction of the Z axis. The hanging ear is in a columnar structure, and the cross-sectional shape of the columnar structure is circular or polygonal, etc. The inner contour of the groove 21 is the same as the outer contour shape of the lower half of the hanging ear. The opening edge of the groove 21 is provided with a chamfer. The hanging ear and the reinforcing fin 13 are integrally formed. The reinforcing fin 13 is perpendicular to the hanging plate 2 installed on the wall. The hanging ear can be installed on the end face of the reinforcing fin 13 facing the hanging plate 2, and the groove 21 is located on the edge of the hanging plate 2 perpendicular to the reinforcing fin 13. Of course, the hanging ear can also be installed on the side wall of the reinforcing fin 13 perpendicular to the hanging plate 2, and the edge of the hanging plate 2 is bent towards the reinforcing fin 13 to form a folded edge, and the groove 21 is provided on the folded edge so that the hanging ear can be placed in the groove 21.

[0054] In this alternative embodiment, lugs are provided on the reinforcing fins 13 as the hanging parts 11, and the hanging plate 2 is provided with a groove 21 opening upward. When the inductor box 1 is hung on the hanging plate 2, the lugs can be placed in the groove 21 from top to bottom. With this arrangement, the support and limitation of the lugs by the groove wall of the groove 21 can ensure the stability of the inductor box 1 after hanging.

[0055] Different from other embodiments of the present disclosure, in the second embodiment of the present disclosure, as Figure 3 and Figure 4 shown, the hanging part 11 includes a cut groove provided on the reinforcing fin 13. The cut groove opens downward, and the grooving direction is inclined relative to the vertical direction. The hanging plate 2 is provided with a support plate 22, and the support plate 22 is used to be inserted into the cut groove.

[0056] Specifically, as Figure 4 shown, the cut groove is arranged to open in the reverse direction of the Z axis and is inclined towards the hanging plate 2 relative to the Z axis direction; the reinforcing fin 13 is perpendicular to the hanging plate 2 mounted on the wall. The cut groove is located at one end of the reinforcing fin 13 facing the hanging plate 2. The edge of the hanging plate 2 is bent towards the reinforcing fin 13 to form a folded edge, and the folded edge is parallel to the reinforcing fin 13. The support plate 22 is arranged inside the folded edge and is integrally formed with the folded edge. The support plate 22 is parallel to the grooving direction of the cut groove. Of course, the support plate 22 can also be directly arranged on the end face of the hanging plate 2 facing the reinforcing fin 13.

[0057] In this embodiment, a cut groove is provided on the reinforcing fin 13 as the hanging part 11, and the processing of the cut groove is relatively convenient, which can effectively improve the manufacturing convenience of the inductor box 1; on this basis, a support plate 22 is provided on the hanging plate 2, and the support plate 22 can be inserted into the cut groove. At the same time, the opening direction of the cut groove is set to be downward and inclined relative to the vertical direction. With this arrangement, the support and limitation of the support plate 22 by the groove wall of the cut groove can ensure the stability of the inductor box 1 after hanging. At the same time, when the support plate 22 is just placed at the opening of the cut groove, under the action of gravity, the reinforcing fin 13 can move downward relative to the support plate 22, and the support plate 22 can directly slide into the cut groove along the groove wall of the cut groove, and the inductor box 1 is driven to move accurately in place by the horizontal component force of the interaction force between the groove wall and the support plate 22, ensuring the hanging convenience of the inverter.

[0058] Different from other embodiments of the present disclosure, in the third embodiment of the present disclosure, as Figure 5 and Figure 6As shown, the hanging structure further includes a limiting plate located between the inductor box 1 and the hanging plate 2 and spaced from the inductor box 1. The hanging plate 2 is provided with a plug-in plate 23. The plug-in plate 23 is bent towards the inductor box 1 to form a support portion 231. The support portion 231 extends upward and bends to form a plug-in portion 232. The plug-in portion 232 is placed between the limiting plate and the inductor box 1 from bottom to top. The support portion 231 abuts against the limiting plate, and the limiting plate is connected to the inductor box 1 to form at least a part of the hanging portion 11.

[0059] Specifically, the limiting plate is connected to the inductor box 1 to form at least a part of the hanging portion 11 means that the limiting plate can be used alone as the hanging portion 11 or can cooperate with other structures as the hanging portion 11. In this embodiment, as Figure 5 and Figure 6 shown, the limiting plate is the hanging portion 11. Correspondingly, the hanging plate 2 has a plug-in plate 23. In the fourth embodiment of the present disclosure, as Figure 7 shown, the limiting plate cooperates with the hanging ear to form the hanging portion 11. Correspondingly, the hanging plate 2 not only has a plug-in plate 23 but also has a groove 21. In the fifth embodiment of the present disclosure, as Figure 8 shown, the limiting plate and the cut groove cooperate to form the hanging portion 11. Correspondingly, the hanging plate 2 not only has a plug-in plate 23 but also has a support plate 22.

[0060] In this embodiment, as Figure 5 and Figure 6 shown, a limiting plate is provided between the inductor box 1 and the hanging plate 2. Both ends of the limiting plate in the horizontal direction, i.e., the Y-axis direction, are bent towards the inductor box 1 to form flanges. The flanges can be detachably connected to the inductor box 1, thereby realizing the connection between the limiting plate and the inductor box 1. On this basis, the hanging plate 2 is provided with a plug-in plate 23. The plug-in plate 23 is bent towards the inductor box 1 to form a support portion 231, and the support portion 231 extends upward and bends to form a plug-in portion 232, so that the cross-sectional shape of the plug-in plate 23 is L-shaped. Among them, the plug-in portion 232 is placed between the limiting plate and the inductor box 1 from bottom to top, that is, the vertical section of the L-shaped plug-in plate 23 is inserted between the limiting plate and the inductor box 1. At this time, as the plug-in portion 232 moves upward, the limiting plate moves downward relative to the plug-in portion 232 and then abuts against the support portion 231, that is, the horizontal section of the L-shaped plug-in plate 23 abuts against the limiting plate. With such a setting, the plug-in portion 232 of the plug-in plate 23 can be limited by the cooperation of the limiting plate and the inductor box 1 to ensure the stability of the inductor box 1 in the front-back direction after hanging. Also, the support portion 231 of the plug-in plate 23 supports the limiting plate to ensure the stability of the inductor box 1 in the up-down direction after hanging, thereby ensuring the installation stability of the inverter. At the same time, after the plug-in portion 232 is inserted between the limiting plate and the inductor box 1, it can move relative to the inductor box 1 in the left-right direction, that is, the inductor box 1 can move left and right relative to the hanging plate 2, which is convenient for fine-tuning the position of the inverter after hanging and ensuring the accurate position of the inductor box 1 when hanging.

[0061] In an embodiment of the present disclosure, as Figure 2 shown, a support platform 131 is provided on the end face of the reinforcing fin 13 facing the hanging plate 2, and the support platform 131 is used to abut against the hanging plate 2.

[0062] Specifically, as Figure 2 shown, the cross-sectional shape of the support platform 131 is a polygon, a circle, or the like; a plurality of support platforms 131 can be arranged at intervals up and down on the end face of the same reinforcing fin 13.

[0063] In this alternative embodiment, as Figure 2 shown, by providing the support platform 131 on the end face of the reinforcing fin 13 facing the hanging plate 2, when the inductor box 1 is hung on the hanging plate 2, the support platform 131 can abut against the hanging plate 2. With this arrangement, it can effectively prevent the inductor box 1 from coming into direct contact with the hanging plate 2, and thus avoid the inductor box 1 directly hitting the hanging plate 2 due to excessive force during hanging, effectively ensuring the stability and safety of the inductor box 1 during hanging.

[0064] In an embodiment of the present disclosure, as Figure 2 shown, the edge of the hanging plate 2 bends and extends towards the reinforcing fin 13 to form a collision prevention portion 24, and the collision prevention portion 24 is used to abut against the reinforcing fin 13.

[0065] Specifically, as Figure 2 shown, the collision prevention portion 24 is a hem formed by the edge of the hanging plate 2 bending and extending towards the reinforcing fin 13. Of course, it can also be a columnar structure such as a frustum or a cylinder formed by a part of the edge of the hanging plate 2 bending and extending towards the reinforcing fin 13.

[0066] In this alternative embodiment, in this alternative embodiment, as Figure 2 shown, by bending and extending the edge of the hanging plate 2 towards the reinforcing fin 13 to form the collision prevention portion 24, when the inductor box 1 is hung on the hanging plate 2, the collision prevention portion 24 can abut against the inductor box 1. With this arrangement, since the collision prevention portion 24 contacts the inductor box 1 prior to the main body of the hanging plate 2, it can effectively prevent the inductor box 1 from coming into direct contact with the main body of the hanging plate 2, and thus effectively reduce the contact area when the inductor box 1 hits the hanging plate 2 during hanging, effectively preventing the inductor box 1 from being deformed over a large area due to the impact, and effectively ensuring the stability of the inductor box 1 during hanging.

[0067] In an embodiment of the present disclosure, as Figure 1 and Figure 2 shown, the hanging plate 2 is provided with a fixing hole 25 for a fixing member to pass through for fixing connection with a wall body. When the collision prevention portion 24 abuts against the reinforcing fin 13, there is a gap between the fixing member and the reinforcing fin 13.

[0068] Specifically, as Figure 2As shown, the fixing hole 25 is a threaded hole, and the fixing member is a screw. The fixing hole 25 can also be a slotted hole to facilitate fine adjustment of the position of the hanging plate 2.

[0069] In this alternative embodiment, as Figure 1 and Figure 2 shown, to ensure the installation stability of the hanging plate 2 on the wall, a fixing hole 25 is provided on the hanging plate 2, and the fixing hole 25 can be penetrated by a fixing member for the fixing member to be fixedly connected to the wall. This setting can effectively ensure the installation stability of the hanging plate 2 on the wall, and further ensure the hanging stability of the inverter; on this basis, after the inductor box 1 is hung, the anti-collision portion 24 on the hanging plate 2 abuts against the strengthening fin 13 on the inductor box 1. At this time, there is a gap between the fixing member and the strengthening fin 13. This setting can effectively prevent the inductor box 1 from colliding with the fixing member when it is hung on the hanging plate 2, and further ensure the stability of the inductor box 1 during hanging.

[0070] In the embodiment of the present disclosure, as Figure 2 shown, the inductor box 1 further includes a first heat dissipation fin 14. There are two strengthening fins 13, and they are respectively located on opposite sides of the first heat dissipation fin 14 in the horizontal direction.

[0071] Specifically, as Figure 2 shown, the horizontal direction is parallel to the XY plane, specifically the Y-axis direction; the first heat dissipation fin 14 can be a fin group formed by arranging multiple fins at intervals, or it can be a single fin; the first heat dissipation fin 14 is a plate-like structure. The first heat dissipation fin 14 is located outside the box body of the inductor box 1 and is integrally formed with the box body of the inductor box 1. The first heat dissipation fin 14 can dissipate the heat generated by the inductor during operation in the inductor box 1 through heat exchange.

[0072] In this alternative embodiment, as Figure 2 shown, the inductor box 1 is also provided with a first heat dissipation fin 14. This setting can further improve the heat dissipation performance of the inductor box 1, and further ensure the working stability of the inductor in the inductor box 1; on this basis, the strengthening fins 13 are set to two, and the two strengthening fins 13 are respectively located on both sides of the first heat dissipation fin 14 in the horizontal direction. After the inductor box 1 is hung on the hanging plate 2, the strengthening fins 13 on both sides of the first heat dissipation fin 14 can abut against the hanging plate 2 through the hanging portion 11 and / or the connecting portion 12, so as to realize the symmetrical support of the hanging plate 2 for the inductor box 1, and effectively ensure the hanging stability of the inductor box 1.

[0073] Different from the above embodiment, in the sixth embodiment of the present disclosure, as Figure 9 shown, the inductor box 1 further includes a second heat dissipation fin 15, and the second heat dissipation fin 15 is located on the side of the strengthening fin 13 facing away from the first heat dissipation fin 14.

[0074] Specifically, as Figure 9 shown, the second heat dissipation fin 15 can be a fin group formed by arranging a plurality of fins at intervals, or can be a single fin; the second heat dissipation fin 15 is in a plate-like structure, the second heat dissipation fin 15 is located outside the box body of the inductor box 1, and is integrally formed with the box body of the inductor box 1, and the second heat dissipation fin 15 can utilize heat exchange to dissipate the heat generated when the inductor in the inductor box 1 works.

[0075] In this embodiment, as Figure 9 shown, while ensuring the stable hanging installation of the inductor box 1, a second heat dissipation fin 15 is provided on the side of the strengthening fin 13 away from the first heat dissipation fin 14. With this setting, through the cooperation of the strengthening fin 13, the first heat dissipation fin 14 and the second heat dissipation fin 15, the heat dissipation effect of the inductor box 1 can be further effectively enhanced, thereby further ensuring the working stability of the inductor in the inductor box 1.

[0076] Different from the above embodiment, in the seventh embodiment of the present disclosure, as Figure 10 shown, there are a plurality of first heat dissipation fins 14, and the plurality of first heat dissipation fins 14 are distributed at intervals in the vertical direction; there are a plurality of hanging plates 2, and the plurality of hanging plates 2 are distributed at intervals in the vertical direction, and are respectively connected to the strengthening fins 13 on both sides of the first heat dissipation fin 14 in one-to-one correspondence.

[0077] Specifically, as Figure 10 shown, there are two first heat dissipation fins 14, and the vertical direction is the Z-axis direction; of course, the plurality of first heat dissipation fins 14 can be distributed on one inductor box 1, or can be respectively provided on a plurality of inductor boxes 1.

[0078] In this embodiment, as Figure 10 shown, in order to further enhance the heat dissipation performance of the inductor box 1, the first heat dissipation fins 14 are provided in a plurality, and the plurality of first heat dissipation fins 14 are distributed at intervals in the vertical direction, so as to further improve the heat dissipation performance of the inductor box 1 and ensure the working stability of the inductor; on this basis, the hanging plates 2 are also provided in a plurality, and the plurality of hanging plates 2 are also distributed at intervals in the vertical direction, and can be respectively connected to the strengthening fins 13 on both sides of the first heat dissipation fin 14 in one-to-one correspondence, so that the hanging stability of the inductor box 1 can be effectively ensured through the connection between the inductor box 1 and the plurality of hanging plates 2.

[0079] Different from the above embodiment, in the eighth embodiment of the present disclosure, as Figure 11 shown, only one hanging plate 2 can be provided, and the hanging plate 2 extends in the vertical direction to form a plate-like structure that can cover a plurality of first heat dissipation fins 14, so that the hanging plate 2 can be connected to the strengthening fins 13 on both sides of the plurality of first heat dissipation fins 14 to realize the hanging installation of the inductor box 1.

[0080] Different from the above embodiment, in the ninth embodiment of the present disclosure, asFigure 12 As shown, there are multiple first heat dissipation fins 14, and the multiple first heat dissipation fins 14 are spaced apart in the horizontal direction; the hanging plate 2 extends in the horizontal direction.

[0081] Specifically, as Figure 12 shown, the horizontal direction is the Z-axis direction, and the number of the first heat dissipation fins 14 is two; of course, the multiple first heat dissipation fins 14 can be distributed on one inductor box 1, or can be respectively arranged on multiple inductor boxes 1.

[0082] In this embodiment, in order to further enhance the heat dissipation performance of the inductor box 1, the first heat dissipation fins 14 are provided as multiple, and the multiple first heat dissipation fins 14 are spaced apart in the horizontal direction, so as to further improve the heat dissipation performance of the inductor box 1 and ensure the working stability of the inductor; while only one hanging plate 2 is provided, and the hanging plate 2 extends in the horizontal direction to form a plate-like structure that can cover the multiple first heat dissipation fins 14, so that the hanging plate 2 can be connected to the reinforcing fins 13 on both sides of the multiple first heat dissipation fins 14 to realize the hanging installation of the inductor box 1.

[0083] Different from the above embodiment, in the ninth embodiment of the present disclosure, as Figure 13 shown, of course, multiple hanging plates 2 can also be provided, and the multiple hanging plates 2 are spaced apart in the horizontal direction and are respectively connected to the reinforcing fins 13 on both sides of the first heat dissipation fins 14 one by one, so that the hanging stability of the inductor box 1 can be effectively ensured through the connection of the inductor box 1 and the multiple hanging plates 2.

[0084] In the embodiments of the present disclosure, as Figure 1 、 Figure 3 or Figure 5 shown, the connecting portion 12 is located below the hanging portion 11.

[0085] In this embodiment, in order to facilitate the connection of the connecting portion 12 after the inductor box 1 is hung on the hanging plate 2 through the hanging portion 11, as Figure 1 or Figure 3 or Figure 5 shown, the connecting portion 12 is arranged below the hanging portion 11, which can not only facilitate the hanging plate 2 to support the inductor box 1 upward through the hanging portion 11, but also reduce the height when the connecting portion 12 and the hanging plate 2 are detachably connected, and improve the convenience when the connecting portion 12 and the hanging plate 2 are detachably connected.

[0086] In the embodiments of the present disclosure, as Figure 2 、 Figure 4 or Figure 6 shown, the connecting portion 12 includes a connecting piece 122 and a connecting hole 121 located on the inductor box 1, the hanging plate 2 is provided with a limiting opening 26, the connecting hole 121 corresponds to the limiting opening 26, and the connecting piece 122 is used to pass through the connecting hole 121 and connect with the limiting opening 26.

[0087] Specifically, as Figure 2 or Figure 4 or Figure 6 shown, the connection hole 121 can be a threaded hole or a fitting hole. Correspondingly, the connecting member 122 can be a screw that mates with the threaded hole or a fitting member that mates with the fitting hole, such as a wedge block, etc.; the limiting port 26 can be a through hole or a notch located at the edge of the hanging plate 2.

[0088] In this embodiment, as Figure 2 or Figure 4 or Figure 6 shown, the connecting member 122 and the connection hole 121 are provided to form a connection portion 12. Among them, the connection hole 121 is located on the inductor box 1, and the hanging plate 2 is provided with a limiting port 26. When the inductor box 1 is hung on the hanging plate 2, the connection hole 121 can correspond to the limiting port 26. In this way, the connecting member 122 can pass through the connection hole 121 and be connected to the limiting port 26, so as to ensure the hanging stability of the inductor box 1 through the mutual limitation between the connecting member 122 and the limiting port 26, and avoid the inverter from falling due to accidental touch.

[0089] As Figure 14 shown, a first embodiment of the present disclosure further provides an inverter, which includes a box body 3 and the above-mentioned hanging structure.

[0090] The beneficial effects of the inverter in this embodiment compared with the prior art are the same as those of the above-mentioned hanging structure, and will not be elaborated here.

[0091] As Figure 14 shown, the inverter further includes a radiator 4. The radiator 4 and the inductor box 1 of the hanging structure are installed on the same outer wall of the box body 3, and the height of the radiator 4 relative to the outer wall is less than or equal to the height of the inductor box 1 relative to the outer wall.

[0092] In this optional embodiment, as Figure 14As shown, in order to ensure the heat dissipation of the components inside the box body 3 of the inverter, a radiator 4 is also installed on the box body 3. The heat exchange of the radiator 4 can ensure that the internal temperature of the box body 3 is maintained at the appropriate working temperature of the components, thereby ensuring the working stability of the inverter. On this basis, the radiator 4 and the inductance box 1 of the hanging structure are installed on the same outer wall of the box body 3. With this arrangement, after the inductance box 1 is hung on the hanging plate 2, the radiator 4 is located between the box body 3 and the wall, and the box body 3 can cover the radiator 4 to avoid accidental touch and ensure the working stability of the radiator 4. At the same time, the height of the radiator 4 relative to the outer wall is less than or equal to the height of the inductance box 1 relative to the outer wall. With this arrangement, when the inductance box 1 is hung on the hanging plate 2, due to the limitation of the hanging plate 2, the inductance box 1 will not contact the wall. Correspondingly, the radiator 4 with a height less than or equal to that of the inductance box 1 relative to the outer wall of the box body 3 will surely not contact the wall, thus avoiding the situation where the radiator 4 collides with the wall when the inductance box 1 is hung, which affects the working stability of the radiator 4, or the radiator 4 fits with the wall, which affects the heat dissipation of the radiator 4.

[0093] An embodiment of the present disclosure further provides a power system, including the above-mentioned hanging structure, or including the above-mentioned inverter.

[0094] The beneficial effects of the power system of this embodiment compared with the prior art are the same as those of the above-mentioned hanging structure or inverter, and will not be elaborated here.

[0095] Although the present disclosure is disclosed as above, the protection scope of the present disclosure is not limited thereto. Those skilled in the art can make various changes and modifications without departing from the spirit and scope of the present disclosure, and these changes and modifications will all fall within the protection scope of the present disclosure.

Claims

1. A hanging structure, characterized in that, The invention comprises an inductor box (1) and a hanging plate (2); the inductor box (1) is detachably mounted on a box body (3) of an inverter, and the inductor box (1) comprises a hanging portion (11) and a connecting portion (12); the hanging plate (2) is mounted on a wall, the hanging portion (11) is hung on the hanging plate (2), and the connecting portion (12) is detachably connected to the hanging plate (2).

2. The hanging structure according to claim 1, characterized in that, The inductor box (1) comprises a reinforcing fin (13), and at least one of the hanging portion (11) and the connecting portion (12) is located on the reinforcing fin (13).

3. The hanging structure according to claim 2, characterized in that: The hanging portion (11) comprises a hanging ear provided on the reinforcing fin (13); the hanging plate (2) is provided with a groove (21) opening upward, and the hanging ear is placed in the groove (21).

4. The hanging structure according to claim 2, wherein The hanging portion (11) includes a groove provided on the reinforcing fin (13), the groove opening is downward, and the groove direction is inclined relative to the vertical direction, and the hanging plate (2) is provided with a support plate (22), and the support plate (22) is used to be inserted into the groove.

5. The hanging structure according to any one of claims 3 or 4, characterized in that The invention also includes a limiting plate, the limiting plate is located between the inductance box (1) and the hanging plate (2), and is spaced apart from the inductance box (1); the hanging plate (2) is provided with a plug-in plate (23); the plug-in plate (23) is bent toward the inductance box (1) to form a support portion (231); the support portion (231) is bent upward and extended to form a plug-in portion (232); the plug-in portion (232) is placed from bottom to top between the limiting plate and the inductance box (1); the support portion (231) is against the limiting plate; the limiting plate is connected to the inductance box (1) to form at least a portion of the hanging portion (11).

6. The hanging structure according to claim 2, wherein, The end surface of the reinforcing fin (13) facing the hanging plate (2) is provided with a support platform (131), and the support platform (131) is used to abut against the hanging plate (2).

7. The hanging structure according to claim 2, characterized in that: The edge of the hanging plate (2) is bent and extended toward the reinforcing fin (13) to form an anti-collision portion (24), and the anti-collision portion (24) is used to abut against the reinforcing fin (13).

8. The hanging structure according to claim 7, characterized in that, The hanging plate (2) is provided with a fixing hole (25), and the fixing hole (25) is used for a fixing member to penetrate so as to be fixedly connected to the wall. When the anti-collision portion (24) abuts against the reinforcing fin (13), a gap exists between the fixing member and the reinforcing fin (13).

9. The hanging structure according to any one of claims 2 to 4 and 6 to 8, characterized in that The inductor box (1) further includes a first heat dissipation fin (14), and the reinforcement fins (13) are provided in two pieces and are respectively located on opposite sides of the first heat dissipation fin (14) in the horizontal direction.

10. The hanging structure according to claim 9, wherein, The inductor box (1) further comprises a second heat dissipation fin (15), wherein the second heat dissipation fin (15) is located on a side of the reinforcing fin (13) facing away from the first heat dissipation fin (14).

11. The hanging structure according to claim 9, wherein, There are a plurality of the first heat dissipation fins (14), and the plurality of the first heat dissipation fins (14) are spaced apart and distributed in a vertical direction; There are a plurality of the hanging plates (2), which are spaced apart along the vertical direction and are respectively connected one-to-one with the reinforcing fins (13) on both sides of the first heat dissipation fins (14), or the hanging plates (2) extend along the vertical direction.

12. The hanging structure according to claim 9, characterized in that: There are a plurality of the first heat dissipation fins (14), and the plurality of the first heat dissipation fins (14) are distributed at intervals along the horizontal direction; There are multiple hanging plates (2), and the multiple hanging plates (2) are spaced apart along the horizontal direction and are respectively connected one-to-one with the reinforcing fins (13) on both sides of the first heat dissipation fins (14); or, the hanging plates (2) extend along the horizontal direction.

13. The hanging structure according to any one of claims 1 to 4, 6 to 8, characterized in that, The connecting portion (12) is located below the hanging portion (11).

14. The hanging structure according to claim 13, wherein, The connecting portion (12) comprises a connecting piece (122) and a connecting hole (121) located on the inductance box (1); the hanging plate (2) is provided with a limiting opening (26); the connecting hole (121) corresponds to the limiting opening (26); and the connecting piece (122) is used to pass through the connecting hole (121) and be connected to the limiting opening (26).

15. An inverter, characterized in that, It comprises a box body (3) and a hanging structure according to any one of claims 1 to 14.

16. The inverter according to claim 15, characterized in that, It also includes a radiator (4), wherein the radiator (4) and the inductance box (1) of the hanging structure are mounted on the same outer wall of the box body (3), and the height of the radiator (4) relative to the outer wall is less than or equal to the height of the inductance box (1) relative to the outer wall.

17. A power system, characterized in that, It comprises the mounting structure according to any one of claims 1 to 14, or comprises the inverter according to claim 15 or 16.