Side trim panel and inverter

The inverter side panel separates strong and weak electrical lines with distinct outlets, reducing interference and improving signal reliability through magnetic field direction differentiation and dust protection.

CN223109904UActive Publication Date: 2025-07-15BEIJING HEKANG NEW ENERGY FREQUENCY CONVERSION TECH CO LTD
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Patent Information

Application Number
CN202422265643.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-14
Publication Date
2025-07-15
Estimated Expiration
2034-09-14

AI Technical Summary

Technical Problem

There is only one outlet on the side trim of the existing inverter, which causes strong and weak conductors to interfere with each other and affect the transmission of control signals.

Method used

The first outlet and the second outlet are provided on the side trim plate, which are used for high-voltage and low-voltage wires, respectively. A bent plate is formed on the substrate to realize partitioning of strong and weak electric wires, and a dust-proof structure is provided at the first outlet to prevent dust from entering.

Benefits of technology

It effectively avoids interference between strong and weak conductors, reduces the mutual influence of magnetic fields, and prevents dust from entering the inverter through dust-proof structure, improving the reliability of signal transmission and equipment safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a side decoration plate and an inverter, relates to the technical field of inverters, and aims to solve the technical problem that strong current and weak current interfere with each other due to the fact that only one wire outlet is formed in a shell of an inverter in the related technology. The side decoration plate is used for the inverter, the inverter comprises a first wire and a second wire, in the working state of the inverter, the voltage carried by the first wire is larger than the voltage carried by the second wire, the side decoration plate comprises a base plate, a first wire outlet is formed in the base plate, and the first wire passes through the first wire outlet; and the bending plate is connected to one side end of the substrate, a second wire outlet is formed in the bending plate, and a second wire can pass through the second wire outlet. According to the utility model, the first wire outlet is arranged on the substrate, and the second wire outlet is arranged on the bending plate, so that strong and weak wire partition of the first wire and the second wire is realized, and interference of the first wire to signals of the second wire is avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of inverters, and more specifically, to a side trim panel and an inverter. Background Art

[0002] The function of an inverter is to convert between direct current and alternating current. The input direct current / alternating current wires and the output alternating current / direct current wires usually have a relatively high voltage, several hundred volts or even several thousand volts. However, the transmission line of the control signal for controlling the operation of the inverter is usually only a few volts. In the common inverters on the market at present, there is only one wire outlet on the side plate. All the strong and weak wires cannot be partitioned and all extend through the same wire outlet, resulting in interference between the strong electricity and the weak electricity, which has a certain interference on the transmission of the control signal. Content of the Utility Model

[0003] The utility model aims to solve or improve the technical problem that there is only one wire outlet on the side trim panel in the prior art, and there is interference between the strong electricity and the weak electricity.

[0004] In the first aspect of the utility model, a side trim panel is provided.

[0005] In the second aspect of the utility model, an inverter is provided.

[0006] The side trim panel provided by the utility model is used for an inverter. The inverter includes a first wire and a second wire. In the working state of the inverter, the voltage carried by the first wire is greater than the voltage carried by the second wire. The side trim panel includes: a substrate, on which a first wire outlet is provided for the first wire to pass through; a bending plate, connected to one side end of the substrate, and a second wire outlet is provided on the bending plate for the second wire to pass through.

[0007] The side trim panel provided by the utility model is applied to an inverter. The side trim panel includes a substrate and a bending plate. A first wire outlet is provided on the substrate for the first wire to pass through. The bending plate is connected to one side end of the substrate and is formed by bending one end of the substrate. A second wire outlet is provided on the bending plate for the second wire to pass through. The utility model provides a first wire outlet on the substrate and a second wire outlet on the bending plate to realize the partitioning of the strong and weak wires of the first wire and the second wire, avoiding the interference of the first wire on the signal of the second wire. In addition, since the first wire outlet and the second wire outlet are not on the same plane, the magnetic field directions generated by the two wires are no longer the same, which can further reduce the mutual interference between the two wires. On the other hand, since the bending plate is formed by bending one end of the substrate, the processing process is more convenient.

[0008] In some technical solutions, optionally, the first wire is a high-voltage wire, which can be a power input wire and a power output wire. The second wire is a low-voltage wire, which can be a signal wire for controlling the operation of the inverter.

[0009] In some technical solutions, optionally, the side trim panel further includes a dust-proof structure, which is disposed at the first wire outlet for preventing dust from entering the inverter, and the dust-proof structure can be penetrated by the first wire.

[0010] In this technical solution, the dust-proof structure is disposed at the first wire outlet and can be penetrated by the first wire, so that the first wire outlet can be dust-proofed by the dust-proof structure, thereby preventing dust from entering the interior of the inverter through the first wire outlet.

[0011] In some technical solutions, optionally, the dust-proof structure includes a flexible shutter.

[0012] In this technical solution, the flexible shutter can well adjust the opening, so that the first wire with different thicknesses can pass through well.

[0013] In some technical solutions, optionally, the dust-proof structure includes a plurality of rubber strips, and any two adjacent rubber strips are in contact. The first wire can squeeze the rubber strips to pass through the dust-proof structure.

[0014] In this technical solution, any two adjacent rubber strips are in close contact, so that all the rubber strips can form a complete sealing surface to seal the first wire outlet. This sealing structure design is simple and has a good sealing effect. In addition, since the rubber strips have good deformation performance, they will not affect the passing of the first wire.

[0015] In some technical solutions, optionally, the first wire outlet is disposed near the top end of the substrate, and the second wire outlet is disposed near the bottom end of the bending plate.

[0016] In this technical solution, the first wire outlet is disposed near the top end of the side trim panel, and the second wire outlet is disposed near the bottom end of the side trim panel. This solution can keep the first wire outlet and the second wire outlet away from each other, thereby preventing the high-voltage wire at the first wire outlet from affecting the low-voltage wire at the second wire outlet.

[0017] In some technical solutions, optionally, the side trim panel further includes a third wire outlet, which is disposed on the bending plate, and along the height direction of the inverter, the highest point of the first wire outlet is higher than the highest point of the third wire outlet, and the lowest point of the first wire outlet is lower than the lowest point of the third wire outlet.

[0018] In this technical solution, a third wire outlet is also provided on the bending plate, and in the height direction, the third wire outlet is not much different from the first wire outlet. In this way, according to different requirements, the high-voltage wire can also be sent out through the third wire outlet, thereby adjusting the wire outlet direction.

[0019] In some technical solutions, optionally, the included angle between the bending plate and the base plate is greater than or equal to 80° and less than or equal to 100°. For example, it can be 90°.

[0020] In some technical solutions, optionally, the side trim panel further includes a plug, which covers the third wire outlet.

[0021] In this technical solution, the side trim panel further includes a plug, which covers the third wire outlet. In this way, when the first wire does not pass through the third wire outlet, the third wire outlet can be covered by the plug, thereby preventing dust from entering the inverter through the third wire outlet.

[0022] In some technical solutions, optionally, the side trim panel further includes a plurality of heat dissipation holes, which are provided on the base plate. Along the height direction of the inverter, the plurality of heat dissipation holes are located below the first wire outlet.

[0023] In this technical solution, the side trim panel further includes a plurality of heat dissipation holes, which are provided on the base plate. In this way, the heat inside the inverter can be discharged through the heat dissipation holes, improving safety. In addition, since the heating elements inside the inverter are basically arranged at the bottom of the inverter, the heat dissipation holes are located below the first wire outlet, which is more conducive to improving the heat dissipation effect.

[0024] In some technical solutions, optionally, along the height direction of the inverter, there are multiple rows of heat dissipation holes. For example, 2 to 4 rows, and the number of heat dissipation holes in each row is 10 to 15, for example 12. Optionally, the heat dissipation holes are strip-shaped heat dissipation holes.

[0025] In some technical solutions, optionally, the side trim panel further includes a ventilation and heat dissipation grid, which is provided on the base plate. Along the height direction of the inverter, the ventilation and heat dissipation grid is located below the first wire outlet.

[0026] In this technical solution, compared with the heat dissipation holes, the ventilation and heat dissipation grid is more conducive to assembly for heat dissipation.

[0027] In some technical solutions, optionally, the voltage when the first wire conducts current is greater than 36V, and the voltage when the second wire conducts current is less than or equal to 36V.

[0028] In this technical solution, the voltage of the first wire when conducting current is greater than 36V. That is, 36V is the safe voltage for the human body, and a voltage greater than 36V is regarded as a high-voltage wire, namely the first wire. For example, the power input wire of a photovoltaic power source or the power output wire after being converted by an inverter, etc. Optionally, the voltage of the first wire when conducting current is greater than 48V. And a voltage less than or equal to 36V is a low-voltage wire, namely the second wire. For example, the signal transmission wire for controlling the operation of the inverter, etc.

[0029] In some technical solutions, optionally, the first outlet is a rectangular outlet.

[0030] In this technical solution, the first outlet is a rectangular outlet, which is more conducive to arranging the dust-proof structure.

[0031] In some technical solutions, optionally, the second outlet is a U-shaped outlet.

[0032] In some technical solutions, optionally, the third outlet is a U-shaped outlet.

[0033] In some technical solutions, optionally, the cross-sectional area of the first outlet is larger than that of the second outlet.

[0034] In this technical solution, since the first wire is usually thicker in thickness, while the second wire is usually thinner in thickness relative to the first wire, therefore, it is designed that the cross-sectional area of the first outlet is larger than that of the second outlet, which is more conducive to the passage of the first wire.

[0035] In some technical solutions, optionally, the substrate and the bending plate are an integral L-shaped plate, which can make the transmission directions of the first wire and the second wire perpendicular, thereby reducing the influence between the first wire and the second wire.

[0036] In some technical solutions, optionally, both the substrate and the bending plate are metal plates, and the metal plates have good support strength and impact resistance, thus avoiding damage.

[0037] The second aspect technical solution of the present utility model provides an inverter, including: a housing assembly, and the housing assembly includes a side decorative plate according to any one of the technical solutions in the first aspect of the present utility model. Since the inverter provided by the present utility model includes the side decorative plate according to any one of the technical solutions in the first aspect of the present utility model, it has all the beneficial effects of the side decorative plate according to any one of the technical solutions in the first aspect of the present utility model.

[0038] In some technical solutions, optionally, the inverter further includes a current conversion device, which is arranged inside the housing assembly. The current conversion device includes a current access port and a current output port, and both the current access port and the current output port are arranged corresponding to the first outlet.

[0039] In this technical solution, the current inlet and the current outlet are both arranged corresponding to the first outlet, that is, the current inlet and the current outlet both face the first outlet. In this way, since the high-voltage wire is usually thick, it can directly extend out from the first outlet without bending.

[0040] The additional aspects and advantages of the present utility model will become apparent in the following description part, or will be understood through the practice of the present utility model. Brief Description of the Drawings

[0041] The above and / or additional aspects and advantages of the embodiments of the present utility model will become apparent and be easily understood from the description of the embodiments in conjunction with the following drawings, where:

[0042] Figure 1 FIG. 1 shows one of the structural schematic diagrams of the side trim panel provided by the embodiment of the present utility model;

[0043] Figure 2 FIG. 2 shows another structural schematic diagram of the side trim panel provided by the embodiment of the present utility model;

[0044] Figure 3 FIG. 3 shows one of the structural schematic diagrams of the inverter provided by the embodiment of the present utility model;

[0045] Figure 4 FIG. 4 shows another structural schematic diagram of the side trim panel provided by the embodiment of the present utility model;

[0046] Figure 5 FIG. 5 shows another structural schematic diagram of the inverter provided by the embodiment of the present utility model;

[0047] Figure 6 FIG. 6 shows the structural schematic diagram of the substrate of the inverter provided by the embodiment of the present utility model;

[0048] Figure 7 FIG. 7 shows another structural schematic diagram of the side trim panel provided by the embodiment of the present utility model.

[0049] Wherein, Figures 1 to 7 the corresponding relationship between the reference numerals in the drawings and the component names is:

[0050] 1 Inverter, 12 housing assembly, 122 side trim panel, 1221 base plate, 12211 connecting plate, 1222 first wire outlet, 12232 first wire, 12234 second wire, 1224 bending plate, 12242 fixing plate, 12244 bolt, 1225 second wire outlet, 1226 third wire outlet, 134 high-voltage wire outlet area, 136 low-voltage wire outlet area, 1227 plugging, 12282 heat dissipation holes, 12284 ventilation and heat dissipation grid, 1229 dust-proof structure, 12292 rubber strip, 12294 flexible louvers, 124 top plate, 14 current conversion device, 152 current inlet, 154 current outlet. Detailed implementation manners

[0051] In order to more clearly understand the above aspects, features and advantages of the embodiments according to the present invention, the embodiments according to the present invention will be further described in detail below with reference to the drawings and specific implementation manners. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments may be combined with each other.

[0052] In the following description, many specific details are set forth in order to fully understand the embodiments according to the present invention. However, the embodiments according to the present invention may also be implemented in other ways different from those described herein. Therefore, the protection scope of the embodiments according to the present invention is not limited by the specific embodiments disclosed below.

[0053] As Figure 1 、 Figure 2 and Figure 3 shown, the side trim panel 122 provided by the present invention is used for the inverter 1. The inverter 1 includes a first wire 12232 and a second wire 12234. In the working state of the inverter 1, the voltage carried by the first wire 12232 is greater than the voltage carried by the second wire 12234. The side trim panel 122 includes a base plate 1221, and a first wire outlet 1222 is provided on the base plate 1221. The first wire outlet 1222 allows the first wire 12232 to pass through; a bending plate 1224 is connected to one side end of the base plate 1221, and a second wire outlet 1225 is provided on the bending plate 1224. The second wire outlet 1225 is used for the second wire 12234 to pass through.

[0054] The side trim plate 122 provided by the present utility model is applied to the inverter 1. The side trim plate 122 includes a base plate 1221 and a bending plate 1224. A first wire outlet 1222 is provided on the base plate 1221, and the first wire outlet 1222 allows the first wire 12232 to pass through. The bending plate 1224 is connected to one side end of the base plate 1221 and is formed by bending one end of the base plate 1221. A second wire outlet 1225 is provided on the bending plate 1224, and the second wire outlet 1225 is used for the second wire 12234 to pass through. In the present utility model, the first wire outlet 1222 is provided on the base plate 1221, and the second wire outlet 1225 is provided on the bending plate 1224, realizing the partition of strong and weak wires for the first wire 12232 and the second wire 12234, and avoiding the interference of the first wire 12232 on the signal of the second wire 12234. In addition, since the first wire outlet 1222 and the second wire outlet 1225 are not on the same plane, the magnetic field directions generated by the two wires are no longer the same, which can further reduce the mutual interference between the two wires. On the other hand, since the bending plate 1224 is formed by bending one end of the base plate 1221, the processing process is more convenient.

[0055] In some technical solutions, optionally, the first wire 12232 is a high-voltage wire and can be a power input wire and a power output wire. And the second wire 12234 is a low-voltage wire and can be a signal wire for controlling the operation of the inverter 1.

[0056] In some technical solutions, optionally, as Figure 1 shown, the side trim plate 122 further includes a dust-proof structure 1229, which is arranged at the first wire outlet 1222 and is used to prevent dust from entering the inverter 1, and the dust-proof structure 1229 can be penetrated by the first wire 12232.

[0057] In this technical solution, the dust-proof structure 1229 is arranged at the first wire outlet 1222, and the dust-proof structure 1229 can be penetrated by the first wire 12232, so that the first wire outlet 1222 can be dust-proofed by the dust-proof structure 1229, thereby preventing dust from entering the interior of the inverter 1 through the first wire outlet 1222.

[0058] In some technical solutions, optionally, as Figure 6 shown, the dust-proof structure 1229 includes a flexible louver 12294.

[0059] In this technical solution, the flexible louver 12294 can well adjust the opening, so that it can well pass through the first wire 12232 with different thicknesses.

[0060] In some technical solutions, optionally, as Figure 1As shown, the dust-proof structure 1229 includes a plurality of rubber strips 12292. Any two adjacent rubber strips 12292 are in contact, and the first wire 12232 can squeeze the rubber strips 12292 to pass through the dust-proof structure 1229.

[0061] In this technical solution, any two adjacent rubber strips 12292 are in close contact, so that all the rubber strips 12292 can form a complete sealing surface, thereby sealing the first wire outlet 1222. This sealing structure design is simple and has a good sealing effect. In addition, since the rubber strip 12292 has good deformation performance, it will not affect the passing of the first wire 12232.

[0062] In some technical solutions, optionally, as Figure 1 shown, the first wire outlet 1222 is arranged near the top end of the substrate 1221, and the second wire outlet 1225 is arranged near the bottom end of the bending plate 1224.

[0063] In this technical solution, along the height direction of the inverter 1, the first wire outlet 1222 is arranged near the top end of the side trim plate 122, and the second wire outlet 1225 is arranged near the bottom end of the side trim plate 122. This solution can make the first wire outlet 1222 and the second wire outlet 1225 away from each other, thus avoiding the influence of the high-voltage wire at the first wire outlet 1222 on the low-voltage wire at the second wire outlet 1225.

[0064] In some technical solutions, optionally, as Figure 1 shown, the side trim plate 122 further includes a third wire outlet 1226, which is arranged on the bending plate 1224. Along the height direction of the inverter 1, the highest point of the first wire outlet 1222 is higher than the highest point of the third wire outlet 1226, and the lowest point of the first wire outlet 1222 is lower than the lowest point of the third wire outlet 1226.

[0065] In this technical solution, a third wire outlet 1226 is also arranged on the bending plate 1224, and in the height direction, the third wire outlet 1226 is not much different from the first wire outlet 1222. In this way, according to different requirements, the high-voltage wire can also be sent out through the third wire outlet 1226, thereby adjusting the wire outlet direction.

[0066] In some technical solutions, optionally, the angle between the bending plate 1224 and the substrate 1221 is greater than or equal to 80° and less than or equal to 100°. For example, it can be 90°.

[0067] In some technical solutions, optionally, as Figure 2 shown, the side trim plate 122 further includes a plug 1227, which covers the third wire outlet 1226.

[0068] In this technical solution, the side trim plate 122 further includes a plug 1227 that covers the third wire outlet 1226. In this way, when the first wire 12232 does not pass through the third wire outlet 1226, the third wire outlet 1226 can be covered by the plug 1227, thereby preventing dust from entering the inverter 1 through the third wire outlet 1226.

[0069] In some technical solutions, optionally, as Figure 1 shown, the side trim plate 122 further includes a plurality of heat dissipation holes 12282 provided on the substrate 1221. Along the height direction of the inverter 1, the plurality of heat dissipation holes 12282 are located below the first wire outlet 1222.

[0070] In this technical solution, the side trim plate 122 further includes a plurality of heat dissipation holes 12282 provided on the substrate 1221, so that the heat inside the inverter 1 can be discharged through the heat dissipation holes 12282, improving safety. In addition, since the heating elements inside the inverter 1 are basically arranged at the bottom of the inverter 1, the heat dissipation holes 12282 are located below the first wire outlet 1222, which is more conducive to improving the heat dissipation effect.

[0071] In some technical solutions, optionally, along the height direction of the inverter 1, there are multiple rows of heat dissipation holes 12282. For example, there are 2 to 4 rows, and the number of heat dissipation holes 12282 in each row is 10 to 15, such as 12. Optionally, the heat dissipation holes 12282 are strip-shaped heat dissipation holes.

[0072] In some technical solutions, optionally, as Figure 6 shown, the side trim plate 122 further includes a ventilation and heat dissipation grid 12284 provided on the substrate 1221. Along the height direction of the inverter 1, the ventilation and heat dissipation grid 12284 is located below the first wire outlet 1222.

[0073] In this technical solution, compared with the heat dissipation holes 12282, the ventilation and heat dissipation grid 12284 is more conducive to assembly in terms of the way of heat dissipation.

[0074] In some technical solutions, optionally, the voltage when the first wire 12232 conducts current is greater than 36V, and the voltage when the second wire 12234 conducts current is less than or equal to 36V.

[0075] In this technical solution, the voltage when the first wire 12232 conducts current is greater than 36V. That is, 36V is the human body safety voltage, and a voltage greater than 36V is regarded as a high-voltage wire, that is, the first wire 12232. For example, the power input wire of the photovoltaic power supply or the power output wire after being converted by the inverter 1, etc. Optionally, the voltage when the first wire 12232 conducts current is greater than 48V. And a voltage less than or equal to 36V is a low-voltage wire, such as the signal transmission wire for controlling the operation of the inverter 1.

[0076] In some technical solutions, optionally, the first wire outlet 1222 is a rectangular wire outlet.

[0077] In this technical solution, the first wire outlet 1222 is a rectangular wire outlet, which is more conducive to arranging the dust-proof structure 1229.

[0078] In some technical solutions, optionally, the second wire outlet 1225 is a U-shaped wire outlet.

[0079] In some technical solutions, optionally, the third wire outlet 1226 is a U-shaped wire outlet.

[0080] In some technical solutions, optionally, the cross-sectional area of the first wire outlet 1222 is larger than the cross-sectional area of the second wire outlet 1225.

[0081] In this technical solution, since the first wire 12232 is usually thick, and the second wire 12234 is usually thin relative to the first wire 12232, therefore, designing the cross-sectional area of the first wire outlet 1222 to be larger than the cross-sectional area of the second wire outlet 1225 is more conducive to the passage of the first wire 12232.

[0082] In some technical solutions, optionally, the substrate 1221 and the bending plate 1224 are an integral L-shaped plate, which can make the transmission directions of the first wire 12232 and the second wire 12234 perpendicular, thereby reducing the mutual influence between the first wire 12232 and the second wire 12234.

[0083] In some technical solutions, optionally, both the substrate 1221 and the bending plate 1224 are metal plates, and the metal plates have good support strength and impact resistance, thus avoiding damage.

[0084] Such as Figure 3 、 Figure 4 and Figure 5 As shown, the second aspect of the technical solution of the present invention provides an inverter 1, including: a housing assembly 12, and the housing assembly 12 includes a side decorative plate 122 according to any one of the technical solutions of the first aspect of the present invention. Since the inverter 1 provided by the present invention includes the side decorative plate 122 according to any one of the technical solutions of the first aspect of the present invention, it has all the beneficial effects of the side decorative plate 122 according to any one of the technical solutions of the first aspect of the present invention.

[0085] In some technical solutions, optionally, as Figure 3 shown, the housing assembly 12 further includes a top plate 124, a bottom plate opposite to the top plate 124, a back plate opposite to the side decorative plate 122, and is formed by two oppositely arranged side plates.

[0086] In some technical solutions, optionally, as Figure 4 and Figure 7 shown, where Figure 4 is Figure 1 a view in the top-down state. A fixing plate 12242 is further provided on the bending plate 1224. Connection holes are provided on the fixing plate 12242. During the assembly of the side trim panel 122, the bolt 12244 can pass through the connection holes on the fixing plate 12242 and then be assembled with the assembly plate on the inverter 1, so as to realize the assembly of the side trim panel 122 of the present utility model. In addition, the substrate 1221 of the present utility model includes a connecting plate 12211, which is arranged at one end close to the bending plate 1224, that is, the bending plate 1224 is connected to the substrate 1221 through the connecting plate 12211. Avoidance through holes are provided on the connecting plate 12211. In this way, when assembling the side trim panel 122, a screwdriver can pass through the avoidance through holes on the connecting plate 12211 and then rotate the bolt 12244, so as to realize the assembly of the side trim panel 122.

[0087] In some technical solutions, optionally, as Figure 5 shown, the inverter 1 further includes a current conversion device 14, which is arranged inside the housing assembly 12. The current conversion device 14 includes a current inlet 152 and a current outlet 154. Both the current inlet 152 and the current outlet 154 are arranged corresponding to the first wire outlet 1222.

[0088] In this technical solution, the current inlet 152 is used to connect with a current input wire that needs to convert current, for example, connect with the power input wire of a photovoltaic power source, while the current outlet 154 is used to output the converted current. Both the current inlet 152 and the current outlet 154 are arranged corresponding to the first wire outlet 1222, that is, both the current inlet 152 and the current outlet 154 face the first wire outlet 1222. In this way, since high-voltage wires are usually relatively thick, they can directly extend out from the first wire outlet 1222 without bending.

[0089] As Figure 1 shown, another embodiment of the present utility model provides a side trim panel 122, which can be, for example, the side plate of the inverter 1. The side trim panel 122 of this embodiment is integrally L-shaped, and is divided into an upper part strong electric wire outlet area 134 and a lower part weak electric wire outlet area 136. There is a large rectangular wire outlet on the front of the upper part strong electric wire outlet area 134, and the rectangular wire outlet covers the decoration of a louver structure. After the first wire 12232 passes through the rectangular wire outlet, its decorative effect is as Figure 3 shown. The side of the strong electric wire outlet area 134 is an open-type strong electric wire outlet, and the front of the lower part weak electric wire outlet area 136 is a grid-shaped ventilation heat dissipation hole 12282, and the side is an open-type weak electric wire outlet.

[0090] For the upper and lower groups of wire outlet holes on the side plates of the inverter 1 of the present utility model, a large-sized front strong electricity outlet is designed at the upper part, and a flexible louver structure is arranged thereon to decorate the entire outlet, increasing the aesthetic degree of the strong electricity outlet. An open-type strong electricity outlet is designed on the upper side. A mesh structure is designed for ventilation and heat dissipation on the lower front, and an open-type weak electricity outlet is designed on the lower side. The strong and weak electricity are partitioned and the wire outlet positions are separated, thereby avoiding the influence between the strong and weak electricity.

[0091] In an embodiment according to the present utility model, the terms "first", "second", "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance; the term "plurality" means two or more unless otherwise clearly defined. Terms such as "mounted", "connected", "connected to", "fixed" and the like should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; "connected" can be a direct connection or an indirect connection through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments according to the present utility model can be understood according to specific circumstances.

[0092] In addition, although the operations are depicted in a particular order, this should be understood as requiring that such operations be performed in the particular order shown or in a sequential order, or that all illustrated operations should be performed to achieve the desired result. In certain environments, multitasking and parallel processing may be advantageous. Similarly, although a number of specific implementation details are included in the above discussion, these should not be construed as limiting the scope of the present utility model. Certain features described in the context of separate embodiments may also be implemented in combination in a single implementation. Conversely, the various features described in the context of a single implementation may also be implemented separately or in any suitable sub-combination in multiple implementations.

[0093] Although the subject matter has been described in language specific to structural features and / or methodological acts, it should be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. On the contrary, the specific features and acts described above are merely example forms for implementing the claims.

[0094] The above are only the preferred embodiments according to the embodiments of the present utility model and are not used to limit the embodiments according to the present utility model. For those skilled in the art, various changes and modifications can be made according to the embodiments of the present utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the embodiments according to the present utility model shall be included within the protection scope of the embodiments according to the present utility model.

Claims

1. A side trim panel, characterized in that, For an inverter, the inverter includes a first wire and a second wire. In the operating state of the inverter, the voltage carried by the first wire is greater than the voltage carried by the second wire. The side trim includes: A substrate, on which a first wire outlet is provided for the first wire to pass through. A bending plate connected to one side end of the substrate, and a second wire outlet is provided on the bending plate for the second wire to pass through.

2. The side trim panel according to claim 1, wherein It further includes: A dust-proof structure provided at the first wire outlet for preventing dust from entering the inverter, and the first wire can penetrate through the dust-proof structure.

3. The side trim according to claim 2, wherein The dust-proof structure includes a flexible louver: and / or The dust-proof structure includes a plurality of rubber strips, and any two adjacent rubber strips are in contact. The first wire can squeeze the rubber strips to pass through the dust-proof structure.

4. The side trim according to claim 1, wherein The first wire outlet is provided near the top end of the substrate, and the second wire outlet is provided near the bottom end of the bending plate.

5. The side trim panel according to claim 1, wherein, It further includes: A third wire outlet provided on the bending plate. Along the height direction of the inverter, the highest point of the first wire outlet is higher than the highest point of the third wire outlet, and the lowest point of the first wire outlet is lower than the lowest point of the third wire outlet.

6. The side trim panel according to claim 5, wherein, It further includes: A plug for covering the third wire outlet.

7. The side trim panel according to any one of claims 1 to 6, characterized in that It further includes: A plurality of heat dissipation holes provided on the substrate. Along the height direction of the inverter, the plurality of heat dissipation holes are located below the first wire outlet; and / or A ventilation and heat dissipation grid provided on the substrate. Along the height direction of the inverter, the ventilation and heat dissipation grid is located below the first wire outlet.

8. The side trim according to any one of claims 1 to 6, wherein The first wire outlet is a rectangular wire outlet; and / or The second wire outlet is a U-shaped wire outlet; and / or The cross-sectional area of the first wire outlet is larger than the cross-sectional area of the second wire outlet; and / or The substrate and the bending plate are an integrated L-shaped plate; and / or The substrate and the bending plate are both metal plates.

9. An inverter, characterized in that, It includes: A housing assembly, and the housing assembly includes the side trim according to any one of claims 1 to 8.

10. The inverter according to claim 9, characterized in that, It further includes: A current conversion device provided inside the housing assembly. The current conversion device includes a current inlet and a current outlet, and both the current inlet and the current outlet are arranged corresponding to the first wire outlet.