A protective net assembly and a frequency converter
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-27
- Publication Date
- 2026-08-11
AI Technical Summary
[0004]因此,本实用新型要解决的技术问题在于克服现有技术中的变频器的防护网存在结构不紧凑,不易收纳缺陷,从而提供一种防护网组件和变频器
[0025]1.本实用新型通过设置连接结构以及过滤单元上的连接孔,并通过连接结构连接相邻过滤单元的连接孔,能够使得相邻两个所述过滤单元能在所述连接结构处弯折形成折叠,多个所述过滤单元能够依次折叠而形成整体叠置,从而提高变频器内部空间利用率,过滤网能折叠收纳,节省空间,使得防护网组件的结构更加紧凑,有效解决现有技术中的变频器的防护网存在结构不紧凑、不易收纳的问题;并且本发明的连接结构优选为环扣结构,环扣结构与连接孔之间优选为间隙配合,能够通过环扣与连接孔之间的间隙配合关系提供过滤单元转动弯折的空间,实现多个过滤单元折叠为一体的效果。
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Figure CN224626524U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of frequency converter technology, specifically to a protective net assembly and a frequency converter. Background Technology
[0002] The production and development of frequency converters is continuously expanding and improving overall. Modern frequency converters operate in highly variable environments, and their protective measures are constantly being updated. Existing frequency converters use an integrated protective mesh structure, which makes maintenance and disassembly difficult. Furthermore, frequency converters with this integrated protective mesh structure have poor heat dissipation capabilities. For example, if there are internal temperature variations within the frequency converter, existing frequency converters cannot adaptively adjust their heat dissipation to accommodate these changes, thus failing to simultaneously fulfill both protective functions and heat dissipation requirements.
[0003] Because the protective nets of existing frequency converters have technical problems such as non-compact structure and difficulty in storage, this utility model studies and designs a protective net component and a frequency converter. Utility Model Content
[0004] Therefore, the technical problem to be solved by this utility model is to overcome the defects of the protective net of the frequency converter in the prior art, which is not compact in structure and not easy to store, so as to provide a protective net component and frequency converter.
[0005] To address the above problems, this utility model provides a protective net assembly, comprising:
[0006] The protective net and connecting structure include at least two filter units, which are spliced together to form an integral protective net structure. Each filter unit is a sheet-like structure with filter holes and has connecting holes. The connecting structure connects the connecting holes of adjacent filter units to connect adjacent filter units into one unit, and multiple filter units can be folded into one unit through the connecting structure.
[0007] In some implementations...
[0008] The connection structure is a ring-shaped structure. When the ring-shaped structure is inserted into the connection hole, the ring-shaped structure and the connection hole form a gap fit. Two adjacent filter units can be bent at the ring-shaped structure to form a fold, and multiple filter units can be folded in sequence to form an overall stack.
[0009] In some implementations...
[0010] The connecting structure is a ring structure, the cross-section of which is circular at any position, and the diameter of the circle is d. The connecting hole is a circular hole with a diameter of D, and d < D.
[0011] In some implementations...
[0012] There is a gap between two adjacent filter units, and the filter units are movable. The gap between two adjacent filter units is adjusted by the relative movement between them. The protective net assembly also includes a motion mechanism that can drive at least one of the filter units to move in order to increase or decrease the gap between two adjacent filter units.
[0013] In some implementations...
[0014] The motion mechanism includes a moving component and a guide rail. The moving component is disposed on the guide rail so that it can reciprocate along the guide rail. The moving component can move to the filter unit where the gap needs to be adjusted. The moving component can also be connected to the filter unit opposite to it and drive the filter unit to move by the movement of the moving component, so as to increase or decrease the gap between two adjacent filter units.
[0015] In some implementations...
[0016] The moving component is a magnetically attracted moving block, which can also generate magnetic force when energized to magnetically attract the filter unit opposite it, and drive the filter unit to move by the movement of the moving component; the motion mechanism also includes a motor, the guide rail is a screw structure with external threads, the magnetically attracted moving block has a hollow cavity and the inner peripheral wall of the hollow cavity is internally threaded, the moving component is sleeved on the external thread of the guide rail, so that the internal thread of the moving component and the external thread of the guide rail form a threaded engagement, the motor is set at one end of the guide rail to drive the guide rail to rotate, and the rotation of the guide rail can drive the moving component to move linearly along the direction of the guide rail.
[0017] In some implementations...
[0018] The motion mechanism includes an upper motion mechanism and a lower motion mechanism. The upper motion mechanism is opposite to the upper part of the protective net so that the upper part of the filter unit can be driven to move through the moving parts on the upper motion mechanism. The lower motion mechanism is opposite to the lower part of the protective net so that the lower end of the filter unit can be driven to move through the moving parts on the lower motion mechanism.
[0019] In some implementations...
[0020] It also includes a magnetic structure and a fixing sheet metal. The magnetic structure is disposed on the protective net and can magnetically connect the protective net to the fixing sheet metal.
[0021] In some implementations...
[0022] The magnetic attraction structure includes an upper magnetic attraction block and a lower magnetic attraction block. The upper magnetic attraction block is disposed at the upper end of the protective net, and the lower magnetic attraction block is disposed at the lower end of the protective net. The fixing sheet metal includes an upper fixing sheet metal and a lower fixing sheet metal. The upper end of the protective net can be fixed to the upper fixing sheet metal by the upper magnetic attraction block, and the lower end of the protective net can be fixed to the lower fixing sheet metal by the lower magnetic attraction block.
[0023] This utility model also provides a frequency converter, which includes the aforementioned protective net assembly and a frequency converter housing. The frequency converter housing has a ventilation opening, and the protective net assembly is disposed at the ventilation opening.
[0024] The protective mesh assembly and frequency converter provided by this utility model have the following beneficial effects:
[0025] 1. This utility model, by setting a connecting structure and connecting holes on the filter unit, and connecting adjacent filter units through the connecting structure, enables two adjacent filter units to bend at the connecting structure to form a fold. Multiple filter units can be folded sequentially to form an integral stack, thereby improving the internal space utilization of the frequency converter. The filter screen can be folded and stored, saving space and making the structure of the protective screen assembly more compact. This effectively solves the problems of non-compact structure and difficulty in storage of the protective screen of the frequency converter in the prior art. Furthermore, the connecting structure of this invention is preferably a ring-lock structure, and the ring-lock structure and the connecting hole are preferably in a clearance fit. The clearance fit between the ring-lock and the connecting hole provides space for the filter unit to rotate and bend, achieving the effect of multiple filter units folding into one.
[0026] 2. This utility model, through its connecting structure and the relative movement between adjacent filter units, can adjust the gap between the two filter units, effectively achieving the effect of adjusting the gap between adjacent filter units according to the internal temperature of the protective mesh. Preferably, the size of the gap can be adjusted according to the internal temperature of the protective mesh, thereby increasing the gap when the temperature rises to enhance airflow and internal heat dissipation, and decreasing the gap when the temperature falls to reduce airflow and improve protective and filtering performance. It can achieve the protection (filtration) function while also assisting in heat dissipation, and can adaptively adjust the gap according to the internal temperature to enhance or reduce heat dissipation, so as to improve the heat dissipation performance of components and improve electrical safety performance while ensuring the protection and dustproof effect.
[0027] 3. This utility model further includes a motion mechanism in the protective net assembly. The motion mechanism drives at least one filter unit to move, thereby effectively adjusting the gap between two adjacent filter units. More preferably, the motion mechanism includes a moving component and a guide rail. The moving component drives the filter unit to move, and the moving component moves along the guide rail, thereby effectively adjusting the gap between adjacent filter units. More preferably, the moving component is a magnetic moving block, which generates magnetic force by energizing to magnetically attract the filter unit. The motion mechanism also includes a motor. The guide rail and the magnetic moving block are threaded together. The motor drives one end of the guide rail to rotate, so that the magnetic moving block forms a linear motion on the guide rail. When the magnetic moving block moves to be opposite the filter unit to be moved, the magnetic moving block is energized to generate magnetic attraction, thereby magnetically attracting the filter unit and moving it along the guide rail together with the magnetic moving block, thereby effectively achieving the purpose and effect of adjusting the gap between adjacent filter units.
[0028] 4. This utility model further incorporates a magnetic attraction structure and fixed sheet metal, allowing the upper or lower end of the protective net to be magnetically attached to the upper and lower fixed sheet metal, thus completing the installation between the protective net and the inverter housing. This installation method eliminates the need for existing threaded installation methods, enabling rapid installation and disassembly of the protective net and improving its efficiency. Attached Figure Description
[0029] Figure 1 This is a front view structural diagram of the inverter protection mesh assembly of this utility model;
[0030] Figure 2 This is an exploded structural diagram of the inverter protection mesh assembly of this utility model;
[0031] Figure 3 This is a schematic diagram of the upper structure of the protective netting of this utility model;
[0032] Figure 4 This is a schematic diagram of the lower layer structure of the protective net of this utility model;
[0033] Figure 5 These are three views of a single protective net of this utility model;
[0034] Figure 6 This is a schematic diagram of the motion mechanism of the protective net assembly of this utility model.
[0035] The reference numerals in the attached figures are as follows:
[0036] 1. Inverter housing; 2. Protective mesh; 3. Connection structure; 4. Magnetic structure; 41. Upper magnetic block; 42. Lower magnetic block; 5. Filter unit; 6. Connection hole; 7. Gap; 8. Ventilation port; 9. Inverter base plate; 10. Inverter top cover; 11. Upper end cover reinforcing rib; 12. Assembly reinforcing rib; 13. Power supply mounting plate; 14. Upper fixed sheet metal; 15. Lower fixed sheet metal; 16. Motion mechanism; 17. Upper motion mechanism; 18. Lower motion mechanism; 19. Temperature sensor; 20. Moving parts; 21. Motor; 22. Guide rail. Detailed Implementation
[0037] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the present utility model or its application or use. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0038] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0039] Unless otherwise specifically stated, the relative arrangement, numerical expressions, and values of the components and steps described in these embodiments do not limit the scope of this invention. It should also be understood that, for ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following drawings denote similar items; therefore, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.
[0040] In the description of this utility model, it should be understood that the directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this utility model. The directional terms "inner" and "outer" refer to the inner and outer contours of each component itself.
[0041] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0042] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be construed as limiting the scope of protection of this utility model.
[0043] like Figure 1-6 As shown, this utility model provides a protective net assembly, which includes:
[0044] The protective net 2 and the connecting structure 3 are provided. The protective net 2 includes at least two filter units 5. The at least two filter units 5 are spliced together to form an integral protective net structure. The filter unit 5 is a sheet-like structure with filter holes. The filter unit 5 is provided with connecting holes 6. The connecting structure 3 connects the connecting holes 6 of adjacent filter units 5 to connect adjacent filter units 5 into one unit. The connecting structure 3 can also fold multiple filter units 5 into one unit.
[0045] This invention, by setting a connecting structure and connecting holes on the filter unit, and connecting adjacent filter units through the connecting structure, enables two adjacent filter units to bend at the connecting structure to form a fold. Multiple filter units can be folded sequentially to form an overall stack, thereby improving the internal space utilization of the frequency converter. The filter screen can be folded and stored, saving space and making the structure of the protective screen assembly more compact. It effectively solves the problems of non-compact structure and difficulty in storage of the protective screen of frequency converters in the prior art.
[0046] In some implementations...
[0047] The connecting structure 3 is a ring-shaped structure. When the ring-shaped structure passes through the connecting hole 6, the ring-shaped structure and the connecting hole 6 form a gap fit. Two adjacent filter units 5 can be bent at the ring-shaped structure to form a fold, and multiple filter units 5 can be folded in sequence to form an overall stack.
[0048] The connection structure of the present invention is preferably a ring buckle structure, and the ring buckle structure and the connecting hole are preferably in a clearance fit. The clearance fit between the ring buckle and the connecting hole can provide space for the filter unit to rotate and bend, so as to achieve the effect of folding multiple filter units into one piece.
[0049] This utility model also provides a connection hole 6 on the filter unit 5, and connects the connection hole 6 of the adjacent filter unit through the connection structure 3. The connection structure 3 and the connection hole 6 are in clearance fit, which can adjust the gap between the two adjacent filter units 5 by cooperating with the relative movement between the connection structure 3 and the two adjacent filter units 5, effectively achieving the effect of adjusting the gap between the two adjacent filter units 5 according to the temperature inside the protective net.
[0050] In some implementations...
[0051] The connecting structure 3 is a ring structure, and its cross-section at any position is circular with a diameter of d. The connecting hole 6 is a circular hole with a diameter of D, and d < D. Or, two adjacent filter units 5 can be bent at the connecting structure 3 to form a fold, and multiple filter units 5 can be folded sequentially to form an integral stack.
[0052] This invention uses a circular ring as the connecting structure and a circular hole 6 as the connecting hole, allowing for a clearance fit between the two. This ensures the connection between the two while also allowing for adjustment of the gap between adjacent filter units 5. Through the connection structure 3 and the clearance fit with the connecting hole 6, this invention enables two adjacent filter units 5 to bend at the connecting structure to form a fold. Multiple filter units 5 can be folded sequentially to form a stack, thereby improving the internal space utilization of the frequency converter, allowing for folding and storage, and saving space.
[0053] See Figure 3 The filter units of this utility model are connected by connecting holes 6 and connecting metal rings. There are gaps between individual filter units, which can be folded around the ring to store the entire protective net on one side. The magnetic attraction structure 4 can pull each other to ensure that the folded filter units will not be scattered.
[0054] See Figure 4 The adjacent filter units 5 connected by the connecting structure 3 have gaps, which can be adjusted to fine-tune the installation length of the protective net when it is installed on the inverter housing 1. Furthermore, the through holes in the lower structure of the protective net can be bolted to the lower fixed sheet metal 15 to ensure the stability of the protective net.
[0055] See Figure 5 The filter unit 5 (preferably a fine square mesh) on the protective net 2 can be cut and removed, allowing for the installation of circuit breakers, wires, and other components to avoid obstructing the inverter during installation. Simultaneously, the fine square mesh also prevents dust, keeping the inside of the inverter clean.
[0056] In some implementations...
[0057] A gap 7 is provided between two adjacent filter units 5. The filter units 5 are movable, and the gap 7 between two adjacent filter units 5 is adjusted by the relative movement between them. The protective net assembly also includes a motion mechanism 16, which can drive at least one filter unit 5 to move, thereby increasing or decreasing the gap between two adjacent filter units 5. This invention also utilizes the aforementioned motion mechanism to drive at least one filter unit to move, effectively adjusting the gap between two adjacent filter units.
[0058] This invention, through a connecting structure and the relative movement between adjacent filter units, can adjust the gap between the two filter units. This effectively achieves the effect of adjusting the gap between adjacent filter units according to the temperature inside the protective mesh. Preferably, the size of the gap can be adjusted according to the temperature inside the protective mesh, so that when the temperature rises, the gap can be increased to enhance airflow and internal heat dissipation, and when the temperature decreases, the gap can be decreased to reduce airflow and improve protective and filtration performance. It can achieve protection (filtration) function while also assisting in heat dissipation, and can adaptively adjust the gap according to the internal temperature to enhance or reduce heat dissipation. This ensures protection and dust prevention while improving the heat dissipation performance of components and enhancing electrical safety performance.
[0059] Preferably, when the temperature rises, the filter unit 5 can move to increase the size of the gap 7 between two adjacent filter units 5, that is, the flow cross-sectional area of the gap 7 increases; when the temperature decreases, the filter unit 5 can move to decrease the size of the gap 7 between two adjacent filter units 5, that is, the flow cross-sectional area of the gap 7 decreases.
[0060] This invention relates to the preferred motion relationship between the filter unit 5 and temperature changes. When the temperature rises, the gap between two adjacent filter units 5 is increased through movement, thereby increasing the flow cross-sectional area of the gap and increasing the airflow within the inverter. This improves the heat dissipation performance of components and enhances electrical safety when the temperature rises. Conversely, when the temperature drops, the gap between adjacent filter units 5 is reduced through movement, thereby decreasing the airflow area and airflow. This reduces the heat dissipation performance of components and improves the protection and filtration performance inside the inverter. This achieves both protection and dust prevention while improving the heat dissipation performance of components and enhancing electrical safety, effectively solving the problem that existing inverter protective nets cannot meet heat dissipation requirements while providing protection.
[0061] See Figure 1 The protective mesh 2 is installed on one side of the inverter housing 1, while other components are installed on the unused side and heat is dissipated through the ventilation opening 8. Airflow inside the inverter passes through the protective mesh 2, transferring some of the heat into it. The airflow then passes through the filter unit 5 (preferably a fine mesh) and connecting holes 6 on the protective mesh 2, transferring excess heat to the inverter housing 1. The inverter housing 1 then exchanges heat with the outside air, thus achieving a certain degree of auxiliary heat dissipation.
[0062] In some implementations...
[0063] The motion mechanism 16 includes a moving component 20 and a guide rail 22. The moving component 20 is disposed on the guide rail 22 so that it can reciprocate along the guide rail 22. The moving component 20 can move to the filter unit 5 where the gap needs to be adjusted. The moving component 20 can also be connected to the filter unit 5 opposite to it and drive the filter unit 5 to move through the movement of the moving component 20, so as to increase or decrease the gap between two adjacent filter units 5.
[0064] This is the preferred structural form of the motion mechanism of this utility model. The motion component 20 of the motion mechanism drives the filter unit 5 to move. The motion component 20 moves along the guide rail 22, thereby effectively adjusting the gap between adjacent filter units 5.
[0065] In some implementations...
[0066] The moving component 20 is a magnetic moving block, which can also generate magnetic force when energized to magnetically attract the filter unit 5 opposite it, and drive the filter unit 5 to move by the movement of the moving component 20; the motion mechanism 16 also includes a motor 21, the guide rail 22 is a screw structure with external threads, the magnetic moving block has a hollow cavity and the inner peripheral wall of the hollow cavity is internally threaded, the moving component 20 is sleeved on the external thread of the guide rail 22, so that the internal thread of the moving component 20 and the external thread of the guide rail 22 form a threaded engagement, the motor 21 is set at one end of the guide rail 22 to drive the guide rail 22 to rotate, and the rotation of the guide rail 22 can drive the moving component 20 to move linearly along the direction of the guide rail 22.
[0067] This is a further preferred structural form of the moving component 20 of this utility model. The moving component 20 is preferably a magnetic moving block, which can generate magnetic force by being energized to magnetically attract the filter unit 5. The moving mechanism 16 also includes a motor 21. The guide rail 22 and the magnetic moving block are threadedly connected. The motor 21 drives one end of the guide rail 22 to rotate, so that the magnetic moving block forms a linear motion on the guide rail 22. When the magnetic moving block moves to be opposite the filter unit 5 that needs to be moved, the magnetic moving block is energized to generate magnetic attraction force, thereby magnetically attracting the filter unit 5 and moving it along the guide rail 22 together with the magnetic moving block, thereby effectively achieving the purpose and effect of adjusting the gap between adjacent filter units 5.
[0068] The protective net 2 of this utility model is preferably equipped with a magnetic structure 4, which can be adsorbed onto the upper fixed sheet metal 14 and the lower fixed sheet metal 15, ensuring convenient installation and enabling quick assembly and disassembly. The upper motion mechanism 17 and the lower motion mechanism 18 can be used to precisely adjust the gap of the protective net; the temperature sensor 19 automatically adjusts the protective net by monitoring the temperature inside the frequency converter in real time. When the temperature is too high, the motor 21 inside the fixed block with motor starts, driving the guide rail 22 to rotate, which in turn drives the moving part 20 (preferably the magnetic moving block) to move; when the magnetic moving block moves to a certain filter unit 5, it is energized and adsorbed, and the motor 21 is started again. After the target filter unit 5 is moved to a specific position, the magnetic moving block is de-energized and the adsorption is canceled, and the gap adjustment of the adjacent target filter units 5 is completed.
[0069] In some implementations...
[0070] The motion mechanism 16 includes an upper motion mechanism 17 and a lower motion mechanism 18. The upper motion mechanism 17 is opposite to the upper part of the protective net 2, so that the upper part of the filter unit 5 can be driven to move through the moving part 20 on the upper motion mechanism 17. The lower motion mechanism 18 is opposite to the lower part of the protective net 2, so that the lower end of the filter unit 5 can be driven to move through the moving part 20 on the lower motion mechanism 18.
[0071] This is a further preferred structural form of the motion mechanism of this utility model. The motion mechanism 16 preferably includes an upper motion mechanism 17 and a lower motion mechanism 18, which can be connected to the upper part of the filter unit 5 to drive the upper part, and connected to the lower part of the filter unit 5 to drive the lower part, thereby ensuring that the overall structure of the filter unit 5 is driven and that it can move as a whole, so as to achieve the effect of adjusting the gap between adjacent filter units 5 according to the temperature.
[0072] In some implementations...
[0073] The motion mechanism 16 is also equipped with a temperature sensor 19, which can detect the temperature inside the protective net 2.
[0074] This invention utilizes a temperature sensor mounted on the motion mechanism to effectively monitor the temperature inside the protective mesh. This allows for adjustment of the gap between adjacent filter units based on the temperature levels and changes within the mesh, thereby ensuring both protection and dustproofing while also improving the heat dissipation performance of the components and enhancing electrical safety.
[0075] In some implementations...
[0076] It also includes a magnetic structure 4 and a fixed sheet metal. The magnetic structure 4 is disposed on the protective net 2, and the protective net 2 can be magnetically connected to the fixed sheet metal through the magnetic structure 4.
[0077] This is a preferred structural form of the protective net assembly of this utility model. Furthermore, by setting a magnetic attraction structure 4 and a fixed sheet metal, the upper or lower end of the protective net 2 is installed onto the upper and lower fixed sheet metal by magnetic attraction through the magnetic attraction structure 4, thus completing the installation between the protective net 2 and the inverter housing 1. This installation method eliminates the existing installation methods such as threaded installation, and can realize the quick installation and disassembly of the protective net 2, improving the efficiency of the installation and disassembly of the protective net 2.
[0078] In some implementations...
[0079] The magnetic attraction structure 4 includes an upper magnetic attraction block 41 and a lower magnetic attraction block 42. The upper magnetic attraction block 41 is disposed at the upper end of the protective net 2, and the lower magnetic attraction block 42 is disposed at the lower end of the protective net 2. The fixing sheet metal includes an upper fixing sheet metal 14 and a lower fixing sheet metal 15. The upper end of the protective net 2 can be fixed to the upper fixing sheet metal 14 by the upper magnetic attraction block 41, and the lower end of the protective net 2 can be fixed to the lower fixing sheet metal 15 by the lower magnetic attraction block 42.
[0080] This is a preferred structural form of the magnetic attraction structure 4 of this utility model. The upper magnetic attraction block 41 can connect the upper end of the protective net 2 to the upper fixed sheet metal 14, and the lower magnetic attraction block 42 can connect the lower end of the protective net 2 to the lower fixed sheet metal 15, thereby achieving the effect and purpose of connecting the entire structure of the protective net to the inverter housing 1.
[0081] This utility model also provides a frequency converter, which includes the aforementioned protective net assembly and a frequency converter housing 1. The frequency converter housing 1 has a vent 8, and the protective net assembly is disposed at the vent 8.
[0082] The filter unit of this inverter is movable and its gap can be adjusted adaptively according to the internal temperature to enhance or reduce heat dissipation, ensuring electrical safety while improving protection and dust prevention. This invention employs a parallel sheet metal structure combined with a connecting structure 3, fully utilizing the internal space of the inverter to effectively install the protective mesh 2, saving installation space. The parallel structure allows for adjustment of the length of the protective mesh 2 as needed, offering strong applicability. The connecting structure 3 allows for folding and placement of the sheet metal, improving the utilization rate of the inverter's internal space. A magnetic structure 4 fixes the sheet metal parts in the appropriate positions, facilitating quick and easy assembly and disassembly. The through-hole structure also assists in heat dissipation. The inverter's heat dissipation consists of three layers: main flow channel heat dissipation, auxiliary airflow heat dissipation, and natural heat dissipation. Auxiliary airflow heat dissipation connects the internal flow channels of the inverter, and the through-holes in the protective mesh connect ventilation channels while preventing dust, greatly improving the inverter's heat dissipation efficiency.
[0083] In some implementations...
[0084] The inverter housing 1 includes an inverter top cover 10 and an inverter bottom plate 9. When the protective net assembly includes an upper fixed sheet metal 14 and a lower fixed sheet metal 15, the upper fixed sheet metal 14 is fixed to the inverter top cover 10, and the lower fixed sheet metal 15 is fixed to the inverter bottom plate 9.
[0085] The inverter includes an upper end cover reinforcing rib 11 and an assembly reinforcing rib 12. Both the upper end cover reinforcing rib 11 and the assembly reinforcing rib 12 are installed on the inverter upper cover 10. The upper fixed sheet metal 14 is fixed to the inverter upper cover 10 through the assembly reinforcing rib 12.
[0086] This is the preferred structural form of the inverter of this utility model. By fixing the upper fixed sheet metal 14 to the inverter upper cover 10 and the lower fixed sheet metal 15 to the inverter base plate 9, the effect of fixing the upper and lower ends of the protective net to the inverter housing 1 can be effectively achieved. The upper cover reinforcing rib 11 is used to reinforce the inverter upper cover 10, and the mounting reinforcing rib 12 is used to connect the upper fixed sheet metal 14 and connect it to the inverter upper cover 10 to achieve the fixed connection of the protective net 2.
[0087] See Figure 2 and Figure 6 The upper cover reinforcing rib 11 and the assembly reinforcing rib 12 are welded to the inverter upper cover 10. The upper fixed sheet metal 14 can be connected to the assembly reinforcing rib 12 by bolts or welding, depending on the strength requirements and the design for flexibility.
[0088] The upper fixed sheet metal 14 can be adjusted left and right on the mounting reinforcing rib 12 to accommodate the installation of other components of the frequency converter. The lower fixed sheet metal 15 is fixed inside the frequency converter housing 1 and is parallel and of the same length as the upper fixed sheet metal 14.
[0089] In some implementations...
[0090] The inverter housing 1 also includes two opposing side plates. When the protective net assembly also includes an upper motion mechanism 17 and a lower motion mechanism 18, one end of the upper motion mechanism 17 is fixed to one side plate of the inverter housing 1, and the other end of the upper motion mechanism 17 is fixed to the other side plate of the inverter housing 1; one end of the lower motion mechanism 18 is fixed to one side plate of the inverter housing 1, and the other end of the lower motion mechanism 18 is fixed to the other side plate of the inverter housing 1.
[0091] This is the preferred structural form of the inverter of this utility model. By fixing the upper motion mechanism 17 and the lower motion mechanism 18 of the protective net assembly to two opposite side plates, the upper and lower motion mechanisms are effectively fixedly connected. This facilitates the movement of the filter unit 5 by the movement of the moving parts 20 on the upper and lower motion mechanisms. This allows for the adaptive adjustment of the gap between adjacent filter units 5 according to temperature changes, ensuring protection and dust prevention while improving the heat dissipation performance of the components and enhancing electrical safety performance.
[0092] This utility model provides a parallel split-type protective mesh inverter assembly, including a single protective mesh 2, a connecting structure 3 (preferably a connecting metal ring), a magnetic attraction structure 4 (preferably a magnet), a filter unit 5 (preferably including a fine mesh), and connecting holes 6. The individual filter units 5 are connected to the connecting structure 3 via the connecting holes 6. The magnetic attraction structure 4 is installed at the upper and lower ends of the protective mesh, and can be used to fix the protective mesh 2 by adsorption with the upper fixing sheet metal 14 and the lower fixing sheet metal 15. The upper fixing sheet metal 14 is connected to the assembly reinforcing rib 12 and is fixed by welding to ensure strength. The upper end cover reinforcing rib 11 and the assembly reinforcing rib 12 are connected together to the inverter upper cover 10, providing sufficient support strength to the inverter upper cover 10 and ensuring the stability of the inverter housing 1.
[0093] This utility model designs a detachable structure to allow the protective net to be installed on the frequency converter. It achieves compatible installation and convenient disassembly. It allows for fine-tuning, foldable storage, and space saving. It separates strong and weak current circuits into two layers, ensuring electrical safety. It also provides auxiliary heat dissipation, improving heat dissipation efficiency.
[0094] This utility model can have the following beneficial effects:
[0095] 1. The spacing of the protective netting is adjustable and foldable, saving space; it greatly reduces the size of the frequency converter and improves space utilization.
[0096] 2. The size of the gap between the filter units can be adjusted according to the temperature inside the protective mesh, ensuring protection and dust prevention while also improving the heat dissipation performance of the components and enhancing electrical safety.
[0097] 3. The assembly of the filter unit and the installation of the protective net are achieved through connection structure and magnetic structure, eliminating complex processes and bolts and improving the ease of installation.
[0098] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model. The above description is only a preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.
Claims
1. A protective net assembly, characterized in that: include: The protective net (2) and the connecting structure (3) include at least two filter units (5), which are spliced together to form an integral protective net structure. The filter unit (5) is a sheet structure with filter holes. The filter unit (5) is provided with connecting holes (6). The connecting structure (3) connects the connecting holes (6) of adjacent filter units (5) to connect adjacent filter units (5) into one unit. The connecting structure (3) can also fold multiple filter units (5) into one unit.
2. The protective net assembly according to claim 1, characterized in that: The connecting structure (3) is a ring structure. When the ring structure passes through the connecting hole (6), the ring structure and the connecting hole (6) form a gap fit. Two adjacent filter units (5) can be bent at the ring structure to form a fold. Multiple filter units (5) can be folded in sequence to form an overall stack.
3. The protective net assembly according to claim 2, characterized in that: The connecting structure (3) is a circular structure with a circular cross-section at any position and a diameter of d. The connecting hole (6) is a circular hole with a diameter of D and d < D.
4. The protective net assembly according to claim 1, characterized in that: There is a gap (7) between two adjacent filter units (5), and the filter units (5) are movable. The gap (7) between two adjacent filter units (5) is adjusted by the relative movement between the two adjacent filter units (5). The protective net assembly also includes a motion mechanism (16) that can drive at least one of the filter units (5) to move in order to increase or decrease the gap between two adjacent filter units (5).
5. The protective net assembly according to claim 4, characterized in that: The motion mechanism (16) includes a moving part (20) and a guide rail (22). The moving part (20) is disposed on the guide rail (22) so that it can reciprocate along the guide rail (22). The moving part (20) can move to the filter unit (5) where the gap needs to be adjusted. The moving part (20) can also be connected to the filter unit (5) opposite to it and drive the filter unit (5) to move by the movement of the moving part (20) to increase or decrease the gap between two adjacent filter units (5).
6. The protective net assembly according to claim 5, characterized in that: The moving part (20) is a magnetic moving block, which can also generate magnetic force when energized to magnetically attract the filter unit (5) opposite it and drive the filter unit (5) to move through the movement of the moving part (20); the moving mechanism (16) also includes a motor (21), the guide rail (22) is a screw structure, the screw structure has an external thread, the magnetic moving block has a hollow cavity and the inner peripheral wall of the hollow cavity has an internal thread, the moving part (20) is sleeved on the external thread of the guide rail (22) so that the internal thread of the moving part (20) and the external thread of the guide rail (22) form a threaded engagement, the motor (21) is set at one end of the guide rail (22) so as to drive the guide rail (22) to rotate, and the rotation of the guide rail (22) can drive the moving part (20) to move linearly along the direction of the guide rail (22).
7. The protective net assembly according to claim 5, characterized in that: The motion mechanism (16) includes an upper motion mechanism (17) and a lower motion mechanism (18). The upper motion mechanism (17) is opposite to the upper part of the protective net (2) so that the upper part of the filter unit (5) can be driven by the moving part (20) on the upper motion mechanism (17). The lower motion mechanism (18) is opposite to the lower part of the protective net (2) so that the lower end of the filter unit (5) can be driven by the moving part (20) on the lower motion mechanism (18).
8. The protective net assembly according to claim 1, characterized in that: It also includes a magnetic structure (4) and a fixed sheet metal. The magnetic structure (4) is disposed on the protective net (2) and the protective net (2) can be magnetically connected to the fixed sheet metal through the magnetic structure (4).
9. The protective net assembly according to claim 8, characterized in that: The magnetic structure (4) includes an upper magnetic block (41) and a lower magnetic block (42). The upper magnetic block (41) is disposed at the upper end of the protective net (2), and the lower magnetic block (42) is disposed at the lower end of the protective net (2). The fixing sheet metal includes an upper fixing sheet metal (14) and a lower fixing sheet metal (15). The upper end of the protective net (2) can be fixed to the upper fixing sheet metal (14) by the upper magnetic block (41), and the lower end of the protective net (2) can be fixed to the lower fixing sheet metal (15) by the lower magnetic block (42).
10. A frequency converter, characterized in that: The protective net assembly comprising any one of claims 1-9 further comprises a frequency converter housing (1) having a vent (8), and the protective net assembly being disposed at the vent (8).