Reactance cabinet and electric control equipment
By setting an opening on the cabinet of the reactor cabinet and using an adapter with integrated power connection components to connect the wiring section of the reactor to external equipment, the problem of increased floor space caused by the reactor cabinet being adapted to the size of the reactor is solved, and more efficient space utilization is achieved.
Patent Information
- Application Number
- CN202422854337.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-11-21
AI Technical Summary
To accommodate various reactor sizes, existing reactor cabinets require a larger width, resulting in a corresponding increase in floor space.
By setting an opening in the cabinet of the reactor cabinet and using an adapter with integrated power connection components to connect the wiring section of the reactor to external equipment, power connection, inspection and maintenance operations can be performed at the opening, avoiding restrictions on the specific layout of the reactor. This allows for adaptation to the increase in the width of the reactor in the depth direction without the need to increase the width of the cabinet simultaneously.
This allows for adaptation to the increased width of the reactor in the depth direction of the reactor cabinet without simultaneously increasing the width of the cabinet, thus avoiding an increase in floor space and improving space utilization efficiency.
Smart Images

Figure CN223502449U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of frequency converter technology, and in particular to a reactor cabinet and electrical control equipment. Background Technology
[0002] In traditional reactor cabinet design, because the reactor, as the main component of the reactor cabinet, has a relatively fixed structure, the input and output contact copper busbars on the reactor body are often designed to face the front and rear of the reactor cabinet for on-site installation and use considerations. That is, when the reactor is installed and fixed, its width is in the same direction as the width of the reactor cabinet. Since the depth of the reactor cabinet is limited and constrained by other components of the transformer, the width of the reactor cabinet has to be increased accordingly to accommodate the reactor installation when the width of the reactor increases, as the reactor width varies. With the depth remaining unchanged, the increased width results in a corresponding increase in the footprint of the reactor cabinet. Utility Model Content
[0003] The main purpose of this utility model is to propose a reactor cabinet and electrical control equipment, which aims to solve the problem that existing reactor cabinets need to be set with a larger width in order to adapt to various sizes of reactors, which results in a corresponding increase in the footprint of the reactor cabinet.
[0004] To achieve the above objectives, the reactor cabinet proposed in this utility model includes:
[0005] A server rack, wherein the server rack is provided with an opening;
[0006] A reactor is installed inside the cabinet, and the reactor has multiple wiring terminals;
[0007] An integrated power connection assembly is installed in the cabinet and corresponding to the opening. The integrated power connection assembly includes multiple adapters, one end of which is a connection end and the other end is a power connection end. The connection end is electrically connected to a corresponding wiring part, and the power connection end is used to connect to external power connection equipment.
[0008] In one embodiment, the opening is located on one side of the cabinet in the longitudinal direction;
[0009] The reactor includes multiple windings, each winding having two terminals, and the multiple windings are arranged at intervals along the longitudinal direction.
[0010] In one embodiment, the integrated power connection assembly further includes an insulating mounting portion, wherein the plurality of adapters are spaced apart and mounted on the insulating mounting portion.
[0011] In one embodiment, the plurality of adapters are arranged at intervals in the lateral direction.
[0012] In one embodiment, the connection end is connected to a corresponding wiring portion via a cable;
[0013] The reactor cabinet also includes a plurality of limiting parts installed in the cabinet. The plurality of limiting parts are disposed between the plurality of wiring parts and the plurality of adapters, and each of the limiting parts is used to limit the cable.
[0014] In one embodiment, the reactor cabinet further includes a mounting bracket installed on the cabinet, the mounting bracket including a mounting portion and the plurality of limiting portions disposed on the mounting portion; and / or,
[0015] Each of the limiting parts is provided with a wire-passing hole for the cable to pass through.
[0016] In one embodiment, the cabinet is provided with an inlet and an outlet, and the reactor cabinet further includes a fan assembly installed at the inlet or the outlet;
[0017] The reactor includes a winding and a housing. The housing is sleeved around the winding and has an air inlet and an air outlet that are arranged opposite to each other.
[0018] The cabinet is also equipped with a partition, which divides the cabinet into an air inlet chamber and an air outlet chamber. The partition is provided with mounting holes for installing the reactor. The air inlet and the air outlet of the housing are respectively located on both sides of the partition.
[0019] In one embodiment, the cabinet is further provided with a partition, which divides the cabinet into an electrical control installation area;
[0020] The reactor cabinet also includes an electrical control device located in the electrical control installation area. The electrical control device is electrically connected to the reactor and is used to control the operation of the reactor.
[0021] In one embodiment, the reactor cabinet further includes a control device, which includes operation keys and / or a display control area disposed on the outer surface of the cabinet. The electrical control device is electrically connected to the control device and is used to operate according to the control device.
[0022] This utility model also provides an electrical control device, which includes a reactor cabinet, the reactor cabinet comprising:
[0023] A server rack, wherein the server rack is provided with an opening;
[0024] A reactor, disposed within the cabinet, the reactor having multiple wiring terminals; and,
[0025] An integrated power connection assembly is installed in the cabinet and corresponding to the opening. The integrated power connection assembly includes multiple adapters, one end of which is a connection end and the other end is a power connection end. The connection end is electrically connected to a corresponding wiring section, and the power connection end is used to connect to external power equipment.
[0026] In the technical solution of this utility model, the multiple wiring terminals of the reactor are connected to external power supply equipment through the multiple adapters of the integrated power supply assembly. The integrated power supply assembly is set to correspond to the opening of the cabinet, facilitating power connection, inspection, maintenance and other operations at the opening. Through the multiple adapters, the position requiring operation on the multiple power supply terminals is transferred to the opening of the cabinet, so that the location of the multiple wiring terminals of the reactor is not restricted. Therefore, the specific arrangement of the reactor itself is also not restricted. When the depth of the reactor cabinet is fixed and sufficient, when the width of the reactor needs to be increased, the reactor can be adapted to the depth of the cabinet as much as possible in the depth direction without simultaneously increasing the width of the cabinet. Therefore, the footprint of the reactor cabinet does not need to be increased simultaneously, thus solving the problem that existing reactor cabinets need to be set with a larger width to accommodate various reactor sizes, resulting in a corresponding increase in the footprint of the reactor cabinet. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0028] Figure 1 This is a schematic diagram of the structure of an embodiment of the reactor cabinet provided by this utility model;
[0029] Figure 2 for Figure 1 Internal structure diagram of the reactor cabinet;
[0030] Figure 3 for Figure 1 A schematic diagram of the internal structure of the reactor cabinet from another perspective;
[0031] Figure 4 This is a schematic diagram of another embodiment of the reactor cabinet provided by this utility model;
[0032] Figure 5 for Figure 4 Internal structure diagram of the reactor cabinet;
[0033] Figure 6 for Figure 4 A schematic diagram of the internal structure of the reactor cabinet from another perspective.
[0034] Explanation of icon numbers:
[0035] 100. Reactor cabinet; 1. Cabinet; 10a. Opening; 1a. Inlet; 1b. Outlet; 11. Partition; a. Air inlet cavity; b. Air outlet cavity; 11a. Mounting hole; 12. Separator; c. Electrical control installation area; 2. Reactor; 21. Wiring part; 22. Winding; 23. Housing; 23a. Air outlet; 3. Integrated power connection assembly; 31. Adapter; 311. Connection end; 312. Power connection end; 32. Insulation mounting part; 4. Hanging part; 40. Limiting part; 40a. Cable passage hole; 41. Hanging part; 5. Fan assembly; 6. Control device; 7. Cable.
[0036] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. 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. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.
[0038] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0039] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0040] In traditional reactor cabinet design, because the reactor, as the main component of the reactor cabinet, has a relatively fixed structure, the input and output contact copper busbars on the reactor body are often designed to face the front and rear of the reactor cabinet for on-site installation and use considerations. That is, when the reactor is installed and fixed, its width is in the same direction as the width of the reactor cabinet. Since the depth of the reactor cabinet is limited and constrained by other components of the transformer, the width of the reactor cabinet has to be increased accordingly to accommodate the reactor installation when the width of the reactor increases, as the reactor width varies. With the depth remaining unchanged, the increased width results in a corresponding increase in the footprint of the reactor cabinet.
[0041] This utility model proposes a reactor cabinet to solve the problem that existing reactor cabinets need to be set with a larger width in order to adapt to various sizes of reactors, which results in a corresponding increase in the footprint of the reactor cabinet. Figure 1 This is a schematic diagram of the structure of an embodiment of the reactor cabinet provided by this utility model; Figure 2 for Figure 1 Internal structure diagram of the reactor cabinet; Figure 3 for Figure 1 A schematic diagram of the internal structure of the reactor cabinet from another perspective;
[0042] Figure 4 This is a schematic diagram of another embodiment of the reactor cabinet provided by this utility model; Figure 5 for Figure 4 Internal structure diagram of the reactor cabinet; Figure 6 for Figure 4 A schematic diagram of the internal structure of the reactor cabinet from another perspective.
[0043] Please see Figures 1 to 3In one embodiment of this utility model, the reactor cabinet 100 includes a cabinet 1, a reactor 2, and an integrated power connection assembly 3. The cabinet 1 is provided with an opening 10a. The reactor 2 is disposed inside the cabinet 1 and has multiple wiring portions 21. The integrated power connection assembly 3 is disposed in the cabinet 1 and is provided corresponding to the opening 10a. The integrated power connection assembly 3 includes multiple adapters 31. One end of each adapter 31 is a connecting end 311, and the other end is a power connection end 312. The connecting end 311 is electrically connected to a corresponding wiring portion 21, and the power connection end 312 is used to connect to external power connection equipment.
[0044] It should be noted that the cabinet 1 is the outer shell of the reactor cabinet 100, used to protect the internal components. The cabinet 1 is provided with an opening 10a to facilitate use and maintenance by technicians.
[0045] The reactor 2 is the main functional part of the reactor cabinet 100, and is typically used in power systems to provide reactance, help regulate the phase and amplitude of the current, and improve power quality. The reactor 2 is housed inside the cabinet 1 and has the plurality of wiring terminals 21, which are used for electrical connection with the integrated power connection assembly 3 and other power equipment.
[0046] The integrated power connection assembly 3 is used to connect and switch between the reactor 2 and external power equipment. Each adapter 31 has a connection end 311 and a power connection end 312. The connection end 311 is electrically connected to the wiring portion 21 of the reactor 2 to ensure effective transmission of power signals. The power connection end 312 is used to connect to external power equipment, allowing the reactor cabinet 100 to be powered by external circuits.
[0047] It is understood that the adapter 31 is used to connect components of different electrical elements or electrical circuits. The adapter 31 may be a plug, connector, or other type of interface.
[0048] It should also be noted that a typical reactor usually consists of three windings (or phases) U, V, and W. Specifically, the three components U, V, and W usually refer to: U-phase (phase U), which is the first winding in the reactor, responsible for handling U-phase current, and usually corresponds to the U-phase voltage in the power grid; V-phase (phase V), which is the second winding in the reactor, handling V-phase current, and usually corresponds to the V-phase voltage in the power grid; and W-phase (phase W), which is the third winding in the reactor, responsible for handling W-phase current, and usually corresponds to the W-phase voltage in the power grid. Each phase winding is equipped with an input connection and an output connection. In the technical solution of this utility model, each connection 21 (input connection or output connection) is connected to the connection terminal 311 of the corresponding adapter 31.
[0049] In related technologies, reactor cabinets have windows at both ends along their depth, and the two terminals of each phase winding are positioned opposite each other along the depth of the reactor cabinet, facilitating the assembly, inspection, and maintenance of the reactor's terminals through the corresponding windows by technicians. Therefore, to facilitate the assembly, inspection, and maintenance of the terminals of each phase winding, multiple windings are arranged sequentially along the width of the reactor cabinet, making it easy to align each terminal with a window.
[0050] In some specialized applications, reactors with more than three phases may be used. For example, certain high-end power systems may employ six-phase or more reactors to improve system stability and efficiency. Consequently, as the number of windings increases, the width of the reactor will also increase, affecting the overall width of the reactor cabinet.
[0051] In the technical solution of this utility model, the plurality of wiring portions 21 of the reactor 2 are connected to external power supply equipment through the plurality of adapters 31 of the integrated power supply assembly 3. The integrated power supply assembly 3 is set corresponding to the opening 10a of the cabinet 1, facilitating power connection, inspection, maintenance, and other operations at the opening 10a. Through the plurality of adapters 31, the location requiring operation on the plurality of wiring portions 21 is transferred to the opening 10a of the cabinet 1, thus eliminating restrictions on the location of the plurality of wiring portions 21 of the reactor 2. The specific arrangement of the reactor 2 is not limited. When the depth of the reactor cabinet 100 is fixed and sufficient, when the width of the reactor 2 needs to be increased, the reactor 2 can be adapted to the depth of the cabinet 1 as much as possible in the depth direction without simultaneously increasing the width of the cabinet 1. Therefore, the floor area of the reactor cabinet 100 does not need to be increased simultaneously, thus solving the problem that the existing reactor cabinet 100 needs to be set to a larger width in order to adapt to various sizes of reactor 2, which results in a corresponding increase in the floor area of the reactor cabinet 100.
[0052] Please see Figure 2 and Figure 3 In some specific embodiments, the opening 10a is located on one side of the cabinet 1 in the longitudinal direction; the reactor 2 includes a plurality of windings 22, each winding 22 having two wiring portions 21, and the plurality of windings 22 are arranged at intervals along the longitudinal direction.
[0053] It should be noted that the longitudinal direction can be understood as the depth direction of the reactor cabinet 100, while the transverse direction is the width direction of the reactor cabinet 100. The multiple windings 22 of the reactor 2 are arranged sequentially along the depth direction of the cabinet 1.
[0054] In related technologies, a reactor has a long side that extends laterally, and the two terminals of each winding are arranged opposite each other in the longitudinal direction. If the reactor is regarded as a whole, after rotating the reactor by 90 degrees, the long side of the reactor extends longitudinally, and the multiple windings of the reactor are arranged sequentially in the longitudinal direction. At this time, the two terminals of each winding of the reactor are arranged opposite each other in the lateral direction.
[0055] Since the opening 10a is located on one side of the cabinet 1 in the longitudinal direction, the integrated power connection component 3 is correspondingly located at the opening 10a. The wiring part 21 transfers the position that needs to be assembled, inspected and maintained to the adapter 31 located at the opening 10a through the adapter 31 that is electrically connected to it, so that technicians can perform maintenance operations at the opening 10a.
[0056] It should also be noted that in related technologies, the depth of the reactor cabinet is generally set to be relatively large, and its depth is affected by other adjacent components. In this embodiment, the multiple windings 22 can just utilize the depth of the reactor cabinet 100 in the longitudinal direction, without needing to increase the size in the transverse direction. This means that the width of the reactor cabinet 100 does not need to be set too large, and only needs to be set to be approximately the width of one winding 22.
[0057] For further information, please refer to [link / reference]. Figure 2 In this embodiment, the integrated power connection assembly 3 further includes an insulating mounting portion 32, and the plurality of adapters 31 are spaced apart and mounted on the insulating mounting portion 32.
[0058] The insulating mounting part 32 is made of insulating material to ensure that the plurality of adapters 31 mounted thereon do not conduct to each other or that current is accidentally leaked to other electrical components.
[0059] With this configuration, the multiple adapters 31 are installed at intervals to the insulating mounting portion 32, so that the multiple adapters 31 can maintain a safe distance, comply with safety regulations, and avoid short circuits or interference.
[0060] For further information, please refer to [link / reference]. Figure 2 In this embodiment, the plurality of adapters 31 are arranged at intervals in the horizontal direction.
[0061] The horizontal spacing provides sufficient space between each adapter 31, facilitating subsequent maintenance and repair. The horizontal sequential arrangement makes the electrical connection sequence clearer, reducing the risk of wiring errors and minimizing human error.
[0062] The horizontally spaced layout allows for greater flexibility in future expansions or modifications. This design flexibility also facilitates system upgrades and maintenance should new features or additional adapters 31 need to be added.
[0063] For further information, please refer to [link / reference]. Figure 2 In this embodiment, the connection end 311 is connected to a corresponding wiring part 21 via a cable 7; the reactor cabinet 100 also includes a plurality of limiting parts 40 installed on the cabinet 1, the plurality of limiting parts 40 being disposed between the plurality of wiring parts 21 and the plurality of adapters 31, and each of the limiting parts 40 being used to limit the cable 7.
[0064] The limiting part 40 is a component used to restrict the movement or position of the cable 7. Its main function is to prevent the cable 7 from moving accidentally during operation or maintenance, thereby ensuring the stability and safety of the connection.
[0065] The limiting part 40 is disposed between the wiring part 21 and the adapter 31. That is, the space between the wiring part 21 and the adapter 31 is where the cable 7 passes through. The limiting part 40 is in this area to prevent the cable 7 from swinging or being pulled freely.
[0066] By restricting the movement of cable 7, the limiting part 40 can reduce electrical faults caused by accidental pulling or detachment of cable 7, lowering the risk of short circuits or electrical accidents. A stable cable 7 connection helps ensure stable transmission of electrical signals, reducing signal loss or interference, thereby improving the overall reliability and performance of the system. During equipment maintenance, the limiting part 40 helps technicians more easily identify and handle cable 7 connections, ensuring that other components are not accidentally touched or damaged during operation. It also reduces wear caused by factors such as shaking and friction, thereby extending the service life of cable 7 and reducing the frequency of replacement.
[0067] In terms of space optimization, designing the limiting part 40 between the wiring part 21 and the adapter 31 can more effectively utilize the internal space of the cabinet 1, making the equipment layout more compact and reasonable. The clear cable 7 layout and limiting design make the fault diagnosis process more efficient, allowing technicians to locate problems more quickly and perform repairs or replacements.
[0068] Further, please refer to Figure 2 In this embodiment, the reactor cabinet 100 further includes a mounting member 4 installed on the cabinet 1. The mounting member 4 includes a mounting part 41 and a plurality of limiting parts 40 provided on the mounting part 41; and / or, each of the limiting parts 40 is provided with a cable through hole 40a for the cable 7 to pass through.
[0069] The mounting bracket 4 is a component installed inside the cabinet 1, and its purpose is to provide structural support or fixation for the cable 7. The mounting part 41 is a component of the mounting bracket 4 and is used to support the cable 7.
[0070] The cable passage hole 40a allows the cable 7 to pass through. By providing the cable passage hole 40a in the limiting part 40, the cable 7 can be arranged in an orderly manner while still maintaining the fixation and restriction of the cable 7.
[0071] The cable 7 can be limited by the cable hole 40a. The structure is simple, easy to process, and easy to install.
[0072] Of course, the limiting method is not limited to setting the wire hole 40a. It can also be achieved by setting a clamping part or a locking part to clamp or lock the cable 7.
[0073] Further, please refer to Figure 2 and Figure 3 In this embodiment, the cabinet 1 is provided with an inlet 1a and an outlet 1b. The reactor cabinet 100 also includes a fan assembly 5 installed on the inlet 1a or the outlet 1b. The reactor 2 includes a winding 22 and a housing 23. The housing 23 is sleeved around the winding 22 and has an air inlet and an air outlet 23a arranged opposite to each other. The cabinet 1 is also provided with a partition 11, which divides the cabinet 1 into an air inlet chamber a and an air outlet chamber b arranged at intervals. The partition 11 is provided with mounting holes 11a for installing the reactor 2. The air inlet and the air outlet 23a of the housing 23 are respectively located on both sides of the partition 11. The air inlet is connected to the inlet 1a through the air inlet chamber a, and the air outlet 23a is connected to the outlet 1b through the air outlet chamber b.
[0074] It is understood that the inlet 1a and the outlet 1b of the cabinet 1 are channels connecting the cabinet 1 to the external environment. The inlet 1a is used to introduce air, and the outlet 1b is used to exhaust air.
[0075] The fan assembly 5 is installed on the inlet 1a or outlet 1b of the cabinet 1 to help introduce outside air into the cabinet 1 or exhaust internal hot air, thereby improving the heat dissipation efficiency of the reactor cabinet 100.
[0076] The housing 23 is provided with an air inlet and an air outlet 23a. The air inlet and the air outlet 23a are positioned opposite each other to form an air inlet and outlet channel, which helps the air flow through the winding 22 to remove the heat generated by the winding 22 during its operation.
[0077] The partition 11 serves as a divider inside the cabinet 1, separating the cabinet 1 into the air inlet chamber a and the air outlet chamber b, which helps ensure smooth airflow. The air inlet chamber a is used to introduce cold air, while the air outlet chamber b is used to exhaust hot air.
[0078] The partition 11 is provided with mounting holes 11a for mounting the reactor 2, so as to ensure that the reactor 2 is fixed in the cabinet 1 and does not obstruct air circulation.
[0079] The air outlet 23a of the housing 23 is connected to the outlet 1b of the cabinet 1 through the air outlet cavity b, ensuring that hot air can be smoothly discharged from the cabinet 1, thereby achieving effective heat dissipation.
[0080] In this way, the cabinet 1 is divided into two cavities, ensuring the directionality of airflow and allowing the airflow to flow directionally through the housing 23, further improving the heat dissipation effect.
[0081] For further information, please refer to [link / reference]. Figure 2 and Figure 3 In some embodiments, the cabinet 1 is further provided with a partition 12, which separates the cabinet 1 into an electrical control installation area c; the reactor cabinet 100 also includes an electrical control device disposed in the electrical control installation area c, which is electrically connected to the reactor 2 and is used to control the operation of the reactor 2.
[0082] The partition 12 is a structural component inside the reactor cabinet 100. The partition 12 can be a baffle to divide the interior of the cabinet 1 into different areas. The partition 12 separates the cabinet 1 into a dedicated electrical control installation area c.
[0083] The electrical control device refers to the electrical equipment and control system inside the reactor cabinet 100 used to control and manage the reactor 2. The electrical control device can directly control the operation of the reactor 2. The electrical control device includes components such as a logic controller, relays, contactors, and connecting wires, and is responsible for adjusting the operating state of the reactor 2 according to the set program and instructions.
[0084] Thus, the partition 12 divides the internal space of the cabinet 1 into the electrical control installation area c and other functional areas, which helps optimize the internal layout, improve space utilization, and avoid interference between electrical components and other components, reducing potential safety hazards. In the event of a malfunction, it can effectively isolate the electrical control device from other equipment, protecting equipment and personnel safety. Centralizing the electrical control device in a dedicated area facilitates maintenance and repair. Technicians can more easily access the electrical control components during equipment maintenance, reducing operational difficulty.
[0085] Further, please refer to Figure 1 In this embodiment, the reactor cabinet 100 further includes a control device 6, which includes operation keys and / or a display control area disposed on the outer surface of the cabinet 1. The electrical control device is electrically connected to the control device 6 and is used to operate according to the control device 6.
[0086] It is understood that the control device 6 includes operation keys and / or display control area set on the surface of the cabinet 1, so the user can interact with the reactor cabinet 100 through the operation interface.
[0087] The operation keys are typically physical buttons or a touchscreen, used to perform specific functions, such as turning the reactor cabinet 100 on / off, adjusting the operating mode, and troubleshooting. The display and control area can be a display screen or indicator light area, used to display the operating status, fault information, and operating parameters of the reactor cabinet 100. Through the display and control area, users can monitor the operation of the reactor cabinet 100 in real time and perform corresponding operations.
[0088] With the operation keys and display area located on the surface of the cabinet 1, users can easily and quickly operate the reactor cabinet 100, reducing the complexity of use. The display area can display the operating status and important parameters of the reactor cabinet 100 in real time, enabling users to understand the working status of the equipment in a timely manner, facilitating troubleshooting and maintenance.
[0089] In another embodiment, please refer to Figures 4 to 6 The electrical control device may not be installed inside the reactor cabinet 100, thus not occupying the internal space of the reactor cabinet 100. Especially when the reactor 2 is large, the electrical control device and the control device 6 can be installed outside the cabinet 1.
[0090] This utility model also proposes an electrical control device, which includes a power cabinet and a reactor cabinet 100. The specific structure of the reactor cabinet 100 is as described in the above embodiments. Since this electrical control device adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here.
[0091] The above description is merely an exemplary embodiment of the present utility model and does not limit the patent scope of the present utility model. Any equivalent structural transformations made based on the technical concept of the present utility model and the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.
Claims
1. A reactor cabinet, characterized in that, include: A server rack, wherein the server rack is provided with an opening; A reactor is installed inside the cabinet, and the reactor has multiple wiring terminals; as well as, An integrated power connection assembly is installed in the cabinet and corresponding to the opening. The integrated power connection assembly includes multiple adapters, one end of which is a connection end and the other end is a power connection end. The connection end is electrically connected to a corresponding wiring section, and the power connection end is used to connect to external power equipment.
2. The reactor cabinet as described in claim 1, characterized in that, The opening is located on one side of the cabinet in the longitudinal direction; The reactor includes multiple windings, each winding having two terminals, and the multiple windings are arranged at intervals along the longitudinal direction.
3. The reactor cabinet as described in claim 1 or 2, characterized in that, The integrated power connection assembly also includes an insulating mounting section, and the plurality of adapters are installed at intervals on the insulating mounting section.
4. The reactor cabinet as described in claim 3, characterized in that, The multiple adapters are arranged at intervals in the horizontal direction.
5. The reactor cabinet as described in claim 1, characterized in that, The connection end is connected to a corresponding wiring part via a cable; The reactor cabinet also includes a plurality of limiting parts installed in the cabinet. The plurality of limiting parts are disposed between the plurality of wiring parts and the plurality of adapters, and each of the limiting parts is used to limit the cable.
6. The reactor cabinet as described in claim 5, characterized in that, The reactor cabinet further includes a mounting bracket installed on the cabinet, the mounting bracket including a mounting part and the plurality of limiting parts provided on the mounting part; and / or, Each of the limiting parts is provided with a wire-passing hole for the cable to pass through.
7. The reactor cabinet as described in claim 1, characterized in that, The cabinet is provided with an inlet and an outlet, and the reactor cabinet also includes a fan assembly installed at the inlet or the outlet; The reactor includes a winding and a housing. The housing is sleeved around the winding and has an air inlet and an air outlet that are arranged opposite to each other. The cabinet is also equipped with a partition, which divides the cabinet into an air inlet chamber and an air outlet chamber. The partition is provided with mounting holes for installing the reactor. The air inlet and the air outlet of the housing are respectively located on both sides of the partition.
8. The reactor cabinet as described in claim 1, characterized in that, The cabinet is also equipped with a partition, which separates the cabinet into an electrical control installation area; The reactor cabinet also includes an electrical control device located in the electrical control installation area. The electrical control device is electrically connected to the reactor and is used to control the operation of the reactor.
9. The reactor cabinet as described in claim 8, characterized in that, The reactor cabinet also includes a control device, which includes operation keys and / or a display control area disposed on the outer surface of the cabinet. The electrical control device is electrically connected to the control device and is used to operate according to the control device.
10. An electrical control device, characterized in that, Includes the reactor cabinet as described in any one of claims 1 to 9.