Disclosure of utility model
The utility model mainly aims to provide an energy storage cabinet and an outlet structure thereof, which can flexibly arrange lines when the energy storage equipment is assembled, and simultaneously is beneficial to adjusting and changing the lines so as to adapt to the requirements of different requirements and scenes.
The aim of the utility model can be achieved by adopting the following technical scheme:
The energy storage cabinet comprises a cabinet body, wherein an upper wire outlet assembly is arranged at the top of the cabinet body and comprises a wire outlet box, a wire collecting hole and a wire outlet hole, wherein the wire collecting hole is arranged between the wire outlet box and the cabinet body, the wire outlet hole is arranged on the wire outlet box, the wire collecting hole is communicated with the wire outlet hole, and a cable on the cabinet body can be routed through the wire collecting hole and the wire outlet hole.
The wire outlet box is provided with a detachable cable mounting plate, and the wire outlet holes are arranged on the cable mounting plate.
The wire outlet box comprises a supporting top plate and supporting side plates respectively connected to opposite sides of the supporting top plate, and the cable mounting plate is arranged on one side of the supporting top plate.
The circuit breaker is characterized in that guide plates are respectively arranged on opposite sides of the outlet box, circuit breaker fixing plates are arranged between the guide plates, and the opposite sides of the circuit breaker fixing plates are respectively abutted to the adjacent guide plates.
The opposite side surfaces of the circuit breaker fixing plate are respectively provided with a side wing, the bottom end of the guide plate is provided with a first bending part, and the side wings are respectively abutted with the adjacent first bending parts.
The top of the cabinet body is also provided with an energy storage converter, one side of the energy storage converter is provided with an air outlet component, and the air outlet component comprises a channel, wherein the channel is used for guiding out air flow from the direction of the energy storage converter outwards.
The top of the cabinet body is also provided with a top cover capable of being opened and closed, a driving assembly is arranged between the top cover and the cabinet body, and the driving assembly is used for controlling the opening and closing of the top cover.
The cabinet is characterized in that a cavity is arranged in the cabinet body, a refrigerating assembly is arranged on the outer side of the cabinet body, and the refrigerating assembly is used for conveying cooling gas to the cavity.
The top of the cavity is provided with a ventilation assembly, and the ventilation assembly is used for absorbing hot air in the cavity and conveying the hot air to the refrigeration assembly for cooling.
The wire outlet structure of the energy storage cabinet comprises a wire outlet box, a wire collecting hole and a wire outlet hole, wherein the wire collecting hole is arranged between the wire outlet box and the cabinet body, the wire outlet hole is arranged on the wire outlet box, and the wire outlet box is used for being arranged at the top of the cabinet body;
the line concentration hole is communicated with the line outlet hole, so that a cable on the cabinet body can be routed through the line concentration hole and the line outlet hole, and the line outlet hole is detachably arranged relative to the line outlet box.
The beneficial technical effects of the utility model are as follows:
Compared with the traditional bottom outlet, the upper outlet assembly of the utility model utilizes the space above the cabinet body which is usually free, provides more possibility and space for circuit arrangement, and remarkably improves the flexibility of circuit arrangement. This design allows for more flexible layout and adjustment of the lines as required by the installation scenario, especially in situations where space within the cabinet is limited or where line layout requirements are variable.
Drawings
Fig. 1 is a schematic perspective view of an energy storage cabinet body and an upper outlet assembly thereof according to an embodiment of the present utility model;
fig. 2 is a schematic perspective view of an outlet assembly and an air outlet assembly on an energy storage cabinet according to an embodiment of the present utility model;
FIG. 3 is an enlarged schematic view of FIG. 2;
FIG. 4 is a schematic top view of an energy storage cabinet according to an embodiment of the present utility model;
Fig. 5 is a schematic perspective view of a cabinet body of an energy storage cabinet according to an embodiment of the utility model;
Fig. 6 is a schematic perspective view of a ventilation assembly of an energy storage cabinet according to an embodiment of the utility model;
fig. 7 is a schematic perspective view of an air outlet assembly of an energy storage cabinet according to an embodiment of the utility model.
Reference numerals illustrate:
In the figure, 1-cabinet, 101-cavity, 2-upper outlet assembly, 201-outlet box, 2011-supporting top plate, 2012-supporting side plate, 2013-accommodating space, 202-line concentration hole, 203-outlet hole, 3-cable mounting plate, 4-guide plate, 401-first bending part, 5-circuit breaker fixing plate, 501-flank, 502-second bending part, 6-energy storage converter, 7-air outlet assembly, 701-channel, 702-inlet, 703-outlet, 8-top cover, 801-cable channel, 9-driving assembly, 10-refrigerating assembly, 11-ventilation assembly, 1101-air outlet shell, 1102-exhaust fan, 12-ventilation dustproof assembly,
Detailed Description
In order to make the technical solution of the present utility model more clear and obvious to those skilled in the art, the present utility model will be described in further detail with reference to examples and drawings, but the embodiments of the present utility model are not limited thereto.
As shown in fig. 1-7, the energy storage cabinet provided by the embodiment comprises a cabinet body 1, wherein an upper wire outlet assembly 2 is arranged at the top of the cabinet body 1, the upper wire outlet assembly 2 comprises a wire outlet box 201, a wire collecting hole 202 is arranged between the wire outlet box 201 and the cabinet body 1, and a wire outlet hole 203 is arranged at the front side of the wire outlet box 201. The wire collecting hole 202 penetrates through the cabinet body 1 and is communicated with the wire outlet hole 203, so that cables in or outside the cabinet body 1 can be routed through the wire collecting hole 202 and the wire outlet hole 203, and the purpose that the cables are led out from the top of the cabinet body 1 is achieved.
The upper outlet assembly 2 allows the cable to be routed from the top of the cabinet 1, increasing flexibility of wiring compared to conventional bottom outlet schemes.
In the present embodiment, the detachable cable mount plate 3 is mounted on the front side of the outlet box 201, and a plurality of outlet holes 203 are provided and are uniformly arranged on the cable mount plate 3. The plurality of wire outlet holes 203 are spaced apart in the longitudinal direction of the wire mounting plate 3.
The design can replace and disassemble the cable mounting plate 3, is convenient for adapting to cables with different numbers and types, ensures that different cables can be mutually separated and orderly stretched out or stretched in a preset direction when passing through the cable mounting plate 3, and is also convenient for adjusting and maintaining the cables.
In this embodiment, the outlet box 201 includes a supporting top plate 2011 and supporting side plates 2012 respectively connected to left and right sides of the supporting top plate 203. The cable mounting plate 3 is detachably mounted to the front side of the support top plate 2011.
The supporting top plate 2011 is located at the top of the two supporting side plates 2012, so that a larger accommodating space 2013 can be formed below the supporting top plate 2011, and the accommodating space 2013 is respectively communicated with the wire collecting holes 202 and the wire outlet holes 203, so that the wire outlet box 201 provides more wiring space for the cables, and the arrangement is convenient for distribution and management of the cables.
In this embodiment, a guide plate 4 is respectively disposed on the left and right sides of the top of the outlet box 201, and a circuit breaker fixing plate 5 is interposed between the two guide plates 4.
When the breaker fixing plate 5 is inserted between the two guide plates 4, the left and right sides of the breaker fixing plate 5 are respectively abutted against the adjacent guide plates 4. At this time, the guide plate 4 plays a role in limiting and guiding the circuit breaker fixing plate 5, so that the circuit breaker fixing plate 5 can only be continuously inserted or reversely separated along the inserting direction, and the circuit breaker fixing plate 5 is rapidly and accurately installed.
In this embodiment, the left and right sides of the circuit breaker fixing plate 5 are provided with one wing 501, respectively. The guide plate 4 has a C-shaped structure, and the bottom end thereof is bent upward to form a first bending portion 401, and the first bending portion 401 can be attached to the outer wall of the side wing 501 in a larger area when the circuit breaker fixing plate 5 is mounted.
In this embodiment, the top ends of the side wings 501 are bent in the horizontal direction to form second bending portions 502, the second bending portions 502 are located below the top ends of the guide plates 4 adjacent to the second bending portions 502, and the second bending portions 502 can be attached to the bottom surfaces of the top ends of the guide plates 4 when the circuit breaker fixing plate 5 is mounted.
In this way, the first bending portion 401 of the guide plate 4 cooperates with the outer wall of the side wing 501, and the second bending portion 502 cooperates with the top end of the guide plate 4, so that the circuit breaker fixing plate 5 can not shift left and right or up and down in the installation process, and the installation process is ensured to be extremely stable and rapid.
In this embodiment, the top of the cabinet body 1 is further provided with an energy storage converter 6, and the energy storage converter 6 and the upper outlet assembly 2 are distributed at left and right intervals.
The front side of the energy storage converter 6 is provided with air outlet assemblies 7 at intervals, and the air outlet assemblies 7 comprise channels 701, wherein the channels 701 are used for receiving air flow from the direction of the energy storage converter 6 and guiding the air flow out of the cabinet body 1. The external cold air can be blown onto the energy storage converter 6, so that the hot air generated by the energy storage converter 6 is guided out of the cabinet 1 via the channel 701.
The air outlet assembly 7 is used as an independent ventilation structure and is mainly responsible for effectively guiding out hot air flow from the direction of the energy storage converter 6, so that the air flow around the energy storage converter 6 can effectively flow, and the heat generated by the energy storage converter 6 in the operation process can be emitted.
In this embodiment, after the cable of the energy storage battery in the cabinet body 1 extends out from the outlet box 201, the cable can be connected to the energy storage converter 6 at the top of the cabinet body 1, so as to realize conversion and storage of electric energy.
In this embodiment, the air outlet assembly 7 comprises an inlet 702 and an outlet 703, wherein the inlet 702 faces the energy storage converter 6, and the outlet 703 faces the outside of the cabinet 1.
Wherein, the caliber of the outlet 703 is larger than that of the inlet 702, and the inlet 702 and the outlet 703 are communicated through the channel 701, so that a small-to-large airflow guiding structure is formed, and the airflow guidance around the energy storage converter 6 is optimized. The air flow guiding structure is the air outlet component 7.
The inlet 702 is arranged towards the energy storage converter 6, so that after the external cold air flows along the energy storage converter 6, the cold air can directly flow out of the cabinet body 1 along with the hot air through the air flow guiding structure. This design helps the cool air (air flow) to leave the cabinet 1 more smoothly through the enlarged outlet 703 after absorbing heat through the energy storage inverter 6.
The resistance of the air flow can be reduced by designing the air flow path from small to large, so that the hot air can be discharged out of the cabinet body 1 more quickly, thereby improving the heat dissipation efficiency.
In this embodiment, the top of the cabinet body 1 is hinged with a top cover 8, a driving assembly 9 is arranged between the top cover 8 and the cabinet body 1, and the driving assembly 9 is used for controlling the opening and closing of the top cover 8 relative to the cabinet body 1. The top cover 8 mainly protects the air outlet assembly 7, the energy storage converter 6 and the upper outlet assembly 2.
In this embodiment, the driving component 9 is a gas spring, and the gas spring is mainly used to facilitate the control of the turnover of the top cover 8, so as to improve the safety and the convenience in maintenance.
In this embodiment, the cables on the cabinet 1 may extend outwardly or inwardly through the cable channels 801 on the top cover 8.
In this embodiment, a cavity 101 is provided in the cabinet 1, and a plurality of energy storage batteries are installed in the cavity 101 in the height direction. The outside of the cabinet body 1 is provided with a refrigeration component 13, and the refrigeration component 13 is used for conveying cooling gas to the cavity 101 so as to cool the energy storage battery and other components in the cavity 101.
The top of the cavity 101 is provided with a ventilation assembly 11, and the ventilation assembly 11 is used for absorbing hot air in the cavity 101 and conveying the hot air to the refrigeration assembly 13, so that the refrigeration assembly 13 converts the hot air into cold air and then blows the cold air to the cavity 101, and therefore the energy storage battery and other components in the cavity 101 are cooled.
In the present embodiment, the cavities 101 are provided in two, and they are arranged adjacently on the left and right. The top of each cavity 101 is provided with a ventilation assembly 11, the ventilation assembly 11 comprises an air outlet shell 1101, and an exhaust fan 1102 is arranged at the inlet of the air outlet shell 1101. Each cavity is independently exhausted and is not mutually influenced so as to meet the use requirements of different users and application scenes.
In this embodiment, the top of the cabinet body 1 is provided with a plurality of ventilation dustproof assemblies 12, and the plurality of ventilation dustproof assemblies 12 are respectively arranged on the front and rear sides of the energy storage converter 6, the air outlet assembly 7 and the upper outlet assembly 2.
In this embodiment, the ventilation and dust prevention component 12 may be a shutter, and on the premise of effectively blocking the entry of the floaters in the external environment, the ventilation effect of the air outlet component 7 is not affected.
In the embodiment, an outlet structure of the energy storage cabinet is also provided, and the outlet structure comprises an outlet box 201, a line concentration hole 202 arranged between the outlet box 201 and the cabinet body 1, and an outlet hole arranged on the outlet box 201, wherein the outlet box 201 is arranged at the top of the cabinet body 1;
The wire collecting hole 202 and the wire outlet hole 203 are communicated, so that the wires on the cabinet body 1 can be routed through the wire collecting hole 202 and the wire outlet hole 203, and the wire outlet hole 203 is detachably arranged relative to the wire outlet box 201. The detachable arrangement of the wire outlet hole 203 is specifically realized in such a way that the wire outlet hole 203 is arranged on the cable mounting plate 3, and the cable mounting plate 3 is detachably connected with the wire outlet box 201.
In summary, in the present embodiment, the configuration of the outlet box 201 at the top of the cabinet body 1 provided in the present embodiment makes the connection, disconnection and adjustment of the cable more flexible and convenient. And the upper outlet assembly 2 provides better adaptability and flexible circuit arrangement can be performed according to different installation environments.
The above description is merely a further embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto, and any person skilled in the art will be able to apply equivalents and modifications according to the technical solution and the concept of the present utility model within the scope of the present utility model disclosed in the present utility model.