Ventilation structure of energy storage container

By setting up a mobile adjustment component and a ventilation fan driven by a reciprocating motor in the energy storage container, the problem of uneven air distribution is solved, a more uniform ventilation and heat dissipation effect is achieved, and the service life of the equipment is extended.

CN223296912UActive Publication Date: 2025-09-02HUAHUI HONGJIN NEW MATERIAL TECHNOLOGY (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202422725411.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-08
Publication Date
2025-09-02
Estimated Expiration
2034-11-08

AI Technical Summary

Technical Problem

Uneven air conditioning and air distribution inside energy storage containers leads to local overheating, affecting equipment performance and life, and posing safety hazards.

Method used

The ventilating fan is driven by a mobile adjustment component and a reciprocating motor to realize the reciprocating movement of the fan, evenly agitate the air in the container, and dynamic ventilation and cooling are carried out in conjunction with the air-conditioning cabinet.

Benefits of technology

Achieve uniform distribution of air conditioners in containers, avoid local overheating, improve heat dissipation efficiency, and extend equipment life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a ventilation structure of an energy storage container, which belongs to the field of UHPC energy storage containers and comprises a UHPC energy storage container body. A mounting frame is assembled in the UHPC energy storage container body, and two movable adjusting assemblies are mounted on the top of the mounting frame in parallel in the transverse direction of the mounting frame. A mounting base is assembled between the two movable adjusting assemblies, and a plurality of ventilation fans are mounted on the mounting base. Compared with a traditional fixed arrangement mode, the ventilation structure of the energy storage container can effectively stir air in the UHPC energy storage container body, after a cold air cabinet in the UHPC energy storage container body is driven, cold air can be further evenly distributed in the UHPC energy storage container body, and the ventilation effect of the UHPC energy storage container body is improved. Therefore, the local overheating phenomenon in the UHPC energy storage container body is avoided, the overall heat dissipation and ventilation efficiency is improved, meanwhile, the dynamic ventilation fan can prevent fixed hot spots from being formed in the UHPC energy storage container body, and the service life of equipment is prolonged.
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Description

Technical Field

[0001] The utility model belongs to the field of UHPC energy storage containers, and in particular relates to a ventilation structure of an energy storage container. Background Art

[0002] UHPC energy storage containers refer to the shell or structure of energy storage equipment made primarily of ultra-high performance concrete (UHPC). UHPC is a concrete material with extremely high strength, durability, and corrosion resistance. Made through a special formulation and process, it boasts extremely low porosity and excellent mechanical properties. Energy storage containers are typically used to store and manage electrical energy, such as battery energy storage systems (BESS). They can store electricity from renewable energy sources such as solar and wind power, or provide power during peak grid demand.

[0003] In actual use, energy storage containers typically generate a significant amount of heat when storing and protecting electrical energy. To prevent high-temperature damage to electrical equipment, fans are typically installed inside the containers in conjunction with air conditioners to ventilate and cool the equipment. However, due to the fixed position of the fans during ventilation and cooling, the flow path and intensity of the cooling air can be uneven within the container, resulting in lower temperatures in some areas and higher temperatures in others. This temperature difference can affect the performance and lifespan of the electrical energy storage equipment. Furthermore, when the cooling air is unevenly distributed, certain areas may experience localized overheating, which can accelerate equipment aging and even cause safety issues such as battery thermal runaway. Therefore, a ventilation structure for energy storage containers is proposed to address these issues. Utility Model Content

[0004] In response to one or more of the above-mentioned defects or improvement needs of the prior art, the present invention provides a ventilation structure for an energy storage container, which has the advantages of better ventilation and heat dissipation effects and more uniform distribution of ventilation and cooling inside the energy storage container.

[0005] To achieve the above-mentioned purpose, the utility model provides an energy storage container ventilation structure, comprising a UHPC energy storage container body;

[0006] The UHPC energy storage container body is a rectangular box structure with a box cavity formed inside;

[0007] The UHPC energy storage container body is equipped with a mounting frame, and two sets of movable adjustment components are installed in parallel along the top of the mounting frame; a mounting seat is installed between the two sets of movable adjustment components, and a plurality of ventilation fans are installed on the mounting seat;

[0008] The movable adjustment assembly includes a screw seat provided on the mounting frame, a bearing seat installed in the screw seat, a ball bearing assembled in the bearing seat, a threaded screw rotating in the ball bearing; a screw nut is engaged with the outside of the threaded screw, and a connecting seat is sleeved on the outside of the screw nut;

[0009] Two connecting seats in the two groups of movable adjustment components are provided with slots on their opposite sides and positioning seats are installed in the slots, and a plurality of extrusion springs are connected to the sides of the positioning seats;

[0010] The two ends of the mounting seat are respectively embedded in one of the connecting seats.

[0011] As a further improvement of the present invention, both ends of the mounting seat are provided with protruding plates, and the two protruding plates pass through one of the connecting seats and extend to abut against the end face of the extrusion spring; a plurality of mounting grooves are opened on the mounting seat, and the mounting grooves are used to install the ventilation fan.

[0012] As a further improvement of the present invention, the movable adjustment component also includes a reciprocating motor arranged on the side of the screw seat, the output end of the reciprocating motor passes through the ball bearing and is connected to one end of the threaded screw; two side rods are installed on the screw seat, and the two side rods are respectively arranged on one side of the threaded screw and both pass through the bottom of the connecting seat.

[0013] As a further improvement of the present invention, the upper end surface of the installation frame is provided with a plurality of cross beams in a crisscross pattern, and the plurality of cross beams are laid above the two groups of movable adjustment components.

[0014] As a further improvement of the present invention, a ventilation window is provided on the side of the UHPC energy storage container body; a transparent acrylic plate is embedded in the ventilation window.

[0015] As a further improvement of the present invention, a photovoltaic panel bracket is installed on the upper end surface of the UHPC energy storage container body, and a solar panel is supported on the photovoltaic panel bracket. A power box is provided in the UHPC energy storage container body, and the solar panel is electrically connected to the ventilation fan and the movable adjustment component through a wire.

[0016] In general, the above technical solutions conceived by the present invention have the following beneficial effects compared with the prior art:

[0017] In actual use, the energy storage container ventilation structure of the present invention enables the ventilation fan installed on the mounting base to reciprocate along the travel range of the movable adjustment assembly through the mutual movement and coordination of multiple structures within the movable adjustment assembly. Compared with the traditional fixed arrangement, the ventilation structure of the present application can effectively stir the air within the UHPC energy storage container body through the reciprocating ventilation fan. At this time, when the air conditioning cabinet within the UHPC energy storage container body is driven, the cold air can be further evenly distributed within the UHPC energy storage container body, thereby avoiding local overheating within the UHPC energy storage container body, thereby improving the overall heat dissipation and ventilation efficiency. At the same time, the dynamic ventilation fan can prevent the formation of fixed hot spots within the UHPC energy storage container body, ensuring that all equipment within the UHPC energy storage container body can be effectively cooled, thereby extending the service life of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the overall installation structure of the utility model;

[0019] Figure 2 This is a schematic diagram of the overall installation structure of the installation frame and the movable adjustment component of the utility model;

[0020] Figure 3 This is a schematic diagram of the overall installation structure of the mobile adjustment component of the utility model;

[0021] Figure 4 This is a schematic diagram of the mounting structure of the mounting base and ventilation fan of the utility model.

[0022] In all the drawings, the same reference numerals represent the same technical features, specifically: 1. UHPC energy storage container body; 2. Ventilation window; 3. Mounting frame; 4. Crossbeam; 5. Movable adjustment assembly; 51. Screw seat; 511. Side rod; 52. Bearing seat; 53. Ball bearing; 54. Threaded screw; 55. Screw nut; 56. Connecting seat; 57. Reciprocating motor; 58. Positioning seat; 59. Extrusion spring; 6. Mounting seat; 61. Protruding plate; 62. Mounting groove; 7. Ventilation fan; 8. Photovoltaic panel bracket; 9. Solar panel. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] Example

[0025] Depend on Figure 1-4 Provided is a ventilation structure for an energy storage container, comprising a UHPC energy storage container body 1;

[0026] The UHPC energy storage container body 1 is a rectangular box structure with a box cavity formed inside;

[0027] A mounting frame 3 is assembled in the UHPC energy storage container body 1, and two sets of movable adjustment components 5 are installed in parallel along the top of the mounting frame 3; a mounting seat 6 is assembled between the two sets of movable adjustment components 5, and a plurality of ventilation fans 7 are installed on the mounting seat 6;

[0028] The movable adjustment assembly 5 includes a screw seat 51 provided on the mounting frame 3, a bearing seat 52 being installed in the screw seat 51, a ball bearing 53 being assembled in the bearing seat 52, a threaded screw 54 being rotatably provided in the ball bearing 53, a screw nut 55 being meshed with the outside of the screw nut 55, and a connecting seat 56 being sleeved on the outside of the screw nut 55;

[0029] The two connecting seats 56 in the two sets of movable adjustment components 5 have slots on their opposite sides and positioning seats 58 are installed in the slots. The sides of the positioning seats 58 are connected to a plurality of extrusion springs 59.

[0030] Both ends of the mounting seat 6 are respectively embedded in one of the connecting seats 56 .

[0031] In this embodiment, in actual use, the ventilation fan 7 installed on the mounting seat 6 can reciprocate along the travel range of the movable adjustment assembly 5 through the mutual movement and coordination of multiple structures within the movable adjustment assembly 5. Compared with the traditional fixed arrangement, the ventilation structure of the present application can effectively stir the air within the UHPC energy storage container body 1 through the reciprocating ventilation fan 7. At this time, when the air conditioner in the UHPC energy storage container body 1 is driven, the cold air can be further evenly distributed in the UHPC energy storage container body 1, thereby avoiding local overheating in the UHPC energy storage container body 1, thereby improving the overall heat dissipation and ventilation efficiency. At the same time, the dynamic ventilation fan 7 can prevent the formation of fixed hot spots in the UHPC energy storage container body 1, ensuring that all equipment in the UHPC energy storage container body 1 can be effectively cooled, thereby extending the service life of the equipment.

[0032] It should be further explained that an air conditioner is installed in the UHPC energy storage container body 1, which can be used to cool the UHPC energy storage container body 1. At the same time, in conjunction with the ventilation fan 7, rapid cooling and ventilation of the UHPC energy storage container body 1 can be achieved.

[0033] Specifically, refer to Figure 4Both ends of the mounting seat 6 are protruding with convex plates 61, and the two convex plates 61 pass through one of the connecting seats 56 and extend to abut against the end surface of the extrusion spring 59; a plurality of mounting grooves 62 are opened on the mounting seat 6, and the mounting grooves 62 are used to install the ventilation fan 7.

[0034] In this embodiment, the protruding plate 61 arranged on the side of the mounting seat 6 can be used to cooperate with the extrusion spring 59, thereby realizing a tight connection between the mounting seat 6 and the two connecting seats 56. At the same time, the mounting groove 62 arranged on the mounting seat 6 can be used for the installation of the ventilation fan 7.

[0035] Furthermore, during use, the user presses one end of the mounting seat 6 and allows the protruding plate 61 to enter the connecting seat 56. At this time, the protruding plate 61 presses against the extrusion spring 59, so that the extrusion spring 59 can be compressed. At the same time, the user can install the protruding plate 61 at the other end into the connecting seat 56 in the same way. At this time, the mounting seat 6 can be quickly installed between the two connecting seats 56 through the reset rebound of the two extrusion springs 59.

[0036] Specifically, refer to Figure 2-3 The movable adjustment component 5 also includes a reciprocating motor 57 arranged on the side of the screw seat 51. The output end of the reciprocating motor 57 passes through the ball bearing 53 and is connected to one end of the threaded screw 54; two side rods 511 are installed on the screw seat 51. The two side rods 511 are respectively arranged on one side of the threaded screw 54 and both pass through the bottom of the connecting seat 56.

[0037] In this embodiment, the reciprocating motor 57 is provided to control the rotation of the screw rod 54. During use, the user connects a power source to the reciprocating motor 57 so that the output end of the reciprocating motor 57 can drive the screw rod 54 to rotate back and forth.

[0038] Furthermore, the power supply connection method of the reciprocating motor 57 is the existing technology, and the reciprocating control circuit can be implemented by simple programming by technicians in this field. It is common knowledge in this field and is only used without modification. Therefore, the control method and circuit connection will not be described in detail.

[0039] Specifically, refer to Figure 1-2 The upper end surface of the mounting frame 3 is provided with a plurality of cross beams 4 in a crisscross pattern, and the plurality of cross beams 4 are laid above the two groups of movable adjustment components 5.

[0040] In this embodiment, the crossbeam 4 is provided to provide top protection for the mounting base 6 and the ventilation fan 7, thereby preventing the mounting base 6 and the ventilation fan 7 from being hit during use and thus being damaged.

[0041] Specifically, refer to Figure 1A ventilation window 2 is provided on the side of the UHPC energy storage container body 1; a transparent acrylic plate is embedded in the ventilation window 2.

[0042] In this embodiment, the ventilation windows 2 are provided to allow fresh air from the outside to enter the UHPC energy storage container body 1, thereby providing cooling for the air conditioner in the UHPC energy storage container body 1, and also allowing the ventilation fan 7 to ventilate the UHPC energy storage container body 1.

[0043] Specifically, refer to Figure 1 A photovoltaic panel bracket 8 is installed on the upper end surface of the UHPC energy storage container body 1, and a solar panel 9 is supported on the photovoltaic panel bracket 8. A power box is provided in the UHPC energy storage container body 1, and the solar panel 9 is electrically connected to the ventilation fan 7 and the movable adjustment component 5 through wires.

[0044] In this embodiment, the photovoltaic panel bracket 8 can be used to install the solar panel 9, and the solar panel 9 can be used to connect the wires to provide independent power supply to the reciprocating motor 57 and the ventilation fan 7 in the movable adjustment component 5.

[0045] It should be noted that, during use, the solar panel 9 provided is an existing mature structural component, its power connection method is existing technology, and the control circuit can be realized through simple programming by technicians in this field, which is common knowledge in this field. It is only used and not modified, so the control method and circuit connection will not be described in detail.

[0046] It should be further explained that, in actual power supply, solar electrical components such as inverters and batteries used to convert the power generated by the solar panels 9 are integrated and installed inside the UHPC energy storage container body 1. At the same time, users can also use power boxes to install and protect the electrical components, so that the solar panels 9 can generate solar energy and thus power the reciprocating motor 57 and the ventilation fan 7.

[0047] The energy storage container ventilation structure of the utility model:

[0048] Step 1: In actual use, the user builds the installation frame 3 inside the UHPC energy storage container body 1, and then uses the installation frame 3 to install the two sets of movable adjustment components 5. At the same time, the user can also build a number of beams 4 on the installation frame 3 to use the beams 4 to achieve shielding and protection for the movable adjustment components 5;

[0049] Step 2: After the movable adjustment assembly 5 is assembled, the user can drive the reciprocating motor 57 in the two sets of movable adjustment assemblies 5, so that the reciprocating motor 57 can drive the threaded screw 54 to rotate back and forth. When the threaded screw 54 rotates, it is limited by the two side rods 511 and the connecting seat 56. At this time, the screw nut 55 engaged with the outside of the threaded screw 54 can drive the connecting seat 56 to move back and forth along the stroke range of the threaded screw 54. Through the interlocking connection between the connecting seat 56 and the protruding plate 61, the extrusion spring 59 in the connecting seat 56 and the tight contact with the protruding plate 61, the mounting seat 6 installed between the two sets of movable adjustment assemblies 5 can follow and perform reciprocating linear movement.

[0050] Step 3: The user connects the ventilation fan 7 to a power source so that the ventilation fan 7 can be driven. At the same time, when the air conditioner in the UHPC energy storage container body 1 is driven, the reciprocating ventilation fan 7 can effectively stir the air in the UHPC energy storage container body 1, so that the cold air is evenly distributed in the UHPC energy storage container body 1, thereby avoiding local overheating in the UHPC energy storage container body 1 and improving the overall heat dissipation and ventilation efficiency.

[0051] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A ventilation structure for an energy storage container, comprising a UHPC energy storage container body (1), characterized in that: The UHPC energy storage container body (1) is a rectangular box structure with a box cavity formed inside; A mounting frame (3) is installed in the UHPC energy storage container body (1), and two groups of movable adjustment components (5) are installed in parallel along the transverse direction on the top of the mounting frame (3); a mounting seat (6) is installed between the two groups of movable adjustment components (5), and a plurality of ventilation fans (7) are installed on the mounting seat (6); The movable adjustment assembly (5) comprises a screw seat (51) arranged on the mounting frame (3), a bearing seat (52) is installed in the screw seat (51), a ball bearing (53) is assembled in the bearing seat (52), a threaded screw (54) is rotatably arranged in the ball bearing (53), a screw nut (55) is meshed with the outside of the threaded screw (54), and a connecting seat (56) is sleeved on the outside of the screw nut (55); Two connecting seats (56) in the two groups of movable adjustment components (5) are provided with slots on opposite sides thereof and positioning seats (58) are installed in the slots. The sides of the positioning seats (58) are connected to a plurality of extrusion springs (59); Both ends of the mounting seat (6) are respectively embedded in one of the connecting seats (56).

2. The energy storage container ventilation structure according to claim 1, characterized in that: Both ends of the mounting seat (6) are provided with convex plates (61), and the two convex plates (61) pass through one of the connecting seats (56) and extend to abut against the end surface of the extrusion spring (59); a plurality of mounting grooves (62) are provided on the mounting seat (6), and the mounting grooves (62) are used to install the ventilation fan (7).

3. The energy storage container ventilation structure according to claim 1, characterized in that: The movable adjustment assembly (5) further comprises a reciprocating motor (57) arranged on the side of the screw seat (51), wherein the output end of the reciprocating motor (57) passes through the ball bearing (53) and is connected to one end of the threaded screw (54); two side rods (511) are mounted on the screw seat (51), and the two side rods (511) are respectively arranged on one side of the threaded screw (54) and both pass through the bottom of the connecting seat (56).

4. The energy storage container ventilation structure according to claim 1, characterized in that: The upper end surface of the installation frame (3) is provided with a plurality of cross beams (4) in a crisscross pattern, and the plurality of cross beams (4) are laid above the two groups of movable adjustment components (5).

5. The energy storage container ventilation structure according to claim 1, characterized in that: A ventilation window (2) is provided on the side of the UHPC energy storage container body (1); a transparent acrylic plate is embedded in the ventilation window (2).

6. The energy storage container ventilation structure according to claim 1, characterized in that: A photovoltaic panel bracket (8) is installed on the upper end surface of the UHPC energy storage container body (1), and a solar panel (9) is supported on the photovoltaic panel bracket (8). A power supply box is provided in the UHPC energy storage container body (1), and the solar panel (9) is electrically connected to the ventilation fan (7) and the movable adjustment component (5) via a wire.