Energy-saving electric power equipment cooler
By adopting circulating water cooling and on-demand operation, and utilizing mechanical structure and floating block transmission, the problem of high energy consumption of traditional power equipment cooling system is solved, thus achieving the effect of energy saving and extending equipment life.
Patent Information
- Application Number
- CN202510515288.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2025-09-05
AI Technical Summary
Traditional power equipment cooling systems have high energy consumption, continuous operation leads to increased energy loss, and frequent start-up and shutdown of mechanical structures affects equipment life.
A circulating water cooling system is adopted, and mechanical structure and floating block auxiliary transmission are used to control the circulation and heat dissipation of cooling water through on-demand operation, thereby reducing continuous power consumption.
It achieves energy-saving effects, reduces energy consumption and extends the service life of equipment.
Smart Images

Figure CN120601293A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of equipment cooling, and in particular to an energy-saving power equipment cooler. Background Art
[0002] Power equipment coolers are used in a wide range of applications, from traditional power grids to new energy systems. Their core function is to ensure that power equipment operates efficiently within a safe temperature range through active or passive cooling.
[0003] Types of traditional cooling systems, such as common methods such as air cooling, oil cooling, and water cooling. Then analyze why each method has high energy consumption. For example, in an air cooling system, the fan may always run at full speed regardless of the load conditions, resulting in waste. In the case of oil cooling, the circulation pump may need to work continuously, which is also inefficient. Although the water cooling system is efficient, it is complicated to maintain and may have the risk of leakage. In addition, the use of water pumps also has the problem of high energy consumption. The above cooling methods often require the equipment to run continuously, resulting in increased energy loss over time. If the above devices are frequently started and stopped through sensors, they may be affected by the mechanical structure, which may cause the rotating device to fail faster due to the start-stop life, resulting in equipment loss.
[0004] Therefore, it is necessary to invent an energy-saving power equipment cooler to solve the above problems. Summary of the Invention
[0005] The purpose of the present invention is to provide an energy-saving power equipment cooler, which reduces continuous power consumption and achieves energy saving effect by circulating water cooling, operating on demand, utilizing mechanical structure, and auxiliary transmission through floating blocks.
[0006] To achieve this object, the present invention adopts the following technical solutions: The top end of the top rod is located at one end of the electrical box and is connected to the top of the water storage chamber.
[0007] As a preferred solution of an energy-saving power equipment cooler, the opening and closing assembly further includes a lower limit plate, an upper limit plate, a floating block, a push rod 1, a spur gear 4 and a water baffle, the lower limit plate and the upper limit plate are both installed on one side of the water storage cavity, the floating block is located therebetween, the push rod 1 and the push rod 2 are both installed on the top of the floating block, the lower limit plate and the upper limit plate are both provided with guide holes for the push rod 1 and the push rod 2 to slide longitudinally, the push rod 1 is provided with a rack 1 at one end located in the working cavity, the spur gear 4 is installed on one side of the working cavity and meshes with the rack 1, the end face of the water baffle is fitted with the drain outlet, the interior of the working base is provided with a guide groove for the water baffle to slide longitudinally, and one side of the water baffle is provided with a rack meshing with the spur gear 4; When the water level inside the water storage chamber begins to rise, the water baffle slides downward to close the drain outlet; When the water level inside the water storage cavity begins to drop, the water baffle slides upward to open the drain outlet.
[0008] As a preferred solution for an energy-saving power equipment cooler, the transmission assembly includes a transmission rod, a mounting seat, a spur gear 1, a spur gear 2, a synchronous belt, a spur gear 3, a bevel gear 1, a bevel gear 2 and a mounting bracket. The mounting seat is mounted on the inner side of the electrical box, and the transmission rod is rotatably connected to the mounting seats on both sides. The outer sides of the transmission rod are respectively sleeved with a spur gear 1 and a spur gear 2, a rack 2 is mounted on one side of the top rod 2, and the rack 2 is meshed with the spur gear 1. The mounting bracket is arranged on one side of the spur gear 2, and the spur gear 3 is rotatably mounted on one side of the mounting bracket. The synchronous belt is simultaneously meshed with the spur gear 2 and the spur gear 3. A bevel gear 1 coaxial with the spur gear 3 is provided on the inner side of the mounting bracket, and a bevel gear 2 meshing with the bevel gear 1 is installed on the inner top of the mounting bracket. The bevel gear 2 is used to drive the swing plate to swing synchronously.
[0009] As a preferred solution for an energy-saving power equipment cooler, a lower water inlet is provided at the bottom end of the cooling channel, the bottom end of the lower water inlet is connected to the water storage cavity, an upper water outlet is provided at the top end of the cooling channel, the upper water outlet is connected to the top water storage assembly, and a water baffle is rotatably installed inside the cooling channel to prevent cooling water backflow; When the water level inside the water storage cavity rises, the water baffle is in an open state; When the water level inside the water storage cavity drops, the baffle is in a closed state.
[0010] As a preferred solution for an energy-saving power equipment cooler, the top water storage assembly also includes a top water tank, a heat sink and an atomizing nozzle. The top water tank is located above the electrical box. A plurality of heat sink blocks for raising the water level are installed inside the top water tank. The upper water outlet is connected to the atomizing nozzle through a pipe, and the upper end face of the drainage pipe is located above the heat sink.
[0011] As a preferred solution for an energy-saving power equipment cooler, the heat dissipation assembly also includes a plurality of heat sinks installed on one side of the electrical component, and a heat exchange pipe is fixedly installed on one side of the heat sink. One end of the heat exchange pipe is connected to the water storage cavity, and the other end is connected to the cooling assembly.
[0012] As a preferred solution for an energy-saving power equipment cooler, the cooling component also includes a cooling cavity, the interior of which is equipped with multiple heat dissipation baffles that increase the cooling water flow area, the bottom end of the cooling cavity is equipped with heat dissipation piles for heat conduction, and the drain outlet is located at the bottom end of the cooling cavity.
[0013] As a preferred solution for an energy-saving power equipment cooler, a middle partition is provided in the middle of the water storage cavity, and the cavities on both sides of the water storage cavity are connected to each other through the bottom end. A push plate is provided on one side of the middle partition, and the telescopic end of the telescopic motor is fixedly connected to the push plate.
[0014] As a preferred solution for an energy-saving electric power equipment cooler, a fixing bracket is provided inside the electrical box, and the fixing bracket is used to assist in the installation of the heat dissipation component.
[0015] The beneficial effects of the present invention are as follows: by providing multiple cooling channels on the outer wall of the electrical box, and by using a push plate to transport cooling water from the water storage cavity to the top water storage tank, the temperature of the outer environment of the electrical box is reduced; the top water storage tank can absorb the heat accumulated on the top of the electrical box; by providing a drainage pipe, the excess cooling water in the top water storage tank can be discharged; during the discharge process, the water circulates inside the electrical box, thereby dissipating part of the heat inside the electrical box; the heat dissipation pipe is located on one side of the heat sink, and can transport the heat generated by the electrical components to the interior of the cooling cavity through the heat dissipation pipe, thereby cooling the interior of the electrical box; The telescopic motor controls the push plate to push the cooling water. The cooling water level rises, driving the float to slide upward and closing the water baffle. At this time, the cooling cavity and the water storage cavity are separated, leaving sufficient time for the cooling water to dissipate heat. When the push plate is retracted, the water level is restored, the float falls, and the water baffle is opened to inject the cooled cooling water into the water storage cavity, realizing the recycling of cooling water and achieving circulating water cooling. As the water level in the water storage chamber rises, the baffle opens and the cooling water flows into the cooling channel. When the water level drops, the baffle closes and the cooling water stays inside the cooling channel, continuously cooling the outer wall of the electrical box for a certain period of time, thereby achieving on-demand operation. When the temperature inside the electrical box rises to a certain level, the reciprocating movement of the telescopic motor controls the circulation of cooling water inside the cooling channel and the drainage pipe. The floating block displaces synchronously, driving the reciprocating swing of the swing plate, thereby increasing the airflow speed inside the electrical box and avoiding heat accumulation in one place. A push plate mechanical structure is used to replace the traditional water pump. Compared with fans and continuously running water pumps, energy consumption is reduced. The push plate can work when needed instead of running all the time, which can save electricity. This device achieves energy-saving effects through circulating water cooling, on-demand operation, the use of mechanical structure and auxiliary transmission through floating blocks to reduce continuous power consumption. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments of the present invention. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.
[0017] Figure 1 It is a schematic diagram of the overall structure of the electrical box of the present invention.
[0018] Figure 2 It is a schematic diagram of the side wall structure of the electrical box of the present invention.
[0019] Figure 3 This invention Figure 2 Enlarged structural diagram at point A in the middle.
[0020] Figure 4 It is a schematic structural diagram of the top water storage assembly of the present invention.
[0021] Figure 5 It is a schematic diagram of the position structure of the transmission component of the present invention.
[0022] Figure 6 It is a schematic diagram of the internal structure of the electrical box of the present invention.
[0023] Figure 7 This invention Figure 6 Enlarged structural diagram at point B in the middle.
[0024] Figure 8 It is a schematic diagram of the internal structure of the working base of the present invention.
[0025] Figure 9 It is a schematic diagram of the structure of the opening and closing component of the present invention.
[0026] Figure 10 It is a schematic diagram of the structure of the opening and closing assembly of the present invention in the closed state.
[0027] Figure 11 It is a schematic diagram of the structure of the opening and closing components of the present invention in the open state.
[0028] In the picture: 1. Electrical box; 101. Cooling channel; 102. Lower water inlet; 103. Water baffle; 104. Upper water outlet; 105. Fixing bracket; 2. Working base; 201. Working chamber; 202. Water storage chamber; 203. Middle partition; 204. Telescopic motor; 205. Push plate; 3. Top water storage assembly; 301. Top water storage tank; 302. Heat sink; 303. Atomizing nozzle; 304. Drain pipe; 4. Cooling assembly; 401. Cooling cavity; 402. Heat dissipation baffle; 403. Drainage outlet; 5. Transmission assembly; 501. Transmission rod; 502. Mounting seat; 503. Spur gear 1; 504. Spur gear 2; 505. Synchronous belt; 506. Spur gear 3; 507. Bevel gear 1; 508. Bevel gear 2; 509. Mounting bracket; 6. Heat dissipation assembly; 601. Heat sink; 602. Heat exchange pipe; 603. Swing plate; 7. Opening and closing assembly; 701. Lower limit plate; 702. Upper limit plate; 703. Floating block; 704. Push rod 1; 705. Push rod 2; 706. Rack 1; 707. Spur gear 4; 708. Water retaining plate; 709. Rack 2; 9. Heat dissipation pile. DETAILED DESCRIPTION
[0029] The technical solution of the present invention will be further described below with reference to the accompanying drawings and through specific implementation methods.
[0030] Among them, the drawings are only used for illustrative purposes and represent only schematic diagrams rather than actual pictures, and should not be understood as limiting this patent; in order to better illustrate the embodiments of the present invention, some parts of the drawings may be omitted, enlarged or reduced, and do not represent the size of the actual product; for those skilled in the art, it is understandable that some well-known structures and their descriptions in the drawings may be omitted.
[0031] The same or similar numbers in the drawings of the embodiments of the present invention correspond to the same or similar parts; in the description of the present invention, it should be understood that if the terms "upper", "lower", "left", "right", "inside", "outside" and the like indicate an orientation or position relationship based on the orientation or position relationship shown in the drawings, it is only for the convenience of describing the present invention and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, the terms describing the position relationship in the drawings are only used for illustrative purposes and cannot be understood as limiting this patent. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0032] In the description of the present invention, unless otherwise expressly specified or limited, when the term "connection" or the like appears to indicate a connection relationship between components, such term should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be internal communication between two components or an interaction between two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood in specific circumstances.
[0033] refer to Figures 1 to 11 The present invention provides an energy-saving power equipment cooler, including an electrical box 1, a working base 2 is provided below the electrical box 1, and the interior of the working base 2 includes a working cavity 201 and a water storage cavity 202. The interior of the plurality of side walls of the electrical box 1 is provided with a cooling channel 101, the bottom end of the cooling channel 101 is connected to the water storage cavity 202, and the top of the cooling channel 101 is provided with a top water storage component 3. A cooling component 4 is provided on one side of the working base 2, and the top water storage component 3 includes a plurality of drainage pipes extending from the interior of the electrical box 1 to the working cavity 201 and connected to the cooling component 4. Channel 304, the cooling component 4 includes a drain outlet 403 opened in the upper half of the water storage cavity 202, the interior of the working cavity 201 is equipped with an opening and closing component 7 for controlling the opening of the drain outlet 403 and a telescopic motor 204 for controlling the rising water level in the water storage cavity 202, the opening and closing component 7 includes a second top rod 705 extending to the interior of the electrical box 1, the interior of the electrical box 1 is provided with a plurality of heat dissipation components 6, the heat dissipation component 6 includes a plurality of swing plates 603 for avoiding heat accumulation, the second top rod 705 is located at one end of the electrical box 1 and is connected to a transmission component 5 for driving the swing plate 603 to swing.
[0034] The cooling component 4 can be connected to an external electrically controlled cooling device to quickly reduce the water temperature of the cooling component 4 and to ensure the cooling effect of the cooling water in extreme cases. The working process is as follows: heat is generated inside the electrical box 1, and the cooling water rises from the water storage cavity 202 through the cooling channel 101. After absorbing heat, it enters the top water storage component 3 and then flows to the cooling component 4 through the drainage pipe 304. The cooling component 4 cools the water and then returns it to the water storage cavity 202 through the drainage port 403. The telescopic motor 204 adjusts the water level of the water storage cavity 202. When the water level rises, the opening and closing component 7 closes the drainage port 403 to prevent the cooling water from entering the cooling cavity 401 and ensure the drainage water pressure. At the same time, the top rod 705 triggers the transmission component 5, and the swing plate 603 swings to enhance heat dissipation. A temperature sensor needs to be set inside the electrical box 1 to detect the internal temperature, thereby controlling the opening of the telescopic motor 204.
[0035] The opening and closing assembly 7 also includes a lower limit plate 701, an upper limit plate 702, a floating block 703, a push rod 1 704, a spur gear 4 707 and a water baffle 708. The lower limit plate 701 and the upper limit plate 702 are both installed on one side of the water storage cavity 202, and the floating block 703 is located between the two. The push rod 1 704 and the push rod 2 705 are both installed on the top of the floating block 703. The lower limit plate 701 and the upper limit plate 702 are both provided with a push rod 1 704 and A guide hole for the longitudinal sliding of the second push rod 705 is provided, and a rack 706 is installed at one end of the push rod 1 704 located at the working chamber 201. The fourth spur gear 707 is installed on one side of the working chamber 201 and meshes with the rack 1 706. The end face of the water baffle 708 is fitted with the drain outlet 403. A guide groove for the longitudinal sliding of the water baffle 708 is provided inside the working base 2. A rack meshing with the fourth spur gear 707 is provided on one side of the water baffle 708. When the water level inside the water storage chamber 202 begins to rise, the water retaining plate 708 slides downward to close the drain outlet 403; When the water level in the water storage chamber 202 begins to drop, the water retaining plate 708 slides upward to open the drain outlet 403 .
[0036] The top rod 704 slides upward to drive the spur gear 4 707 to rotate, and the spur gear 4 707 drives the water baffle 708 to slide downward to close the drain outlet 403; the lower limit plate 701 and the upper limit plate 702 are both provided with through grooves to avoid interference with the water baffle 708, and a limit block can be set inside the working chamber 201 to guide the water baffle 708. The transmission assembly 5 includes a transmission rod 501, a mounting seat 502, a spur gear 1 503, a spur gear 2 504, a synchronous belt 505, a spur gear 3 506, a bevel gear 1 507, a bevel gear 2 508 and a mounting bracket 509. The mounting seat 502 is installed on the inner side of the electrical box 1. The transmission rod 501 is rotatably connected to the mounting seats 502 on both sides. The outer side of the transmission rod 501 is respectively provided with a spur gear 1 503 and a spur gear 2 504. A rack 2 709 is installed on one side of the top rod 2 705. The rack 2 709 and the spur gear The spur gear 503 is meshed with the spur gear 1 503, the mounting bracket 509 is arranged on one side of the spur gear 2 504, the spur gear 3 506 is rotatably mounted on one side of the mounting bracket 509, the synchronous belt 505 is meshed with the spur gear 2 504 and the spur gear 3 506 at the same time, the inner side of the mounting bracket 509 is provided with a bevel gear 1 507 coaxial with the spur gear 3 506, the inner top end of the mounting bracket 509 is provided with a bevel gear 2 508 meshing with the bevel gear 1 507, the bevel gear 2 508 is used to drive the swing plate 603 to swing synchronously.
[0037] Synchronous belt 505 is a toothed synchronous belt that can be replaced with a chain to control the synchronous rotation of spur gear 2 504 and spur gear 1 503, driving the rotation of the upper bevel gear. This also prevents interference with swing plate 603 during the ascent of push rod 2 705. Swing plate 603 uses a lightweight structure to reduce the buoyancy required to raise float block 703. Swing plate 603 can also be replaced with a brush to remove dust from heat sink 601.
[0038] A lower water inlet 102 is provided at the bottom end of the cooling channel 101, and the bottom end of the lower water inlet 102 is communicated with the water storage cavity 202. An upper water outlet 104 is provided at the top end of the cooling channel 101, and the upper water outlet 104 is communicated with the top water storage assembly 3. A water baffle 103 is rotatably installed inside the cooling channel 101 for preventing the backflow of cooling water; closing the water baffle 103 can prevent the backflow of cooling water, thereby reducing the temperature of the electrical box 1 shell for a longer period of time.
[0039] When the water level inside the water storage cavity 202 rises, the water baffle 103 is in an open state; When the water level in the water storage cavity 202 drops, the water baffle 103 is in a closed state.
[0040] The top water storage assembly 3 also includes a top water tank 301, a heat sink 302, and an atomizing nozzle 303. The top water tank 301 is located above the electrical box 1. A plurality of heat sinks 302 for raising the water level are installed inside the top water tank 301. The upper water outlet 104 is connected to the atomizing nozzle 303 via a pipe. The upper end surface of the drainage pipe 304 is located above the heat sink 302. The atomizing nozzle 303 can be replaced with an ordinary nozzle, and the water outlet is set below the upper end surface of the drainage pipe 304. Therefore, during the cooling water exchange process, water is injected from the bottom and flows out from the upper drainage pipe 304, achieving a better heat exchange effect. The atomizing nozzle 303 can increase the spraying area and quickly balance the temperature inside the top water tank 301.
[0041] The heat dissipation assembly 6 also includes a plurality of heat sinks 601 mounted on one side of the electrical components. A heat exchange pipe 602 is fixedly mounted on one side of each heat sink 601. One end of the heat exchange pipe 602 is connected to the water storage chamber 202, and the other end is connected to the cooling assembly 4. The heat sinks 601 and heat exchange pipe 602 are made of copper or aluminum and are used to quickly transfer heat from the heat source to the heat sink 601, and then downward through the heat exchange pipe 602 to the cooling assembly 4. The cooling water flows within the heat exchange pipe 602 to quickly dissipate the heat.
[0042] The cooling assembly 4 also includes a cooling cavity 401, which is equipped with multiple heat dissipation baffles 402 to increase the cooling water flow area. The bottom of the cooling cavity 401 is equipped with heat dissipation piles 9 for heat conduction. The drain port 403 is located at the bottom of the cooling cavity 401. The heat dissipation piles 9 are used to conduct the temperature inside the cooling cavity 401 to the ground, thereby accelerating the heat dissipation rate of the cooling water.
[0043] A central baffle 203 is located in the center of the water storage chamber 202. The chambers of the water storage chamber 202 on either side of the central baffle 203 are interconnected at their bottom ends. A push plate 205 is located on one side of the central baffle 203, and the telescopic end of the telescopic motor 204 is fixedly connected to the push plate 205. The central baffle 203 creates a piston structure at the push plate 205, thereby controlling the rise of the water level. The working chamber 201, located on one side of the push plate 205, may have multiple air inlets, making it easier to push the push plate 205.
[0044] The electrical box 1 is internally provided with a fixing bracket 105, which assists in the installation of the heat sink assembly 6. The fixing bracket 105 is used to secure the heat sink 601 and assist in securing the swing plate 603. Multiple exhaust fans can be installed on the door of the electrical box 1 to enhance the heat dissipation efficiency within the electrical box 1.
[0045] The present invention provides a plurality of cooling channels 101 on the outer wall of the electrical box 1, and transports cooling water from the water storage cavity 202 to the top water storage tank 301 through the push plate 205, thereby achieving cooling of the external environment of the electrical box 1. The top water storage tank 301 can absorb the heat accumulated at the top of the electrical box 1. The drainage pipe 304 is provided to discharge the excess cooling water from the top water storage tank 301. During the discharge process, the water circulates inside the electrical box 1, thereby dissipating part of the heat inside the electrical box 1. The heat dissipation pipe is located on one side of the heat sink 601, and can transport the heat generated by the electrical components to the interior of the cooling cavity 401 through the heat dissipation pipe, thereby cooling the interior of the electrical box 1. The telescopic motor 204 controls the push plate 205 to push the cooling water, and the cooling water level rises, driving the float 703 to slide upward, closing the water baffle 708. At this time, the cooling cavity 401 is separated from the water storage cavity 202, leaving sufficient time for the cooling water to dissipate heat; when the push plate 205 is retracted, the water level is restored, the float 703 falls, and the water baffle 708 is opened, and the cooled cooling water is injected into the interior of the water storage cavity 202, realizing the recycling of the cooling water and achieving circulating water cooling; As the water level in the water storage chamber 202 rises, the baffle 103 opens and the cooling water flows into the cooling channel 101. When the water level drops, the baffle 103 closes and the cooling water stays inside the cooling channel 101, continuously cooling the outer wall of the electrical box 1 for a certain period of time, thereby achieving on-demand operation. When the temperature inside the electrical box rises to a certain level, the reciprocating movement of the telescopic motor 204 controls the cooling water to circulate inside the cooling channel 101 and the drainage pipe 304. The floating block 703 is synchronously displaced, driving the reciprocating swing of the swing plate 603, thereby increasing the air flow speed inside the electrical box 1 and avoiding heat accumulation in one place. The push plate 205 mechanical structure is used to replace the traditional water pump. Compared with the fan and the continuously running water pump, the energy consumption is reduced. The push plate 205 can work when needed instead of running all the time, which can save electricity. The present device achieves energy-saving effects through circulating water cooling, on-demand operation, and the use of mechanical structure to reduce continuous power consumption.
[0046] It should be noted that the above-described specific embodiments are merely preferred embodiments of the present invention and the technical principles employed. Those skilled in the art will appreciate that various modifications, equivalent substitutions, and variations may be made to the present invention. However, as long as these modifications do not depart from the spirit of the present invention, they are intended to be within the scope of protection of the present invention. Furthermore, certain terms used in the specification and claims of this application are not intended to be limiting and are provided solely for ease of description.
Claims
1. An energy-saving power equipment cooler, characterized by: The invention comprises an electrical box (1), wherein a working base (2) is provided below the electrical box (1), wherein the interior of the working base (2) comprises a working cavity (201) and a water storage cavity (202), wherein cooling channels (101) are provided inside multiple side walls of the electrical box (1), wherein the bottom end of the cooling channel (101) is communicated with the water storage cavity (202), and a top water storage component (3) is provided at the top end of the cooling channel (101), wherein a cooling component (4) is provided on one side of the working base (2), wherein the top water storage component (3) comprises a plurality of drainage pipes (304) extending from the interior of the electrical box (1) to the working cavity (201) and communicating with the cooling component (4), wherein the cooling component (4) is provided at the top end of the cooling channel (101). The component (4) includes a drain outlet (403) provided in the upper half of the water storage cavity (202); an opening and closing component (7) for controlling the opening of the drain outlet (403) and a telescopic motor (204) for controlling the water level inside the water storage cavity (202) are installed inside the working cavity (201); the opening and closing component (7) includes a second top rod (705) extending into the interior of the electrical box (1); a plurality of heat dissipation components (6) are provided inside the electrical box (1); the heat dissipation components (6) include a plurality of swing plates (603) for preventing heat accumulation; the second top rod (705) is located at one end of the electrical box (1) and is connected to a transmission component (5) for driving the swing plate (603) to swing.
2. An energy-saving power equipment cooler according to claim 1, characterized in that: The opening and closing assembly (7) further comprises a lower limit plate (701), an upper limit plate (702), a float (703), a push rod 1 (704), a spur gear 4 (707) and a water baffle (708). The lower limit plate (701) and the upper limit plate (702) are both mounted on one side of the water storage cavity (202), the float (703) is located between the two, the push rod 1 (704) and the push rod 2 (705) are both mounted on the top of the float (703), and the lower limit plate (701) and the upper limit plate (702) are both provided with a space for the push rod 1 (704). 4) and a guide hole for longitudinal sliding of the second push rod (705), the push rod (704) is located at one end of the working chamber (201) and is installed with a rack (706), the spur gear (707) is installed on one side of the working chamber (201) and is meshed with the rack (706), the end face of the water baffle (708) is fitted with the drain outlet (403), the interior of the working base (2) is provided with a guide groove for the water baffle (708) to slide longitudinally, and a rack meshed with the spur gear (707) is provided on one side of the water baffle (708); When the water level inside the water storage chamber (202) begins to rise, the water retaining plate (708) slides downward to close the drain outlet (403); When the water level inside the water storage cavity (202) begins to drop, the water retaining plate (708) slides upward to open the water outlet (403).
3. The energy-saving power equipment cooler according to claim 2, characterized in that: The transmission assembly (5) includes a transmission rod (501), a mounting seat (502), a spur gear 1 (503), a spur gear 2 (504), a synchronous belt (505), a spur gear 3 (506), a bevel gear 1 (507), a bevel gear 2 (508) and a mounting bracket (509), wherein the mounting seat (502) is mounted on the inner side of the electrical box (1), the transmission rod (501) is rotatably connected to the mounting seats (502) on both sides, the outer side of the transmission rod (501) is respectively provided with a spur gear 1 (503) and a spur gear 2 (504), a rack 2 (709) is installed on one side of the top rod 2 (705), and the rack 2 (709) is provided on the inner side of the electrical box (1). ) is meshed with the spur gear one (503), the mounting bracket (509) is arranged on one side of the spur gear two (504), the spur gear three (506) is rotatably mounted on one side of the mounting bracket (509), the synchronous belt (505) is meshed with the spur gear two (504) and the spur gear three (506) at the same time, the inner side of the mounting bracket (509) is provided with a bevel gear one (507) coaxial with the spur gear three (506), the inner top end of the mounting bracket (509) is provided with a bevel gear two (508) meshed with the bevel gear one (507), and the bevel gear two (508) is used to drive the swing plate (603) to swing synchronously.
4. An energy-saving power equipment cooler according to claim 3, characterized in that: A lower water inlet (102) is provided at the bottom end of the cooling channel (101), and the bottom end of the lower water inlet (102) is communicated with the water storage cavity (202). An upper water outlet (104) is provided at the top end of the cooling channel (101), and the upper water outlet (104) is communicated with the top water storage assembly (3). A water baffle (103) is rotatably installed inside the cooling channel (101) for preventing cooling water from flowing back. When the water level inside the water storage cavity (202) rises, the water baffle (103) is in an open state; When the water level inside the water storage cavity (202) drops, the water baffle (103) is in a closed state.
5. The energy-saving power equipment cooler according to claim 4, characterized in that: The top water storage assembly (3) further comprises a top water storage tank (301), a heat sink (302) and an atomizing nozzle (303); the top water storage tank (301) is located above the electrical box (1); a plurality of heat sinks (302) for raising the water level are installed inside the top water storage tank (301); the upper water outlet (104) is connected to the atomizing nozzle (303) via a pipe; the upper end surface of the drainage pipe (304) is located above the heat sink (302).
6. The energy-saving power equipment cooler according to claim 5, characterized in that: The heat dissipation assembly (6) further comprises a plurality of heat sinks (601) mounted on one side of the electrical component, a heat exchange pipe (602) being fixedly mounted on one side of the heat sink (601), one end of the heat exchange pipe (602) being in communication with the water storage cavity (202), and the other end being in communication with the cooling assembly (4).
7. The energy-saving power equipment cooler according to claim 6, characterized in that: The cooling assembly (4) further comprises a cooling cavity (401), a plurality of heat dissipation baffles (402) for increasing the cooling water flow area are installed inside the cooling cavity (401), a heat dissipation pile (9) for heat conduction is installed at the bottom end of the cooling cavity (401), and the drain port (403) is located at the bottom end of the cooling cavity (401).
8. The energy-saving power equipment cooler according to claim 7, characterized in that: A middle partition (203) is provided in the middle of the water storage cavity (202); the cavities of the water storage cavity (202) located on both sides of the middle partition (203) are interconnected through the bottom ends; a push plate (205) is provided on one side of the middle partition (203); and the telescopic end of the telescopic motor (204) is fixedly connected to the push plate (205).
9. The energy-saving power equipment cooler according to claim 2, characterized in that: A fixing bracket (105) is provided inside the electrical box (1), and the fixing bracket (105) is used to assist in the installation of the heat dissipation component (6).