Mounting platform for electromechanical mounting of water conservancy project

By installing telescopic lifting components and multi-point swing air blower mechanisms on the electromechanical installation platform of water conservancy projects, the problems of equipment being susceptible to impact and uneven heat dissipation were solved, thereby improving safety and heat dissipation effect.

CN223549408UActive Publication Date: 2025-11-14HUBEI SHUIBAO CONSTR CO LTD
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Patent Information

Application Number
CN202423106699.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-11-14
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

The existing electromechanical installation platforms for water conservancy projects lack protective structures, making the equipment susceptible to damage from falling objects. At the same time, uneven heat dissipation affects the safety and performance of the equipment.

Method used

An installation platform was designed, comprising an electromechanical installation platform body, a telescopic lifting assembly, an arc-shaped guard plate, a U-shaped support plate, and a multi-point swing blower assembly. The height of the guard plate is adjusted by the telescopic lifting assembly, and multi-point synchronous swing blowing is achieved by using multi-directional flow diversion and linkage push-pull assembly to enhance heat dissipation uniformity.

Benefits of technology

It improves the safety and heat dissipation of the equipment, reduces the risk of impact damage from falling objects, achieves large-area uniform heat dissipation, and enhances the applicability and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an installation platform for hydraulic engineering electromechanical installation, which comprises an electromechanical installation platform main body, the top of the electromechanical installation platform main body is provided with a plurality of installation screw holes, and an arc-shaped protection plate is arranged above the electromechanical installation platform main body. By arranging a series of structures, hydraulic engineering electromechanical safety protection is facilitated, the protection height is flexibly adjusted according to hydraulic engineering electromechanical of different heights, the applicability is improved, meanwhile, the risk that hydraulic engineering electromechanical is accidentally impacted and damaged by falling objects is reduced, and the use safety is improved; and multi-point synchronous swing blowing cooling work can be conveniently carried out on the upper portion, the large-area uniform blowing cooling effect on the upper portion is achieved through swing blowing, the phenomenon that due to the fact that air is concentrated at a fixed position, cooling is not uniform is avoided, the position where air does not need to be blown can be independently closed, and the cooling area, uniformity and flexibility are improved.
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Description

Technical Field

[0001] This utility model relates to the field of electromechanical installation technology in water conservancy projects, specifically to an installation platform for electromechanical installation in water conservancy projects. Background Technology

[0002] Common electromechanical equipment in water conservancy projects includes water diversion equipment, pumping station equipment, and hydroelectric power generation equipment. Pumping station equipment is mainly used for pumping, conveying, or draining water, including water pumps and pumping station control systems. In addition, commonly used electromechanical equipment in water conservancy projects also includes electric motors, transformers, and electrical control systems. These devices play an important role in the operation and management of water conservancy projects. Electric motors, water pumps, and other power equipment need to be bolted to the carrier platform to ensure stable operation.

[0003] Existing platforms used for supporting the electromechanical installation of water conservancy projects such as electric motors and water pumps, although able to provide stable support through bolt fixing, still have the following shortcomings in use;

[0004] 1. The lack of a protective structure for the electromechanical equipment means that it is at risk of damage from falling objects when used outdoors. 2. The lack of a mechanism for uniform heat dissipation over a large area. Although existing technologies use suspended fans for simple cooling, the airflow is often concentrated, resulting in poor uniformity of heat dissipation over the entire upper part and unsatisfactory heat dissipation flexibility. In view of this, this application proposes an installation platform for electromechanical installation in water conservancy projects to solve the above-mentioned problems. Utility Model Content

[0005] The purpose of this utility model is to provide an installation platform for electromechanical installation in water conservancy projects, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an installation platform for electromechanical installation in water conservancy projects, comprising an electromechanical installation platform body, wherein the top of the electromechanical installation platform body is provided with multiple mounting screw holes, and an arc-shaped protective plate is provided above the electromechanical installation platform body. Four telescopic lifting components for adjusting the height of the arc-shaped protective plate are rectangularly fixedly connected between the top of the electromechanical installation platform body and the bottom of the arc-shaped protective plate, and the four telescopic lifting components are fixedly connected with the same U-shaped support plate; the telescopic lifting components are used to adjust the height of the arc-shaped protective plate and the U-shaped support plate according to the height of the electromechanical equipment to be installed in the water conservancy project.

[0007] A multi-point oscillating blower mechanism is installed on the U-shaped support plate. The multi-point oscillating blower mechanism includes a fan embedded and fixed at the top of the U-shaped support plate. The bottom of the fan is an air outlet and is connected and fixed to a multi-directional flow-diverting component for multi-directional airflow. Multiple air-blowing components are embedded in the bottom of the U-shaped support plate in a ring at equal intervals. The sides of the multiple air-blowing components that are close to each other are connected and fixed to the multi-directional flow-diverting component. A drive-pull assembly is installed on the U-shaped support plate for driving the multiple air-blowing components to oscillate synchronously. The multi-directional flow-diverting component is used to divert the air to multiple points when the fan is started. The multiple air-blowing components are used to distribute the air from the multiple points to multiple locations for uniform airflow and cooling. The drive-pull assembly is used to drive the multiple air-blowing components to oscillate back and forth for oscillating airflow, further enhancing the uniformity of airflow and cooling for the hydraulic engineering electromechanical equipment.

[0008] Preferably, the telescopic lifting assembly includes an outer tube fixedly connected to the top of the main body of the electromechanical installation platform, an inner rod slidably sleeved inside the outer tube, the top ends of the four inner rods being fixedly connected to the bottom of the arc-shaped guard plate, a U-shaped support plate being fixedly connected between the four inner rods, and a knob-type bolt being movably contacted on the outer side of the inner rod, with the outer tube threaded onto the corresponding knob-type bolt.

[0009] Preferably, the multi-directional diversion assembly includes a diversion shroud fixed to the bottom of the fan, the bottom of the diversion shroud is configured as a sealing structure, and flexible hoses are fixedly connected to the outer side of the diversion shroud in an annular pattern at equal intervals. A valve is fixedly connected to the end of the flexible hoses away from the diversion shroud.

[0010] Preferably, the blower assembly includes a spherical sleeve that is embedded and fixed at the bottom of a U-shaped support plate and has an open bottom. A rotating ball is movably fitted inside the spherical sleeve. An inclined connecting rod is fixedly connected to the bottom of the rotating ball. A rectangular box is fixedly connected to the bottom of the connecting rod. Multiple blower covers are fixedly connected to the bottom of the rectangular box. A flow divider is located between the multiple rectangular boxes. The side of the rectangular box near the flow divider is fixedly connected to the end of the corresponding valve away from the flow divider.

[0011] Preferably, the push-pull assembly includes a reciprocating electric push rod fixedly installed on the top of the U-shaped support plate. The extended end of the reciprocating electric push rod extends to the bottom of the U-shaped support plate and is fixedly connected to a lifting ring. The lifting ring is sleeved on the outside of the diffuser and does not contact the outside of it. L-shaped guide rods are fixedly connected to both sides of the top of the lifting ring. The U-shaped support plate is slidably sleeved on the two L-shaped guide rods. Multiple inclined connecting rods are hinged at equal intervals in a ring at the bottom of the lifting ring. Two opposite connecting rods are symmetrically arranged, and the bottom end of the connecting rod is hinged to the top of the corresponding rectangular box.

[0012] Preferably, the outer tube has a threaded hole on its outer top surface that is threaded to connect with a corresponding knob-type bolt.

[0013] Preferably, the top of the fan is an air inlet and a filter screen is fixedly connected thereto.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] 1. Through the combination of the main body of the electromechanical installation platform, the telescopic lifting component and the arc-shaped guard plate, it can provide safety protection for the electromechanical equipment of the water conservancy project from above. The height of the protection can be flexibly adjusted according to the different heights of the electromechanical equipment of the water conservancy project, which improves the applicability and reduces the risk of accidental impact damage to the electromechanical equipment of the water conservancy project from falling objects, thereby improving the safety of use.

[0016] 2. Through the combination of the U-shaped support plate, fan, multi-directional flow distribution component, air blowing component and drive push-pull component, it can perform multi-point synchronous swing air blowing cooling work in the upper part. By using the multi-point coordinated swing air blowing method, it can achieve a large-area uniform air blowing cooling effect in the upper part, avoiding the phenomenon of uneven heat dissipation caused by the air being concentrated in a fixed position. It can also shut off the positions that do not need air blowing, improving the heat dissipation cooling area, uniformity and flexibility.

[0017] This utility model, through a series of structures, facilitates the safety protection of electromechanical components in water conservancy projects and allows for flexible adjustment of the protection height according to the different heights of the electromechanical components. This improves applicability while reducing the risk of accidental damage to the electromechanical components from falling objects, thus enhancing safety. It also facilitates multi-point synchronous swinging airflow cooling at the top, achieving a large-area uniform cooling effect by utilizing swinging airflow, avoiding uneven heat dissipation caused by airflow concentrating at a fixed position. Furthermore, it allows for the individual shutdown of positions where airflow is not needed, improving the area, uniformity, and flexibility of heat dissipation. Attached Figure Description

[0018] Figure 1 This is a structural schematic diagram of an installation platform for electromechanical installation in water conservancy projects proposed in this utility model;

[0019] Figure 2 for Figure 1 A schematic diagram of the structure viewed from below;

[0020] Figure 3 This is a schematic diagram of the main sectional view of an installation platform for electromechanical installation in water conservancy projects proposed in this utility model;

[0021] Figure 4 for Figure 3 A magnified structural diagram of part A in the diagram.

[0022] In the diagram: 1. Main body of electromechanical installation platform; 2. Outer pipe; 201. Inner rod; 202. Knob bolt; 3. Arc-shaped guard plate; 4. U-shaped support plate; 5. Fan; 501. Diverter shroud; 502. Hose; 503. Valve; 6. Spherical sleeve; 601. Rotating ball; 602. Rectangular box; 603. Blower shroud; 7. Lifting ring; 701. Connecting rod; 702. L-shaped guide rod; 703. Reciprocating electric push rod. Detailed Implementation

[0023] 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 protection scope of the present utility model.

[0024] like Figures 1 to 4 As shown in this embodiment, an installation platform for electromechanical installation in water conservancy projects includes an electromechanical installation platform body 1. The top of the electromechanical installation platform body 1 has multiple mounting screw holes. An arc-shaped protective plate 3 is installed above the electromechanical installation platform body 1. Four telescopic lifting components for adjusting the height of the arc-shaped protective plate 3 are rectangularly fixedly connected between the top of the electromechanical installation platform body 1 and the bottom of the arc-shaped protective plate 3. A U-shaped support plate 4 is fixedly connected between the four telescopic lifting components. The telescopic lifting components are used to adjust the height of the arc-shaped protective plate 3 and the U-shaped support plate 4 according to the height of the water conservancy engineering electromechanical equipment to be installed.

[0025] A multi-point oscillating blower mechanism is installed on the U-shaped support plate 4. The multi-point oscillating blower mechanism includes a fan 5 embedded and fixed on the top of the U-shaped support plate 4. The top of the U-shaped support plate 4 has an embedded hole that is fixedly connected to the outside of the fan 5. The bottom of the fan 5 is an air outlet and is connected to a multi-directional flow-diverting component for multi-directional flow diversion. The top of the fan 5 is an air inlet and is fixedly connected to a filter screen. The bottom of the U-shaped support plate 4 has multiple blowing components embedded in a ring at equal intervals. The sides of the multiple blowing components that are close to each other are connected and fixed to the multi-directional flow-diverting component. A drive-pull assembly is installed on the U-shaped support plate 4 to drive the multiple blowing components to oscillate synchronously. The multi-directional flow-diverting component is used to divert the air to multiple points when the fan 5 is started. The multiple blowing components are used to distribute the air diverted from multiple points to multiple positions for uniform cooling. The drive-pull assembly is used to drive the multiple blowing components to oscillate back and forth for oscillating blowing, further enhancing the uniformity of cooling of the hydraulic engineering electromechanical equipment.

[0026] Specifically, the telescopic lifting assembly includes an outer tube 2 fixedly connected to the top of the electromechanical installation platform body 1. Inner rods 201 are slidably sleeved inside the outer tube 2. The top ends of the four inner rods 201 are fixedly connected to the bottom of the arc-shaped guard plate 3. A U-shaped support plate 4 is fixedly connected between the four inner rods 201. A knob-type bolt 202 is movably contacted on the outer side of the inner rod 201. The outer tube 2 is threaded onto the corresponding knob-type bolt 202. A threaded hole is provided on the top of the outer side of the outer tube 2 for threaded connection with the corresponding knob-type bolt 202. The outer tube 2, inner rod 201, and knob bolt 202 are designed to work together. By rotating the knob bolt 202 in the reverse direction, the locking of the corresponding inner rod 201 is released, and the arc-shaped guard plate 3 is moved up or down, causing the four inner rods 201 to move up or down. The four inner rods 201 then move the U-shaped support plate 4 up or down. By rotating the knob bolt 202 in the forward direction, the corresponding inner rod 201 is tightened and secured. This allows for convenient and flexible adjustment of the height of the arc-shaped guard plate 3 and the U-shaped support plate 4 according to the height of the hydraulic engineering electromechanical equipment, thus achieving the adjustment of the guard height.

[0027] Furthermore, the multi-directional flow diversion assembly includes a flow diversion hood 501 fixed to the bottom of the fan 5. The bottom of the flow diversion hood 501 is configured as a sealing structure. Hoses 502 are fixed in a ring at equal intervals on the outer side of the flow diversion hood 501. A valve 503 is fixed to one end of the hose 502 away from the flow diversion hood 501. The flow diversion hood 501, hoses 502 and valves 503 work together to supply air into the flow diversion hood 501 when the fan 5 is started. The supplied air is diverted to multiple points by using multiple hoses 502 and multiple valves 503. The multiple valves 503 can be closed at locations where air supply for heat dissipation is not required, thereby improving the flexibility of use.

[0028] Furthermore, the blower assembly includes a spherical sleeve 6 that is embedded and fixed at the bottom of the U-shaped support plate 4 and has an open bottom. The bottom of the U-shaped support plate 4 has multiple through holes that are fixedly connected to the outer side of the corresponding spherical sleeve 6. A rotating ball 601 is movably fitted inside the spherical sleeve 6. The bottom of the rotating ball 601 is fixedly connected to an inclined connecting rod. The bottom end of the connecting rod is fixedly connected to a rectangular box 602. The bottom of the rectangular box 602 is connected to and fixedly connected to multiple blower covers 603. A diverter cover 501 is located between the multiple rectangular boxes 602. The side of the rectangular box 602 near the diverter cover 501 is connected and fixedly connected to the end of the corresponding valve 503 away from the diverter cover 501. The spherical sleeve 6, rotating ball 601, connecting rod, rectangular box 602 and blower cover 603 cooperate to allow the air diverted by the multiple valves 503 to enter the corresponding rectangular box 602 and then blown downwards through the corresponding multiple blower covers 603 for heat dissipation.

[0029] Furthermore, the joint-drive push-pull assembly includes a reciprocating electric push rod 703 fixedly installed on the top of the U-shaped support plate 4. The extended end of the reciprocating electric push rod 703 extends to the bottom of the U-shaped support plate 4 and is fixedly connected to a lifting ring 7. The lifting ring 7 is sleeved on the outside of the diffuser shroud 501 but does not contact its outside. L-shaped guide rods 702 are fixedly connected to both sides of the top of the lifting ring 7. The U-shaped support plate 4 is slidably sleeved on the two L-shaped guide rods 702. The top of the U-shaped support plate 4 has two vertical guide holes that are respectively slidably fitted onto the outside of the corresponding L-shaped guide rods 702, which serve to guide the vertical sliding of the L-shaped guide rods 702. The bottom of the lifting ring 7 is annularly hinged at equal intervals. There are multiple inclined connecting rods 701, with two opposite connecting rods 701 arranged symmetrically. The bottom end of the connecting rod 701 is hinged to the top of the corresponding rectangular box 602. The reciprocating electric push rod 703, lifting ring 7, L-shaped guide rod 702 and connecting rod 701 are arranged in cooperation. The reciprocating electric push rod 703 drives the lifting ring 7 to move up and down reciprocally. The lifting ring 7 drives multiple rectangular boxes 602 to swing outward and inward reciprocally through multiple connecting rods 701. The swinging of multiple rectangular boxes 602 drives multiple blower covers 603 to swing and blow air. The swinging air blower achieves a large-area uniform air blowing heat dissipation effect, further improving the heat dissipation and cooling area and uniformity.

[0030] The method of use in this embodiment is as follows: The electric motor or water pump, and other hydraulic engineering electromechanical components, are installed on the main body 1 of the electromechanical installation platform using external bolts. The height of the arc-shaped guard plate 3 and the rectangular box 602 are adjusted according to the height of the hydraulic engineering electromechanical components. During adjustment, the knob bolt 202 is rotated in the reverse direction to release the locking of the corresponding inner rod 201. The arc-shaped guard plate 3 is moved up and down, causing the four inner rods 201 to slide upwards or downwards within the corresponding outer pipe 2. The four inner rods 201 cause the U-shaped support plate 4 to move upwards or downwards. The U-shaped support plate 4, through multiple spherical sleeves 6, rotating balls 601, and connecting rods, causes the rectangular box 602 to move upwards or downwards, resulting in a change in the height of the arc-shaped guard plate 3 and the rectangular box 602. After the adjustment is appropriate, the knob bolt 202 is rotated in the forward direction to tighten and secure the corresponding inner rod 201. This facilitates the safe protection of the hydraulic engineering electromechanical components and allows for flexible adjustment of the protection height according to different heights of the hydraulic engineering electromechanical components, improving applicability while reducing the risk of accidental damage from falling objects, thus improving safety.

[0031] In use, by turning on the fan 5 and the reciprocating electric push rod 703, the fan 5 supplies air into the distribution hood 501. Multiple hoses 502 and multiple valves 503 distribute the supplied air to the corresponding rectangular boxes 602 at multiple points. The air is then blown downwards through the corresponding multiple blower hoods 603 for heat dissipation. This multi-point distribution and blowing achieves multi-point heat dissipation for the electromechanical components of the hydraulic engineering. In addition, the multiple valves 503 can also be used to close valves 503 in locations where air supply is not needed, further improving the flexibility of heat dissipation. The reciprocating electric push rod 703 drives the lifting ring 7 to move up and down repeatedly. The lifting ring 7 drives the multiple rectangular boxes 602 to swing outwards and inwards through multiple connecting rods 701. The swinging of the multiple rectangular boxes 602 drives the multiple blower hoods 603 to swing and blow air, achieving a large-area uniform heat dissipation effect on the upper part, further improving the heat dissipation area and uniformity, and avoiding the phenomenon of uneven heat dissipation caused by air concentrating in a fixed position.

[0032] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. An installation platform for electromechanical installation in water conservancy projects, comprising an electromechanical installation platform body (1), wherein the top of the electromechanical installation platform body (1) is provided with a plurality of mounting screw holes, characterized in that: An arc-shaped guard plate (3) is provided above the main body (1) of the electromechanical installation platform. Four telescopic lifting components for adjusting the height of the arc-shaped guard plate (3) are fixedly connected in a rectangle between the top of the main body (1) of the electromechanical installation platform and the bottom of the arc-shaped guard plate (3). The same U-shaped support plate (4) is fixedly connected between the four telescopic lifting components. The U-shaped support plate (4) is equipped with a multi-point swing blower mechanism. The multi-point swing blower mechanism includes a fan (5) embedded and fixed on the top of the U-shaped support plate (4). The bottom of the fan (5) is an air outlet and is connected to a multi-directional diversion component for diverting air in multiple directions. The bottom of the U-shaped support plate (4) is equipped with multiple blower components at equal intervals in a ring shape. The sides of the multiple blower components that are close to each other are connected and fixed to the multi-directional diversion component. The U-shaped support plate (4) is equipped with a drive push-pull component for driving the multiple blower components to swing synchronously.

2. The installation platform for electromechanical installation in water conservancy projects according to claim 1, characterized in that: The telescopic lifting assembly includes an outer tube (2) fixedly connected to the top of the main body (1) of the electromechanical installation platform. An inner rod (201) is slidably sleeved inside the outer tube (2). The top ends of the four inner rods (201) are fixedly connected to the bottom of the arc-shaped guard plate (3). A U-shaped support plate (4) is fixedly connected between the four inner rods (201). A knob bolt (202) is movably contacted on the outside of the inner rod (201). The outer tube (2) is threaded onto the corresponding knob bolt (202).

3. The installation platform for electromechanical installation in water conservancy projects according to claim 1, characterized in that: The multi-directional diversion assembly includes a diversion hood (501) fixed to the bottom of the fan (5). The bottom of the diversion hood (501) is configured as a sealing structure. A flexible hose (502) is fixed to the outer side of the diversion hood (501) in an annular shape at equal intervals. A valve (503) is fixed to the end of the flexible hose (502) away from the diversion hood (501).

4. The installation platform for electromechanical installation in water conservancy projects according to claim 3, characterized in that: The blower assembly includes a spherical sleeve (6) that is embedded and fixed at the bottom of a U-shaped support plate (4) and has an open bottom. A rotating ball (601) is movably fitted inside the spherical sleeve (6). An inclined connecting rod is fixedly connected to the bottom of the rotating ball (601). A rectangular box (602) is fixedly connected to the bottom of the connecting rod. Multiple blower covers (603) are fixedly connected to the bottom of the rectangular box (602). A flow divider (501) is located between the multiple rectangular boxes (602). The side of the rectangular box (602) near the flow divider (501) is fixedly connected to the end of the corresponding valve (503) away from the flow divider (501).

5. The installation platform for electromechanical installation in water conservancy projects according to claim 4, characterized in that: The combined drive push-pull assembly includes a reciprocating electric push rod (703) fixedly installed on the top of the U-shaped support plate (4). The extended end of the reciprocating electric push rod (703) extends to the bottom of the U-shaped support plate (4) and is fixedly connected to a lifting ring (7). The lifting ring (7) is sleeved on the outside of the diverter shroud (501) and does not contact the outside of it. Both sides of the top of the lifting ring (7) are fixedly connected to L-shaped guide rods (702). The U-shaped support plate (4) is slidably sleeved on the two L-shaped guide rods (702). The bottom of the lifting ring (7) is hinged with multiple inclined connecting rods (701) at equal intervals in a ring. The two opposite connecting rods (701) are symmetrically arranged. The bottom end of the connecting rod (701) is hinged to the top of the corresponding rectangular box (602).

6. The installation platform for electromechanical installation in water conservancy projects according to claim 2, characterized in that: The outer tube (2) has a threaded hole on its top outer side that is threaded to the corresponding knob bolt (202).

7. The installation platform for electromechanical installation in water conservancy projects according to claim 1, characterized in that: The top of the fan (5) is an air inlet and a filter screen is fixedly connected thereto.