Concrete curing device for hydraulic engineering construction

By designing a concrete curing device for water conservancy engineering construction with a cleaning mechanism and a portable mobile mechanism, the problem of moisture retention and temperature control failure caused by soil adhesion was solved, achieving efficient cleaning and flexible movement, and improving the curing quality and impermeability of concrete.

CN224549125UActive Publication Date: 2026-07-24LONGNAN LONGJIA RUNSHENG NEW BUILDING MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LONGNAN LONGJIA RUNSHENG NEW BUILDING MATERIALS CO LTD
Filing Date
2025-09-03
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing concrete curing devices used in water conservancy construction prevent moisture and steam from directly contacting the concrete when soil adheres to it, leading to localized failure in moisture retention and temperature control, resulting in shrinkage cracks and reduced impermeability.

Method used

A device was designed that includes components such as support columns, slabs, concrete surface cleaning mechanisms, and portable mobile mechanisms. It cleans the soil off the concrete surface through water tanks, water pumps, water outlet pipes, flushing components, and movable shovel components, ensuring that water and steam can effectively contact the concrete. Subsequently, curing is carried out through folded hoses and curing nozzles.

Benefits of technology

It effectively cleans the soil from the concrete surface, prevents cracks caused by uneven curing, improves the curing quality of concrete, adapts to different construction environments, reduces the difficulty of equipment relocation, and increases operational flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to concrete maintenance technical field discloses a concrete maintenance device for hydraulic engineering construction, including support column, the top of support column is provided with the object board, the top of object board is provided with concrete surface cleaning mechanism, concrete surface cleaning mechanism is used for cleaning the soil of concrete surface, the inside of support column is provided with portable moving mechanism, portable moving mechanism is used for moving concrete maintenance device, concrete surface cleaning mechanism includes water tank, the bottom fixed connection of water tank is at the top of object board, the right side fixed connection of water tank has water pump. In the utility model, through water tank storage clean water, water pump draws the clean water in water tank to the water outlet pipe, utilizes the scouring assembly to scour the concrete surface, and stubborn soil is removed with the help of movable shovel assembly, and movable assembly auxiliary adjustment cleaning angle, realizes efficient cleaning concrete surface soil.
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Description

Technical Field

[0001] This utility model relates to the field of concrete curing technology, and in particular to a concrete curing device for water conservancy engineering construction. Background Technology

[0002] Concrete curing devices for water conservancy projects are key equipment to ensure the smooth hardening of concrete after pouring for dams, sluices, and canals. The core function of the device is to prevent cracks in concrete caused by rapid evaporation of moisture or excessive temperature differences between the inside and outside by continuously moisturizing and preventing wind and cracking. The device can adjust curing parameters in real time to ensure that the concrete meets the stringent standards for impermeability and improve the overall durability and safety of water conservancy projects.

[0003] It is compatible with different types of devices and can flexibly cope with diverse construction environments; some intelligent models are equipped with real-time monitoring modules, which can automatically adjust maintenance parameters, reduce labor costs while improving maintenance accuracy and efficiency; it can also strengthen the impermeability and frost resistance of concrete through scientific maintenance, meet the long-term water environment erosion requirements of water conservancy projects, and fundamentally ensure the durability and safety stability of the project.

[0004] However, when soil adheres to the concrete surface, it will prevent the water and steam sprayed by the device from directly contacting the concrete, causing local moisture retention and temperature control to fail. This will cause the concrete surface to develop shrinkage cracks due to lack of water. At the same time, the soil will also form an isolation layer on the concrete surface, reducing its surface density and becoming a seepage channel, which will weaken the key anti-seepage performance of the water conservancy project. Utility Model Content

[0005] To overcome the above deficiencies, this utility model provides a concrete curing device for water conservancy engineering construction, which aims to improve the problem in the prior art where soil adhering to the concrete surface will block the direct contact between the water and steam sprayed by the device and the concrete, resulting in the failure of local moisturizing and temperature control, and causing the concrete surface to develop shrinkage cracks due to lack of water.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: a concrete curing device for water conservancy engineering construction, comprising a support column, a plate being provided on the top of the support column, a concrete surface cleaning mechanism being provided on the top of the plate, the concrete surface cleaning mechanism being used to clean the soil on the concrete surface, and a portable moving mechanism being provided inside the support column, the portable moving mechanism being used to move the concrete curing device. The concrete surface cleaning mechanism includes a water tank, the bottom of which is fixedly connected to the top of the slab. A water pump is fixedly connected to the right side of the water tank, and a water outlet pipe is fixedly connected to the output end of the water pump. A valve is threaded into the water outlet pipe. A flushing assembly is provided on the top of the slab, a curing assembly is provided on the bottom of the slab, a movable shovel assembly is provided on the front side of the support column, and a movable assembly is provided on the right side of the support column.

[0007] As a further description of the above technical solution: The portable mobile mechanism includes multiple connecting hinges. The bottoms of the multiple connecting hinges are respectively fixedly connected to the left and right sides of the inside of the support column on opposite sides. Each of the adjacent sides of the multiple connecting hinges is fixedly connected to a movable plate. The bottoms of two movable plates are fixedly connected to two omnidirectional wheels. The top of the right movable plate is fixedly connected to a pressure plate. The right side of the left movable plate is fixedly connected to a force transmission plate. The pressure plate and the left side of the support column are both provided with the same buckle assembly. The top of the plate is provided with a push rod assembly.

[0008] As a further description of the above technical solution: The flushing assembly includes a support rod, the bottom of which is fixedly connected to the top of the plate, and two retaining rings are fixedly connected to the top of the support rod. Two flushing nozzles are fixedly connected to the outer wall of the water outlet pipe.

[0009] As a further description of the above technical solution: The maintenance component includes a folded hose with a water outlet pipe connected to the top of the folded hose, and maintenance nozzles fixedly connected to both ends of the folded hose.

[0010] As a further description of the above technical solution: The movable shovel assembly includes two sliding blocks, the rear sides of which are slidably connected to the front side of the support column. The front side of the support column has two grooves, and the front sides of the two sliding blocks are fixedly connected to the same soil shovel.

[0011] As a further description of the above technical solution: The movable component includes two spring fixing blocks, the left sides of which are respectively fixedly connected to the right sides of the two sliding blocks. The right side of the support column has multiple slots, and the spring fixing blocks are slidably connected inside the slots.

[0012] As a further description of the above technical solution: The fastener assembly includes a movable buckle, the right side of which is fixedly connected to the left side of the pressure plate, and a ring is fixedly connected to the left side of the support column.

[0013] As a further description of the above technical solution: The push rod assembly includes two force transmission rods, the bottom of which is fixedly connected to the top of the plate, and the top of each of the two force transmission rods is fixedly connected to the same push rod.

[0014] This utility model has the following beneficial effects: 1. In this utility model, clean water is stored in a water tank, and a water pump draws the clean water from the water tank to the outlet pipe. The water flow rate in the outlet pipe is controlled by adjusting the valve. The flushing component is used to flush the concrete surface, and the movable shovel component is used to remove stubborn soil. The movable component helps to adjust the cleaning angle, which realizes efficient cleaning of soil on the concrete surface, prevents cracks in the concrete due to uneven curing, creates good conditions for subsequent curing, and helps improve the quality of concrete curing in water conservancy projects.

[0015] 2. In this utility model, the movable plate is connected to the inside of the support column by a connecting hinge. When the movable plate is unfolded, its bottom omnidirectional wheel lands on the ground. The pressure plate and the force transmission plate are fixed by the fastener assembly, so that the movable plate remains in the unfolded state. Pushing the push rod assembly at the top of the plate can drive the omnidirectional wheel to roll. When retracting, the fastener is released, realizing the switching between flexible movement and convenient storage of the device, reducing the difficulty of moving the device, adapting to the maintenance needs of different construction areas of water conservancy projects, and improving the flexibility of operation. Attached Figure Description

[0016] Figure 1 A perspective view of a concrete curing device for water conservancy engineering construction proposed in this utility model; Figure 2 This is a front view of a concrete curing device for water conservancy engineering construction proposed in this utility model; Figure 3 This is a top view of a concrete curing device for water conservancy engineering construction proposed in this utility model; Figure 4 This is a split view of the concrete surface cleaning mechanism in a concrete curing device for water conservancy engineering construction proposed in this utility model. Figure 5 This is an exploded view of the portable mobile mechanism in a concrete curing device for water conservancy engineering construction proposed in this utility model.

[0017] Legend: 1. Support column; 2. Material plate; 3. Concrete surface cleaning mechanism; 31. Water tank; 32. Water pump; 33. Water outlet pipe; 34. Valve; 35. Flushing assembly; 351. Support rod; 352. Fixing ring; 353. Flushing nozzle; 36. Curing assembly; 361. Folding hose; 362. Curing nozzle; 37. Movable shovel assembly; 371. Sliding block; 372. Groove; 373. Soil shovel; 38. Movable assembly; 381. Spring fixing block; 382. Buckle; 4. Portable moving mechanism; 41. Connecting hinge; 42. Movable plate; 43. Omnidirectional wheel; 44. Pressure plate; 45. Force transmission plate; 46. Buckle assembly; 461. Movable buckle; 462. Ring clamp; 47. Push rod assembly; 471. Force transmission rod; 472. Push rod. Detailed Implementation

[0018] 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.

[0019] Reference Figure 1 , Figure 2 and Figure 4 An embodiment of this utility model is provided: a concrete curing device for water conservancy engineering construction, including a support column 1, a material plate 2 is provided on the top of the support column 1, a concrete surface cleaning mechanism 3 is provided on the top of the material plate 2, the concrete surface cleaning mechanism 3 is used to clean the soil on the concrete surface, and a portable moving mechanism 4 is provided inside the support column 1, the portable moving mechanism 4 is used to move the concrete curing device. The concrete surface cleaning mechanism 3 includes a water tank 31, the bottom of which is fixedly connected to the top of the slab 2. A water pump 32 is fixedly connected to the right side of the water tank 31. A water outlet pipe 33 is fixedly connected to the output end of the water pump 32. A valve 34 is threadedly connected inside the water outlet pipe 33. A flushing component 35 is provided on the top of the slab 2. A curing component 36 is provided on the bottom of the slab 2. A movable shovel component 37 is provided on the front side of the support column 1. A movable component 38 is provided on the right side of the support column 1. Specifically, when cleaning the concrete surface, the water pump 32, which is fixedly connected to the right side of the water tank 31 in the concrete surface cleaning mechanism 3, is started first. After the water pump 32 is running, the water stored in the water tank 31 is extracted. The extracted water is transported to the flushing component 35 through the water outlet pipe 33, which is fixedly connected to the output end of the water pump 32. During the water transport process, the flow state of the water in the water outlet pipe 33 can be adjusted by rotating the valve 34, which is threaded inside the water outlet pipe 33, thereby controlling the water output of the flushing component 35. Through the adjustment of the valve 34 and the water transport action of the water pump 32, the flushing component 35 can flush the concrete surface with a suitable water flow to remove the loose soil attached to the concrete surface. After the initial flushing is completed, the movable shovel assembly 37 set on the front side of the support column 1 is used to scrape off the soil that is still attached tightly after flushing the concrete surface. Through the direct contact between the movable shovel assembly 37 and the concrete surface, the stubborn soil is peeled off the concrete surface. After the concrete surface is cleaned, the curing component 36 installed at the bottom of the concrete plate 2 is activated. The curing component 36 begins to cure the cleaned concrete surface, providing a suitable curing environment for the concrete and ensuring its strength development. When it is necessary to move the entire concrete curing device, the portable moving mechanism 4 installed inside the support column 1 is activated. Through the operation of the portable moving mechanism 4, the entire device is moved to transfer the device to the next concrete area that needs to be worked on. During the entire operation, the support column 1 provides stable support for the concrete plate 2, while the concrete plate 2 provides a mounting carrier for the water tank 31, water pump 32 and flushing component 35 in the concrete surface cleaning mechanism 3.

[0020] Reference Figure 1 , Figure 2 and Figure 5 The portable mobile mechanism 4 includes multiple connecting hinges 41. The bottom of the multiple connecting hinges 41 is fixedly connected to the left and right sides of the support column 1 respectively on opposite sides. The bottom of each adjacent side of the multiple connecting hinges 41 is fixedly connected to a movable plate 42. The bottom of each of the two movable plates 42 is fixedly connected to two omnidirectional wheels 43. The top of the right movable plate 42 is fixedly connected to a pressure plate 44. The right side of the left movable plate 42 is fixedly connected to a force transmission plate 45. The pressure plate 44 and the left side of the support column 1 are both provided with the same buckle assembly 46. The top of the material plate 2 is provided with a push rod assembly 47. Specifically, when the device needs to be moved, the portable moving mechanism 4 can be operated. First, the pressure plate 44 and the same buckle assembly 46 on the left side of the support column 1 are locked. When the pressure plate 44 rotates, it drives the force transmission plate 45 to rotate. The force transmission plate 45 then drives the left movable plate 42 to rotate. Under the rotation of the connecting hinge 41, the left movable plate 42 rotates downward. At the same time, through the linkage of the force transmission plate 45, the right movable plate 42 rotates downward synchronously. The bottom of both movable plates 42 is fixedly connected to two omnidirectional wheels 43. As the movable plates 42 rotate downward, the omnidirectional wheels 43 move downward and contact the ground. Through force transmission... The plate 45 and the connecting hinge 41 enable the movement of the two movable plates 42, allowing the omnidirectional wheel 43 to smoothly contact the ground. After the movable plate 42 rotates downward until the omnidirectional wheel 43 touches the ground, the operator holds the push rod assembly 47 set on the top of the plate 2 and pushes the push rod assembly 47 to move the support column 1. The support column 1 transmits the force to the omnidirectional wheel 43 through the connecting hinge 41 and the movable plate 42. The omnidirectional wheel 43 rolls to move the device. The pressure plate 44 locks the movable plate 42 in the same buckle assembly 46 set on the left side of the support column 1, keeping the movable plate 42 in the downward position and the omnidirectional wheel 43 stably touching the ground, making the device stable during movement. Once the device has moved to the target position, the portable moving mechanism 4 needs to be retracted and the latch assembly 46 released. Under the action of gravity, the ground presses against the omnidirectional wheel 43, causing the omnidirectional wheel 43 to move upward, which in turn drives the movable plate 42 to rotate upward. Under the action of the connecting hinge 41, the force transmission plate 45 rotates upward and drives the left movable plate 42 to rotate upward synchronously through the movable plate 42. The omnidirectional wheel 43 is released from contact with the ground, and the support column 1 contacts the ground.

[0021] Reference Figure 2 , Figure 3 and Figure 4 The flushing assembly 35 includes a support rod 351, the bottom of which is fixedly connected to the top of the plate 2. Two fixing rings 352 are fixedly connected to the top of the support rod 351. Two flushing nozzles 353 are fixedly connected to the outer wall of the water outlet pipe 33. The maintenance assembly 36 includes a folded hose 361, the top of which is connected to the water outlet pipe 33. Both ends of the folded hose 361 are fixedly connected to maintenance nozzles 362. The movable shovel assembly 37 includes two sliding blocks 371. The rear sides of the two sliding blocks 371 are slidably connected to the front side of the support column 1. Two grooves 372 are opened on the front side of the support column 1. The front sides of the two sliding blocks 371 are fixedly connected to the same soil shovel 373. Specifically, firstly, the water pump 32 in the concrete surface cleaning mechanism 3 is started. The water pump 32 draws water out of the water tank 31 and the drawn water is transported through the water outlet pipe 33. The water outlet pipe 33 is kept stable by two fixed retaining rings 352. The two fixed retaining rings 352 are connected to the support rod 351, and the support rod 351 is connected to the plate 2. The valve 34 in the water outlet pipe 33 is rotated to adjust the flow of water in the water outlet pipe 33, so that the water is sprayed out through the two flushing nozzles 353 on the water outlet pipe 33. Through the adjustment of the valve 34 and the water spraying action of the flushing nozzles 353, the loose soil on the concrete surface is flushed and cleaned. After the initial flushing is completed, the movable shovel assembly 37 is operated to push the two sliding blocks 371 to move along the two grooves 372 on the support column 1. The two sliding blocks 371 drive the same soil shovel 373 to move synchronously, so that the soil shovel 373 contacts the concrete surface. Through the sliding of the sliding blocks 371 and the scraping action of the soil shovel 373, the stubborn soil remaining on the concrete surface is removed. After the cleaning operation is completed, the curing component 36 is activated. Water in the outlet pipe 33 flows into the folded hose 361, which delivers the water to the curing nozzles 362 at both ends. The water is sprayed onto the concrete surface through the curing nozzles 362. Through the water delivery of the folded hose 361 and the spraying action of the curing nozzles 362, the curing operation of the concrete surface is achieved.

[0022] Reference Figure 1 , Figure 4 and Figure 5 The movable component 38 includes two spring fixing blocks 381, the left sides of which are fixedly connected to the right sides of two sliding blocks 371 respectively. The right side of the support column 1 is provided with multiple slots 382, ​​and the spring fixing blocks 381 are slidably connected inside the slots 382. The buckle assembly 46 includes a movable buckle 461, the right side of which is fixedly connected to the left side of the pressure plate 44. The left side of the support column 1 is fixedly connected with a ring clamp 462. The push rod assembly 47 includes two force transmission rods 471, the bottom of which is fixedly connected to the top of the plate 2. The top of each of the two force transmission rods 471 is fixedly connected to the same push rod 472. Specifically, by pushing the two sliding blocks 371 to move, the two sliding blocks 371 respectively drive the connected spring fixing block 381 on the left to slide within the slot 382 of the support column 1. At the same time, the sliding blocks 371 drive the soil shovel 373 to move synchronously. When the soil shovel 373 reaches the position suitable for the concrete surface, the spring fixing block 381 engages with the corresponding slot 382. Through the engagement of the spring fixing block 381 and the driving action of the sliding blocks 371, the position of the soil shovel 373 is stably fixed, ensuring that the soil shovel 373 can effectively scrape away the stubborn soil remaining on the concrete surface. When the device needs to be moved, operate the buckle assembly 46. When the portable moving mechanism 4 needs to be unfolded, fix the movable buckle 461 and the ring lock 462. Through the engagement of the two, drive the pressure plate 44 to rotate. When the device moves to the target position, the portable moving mechanism 4 needs to be retracted to separate the movable buckle 461 and the ring lock 462 and release the constraint on the pressure plate 44. The operator holds the push rod 472, which is connected to two force transmission rods 471. The force transmission rods 471 are connected to the plate 2. Pushing the push rod 472 generates a force, which is transmitted to the plate 2 through the force transmission rods 471. The plate 2 then transmits the force to the support column 1. The support column 1 drives the movable plate 42 and the omnidirectional wheel 43. Through the force applied by the push rod 472 and the rolling action of the omnidirectional wheel 43, the device moves between work areas.

[0023] Working principle: First, the water pump 32 on the right side of the water tank 31 in the concrete surface cleaning mechanism 3 is started. After the water pump 32 starts running, it draws out the water stored inside the water tank 31. The drawn water is transported through the outlet pipe 33 at the output end of the water pump 32. The outlet pipe 33 is kept stable by two fixing rings 352. The two fixing rings 352 are connected to the support rod 351. The support rod 351 is connected to the mounting plate 2. The mounting plate 2 provides a mounting carrier for the water tank 31, water pump 32 and flushing assembly 35. At the same time, the support column 1 provides stable support for the mounting plate 2, ensuring that all components remain stable during operation. During water transportation... The flow of water in the outlet pipe 33 can be adjusted by rotating the valve 34 connected to the internal thread of the outlet pipe 33, thereby controlling the water output of the flushing component 35. Two flushing nozzles 353 are fixedly connected to the outer wall of the outlet pipe 33. Through the adjustment of the valve 34 and the water supply action of the water pump 32, water can be sprayed out through the two flushing nozzles 353 on the outlet pipe 33 to flush the concrete surface with a suitable water flow. First, the loose soil attached to the concrete surface is removed. Through the adjustment of the valve 34 and the water spraying action of the flushing nozzles 353, the loose soil on the concrete surface is efficiently flushed and cleaned. After the initial rinsing is completed, the movable shovel assembly 37 and the movable assembly 38 are operated to push the two sliding blocks 371 to move along the two grooves 372 on the support column 1. The two sliding blocks 371 drive the same soil shovel 373 to move synchronously, so that the soil shovel 373 contacts the concrete surface and scrapes off the soil that is still attached tightly after rinsing. At the same time, the two sliding blocks 371 respectively drive the spring fixing block 381 connected on the left to slide in the slot 382 of the support column 1. When the soil shovel 373 reaches the position that matches the concrete surface, the spring fixing block 381 engages with the corresponding slot 382. Through the engagement of the spring fixing block 381 and the driving action of the sliding block 371, the position of the soil shovel 373 is stably fixed, ensuring that the soil shovel 373 can maintain stable contact with the concrete surface. Through the sliding of the sliding block 371 and the scraping action of the soil shovel 373, the stubborn soil is peeled off the concrete surface, achieving the thorough removal of the stubborn soil remaining on the concrete surface. After the concrete surface is cleaned, the curing component 36 is activated. Water from the outlet pipe 33 flows continuously into the folded hose 361, which delivers the water to the curing nozzles 362 at both ends. The water is then evenly sprayed onto the cleaned concrete surface through the curing nozzles 362, providing a suitable curing environment for the concrete and ensuring its strength development. Through the water delivery of the folded hose 361 and the spraying action of the curing nozzles 362, comprehensive curing of the concrete surface is achieved, ensuring that the concrete completes its strength growth in a suitable humidity environment. When the concrete surface curing work is completed, or when it is necessary to move the device to the next concrete area requiring work, the portable moving mechanism 4 installed inside the support column 1 is activated. The unfolding process of the retractable roller mechanism is as follows: First, the latch assembly 46 is operated. The latch assembly 46 includes a movable latch 461 and a ring catch 462. The right side of the movable latch 461 is fixedly connected to the left side of the pressure plate 44, and the left side of the support column 1 is fixedly connected to the ring catch 462, so that the movable latch 461 and the ring catch 462 are locked. Then, the pressure plate 44 is pressed down. When the pressure plate 44 rotates, it drives the force transmission plate 45 to rotate. The force transmission plate 45 is fixedly connected to the right side of the left movable plate 42. The force transmission plate 45 then drives the left movable plate 42 to rotate. The portable moving mechanism 4 includes multiple connecting hinges 41. The bottoms of the multiple connecting hinges 41 are fixed to the left and right sides of the support column 1 respectively on opposite sides. Each part is fixedly connected to a movable plate 42. Under the rotation of the connecting hinge 41, the left movable plate 42 rotates downward. At the same time, through the linkage of the force transmission plate 45, the right movable plate 42 rotates downward synchronously. The bottom of each movable plate 42 is fixedly connected to two omnidirectional wheels 43. As the movable plate 42 rotates downward, the omnidirectional wheels 43 move downward and contact the ground. The synchronous movement of the two movable plates 42 is achieved through the force transmission plate 45 and the connecting hinge 41, so that the omnidirectional wheels 43 can smoothly contact the ground and avoid the device tilting due to uneven force. When the movable plate 42 rotates downward until the omnidirectional wheels 43 touch the ground, the locking state of the buckle assembly 46 is checked again. Through the engagement of the movable buckle 461 and the ring clamp 462, the pressure plate 44 and the support column 1 are fixed, thereby keeping the movable plate 42 in the downward state and ensuring that the omnidirectional wheels 43 stably contact the ground, providing stable support for the movement of the device. Next, the operator holds the push rod assembly 47 set on the top of the work plate 2. The push rod assembly 47 includes two force transmission rods 471 and a single push rod 472. The bottom of the two force transmission rods 471 is fixed to the top of the work plate 2, and the top of each of the two force transmission rods 471 is fixedly connected to the same push rod 472. The operator pushes the push rod 472 to generate force. The force is transmitted to the work plate 2 through the two force transmission rods 471, and then from the work plate 2 to the support column 1. The support column 1 transmits the force to the omnidirectional wheel 43 through the connecting hinge 41 and the movable plate 42. The omnidirectional wheel 43 rolls on the ground, driving the entire device to move. Through the force applied by the push rod 472 and the rolling action of the omnidirectional wheel 43, the device can be moved flexibly between work areas so as to transfer the device to the next concrete area that needs to be worked. Once the device has moved to the target position, it must stop moving and retract the retractable roller mechanism. At this time, operate the latch assembly 46 to release the locking state of the movable latch 461 and the ring clamp 462, causing the movable latch 461 and the ring clamp 462 to separate, thus releasing the constraint on the pressure plate 44. Under the action of gravity, the ground presses against the omnidirectional wheel 43, causing the omnidirectional wheel 43 to move upward, which in turn drives the two movable plates 42 to rotate upward. Under the rotation of the connecting hinge 41, the right movable plate 42 rotates upward, driving the force transmission plate 45 to rotate upward. The force transmission plate 45 then drives the left movable plate 42 to rotate upward synchronously. As the two movable plates 42 rotate upward, the omnidirectional wheel 43 gradually loses contact with the ground until the support column 1 contacts the ground. At this time, the device returns to a stable working state and can carry out the next round of concrete surface cleaning and curing operations.

[0024] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present 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 the present utility model should be included within the protection scope of the present utility model.

Claims

1. A concrete curing device for water conservancy engineering construction, comprising a support column (1), characterized in that: The top of the support column (1) is provided with a plate (2), and the top of the plate (2) is provided with a concrete surface cleaning mechanism (3). The concrete surface cleaning mechanism (3) is used to clean the soil on the concrete surface. The inside of the support column (1) is provided with a portable moving mechanism (4). The portable moving mechanism (4) is used to move the concrete curing device. The concrete surface cleaning mechanism (3) includes a water tank (31), the bottom of which is fixedly connected to the top of the plate (2), a water pump (32) is fixedly connected to the right side of the water tank (31), a water outlet pipe (33) is fixedly connected to the output end of the water pump (32), a valve (34) is threadedly connected to the inside of the water outlet pipe (33), a flushing assembly (35) is provided on the top of the plate (2), a curing assembly (36) is provided on the bottom of the plate (2), a movable shovel assembly (37) is provided on the front side of the support column (1), and a movable assembly (38) is provided on the right side of the support column (1).

2. The concrete curing device for water conservancy engineering construction according to claim 1, characterized in that: The portable mobile mechanism (4) includes multiple connecting hinges (41). The bottoms of the multiple connecting hinges (41) are respectively fixedly connected to the left and right sides of the inside of the support column (1) on opposite sides. The bottoms of the multiple connecting hinges (41) are fixedly connected to movable plates (42). The bottoms of the two movable plates (42) are fixedly connected to two omnidirectional wheels (43). The top of the right movable plate (42) is fixedly connected to a pressure plate (44). The right side of the left movable plate (42) is fixedly connected to a force transmission plate (45). The pressure plate (44) and the left side of the support column (1) are both provided with the same buckle assembly (46). The top of the object plate (2) is provided with a push rod assembly (47).

3. The concrete curing device for water conservancy engineering construction according to claim 1, characterized in that: The flushing assembly (35) includes a support rod (351), the bottom of which is fixedly connected to the top of the plate (2), and the top of which is fixedly connected to two retaining rings (352). The outer wall of the water outlet pipe (33) is fixedly connected to two flushing nozzles (353).

4. A concrete curing device for water conservancy engineering construction according to claim 1, characterized in that: The maintenance component (36) includes a folded hose (361), the top of which is connected to a water outlet pipe (33), and both ends of the folded hose (361) are fixedly connected to maintenance nozzles (362).

5. A concrete curing device for water conservancy engineering construction according to claim 1, characterized in that: The movable shovel assembly (37) includes two sliding blocks (371), the rear sides of which are slidably connected to the front side of the support column (1). The front side of the support column (1) has two grooves (372), and the front sides of the two sliding blocks (371) are fixedly connected to the same soil shovel (373).

6. A concrete curing device for water conservancy engineering construction according to claim 5, characterized in that: The active component (38) includes two spring fixing blocks (381), the left sides of the two spring fixing blocks (381) are respectively fixedly connected to the right sides of the two sliding blocks (371), and the right side of the support column (1) is provided with multiple slots (382), and the spring fixing blocks (381) are slidably connected inside the slots (382).

7. A concrete curing device for water conservancy engineering construction according to claim 2, characterized in that: The buckle assembly (46) includes a movable buckle (461), the right side of which is fixedly connected to the left side of the pressure plate (44), and a ring clip (462) is fixedly connected to the left side of the support column (1).

8. A concrete curing device for water conservancy engineering construction according to claim 2, characterized in that: The push rod assembly (47) includes two force transmission rods (471), the bottom of which is fixedly connected to the top of the plate (2), and the top of each of the two force transmission rods (471) is fixedly connected to the same push rod (472).