A water conservancy concrete curing device

CN224780914UActive Publication Date: 2026-09-22ANHUI XINHUI WATER CONSERVANCY & POWER ENG CO LTD
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Patent Information

Application Number
CN202522273091.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-28
Publication Date
2026-09-22
Estimated Expiration
2035-10-28

AI Technical Summary

Technical Problem

[0004]针对上述中的相关技术,发明人认为存在以下缺陷:上述装置通过插接板本体对同一水平面上的多个隔板进行限位,并通过锁紧条对竖直方向上的多个插接板本体进行限位,当工作人员需对其中一个隔板的位置进行调节时,需先后解锁锁紧条以及插接板本体,操作复杂,且工作人员在调整隔板的位置时易由于误触导致其他隔板的位置发生改变,使用体验差

Benefits of technology

1、本申请中,当工作人员需对混凝土试件进行养护时,工作人员需将混凝土试件移动至养护装置处,并将混凝土试件放置在网状板上。此时,为了使相邻两个隔板之间的间距与混凝土试件相互匹配,工作人员需对隔板的位置进行调节。此时,工作人员需开启对应隔板上的驱动装置,即可使固定杆与固定孔相互分离并保持分离状态。进一步的,工作人员需滑动握把,即可使T形块跟随握把移动,从而使隔板跟随T形移动,进而对隔板的位置进行调节。当隔板的位置与混凝土试件相互匹配时,工作人员只需重新开启固定组件,即可对该隔板进行固定。多个隔板之间相互独立,从而减小了工作人员调整其中一个隔板的位置时由于误触导致其他隔板的位置发生改变的概率,进而提高了工作人员的使用体验;

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Abstract

The application belongs to the technical field of concrete curing and discloses a water conservancy project concrete curing device, which comprises a support and a stabilizing rod installed at the bottom of the support; the upper surface of the support is sequentially provided with four supporting rods; a plurality of net-shaped plates are jointly installed on the four supporting rods; a plurality of fixing plates are jointly installed on the four supporting rods; T-shaped grooves are formed in the side walls of the plurality of fixing plates; T-shaped blocks are slidably arranged in the plurality of T-shaped grooves; baffle plates are installed on the side walls of the plurality of T-shaped blocks; and fixing assemblies for fixing the T-shaped blocks are arranged on the plurality of T-shaped blocks. The application has the effect of reducing the difficulty of adjusting the positions of the baffle plates by workers.
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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 projects. Background Technology

[0002] After concrete is poured, if the climate is hot and the air is dry, and curing is not carried out in a timely manner, the moisture in the concrete will evaporate too quickly, leading to dehydration. This will prevent the cement particles that have formed a gel from fully hydrating and transforming into stable crystals, resulting in insufficient bonding strength and causing flaking or powdering on the concrete surface. Furthermore, premature evaporation of moisture before the concrete has reached sufficient strength can also cause significant shrinkage deformation and drying shrinkage cracks. The curing room is the place for curing concrete specimens after molding, and the curing rack is the carrier for curing the concrete specimens. Existing curing racks, whether self-made or purchased pre-made, are basically monolithic plate-like or mesh-like, making it difficult for personnel to control the spacing between specimens when they are stored. At the same time, when curing concrete specimens of different sizes, since their dimensions are usually inconsistent, the existing curing racks lack partitions, easily leading to dense storage of concrete specimens, which to some extent affects the final quality of the concrete.

[0003] Chinese utility model patent CN217621270U discloses a concrete curing device for hydraulic engineering, comprising: a support frame having several layers, each layer having a mesh plate as its base; side plates disposed along the outer edge of the mesh plate, with transverse T-shaped grooves on the side of the side plates near the mesh plate; several T-shaped sliders slidably disposed within the transverse T-shaped grooves, with partitions fixed at the ends of the T-shaped sliders; and a connecting plate for locking the T-shaped sliders and partitions. By setting partitions on the mesh plate, the spacing between concrete specimens can be easily improved, facilitating the achievement of the spacing requirements specified in the standards. Furthermore, the partition adjustment assembly allows users to easily adjust the distance between multiple partitions on the mesh plate according to actual usage needs, thereby ensuring the quality of the concrete specimens and facilitating operation by staff.

[0004] Regarding the aforementioned technologies, the inventors believe that the following defects exist: The aforementioned device limits multiple partitions on the same horizontal plane through the plug-in plate body, and limits multiple plug-in plate bodies in the vertical direction through the locking strip. When the operator needs to adjust the position of one of the partitions, the locking strip and the plug-in plate body must be unlocked one after another, which is complicated to operate. Moreover, when the operator adjusts the position of the partition, the position of other partitions may be changed due to accidental touch, resulting in a poor user experience. Utility Model Content

[0005] To address the aforementioned problems, this utility model provides a concrete curing device for water conservancy projects.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a concrete curing device for water conservancy projects, including a support and a stabilizing rod installed at the bottom of the support. Four support rods are installed sequentially on the upper surface of the support. Multiple mesh plates are installed on the four support rods. Multiple fixing plates are installed on the four support rods. T-shaped grooves are opened on the side walls of the multiple fixing plates. T-shaped blocks are slidably arranged in the multiple T-shaped grooves. Partitions are installed on the side walls of the multiple T-shaped blocks. Fixing components for fixing the T-shaped blocks are provided on the multiple T-shaped blocks.

[0007] By adopting the above technical solution, when workers need to cure concrete specimens, they must move the specimens to the curing device and place them on the mesh plate. At this point, to match the spacing between adjacent partitions with the concrete specimen, the workers need to adjust the position of the partitions. This is done by activating the drive device on the corresponding partition, which separates the fixing rod from the fixing hole and keeps it in a separated state. Further, the workers slide the handle, causing the T-shaped block to move with the handle, thus moving the partition along the T-shape and adjusting its position. Once the partition's position matches the concrete specimen, the workers simply need to reactivate the fixing assembly to secure the partition. The multiple partitions are independent of each other, reducing the probability of accidentally changing the position of other partitions when adjusting the position of one partition, thereby improving the user experience.

[0008] Furthermore, a fixing groove is provided on the side wall of the T-shaped block, and a plurality of equally spaced fixing holes are provided on the inner wall of the T-shaped groove. The fixing assembly includes a fixing rod slidably disposed in the fixing groove, a compression spring fixed at one end to the side wall of the fixing rod, and a driving device disposed on the partition for driving the fixing rod. The other end of the compression spring is fixed to the inner wall of the fixing groove.

[0009] By adopting the above technical solution, when the fixing rod is not subjected to external force, it connects to one of the fixing holes under the action of the compression spring, thus keeping the T-block stable. When the operator needs to adjust the position of the partition, they need to activate the drive device, which moves the fixing rod away from the fixing hole, thus separating the fixing rod from the fixing hole. Then, the operator only needs to slide the partition to adjust its position, reducing the difficulty of adjusting the partition's position.

[0010] Furthermore, the upper surface of the partition is provided with a rotating groove, and the driving device includes a rotating rod rotatably disposed on the inner wall of the rotating groove, a rotating plate fixed to the rotating rod, and a driving rope with one end fixed to the side wall of the fixed rod near the compression spring. The other end of the driving rope is fixed to the side wall of the rotating plate.

[0011] Furthermore, a stabilizing block is fixed to the bottom surface of the rotating plate.

[0012] By adopting the above technical solution, when the staff needs to adjust the position of the partition, the staff needs to pull the rotating plate upward, which will cause the drive rope to move upward under the action of the rotating plate, and then the fixed rod will move with the drive rope, thereby moving the fixed rod away from the fixed hole and separating it from the fixed hole, thus reducing the difficulty for the staff to adjust the position of the partition.

[0013] Furthermore, the rotating plate includes a first movable plate fixed to the rotating rod, a fixed rod fixed to the first movable plate, a support plate rotatably connected to the fixed rod, and a second movable plate fixed to the end of the fixed rod, wherein the driving rope is fixed to the second movable plate.

[0014] By adopting the above technical solution, when the operator pulls the rotating plate upwards, the first moving plate, the support plate, and the second moving plate move upwards simultaneously, causing the fixed rod to move away from the fixed hole and separate from it. At this point, the operator only needs to rotate the support plate to gradually make it perpendicular to the second moving plate. Subsequently, the operator only needs to release the rotating plate to allow it to slightly reset under the action of the compression spring, and the support plate to press against the inner bottom wall of the rotating groove, thus limiting the support plate and keeping the fixed rod separated from the fixed hole, further reducing the difficulty for the operator to adjust the position of the partition.

[0015] Furthermore, the support plate is made of iron.

[0016] Furthermore, a magnet is embedded in the side wall of the second movable plate near the fixed rod.

[0017] By adopting the above technical solution, when the staff does not need to use the support plate, the support plate and the first moving plate are parallel to each other, so that the magnet block continuously attracts the support plate, thereby improving the stability of the support plate at this time and reducing the probability of the support plate interfering with the normal operation of the rotating plate.

[0018] Furthermore, the upper surfaces of the plurality of fixed plates are provided with connecting grooves that communicate with the T-shaped grooves, and the upper surfaces of the plurality of T-shaped blocks are fixed with handles to reduce the difficulty for workers to move the T-shaped blocks.

[0019] By adopting the above technical solution, the grip reduces the probability of the T-block getting stuck when the operator moves it, thereby increasing the difficulty for the operator to adjust the position of the partition.

[0020] In summary, this utility model has the following beneficial effects: 1. In this application, when workers need to cure concrete specimens, they must move the specimens to the curing device and place them on the mesh plate. To match the spacing between adjacent partitions with the concrete specimen, the workers need to adjust the partition positions. This is done by activating the drive mechanism on the corresponding partition, which separates the fixing rod from the fixing hole and keeps them in this separated state. Further, the workers slide the handle, causing the T-shaped block to move with the handle, thus moving the partition along the T-shape and adjusting its position. Once the partition position matches the concrete specimen, the workers simply need to reactivate the fixing assembly to secure the partition. The multiple partitions are independent of each other, reducing the probability of accidental changes to the positions of other partitions when adjusting one partition, thereby improving the user experience. 2. In this application, when the fixing rod is not subjected to external force, it connects to one of the fixing holes under the action of the compression spring, thereby keeping the T-block stable under the action of the fixing rod. When the operator needs to adjust the position of the partition, the operator needs to activate the drive device, which will cause the fixing rod to move away from the fixing hole under the action of the drive device, thereby separating the fixing rod from the fixing hole. Subsequently, the operator only needs to slide the partition to adjust its position, thus reducing the difficulty of adjusting the partition position. 3. In this application, when the operator pulls the rotating plate upwards, the first moving plate, the support plate, and the second moving plate move upwards simultaneously, causing the fixing rod to move away from the fixing hole and separate from it. At this time, the operator only needs to rotate the support plate to gradually make it perpendicular to the second moving plate. Subsequently, the operator only needs to release the rotating plate to allow it to slightly reset under the action of the compression spring, and to press the support plate against the inner bottom wall of the rotating groove, thereby limiting the support plate and keeping the fixing rod separated from the fixing hole, thus further reducing the difficulty for the operator to adjust the position of the partition. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model; Figure 2 This is a schematic diagram of the grip and its connection structure according to an embodiment of the present utility model; Figure 3This is a schematic diagram of the fixing hole and its connection structure according to an embodiment of the present utility model; Figure 4 This is a schematic diagram of the fixing groove and its connection structure according to an embodiment of the present utility model; Figure 5 This is a schematic diagram of the fixing component and its connection structure according to an embodiment of the present utility model; Figure 6 This is a schematic diagram of the rotating plate and its connection structure according to an embodiment of the present invention.

[0022] In the diagram: 1. Bracket; 11. Stabilizer; 2. Support rod; 21. Mesh plate; 3. Fixing plate; 31. T-slot; 32. T-block; 4. Partition; 41. Fixing slot; 42. Fixing hole; 5. Fixing assembly; 51. Fixing rod; 52. Compression spring; 53. Rotating slot; 6. Drive device; 61. Rotating rod; 62. Rotating plate; 621. First moving plate; 622. Fixing rod; 623. Support plate; 624. Second moving plate; 63. Drive rope; 7. Stabilizer; 8. Magnet block; 81. Connecting slot; 9. Handle. Detailed Implementation

[0023] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0024] like Figure 1-6 As shown in the illustration, this application discloses a concrete curing device for hydraulic engineering, including a support 1, a stabilizing rod 11, a supporting rod 2, a mesh plate 21, a fixing plate 3, a T-shaped block 32, a partition 4, a fixing component 5, a stabilizing block 7, a magnet block 8, and a handle 9. The stabilizing rod 11 is a rod-shaped structure, with four rods installed sequentially at the bottom of the support 1. The supporting rod 2 is a rod-shaped structure, with four rods installed sequentially on the upper surface of the support 1. The mesh plate 21 is a plate-shaped structure, with multiple mesh plates installed sequentially on the four supporting rods 2. The fixing plate 3 is a plate-shaped structure, with multiple fixing plates installed sequentially on the four supporting rods 2. T-shaped grooves 31 are formed on the side walls of the multiple fixing plates 3. The T-shaped blocks 32 are block-shaped structures with a T-shaped cross-section, and are slidably disposed within the T-shaped grooves 31. The partition 4 is a plate-shaped structure, with each partition corresponding to a T-shaped block 32 and installed on the side wall of the T-shaped block 32.

[0025] A fixing groove 41 is formed on the side wall of the T-shaped block 32, and multiple fixing holes 42 are formed on the inner wall of the T-shaped groove 31. Multiple fixing components 5 are provided and sequentially arranged on multiple T-shaped blocks 32 for fixing the T-shaped blocks 32. The fixing components 5 include a fixing rod 51, a compression spring 52, and a driving device 6. The fixing rod 51 is a rectangular rod structure and is slidably disposed within the fixing groove 41. One end of the compression spring 52 is fixed to the side wall of the fixing rod 51, and the other end of the compression spring 52 is fixed to the inner wall of the fixing groove 41.

[0026] When the fixing rod 51 is not subjected to external force, it connects to one of the fixing holes 42 under the action of the compression spring 52, thus keeping the T-block 32 stable. When the operator needs to adjust the position of the partition 4, the operator needs to activate the drive device 6, which will move the fixing rod 51 away from the fixing hole 42, thereby separating the fixing rod 51 from the fixing hole 42. Subsequently, the operator only needs to slide the partition 4 to adjust its position, thus reducing the difficulty of adjusting the position of the partition 4.

[0027] A rotating groove 53 is formed on the upper surface of the partition 4. A driving device 6 is mounted on the partition 4 to drive the fixed rod 51. The driving device 6 includes a rotating rod 61, a rotating plate 62, and a driving rope 63. The rotating rod 61 is a round rod structure and is rotatably mounted on the inner wall of the rotating groove 53. One end of the driving rope 63 is fixed to the side wall of the fixed rod 51 near the compression spring 52, and the other end of the driving rope 63 is fixed to the side wall of the rotating plate 62. The stabilizing block 7 is a block structure and is fixed to the bottom surface of the rotating plate 62.

[0028] When the staff needs to adjust the position of the partition 4, the staff needs to pull the rotating plate 62 upward, which will cause the drive rope 63 to move upward under the action of the rotating plate 62, and then the fixed rod 51 will move with the drive rope 63, thereby moving the fixed rod 51 away from the fixed hole 42 and separating it from the fixed hole 42, thus reducing the difficulty for the staff to adjust the position of the partition 4.

[0029] The rotating plate 62 is fixed to the rotating rod 61. The rotating plate 62 includes a first movable plate 621, a fixed rod 622, a support plate 623, and a second movable plate 624. The first movable plate 621 is a plate-shaped structure and is fixed to the rotating rod 61. The fixed rod 622 is a round rod-shaped structure and is fixed to the first movable plate 621. The support plate 623 is a rectangular plate-shaped structure and is rotatably connected to the fixed rod 622. The second movable plate 624 is a plate-shaped structure and is fixed to the end of the fixed rod 622. The drive rope 63 is also fixed to the second movable plate 624.

[0030] When the operator pulls the rotating plate 62 upwards, the first moving plate 621, the support plate 623, and the second moving plate 624 move upwards simultaneously, causing the fixing rod 51 to move away from the fixing hole 42 and separate from it. At this time, the operator only needs to rotate the support plate 623 to gradually make it perpendicular to the second moving plate 624. Subsequently, the operator only needs to release the rotating plate 62 to allow it to slightly reset under the action of the compression spring 52, and to press the support plate 623 against the inner bottom wall of the rotating groove 53, thereby limiting the position of the support plate 623 and keeping the fixing rod 51 separated from the fixing hole 42, thus further reducing the difficulty for the operator to adjust the position of the partition 4.

[0031] The support plate 623 is made of iron, and the magnet 8 is a block structure embedded in the side wall of the second moving plate 624 near the fixed rod 622. When the support plate 623 is not in use, it is parallel to the first moving plate 621, allowing the magnet 8 to continuously attract the support plate 623. This improves the stability of the support plate 623 and reduces the probability of it interfering with the normal operation of the rotating plate 62.

[0032] The upper surfaces of multiple fixed plates 3 are provided with connecting grooves 81 that communicate with T-shaped grooves 31. Handles 9 correspond one-to-one with T-shaped blocks 32 and are sequentially fixed to the upper surfaces of multiple T-shaped blocks 32, reducing the difficulty for workers to move the T-shaped blocks 32. The handles 9 reduce the probability of the T-shaped blocks 32 getting stuck when workers move them, thereby increasing the difficulty for workers to adjust the position of the partition 4.

[0033] The operating principle of the concrete curing device for hydraulic engineering in this embodiment is as follows: When workers need to cure concrete specimens, they need to move the concrete specimens to the curing device and place them on the mesh plate 21. At this time, to match the spacing between adjacent partitions 4 with the concrete specimen, the workers need to adjust the position of the partitions 4. The workers need to activate the drive device 6 on the corresponding partition 4, which will separate the fixing rod 51 from the fixing hole 42 and keep them separated. Further, the workers need to slide the handle 9, which will move the T-shaped block 32 along with the handle 9, thereby moving the partition 4 along with the T-shape and adjusting its position. When the position of the partition 4 matches the concrete specimen, the workers only need to reopen the fixing component 5 to fix the partition 4. The multiple partitions 4 are independent of each other, thus reducing the probability of accidentally changing the position of other partitions 4 when adjusting the position of one partition 4, thereby improving the user experience.

[0034] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. A concrete curing device for hydraulic engineering, comprising a support (1) and a stabilizing rod (11) installed at the bottom of the support (1), characterized in that: Four support rods (2) are sequentially installed on the upper surface of the bracket (1). Multiple mesh plates (21) are installed on the four support rods (2). Multiple fixing plates (3) are installed on the four support rods (2). T-shaped grooves (31) are opened on the side walls of the multiple fixing plates (3). T-shaped blocks (32) are slidably arranged in the multiple T-shaped grooves (31). Partitions (4) are installed on the side walls of the multiple T-shaped blocks (32). Fixing components (5) for fixing the T-shaped blocks (32) are provided on the multiple T-shaped blocks (32).

2. The concrete curing device for water conservancy projects according to claim 1, characterized in that: The T-shaped block (32) has a fixing groove (41) on its side wall and a plurality of equally spaced fixing holes (42) on its inner wall. The fixing assembly (5) includes a fixing rod (51) slidably disposed in the fixing groove (41), a compression spring (52) with one end fixed to the side wall of the fixing rod (51), and a driving device (6) disposed on the partition (4) for driving the fixing rod (51). The other end of the compression spring (52) is fixed to the inner wall of the fixing groove (41).

3. The concrete curing device for water conservancy projects according to claim 2, characterized in that: The upper surface of the partition (4) is provided with a rotating groove (53). The driving device (6) includes a rotating rod (61) rotatably disposed on the inner wall of the rotating groove (53), a rotating plate (62) fixed to the rotating rod (61), and a driving rope (63) with one end fixed to the side wall of the fixed rod (51) near the compression spring (52). The other end of the driving rope (63) is fixed to the side wall of the rotating plate (62).

4. The concrete curing device for water conservancy projects according to claim 3, characterized in that: A stabilizing block (7) is fixed to the bottom surface of the rotating plate (62).

5. A concrete curing device for hydraulic engineering according to claim 4, characterized in that: The rotating plate (62) includes a first movable plate (621) fixed to the rotating rod (61), a fixed rod (622) fixed to the first movable plate (621), a support plate (623) rotatably connected to the fixed rod (622), and a second movable plate (624) fixed to the end of the fixed rod (622). The driving rope (63) is fixed to the second movable plate (624).

6. A concrete curing device for hydraulic engineering according to claim 5, characterized in that: The support plate (623) is made of iron.

7. A concrete curing device for hydraulic engineering according to claim 6, characterized in that: A magnet (8) is embedded in the side wall of the second movable plate (624) near the fixed rod (622).

8. A concrete curing device for hydraulic engineering according to claim 7, characterized in that: The upper surfaces of the multiple fixed plates (3) are provided with a connecting groove (81) that communicates with the T-shaped groove (31), and the upper surfaces of the multiple T-shaped blocks (32) are fixed with a handle (9) to reduce the difficulty for workers to move the T-shaped blocks (32).

Citation Information

Patent Citations

  • Hydraulic engineering concrete curing device

    CN217621270U