Cement pole pouring forming equipment
By combining multiple telescopic mixing mechanisms and lifting and rotating mechanisms in the cement pole casting equipment, the problems of air bubbles and pores during the cement pole casting process are solved, achieving uniform distribution of cement density and improvement of mechanical properties.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 江苏博邦新型建材有限公司
- Filing Date
- 2026-02-26
- Publication Date
- 2026-04-17
AI Technical Summary
In existing technologies, air bubbles and pores are difficult to remove effectively during the pouring process of cement poles, resulting in uneven density distribution and affecting the overall mechanical properties of the poles.
A cement pole casting and molding equipment is used, including a casting well, a casting mechanism, a pole mold, a load-bearing mechanism, and a porosity reduction component. Through the cooperation of multiple sets of telescopic mixing mechanisms, lifting mechanisms, and driving mechanisms, the equipment achieves all-round three-dimensional vibration and porosity reduction of cement slurry.
It effectively reduces air bubbles and pores during the pouring of cement poles, improves the uniformity of cement density distribution, and thus enhances the overall mechanical properties of the poles.
Smart Images

Figure CN121870890A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of pole casting, and more particularly to a cement pole casting and molding equipment. Background Technology
[0002] As a core supporting structure in fields such as power transmission and communication networks, the quality of cement poles directly affects the safety and reliability of infrastructure.
[0003] In related technologies, the casting process of cement poles mainly adopts centrifugal molding or vibration molding. Centrifugal molding involves adding cement slurry into a rotating mold and compacting the concrete under centrifugal force through high-speed rotation (300-1500 rpm). Vibration molding involves pouring cement slurry in layers and vibrating it with a vibrator. Although the above methods can achieve the casting and molding of cement poles, they all have certain defects.
[0004] In centrifugal molding, high-speed rotation causes coarse aggregate to concentrate on the outside, easily forming pores inside and leading to a gradient distribution of cement density. In vibration molding, the vibrator can only act locally, making it difficult to expel deep air bubbles and fine pores, resulting in a loose internal structure of the pole and a decrease in strength, impermeability, and durability. All of these defects will affect the overall mechanical properties of the cement pole and have an adverse impact on its quality. Summary of the Invention
[0005] This application aims to at least partially address one of the technical problems in the related art.
[0006] Therefore, one objective of this application is to provide a cement pole casting and molding equipment that can effectively reduce air bubbles and pores generated during the cement pole casting process, improve the uniformity of cement density distribution, and thus effectively improve the overall mechanical properties of the cement pole.
[0007] To achieve the above objectives, the first aspect of this application provides a cement pole casting and molding equipment, including a casting well, a casting mechanism, a pole mold, a supporting mechanism, and a porosity reduction component. The casting mechanism is positioned above the casting well, the supporting mechanism is positioned inside the casting well, and the pole mold is positioned on the supporting mechanism. The porosity reduction component includes a sleeve, multiple sets of telescopic mixing mechanisms, a lifting mechanism, and a driving mechanism. The sleeve is positioned inside the pole mold and is slidably connected to the pole mold vertically. The top end of the sleeve is closed, and the bottom end of the sleeve passes through the pole mold and the supporting mechanism sequentially. Multiple sets of telescopic mixing mechanisms are respectively positioned on the sleeve, each set being telescopic and evenly distributed from top to bottom. The lifting mechanism is positioned inside the casting well and below the supporting mechanism. The driving mechanism is positioned on the lifting mechanism and is fixedly connected to the bottom end of the sleeve.
[0008] The cement pole casting equipment of this application embodiment can effectively reduce air bubbles and pores generated during the cement pole casting process, improve the uniformity of cement density distribution, and thus effectively improve the overall mechanical properties of the cement pole.
[0009] In addition, the cement pole casting and molding equipment proposed in this application may also have the following additional technical features: In one embodiment of this application, the supporting mechanism includes a partition, a support plate, and a plurality of positioning cylinders. The partition and the support plate are respectively disposed within the casting well, and the support plate is located below the partition. The partition has a positioning hole with a diameter larger than the outer wall diameter of the electric rod mold, and the support plate has a through hole with a diameter smaller than the outer wall diameter of the electric rod mold. The center of the positioning hole and the center of the through hole are on the same vertical line. The plurality of positioning cylinders are respectively disposed on the top of the partition, and the movable ends of the plurality of positioning cylinders are respectively disposed close to the center of the positioning hole. A positioning block is fixedly disposed on the movable end of the plurality of positioning cylinders.
[0010] In one embodiment of this application, the telescopic stirring mechanism includes an electric push rod and a stirring rod, wherein the electric push rod is fixedly disposed inside the sleeve and is horizontally disposed; one end of the stirring rod is fixedly connected to the movable end of the electric push rod, and the other end of the stirring rod can penetrate through one side of the sleeve, and in its natural state, the stirring rod is located inside the sleeve.
[0011] In one embodiment of this application, the lifting mechanism includes a hydraulic cylinder and a lifting plate, wherein the hydraulic cylinder is fixedly disposed at the bottom of the casting well, the lifting plate is horizontally disposed on the movable end of the hydraulic cylinder, and the driving mechanism is disposed on the lifting plate.
[0012] In one embodiment of this application, the lifting mechanism further includes a plurality of guide rods, the bottom ends of which are fixedly connected to the bottom of the casting well. The lifting plate is provided with a plurality of guide holes adapted to the guide rods, and the lifting plate slides with the guide rods through the guide holes.
[0013] In one embodiment of this application, the drive mechanism includes a mounting frame and a drive motor, wherein the mounting frame is fixedly mounted on the lifting plate, and the sleeve is rotatably connected to the mounting frame; the drive motor is fixedly mounted on the lifting plate, and the drive motor is coaxially connected to the bottom end of the sleeve via a coupling.
[0014] In one embodiment of this application, the pouring mechanism includes a cement slurry storage tank, a mud pump, a conveying pipeline, and a pouring nozzle. The cement slurry storage tank is located above the pouring well. The inlet end of the mud pump is connected to the cement slurry storage tank, and the other end of the mud pump is connected to one end of the conveying pipeline. The other end of the conveying pipeline is connected to the pouring nozzle, which is located above the pole mold.
[0015] Compared with the prior art, the beneficial effects of this application are as follows: 1. Efficiently eliminates air bubbles and pores: Multiple sets of telescopic mixing mechanisms are evenly distributed along the axial direction of the sleeve. Through the drive mechanism to rotate and the radial expansion of the mixing rod, the cement slurry is vibrated in all directions, effectively reducing air bubbles and pores generated during the pouring of cement poles.
[0016] 2. Supports integrated production of hollow and solid poles: By driving the sleeve into the pole mold and resetting multiple sets of telescopic stirring, a hollow casting space can be formed between the sleeve and the inner wall of the pole mold to cast hollow cement poles; by driving the sleeve down, a solid casting space can be formed inside the pole mold to cast solid cement poles.
[0017] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0018] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein: Figure 1 This is a front cross-sectional structural schematic diagram of a cement pole casting and molding equipment according to an embodiment of this application; Figure 2 This is a front cross-sectional structural schematic diagram of a cement pole casting and molding equipment according to another embodiment of this application; Figure 3 For this application Figure 1 Enlarged view of point A in the middle; Figure 4 This is a top view of the casting well of a cement pole casting equipment according to an embodiment of this application.
[0019] As shown in the figure: 1. Pouring well; 2. Pouring mechanism; 201. Cement slurry storage tank; 202. Mud pump; 203. Conveying pipeline; 204. Pouring nozzle; 3. Pole mold; 4. Bearing mechanism; 401. Partition plate; 402. Support plate; 403. Positioning cylinder; 5. Porosity reduction component; 51. Sleeve; 52. Telescopic mixing mechanism; 521. Electric push rod; 522. Mixing rod; 54. Lifting mechanism; 541. Hydraulic cylinder; 542. Lifting plate; 543. Guide rod; 55. Drive mechanism; 551. Mounting frame; 552. Drive motor. Detailed Implementation
[0020] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.
[0021] The following describes the cement pole casting and molding equipment according to an embodiment of this application with reference to the accompanying drawings.
[0022] like Figures 1-4 As shown, the cement pole casting and molding equipment of this application embodiment may include a casting well 1, a casting mechanism 2, a pole mold 3, a bearing mechanism 4, and a pore reduction component 5.
[0023] The casting mechanism 2 is located above the casting well 1, the bearing mechanism 4 is located inside the casting well 1, and the pole mold 3 is located on the bearing mechanism 4.
[0024] The porosity reduction component 5 may include a sleeve 51, multiple sets of telescopic stirring mechanisms 52, a lifting mechanism 54, and a driving mechanism 55.
[0025] The sleeve 51 is installed inside the pole mold 3 and is slidably connected to the pole mold 3. The top of the sleeve 51 is closed, and the bottom of the sleeve 51 passes through the pole mold 3 and the bearing mechanism 4 in sequence. Multiple sets of telescopic mixing mechanisms 52 are respectively installed on the sleeve 51. The multiple sets of telescopic mixing mechanisms 52 are telescopic and are evenly distributed from top to bottom. The lifting mechanism 54 is installed inside the casting well 1 and is located below the bearing mechanism 4. The driving mechanism 55 is installed on the lifting mechanism 54 and is fixedly connected to the bottom of the sleeve 51.
[0026] In one embodiment of this application, the bearing mechanism 4 may include a partition 401, a support plate 402, and a plurality of positioning cylinders 403.
[0027] The partition plate 401 and the support plate 402 are respectively installed in the casting well 1, and the support plate 402 is located below the partition plate 401. The partition plate 401 has a positioning hole with a diameter larger than the outer wall diameter of the electric rod mold, and the support plate 402 has a through hole with a diameter smaller than the outer wall diameter of the electric rod mold. The center of the positioning hole and the center of the through hole are on the same vertical line. Multiple positioning cylinders 403 are respectively installed on the top of the partition plate 401. The movable ends of the multiple positioning cylinders 403 are respectively located close to the center of the positioning hole, and positioning blocks are fixedly installed on the movable ends of the multiple positioning cylinders 403.
[0028] Specifically, the positioning holes on the partition plate 401 cooperate with multiple positioning cylinders 403. By extending and retracting the movable end of the positioning cylinder 403, the positioning block contacts or separates from the outer wall of the pole mold 3, thereby achieving the positioning and unlocking of the pole mold 3. The support plate 402 is used to support the weight of the pole mold 3. Its through hole provides space for the sleeve 51 to pass through and ensures that the sleeve 51 can slide freely up and down.
[0029] In one embodiment of this application, the telescopic stirring mechanism 52 includes an electric push rod 521 and a stirring rod 522.
[0030] The electric push rod 521 is fixedly installed inside the sleeve 51 and is horizontally positioned. One end of the stirring rod 522 is fixedly connected to the movable end of the electric push rod 521, and the other end of the stirring rod 522 can pass through one side of the sleeve 51. In its natural state, the stirring rod 522 is located inside the sleeve 51.
[0031] Specifically, the electric push rod 521 is fixed inside the sleeve 51. When the movable end of the electric push rod 521 extends, it pushes the stirring rod 522 out of the sleeve 51 and into the cement slurry. When the electric push rod 521 retracts, the stirring rod 522 retracts into the sleeve 51. Since the sleeve 51 is rotating, the stirring rod 522 will make a circular motion in the cement slurry when it is extended, thus realizing the stirring function.
[0032] In one embodiment of this application, the lifting mechanism 54 may include a hydraulic cylinder 541 and a lifting plate 542.
[0033] Hydraulic cylinder 541 is fixedly installed at the bottom of casting well 1, lifting plate 542 is horizontally installed on the movable end of hydraulic cylinder 541, and drive mechanism 55 is installed on lifting plate 542.
[0034] The lifting mechanism 54 may also include multiple guide rods 543, the bottom ends of which are fixedly connected to the bottom of the casting well 1. The lifting plate 542 is provided with multiple guide holes that are compatible with the guide rods 543, and the lifting plate 542 slides with the guide rods 543 through the guide holes.
[0035] Specifically, hydraulic cylinder 541 is fixed to the bottom of casting well 1, and its movable end is connected to lifting plate 542. When the movable end of hydraulic cylinder 541 extends or retracts, it drives lifting plate 542 to rise or fall. The guide hole on lifting plate 542 is slidably engaged with guide rod 543 to ensure the smoothness and accuracy of the lifting process.
[0036] In one embodiment of this application, the drive mechanism 55 may include a mounting bracket 551 and a drive motor 552.
[0037] The mounting bracket 551 is fixedly mounted on the lifting plate 542, the sleeve 51 is rotatably connected to the mounting bracket 551, the drive motor 552 is fixedly mounted on the lifting plate 542, and the drive motor 552 is coaxially connected to the bottom end of the sleeve 51 through a coupling.
[0038] Specifically, the drive motor 552 is fixed on the lifting plate 542 and coaxially connected to the bottom end of the sleeve 51 via a coupling. When the drive motor 552 starts, the rotational motion of its output shaft is transmitted to the sleeve 51 through the coupling, causing the sleeve 51 to rotate around its own axis. In one embodiment of this application, the pouring mechanism 2 may include a cement slurry storage tank 201, a mud pump 202, a delivery pipeline 203, and a pouring nozzle 204.
[0039] The cement slurry storage tank 201 is located above the casting well 1. The inlet end of the mud pump 202 is connected to the cement slurry storage tank 201. The other end of the mud pump 202 is connected to one end of the conveying pipe 203. The other end of the conveying pipe 203 is connected to the casting nozzle 204. The casting nozzle 204 is located above the pole mold 3.
[0040] Specifically, the inlet end of the mud pump 202 is connected to the cement slurry storage tank 201. After the mud pump 202 is started, the mud pump 202 generates suction to draw the cement slurry from the cement slurry storage tank 201, and then transports it to the pouring nozzle 204 through the conveying pipe 203. Finally, it is sprayed out from the pouring nozzle 204 and falls into the pole mold 3.
[0041] Understandably, when installing and assembling this application, relevant personnel first construct a pouring well 1 at a suitable location on the ground, which serves as the foundation support and working space for the entire equipment. Then, the load-bearing mechanism 4 is installed inside the pouring well 1, with the partition plate 401 and the support plate 402 set horizontally as required, with the partition plate 401 on top and the support plate 402 on the bottom. It is ensured that the center of the positioning hole on the partition plate 401 and the center of the through hole on the support plate 402 are on the same vertical line. Multiple positioning cylinders 403 are evenly installed on the top of the partition plate 401.
[0042] Set the pouring mechanism 2 above the pouring well 1, place the cement slurry storage tank 201, and connect the mud pump 202, the conveying pipe 203 and the pouring nozzle 204 to ensure that the cement slurry can be delivered smoothly.
[0043] The pore reduction component 5 is assembled and installed. The sleeve 51 is installed inside the pole mold 3 so that it can slide up and down with the pole mold 3. The top of the sleeve 51 is closed, and the bottom end passes through the pole mold 3 and the bearing mechanism 4 in sequence. Multiple sets of telescopic mixing mechanisms 52 are evenly installed on the sleeve 51. The lifting mechanism 54 is installed inside the pouring well 1 and located below the bearing mechanism 4. The driving mechanism 55 is installed on the lifting mechanism 54 and is fixedly connected to the bottom end of the sleeve 51.
[0044] Specifically, the overall workflow of this application is as follows: Mold positioning: Relevant personnel use an overhead crane to lift the pole mold 3 to the top of the pouring well 1, and slowly lower it so that the pole mold 3 passes through the positioning hole on the partition plate 401 until it lands on the support plate 402. At this time, multiple positioning cylinders 403 are activated. The movable end of the positioning cylinder 403 extends and drives the positioning block to move towards the center of the positioning hole until the positioning block is tightly attached to the outer wall of the pole mold 3, thereby accurately positioning the pole mold 3 on the bearing mechanism 4 and ensuring that the pole mold 3 is in the correct pouring position.
[0045] Cement slurry pouring: Turn on the mud pump 202, which extracts the cement slurry from the cement slurry storage tank 201 and delivers it to the pouring nozzle 204 through the delivery pipe 203. The cement slurry is sprayed out from the pouring nozzle 204 and falls into the pole mold 3.
[0046] Porosity reduction: After a certain amount of cement slurry is poured, the drive mechanism 55 is started and the drive motor 552 starts to work. Through the coupling, the sleeve 51 is driven to rotate around its own axis. The rotation of the sleeve 51 will drive the multiple sets of telescopic stirring mechanisms 52 installed on it to rotate together, thereby generating a rotational stirring effect on the cement slurry in the pole mold 3, which helps to break the air bubbles in the cement slurry and make the cement slurry more uniform.
[0047] Stirring rod extension and retraction: While the sleeve 51 rotates, the electric push rod 521 in the extension and retraction stirring mechanism 52 is controlled to move. The movable end of the electric push rod 521 extends, pushing the stirring rod 522 out of the sleeve 51 and into the cement slurry. As the sleeve 51 rotates, the extended stirring rod 522 will make a circular motion in the cement slurry. The electric push rod 521 can also be controlled to reciprocate to further stir the cement slurry and enhance the reduction effect on air bubbles and pores. After stirring is completed, the electric push rod 521 retracts, bringing the stirring rod 522 back into the sleeve 51.
[0048] Sleeve Lifting: Start the lifting mechanism 54, the movable end of the hydraulic cylinder 541 extends upward, pushing the lifting plate 542 to rise. Since the drive mechanism 55 is installed on the lifting plate 542, and the sleeve 51 is connected to the drive mechanism 55, the sleeve 51 will rise together with the lifting plate 542. During the rising process, the sleeve 51 drives the telescopic mixing mechanism 52 to mix and reduce the porosity of the cement slurry at different heights. At the same time, the lifting plate 542 slides with the guide rod 543 through the guide hole to ensure the stability and accuracy of the lifting process. As the cement slurry is continuously poured and the sleeve 51 rises, the mixing and porosity reduction operations continue until the entire pole is poured.
[0049] Selection of hollow and solid poles: To obtain a hollow pole, after the cement slurry is mixed, multiple sets of telescopic mixing mechanisms 52 retract into the sleeve 51 to form a hollow casting space between the sleeve 51 and the inner wall of the pole mold 3, thus obtaining a hollow cement pole; to obtain a solid pole, after the cement slurry is mixed, multiple sets of telescopic mixing mechanisms 52 retract into the sleeve 51, and the sleeve 51 is driven to descend by the lifting mechanism 54 until the sleeve 51 is about to separate from the pole mold 3. At this time, the bottom of the pole mold 3 is sealed by the sleeve 51 to form a solid casting space inside the pole mold 3, thus obtaining a solid cement pole.
[0050] Curing and demolding: After pouring, allow the cement slurry to cure naturally in the pole mold 3 for a period of time, allowing the cement slurry to gradually solidify and form. After the cement pole reaches a certain strength, start the lifting mechanism 54 to lower the sleeve 51 to the initial position. Then, control the movable end of the positioning cylinder 403 to retract, releasing the positioning of the pole mold 3. Finally, use a crane to lift the pole mold 3 out of the pouring well 1 for demolding, and obtain the formed cement pole.
[0051] In summary, the cement pole casting and molding equipment of this application embodiment can effectively reduce air bubbles and pores generated during the cement pole casting process, improve the uniformity of cement density distribution, and thus effectively improve the overall mechanical properties of the cement pole.
[0052] In the description of this specification, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0053] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0054] Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this application.
Claims
1. A cement pole casting and molding equipment, characterized in that, It includes a casting well (1), a casting mechanism (2), a pole mold (3), a load-bearing mechanism (4), and a void reduction component (5), among which, The pouring mechanism (2) is located above the pouring well (1), the bearing mechanism (4) is located inside the pouring well (1), and the pole mold (3) is located on the bearing mechanism (4); The porosity reduction component (5) includes a sleeve (51), multiple sets of telescopic stirring mechanisms (52), a lifting mechanism (54), and a driving mechanism (55), wherein, The sleeve (51) is disposed inside the pole mold (3), and the sleeve (51) is slidably connected to the pole mold (3) in the upper and lower parts; The top end of the sleeve (51) is closed, and the bottom end of the sleeve (51) passes through the pole mold (3) and the bearing mechanism (4) in sequence. Multiple sets of the telescopic stirring mechanism (52) are respectively arranged on the sleeve (51), and the multiple sets of the telescopic stirring mechanism (52) are telescopic and retractable, and the multiple sets of the telescopic stirring mechanism (52) are evenly distributed from top to bottom; The lifting mechanism (54) is installed inside the casting well (1), and the lifting mechanism (54) is located below the bearing mechanism (4); The drive mechanism (55) is mounted on the lifting mechanism (54), and the drive mechanism (55) is fixedly connected to the bottom end of the sleeve 51.
2. The cement pole casting and molding equipment according to claim 1, characterized in that, The bearing mechanism (4) includes a partition (401), a support plate (402), and multiple positioning cylinders (403), wherein, The partition (401) and the support plate (402) are respectively disposed in the casting well (1), and the support plate (402) is located below the partition (401); The partition plate (401) has a positioning hole with a diameter larger than the outer wall diameter of the electric rod mold, and the support plate (402) has a through hole with a diameter smaller than the outer wall diameter of the electric rod mold, and the center of the positioning hole and the center of the through hole are on the same vertical line. Multiple positioning cylinders (403) are respectively disposed on the top of the partition plate (401), and the movable ends of the multiple positioning cylinders (403) are respectively disposed close to the center of the positioning hole, and positioning blocks are respectively fixedly disposed on the movable ends of the multiple positioning cylinders (403).
3. The cement pole casting and molding equipment according to claim 1, characterized in that, The telescopic stirring mechanism (52) includes an electric push rod 521 and a stirring rod 522, wherein, The electric push rod is fixedly installed inside the sleeve, and the electric push rod is horizontally installed; One end of the stirring rod is fixedly connected to the movable end of the electric push rod, and the other end of the stirring rod can pass through one side of the sleeve. In its natural state, the stirring rod is located inside the sleeve.
4. The cement pole casting and molding equipment according to claim 1, characterized in that, The lifting mechanism (54) includes a hydraulic cylinder (541) and a lifting plate (542), wherein, The hydraulic cylinder (541) is fixedly installed at the bottom of the casting well (1), the lifting plate (542) is horizontally installed on the movable end of the hydraulic cylinder (541), and the driving mechanism (55) is installed on the lifting plate (542).
5. The cement pole casting and molding equipment according to claim 4, characterized in that, The lifting mechanism (54) also includes multiple guide rods (543), the bottom ends of the multiple guide rods (543) are respectively fixedly connected to the bottom of the casting well (1), and the lifting plate (542) is provided with multiple guide holes that are adapted to the guide rods (543). The lifting plate (542) slides with the guide rods (543) through the guide holes.
6. The cement pole casting and molding equipment according to claim 5, characterized in that, The drive mechanism (55) includes a mounting bracket (551) and a drive motor (552), wherein, The mounting bracket (551) is fixedly mounted on the lifting plate (542), and the sleeve 51 is rotatably connected to the mounting bracket (551); The drive motor (552) is fixedly mounted on the lifting plate (542), and the drive motor (552) is coaxially connected to the bottom end of the sleeve 51 through a coupling.
7. The cement pole casting and molding equipment according to claim 1, characterized in that, The pouring mechanism (2) includes a cement slurry storage tank (201), a mud pump (202), a conveying pipeline (203), and a pouring nozzle (204), wherein, The cement slurry storage tank (201) is located above the casting well (1), the inlet end of the mud pump (202) is connected to the cement slurry storage tank 201, and the other end of the mud pump (202) is connected to one end of the conveying pipeline (203). The other end of the conveying pipe (203) is connected to the pouring nozzle (204), which is located above the pole mold (3).