Concrete construction pouring equipment in alpine region
By designing concrete construction pouring equipment in high-altitude areas, including sealing components and heating components, the problems of poor sealing performance and no heating function of the equipment are solved, efficient sealing of the equipment and effective heating of concrete are achieved, and the normal progress of construction is ensured.
Patent Information
- Application Number
- CN202421999111.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-08-19
AI Technical Summary
When used in high-altitude areas, the existing concrete construction and pouring equipment has poor sealing performance, rapid heat loss, and no heating mechanism is designed, resulting in the concrete being easily frozen and affecting normal pouring.
A concrete construction pouring equipment in high-altitude areas including support components, stirring components, sealing components and heating components is designed. The design of the sealing assembly reduces heat loss; the design of the heating assembly provides heating of the concrete to prevent freezing.
It improves the sealing and heating efficiency of the equipment, avoids the concrete from freezing in high and cold conditions, and ensures the normal progress of concrete construction.
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Figure CN222909470U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of concrete pouring, specifically a concrete construction pouring device in alpine regions. Background Technique
[0002] Concrete construction pouring refers to the construction process of pouring the mixed concrete into the bin, leveling it, and tamping it densely. This process is a key step in forming a predetermined shape with materials such as concrete and is widely used in the construction industry. The pouring requirements are continuous, uniform, and prevent the concrete from segregation to ensure the strength and stability of the concrete structure.
[0003] Currently, in the prior art, the Chinese utility model patent publication number: CN220954684U, discloses a concrete construction pouring device. This concrete construction pouring device can complete preliminary trimming while pouring concrete by setting a lifting structure and a vibrator. During pouring, the third motor drives the rotating shaft to rotate through the output shaft. The rotation of the rotating shaft drives the slider to move downward through screw rotation. The downward movement of the slider drives the vibrator fixedly connected to it to move downward. When the vibrator is moved downward to a suitable position, the vibrator drives the vibrating plate to vibrate through the output shaft. The vibration of the vibrating plate discharges the air bubbles in the concrete and compresses the concrete downward to reach a certain levelness, completing the preliminary trimming of the concrete while pouring, reducing labor waste. However, this concrete construction pouring device does not design a sealing mechanism, and the overall sealing performance is poor, with rapid heat loss. Moreover, this concrete construction pouring device does not design a heating mechanism, which is not convenient for heating the concrete. In alpine weather, the concrete is prone to freezing, affecting the overall normal pouring.
[0004] Therefore, a concrete construction pouring device in alpine regions is proposed to solve the above problems. Content of the Utility Model
[0005] In order to make up for the deficiencies of the prior art and solve the problems of not designing a sealing mechanism, poor overall sealing performance, rapid heat loss, and not designing a heating mechanism for this concrete construction pouring device, which is not convenient for heating the concrete, and in alpine weather, the concrete is prone to freezing, affecting the overall normal pouring, a concrete construction pouring device in alpine regions is proposed.
[0006] The technical solution adopted by the present utility model to solve its technical problems is as follows: The concrete construction pouring equipment in alpine regions of the present utility model includes a support assembly. A housing one is fixedly installed at the top of the support assembly. A housing two is fixedly installed at the top of the housing one. A housing three is fixedly installed at the top of the housing two. A feed inlet is fixedly installed on the outer side of the housing three. A stirring assembly is arranged inside the housing two. A sealing assembly one is arranged at the feed inlet. A heating assembly is fixedly installed at the top of the housing three. A sealing assembly two is arranged at the junction between the inside of the housing two and the inside of the housing two. A pouring assembly is arranged at the top of the support assembly.
[0007] Preferably, the stirring assembly includes a motor one, a stirring shaft, a mounting seat, a groove one, a through hole one, a stirring rod, a through hole two and a limiting rod. The output end of the motor one is fixedly installed with the stirring shaft. The stirring shaft is fixedly installed with the mounting seat on the outer side. The outer side of the mounting seat is provided with the groove one and the through hole one. The outer side of the mounting seat is provided with the stirring rod. The outer side of the stirring rod is provided with the through hole two. The limiting rod is inserted and installed on the outer side of the mounting seat. There are a plurality of the same stirring rods, and the plurality of stirring rods are evenly distributed at equal intervals.
[0008] Through the above technical solution, the staff starts the motor one. The output shaft of the motor one rotates to drive the stirring shaft to rotate. The stirring shaft rotates to drive the stirring rod to rotate, so as to realize the rapid stirring of the concrete. Through the design of the motor one, the stirring shaft and the stirring rod, the concrete is stirred more fully and more evenly after pouring. Through the design of a plurality of stirring rods, the stirring efficiency is improved, and the practicability is relatively high.
[0009] Preferably, the stirring rod is inserted and installed with the mounting seat. The limiting rod penetrates through the through hole one and the through hole two, and the apertures of the through hole one and the through hole two are the same.
[0010] Through the above technical solution, the staff inserts the stirring rod into the inside of the groove one, and then the limiting rod penetrates through the through hole one and the through hole two, so as to realize the rapid installation of the stirring rod. Through the design of the groove one, the limiting rod, the through hole one and the through hole two, it is convenient for the installation and disassembly of the stirring rod, which is convenient for subsequent maintenance and repair, and improves the installation efficiency.
[0011] Preferably, the sealing assembly one includes a cylinder one, a baffle one, a slider one, a chute one and a groove two. The movable end of the cylinder one is fixedly installed with the baffle one. The baffle one is fixedly installed with the slider one on the outer side. The bottom of the feed inlet is provided with the chute one and the groove two. The baffle one is adapted to the feed inlet, and the slider one is slidably connected with the chute one.
[0012] Through the above technical solution, the staff activates the first cylinder, and the movable end of the first cylinder extends, pushing the first baffle into the interior of the second groove, which can achieve the sealing of the second housing. Through the design of the first sealing component, the heat loss inside the second housing is reduced, and the overall sealing performance and heating efficiency are improved.
[0013] Preferably, the heating component includes a third groove, a heater, a first threaded hole, a second threaded hole, and a bolt. A third groove is provided at the top of the third housing, a heater is provided on the top of the third housing, a first threaded hole is provided on the outer side of the heater, a second threaded hole is provided at the top of the third housing, the outer side of the heater is threadedly connected with a bolt, and the bolt passes through the first threaded hole and extends into the interior of the second threaded hole. The apertures of the first threaded hole and the second threaded hole are the same.
[0014] Through the above technical solution, the staff places the heater on the top of the third housing, and then passes the bolt through the first threaded hole and extends it into the interior of the second threaded hole, which can achieve the installation of the heater. Through the design of the heater, heat enters the interior of the third housing through the third groove, heating the concrete stirred inside the second housing. In extremely cold weather, it prevents the concrete from freezing and affecting normal pouring.
[0015] Preferably, the second sealing component includes a second cylinder, a second baffle, a second slider, a mounting frame, a fourth groove, and a second chute. The movable end of the second cylinder is fixedly installed with a second baffle, the outer side of the second baffle is fixedly installed with a second slider, the mounting frame is fixedly installed at the top inside the first housing, the outer side of the mounting frame is provided with a fourth groove and a second chute. There are two same second cylinders and second baffles, and the two second cylinders and second baffles are symmetrically distributed about the center line of the first housing. The second slider is slidably connected with the second chute.
[0016] Through the above technical solution, the staff activates the second cylinder, and the movable end of the second cylinder extends, pushing the second baffle into the interior of the fourth groove, which can achieve the sealing of the second housing. Through the design of the second sealing component, the heat loss inside the second housing is reduced, and the overall sealing performance and heating efficiency are improved.
[0017] Preferably, the pouring component includes a second motor, a first gear, a screw barrel, a screw shaft, a second gear, screw blades, a fifth groove, and a discharge port. The output end of the second motor is fixedly installed with a first gear, the screw barrel is fixedly installed at the top of the support component, the screw shaft is rotatably installed inside the screw barrel, the outer side of the screw shaft is fixedly installed with a second gear and screw blades, a fifth groove is provided inside the screw barrel, a discharge port is fixedly installed on the outer side of the screw barrel, heat insulation cotton is provided inside the fifth groove, and the first gear is meshed with the second gear.
[0018] Through the above technical solution, the staff starts the second motor. The output shaft of the second motor drives the auger shaft to rotate through the cooperation of the first gear and the second gear. The rotation of the auger shaft drives the auger blade to rotate, and the concrete after stirring and heating is discharged from the discharge port, which can realize the rapid pouring of concrete. Through the design of the pouring component, it is convenient for the pouring of concrete. Through the design of the heat insulation cotton, the heat loss of the concrete after stirring and heating inside the pouring component is reduced, avoiding the freezing of the concrete and affecting the normal pouring, and the practicability is relatively high.
[0019] The beneficial effects of the present utility model:
[0020] The present utility model provides a concrete construction pouring device for alpine regions. Through the design of the first motor, the stirring shaft and the stirring rods, the concrete is stirred more fully and is more uniform after pouring. Through the design of multiple stirring rods, the stirring efficiency is improved and the practicability is relatively high. Through the design of the first groove, the limiting rod, the first through hole and the second through hole, it is convenient for the installation and disassembly of the stirring rods, facilitating subsequent maintenance and repair and improving the installation efficiency;
[0021] The present utility model provides a concrete construction pouring device for alpine regions. Through the design of the first sealing component and the second sealing component, the heat loss inside the second housing is reduced, improving the overall sealing performance and heating efficiency. Through the design of the heater, the heat enters the inside of the third housing through the third groove, heating the concrete stirred inside the second housing, and avoiding the freezing of the concrete in alpine weather and affecting the normal pouring. Description of the Drawings
[0022] The drawings described herein are used to provide a further understanding of the present utility model and constitute a part of this application. The schematic embodiments of the present utility model and their descriptions are used to explain the present utility model and do not constitute an improper limitation to the present utility model. In the drawings:
[0023] Figure 1 is the three-dimensional view of the present utility model;
[0024] Figure 2 is the installation drawing of the heating component in the present utility model;
[0025] Figure 3 is the installation drawing of the first sealing component in the present utility model;
[0026] Figure 4 is the installation of the stirring component in the present utility model Figure 1 ;
[0027] Figure 5 is the installation of the stirring component in the present utility model Figure 2 ;
[0028] Figure 6 is the installation drawing of the second sealing component in the present utility model;
[0029] Figure 7 is the installation of the pouring component in the present utility model Figure 1 ;
[0030] Figure 8 is the installation of the pouring component in the present utility model Figure 2 .
[0031] Legend description:
[0032] 1. Support component; 2. First housing; 3. Second housing; 4. Third housing; 5. Feed inlet; 6. Stirring component; 601. First motor; 602. Stirring shaft; 603. Mounting seat; 604. First groove; 605. First through hole; 606. Stirring rod; 607. Second through hole; 608. Limiting rod; 7. First sealing component; 701. First cylinder; 702. First baffle; 703. First slider; 704. First chute; 705. Second groove; 8. Heating component; 801. Third groove; 802. Heater; 803. First threaded hole; 804. Second threaded hole; 805. Bolt; 9. Second sealing component; 901. Second cylinder; 902. Second baffle; 903. Second slider; 904. Mounting frame; 905. Fourth groove; 906. Second chute; 10. Pouring component; 1001. Second motor; 1002. First gear; 1003. Screw barrel; 1004. Screw shaft; 1005. Second gear; 1006. Screw blade; 1007. Fifth groove; 1008. Discharge port. Specific implementation manners
[0033] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0034] The following gives specific embodiments.
[0035] Please refer to Figures 1-8 , the present utility model provides a concrete construction pouring device for alpine regions, including a support component 1. A first housing 2 is fixedly installed on the top of the support component 1. A second housing 3 is fixedly installed on the top of the first housing 2. A third housing 4 is fixedly installed on the top of the second housing 3. A feed inlet 5 is fixedly installed on the outside of the third housing 4. A stirring component 6 is arranged inside the second housing 3. A first sealing component 7 is arranged at the feed inlet 5. A heating component 8 is fixedly installed on the top of the third housing 4. A second sealing component 9 is arranged at the junction between the inside of the second housing 3 and the inside of the second housing 3. A pouring component 10 is arranged on the top of the support component 1.
[0036] Furthermore, as Figures 1-8 shown, the stirring assembly 6 includes a first motor 601, a stirring shaft 602, a mounting seat 603, a first groove 604, a first through hole 605, stirring rods 606, a second through hole 607 and a limiting rod 608. The output end of the first motor 601 is fixedly installed with the stirring shaft 602. The outer side of the stirring shaft 602 is fixedly installed with the mounting seat 603. The outer side of the mounting seat 603 is provided with the first groove 604 and the first through hole 605. The outer side of the mounting seat 603 is provided with the stirring rods 606. The outer side of the stirring rods 606 is provided with the second through hole 607. The outer side of the mounting seat 603 is inserted and installed with the limiting rod 608. There are a plurality of the same stirring rods 606, and the plurality of stirring rods 606 are evenly distributed at equal intervals. The advantage is that the staff starts the first motor 601, the output shaft of the first motor 601 rotates to drive the stirring shaft 602 to rotate, and the stirring shaft 602 rotates to drive the stirring rods 606 to rotate, which can realize the rapid stirring of the concrete. Through the design of the first motor 601, the stirring shaft 602 and the stirring rods 606, the concrete is stirred more fully and is more uniform after pouring. Through the design of the plurality of stirring rods 606, the stirring efficiency is improved, and the practicability is relatively high.
[0037] Furthermore, as Figures 1-8 shown, the stirring rod 606 is inserted and installed with the mounting seat 603. The limiting rod 608 penetrates through the first through hole 605 and the second through hole 607, and the apertures of the first through hole 605 and the second through hole 607 are the same. The advantage is that the staff inserts the stirring rod 606 into the inside of the first groove 604, and then penetrates the limiting rod 608 through the first through hole 605 and the second through hole 607, which can realize the rapid installation of the stirring rod 606. Through the design of the first groove 604, the limiting rod 608, the first through hole 605 and the second through hole 607, it is convenient for the installation and disassembly of the stirring rod 606, which is convenient for subsequent maintenance and repair, and improves the installation efficiency.
[0038] Furthermore, as Figures 1-8 shown, the first sealing assembly 7 includes a first cylinder 701, a first baffle 702, a first slider 703, a first chute 704 and a second groove 705. The movable end of the first cylinder 701 is fixedly installed with the first baffle 702. The outer side of the first baffle 702 is fixedly installed with the first slider 703. The bottom of the feed inlet 5 is provided with the first chute 704 and the second groove 705. The first baffle 702 is adapted to the feed inlet 5, and the first slider 703 is slidably connected with the first chute 704. The advantage is that the staff starts the first cylinder 701, the movable end of the first cylinder 701 extends, and the first baffle 702 is pushed into the inside of the second groove 705, which can realize the sealing of the second housing 3. Through the design of the first sealing assembly 7, the heat loss inside the second housing 3 is reduced, and the overall sealing performance and heating efficiency are improved.
[0039] Furthermore, as Figures 1-8As shown in the figure, the heating component 8 includes a groove three 801, a heater 802, a threaded hole one 803, a threaded hole two 804, and a bolt 805. A groove three 801 is provided at the top of the housing three 4. A heater 802 is provided on the top of the housing three 4. A threaded hole one 803 is provided on the outer side of the heater 802. A threaded hole two 804 is provided at the top of the housing three 4. The outer side of the heater 802 is threadedly connected with a bolt 805. The bolt 805 passes through the threaded hole one 803 and extends into the interior of the threaded hole two 804. The apertures of the threaded hole one 803 and the threaded hole two 804 are the same. The advantage is that the staff places the heater 802 on the top of the housing three 4, and then passes the bolt 805 through the threaded hole one 803 and extends it into the interior of the threaded hole two 804, which can realize the installation of the heater 802. Through the design of the heater 802, heat enters the interior of the housing three 4 through the groove three 801, heating the concrete stirred inside the housing two 3, and preventing the concrete from being frozen in cold weather, thus affecting the normal pouring.
[0040] Further, as Figures 1-8 shown in the figure, the sealing component two 9 includes a cylinder two 901, a baffle two 902, a slider two 903, a mounting bracket 904, a groove four 905, and a chute two 906. The movable end of the cylinder two 901 is fixedly installed with a baffle two 902. The outer side of the baffle two 902 is fixedly installed with a slider two 903. The mounting bracket 904 is fixedly installed at the top inside the housing one 2. The outer side of the mounting bracket 904 is provided with a groove four 905 and a chute two 906. There are two cylinders two 901 and baffles two 902 that are the same. The two cylinders two 901 and baffles two 902 are symmetrically distributed about the center line of the housing one 2. The slider two 903 is slidably connected to the chute two 906. The advantage is that the staff starts the cylinder two 901, and the movable end of the cylinder two 901 extends, pushing the baffle two 902 into the interior of the groove four 905, which can realize the sealing of the housing two 3. Through the design of the sealing component two 9, the heat loss inside the housing two 3 is reduced, improving the overall sealing performance and heating efficiency.
[0041] Further, as Figures 1-8As shown in the figure, the pouring assembly 10 includes a second motor 1001, a first gear 1002, a auger barrel 1003, an auger shaft 1004, a second gear 1005, an auger blade 1006, a fifth groove 1007 and a discharge port 1008. The output end of the second motor 1001 is fixedly installed with the first gear 1002. The top of the support assembly 1 is fixedly installed with the auger barrel 1003. The auger shaft 1004 is rotatably installed inside the auger barrel 1003. The outer side of the auger shaft 1004 is fixedly installed with the second gear 1005 and the auger blade 1006. The fifth groove 1007 is opened inside the auger barrel 1003. The discharge port 1008 is fixedly installed on the outer side of the auger barrel 1003. Thermal insulation cotton is arranged inside the fifth groove 1007. The first gear 1002 and the second gear 1005 are meshed. The advantage is that the staff starts the second motor 1001. The output shaft of the second motor 1001 drives the auger shaft 1004 to rotate through the cooperation of the first gear 1002 and the second gear 1005. The rotation of the auger shaft 1004 drives the rotation of the auger blade 1006, and the stirred and heated concrete is discharged from the discharge port 1008, so that the rapid pouring of the concrete can be realized. Through the design of the pouring assembly 10, the pouring of the concrete is facilitated. Through the design of the thermal insulation cotton, the heat loss of the stirred and heated concrete inside the pouring assembly 10 is reduced, and the concrete is prevented from being frozen, affecting the normal pouring, and the practicability is relatively high.
[0042] Working principle: During installation, the staff inserts the stirring rod 606 into the inner part of the first groove 604, and then passes the limiting rod 608 through the first through hole 605 and the second through hole 607, which can realize the rapid installation of the stirring rod 606. Through the design of the first groove 604, the limiting rod 608, the first through hole 605 and the second through hole 607, it is convenient for the installation and disassembly of the stirring rod 606, which is convenient for subsequent maintenance and repair, improves the installation efficiency. When in use, the staff first connects to the external power supply, and then starts the first cylinder 701. The movable end of the first cylinder 701 extends, and pushes the first baffle 702 into the inner part of the second groove 705, which can realize the sealing of the second housing 3. Through the design of the first sealing assembly 7, the heat loss inside the second housing 3 is reduced, and the overall sealing performance and heating efficiency are improved. The staff starts the second cylinder 901. The movable end of the second cylinder 901 extends, and pushes the second baffle 902 into the inner part of the fourth groove 905, which can realize the sealing of the second housing 3. Through the design of the second sealing assembly 9, the heat loss inside the second housing 3 is reduced, and the overall sealing performance and heating efficiency are improved. The staff places the heater 802 on the top of the third housing 4, and then passes the bolt 805 through the first threaded hole 803 and extends it into the second threaded hole 804, which can realize the installation of the heater 802. Through the design of the heater 802, the heat enters the inner part of the third housing 4 through the third groove 801, and heats the concrete stirred inside the second housing 3. In cold weather, it can prevent the concrete from being frozen and affecting the normal pouring. The staff starts the second motor 1001. The output shaft of the second motor 1001 drives the auger shaft 1004 to rotate through the cooperation of the first gear 1002 and the second gear 1005. The rotation of the auger shaft 1004 drives the rotation of the auger blade 1006, and discharges the stirred and heated concrete from the discharge port 1008, which can realize the rapid pouring of the concrete. Through the design of the pouring assembly 10, it is convenient for the pouring of the concrete. Through the design of the heat insulation cotton, the heat loss of the stirred and heated concrete inside the pouring assembly 10 is reduced, and it can prevent the concrete from being frozen and affecting the normal pouring. The practicability is relatively high.
[0043] The above shows and describes the basic principle, main features and advantages of the present utility model. Those skilled in the art of this industry should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed.
Claims
1. Concrete pouring equipment for high-cold areas, characterized by: The invention comprises a supporting component (1), wherein a shell 1 (2) is fixedly mounted on the top of the supporting component (1), a shell 2 (3) is fixedly mounted on the top of the shell 1 (2), a shell 3 (4) is fixedly mounted on the top of the shell 2 (3), a feed port (5) is fixedly mounted on the outer side of the shell 3 (4), a stirring component (6) is arranged inside the shell 2 (3), a sealing component 1 (7) is arranged at the feed port (5), a heating component (8) is fixedly mounted on the top of the shell 3 (4), a sealing component 2 (9) is arranged at the junction between the inside of the shell 2 (3) and the inside of the shell 2 (3), and a casting component (10) is arranged on the top of the supporting component (1).
2. The concrete construction pouring equipment for high-cold areas according to claim 1 is characterized by: The stirring assembly (6) comprises a motor (601), a stirring shaft (602), a mounting seat (603), a groove (604), a through hole (605), a stirring rod (606), a through hole (607) and a limiting rod (608); the stirring shaft (602) is fixedly mounted on the output end of the motor (601); the mounting seat (603) is fixedly mounted on the outer side of the stirring shaft (602); the groove (604) and the through hole (605) are provided on the outer side of the mounting seat (603); the stirring rod (606) is arranged on the outer side of the mounting seat (603); the through hole (607) is quickly provided on the outer side of the stirring rod (606); the limiting rod (608) is inserted and installed on the outer side of the mounting seat (603); the stirring rod (606) is provided with a plurality of the same stirring rods, and the plurality of stirring rods (606) are distributed at equal intervals.
3. The concrete pouring equipment for high-cold areas according to claim 2 is characterized by: The stirring rod (606) and the mounting seat (603) are plug-connected, and the limiting rod (608) passes through the first through hole (605) and the second through hole (607). The apertures of the first through hole (605) and the second through hole (607) are the same.
4. The concrete pouring equipment for high-cold areas according to claim 3 is characterized by: The sealing component 1 (7) comprises a cylinder 1 (701), a baffle 1 (702), a slider 1 (703), a slide groove 1 (704) and a groove 2 (705); the movable end of the cylinder 1 (701) is fixedly mounted with a baffle 1 (702); the outer side of the baffle 1 (702) is fixedly mounted with a slider 1 (703); the bottom of the feed port (5) is provided with a slide groove 1 (704) and a groove 2 (705); the baffle 1 (702) is matched with the feed port (5); the slider 1 (703) and the slide groove 1 (704) are slidably connected.
5. The concrete pouring equipment for high-cold areas according to claim 4 is characterized by: The heating component (8) comprises a groove three (801), a heater (802), a threaded hole one (803), a threaded hole two (804) and a bolt (805); the top of the shell three (4) is provided with a groove three (801); the top of the shell three (4) is provided with a heater (802); the outer side of the heater (802) is provided with a threaded hole one (803); the top of the shell three (4) is provided with a threaded hole two (804); the outer side of the heater (802) is threadedly connected with a bolt (805); the bolt (805) passes through the threaded hole one (803) and extends to the inside of the threaded hole two (804); the threaded hole one (803) and the threaded hole two (804) have the same aperture.
6. The concrete pouring equipment for high-cold areas according to claim 5, characterized in that: The sealing assembly 2 (9) comprises a cylinder 2 (901), a baffle 2 (902), a slider 2 (903), a mounting frame (904), a groove 4 (905) and a slide groove 2 (906). The movable end of the cylinder 2 (901) is fixedly mounted with a baffle 2 (902), the outer side of the baffle 2 (902) is fixedly mounted with a slider 2 (903), the top of the interior of the shell 1 (2) is fixedly mounted with a mounting frame (904), the outer side of the mounting frame (904) is provided with a groove 4 (905) and a slide groove 2 (906), the cylinder 2 (901) and the baffle 2 (902) are both provided with two identical ones, the two cylinders 2 (901) and the baffle 2 (902) are symmetrically distributed about the center line of the shell 1 (2), and the slider 2 (903) is slidably connected with the slide groove 2 (906).
7. The concrete pouring equipment for high-cold areas according to claim 6, characterized in that: The casting assembly (10) comprises a second motor (1001), a first gear (1002), an auger cylinder (1003), an auger shaft (1004), a second gear (1005), an auger blade (1006), a fifth groove (1007) and a discharge port (1008). The output end of the second motor (1001) is fixedly mounted with the first gear (1002). The top of the support assembly (1) is fixedly mounted with the auger cylinder (1003). The auger cylinder (1003) An auger shaft (1004) is rotatably installed inside, a gear 2 (1005) and an auger blade (1006) are fixedly installed on the outside of the auger shaft (1004), a groove 5 (1007) is opened inside the auger cylinder (1003), a discharge port (1008) is fixedly installed on the outside of the auger cylinder (1003), and thermal insulation cotton is arranged inside the groove 5 (1007), and the gear 1 (1002) is meshingly connected with the gear 2 (1005).
Citation Information
Patent Citations
A concrete pouring equipment
CN220954684U